{"id":540814,"date":"2026-07-14T10:55:06","date_gmt":"2026-07-14T10:55:06","guid":{"rendered":"https:\/\/www.newsbeep.com\/il\/540814\/"},"modified":"2026-07-14T10:55:06","modified_gmt":"2026-07-14T10:55:06","slug":"aeroacoustics-of-a-forward-flight-propeller-ingesting-small-and-large-scale-turbulent-wakes-journal-of-fluid-mechanics","status":"publish","type":"post","link":"https:\/\/www.newsbeep.com\/il\/540814\/","title":{"rendered":"Aeroacoustics of a forward-flight propeller ingesting small- and large-scale turbulent wakes | Journal of Fluid Mechanics"},"content":{"rendered":"<p>3.1. Aerodynamic characteristics of turbulence ingestion<\/p>\n<p class=\"p\"> In order to understand the physical mechanisms of turbulence ingestion noise when a propeller is subjected to turbulent inflows of distinct characteristics, i.e. ingestion of SST and LST, a comprehensive examination of the near-field flow must be conducted and subsequently, correlating the flow features to the far-field acoustics. In this section, the flow and turbulence characteristics will first be presented.<\/p>\n<p>Figure 7.<\/p>\n<p class=\"p\">Flow field visualisation of the (a\u2013c) normalised mean root-mean-square (r.m.s.) of axial velocity component, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline101.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"67\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline101.png\" data-zoomable=\"false\" alt=\"u overbar Subscript r m s Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$\\bar {u}_{\\mathit{rms}}\/U_\\infty$<\/p>\n<p>, and (d\u2013f) normalised mean spanwise vorticity, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline102.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"68\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline102.png\" data-zoomable=\"false\" alt=\"omega overbar Subscript z Baseline upper R divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$\\bar {\\omega }_zR\/U_\\infty$<\/p>\n<p>, for the isolated, SST ingestion and LST ingestion cases.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig7.png\" class=\"aop-lazy-load-image\" width=\"3872\" height=\"3826\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig7.png\" data-zoomable=\"true\" alt=\"Heat maps showing flow fields for isolated, SST ingestion, and LST ingestion cases.\"\/><\/p>\n<p>3.1.1. Overview of the propeller flow field<\/p>\n<p class=\"p\"> To begin, an overview of the flow development for all three configurations is presented. <a class=\"xref fig\" href=\"#f7\">Figure\u00a07<\/a> shows the r.m.s. of axial velocity normalised by the free stream velocity, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline103.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"67\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline103.png\" data-zoomable=\"false\" alt=\"u Subscript r m s Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$u_{\\mathit{rms}}\/U_\\infty$<\/p>\n<p>, for the isolated, SST ingestion and LST ingestion cases, respectively. In the isolated configuration, shown in <a class=\"xref fig\" href=\"#f7\">figure\u00a07<\/a>(a), velocity fluctuations are minimal, confined primarily to the immediate blade-tip region and the downstream of the tip region, as a result of the tip vortices developing and being convected downstream. The wake structure is essentially symmetrical. The SST ingestion case, displayed in <a class=\"xref fig\" href=\"#f7\">figure\u00a07<\/a>(b), introduces heightened axial velocity fluctuations directly upstream of the propeller, induced by small-scale vortices shed from the upstream cylinder. These fluctuations are limited to the region above the axis of rotation, resulting in localised blade\u2013vortex interactions. The propeller wake region becomes asymmetric, with the top side (i.e. where the cylinder is located) having notably higher <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline104.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"67\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline104.png\" data-zoomable=\"false\" alt=\"u Subscript r m s Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$u_{\\mathit{rms}}\/U_\\infty$<\/p>\n<p> magnitudes. The tip\u2013vortex trajectory remains largely unaltered, although a visible increase in velocity fluctuation strength can be seen downstream of the propeller blades. Conversely, the LST ingestion case, shown in <a class=\"xref fig\" href=\"#f7\">figure\u00a07<\/a>(c), exhibits substantial axial velocity fluctuations in the wake of the cylinder, which is extended into the propeller wake, covering a wide spatial extent. The magnitude of the fluctuations reaching the propeller plane is lower than that in the SST ingestion case, as the cylinder wake decays over a larger distance in LST ingestion; however, the much greater \u2018extent\u2019 of turbulence significantly enhances its interaction with the propeller. Here, the propeller wake region becomes highly fluctuating, with complete loss of a clearly defined tip\u2013vortex trajectory above the rotation axis (i.e. top \u2018half-plane\u2019). Unlike the isolated and SST ingestion cases, this large-scale interaction also impacts the flow development at the bottom side, with elevated velocity fluctuations surrounding the blades and in the wake, when compared with the isolated and SST ingestion cases. In addition, despite the fact that it retains the development of the tip vortices, the trajectory is noticeably more widespread with corresponding elevated velocity fluctuations. To complement the r.m.s. contours, <a class=\"xref fig\" href=\"#f7\">figure\u00a07<\/a>(d \u2013f) shows the normalised mean spanwise vorticity, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline105.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"67\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline105.png\" data-zoomable=\"false\" alt=\"omega overbar Subscript z Baseline upper R divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$\\bar {\\omega }_z R\/U_\\infty$<\/p>\n<p>, for the three configurations. The isolated case in <a class=\"xref fig\" href=\"#f7\">figure\u00a07<\/a>(d) shows the vorticity with symmetric development of the propeller wake, with the tip vortices being well defined in terms of magnitude and shape. For the SST ingestion case in <a class=\"xref fig\" href=\"#f7\">figure\u00a07<\/a>(e), the additional vorticity introduced by the cylinder wake is largely restricted to the upper-half of the propeller plane. The propeller tip\u2013vortex structures remain relatively compact, with signs of lower magnitude and mixing in the upper part. The lower vortex trajectory and magnitude remain unchanged. In contrast, the LST ingestion case shown in <a class=\"xref fig\" href=\"#f7\">figure\u00a07<\/a>(f) exhibits a much broader vorticity variation, with the wake encompassing the majority of the propeller plane. As a result, the interaction is no longer confined to the upper half-plane, but spreads across a substantial portion of the propeller disk, including the lower side. The resultant tip vortices show a significant decrease in magnitude for the whole wake, as well as a loss in structure for the positive y section of the propeller wake.<\/p>\n<p>Figure 8.<\/p>\n<p class=\"p\">Instantaneous radial vorticity, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline106.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"68\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline106.png\" data-zoomable=\"false\" alt=\"omega Subscript r Baseline upper R divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$\\omega _rR\/U_{\\infty }$<\/p>\n<p>, on two cylindrical surfaces: (a,c,e) <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline107.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"72\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline107.png\" data-zoomable=\"false\" alt=\"r divided by upper R equals 0.7\"\/><\/p>\n<p>$r\/R=0.7$<\/p>\n<p>, (b,d,f) <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline108.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"82\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline108.png\" data-zoomable=\"false\" alt=\"r divided by upper R equals 0.99\"\/><\/p>\n<p>$r\/R=0.99$<\/p>\n<p>) for (a,b) the isolated propeller, (c,d) SST ingestion and (e,f) LST ingestion cases. Upstream cylinders are omitted for clarity.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig8.png\" class=\"aop-lazy-load-image\" width=\"3872\" height=\"3468\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig8.png\" data-zoomable=\"true\" alt=\"Illustration of radial vorticity on cylindrical surfaces for different propeller cases.\"\/><br \/>\nFigure 8. Long description<\/p>\n<p class=\"p\">Panel A: A 3D rendering showing radial vorticity on a cylindrical surface for an isolated propeller. The propeller is depicted in the center with a color gradient indicating vorticity values. Panel B: A 3D rendering showing radial vorticity on a cylindrical surface for an isolated propeller from a different angle. The propeller is depicted in the center with a color gradient indicating vorticity values. Panel C: A 3D rendering showing radial vorticity on a cylindrical surface for the SST ingestion case. The propeller is depicted in the center with a color gradient indicating vorticity values. Panel D: A 3D rendering showing radial vorticity on a cylindrical surface for the SST ingestion case from a different angle. The propeller is depicted in the center with a color gradient indicating vorticity values. Panel E: A 3D rendering showing radial vorticity on a cylindrical surface for the LST ingestion case. The propeller is depicted in the center with a color gradient indicating vorticity values. Panel F: A 3D rendering showing radial vorticity on a cylindrical surface for the LST ingestion case from a different angle. The propeller is depicted in the center with a color gradient indicating vorticity values. The color gradient ranges from blue to red, representing different vorticity values.<\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f8\">Figure\u00a08<\/a> illustrates the instantaneous radial vorticity (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline109.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"68\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline109.png\" data-zoomable=\"false\" alt=\"omega Subscript r Baseline upper R divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$\\omega _r R\/U_{\\infty }$<\/p>\n<p>) on cylindrical surfaces with radii of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline110.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"72\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline110.png\" data-zoomable=\"false\" alt=\"r divided by upper R equals 0.7\"\/><\/p>\n<p>$r\/R=0.7$<\/p>\n<p> (<a class=\"xref fig\" href=\"#f8\">figure\u00a08<\/a><br \/>\na,c,e) and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline111.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"82\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline111.png\" data-zoomable=\"false\" alt=\"r divided by upper R equals 0.99\"\/><\/p>\n<p>$r\/R=0.99$<\/p>\n<p> (<a class=\"xref fig\" href=\"#f8\">figure\u00a08<\/a><br \/>\nb,d,f), for the isolated propeller (<a class=\"xref fig\" href=\"#f8\">figure\u00a08<\/a><br \/>\na,b), SST ingestion (<a class=\"xref fig\" href=\"#f8\">figure\u00a08<\/a><br \/>\nc,d), and LST ingestion (<a class=\"xref fig\" href=\"#f8\">figure\u00a08<\/a><br \/>\ne,f) cases. The radius <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline112.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"72\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline112.png\" data-zoomable=\"false\" alt=\"r divided by upper R equals 0.7\"\/><\/p>\n<p>$r\/R=0.7$<\/p>\n<p> is selected as the location where the phase-averaged r.m.s. of blade surface pressure fluctuation maps<a class=\"xref fig\" href=\"#f15\"\/>indicate the strongest turbulence\u2013blade interaction (see \u00a7 <a class=\"xref sec\" href=\"#s3-1-4\">3.1.4<\/a> on the blade-level analysis), while <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline113.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"82\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline113.png\" data-zoomable=\"false\" alt=\"r divided by upper R equals 0.99\"\/><\/p>\n<p>$r\/R=0.99$<\/p>\n<p> allows the analysis of the effect of ingestion on the tip\u2013vortex organisation for the instantaneous field. In the isolated case, coherent tip vortices dominate the vorticity field, clearly defined as organised helical structures being convected downstream from the blade, suggesting that these tip vortices are periodic with reference to the blade pass frequency, typical of propeller wake flow fields. For the SST ingestion case shown in <a class=\"xref fig\" href=\"#f8\">figures 8<\/a>(c) and <a class=\"xref fig\" href=\"#f8\">8<\/a>(d), small vortical structures between the helical tip\u2013vortex trajectory are visible, which interact directly with the blades and slightly alter the otherwise coherent wake. This interaction is only visible in the positive y-direction, which corresponds to the location of the cylinder. Larger fluctuations can be observed at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline114.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"82\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline114.png\" data-zoomable=\"false\" alt=\"r divided by upper R equals 0.99\"\/><\/p>\n<p>$r\/R=0.99$<\/p>\n<p> (see <a class=\"xref fig\" href=\"#f8\">figure\u00a08<\/a><br \/>\nd), where the cylinder wake can be discerned to disrupt the coherent organisation of the tip vortices, resulting in higher levels of vorticity, i.e. spanwise vorticity as seen in <a class=\"xref fig\" href=\"#f7\">figure\u00a07<\/a>(e). Nonetheless, the tip vortices remain recognisable despite the heightened level of turbulence, indicating limited distortion by the small-scale turbulent structures. In the negative y-direction, the vortices appear less disturbed than for the direction exposed to the cylinder wake, although appearing weaker than in the isolated case. This reduction can be attributed to the global effect of the ingested wake on the propeller loading and the overall near-wake development. The radial vorticity for the LST ingestion case, as displayed in <a class=\"xref fig\" href=\"#f8\">figures 8<\/a>(e) and <a class=\"xref fig\" href=\"#f8\">8<\/a>(f), is most disorganised, with a large area of the \u2018surface\u2019 having elevated vorticity. This level of enhanced interaction between the incoming turbulence and the propeller wake disrupts the coherent formation of the tip vortices as observed in the isolated and SST ingestion cases. At the inner radius (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline115.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"72\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline115.png\" data-zoomable=\"false\" alt=\"r divided by upper R equals 0.7\"\/><\/p>\n<p>$r\/R=0.7$<\/p>\n<p>), large-scale turbulent eddies are evident, promoting spatial spread of turbulent structures, manifested as regions with greater vorticity. Moreover, the vorticity field is perturbed both at the top and bottom sides of the propeller, suggesting that the propeller\u2013turbulence interaction can encompass the entire diameter of the propeller (this is verified by observing a series of consecutive instantaneous vorticity fields over several propeller revolutions). At the outer radius (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline116.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"82\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline116.png\" data-zoomable=\"false\" alt=\"r divided by upper R equals 0.99\"\/><\/p>\n<p>$r\/R=0.99$<\/p>\n<p>), the tip vortices become heavily distorted, and their clear helical shape is replaced by broad patches of disorganised and intense vorticity at the top side. This is consistent with the wider interaction footprint of the LST ingestion case and explains why stronger velocity fluctuations are observed despite the weaker apparent amplitude in the immediate wake as noted in <a class=\"xref fig\" href=\"#f7\">figures 7<\/a>(c) and <a class=\"xref fig\" href=\"#f7\">7<\/a>(f).<\/p>\n<p class=\"p\"> The direct flow field results indicate that the interactions between the propeller and the two cylinder wakes are distinct for the current configuration. In the SST ingestion case, the wake reaches the propeller as a relatively compact disturbance, confined largely to the upper side of the disk, and the resulting perturbation remains correspondingly localised. In contrast, although the local fluctuation amplitude in the immediate upstream wake of the LST ingestion case is lower than in the SST ingestion case because of the greater decay distance, the incoming vortical structures are distributed over a much larger spatial extent when they reach the propeller plane. The sectional vorticity fields show that these structures perturb the upper and lower half-plane of the propeller through the wider redistribution of the wake-induced vorticity. This elucidates why the LST ingestion case produces more elevated velocity fluctuations over a larger portion of the disk, despite appearing weaker than the SST ingestion case in the immediate wake core. The present comparison, therefore, highlights that the propeller response is governed not only by the local amplitude of the incoming wake but by the combined effect of wake scale and spatial footprint at the interaction plane. This interaction is likely to promote significant unsteady loading on the blade, which can lead to an increase in both tonal and broadband components of the propeller noise, which will be further illustrated in the discussion below.<\/p>\n<p>Figure 9.<\/p>\n<p class=\"p\">Profiles of (a,b) normalised mean axial velocity <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline117.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"45\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline117.png\" data-zoomable=\"false\" alt=\"u divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$u\/U_{\\infty }$<\/p>\n<p>; (c,d) normalised mean upwash velocity <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline118.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"44\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline118.png\" data-zoomable=\"false\" alt=\"v divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$v\/U_{\\infty }$<\/p>\n<p>; (e,f) r.m.s. of axial velocity <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline119.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"50\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline119.png\" data-zoomable=\"false\" alt=\"u prime divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$u&#8217;\/U_{\\infty }$<\/p>\n<p>; (g,h) r.m.s. of upwash velocity <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline120.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"49\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline120.png\" data-zoomable=\"false\" alt=\"v prime divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$v&#8217;\/U_{\\infty }$<\/p>\n<p> in the cylinder wake at (a,c,e,g) <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline121.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"35\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline121.png\" data-zoomable=\"false\" alt=\"0.5 upper R\"\/><\/p>\n<p>$0.5R$<\/p>\n<p> and (b,d,f,g) <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline122.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"35\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline122.png\" data-zoomable=\"false\" alt=\"0.1 upper R\"\/><\/p>\n<p>$0.1R$<\/p>\n<p> upstream of the propeller.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig9.png\" class=\"aop-lazy-load-image\" width=\"3810\" height=\"3486\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig9.png\" data-zoomable=\"true\" alt=\"Multiple line graphs depict velocity profiles in a cylinder wake and upstream of a propeller.\"\/><\/p>\n<p>3.1.2. Propeller\u2013cylinder wake characterisation<\/p>\n<p class=\"p\"> The introduction of a propeller in the wake of the turbulent von K\u00e1rm\u00e1n street is representative of a realistic eVTOL design and operation, given the vastly different configurations and inflow conditions these vehicles will experience. It is therefore essential to characterise the effect the cylinders have on the propeller and vice versa. <a class=\"xref fig\" href=\"#f9\">Figure\u00a09<\/a> presents the profiles of mean and r.m.s. velocity at two axial stations upstream of the propeller: <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline123.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"75\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline123.png\" data-zoomable=\"false\" alt=\"x divided by upper R equals 0.5\"\/><\/p>\n<p>$x\/R=0.5$<\/p>\n<p> (<a class=\"xref fig\" href=\"#f9\">figure\u00a09<\/a><br \/>\na,c,e,g) and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline124.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline124.png\" data-zoomable=\"false\" alt=\"x divided by upper R equals 0.1\"\/><\/p>\n<p>$x\/R=0.1$<\/p>\n<p> (<a class=\"xref fig\" href=\"#f9\">figure 9<\/a><br \/>\nb,d,f,h). The normalised mean axial and upwash velocities are plotted in <a class=\"xref fig\" href=\"#f9\">figure\u00a09<\/a>(a\u2013d), whilst the r.m.s. of the axial and upwash velocity fluctuations are plotted in <a class=\"xref fig\" href=\"#f9\">figure\u00a09<\/a><br \/>\n(e\u2013h). For the isolated case, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline125.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"45\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline125.png\" data-zoomable=\"false\" alt=\"u divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$u\/U_\\infty$<\/p>\n<p> is nearly uniform and close to unity, with a symmetric velocity increase due to flow acceleration by the propeller visible at the second station. Upstream turbulence modifies these mean profiles in a way consistent with the characteristics of the cylinder wake. At <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline126.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline126.png\" data-zoomable=\"false\" alt=\"x divided by upper R equals 0.5\"\/><\/p>\n<p>$x\/R=0.5$<\/p>\n<p>, the LST ingestion case exhibits a broader axial deficit <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline127.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"76\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline127.png\" data-zoomable=\"false\" alt=\"u divided by upper U Subscript normal infinity Baseline less than 1\"\/><\/p>\n<p>$u\/U_\\infty \\lt 1$<\/p>\n<p> centred about the midspan, together with a weak upwash profile <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline128.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"44\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline128.png\" data-zoomable=\"false\" alt=\"v divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$v\/U_\\infty$<\/p>\n<p>, indicating the presence of cross-stream momentum associated with large-scale wake structures. The SST ingestion case exhibits a stronger axial distortion with a more localised impact location, with positive and negative values of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline129.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"44\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline129.png\" data-zoomable=\"false\" alt=\"v divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$v\/U_\\infty$<\/p>\n<p>, consistent with well-defined \u2018gust\u2019 eddies. At <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline130.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline130.png\" data-zoomable=\"false\" alt=\"x divided by upper R equals 0.1\"\/><\/p>\n<p>$x\/R=0.1$<\/p>\n<p>, the suction effect of the propeller increases <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline131.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"45\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline131.png\" data-zoomable=\"false\" alt=\"u divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$u\/U_\\infty$<\/p>\n<p> near the hub and flattens the mean velocity profile, but a residual skewness remains for the LST ingestion case, while SST is nearly recovered to the profile shape of the isolated case, with only a small velocity deficit at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline132.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline132.png\" data-zoomable=\"false\" alt=\"y divided by upper R equals 0.5\"\/><\/p>\n<p>$y\/R=0.5$<\/p>\n<p>. The <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline133.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"44\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline133.png\" data-zoomable=\"false\" alt=\"v divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$v\/U_\\infty$<\/p>\n<p> profile shows minor differences between the cases, with only the LST ingestion case exhibiting a lower upwash velocity in the top-half of the propeller disk.<\/p>\n<p class=\"p\"> The results from the velocity r.m.s. show a consistent trend with those observed in the mean profile. In the isolated case, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline134.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"67\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline134.png\" data-zoomable=\"false\" alt=\"u Subscript italic rms Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$u_{\\textit{rms}}\/U_\\infty$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline135.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"65\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline135.png\" data-zoomable=\"false\" alt=\"v Subscript italic rms Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$v_{\\textit{rms}}\/U_\\infty$<\/p>\n<p> do not show any fluctuation upstream of the propeller as expected; however, at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline136.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline136.png\" data-zoomable=\"false\" alt=\"x divided by upper R equals 0.1\"\/><\/p>\n<p>$x\/R=0.1$<\/p>\n<p> the shape closely follows the velocity profiles. With SST ingestion, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline137.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"67\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline137.png\" data-zoomable=\"false\" alt=\"u Subscript italic rms Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$u_{\\textit{rms}}\/U_\\infty$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline138.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"65\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline138.png\" data-zoomable=\"false\" alt=\"v Subscript italic rms Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$v_{\\textit{rms}}\/U_\\infty$<\/p>\n<p> develop distinct peaks that are confined to a narrow band about the wake centre line. These peaks diminish close to the propeller at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline139.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"75\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline139.png\" data-zoomable=\"false\" alt=\"x divided by upper R equals 0.1\"\/><\/p>\n<p>$x\/R=0.1$<\/p>\n<p>, caused by the increase in local velocity due to the propeller, largely alleviating the extent of velocity deficit of the cylinder wake. In the LST ingestion case, the fluctuation profiles are of similar magnitude but broader in <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline140.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"31\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline140.png\" data-zoomable=\"false\" alt=\"y divided by upper R\"\/><\/p>\n<p>$y\/R$<\/p>\n<p>. It is observed that <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline141.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"67\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline141.png\" data-zoomable=\"false\" alt=\"u Subscript italic rms Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$u_{\\textit{rms}}\/U_\\infty$<\/p>\n<p> increases across the top side of the disk, whilst <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline142.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"65\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline142.png\" data-zoomable=\"false\" alt=\"v Subscript italic rms Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$v_{\\textit{rms}}\/U_\\infty$<\/p>\n<p> appears to have a larger effect on <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline143.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"31\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline143.png\" data-zoomable=\"false\" alt=\"y divided by upper R\"\/><\/p>\n<p>$y\/R$<\/p>\n<p>, past the hub location, which implies strong cross-stream unsteadiness carried into the propeller.<\/p>\n<p>Figure 10.<\/p>\n<p class=\"p\">Normalised phase averaged turbulent kinetic energy, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline144.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"70\" height=\"21\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline144.png\" data-zoomable=\"false\" alt=\"normal upper T normal upper K normal upper E divided by upper U Subscript normal infinity Superscript 2\"\/><\/p>\n<p>$\\mathrm{TKE}\/U_{\\infty }^2$<\/p>\n<p>, along the streamwise coordinate <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline145.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline145.png\" data-zoomable=\"false\" alt=\"x divided by upper R\"\/><\/p>\n<p>$x\/R$<\/p>\n<p> for the isolated (a,b), SST (c,d) and LST (e,f) ingestion cases along the top shear layer of the cylinder, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline146.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"183\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline146.png\" data-zoomable=\"false\" alt=\"y divided by upper R equals 0.5 plus left parenthesis d Subscript upper S upper S upper T Baseline comma d Subscript upper L upper S upper T Baseline right parenthesis\"\/><\/p>\n<p>$y\/R = 0.5+(d_{\\mathit{SST}}, d_{\\mathit{LST}})$<\/p>\n<p>, and along the centre line of the cylinder, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline147.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"75\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline147.png\" data-zoomable=\"false\" alt=\"x divided by upper R equals 0.5\"\/><\/p>\n<p>$x\/R=0.5$<\/p>\n<p>. Dashed lines mark the periodic shedding.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig10.png\" class=\"aop-lazy-load-image\" width=\"3892\" height=\"3149\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig10.png\" data-zoomable=\"true\" alt=\"A heat map showing turbulent kinetic energy distribution around a cylinder for different ingestion cases.\"\/><br \/>\nFigure 10. Long description<\/p>\n<p class=\"p\">Panel A: A heat map showing turbulent kinetic energy distribution along the top shear layer of the cylinder for the isolated case. The x-axis represents the streamwise coordinate x\/R, and the y-axis represents the angle \u03c8. The color scale ranges from blue to red, indicating increasing turbulent kinetic energy. Panel B: A heat map showing turbulent kinetic energy distribution along the center line of the cylinder for the isolated case. The x-axis represents the streamwise coordinate x\/R, and the y-axis represents the angle \u03c8. The color scale ranges from blue to red, indicating increasing turbulent kinetic energy. Panel C: A heat map showing turbulent kinetic energy distribution along the top shear layer of the cylinder for the SST ingestion case. The x-axis represents the streamwise coordinate x\/R, and the y-axis represents the angle \u03c8. The color scale ranges from blue to red, indicating increasing turbulent kinetic energy. Dashed lines mark the periodic shedding. Panel D: A heat map showing turbulent kinetic energy distribution along the center line of the cylinder for the SST ingestion case. The x-axis represents the streamwise coordinate x\/R, and the y-axis represents the angle \u03c8. The color scale ranges from blue to red, indicating increasing turbulent kinetic energy. Dashed lines mark the periodic shedding. Panel E: A heat map showing turbulent kinetic energy distribution along the top shear layer of the cylinder for the LST ingestion case. The x-axis represents the streamwise coordinate x\/R, and the y-axis represents the angle \u03c8. The color scale ranges from blue to red, indicating increasing turbulent kinetic energy. Panel F: A heat map showing turbulent kinetic energy distribution along the center line of the cylinder for the LST ingestion case. The x-axis represents the streamwise coordinate x\/R, and the y-axis represents the angle \u03c8. The color scale ranges from blue to red, indicating increasing turbulent kinetic energy.<\/p>\n<p class=\"p\"> Phase-averaging is then performed with the time-series velocity data mapped to the phase angle of the propeller along the propeller azimuth, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline148.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"12\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline148.png\" data-zoomable=\"false\" alt=\"psi\"\/><\/p>\n<p>$\\psi$<\/p>\n<p>, with <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline149.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"50\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline149.png\" data-zoomable=\"false\" alt=\"psi equals 0 Superscript ring\"\/><\/p>\n<p>$\\psi = 0^\\circ$<\/p>\n<p> corresponding to the blades being horizontal, as previously in <a class=\"xref fig\" href=\"#f1\">figure\u00a01<\/a>(b). <a class=\"xref fig\" href=\"#f10\">Figure\u00a010<\/a> shows the normalised phase-averaged turbulent kinetic energy, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline150.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"70\" height=\"21\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline150.png\" data-zoomable=\"false\" alt=\"normal upper T normal upper K normal upper E divided by upper U Subscript normal infinity Superscript 2\"\/><\/p>\n<p>$\\mathrm{TKE}\/U_{\\infty }^2$<\/p>\n<p>, along the streamwise coordinate <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline151.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline151.png\" data-zoomable=\"false\" alt=\"x divided by upper R\"\/><\/p>\n<p>$x\/R$<\/p>\n<p> for the isolated (<a class=\"xref fig\" href=\"#f10\">figure\u00a010<\/a><br \/>\na,b), SST (<a class=\"xref fig\" href=\"#f10\">figure\u00a010<\/a><br \/>\nc,d) and LST (<a class=\"xref fig\" href=\"#f10\">figure\u00a010<\/a><br \/>\ne,f) ingestion cases, respectively. The results are presented at two radial locations: <a class=\"xref fig\" href=\"#f10\">figure\u00a010<\/a><br \/>\n(a,c,e) is along the top shear layer of the cylinder, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline152.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"183\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline152.png\" data-zoomable=\"false\" alt=\"y divided by upper R equals 0.5 plus left parenthesis d Subscript upper S upper S upper T Baseline comma d Subscript upper L upper S upper T Baseline right parenthesis\"\/><\/p>\n<p>$y\/R = 0.5+(d_{\\mathit{SST}}, d_{\\mathit{LST}})$<\/p>\n<p>, respectively, whilst <a class=\"xref fig\" href=\"#f10\">figure\u00a010<\/a>(b,d,f) is along the centre line of the cylinder, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline153.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline153.png\" data-zoomable=\"false\" alt=\"y divided by upper R equals 0.5\"\/><\/p>\n<p>$y\/R = 0.5$<\/p>\n<p>. Regardless of the vertical location (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline154.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"31\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline154.png\" data-zoomable=\"false\" alt=\"y divided by upper R\"\/><\/p>\n<p>$y\/R$<\/p>\n<p>), the isolated case exhibits a steady, low value of turbulent kinetic energy for essentially all phase angles and distances upstream of the propeller plane except the two hot spots at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline155.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"128\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline155.png\" data-zoomable=\"false\" alt=\"psi equals 90 Superscript ring Baseline and 270 Superscript ring\"\/><\/p>\n<p>$\\psi =90^\\circ \\text{ and } 270^\\circ$<\/p>\n<p>, which coincide with the blade passing across the probe lines. <a class=\"xref fig\" href=\"#f10\">Figures 10<\/a>(c) and <a class=\"xref fig\" href=\"#f10\">10<\/a>(d) show that for the SST ingestion case, the same blade-pass features appear close to the propeller plane, and an additional pattern emerges from <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline156.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline156.png\" data-zoomable=\"false\" alt=\"x divided by upper R almost equals 0.5\"\/><\/p>\n<p>$x\/R \\approx 0.5$<\/p>\n<p> upstream. These bands of elevated turbulent kinetic energy slope with <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline157.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"12\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline157.png\" data-zoomable=\"false\" alt=\"psi\"\/><\/p>\n<p>$\\psi$<\/p>\n<p> in a manner consistent with the vortex-shedding frequency of the small cylinder, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline158.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"124\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline158.png\" data-zoomable=\"false\" alt=\"f Subscript 0 comma SST Baseline almost equals 0.5 normal upper B normal upper P normal upper F\"\/><\/p>\n<p>$f_{0,\\textit{ SST}}\\approx {0.5}\\,\\mathrm{BPF}$<\/p>\n<p>, confirming that the propeller is ingesting a coherent von K\u00e1rm\u00e1n vortex street, and more importantly, the turbulent wake is phase-locked to the propeller. Along the wake centre line, these \u2018bands\u2019 are broader, indicating greater turbulence intensity at the vortex cores. In contrast, along the shear layer, the energy is confined to the previously delineated markings. <a class=\"xref fig\" href=\"#f10\">Figures 10<\/a>(e) and <a class=\"xref fig\" href=\"#f10\">10<\/a>(f) show a high turbulent kinetic energy region developing at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline159.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"75\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline159.png\" data-zoomable=\"false\" alt=\"x divided by upper R almost equals 2.5\"\/><\/p>\n<p>$x\/R\\approx 2.5$<\/p>\n<p>, similar to the SST case; however, it is nearly \u2018homogeneously\u2019 increased across phase angle, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline160.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"12\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline160.png\" data-zoomable=\"false\" alt=\"psi\"\/><\/p>\n<p>$\\psi$<\/p>\n<p>, and gradually and monotonically decays monotonically with streamwise distance, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline161.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline161.png\" data-zoomable=\"false\" alt=\"x divided by upper R\"\/><\/p>\n<p>$x\/R$<\/p>\n<p>, albeit on average, remains significantly higher than those of the isolated and SST ingestion cases. This is a consequence of the lower vortex-shedding frequency <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline162.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"125\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline162.png\" data-zoomable=\"false\" alt=\"f Subscript 0 comma LST Baseline almost equals 0.1 normal upper B normal upper P normal upper F\"\/><\/p>\n<p>$f_{0,\\textit{ LST}}\\approx {0.1}\\,\\mathrm{BPF}$<\/p>\n<p> of the large cylinder. Since the propeller completes several revolutions during a single shedding cycle, the phase-averaging captures the \u2018spread\u2019 development due to the lack of synchronisation. The absence of blade-pass hot spots along the top shear layer is due to the vertical offset of the probes, which coincide with <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline163.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"75\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline163.png\" data-zoomable=\"false\" alt=\"y divided by upper R almost equals 0.9\"\/><\/p>\n<p>$y\/R\\approx 0.9$<\/p>\n<p>, where the effect of the blade pass is significantly reduced. The observed behaviour depends on the coupling between the cylinder shedding frequency and the BPF, which is controlled by the propeller rotational speed, the cylinder diameter and the cylinder Reynolds number. Varying the propeller revolutions per minute at fixed cylinder geometry or varying the cylinder diameter and Reynolds number at fixed revolutions per minute would modify the ratio between the shedding frequency and the BPF, and hence the degree of phase-locking, the compactness of the side peaks and the likelihood of haystacking. These parameters are not varied independently in the present work and are identified as important directions for future investigation.<\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f11\">Figure\u00a011<\/a> shows the power spectral density of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline164.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"24\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline164.png\" data-zoomable=\"false\" alt=\"phi Subscript u u\"\/><\/p>\n<p>$\\phi _{uu}$<\/p>\n<p>, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline165.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"24\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline165.png\" data-zoomable=\"false\" alt=\"phi Subscript v v\"\/><\/p>\n<p>$\\phi _{vv}$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline166.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"31\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline166.png\" data-zoomable=\"false\" alt=\"phi Subscript w w\"\/><\/p>\n<p>$\\phi _{ww}$<\/p>\n<p> versus the streamwise coordinate <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline167.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline167.png\" data-zoomable=\"false\" alt=\"x divided by upper R\"\/><\/p>\n<p>$x\/R$<\/p>\n<p> for the SST (<a class=\"xref fig\" href=\"#f11\">figure\u00a011<\/a><br \/>\na\u2013c) and LST (<a class=\"xref fig\" href=\"#f11\">figure\u00a011<\/a><br \/>\nd\u2013f) ingestion cases along the cylinder wake centre line, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline168.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline168.png\" data-zoomable=\"false\" alt=\"y divided by upper R equals 0.5\"\/><\/p>\n<p>$y\/R = 0.5$<\/p>\n<p>. For the SST ingestion case, each velocity component exhibits \u2018tone-like\u2019 narrow peaks at the BPF and its integer harmonics, with its principal maximum occurring at the closest measurement station to the propeller plane (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline169.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"75\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline169.png\" data-zoomable=\"false\" alt=\"x divided by upper R equals 0.1\"\/><\/p>\n<p>$x\/R=0.1$<\/p>\n<p>). The tone remains discernible upstream to <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline170.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline170.png\" data-zoomable=\"false\" alt=\"x divided by upper R almost equals 0.5\"\/><\/p>\n<p>$x\/R\\approx 0.5$<\/p>\n<p>, beyond which it decays as the wake region is characterised by recirculation. Along the centre line, the cylinder vortex shedding at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline171.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"46\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline171.png\" data-zoomable=\"false\" alt=\"f Subscript 0 comma SST\"\/><\/p>\n<p>$f_{0,\\textit{ SST}}$<\/p>\n<p> is not observed and is overwhelmed by the stronger blade-pass effect. Higher harmonics (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline172.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"128\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline172.png\" data-zoomable=\"false\" alt=\"f slash BPF equals 2 comma 3 comma ellipsis\"\/><\/p>\n<p>$f\/\\text{BPF}=2,3,\\ldots$<\/p>\n<p>) are present, but weaken rapidly with both frequency and distance. The cross-stream spectra <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline173.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"24\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline173.png\" data-zoomable=\"false\" alt=\"phi Subscript v v\"\/><\/p>\n<p>$\\phi _{vv}$<\/p>\n<p> exceed <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline174.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"24\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline174.png\" data-zoomable=\"false\" alt=\"phi Subscript u u\"\/><\/p>\n<p>$\\phi _{uu}$<\/p>\n<p>, reflecting the dominance of transverse fluctuations in the near wake and revealing a high level of turbulence, and potentially anisotropy in the flow. For the LST ingestion case shown in <a class=\"xref fig\" href=\"#f11\">figure\u00a011<\/a>(d \u2013f), a broad spectral hump at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline175.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"93\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline175.png\" data-zoomable=\"false\" alt=\"f slash BPF equals 0.1\"\/><\/p>\n<p>$f\/\\text{BPF}=0.1$<\/p>\n<p> can be observed, which corresponds to the shedding frequency of the large cylinder. This low-frequency hump is most prominent in the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline176.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"24\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline176.png\" data-zoomable=\"false\" alt=\"phi Subscript v v\"\/><\/p>\n<p>$\\phi _{vv}$<\/p>\n<p> component and has the highest magnitude downstream of the cylinder, where the wake has fully developed. In contrast with the SST case, the \u2018tone-like\u2019 narrow peaks at the BPF and its harmonics are not quite visible. Moreover, the three velocity components exhibit comparable levels of fluctuation energy, signalling the transition towards isotropic turbulence in the wake of the larger cylinder. Both the phase-averaged velocity and the power spectral density of the velocity fluctuations upstream of the cylinder reveal that there exists a notable flow \u2018phase-locking\u2019 effect between the wake of the small cylinder and the propeller, which is mostly absent for the large cylinder. As a result, the hydrodynamic and acoustic behaviour of the propeller\u2013turbulence interaction is likely to reflect this effect and exhibit distinct characteristics.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig11.png\" class=\"aop-lazy-load-image\" width=\"3994\" height=\"3208\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig11.png\" data-zoomable=\"true\" alt=\"Multiple heatmaps showing surface contours for different ingestion cases.\"\/><\/p>\n<p>Figure 12.<\/p>\n<p class=\"p\">Comparison of normalised length scales <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline182.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"58\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline182.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x Baseline left parenthesis x right parenthesis\"\/><\/p>\n<p>$L_{u,\\,x}(x)$<\/p>\n<p>, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline183.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"58\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline183.png\" data-zoomable=\"false\" alt=\"upper L Subscript v comma x Baseline left parenthesis x right parenthesis\"\/><\/p>\n<p>$L_{v,\\,x}(x)$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline184.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"61\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline184.png\" data-zoomable=\"false\" alt=\"upper L Subscript w comma x Baseline left parenthesis x right parenthesis\"\/><\/p>\n<p>$L_{w,\\,x}(x)$<\/p>\n<p> between the isolated cylinder cases and (a\u2013c) the SST ingestion and (d\u2013f) the LST ingestion cases extracted at three spanwise locations, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline185.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"117\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline185.png\" data-zoomable=\"false\" alt=\"z divided by upper R equals 0 comma 0.5 comma 1\"\/><\/p>\n<p>$z\/R=0,\\, 0.5,\\, 1$<\/p>\n<p>.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig12.png\" class=\"aop-lazy-load-image\" width=\"3982\" height=\"2415\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig12.png\" data-zoomable=\"true\" alt=\"Multiple line graphs compare normalized length scales for isolated cylinder cases and ingestion cases at different spanwise locations.\"\/><br \/>\nFigure 12. Long description<\/p>\n<p class=\"p\">The image contains six line graphs comparing normalized length scales for isolated cylinder cases and ingestion cases at different spanwise locations. Panel A: A line graph shows the normalized length scale Lu,x\/R against x\/R for the isolated cylinder and SST ingestion cases. The x-axis ranges from 0.15 to 0.60, and the y-axis ranges from 0 to 0.15. The legend indicates different spanwise locations with solid, dashed, and dotted lines. Panel B: A line graph shows the normalized length scale Lv,x\/R against x\/R for the isolated cylinder and SST ingestion cases. The x-axis ranges from 0.15 to 0.60, and the y-axis ranges from 0 to 0.15. The legend indicates different spanwise locations with solid, dashed, and dotted lines. Panel C: A line graph shows the normalized length scale Lw,x\/R against x\/R for the isolated cylinder and SST ingestion cases. The x-axis ranges from 0.15 to 0.60, and the y-axis ranges from 0 to 0.15. The legend indicates different spanwise locations with solid, dashed, and dotted lines. Panel D: A line graph shows the normalized length scale Lu,x\/R against x\/R for the isolated cylinder and LST ingestion cases. The x-axis ranges from 0.50 to 2.75, and the y-axis ranges from 0 to 0.15. The legend indicates different spanwise locations with solid, dashed, and dotted lines. Panel E: A line graph shows the normalized length scale Lv,x\/R against x\/R for the isolated cylinder and LST ingestion cases. The x-axis ranges from 0.50 to 2.75, and the y-axis ranges from 0 to 0.15. The legend indicates different spanwise locations with solid, dashed, and dotted lines. Panel F: A line graph shows the normalized length scale Lw,x\/R against x\/R for the isolated cylinder and LST ingestion cases. The x-axis ranges from 0.50 to 2.75, and the y-axis ranges from 0 to 0.15. The legend indicates different spanwise locations with solid, dashed, and dotted lines.<\/p>\n<p>3.1.3. Length scale and convection of the inflow turbulence<\/p>\n<p class=\"p\"> To estimate the size of the turbulent eddies ingested by the propeller and determine the average distance over which velocity fluctuations are correlated, the integral length scales for each component of velocity evaluated along the streamwise direction, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline186.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"200\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline186.png\" data-zoomable=\"false\" alt=\"upper L Subscript i comma x Baseline equals left parenthesis upper L Subscript u comma x Baseline comma upper L Subscript v comma x Baseline comma upper L Subscript w comma x Baseline right parenthesis\"\/><\/p>\n<p>$L_{i,\\,x}=(L_{u,\\,x},\\,L_{v,\\,x},\\,L_{w,\\,x})$<\/p>\n<p>, are calculated based on the following equation (Nicolaides, Honnery\u00a0&amp; Soria <a class=\"xref bibr\" href=\"#ref69\">Reference Nicolaides, Honnery and Soria2004<\/a>):<\/p>\n<p>(3.1)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn6.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"319\" height=\"42\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn6.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row upper L Subscript i comma x Baseline equals upper U overbar integral Subscript 0 Superscript tau Subscript 0 comma i Baseline Baseline rho Subscript i i Baseline left parenthesis tau right parenthesis normal d tau comma i element of StartSet u comma v comma w EndSet comma EndLayout\"\/><\/p>\n<p>\\begin{align} L_{i,\\,x}=\\overline {U}\\int _{0}^{\\tau _{0,\\,i}}\\rho _{ii}(\\tau )\\,\\mathrm{d}\\tau ,\\qquad i\\in \\{u,v,w\\}, \\end{align}<\/p>\n<p class=\"p\"> where <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline187.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"15\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline187.png\" data-zoomable=\"false\" alt=\"upper U overbar\"\/><\/p>\n<p>$\\overline {U}$<\/p>\n<p> is the local mean velocity magnitude, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline188.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"43\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline188.png\" data-zoomable=\"false\" alt=\"rho Subscript i i Baseline left parenthesis tau right parenthesis\"\/><\/p>\n<p>$\\rho _{ii}(\\tau )$<\/p>\n<p> is the normalised autocorrelation of the corresponding fluctuating velocity component and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline189.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"24\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline189.png\" data-zoomable=\"false\" alt=\"tau Subscript 0 comma i\"\/><\/p>\n<p>$\\tau _{0,\\,i}$<\/p>\n<p> denotes the first zero-crossing of the autocorrelation. This provides a measure of the average streamwise distance over which each velocity component remains correlated. <a class=\"xref fig\" href=\"#f12\">Figure\u00a012<\/a> traces the streamwise evolution of the length scales <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline190.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"34\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline190.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x\"\/><\/p>\n<p>$L_{u,\\,x}$<\/p>\n<p>, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline191.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"34\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline191.png\" data-zoomable=\"false\" alt=\"upper L Subscript v comma x\"\/><\/p>\n<p>$L_{v,\\,x}$<\/p>\n<p>, and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline192.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"37\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline192.png\" data-zoomable=\"false\" alt=\"upper L Subscript w comma x\"\/><\/p>\n<p>$L_{w,\\,x}$<\/p>\n<p> normalised by the propeller radius <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline193.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"12\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline193.png\" data-zoomable=\"false\" alt=\"upper R\"\/><\/p>\n<p>$R$<\/p>\n<p> for three spanwise locations (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline194.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"117\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline194.png\" data-zoomable=\"false\" alt=\"z divided by upper R equals 0 comma 0.5 comma 1\"\/><\/p>\n<p>$z\/R=0,\\,0.5,\\,1$<\/p>\n<p>) of both the SST (<a class=\"xref fig\" href=\"#f12\">figure\u00a012<\/a><br \/>\na\u2013c) and LST (<a class=\"xref fig\" href=\"#f12\">figure\u00a012<\/a><br \/>\nd\u2013f) ingestion cases upstream of the plane of rotation. The results for the isolated cylinder cases are overlaid on the installed cases for comparison, extracted as a mean over five spanwise locations in the wake of the cylinders. For the SST case (<a class=\"xref fig\" href=\"#f12\">figure\u00a012<\/a><br \/>\na,c,e), the length scales of all three velocity components remain small and exhibit an overall increasing trend as the turbulent eddies are convected downstream, with values <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline195.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"97\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline195.png\" data-zoomable=\"false\" alt=\"upper L Subscript i comma x Baseline less than 0.02 upper R\"\/><\/p>\n<p>$L_{i,\\,x}\\lt 0.02R$<\/p>\n<p> in the wake. A small rise in <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline196.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"34\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline196.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x\"\/><\/p>\n<p>$L_{u,\\,x}$<\/p>\n<p> to <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline197.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"60\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline197.png\" data-zoomable=\"false\" alt=\"almost equals 0.05 upper R\"\/><\/p>\n<p>$\\approx 0.05R$<\/p>\n<p> between <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline198.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline198.png\" data-zoomable=\"false\" alt=\"x divided by upper R equals 0.3\"\/><\/p>\n<p>$x\/R=0.3$<\/p>\n<p> and the propeller plane is observed towards the blade tip (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline199.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"60\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline199.png\" data-zoomable=\"false\" alt=\"z divided by upper R equals 1\"\/><\/p>\n<p>$z\/R=1$<\/p>\n<p>), where the blades largely distort the flow. The transverse and spanwise length scales, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline200.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"34\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline200.png\" data-zoomable=\"false\" alt=\"upper L Subscript v comma x\"\/><\/p>\n<p>$L_{v,\\,x}$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline201.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"37\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline201.png\" data-zoomable=\"false\" alt=\"upper L Subscript w comma x\"\/><\/p>\n<p>$L_{w,\\,x}$<\/p>\n<p>, exhibit only minor variations along the span. Comparison with the isolated-cylinder case shows that the SST integral length scales remain similar in magnitude, indicating that the propeller does not substantially alter the characteristic correlation scale of the compact structures before ingestion. Rather, the primary effect appears to be local distortion of small-scale eddies, largely distorted by the blade tip, which produce predominantly tonal noise through periodic tip\u2013vortex interactions (Gonzalez-Martino et\u00a0al. <a class=\"xref bibr\" href=\"#ref33\">Reference Gonzalez-Martino, Romani, Wang and Casalino2018<\/a>). This observation aligns closely with the far-field spectra presented in <a class=\"xref fig\" href=\"#f6\">figure\u00a06<\/a>(b), where a number of distinct tones in the midfrequency range were observed for the SST ingestion case. In fact, the sizes of the turbulent eddies are generally less than 3 % of the blade radius, and their interaction with the propeller is primarily coupled through \u2018locked\u2019 temporal coherence rather than size, as seen in <a class=\"xref fig\" href=\"#f10\">figures 10<\/a> and <a class=\"xref fig\" href=\"#f11\">11<\/a>. In contrast, the LST ingestion case (<a class=\"xref fig\" href=\"#f12\">figure\u00a012<\/a><br \/>\nb,d,f) contains much larger structures as well as a wider spread of length scales between the different spanwise locations. Here <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline202.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"34\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline202.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x\"\/><\/p>\n<p>$L_{u,\\,x}$<\/p>\n<p> shows a constant growth up to very close to the propeller plane, reaching <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline203.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"43\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline203.png\" data-zoomable=\"false\" alt=\"0.12 upper R\"\/><\/p>\n<p>$0.12R$<\/p>\n<p>. In this case, comparison with the isolated cylinder shows a more pronounced deviation, indicating that the presence of the propeller alters the correlation scale of the incoming large structures more substantially than in the SST case. This suggests that the propeller actively stretches the incoming coherent structures as they approach the blades, as it has been observed in <a class=\"xref fig\" href=\"#f8\">figure\u00a08<\/a>. Interestingly, The spanwise variations of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline204.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"34\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline204.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x\"\/><\/p>\n<p>$L_{u,\\,x}$<\/p>\n<p> reveal an interesting development: the trend is opposite to that of the SST case (e.g. compare <a class=\"xref fig\" href=\"#f12\">figures 12<\/a><br \/>\na and <a class=\"xref fig\" href=\"#f12\">12<\/a><br \/>\nd), which the length scale is the smallest at the blade tip location (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline205.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"60\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline205.png\" data-zoomable=\"false\" alt=\"z divided by upper R equals 1\"\/><\/p>\n<p>$z\/R=1$<\/p>\n<p>), suggesting that interacting with the blade tip results in a breakdown of the turbulent eddies, rather than a growth of the length scale possibly through vortex-stretching. The same trend is observed in <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline206.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"34\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline206.png\" data-zoomable=\"false\" alt=\"upper L Subscript v comma x\"\/><\/p>\n<p>$L_{v,\\,x}$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline207.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"37\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline207.png\" data-zoomable=\"false\" alt=\"upper L Subscript w comma x\"\/><\/p>\n<p>$L_{w,\\,x}$<\/p>\n<p>, though the length scales are slightly smaller and diverge less along the spanwise direction. For the LST ingestion, the sizes of the eddies are generally less than 12 % of the blade radius at the ingestion plane, approximately four times that of the SST ingestion case. The presence of large turbulent structures, the spatial extent and nature of their interaction (e.g. stretching and breakdown at different locations of the blade) could yield significant aerodynamic loading fluctuations on the blades of more broadband nature, consistent with the broadband increase as well as the presence of clear haystacking hump observed in far-field spectra as shown in <a class=\"xref fig\" href=\"#f6\">figure\u00a06<\/a>(c). These results are in agreement with previous work by Molinaro et\u00a0al. (<a class=\"xref bibr\" href=\"#ref65\">Reference Molinaro, Balantrapu, Hickling, Alexander, Devenport and Glegg2017<\/a>) and Kankanwadi\u00a0&amp; Buxton (<a class=\"xref bibr\" href=\"#ref51\">Reference Kankanwadi and Buxton2023<\/a>), and highlight a fundamental shift in the turbulence\u2013blade interaction mechanism governed by the spatial scales of the incoming turbulence.<\/p>\n<p class=\"p\"> To relate the measured turbulence length scales of the inflow to the unsteady loading of the propeller, the local convection velocity at the ingestion plane, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline208.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"18\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline208.png\" data-zoomable=\"false\" alt=\"upper U Subscript c\"\/><\/p>\n<p>$U_{c}$<\/p>\n<p>, was estimated using the probes in the wake of the cylinder aligned with the free stream. For each pair of consecutive probe locations, denoted by subscripts <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline209.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"8\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline209.png\" data-zoomable=\"false\" alt=\"j\"\/><\/p>\n<p>$j$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline210.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"39\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline210.png\" data-zoomable=\"false\" alt=\"j plus 1\"\/><\/p>\n<p>$j+1$<\/p>\n<p>, the time-series data were bandpass filtered around the cylinder shedding frequency, and the time lag, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline211.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"45\" height=\"23\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline211.png\" data-zoomable=\"false\" alt=\"tau Subscript j comma j plus 1 Superscript asterisk\"\/><\/p>\n<p>$\\tau ^*_{j,\\,j+1}$<\/p>\n<p>, was obtained from a band-limited generalised cross-correlation with phase transform weighting (Romano <a class=\"xref bibr\" href=\"#ref80\">Reference Romano1995<\/a>; Wallace <a class=\"xref bibr\" href=\"#ref99\">Reference Wallace2014<\/a>). The weighting used normalises the cross-spectrum by its magnitude, emphasising phase agreement rather than signal amplitude. This results in the delay estimate being more robust to differences in fluctuation level between probes and to broadband contamination unrelated to the dominant convecting wake structures. Since the computation is restricted to a narrow band around the cylinder shedding frequency, the resulting delay is associated primarily with the convection of the shedding-related wake structures. The baseline estimate is then given by<\/p>\n<p>(3.2)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn7.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"116\" height=\"47\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn7.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row upper U Subscript c comma j Baseline equals StartFraction normal upper Delta x Subscript j Baseline Over tau Subscript j comma j plus 1 Superscript asterisk Baseline EndFraction period EndLayout\"\/><\/p>\n<p>\\begin{align} U_{c,\\, j} \\;=\\; \\frac {\\Delta x_j}{\\tau ^*_{j,\\,j+1}}. \\end{align}<\/p>\n<p class=\"p\"> The convection velocity at the ingestion plane is then calculated as <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline212.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"139\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline212.png\" data-zoomable=\"false\" alt=\"upper U Subscript c Baseline equals normal m normal e normal d normal i normal a normal n StartSet upper U Subscript c comma j Baseline EndSet\"\/><\/p>\n<p>$U_{c} = \\mathrm{median}\\{U_{c,\\, j}\\}$<\/p>\n<p>, giving a value which is robust to spurious delays and heavy-tailed scatter (Knapp\u00a0&amp; Carter <a class=\"xref bibr\" href=\"#ref54\">Reference Knapp and Carter1976<\/a>). When applied to the SST and LST ingestion cases, this procedure yields <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline213.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"54\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline213.png\" data-zoomable=\"false\" alt=\"upper U Subscript c Baseline divided by upper U Subscript normal infinity\"\/><\/p>\n<p>$U_c\/U_\\infty$<\/p>\n<p> values of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline214.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"29\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline214.png\" data-zoomable=\"false\" alt=\"1.15\"\/><\/p>\n<p>$1.15$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline215.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"31\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline215.png\" data-zoomable=\"false\" alt=\"1.04\"\/><\/p>\n<p>$1.04$<\/p>\n<p>, respectively, consistent with axial acceleration into the propeller disk. For the SST ingestion case, taking a maximum of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline216.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"109\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline216.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x Baseline divided by upper R equals 0.05\"\/><\/p>\n<p>$L_{u,\\,x}\/R = 0.05$<\/p>\n<p>, the time taken for the eddy to be convected past the blade is approximately <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline217.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"47\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline217.png\" data-zoomable=\"false\" alt=\"0.5 normal m normal s\"\/><\/p>\n<p>${0.5}\\,\\mathrm{ms}$<\/p>\n<p>, which is notably shorter than the time for the two blades to consecutively cut through a given azimuthal location, approximately <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline218.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"47\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline218.png\" data-zoomable=\"false\" alt=\"3.7 normal m normal s\"\/><\/p>\n<p>${3.7}\\,\\mathrm{ms}$<\/p>\n<p>.<\/p>\n<p class=\"p\"> A further flow analysis follows the classical gust-response approach (Amiet <a class=\"xref bibr\" href=\"#ref4\">Reference Amiet1975<\/a>) through evaluating the convective Strouhal number, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline219.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline219.png\" data-zoomable=\"false\" alt=\"upper S t Subscript c\"\/><\/p>\n<p>$St_c$<\/p>\n<p>, which is given by<\/p>\n<p>(3.3)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn8.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"114\" height=\"37\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn8.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row upper S t Subscript c Baseline equals StartFraction upper U Subscript c Baseline divided by upper L Subscript u comma x Baseline Over normal upper B normal upper P normal upper F EndFraction comma EndLayout\"\/><\/p>\n<p>\\begin{align} St_c=\\frac {U_c\/L_{u,\\,x}}{\\mathrm{BPF}}, \\end{align}<\/p>\n<p class=\"p\"> where <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline220.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"18\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline220.png\" data-zoomable=\"false\" alt=\"upper U Subscript c\"\/><\/p>\n<p>$U_c$<\/p>\n<p> is the convective velocity and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline221.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"34\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline221.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x\"\/><\/p>\n<p>$L_{u,\\,x}$<\/p>\n<p> is the streamwise turbulent length scale at the ingestion plane obtained from (<a class=\"xref disp-formula\" href=\"#disp6\">3.1<\/a>). The convective Strouhal number, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline222.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline222.png\" data-zoomable=\"false\" alt=\"upper S t Subscript c\"\/><\/p>\n<p>$St_c$<\/p>\n<p>, compares the convective rate of the turbulence, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline223.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"18\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline223.png\" data-zoomable=\"false\" alt=\"upper U Subscript c\"\/><\/p>\n<p>$U_c$<\/p>\n<p>, with the blade-passing rate, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline224.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"34\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline224.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x\"\/><\/p>\n<p>$L_{u,\\,x}$<\/p>\n<p>. Large <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline225.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline225.png\" data-zoomable=\"false\" alt=\"upper S t Subscript c\"\/><\/p>\n<p>$St_c$<\/p>\n<p> indicates that the turbulence seen by a blade section varies rapidly within a blade-pass interval, favouring \u2018tone-like\u2019 response, whilst a small value of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline226.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline226.png\" data-zoomable=\"false\" alt=\"upper S t Subscript c\"\/><\/p>\n<p>$St_c$<\/p>\n<p> indicates slowly varying eddies over a blade passage and is associated with tone broadening (Homicz\u00a0&amp; George <a class=\"xref bibr\" href=\"#ref45\">Reference Homicz and George1974<\/a>). In the present work, the SST ingestion case yields <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline227.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"66\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline227.png\" data-zoomable=\"false\" alt=\"upper S t Subscript c Baseline asymptotically equals 7.9\"\/><\/p>\n<p>$St_c\\simeq 7.9$<\/p>\n<p> (taking <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline228.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"100\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline228.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x Baseline equals 0.05 upper R\"\/><\/p>\n<p>$L_{u,\\,x} = 0.05R$<\/p>\n<p>), consistent with interactions with relatively small eddies; the LST ingestion case gives <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline229.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"74\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline229.png\" data-zoomable=\"false\" alt=\"upper S t Subscript c Baseline asymptotically equals 1.64\"\/><\/p>\n<p>$St_c\\simeq 1.64$<\/p>\n<p> (taking <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline230.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"100\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline230.png\" data-zoomable=\"false\" alt=\"upper L Subscript u comma x Baseline equals 0.15 upper R\"\/><\/p>\n<p>$L_{u,\\,x} = 0.15R$<\/p>\n<p>), consistent with the blade response to slowly varying eddies.<\/p>\n<p class=\"p\"> Following this analysis, it can be concluded that for the SST ingestion case, the majority of the incoming turbulent eddies pass through the propeller plane without interacting multiple times with the blades, resulting clearly in a \u2018phase-locked\u2019 behaviour, modulating the periodic motion of blade passes. In contrast, in the LST ingestion case, the much larger turbulent eddies can potentially interact multiple times with the blades, giving rise to more complex and stochastic processes, centred around the periodic blade motion.<\/p>\n<p>3.1.4. Blade-level analysis \u2013 unsteady sectional forces<\/p>\n<p class=\"p\"> To shed further light on the turbulence interaction and understand the mechanism for noise generation, it is essential to conduct a blade-level analysis. This includes the unsteady lift experienced by the blades as well as identifying the noise sources from blade-level information, such as pressure fluctuations and blade-to-blade correlation.<\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f13\">Figure\u00a013<\/a> shows the phase-dependent thrust coefficient, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline231.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"49\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline231.png\" data-zoomable=\"false\" alt=\"upper C Subscript upper T Baseline left parenthesis psi right parenthesis\"\/><\/p>\n<p>$C_T(\\psi )$<\/p>\n<p>, calculated from a single propeller blade for the isolated, SST and LST ingestion cases, extracted over all 40 revolutions. Plotting the time-varying <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline232.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline232.png\" data-zoomable=\"false\" alt=\"upper C Subscript upper T\"\/><\/p>\n<p>$C_T$<\/p>\n<p> as a function of phase angle, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline233.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"12\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline233.png\" data-zoomable=\"false\" alt=\"psi\"\/><\/p>\n<p>$\\psi$<\/p>\n<p>, allows for the visualisation of the turbulence interaction and the extent to which it affects the thrust. For the isolated case shown in <a class=\"xref fig\" href=\"#f13\">figure\u00a013<\/a>(a), the thrust coefficient appears to be steady with a level around 0.045 for all phase angles. A similar level is observed in the SST ingestion case in <a class=\"xref fig\" href=\"#f13\">figure\u00a013<\/a>(b), with narrow fluctuations observed as the blade passes through the turbulent wake region. This effect can be observed in the shaded region between the angles of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline234.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"58\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline234.png\" data-zoomable=\"false\" alt=\"psi equals 15 Superscript ring\"\/><\/p>\n<p>$\\psi = {15}^\\circ$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline235.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"65\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline235.png\" data-zoomable=\"false\" alt=\"psi equals 175 Superscript ring\"\/><\/p>\n<p>$\\psi = {175}^\\circ$<\/p>\n<p>, with a trough at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline236.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"59\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline236.png\" data-zoomable=\"false\" alt=\"psi equals 90 Superscript ring\"\/><\/p>\n<p>$\\psi = {90}^\\circ$<\/p>\n<p>. This aligns with the confined region of interaction observed in <a class=\"xref fig\" href=\"#f8\">figure\u00a08<\/a>. The thrust coefficient measured for these angles is within <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline237.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"47\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline237.png\" data-zoomable=\"false\" alt=\"plus or minus 10 percent sign\"\/><\/p>\n<p>$\\pm 10\\,\\%$<\/p>\n<p> of the average <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline238.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline238.png\" data-zoomable=\"false\" alt=\"upper C Subscript upper T\"\/><\/p>\n<p>$C_T$<\/p>\n<p>. However, the LST ingestion case shown in <a class=\"xref fig\" href=\"#f13\">figure\u00a013<\/a>(c) reveals much stronger variations with reference to blade phase, exhibiting large fluctuations of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline239.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"48\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline239.png\" data-zoomable=\"false\" alt=\"plus or minus 30 percent sign\"\/><\/p>\n<p>$\\pm 30\\,\\%$<\/p>\n<p> of the mean <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline240.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline240.png\" data-zoomable=\"false\" alt=\"upper C Subscript upper T\"\/><\/p>\n<p>$C_T$<\/p>\n<p>, and thus <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline241.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline241.png\" data-zoomable=\"false\" alt=\"upper C Subscript upper T\"\/><\/p>\n<p>$C_T$<\/p>\n<p> becomes highly phase-dependent. The shaded region is extended to encompass the angles between <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline242.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"68\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline242.png\" data-zoomable=\"false\" alt=\"psi equals 300 Superscript ring\"\/><\/p>\n<p>$\\psi = {300}^\\circ$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline243.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"68\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline243.png\" data-zoomable=\"false\" alt=\"psi equals 240 Superscript ring\"\/><\/p>\n<p>$\\psi = {240}^\\circ$<\/p>\n<p> as shown in the figure. This region reflects the constant interaction between the blade and the large-scale turbulent structures present in the inflow, as identified in <a class=\"xref fig\" href=\"#f8\">figures 8<\/a> and <a class=\"xref fig\" href=\"#f7\">7<\/a>. Unlike the SST ingestion case, the LST ingestion case produces thrust perturbations that are distributed over a larger portion of the blade\u2019s rotation. The unsteady loading variations of 10 % and 30 % are approximately proportional to the differences in the upwash velocity r.m.s. and turbulent length scales between the two cases at the propeller planes, providing a direct link between the nature of the incoming turbulence, the unsteady aerodynamic loading on the blades, and later the spectral characteristics of the radiated noise.<\/p>\n<p>Figure 13.<\/p>\n<p class=\"p\">Phase-dependent thrust coefficient <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline244.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"49\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline244.png\" data-zoomable=\"false\" alt=\"upper C Subscript upper T Baseline left parenthesis psi right parenthesis\"\/><\/p>\n<p>$C_T(\\psi )$<\/p>\n<p> of a singular blade for (a) isolated, (b) SST ingestion and (c) LST ingestion cases. The shaded area signifies the turbulence interaction region.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig13.png\" class=\"aop-lazy-load-image\" width=\"3937\" height=\"1466\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig13.png\" data-zoomable=\"true\" alt=\"Three polar plots showing thrust coefficient variations for different cases.\"\/><\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f14\">Figure\u00a014<\/a> presents the power spectral density of the total propeller thrust for the isolated, SST ingestion and LST ingestion cases with marked <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline245.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"110\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline245.png\" data-zoomable=\"false\" alt=\"f equals BPF minus n f 0\"\/><\/p>\n<p>$f=\\text{BPF}- nf_{0}$<\/p>\n<p> (dashed line) and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline246.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"110\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline246.png\" data-zoomable=\"false\" alt=\"f equals BPF plus n f 0\"\/><\/p>\n<p>$f= \\text{BPF}+ nf_{0}$<\/p>\n<p> (solid line) for <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline247.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"82\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline247.png\" data-zoomable=\"false\" alt=\"n equals 1 comma 2 comma 3\"\/><\/p>\n<p>$n=1,\\,2,\\,3$<\/p>\n<p>. In the isolated propeller configuration, the spectrum exhibits no discernible tone at the BPF, with levels at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline248.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"79\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline248.png\" data-zoomable=\"false\" alt=\"f slash BPF equals 1\"\/><\/p>\n<p>$f\/\\text{BPF}=1$<\/p>\n<p> lying below the neighbouring harmonics. This is due to the \u2018total\u2019 thrust being fundamentally steady with respect to the blade-passing frequency. The SST ingestion case shows a similar lack of BPF energy, despite the presence of inflow turbulence and imbalance in the blade loading. However, the length scales were observed to remain below 5 % of the blade radius (see <a class=\"xref fig\" href=\"#f12\">figure\u00a012<\/a>), resulting in the induced unsteady loading remaining largely blade-local between opposed azimuthal positions. In addition, clear tones appearing at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline249.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"139\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline249.png\" data-zoomable=\"false\" alt=\"f almost equals BPF plus n f Subscript 0 comma SST Baseline\"\/><\/p>\n<p>$f\\approx \\text{BPF}+ nf_{0,\\textit{ SST}}$<\/p>\n<p> can be observed as marked in the figure, with subsequent harmonics at multiples of these frequencies (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline250.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"91\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline250.png\" data-zoomable=\"false\" alt=\"m normal upper B normal upper P normal upper F plus or minus n f 0\"\/><\/p>\n<p>$m\\mathrm{BPF}\\pm nf_0$<\/p>\n<p>). The combination of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline251.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"13\" height=\"8\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline251.png\" data-zoomable=\"false\" alt=\"m\"\/><\/p>\n<p>$m$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline252.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"9\" height=\"8\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline252.png\" data-zoomable=\"false\" alt=\"n\"\/><\/p>\n<p>$n$<\/p>\n<p> creates several overlapping tones, resulting in the comb-like structure in the midfrequency range observed in the SST ingestion case. Since <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline253.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"128\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline253.png\" data-zoomable=\"false\" alt=\"f Subscript 0 comma SST Baseline divided by normal upper B normal upper P normal upper F almost equals 0.5\"\/><\/p>\n<p>$f_{0,\\textit{ SST}}\/\\mathrm{BPF}\\approx 0.5$<\/p>\n<p>, these modulation tones fall at integer and half-integer multiples of the BPF, which results in the appearance of multipeak tones at 2, 2.5, 3, 3.5 and higher frequencies. In contrast, the LST ingestion spectrum contains side peaks at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline254.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"140\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline254.png\" data-zoomable=\"false\" alt=\"f almost equals BPF plus or minus n f Subscript 0 comma LST Baseline\"\/><\/p>\n<p>$f\\approx \\text{BPF}\\pm nf_{0,\\textit{ LST}}$<\/p>\n<p>, which fall within the broad hump centred on the BPF, consistent with the haystacking-like broadening observed in the far-field spectra. It can be noted that each of the marked <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline255.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"108\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline255.png\" data-zoomable=\"false\" alt=\"normal upper B normal upper P normal upper F plus or minus n f Subscript 0 comma LST\"\/><\/p>\n<p>$\\mathrm{BPF}\\pm nf_{0,\\textit{ LST}}$<\/p>\n<p> frequencies is coincident with a narrow tone within the hump. These arise when LST wake flow structures, with a large integral length scale, impose simultaneous loading variations across the two blades. As the blades cut through spatially and temporally correlated structures, it allows energy at these specific frequencies to show in the spectrum. Further harmonics are displayed as humps around the multiples of the BPF. This correlated interaction between blades and large turbulent structures is a known mechanism for enhancing broadband noise generation (Brooks et\u00a0al. <a class=\"xref bibr\" href=\"#ref11\">Reference Brooks, Pope and Marcolini1989<\/a>; Jamaluddin et\u00a0al. <a class=\"xref bibr\" href=\"#ref49\">Reference Jamaluddin, Celik, Baskaran, Rezgui and Azarpeyvand2023<\/a>; Raposo\u00a0&amp; Azarpeyvand <a class=\"xref bibr\" href=\"#ref74\">Reference Raposo and Azarpeyvand2024<\/a>), as observed beyond <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline256.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"93\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline256.png\" data-zoomable=\"false\" alt=\"f slash BPF greater than 1.5\"\/><\/p>\n<p>$f\/\\text{BPF}\\gt 1.5$<\/p>\n<p>.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig14.png\" class=\"aop-lazy-load-image\" width=\"3203\" height=\"1339\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig14.png\" data-zoomable=\"true\" alt=\"A line graph comparing power spectral density of thrust for isolated, SST ingestion, and LST ingestion cases.\"\/><\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f15\">Figure\u00a015<\/a> maps the phase-averaged r.m.s. of blade surface pressure fluctuation, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline261.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"100\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline261.png\" data-zoomable=\"false\" alt=\"p Subscript r m s Baseline left parenthesis psi comma r divided by upper R right parenthesis\"\/><\/p>\n<p>$p_{\\mathit{rms}}(\\psi ,\\,r\/R)$<\/p>\n<p>, normalised by the tip dynamic pressure <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline262.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"145\" height=\"25\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline262.png\" data-zoomable=\"false\" alt=\"p Subscript r m s Superscript asterisk Baseline equals p Subscript r m s Baseline divided by left parenthesis rho upper U Subscript t i p Superscript 2 Baseline right parenthesis\"\/><\/p>\n<p>$p_{\\mathit{rms}}^*=p_{\\mathit{rms}}\/(\\rho U_{\\mathit{tip}}^2)$<\/p>\n<p> for the isolated, SST and LST ingestion cases. As there is no disturbance introduced for the isolated case, the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline263.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"31\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline263.png\" data-zoomable=\"false\" alt=\"p Subscript r m s Superscript asterisk\"\/><\/p>\n<p>$p_{\\mathit{rms}}^*$<\/p>\n<p> contour map is essentially identical at each azimuthal position, with narrow footprints appearing in the midspan of the blade. With SST ingestion, shown in <a class=\"xref fig\" href=\"#f15\">figure\u00a015<\/a>(b), the result shows a significant difference in <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline264.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline264.png\" data-zoomable=\"false\" alt=\"p Subscript r m s\"\/><\/p>\n<p>$p_{\\mathit{rms}}$<\/p>\n<p>, with the leading edge (LE) of the blade experiencing larger pressure fluctuations as it moves from <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline265.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"59\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline265.png\" data-zoomable=\"false\" alt=\"psi equals 30 Superscript ring\"\/><\/p>\n<p>$\\psi =30^\\circ$<\/p>\n<p> to <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline266.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"67\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline266.png\" data-zoomable=\"false\" alt=\"psi equals 150 Superscript ring\"\/><\/p>\n<p>$\\psi =150^\\circ$<\/p>\n<p>. The radial location of the effect of turbulence ingestion migrates, producing alternating hot spots that are not locked to a single sector and result in a larger area of the blade having high fluctuations. The azimuthal effect is, however, restricted to the region directly in the wake of the cylinder. For LST ingestion, shown in <a class=\"xref fig\" href=\"#f15\">figure\u00a015<\/a>(c), the azimuthal angles affected increase as also observed previously in <a class=\"xref fig\" href=\"#f13\">figure\u00a013<\/a>. The fluctuations appear to involve most of the blade area, with the most significant fluctuations located towards the LE, TE and the blade tip, while the root region remains relatively undisturbed. Zooming into the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline267.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"31\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline267.png\" data-zoomable=\"false\" alt=\"p Subscript r m s Superscript asterisk\"\/><\/p>\n<p>$p_{\\mathit{rms}}^*$<\/p>\n<p> at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline268.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"58\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline268.png\" data-zoomable=\"false\" alt=\"psi equals 10 Superscript ring\"\/><\/p>\n<p>$\\psi =10^\\circ$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline269.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline269.png\" data-zoomable=\"false\" alt=\"180 Superscript ring\"\/><\/p>\n<p>$180^\\circ$<\/p>\n<p>, which represent one revolution of the \u2018two-bladed\u2019 propeller, both the isolated and SST ingestion cases show similar behaviour with no significant fluctuations at the LE. On the contrary, the LST ingestion case exhibits an intense level of fluctuations at the LE with comparable patterns, suggesting that the interaction between the two \u2018consecutive\u2019 blades is likely to remain correlated, reaffirming the fact that the turbulent structures in the LST ingestion case can potentially interact multiple times with blades as it is convected downstream.<\/p>\n<p class=\"p\"> To quantify the footprint of the turbulence\u2013blade interaction, a turbulence-interaction area <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline270.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"29\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline270.png\" data-zoomable=\"false\" alt=\"upper A Subscript upper T upper I\"\/><\/p>\n<p>$A_{TI}$<\/p>\n<p> fraction is defined as<\/p>\n<p>(3.4)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn9.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"311\" height=\"44\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn9.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row upper A Subscript upper T upper I Baseline equals StartFraction 1 Over upper A Subscript b Baseline EndFraction integral Subscript 0 Superscript 2 pi Baseline integral Subscript 0 Superscript upper R Baseline upper H left parenthesis p Subscript r m s Superscript asterisk Baseline minus p Superscript asterisk Baseline right parenthesis r normal d r normal d psi comma EndLayout\"\/><\/p>\n<p>\\begin{align} A_{TI}=\\frac {1}{A_b}\\int ^{2\\pi }_0\\int ^R_0H(p^*_{\\mathit{rms}}-p^*)r\\,\\mathrm{d}r\\,\\mathrm{d}\\psi , \\end{align}<\/p>\n<p class=\"p\"> where <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline271.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"19\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline271.png\" data-zoomable=\"false\" alt=\"upper A Subscript b\"\/><\/p>\n<p>$A_b$<\/p>\n<p> is the blade disk area, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline272.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"35\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline272.png\" data-zoomable=\"false\" alt=\"upper H left parenthesis bold dot right parenthesis\"\/><\/p>\n<p>$H(\\boldsymbol{\\cdot })$<\/p>\n<p> is the Heaviside function and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline273.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"18\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline273.png\" data-zoomable=\"false\" alt=\"p Superscript asterisk\"\/><\/p>\n<p>$p^*$<\/p>\n<p> is a reference threshold chosen as <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline274.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"54\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline274.png\" data-zoomable=\"false\" alt=\"0.9 p Subscript r m s Superscript asterisk\"\/><\/p>\n<p>$0.9p_{\\mathit{rms}}^*$<\/p>\n<p>. Consistent with the results displayed in <a class=\"xref fig\" href=\"#f15\">figure\u00a015<\/a>, the results show <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline275.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"349\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline275.png\" data-zoomable=\"false\" alt=\"upper A Subscript upper T upper I comma upper L upper S upper T Baseline left parenthesis 0.6 right parenthesis greater than upper A Subscript upper T upper I comma upper S upper S upper T Baseline left parenthesis 0.4 right parenthesis much greater than upper A Subscript upper T upper I comma i s o l Baseline left parenthesis 0.05 right parenthesis\"\/><\/p>\n<p>$A_{TI,\\mathit{\\,LST}}\\,(0.6)\\gt A_{TI,\\mathit{\\,SST}}\\,(0.4)\\gg A_{TI,\\mathit{\\,isol}}\\,(0.05)$<\/p>\n<p>, with the largest increase from SST ingestion to LST ingestion arising from the large wake size as shown in <a class=\"xref fig\" href=\"#f7\">figure\u00a07<\/a>(c).<\/p>\n<p>Figure 15.<\/p>\n<p class=\"p\">Phase-averaged r.m.s. of pressure fluctuation <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline276.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"145\" height=\"25\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline276.png\" data-zoomable=\"false\" alt=\"p Subscript r m s Superscript asterisk Baseline equals p Subscript r m s Baseline divided by left parenthesis rho upper U Subscript t i p Superscript 2 Baseline right parenthesis\"\/><\/p>\n<p>$p_{\\mathit{rms}}^*=p_{\\mathit{rms}}\/(\\rho U_{\\mathit{tip}}^2)$<\/p>\n<p> for (a) the isolated, (b) SST ingestion and (c) LST ingestion cases. The shaded area represents the cylinder with respect to the propeller disk.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig15.png\" class=\"aop-lazy-load-image\" width=\"3973\" height=\"1841\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig15.png\" data-zoomable=\"true\" alt=\"Heat maps showing pressure fluctuation for isolated, SST ingestion, and LST ingestion cases.\"\/><\/p>\n<p class=\"p\"> Taken together, the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline277.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"49\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline277.png\" data-zoomable=\"false\" alt=\"upper C Subscript upper T Baseline left parenthesis psi right parenthesis\"\/><\/p>\n<p>$C_T(\\psi )$<\/p>\n<p>, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline278.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"56\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline278.png\" data-zoomable=\"false\" alt=\"phi Subscript upper T upper T Baseline left parenthesis f right parenthesis\"\/><\/p>\n<p>$\\phi _{TT}(f)$<\/p>\n<p>, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline279.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"68\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline279.png\" data-zoomable=\"false\" alt=\"upper C Subscript upper T Baseline left parenthesis r comma psi right parenthesis\"\/><\/p>\n<p>$C_T(r,\\,\\psi )$<\/p>\n<p> and the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline280.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"84\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline280.png\" data-zoomable=\"false\" alt=\"p Subscript r m s Superscript asterisk Baseline left parenthesis psi comma upper R right parenthesis\"\/><\/p>\n<p>$p^*_{\\mathit{rms}}(\\psi ,\\, R)$<\/p>\n<p> results provide a direct link between inflow turbulence structure and unsteady blade loading. The SST ingestion case highlights a regime where discrete inflow disturbances lead to phase-dependent load fluctuations that may contribute to tonal noise. In contrast, the LST ingestion case illustrates a regime dominated by random inflow turbulence, which disrupts coherent loading patterns and is likely to lead to an increase in broadband noise emission. These distinctions align with theoretical models of propeller inflow-noise generation (Gutin <a class=\"xref bibr\" href=\"#ref37\">Reference Gutin1948<\/a>; Amiet <a class=\"xref bibr\" href=\"#ref4\">Reference Amiet1975<\/a>) and reinforce the need for turbulence characterisation when predicting propeller noise in complex inflow environments.<\/p>\n<p>3.2. Acoustic characteristics of turbulence ingestion<\/p>\n<p class=\"p\"> Numerical simulations allow for a more comprehensive study, and performing noise source identification and decomposition will shed light on the turbulence interaction noise generation mechanisms. The far-field analysis is carried out using the acoustic modules in PowerFLOW, based on the impermeable surface formulation of the FW-H acoustic analogy Ffowcs Williams\u00a0&amp; Hawkings (<a class=\"xref bibr\" href=\"#ref28\">Reference Ffowcs Williams and Hawkings1969<\/a>) and a forward-time solution of Farassat\u2019s Formulation 1A (Farassat\u00a0&amp; Succi <a class=\"xref bibr\" href=\"#ref26\">Reference Farassat and Succi1982<\/a>; Casalino <a class=\"xref bibr\" href=\"#ref14\">Reference Casalino2003<\/a>). The solid surfaces included for the FW-H include both the cylinder and the propeller (hub included).<\/p>\n<p>3.2.1. Far-field noise directivity and power spectrum density<\/p>\n<p class=\"p\"> The power spectral density of the pressure signals at each microphone was computed with a frequency resolution of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline281.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"78\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline281.png\" data-zoomable=\"false\" alt=\"normal upper Delta f equals 8 normal upper H normal z\"\/><\/p>\n<p>$\\Delta f={8}\\,\\mathrm{Hz}$<\/p>\n<p> using Welch\u2019s estimate with a 50 % overlap. The sound pressure level (SPL) is then calculated using<\/p>\n<p>(3.5)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn10.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"265\" height=\"55\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn10.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row SPL left parenthesis f comma theta right parenthesis equals 10 log Subscript 10 Baseline left parenthesis StartFraction phi Subscript p Baseline left parenthesis f right parenthesis normal upper Delta f Over p Subscript italic ref Superscript 2 Baseline EndFraction right parenthesis comma EndLayout\"\/><\/p>\n<p>\\begin{align} \\text{SPL}(f,\\,\\theta ) = 10\\,\\text{log}_{10}\\left (\\frac {\\phi _{p}(f)\\Delta f}{p^2_{\\textit{ref}}}\\right ), \\end{align}<\/p>\n<p class=\"p\"> where <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline282.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"45\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline282.png\" data-zoomable=\"false\" alt=\"phi Subscript p Baseline left parenthesis f right parenthesis\"\/><\/p>\n<p>$\\phi _{p}(f)$<\/p>\n<p> is the power spectral density based on the unsteady pressure fluctuations <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline283.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"35\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline283.png\" data-zoomable=\"false\" alt=\"p prime left parenthesis t right parenthesis\"\/><\/p>\n<p>$p'(t)$<\/p>\n<p> (where <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline284.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"141\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline284.png\" data-zoomable=\"false\" alt=\"p prime left parenthesis t right parenthesis equals p left parenthesis t right parenthesis minus p Subscript italic atm\"\/><\/p>\n<p>$p'(t) = p(t) &#8211; p_{\\textit{atm}}$<\/p>\n<p>) and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline285.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"98\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline285.png\" data-zoomable=\"false\" alt=\"p Subscript italic ref Baseline equals 20 mu normal upper P normal a\"\/><\/p>\n<p>$p_{\\textit{ref}}={20}\\,{\\unicode{x03BC}}\\mathrm{ Pa}$<\/p>\n<p> is the reference pressure. The OASPL at different angles <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline286.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"8\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline286.png\" data-zoomable=\"false\" alt=\"theta\"\/><\/p>\n<p>$\\theta$<\/p>\n<p> can be evaluated by integrating over the range of frequency of interest,<\/p>\n<p>(3.6)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn11.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"299\" height=\"87\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn11.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row OASPL left parenthesis theta right parenthesis equals 10 log Subscript 10 Baseline left parenthesis StartFraction integral phi Subscript p p Baseline left parenthesis f right parenthesis normal d f Over p Subscript italic ref Superscript 2 Baseline EndFraction right parenthesis comma EndLayout\"\/><\/p>\n<p>\\begin{align} \\text{OASPL}(\\theta ) = 10\\log _{10}\\left (\\frac {\\displaystyle \\int {\\phi _{pp}(f)\\,\\mathrm{d}f}}{p^2_{\\textit{ref}}}\\right ), \\end{align}<\/p>\n<p class=\"p\"> which is calculated over the range of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline287.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"110\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline287.png\" data-zoomable=\"false\" alt=\"160 minus 10 000 normal upper H normal z\"\/><\/p>\n<p>$160{-}{10\\,000}\\,\\mathrm{Hz}$<\/p>\n<p>. This range is chosen to eliminate the contribution from the lift harmonic of the cylinder to the OASPL results. The directivity of the first and second BPF is calculated by taking the value of the SPL spectra at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline288.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"98\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline288.png\" data-zoomable=\"false\" alt=\"f slash BPF equals 1 comma 2\"\/><\/p>\n<p>$f\/\\text{BPF}=1,2$<\/p>\n<p>.<\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f16\">Figure\u00a016<\/a> compares far-field acoustic power spectral density at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline289.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"55\" height=\"14\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline289.png\" data-zoomable=\"false\" alt=\"theta equals 90 Superscript ring\"\/><\/p>\n<p>$\\theta =90^\\circ$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline290.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline290.png\" data-zoomable=\"false\" alt=\"180 Superscript ring\"\/><\/p>\n<p>$180^\\circ$<\/p>\n<p>, respectively (recall <a class=\"xref fig\" href=\"#f1\">figure\u00a01<\/a> for the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline291.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"8\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline291.png\" data-zoomable=\"false\" alt=\"theta\"\/><\/p>\n<p>$\\theta$<\/p>\n<p> angle definition). <a class=\"xref fig\" href=\"#f16\">Figure\u00a016<\/a>(a) shows the loading-dominated radiation as the observer location is aligned with the plane of rotation. The isolated propeller exhibits a sharp tonal peak at the BPF and its harmonic, as expected for steady-loading dominant acoustic spectra (i.e. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline292.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"43\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline292.png\" data-zoomable=\"false\" alt=\"m equals 1\"\/><\/p>\n<p>$m=1$<\/p>\n<p>, where <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline293.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"99\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline293.png\" data-zoomable=\"false\" alt=\"m equals 1 comma 2 comma ellipsis\"\/><\/p>\n<p>$m = 1,\\, 2,\\, \\ldots$<\/p>\n<p> represents integer multiples of BPF) (Scharpf\u00a0&amp; Mueller <a class=\"xref bibr\" href=\"#ref82\">Reference Scharpf and Mueller1995<\/a>). For the SST ingestion case, a noticeable number of discrete tonal peaks appear in the midfrequency range. Their spacing is set by the cylinder shedding frequency <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline294.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"16\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline294.png\" data-zoomable=\"false\" alt=\"f 0\"\/><\/p>\n<p>$f_0$<\/p>\n<p>, resulting in a comb structure with tones at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline295.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"91\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline295.png\" data-zoomable=\"false\" alt=\"m normal upper B normal upper P normal upper F plus or minus n f 0\"\/><\/p>\n<p>$m\\mathrm{BPF}\\pm nf_0$<\/p>\n<p> (where <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline296.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"95\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline296.png\" data-zoomable=\"false\" alt=\"n equals 1 comma 2 comma ellipsis\"\/><\/p>\n<p>$n=1,\\,2,\\,\\ldots$<\/p>\n<p> denotes the integer multiples of fundamental vortex shedding frequency of a given cylinder), consistent with amplitude modulation characteristics observed in the literature (Marte\u00a0&amp; Kurtz <a class=\"xref bibr\" href=\"#ref59\">Reference Marte and Kurtz1970<\/a>; Robison\u00a0&amp; Peake <a class=\"xref bibr\" href=\"#ref77\">Reference Robison and Peake2014<\/a>; Yao et\u00a0al. <a class=\"xref bibr\" href=\"#ref105\">Reference Yao, Huang, Davidson, Niu and Chen2022<\/a>; Dr\u00f3\u017cd\u017c et\u00a0al. <a class=\"xref bibr\" href=\"#ref23\">Reference Dr\u00f3\u017cd\u017c, Niegodajew, Roma\u0144czyk and Elsner2023<\/a>). This results in a spectral signature that is dominated by coherent cylinder shedding at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline297.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"16\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline297.png\" data-zoomable=\"false\" alt=\"f 0\"\/><\/p>\n<p>$f_0$<\/p>\n<p>, producing rotation-locked modulation of the blade-pass harmonics and tones. The broadband level increases only modestly relative to the isolated case since the stochastic part of the ingested turbulence is weaker than the coherent shedding component at the interaction region. In contrast, the LST ingestion case displays broad humps centred around the BPF and its harmonics rather than distinct \u2018pairs of side-peaks\u2019. The energy spreads around the BPF and its harmonics, showing signs of haystacking. This broadening is consistent with a slowly varying envelope imposed by large structures (see <a class=\"xref fig\" href=\"#f26\">figure\u00a026<\/a><br \/>\nb). The polar angle for <a class=\"xref fig\" href=\"#f16\">figure\u00a016<\/a>(b) was chosen to minimise the steady loading contribution and allow a better focus on the interaction noise. The spectrum presented for the isolated case does not display any tones at the BPF or its harmonics. For the SST ingestion case, a series of tonal peaks remains visible at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline298.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"95\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline298.png\" data-zoomable=\"false\" alt=\"m normal upper B normal upper P normal upper F plus or minus n f 0\"\/><\/p>\n<p>$m\\,\\mathrm{BPF}\\pm n f_0$<\/p>\n<p> with no distinct tone at the BPF. The BPF and its harmonics show reduced contributions at this microphone position, confirming that the tones are a product of the blade\u2013turbulence interaction rather than a direct loading contribution. For ease of discussion, these <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline299.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"91\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline299.png\" data-zoomable=\"false\" alt=\"m normal upper B normal upper P normal upper F plus or minus n f 0\"\/><\/p>\n<p>$m\\mathrm{BPF}\\pm nf_0$<\/p>\n<p> tonal peaks are referred to as sidebands. For the LST ingestion case, the BPF and its harmonics are surrounded by \u2018broadband-like\u2019 humps, reaffirming the presence of haystacking. At <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline300.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"88\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline300.png\" data-zoomable=\"false\" alt=\"f divided by normal upper B normal upper P normal upper F greater than or equivalent to 10\"\/><\/p>\n<p>$f\/\\mathrm{BPF}\\gtrsim 10$<\/p>\n<p>, all three cases converge towards similar decay rates, indicating that ingestion primarily reorganises energy around the BPF and harmonics, while at high frequencies, the TE noise becomes essentially dominant.<\/p>\n<p>Figure 16.<\/p>\n<p class=\"p\">Comparison of SPL spectra between isolated, SST ingestion and LST ingestion cases for the polar microphones corresponding to (a) <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline301.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"55\" height=\"14\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline301.png\" data-zoomable=\"false\" alt=\"theta equals 90 Superscript ring\"\/><\/p>\n<p>$\\theta =90^\\circ$<\/p>\n<p> and (b) <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline302.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"63\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline302.png\" data-zoomable=\"false\" alt=\"theta equals 180 Superscript ring\"\/><\/p>\n<p>$\\theta =180^\\circ$<\/p>\n<p>.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig16.png\" class=\"aop-lazy-load-image\" width=\"3165\" height=\"1963\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig16.png\" data-zoomable=\"true\" alt=\"Two line graphs comparing sound pressure levels for isolated, SST ingestion, and LST ingestion cases at different angles.\"\/><\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f17\">Figure\u00a017<\/a> shows the spectral density spectra of each of the observer locations probed as a function of the polar position <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline303.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"8\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline303.png\" data-zoomable=\"false\" alt=\"theta\"\/><\/p>\n<p>$\\theta$<\/p>\n<p> versus normalised frequency <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline304.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"50\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline304.png\" data-zoomable=\"false\" alt=\"f slash BPF\"\/><\/p>\n<p>$f\/\\text{BPF}$<\/p>\n<p> for the isolated, SST and LST ingestion cases. In all cases, a narrow ridge at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline305.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"79\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline305.png\" data-zoomable=\"false\" alt=\"f slash BPF equals 1\"\/><\/p>\n<p>$ f\/\\text{BPF}=1$<\/p>\n<p> exhibits two pronounced \u2018hotspots\u2019 centred at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline306.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"124\" height=\"14\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline306.png\" data-zoomable=\"false\" alt=\"theta equals 90 Superscript ring Baseline and 270 Superscript ring\"\/><\/p>\n<p>$\\theta = 90^\\circ\\text{ and }{270}^\\circ$<\/p>\n<p> with relative minima upstream and downstream, consistent with compact-dipole radiation due to disk-wide periodic loading. The isolated case displays weak higher harmonics with a similar directivity pattern, while the rest of the broadband levels appear to remain between <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline307.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"94\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline307.png\" data-zoomable=\"false\" alt=\"40 and 50 dB\"\/><\/p>\n<p>$40\\text{ and }{50}\\,\\textrm{dB}$<\/p>\n<p>. For the SST ingestion case, displayed in <a class=\"xref fig\" href=\"#f17\">figure\u00a017<\/a>(b), an ordered set of additional narrow bands appears at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline308.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"128\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline308.png\" data-zoomable=\"false\" alt=\"f slash BPF equals m plus or minus 0.5\"\/><\/p>\n<p>$f\/\\text{BPF}=m\\pm 0.5$<\/p>\n<p>, which are produced by modulation at the cylinder shedding frequency <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline309.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"125\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline309.png\" data-zoomable=\"false\" alt=\"f Subscript 0 comma SST Baseline almost equals 0.5 BPF\"\/><\/p>\n<p>$f_{0,\\textit{ SST}}\\approx 0.5\\text{ BPF}$<\/p>\n<p>. The visible peak at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline310.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"93\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline310.png\" data-zoomable=\"false\" alt=\"f slash BPF equals 0.5\"\/><\/p>\n<p>$f\/\\text{BPF}=0.5$<\/p>\n<p> is characteristic of the cylinder vortex shedding lift harmonic and mirrors the propeller directivity (Jacob et\u00a0al. <a class=\"xref bibr\" href=\"#ref48\">Reference Jacob, Boudet, Casalino and Michard2005<\/a>; Giret et\u00a0al. <a class=\"xref bibr\" href=\"#ref29\">Reference Giret, Sengissen, Moreau, Sanjos\u00e9 and Jouhaud2015<\/a>). Nonlinear harmonic loading excites higher-order harmonics to appear in the spectra, with increased spanwise phase variation, resulting in less compact source radiation. These tones do not exhibit the same angular pattern as the tonal peaks at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline311.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"93\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline311.png\" data-zoomable=\"false\" alt=\"f slash BPF equals 0.5\"\/><\/p>\n<p>$f\/\\text{BPF}= 0.5$<\/p>\n<p> and 1, indicating that the harmonics and the extra tones produced by turbulence ingestion have different directivities. The partial spanwise and interblade decorrelation render these tones to have a more uniform directivity. The broadband content, however, remains similar to the isolated case. The LST ingestion case shows a mechanism that redistributes energy from discrete tones into a \u2018broadband-like\u2019 spread around the BPF and its harmonics, as shown in <a class=\"xref fig\" href=\"#f17\">figure\u00a017<\/a>(c). These broadband components are azimuthally diffuse and do not display the same directivity as the BPF, and are attributed to the diagonal track taken by the blades as they cut through the convecting turbulence structures, as recognised in the literature by Martinez (<a class=\"xref bibr\" href=\"#ref60\">Reference Martinez1996<\/a>) and Murray et\u00a0al. (<a class=\"xref bibr\" href=\"#ref68\">Reference Murray, Devenport, Alexander, Glegg and Wisda2018<\/a>). Moreover, their amplitudes are more elevated, with values between <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline312.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"94\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline312.png\" data-zoomable=\"false\" alt=\"50 and 60 normal d normal upper B\"\/><\/p>\n<p>$50\\text{ and } {60}\\,\\mathrm{dB}$<\/p>\n<p>, and hence are manifested as broadening of the tones. Additional sidebands can be observed mainly around the BPF, suggesting that acoustic modulation due to the cylinder shedding frequency occurs to some extent at this fundamental blade-passing frequency. Overall, the SST ingestion case retains the classical loading-dipole character at the first BPF, with minima along the propeller axis at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline313.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"114\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline313.png\" data-zoomable=\"false\" alt=\"theta equals 0 Superscript ring Baseline and 180 Superscript ring\"\/><\/p>\n<p>$\\theta = 0^\\circ\\text{ and } {180}^\\circ$<\/p>\n<p> due to the localised low-order loading fluctuations (see <a class=\"xref fig\" href=\"#f13\">figure\u00a013<\/a><br \/>\nb). In contrast, the LST ingestion case is subject to a broader inflow distortion across the disk, producing an azimuthal asymmetry in the blade loading that alters the classic dipole pattern at the first BPF. Turbulence ingestion additionally results in spectral broadening around <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline314.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"122\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline314.png\" data-zoomable=\"false\" alt=\"m normal upper B normal upper P normal upper F plus or minus n f Subscript 0 comma LST\"\/><\/p>\n<p>$m\\mathrm{BPF}\\pm nf_{0,\\textit{ LST}}$<\/p>\n<p>, which accentuates the region around the first BPF. As a result, a finite first BPF component becomes visible for the majority of the directivity angles.<\/p>\n<p>Figure 17.<\/p>\n<p class=\"p\">Spectral density contour plots as a function of far-field microphone position <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline315.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"8\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline315.png\" data-zoomable=\"false\" alt=\"theta\"\/><\/p>\n<p>$\\theta$<\/p>\n<p> at all angles examined in this study.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig17.png\" class=\"aop-lazy-load-image\" width=\"3395\" height=\"2064\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig17.png\" data-zoomable=\"true\" alt=\"Heat map showing spectral density contours at different angles.\"\/><\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f18\">Figure\u00a018<\/a> shows the directivities of the propeller noise for the three cases in terms of the OASPL in decibels and the directivity of the first and second BPFs, denoted by <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline316.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"41\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline316.png\" data-zoomable=\"false\" alt=\"normal upper S normal upper P normal upper L Subscript m\"\/><\/p>\n<p>$\\mathrm{SPL}_{m}$<\/p>\n<p>, (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline317.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"65\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline317.png\" data-zoomable=\"false\" alt=\"m equals 1 comma 2\"\/><\/p>\n<p>$m=1,\\,2$<\/p>\n<p>). The OASPL curves are essentially axisymmetric about the horizontal plane for all cases. However, the ingestion cases show an increase in noise levels compared with the isolated propeller for both the upstream and downstream microphone locations. The LST case exhibits the largest increase, with a gain between <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline318.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"84\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline318.png\" data-zoomable=\"false\" alt=\"5 and 10 normal d normal upper B\"\/><\/p>\n<p>$5\\text{ and } {10}\\,\\mathrm{dB}$<\/p>\n<p>, while the SST case shows an increase below <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline319.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline319.png\" data-zoomable=\"false\" alt=\"5 normal d normal upper B\"\/><\/p>\n<p>${5}\\,\\mathrm{dB}$<\/p>\n<p>. This indicates that the principal OASPL increase is broadband in nature, consistent with the additional harmonics in <a class=\"xref fig\" href=\"#f17\">figure\u00a017<\/a>(b) and the haystacking effect observed in <a class=\"xref fig\" href=\"#f17\">figure\u00a017<\/a>(c). At the first BPF (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline320.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"59\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline320.png\" data-zoomable=\"false\" alt=\"normal upper S normal upper P normal upper L Subscript m equals 1\"\/><\/p>\n<p>$\\mathrm{SPL}_{m=1}$<\/p>\n<p>), the directivity patterns are almost identical for the isolated and the SST ingestion cases. These display a typical dipole-like pattern with two broad side-lobes having minima at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline321.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"114\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline321.png\" data-zoomable=\"false\" alt=\"theta equals 0 Superscript ring Baseline and 180 Superscript ring\"\/><\/p>\n<p>$\\theta = 0^\\circ\\ \\text{and}\\ {180}^\\circ$<\/p>\n<p>, which suggests that the radiation is governed by the disk-wide periodic loading and is only weakly sensitive to the incoming SST. This is expected as the asymmetry in the loading remains small (Gutin <a class=\"xref bibr\" href=\"#ref37\">Reference Gutin1948<\/a>). The LST ingestion case exhibits an increase in levels on both the upstream and downstream angles, indicating that the large-scale inflow non-uniformity introduces an azimuthal contribution to the low-order BPF tone that \u2018contaminates\u2019 the reference dipole. Similar behaviour has been observed for propellers with an angle of attack, where the blade loading acquires an azimuthal dependence resulting in a tilt in directivity (Goyal et\u00a0al. <a class=\"xref bibr\" href=\"#ref34\">Reference Goyal, Sinnige, Ferreira and Avallone2025<\/a>). <a class=\"xref fig\" href=\"#f18\">Figure\u00a018<\/a>(c) shows that the second BPF tone (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline322.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"60\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline322.png\" data-zoomable=\"false\" alt=\"normal upper S normal upper P normal upper L Subscript m equals 2\"\/><\/p>\n<p>$\\mathrm{SPL}_{m=2}$<\/p>\n<p>) has a greater sensitivity to turbulence for both ingestion cases. The SST ingestion case shows a consistent rise towards the upstream and downstream angles, reminiscent of the first BPF directivity of the LST ingestion case. This is expected as higher-order BPFs receive increasing contribution from the unsteady loading components, and thus the directivity of the SST ingestion case resembles more that of the LST ingestion case (Moreau et\u00a0al. <a class=\"xref bibr\" href=\"#ref66\">Reference Moreau, Mendonca, Qazi, Prosser and Laurence2005<\/a>). Moreover, the LST ingestion case shows a more uniform increase in second BPF amplitude for all polar angles. As will be shown later, the second BPFs of both the SST and LST ingestion cases are further subjected to amplitude modulations, and hence, take a more \u2018omnidirectional\u2019 pattern.<\/p>\n<p>Figure 18.<\/p>\n<p class=\"p\">Directivities of propeller noise in terms of (a) OASPL (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline323.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"49\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline323.png\" data-zoomable=\"false\" alt=\"160 normal upper H normal z\"\/><\/p>\n<p>${160}\\,\\mathrm{Hz}$<\/p>\n<p>&#8211;<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline324.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"49\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline324.png\" data-zoomable=\"false\" alt=\"10 normal k normal upper H normal z\"\/><\/p>\n<p>${10}\\,\\mathrm{kHz}$<\/p>\n<p>), (b) first BPF (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline325.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"59\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline325.png\" data-zoomable=\"false\" alt=\"SPL Subscript m equals 1\"\/><\/p>\n<p>$\\text{SPL}_{m=1}$<\/p>\n<p>) and (c) second BPF (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline326.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"60\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline326.png\" data-zoomable=\"false\" alt=\"SPL Subscript m equals 2\"\/><\/p>\n<p>$\\text{SPL}_{m=2}$<\/p>\n<p>) for isolated, SST ingestion and LST ingestion cases.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig18.png\" class=\"aop-lazy-load-image\" width=\"3983\" height=\"1679\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig18.png\" data-zoomable=\"true\" alt=\"Three polar plots compare propeller noise directivities for isolated, SST ingestion, and LST ingestion cases.\"\/><br \/>\nFigure 18. Long description<\/p>\n<p class=\"p\">Panel A: A polar plot displays the Overall Sound Pressure Level (OASPL) in decibels (dB) for isolated, SST ingestion, and LST ingestion cases. The radial axis represents the sound pressure level in dB, ranging from 45 to 90 dB. The angular axis represents the angle theta (\u03b8) in degrees, ranging from 0 to 360 degrees. The black line represents the isolated case, the red line represents the SST ingestion case, and the blue line represents the LST ingestion case. Panel B: A polar plot displays the Sound Pressure Level (SPL) at the first Blade Passing Frequency (BPF) in decibels (dB) for isolated, SST ingestion, and LST ingestion cases. The radial axis represents the sound pressure level in dB, ranging from 45 to 75 dB. The angular axis represents the angle theta (\u03b8) in degrees, ranging from 0 to 360 degrees. The black line represents the isolated case, the red line represents the SST ingestion case, and the blue line represents the LST ingestion case. Panel C: A polar plot displays the Sound Pressure Level (SPL) at the second Blade Passing Frequency (BPF) in decibels (dB) for isolated, SST ingestion, and LST ingestion cases. The radial axis represents the sound pressure level in dB, ranging from 45 to 75 dB. The angular axis represents the angle theta (\u03b8) in degrees, ranging from 0 to 360 degrees. The black line represents the isolated case, the red line represents the SST ingestion case, and the blue line represents the LST ingestion case.<\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f19\">Figure\u00a019<\/a> shows the near-field dilatation field, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline327.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"42\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline327.png\" data-zoomable=\"false\" alt=\"partial differential p divided by partial differential t\"\/><\/p>\n<p>$\\partial p\/\\partial t$<\/p>\n<p>, for the (<a class=\"xref fig\" href=\"#f19\">figure\u00a019<\/a><br \/>\na) isolated, (<a class=\"xref fig\" href=\"#f19\">figure\u00a019<\/a><br \/>\nb) SST ingestion and (<a class=\"xref fig\" href=\"#f19\">figure\u00a019<\/a><br \/>\nc) LST ingestion cases, bad passed at the first BPF. In all three configurations, as observed in <a class=\"xref fig\" href=\"#f18\">figure\u00a018<\/a>(b), the first-BPF radiation is characterised by two dominant lobes located above and below the rotor plane, consistent with a loading-dominated dipole-type source distribution. For the isolated case, these lobes are compact and symmetric, which agrees with the directivity pattern discussed previously. The SST ingestion case retains the same global structure, although local perturbations appear in the vicinity of the wake-interaction region. In contrast, the LST ingestion case shows a more distorted dilatation field, indicating that the larger turbulent structures modify the spatial distribution of the loading fluctuations and the tip\u2013vortex shedding of the propeller blades, while preserving the general dipole-like organisation of the radiated field.<\/p>\n<p>Figure 19.<\/p>\n<p class=\"p\">Dilatation field, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline328.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"43\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline328.png\" data-zoomable=\"false\" alt=\"partial differential p divided by partial differential t\"\/><\/p>\n<p>$\\partial p\/\\partial t$<\/p>\n<p>, for the (a) isolated, (b) SST ingestion and (c) LST ingestion cases.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig19.png\" class=\"aop-lazy-load-image\" width=\"3440\" height=\"1471\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig19.png\" data-zoomable=\"true\" alt=\"Heat map showing dilatation fields for different propeller ingestion cases.\"\/><\/p>\n<p>3.2.2. Noise impact assessment<\/p>\n<p class=\"p\"> In the present work, a total of 256 far-field observer locations (16 parallels and 16 meridians) are arranged in a spherical pattern aligned with the rotational axis. For clarity, the lower hemisphere of microphone locations is presented in <a class=\"xref fig\" href=\"#f20\">figure\u00a020<\/a> and used in <a class=\"xref fig\" href=\"#f21\">figure\u00a021<\/a>.<\/p>\n<p>Figure 20.<\/p>\n<p class=\"p\">Lower hemisphere of the spherical far-field microphone array used for the noise-impact assessment and patchwise sound power level (PWL) calculation. The reference microphone used for the coherent output power (COP) analysis is marked by <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline329.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"10\" height=\"9\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline329.png\" data-zoomable=\"false\" alt=\"bold times\"\/><\/p>\n<p>$\\boldsymbol{\\times }$<\/p>\n<p> (propeller not to scale).<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig20.png\" class=\"aop-lazy-load-image\" width=\"2529\" height=\"2331\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig20.png\" data-zoomable=\"true\" alt=\"A 3D plot showing a spherical microphone array with data points and lines.\"\/><\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f21\">Figure\u00a021<\/a> illustrates the change in OASPL, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline330.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"315\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline330.png\" data-zoomable=\"false\" alt=\"normal upper Delta normal upper O normal upper A normal upper S normal upper P normal upper L equals normal upper O normal upper A normal upper S normal upper P normal upper L Subscript i n g e s t i o n Baseline minus normal upper O normal upper A normal upper S normal upper P normal upper L Subscript i s o l a t e d\"\/><\/p>\n<p>$\\Delta \\mathrm{OASPL}=\\mathrm{OASPL}_{\\mathit{ingestion}}-\\mathrm{OASPL}_{\\mathit{isolated}}$<\/p>\n<p>, on a hemispherical surface placed at a radius of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline331.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"39\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline331.png\" data-zoomable=\"false\" alt=\"1.5 normal m\"\/><\/p>\n<p>${1.5}\\,\\mathrm{m}$<\/p>\n<p> beneath the assembly, shown from a meridional cut and a three-dimensional view for the SST case (<a class=\"xref fig\" href=\"#f21\">figure\u00a021<\/a><br \/>\na,b) and the LST case (<a class=\"xref fig\" href=\"#f21\">figure\u00a021<\/a><br \/>\nc,d). In both configurations, the increase concentrates along the rotation axis both upstream and downstream, while a band of near-zero change appears aligned with the plane of rotation. This result is expected since there is tonal and broadband unsteady loading noise generation due to ingestion. The SST ingestion produces a compact, axis-centred hotspot with <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline332.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"99\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline332.png\" data-zoomable=\"false\" alt=\"normal upper Delta normal upper O normal upper A normal upper S normal upper P normal upper L almost equals 2\"\/><\/p>\n<p>$\\Delta \\mathrm{OASPL}\\approx 2$<\/p>\n<p>\u2013<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline333.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline333.png\" data-zoomable=\"false\" alt=\"4 normal d normal upper B\"\/><\/p>\n<p>${4}\\,\\mathrm{dB}$<\/p>\n<p> over a relatively narrow angular sector. In contrast, the LST ingestion yields a broader region with noise level increases of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline334.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"99\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline334.png\" data-zoomable=\"false\" alt=\"normal upper Delta normal upper O normal upper A normal upper S normal upper P normal upper L almost equals 4\"\/><\/p>\n<p>$\\Delta \\mathrm{OASPL}\\approx 4$<\/p>\n<p>\u2013<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline335.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline335.png\" data-zoomable=\"false\" alt=\"6 normal d normal upper B\"\/><\/p>\n<p>${6}\\,\\mathrm{dB}$<\/p>\n<p> that spreads omnidirectionally. This pattern is consistent with the source changes observed earlier. As previously seen in <a class=\"xref fig\" href=\"#f16\">figure\u00a016<\/a>, SST ingestion results in multiple narrow tones that affect the midfrequency region of the spectra, whereas LST ingestion generates broadband humps near the BPF and its harmonics (i.e. over low frequencies to midfrequencies that more significantly raise the OASPL). The weak response in the propeller plane reflects partial cancellation of blade-section dipoles across azimuth and the fact that ingestion primarily amplifies the axial (thrust-aligned) component of the unsteady loading rather than the in-plane component. These results are crucial to establishing flight paths and regions of high noise for pedestrian zone planning.<\/p>\n<p>Figure 21.<\/p>\n<p class=\"p\">Two- and three-dimensional views of the change in OASPL (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline336.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"13\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline336.png\" data-zoomable=\"false\" alt=\"normal upper Delta\"\/><\/p>\n<p>$\\Delta$<\/p>\n<p>OASPL) over the noise hemisphere placed underneath the propeller\u2013cylinder assembly for the (a,b) SST ingestion and (c,d) LST ingestion cases.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig21.png\" class=\"aop-lazy-load-image\" width=\"3402\" height=\"3191\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig21.png\" data-zoomable=\"true\" alt=\"Heat maps showing the change in OASPL over a noise hemisphere for SST and LST ingestion cases.\"\/><br \/>\nFigure 21. Long description<\/p>\n<p class=\"p\">Panel A: A heat map showing the change in OASPL for the SST ingestion case. The heat map is a two-dimensional view with the x and y axes representing spatial coordinates. The color scale ranges from blue to red, indicating the magnitude of the change in OASPL, with blue representing lower values and red representing higher values. The heat map shows a gradient from blue to red, indicating varying levels of OASPL change across the hemisphere. Panel B: A three-dimensional view of the heat map for the SST ingestion case. The x, y, and z axes represent spatial coordinates. The color scale is the same as in Panel A, with a gradient from blue to red. The three-dimensional view provides a more detailed perspective of the OASPL change distribution. Panel C: A heat map showing the change in OASPL for the LST ingestion case. The heat map is a two-dimensional view with the x and y axes representing spatial coordinates. The color scale ranges from blue to red, indicating the magnitude of the change in OASPL, with blue representing lower values and red representing higher values. The heat map shows a gradient from blue to red, indicating varying levels of OASPL change across the hemisphere. Panel D: A three-dimensional view of the heat map for the LST ingestion case. The x, y, and z axes represent spatial coordinates. The color scale is the same as in Panel C, with a gradient from blue to red. The three-dimensional view provides a more detailed perspective of the OASPL change distribution.<\/p>\n<p>3.2.3. Noise source decomposition and identification<\/p>\n<p class=\"p\"> Noise source identification is based on the time-domain FW-H analogy Ffowcs Williams\u00a0&amp; Hawkings (<a class=\"xref bibr\" href=\"#ref28\">Reference Ffowcs Williams and Hawkings1969<\/a>), and is performed using the Opty<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline337.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"7\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline337.png\" data-zoomable=\"false\" alt=\"partial differential\"\/><\/p>\n<p>$\\partial$<\/p>\n<p>B toolkit embedded in the MAAS workflow. The surface distribution of SPL over representative frequency bands is first shown in <a class=\"xref fig\" href=\"#f22\">figure\u00a022<\/a> to support the blade partition used in the subsequent analysis. The three representative frequency bands include the first BPF, a broadband band centred on <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline338.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"60\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline338.png\" data-zoomable=\"false\" alt=\"2000 normal upper H normal z\"\/><\/p>\n<p>${2000}\\,\\mathrm{Hz}$<\/p>\n<p> and a higher-frequency band between 3000 to 10 000 Hz. At the BPF, most of the blade surface displays elevated SPL levels; however, the LE and tip regions show a significantly higher magnitude. In the broadband, the elevated levels remain distributed over much of the blade surface, but with a clearer concentration over the aft section of the midchord region. The high-frequency band contains the prescribed range, showing the transition of the high-SPL region from the midchord towards the trailing edge. These distributions indicate that different parts of the blade dominate different spectral regions. The blade surface, therefore, is partitioned into several physically meaningful regions, namely the midchord blade region (blade), LE, tip, TE and root, together with the full propeller surface, in order to isolate blade areas with distinct surface-pressure-fluctuation behaviour for the subsequent patchwise PWL analysis. For each of these predefined surface patches, Opty<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline339.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"7\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline339.png\" data-zoomable=\"false\" alt=\"partial differential\"\/><\/p>\n<p>$\\partial$<\/p>\n<p>B evaluates the corresponding acoustic contribution to the far-field observers distributed over a spherical surface centred on the propeller.<\/p>\n<p>Figure 22.<\/p>\n<p class=\"p\">Sound pressure level of surface-pressure fluctuations for three frequencies of interest: (a) the BPF, (b) broadband, (c) high-frequency band showing the surface partitioning for contribution analysis.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig22.png\" class=\"aop-lazy-load-image\" width=\"3356\" height=\"2046\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig22.png\" data-zoomable=\"true\" alt=\"Three elongated shapes with color gradients representing sound pressure levels.\"\/><\/p>\n<p>Figure 23.<\/p>\n<p class=\"p\">The PWL calculated using the microphone sphere for (a) all the propeller surfaces, and (b\u2013f) blade, LE, tip, TE and root, respectively) contributions from each surface as outlined in (g).<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig23.png\" class=\"aop-lazy-load-image\" width=\"3991\" height=\"2775\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig23.png\" data-zoomable=\"true\" alt=\"Multiple line graphs compare far-field acoustic power spectral density at different observer locations and propeller surfaces.\"\/><br \/>\nFigure 23. Long description<\/p>\n<p class=\"p\">The image contains six line graphs labeled Panel A to Panel F, each depicting the power spectral density (PWL in dB) against the frequency ratio (f\/BPF). Panel A shows data for the propeller, Panel B for the blade, Panel C for the leading edge, Panel D for the tip, Panel E for the trailing edge, and Panel F for the root. Each graph includes three lines representing different conditions: Isolated (black), SST ingestion (red), and LST ingestion (blue). The x-axis represents the frequency ratio (f\/BPF) ranging from 0.5 to 50, and the y-axis represents the power spectral density (PWL in dB) ranging from 25 to 75. The graphs illustrate the acoustic power spectral density for different propeller surfaces under various conditions. The isolated propeller exhibits sharp tonal peaks at the BPF and its harmonics. The SST ingestion case shows discrete tonal peaks in the midfrequency range with a comb structure. The LST ingestion case displays broad humps centered around the BPF and its harmonics, indicating haystacking. The right side of the image includes a labeled diagram of a propeller blade, indicating the locations of the tip, leading edge, trailing edge, and root.<\/p>\n<p class=\"p\"> Following the definition adopted by Yunus et\u00a0al. (<a class=\"xref bibr\" href=\"#ref108\">Reference Yunus, Casalino, Romani and Snellen2025<\/a>), the sound power level represents the acoustic energy generated by the propeller independently of observer distance and directivity, and is obtained by integrating the far-field acoustic power spectral density over the surrounding observer sphere. Accordingly, the total propeller sound power level may be written as<\/p>\n<p>(3.7)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn12.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"396\" height=\"44\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn12.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row normal upper P normal upper W normal upper L Subscript upper P upper R upper O upper P Baseline left parenthesis f right parenthesis equals integral Subscript 0 Superscript pi Baseline integral Subscript 0 Superscript 2 pi Baseline StartFraction upper R Subscript s Superscript 2 Baseline sine theta Over 2 rho 0 c 0 EndFraction normal upper P normal upper S normal upper D left parenthesis f comma eta comma theta right parenthesis normal d eta normal d theta comma EndLayout\"\/><\/p>\n<p>\\begin{align} \\mathrm{PWL}_{\\mathit{PROP}}(f)= \\int _{0}^{\\pi }\\int _{0}^{2\\pi } \\frac {R_s^2 \\sin \\theta }{2\\rho _0 c_0} \\, \\mathrm{PSD}(f,\\eta ,\\theta )\\, \\mathrm{d}\\eta \\,\\mathrm{d}\\theta , \\end{align}<\/p>\n<p class=\"p\"> where <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline340.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"18\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline340.png\" data-zoomable=\"false\" alt=\"upper R Subscript s\"\/><\/p>\n<p>$R_s$<\/p>\n<p> is the radius of the observer sphere, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline341.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"8\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline341.png\" data-zoomable=\"false\" alt=\"theta\"\/><\/p>\n<p>$\\theta$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline342.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"8\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline342.png\" data-zoomable=\"false\" alt=\"eta\"\/><\/p>\n<p>$\\eta$<\/p>\n<p> are the polar and azimuthal angles, respectively, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline343.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"17\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline343.png\" data-zoomable=\"false\" alt=\"rho 0\"\/><\/p>\n<p>$\\rho _0$<\/p>\n<p> is the ambient density, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline344.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"15\" height=\"11\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline344.png\" data-zoomable=\"false\" alt=\"c 0\"\/><\/p>\n<p>$c_0$<\/p>\n<p> is the speed of sound and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline345.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"93\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline345.png\" data-zoomable=\"false\" alt=\"normal upper P normal upper S normal upper D left parenthesis f comma eta comma theta right parenthesis\"\/><\/p>\n<p>$\\mathrm{PSD}(f,\\eta ,\\theta )$<\/p>\n<p> is the far-field acoustic power spectral density. In the present study, the PWL is evaluated not only for the complete propeller surface but also for the predefined blade patches, allowing the acoustic contribution of each blade region to be assessed over the frequency range of interest. By assessing the time-domain unsteady pressure fluctuations, it can attribute the noise contribution emitted towards the far-field observers to the designated surfaces on the blade. A Fourier transform of the resulting unsteady pressure fluctuations allows for visualisation of the contribution to far-field noise (in decibels) of the different regions on the blade at different integrated frequency bands (Casalino et\u00a0al. <a class=\"xref bibr\" href=\"#ref15\">Reference Casalino, Grande, Romani, Ragni and Avallone2021<\/a>). Since the blade patches have different surface areas, a direct comparison of their sound power levels would bias the interpretation towards the largest regions. To remove this geometric effect, the PWL is normalised by the ratio of the patch area (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline346.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"42\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline346.png\" data-zoomable=\"false\" alt=\"upper A Subscript p a t c h\"\/><\/p>\n<p>$A_{\\mathit{patch}}$<\/p>\n<p>) to the total propeller area (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline347.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"47\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline347.png\" data-zoomable=\"false\" alt=\"upper A Subscript upper P upper R upper O upper P\"\/><\/p>\n<p>$A_{\\mathit{PROP}}$<\/p>\n<p>) such that<\/p>\n<p>(3.8)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn13.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"348\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn13.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row normal upper P normal upper W normal upper L equals normal upper P normal upper W normal upper L Subscript p a t c h Baseline left parenthesis f right parenthesis minus 10 log Subscript 10 Baseline left parenthesis upper A Subscript p a t c h Baseline divided by upper A Subscript upper P upper R upper O upper P Baseline right parenthesis period EndLayout\"\/><\/p>\n<p>\\begin{align} \\mathrm{PWL} = \\mathrm{PWL}_{\\mathit{patch}}(f) &#8211; 10\\log _{10}(A_{\\mathit{patch}}\/A_{\\mathit{PROP}}). \\end{align}<\/p>\n<p class=\"p\"> This quantity therefore represents a per-unit-area measure of the acoustic contribution of each blade region, allowing a direct comparison of the acoustic efficiency of the different surface patches. The results are shown in <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a> for the total propeller surface (<a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a><br \/>\na) and then decomposed into five blade patches: midchord blade region (<a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a><br \/>\nb), LE (<a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a><br \/>\nc), tip (<a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a><br \/>\nd), TE (<a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a><br \/>\ne) and root (<a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a><br \/>\nf). The total propeller PWL in <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a>(a) confirms the trends seen in the far-field spectra. The SST ingestion case adds narrow BPF- and harmonics-centred sidebands, whereas the LST ingestion results in broader humps around the BPF and its harmonics, as well as a broadband rise, with a level increase of approximately 8\u2013<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline348.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"39\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline348.png\" data-zoomable=\"false\" alt=\"10 normal d normal upper B\"\/><\/p>\n<p>${10}\\,\\mathrm{dB}$<\/p>\n<p> relative to the isolated case at low frequencies to midfrequencies. It should be noted that in essentially all patches, these same features emerge. Above <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline349.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"88\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline349.png\" data-zoomable=\"false\" alt=\"f slash BPF equals 10\"\/><\/p>\n<p>$f\/\\text{BPF}=10$<\/p>\n<p>, the spectra largely collapse, indicating that ingestion primarily affects the low frequencies to midfrequencies. It should be noted that the tone at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline350.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"79\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline350.png\" data-zoomable=\"false\" alt=\"f equals f Subscript 0 comma italic SST\"\/><\/p>\n<p>$f= f_{0,\\,\\textit{SST}}$<\/p>\n<p> is absent in the SST ingestion case, as it corresponds to the lift harmonic of the cylinder. The surface breakdown helps identify where the ingestion signature is generated. The blade patch shown in <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a>(b) exhibits a substantial ingestion sensitivity in the low to midfrequency range. Compared with <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a>(a), this patch significantly contributes to the total increase in PWL around the harmonics. The LE displayed in <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a>(c) is the most direct patch affected by the incoming wake, and contributes primarily to the noise increase due to turbulence ingestion. For both SST and LST ingestion, the spectra are significantly higher than in the isolated case across the entire frequency range. The tip contribution shown in <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a>(d) also exhibits a pronounced increase similar to the one observed in the blade and LE patches previously displayed in <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a>(b), however, with a reduced amplitude of increase and a more extended frequency range. Together with the TE contribution shown in <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a>(e), they contribute primarily to the noise at high frequencies (e.g. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline351.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"92\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline351.png\" data-zoomable=\"false\" alt=\"f greater than or slanted equals 8000 normal upper H normal z\"\/><\/p>\n<p>$ f\\geqslant {8000}\\,\\mathrm{Hz}$<\/p>\n<p>), corroborating the fact that TE noise is likely to become dominant at higher frequencies. Lastly, the root patch displayed in <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a>(f) is consistently the weakest contributor, except for a few sidebands as a result of the acoustic modulation. This reflects both the lower local radiation efficiency near the root and the limited exposure of the root region in the SST ingestion case.<\/p>\n<p class=\"p\"> Following the blade-level PWL contribution analysis, the COP per unit surface for the three cases is computed as a means to identify far-field noise source locations. Unlike a conventional coherence function, the COP retains amplitude information and therefore reflects both correlation with the observer signal and the associated acoustic weighted contribution, making it useful as a source-localisation metric. In the present work, the COP is evaluated for a single prescribed far-field observer location outlined in <a class=\"xref fig\" href=\"#f20\">figure\u00a020<\/a> by <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline352.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"10\" height=\"9\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline352.png\" data-zoomable=\"false\" alt=\"bold times\"\/><\/p>\n<p>$\\boldsymbol{\\times }$<\/p>\n<p>, to identify the blade regions contributing most coherently to the selected frequency band. A prescribed bandwidth <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline353.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"49\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline353.png\" data-zoomable=\"false\" alt=\"normal upper Delta f Subscript italic COP\"\/><\/p>\n<p>$\\Delta f_{\\textit{COP}}$<\/p>\n<p> is used for the source analysis, and the Fourier transform of the total far-field noise signal <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline354.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"42\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline354.png\" data-zoomable=\"false\" alt=\"ModifyingAbove p With caret Subscript t Baseline left parenthesis f right parenthesis\"\/><\/p>\n<p>$\\hat {p}_t(f)$<\/p>\n<p> and of each <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline355.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"15\" height=\"11\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline355.png\" data-zoomable=\"false\" alt=\"n Subscript s\"\/><\/p>\n<p>$n_s$<\/p>\n<p> surface element contribution <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline356.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"50\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline356.png\" data-zoomable=\"false\" alt=\"ModifyingAbove p With caret Subscript n Sub Subscript s Baseline left parenthesis f right parenthesis\"\/><\/p>\n<p>$\\hat {p}_{n_s}(f)$<\/p>\n<p> to the far-field noise signal are computed, giving the coherent acoustic pressure spectral density as<\/p>\n<p>(3.9)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn14.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"181\" height=\"42\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn14.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row ModifyingAbove upper P With caret Subscript n Sub Subscript s Subscript Baseline left parenthesis f right parenthesis equals StartFraction ModifyingAbove p With caret Subscript n Sub Subscript s Subscript Baseline left parenthesis f right parenthesis ModifyingAbove p With caret Subscript t Superscript asterisk Baseline left parenthesis f right parenthesis Over normal upper Delta f Subscript italic COP Baseline StartAbsoluteValue ModifyingAbove p With caret Subscript t Baseline left parenthesis f right parenthesis EndAbsoluteValue EndFraction comma EndLayout\"\/><\/p>\n<p>\\begin{align} \\hat {P}_{n_s}(f)=\\frac {\\hat {p}_{n_s}(f)\\hat {p}_t^{*}(f)}{\\Delta f_{\\textit{COP}}|\\hat {p}_t(f)|}, \\end{align}<\/p>\n<p class=\"p\"> where \u2018<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline357.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"7\" height=\"7\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline357.png\" data-zoomable=\"false\" alt=\"Superscript asterisk\"\/><\/p>\n<p>$^*$<\/p>\n<p>\u2019 denotes the complex conjugate and the Welch-averaged <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline358.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"48\" height=\"21\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline358.png\" data-zoomable=\"false\" alt=\"ModifyingAbove upper P With caret Subscript n Sub Subscript s Baseline left parenthesis f right parenthesis\"\/><\/p>\n<p>$\\hat {P}_{n_s}(f)$<\/p>\n<p> of this complex quantity is computed for the full transient simulation of 40 revolutions. This is a novel FW-H-based noise source identification technique previously introduced by Casalino et\u00a0al. (<a class=\"xref bibr\" href=\"#ref17\">Reference Casalino, Romani, Pii and Colombo2023<\/a>). Since the formulation is based on the complex far-field acoustic contribution of each surface element relative to the total observer pressure, the COP should be interpreted as a coherence-based acoustic source-localisation metric over the prescribed frequency interval. It is computed directly from the corresponding FW-H-based acoustic contribution of each surface element to the selected observer location. In the present study, the selected observer is the upstream microphone at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline359.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"63\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline359.png\" data-zoomable=\"false\" alt=\"theta equals 180 Superscript ring\"\/><\/p>\n<p>$\\theta = 180^\\circ$<\/p>\n<p>, where the steady-loading contribution is minimal, and the turbulence-interaction noise is most clearly exposed. Due to the low tip Mach number in this study, quadrupole contributions are considered negligible, and therefore the impermeable formulation of the FW-H is utilised.<\/p>\n<p>Figure 24.<\/p>\n<p class=\"p\">The COP contribution per unit of area (dB) at the upstream microphone for the pressure side at the first (a\u2013c) and second (d\u2013f) BPF and three broadband frequencies (g\u2013o) for the isolated propeller (a,d,g,j,m), SST ingestion (b,e,h,k,n), LST ingestion (c,f,i,l,o).<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig24.png\" class=\"aop-lazy-load-image\" width=\"3986\" height=\"1958\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig24.png\" data-zoomable=\"true\" alt=\"Heat map showing COP contribution per unit area for different conditions and frequencies.\"\/><\/p>\n<p>Figure 25.<\/p>\n<p class=\"p\">The COP contribution per unit of area (dB) at the upstream microphone for the pressure side for <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline360.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"100\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline360.png\" data-zoomable=\"false\" alt=\"BPF plus or minus f Subscript 0 comma LST Baseline\"\/><\/p>\n<p>$\\text{BPF}\\pm f_{0,\\textit{ LST}}$<\/p>\n<p>.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig25.png\" class=\"aop-lazy-load-image\" width=\"3953\" height=\"827\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig25.png\" data-zoomable=\"true\" alt=\"A heat map showing the COP contribution per unit of area in decibels for two different conditions.\"\/><\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f24\">Figure\u00a024<\/a> shows the noise source maps in terms of COP contribution per unit area for the pressure side of the blade. All three configurations are analysed and the frequencies are divided into five distinct and acoustically important intervals, covering the first and second BPF (<a class=\"xref fig\" href=\"#f24\">figure\u00a024<\/a><br \/>\na\u2013f) as well as two midfrequencies (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline361.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"128\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline361.png\" data-zoomable=\"false\" alt=\"1000 and 2000 normal upper H normal z\"\/><\/p>\n<p>$1000 \\text{ and }{2000}\\,\\mathrm{Hz}$<\/p>\n<p>) (<a class=\"xref fig\" href=\"#f24\">figure\u00a024<\/a><br \/>\ng\u2013l) and a high-frequency (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline362.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"59\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline362.png\" data-zoomable=\"false\" alt=\"8000 normal upper H normal z\"\/><\/p>\n<p>${8000}\\,\\mathrm{Hz}$<\/p>\n<p>) (<a class=\"xref fig\" href=\"#f24\">figure\u00a024<\/a><br \/>\nm\u2013o). The COP has been computed using the surface data extracted from a singular blade and projected towards the upstream observer location of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline363.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"63\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline363.png\" data-zoomable=\"false\" alt=\"theta equals 180 Superscript ring\"\/><\/p>\n<p>$\\theta = {180}^\\circ$<\/p>\n<p>. This observer location was selected given the mean-loading BPF contribution is weakest in the isolated case, allowing the ingestion-induced acoustic response to be examined with reduced steady-loading contamination, as shown in <a class=\"xref fig\" href=\"#f17\">figure\u00a017<\/a>. The minima observed in <a class=\"xref fig\" href=\"#f18\">figure\u00a018<\/a>(b) are aligned with the rotational axis, resulting in an equivalence between <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline364.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"47\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline364.png\" data-zoomable=\"false\" alt=\"theta equals 0 Superscript ring\"\/><\/p>\n<p>$\\theta = {0}^\\circ$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline365.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"63\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline365.png\" data-zoomable=\"false\" alt=\"theta equals 180 Superscript ring\"\/><\/p>\n<p>$\\theta = {180}^\\circ$<\/p>\n<p>. In the ingestion cases, however, the cylinder placement introduces a fore\u2013aft asymmetry, and therefore the observer locations at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline366.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"47\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline366.png\" data-zoomable=\"false\" alt=\"theta equals 0 Superscript ring\"\/><\/p>\n<p>$\\theta =0^\\circ$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline367.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline367.png\" data-zoomable=\"false\" alt=\"180 Superscript ring\"\/><\/p>\n<p>$180^\\circ$<\/p>\n<p> can no longer be assumed as equivalent. At the first BPF (<a class=\"xref fig\" href=\"#f24\">figure\u00a024<\/a><br \/>\na\u2013c), the isolated case exhibits a compact source at the midspan along the TE of the blade, consistent with a coherent disk loading pattern. With the SST ingestion, this footprint migrates to the LE and extends to <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline368.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"73\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline368.png\" data-zoomable=\"false\" alt=\"r divided by upper R greater than or slanted equals 0.6\"\/><\/p>\n<p>$r\/R\\geqslant 0.6$<\/p>\n<p>, caused by interaction with the wake vortices. The LST ingestion produces the largest change, with the BPF source extending over most of the outer two-thirds of the span and showing distinct hotspots at the LE and TE. The contribution appears mostly around the LE area, as that is the region of the blade which first encounters the large-scale turbulent structures. The second BPF (<a class=\"xref fig\" href=\"#f24\">figure\u00a024<\/a><br \/>\nd\u2013f) displays changes in the noise-contributing regions. The isolated case shows a region of dominant noise source encompassing most of the outboard section of the TE. However, a significant change can be observed for SST ingestion, where the TE becomes a more significant contributor compared with the LE, with a larger region of the blade displaying higher COP levels. In contrast, for LST ingestion, there is a reduction in the overall noise-contributing area as the hotspots previously observed shift closer together towards the tip region of the blade. The midfrequencies at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline369.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"58\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline369.png\" data-zoomable=\"false\" alt=\"1000 normal upper H normal z\"\/><\/p>\n<p>${1000}\\,\\mathrm{Hz}$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline370.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"60\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline370.png\" data-zoomable=\"false\" alt=\"2000 normal upper H normal z\"\/><\/p>\n<p>${2000}\\,\\mathrm{Hz}$<\/p>\n<p> (<a class=\"xref fig\" href=\"#f24\">figure\u00a024<\/a><br \/>\ng\u2013l) show that turbulence ingestion increases COP levels over the outer span not only at the LE but also across midchord towards the TE. This is likely a result of the pressure fluctuations originating at both LE and TE in response to the turbulence. For the SST ingestion case, the contribution becomes diffuse spanwise and covers a larger planform area, whereas for the LST ingestion case, it retains a degree of organisation and shows a clear shift from LE- to TE-dominated noise sources. These trends are consistent with the patchwise PWL decomposition shown in <a class=\"xref fig\" href=\"#f23\">figure\u00a023<\/a>.<\/p>\n<p class=\"p\"> The LE dominates the low frequencies to midfrequencies, whilst the tip and TE become more influential at higher frequencies. At <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline371.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"59\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline371.png\" data-zoomable=\"false\" alt=\"8000 normal upper H normal z\"\/><\/p>\n<p>${8000}\\,\\mathrm{Hz}$<\/p>\n<p> the COP localises sharply at the TE and tip for all configurations. The isolated and LST ingestion cases display modest differences, matching the expected rise of TE scattering of the turbulent boundary layer at high frequencies, whilst the SST ingestion case retains comparatively higher COP levels over the rest of the blade surface. In order to assess the modulation behaviour of the LST ingestion case previously observed in <a class=\"xref fig\" href=\"#f17\">figure\u00a017<\/a>, the sidebands centred around <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline372.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"100\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline372.png\" data-zoomable=\"false\" alt=\"BPF plus or minus f Subscript 0 comma italic LST Baseline\"\/><\/p>\n<p>$\\text{BPF}\\pm f_{0,\\,\\textit{LST}}$<\/p>\n<p> are shown in <a class=\"xref fig\" href=\"#f25\">figure\u00a025<\/a>. The COP contour maps retain the same pattern but lower overall levels than the BPF map in <a class=\"xref fig\" href=\"#f24\">figure\u00a024<\/a>(c), which implies amplitude modulation of the existing loading source by a slowly varying inflow. The modulation redistributes energy around the BPF without creating a distinct source family since there are no new contribution regions in the COP maps.<\/p>\n<p>Figure 26.<\/p>\n<p class=\"p\">Time history of cylinder lift coefficient for the (a) SST ingestion, and (b) LST ingestion cases showing the modulation envelope. Shedding amplitude is noted.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig26.png\" class=\"aop-lazy-load-image\" width=\"3295\" height=\"1859\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig26.png\" data-zoomable=\"true\" alt=\"Two line graphs depict the time history of cylinder lift coefficient for different ingestion cases.\"\/><\/p>\n<p>3.2.4. Acoustic haystacking and modulation mechanisms<\/p>\n<p class=\"p\">\n<a class=\"xref fig\" href=\"#f26\">Figure\u00a026<\/a> shows the time histories of the cylinder lift coefficient for the two ingestion cases, plotted against the propeller revolution. In the SST ingestion case, shown in <a class=\"xref fig\" href=\"#f26\">figure\u00a026<\/a>(a), the lift coefficient exhibits a nearly periodic waveform with varying amplitude whose envelope is traced by the dashed curves Gonzalez-Martino et\u00a0al. (<a class=\"xref bibr\" href=\"#ref33\">Reference Gonzalez-Martino, Romani, Wang and Casalino2018<\/a>). This behaviour reflects persistent vortex shedding over many propeller revolutions, which is convected towards the disk at frequency <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline373.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"45\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline373.png\" data-zoomable=\"false\" alt=\"f Subscript 0 comma upper S upper S upper T\"\/><\/p>\n<p>$f_{0,\\,\\mathit{SST}}$<\/p>\n<p>. The spanwise modulation of the shedding is a known feature of cylinder wakes (Casalino <a class=\"xref bibr\" href=\"#ref14\">Reference Casalino2003<\/a>). Because this modulation rate is in the same order of magnitude as the BPF, it results in phase-locked sidebands at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline374.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"91\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline374.png\" data-zoomable=\"false\" alt=\"m normal upper B normal upper P normal upper F plus or minus n f 0\"\/><\/p>\n<p>$m\\mathrm{BPF}\\pm n f_0$<\/p>\n<p> in the spectra as observed previously in <a class=\"xref fig\" href=\"#f14\">figures 14<\/a> and <a class=\"xref fig\" href=\"#f16\">16<\/a> (Schlinker\u00a0&amp; Amiet <a class=\"xref bibr\" href=\"#ref83\">Reference Schlinker and Amiet1981<\/a>; Paterson\u00a0&amp; Amiet <a class=\"xref bibr\" href=\"#ref72\">Reference Paterson and Amiet1982<\/a>). The LST ingestion case displayed in <a class=\"xref fig\" href=\"#f26\">figure\u00a026<\/a>(b) shows a much slower, nearly sinusoidal change in the lift coefficient with only very minor low-frequency modulation traced by the envelope. The dominant structures are not phase-locked to the propeller, resulting in a blade\u2013turbulence interaction that varies across revolutions and along the blade span. With large-scale ingestion, the BPF and its harmonics are expected to display low-frequency humps, i.e. haystacking around the BPF tone and its harmonics (McAlpine et\u00a0al. <a class=\"xref bibr\" href=\"#ref63\">Reference McAlpine, Powles and Tester2009<\/a>; Huang <a class=\"xref bibr\" href=\"#ref46\">Reference Huang2023<\/a>; Raposo\u00a0&amp; Azarpeyvand <a class=\"xref bibr\" href=\"#ref74\">Reference Raposo and Azarpeyvand2024<\/a>). The lift coefficient behaviour supports that if amplitude modulation occurs in the turbulence ingestion cases, it is likely to be notably stronger in the SST ingestion case, which is likely to promote the \u2018carrier-wave-led\u2019 variations.<\/p>\n<p class=\"p\"> Since radiated acoustic fields depend not only on the source location and strength but also on the phase relationship between blades, it is essential to evaluate space\u2013time correlations and modulation of the blade sectional thrust coefficient. Blade-to-blade correlations are relevant to determining the presence of the haystacking phenomenon observed for the turbulence ingestion case (Wang et\u00a0al. <a class=\"xref bibr\" href=\"#ref100\">Reference Wang, Wang and Wang2021<\/a>; Zhou et\u00a0al. <a class=\"xref bibr\" href=\"#ref112\">Reference Zhou, Wang and Wang2024<\/a>). The normalised blade-to-blade cross-correlation of sectional thrust coefficient along the LE of the blades is computed using<\/p>\n<p>(3.10)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn15.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"276\" height=\"60\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn15.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row upper C 12 left parenthesis normal upper Delta t semicolon r right parenthesis equals StartFraction left angle bracket upper C prime 1 left parenthesis r comma t right parenthesis upper C prime 2 left parenthesis r comma t plus normal upper Delta t right parenthesis right angle bracket Over StartRoot left angle bracket upper C 1 Superscript prime 2 Baseline left parenthesis r comma t right parenthesis right angle bracket left angle bracket upper C 2 Superscript prime 2 Baseline left parenthesis r comma t right parenthesis right angle bracket EndRoot EndFraction comma EndLayout\"\/><\/p>\n<p>\\begin{align} C_{12}(\\Delta t;r)=\\frac {\\langle C&#8217;_1(r,t)\\,C&#8217;_2(r,t+\\Delta t)\\rangle } {\\sqrt {\\langle C_1^{^{\\prime }2}(r,t)\\rangle \\,\\langle C_2^{^{\\prime }2}(r,t)\\rangle }}, \\end{align}<\/p>\n<p class=\"p\"> with <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline375.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"54\" height=\"21\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline375.png\" data-zoomable=\"false\" alt=\"upper C prime 1 left parenthesis r comma t right parenthesis\"\/><\/p>\n<p>$C&#8217;_1(r,t)$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline376.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"54\" height=\"21\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline376.png\" data-zoomable=\"false\" alt=\"upper C prime 2 left parenthesis r comma t right parenthesis\"\/><\/p>\n<p>$C&#8217;_2(r,t)$<\/p>\n<p> being the sectional thrust coefficient fluctuations taken for segments along the span <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline377.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"8\" height=\"8\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline377.png\" data-zoomable=\"false\" alt=\"r\"\/><\/p>\n<p>$r$<\/p>\n<p> on blade 1 and blade 2, respectively. The contour maps are plotted in <a class=\"xref fig\" href=\"#f27\">figure\u00a027<\/a> as a function of the correlation time-lag normalised by the BPF, i.e. <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline378.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"55\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline378.png\" data-zoomable=\"false\" alt=\"normal upper Delta t normal upper B normal upper P normal upper F\"\/><\/p>\n<p>$\\Delta t\\,{\\mathrm{BPF}}$<\/p>\n<p>. Expectedly, the isolated case in <a class=\"xref fig\" href=\"#f27\">figure\u00a027<\/a>(a) shows no clear correlation between the blades, with levels remaining close to zero for all time-lags, consistent with the absence of any strong inflow imprint on consecutive blades. The SST ingestion case in <a class=\"xref fig\" href=\"#f27\">figure\u00a027<\/a>(b) exhibits correlation peaks predominantly at odd integer lags, most notably at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline379.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"94\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline379.png\" data-zoomable=\"false\" alt=\"normal upper Delta t normal upper B normal upper P normal upper F almost equals plus or minus 1\"\/><\/p>\n<p>$\\Delta t\\mathrm{BPF} \\approx \\pm 1$<\/p>\n<p> and weaker <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline380.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline380.png\" data-zoomable=\"false\" alt=\"plus or minus 3\"\/><\/p>\n<p>$\\pm 3$<\/p>\n<p>, with the strongest levels concentrated over the inboard portion of the blade. This behaviour arises from the spatial phase of the ingested turbulence with shedding frequency <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline381.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"126\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline381.png\" data-zoomable=\"false\" alt=\"f Subscript 0 comma upper S upper S upper T Baseline divided by normal upper B normal upper P normal upper F almost equals 0.5\"\/><\/p>\n<p>$f_{0,\\mathit{SST}}\/\\mathrm{BPF} \\approx 0.5$<\/p>\n<p>. Since the blades are separated by <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline382.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"67\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline382.png\" data-zoomable=\"false\" alt=\"psi equals 180 Superscript ring\"\/><\/p>\n<p>$\\psi =180^\\circ$<\/p>\n<p>, the blade response samples the turbulent wake with an approximate half-period shift, which produces an alternating blade-to-blade similarity pattern at successive integer lags. The correlation is strongest for <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline383.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"72\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline383.png\" data-zoomable=\"false\" alt=\"r divided by upper R less than or equivalent to 0.5\"\/><\/p>\n<p>$r\/R \\lesssim 0.5$<\/p>\n<p>, where the ingestion imprint is larger, and the local convective velocity is lower, thereby reducing the extent of dephasing between the two blades. As <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline384.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"29\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline384.png\" data-zoomable=\"false\" alt=\"r divided by upper R\"\/><\/p>\n<p>$r\/R$<\/p>\n<p> increases towards the tip, the correlated region becomes thinner and weaker, indicating that the blade response becomes less repeatable across consecutive blades. This pattern in correlation is consistent with the multiple tones observed earlier at the distinct frequencies in the spectrum for the SST case.<\/p>\n<p class=\"p\"> The most distinct difference between the SST and LST ingestion cases, as shown in <a class=\"xref fig\" href=\"#f27\">figure\u00a027<\/a>(c), is the strong and broad positive correlation centred around <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline385.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"98\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline385.png\" data-zoomable=\"false\" alt=\"normal upper Delta t normal upper B normal upper P normal upper F almost equals plus or minus 1\"\/><\/p>\n<p>$\\Delta \\,t{\\mathrm{BPF}}\\approx \\pm 1$<\/p>\n<p> across a large fraction of the blade span. This indicates that consecutive blades respond to the same incoming turbulent structures at the blade-passing delay, which is consistent with the haystacking behaviour observed in the spectra. This is also confirmed by the large spread in frequency bins (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline386.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"113\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline386.png\" data-zoomable=\"false\" alt=\"normal upper Delta t normal upper B normal upper P normal upper F almost equals plus or minus 0.2\"\/><\/p>\n<p>$\\Delta \\,t{\\mathrm{BPF}}\\approx \\pm 0.2$<\/p>\n<p> around the BPF). In comparison with the SST case, the LST ingestion case exhibits a more spatially extended and more intense blade-to-blade similarity, particularly over the midspan and inboard regions. At larger integer lags, alternating regions of correlation and anticorrelation appear towards the root and tip, reflecting the progressive loss of phase coherence as the turbulent structures are convected and deform between successive blade encounters. Whilst one radial region of the blade appears correlated, the opposite radial region is anticorrelated. This can partly be attributed to the phase shift of the vortex shedding being ingested by the different parts of the blades. Overall, the correlation maps confirm that the SST case is characterised by a more compact and phase-structured blade response, whereas the LST ingestion case exhibits repeated blade interaction with coherent large-scale structures that underpin the haystacking mechanism.<\/p>\n<p>Figure 27.<\/p>\n<p class=\"p\">Space\u2013time correlation coefficient, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline387.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"133\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline387.png\" data-zoomable=\"false\" alt=\"upper C 12 left parenthesis normal upper Delta t normal upper B normal upper P normal upper F comma r divided by upper R right parenthesis\"\/><\/p>\n<p>$C_{12}(\\Delta t \\mathrm{BPF},\\, r\/R)$<\/p>\n<p>, of blade-to-blade sectional thrust coefficient for the (a) isolated, (b) SST ingestion and (c) LST ingestion cases.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig27.png\" class=\"aop-lazy-load-image\" width=\"3330\" height=\"2431\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig27.png\" data-zoomable=\"true\" alt=\"A heat map showing the spacetime correlation coefficient of blade-to-blade sectional thrust coefficient for isolated, SST ingestion, and LST ingestion cases.\"\/><br \/>\nFigure 27. Long description<\/p>\n<p class=\"p\">Panel A: A heat map showing the spacetime correlation coefficient of blade-to-blade sectional thrust coefficient for the isolated case. The x-axis represents the delta t BPF ranging from -4 to 4, and the y-axis represents the r\/R ratio ranging from 0 to 0.75. The color scale on the right indicates the correlation coefficient values, with blue representing lower values and red representing higher values. The heat map shows a relatively uniform distribution with minor variations. Panel B: A heat map showing the spacetime correlation coefficient of blade-to-blade sectional thrust coefficient for the SST ingestion case. The x-axis represents the delta t BPF ranging from -4 to 4, and the y-axis represents the r\/R ratio ranging from 0 to 0.75. The color scale on the right indicates the correlation coefficient values, with blue representing lower values and red representing higher values. The heat map shows distinct patterns with higher values concentrated around specific regions. Panel C: A heat map showing the spacetime correlation coefficient of blade-to-blade sectional thrust coefficient for the LST ingestion case. The x-axis represents the delta t BPF ranging from -4 to 4, and the y-axis represents the r\/R ratio ranging from 0 to 0.75. The color scale on the right indicates the correlation coefficient values, with blue representing lower values and red representing higher values. The heat map shows distinct patterns with higher values concentrated around specific regions.<\/p>\n<p class=\"p\"> To assess how turbulence ingestion modulates the radiated spectrum, the MID is evaluated as a cyclostationary metric. For a selected carrier-frequency range <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline388.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"57\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline388.png\" data-zoomable=\"false\" alt=\"left bracket f 1 comma f 2 right bracket\"\/><\/p>\n<p>$[f_1,\\,f_2]$<\/p>\n<p>, the integrated MID (IMD) is<\/p>\n<p>(3.11)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn16.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"295\" height=\"47\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn16.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row normal upper I normal upper M normal upper D Subscript f 1 Superscript f 2 Baseline left parenthesis alpha comma normal upper Delta f right parenthesis equals integral Subscript f 1 Superscript f 2 Baseline normal upper M normal upper I normal upper D normal upper Delta f left parenthesis f comma alpha right parenthesis d f comma EndLayout\"\/><\/p>\n<p>\\begin{align} \\mathrm{IMD}^{f_2}_{f_1}(\\alpha ,\\,\\Delta f) = \\int _{f_1}^{f_2} \\mathrm{MID}_{\\Delta f}(f,\\,\\alpha )\\,\\text{d}f, \\end{align}<\/p>\n<p class=\"p\"> where MID is the spectral correlation statistical value calculated in the carrier frequency range from <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline389.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"15\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline389.png\" data-zoomable=\"false\" alt=\"f 1\"\/><\/p>\n<p>$f_1$<\/p>\n<p> to <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline390.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"16\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline390.png\" data-zoomable=\"false\" alt=\"f 2\"\/><\/p>\n<p>$f_2$<\/p>\n<p>, and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline391.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"10\" height=\"8\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline391.png\" data-zoomable=\"false\" alt=\"alpha\"\/><\/p>\n<p>$\\alpha$<\/p>\n<p> is the cyclic frequency. For brevity, the derivation of the spectral correlation density as input to the MID is not included in this work but was presented by Urbanek et\u00a0al. (<a class=\"xref bibr\" href=\"#ref97\">Reference Urbanek, Antoni and Barszcz2012<\/a>). The <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline392.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"35\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline392.png\" data-zoomable=\"false\" alt=\"normal upper I normal upper M normal upper D\"\/><\/p>\n<p>$\\mathrm{IMD}$<\/p>\n<p> is normalised by its casewise maximum <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline393.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"42\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline393.png\" data-zoomable=\"false\" alt=\"normal upper I normal upper M normal upper D Superscript asterisk\"\/><\/p>\n<p>$\\mathrm{IMD}^*$<\/p>\n<p>, and plotted in <a class=\"xref fig\" href=\"#f28\">figure\u00a028<\/a>. Peaks in <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline394.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"58\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline394.png\" data-zoomable=\"false\" alt=\"normal upper I normal upper M normal upper D left parenthesis alpha right parenthesis\"\/><\/p>\n<p>$\\mathrm{IMD}(\\alpha )$<\/p>\n<p>, therefore, indicate periodicity in the second-order statistics at cyclic frequency <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline395.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"10\" height=\"8\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline395.png\" data-zoomable=\"false\" alt=\"alpha\"\/><\/p>\n<p>$\\alpha$<\/p>\n<p>. Integrating MID over all carriers emphasises periodic modulations of the turbulence ingestion case, e.g. pairs of ingestion-induced sidebands at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline396.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"124\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline396.png\" data-zoomable=\"false\" alt=\"f equals m normal upper B normal upper P normal upper F plus or minus n f 0\"\/><\/p>\n<p>$f=m\\mathrm{BPF}\\pm nf_0$<\/p>\n<p> contribute at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline397.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"157\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline397.png\" data-zoomable=\"false\" alt=\"alpha divided by normal upper B normal upper P normal upper F equals 1 comma 2 comma 3 comma ellipsis\"\/><\/p>\n<p>$\\alpha \/\\mathrm{BPF} = 1,\\,2,\\,3,\\,\\ldots$<\/p>\n<p>. The isolated propeller produces values close to zero and no peaks across <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline398.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"10\" height=\"8\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline398.png\" data-zoomable=\"false\" alt=\"alpha\"\/><\/p>\n<p>$\\alpha$<\/p>\n<p>, consistent with an unmodulated signal. Under SST ingestion, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline399.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"58\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline399.png\" data-zoomable=\"false\" alt=\"normal upper I normal upper M normal upper D left parenthesis alpha right parenthesis\"\/><\/p>\n<p>$\\mathrm{IMD}(\\alpha )$<\/p>\n<p> exhibits sharp peaks at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline400.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"123\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline400.png\" data-zoomable=\"false\" alt=\"alpha divided by normal upper B normal upper P normal upper F equals 1 comma 2 comma 3\"\/><\/p>\n<p>$\\alpha \/\\mathrm{BPF} = 1,\\,2,\\,3$<\/p>\n<p>, indicating rotation-locked modulation of the blade-pass harmonics. This is consistent with periodic vortex shedding from the upstream cylinder imposing a strong envelope on the tones (Keefe <a class=\"xref bibr\" href=\"#ref52\">Reference Keefe1962<\/a>). The absence of a visible <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline401.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"80\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline401.png\" data-zoomable=\"false\" alt=\"alpha divided by normal upper B normal upper P normal upper F equals 4\"\/><\/p>\n<p>$\\alpha \/\\mathrm{BPF} = 4$<\/p>\n<p> peak is consistent with the rapid decay of higher harmonics and the reduced number of harmonic pairs inside the integration band. The LST ingestion case exhibits only low-level, broadband humps centred near <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline402.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"46\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline402.png\" data-zoomable=\"false\" alt=\"m normal upper B normal upper P normal upper F\"\/><\/p>\n<p>$m\\mathrm{BPF}$<\/p>\n<p> generated when large, slowly convecting structures spread the modulation over a wider band (Martinez <a class=\"xref bibr\" href=\"#ref61\">Reference Martinez1997<\/a>; Yangzhou et\u00a0al. <a class=\"xref bibr\" href=\"#ref104\">Reference Yangzhou, Wu, Ma, Huang, Yangzhou, Wu, Ma and Huang2023<\/a>). A small feature at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline403.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"88\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline403.png\" data-zoomable=\"false\" alt=\"alpha equals 2 f Subscript 0 comma upper L upper S upper T\"\/><\/p>\n<p>$\\alpha = 2f_{0,\\,\\mathit{LST}}$<\/p>\n<p> is noted, representing a moderate correlation between the two sidebands.<\/p>\n<p>Figure 28.<\/p>\n<p class=\"p\">Normalised MID integrated over carrier frequencies for the isolated, SST ingestion and LST ingestion cases.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig28.png\" class=\"aop-lazy-load-image\" width=\"3191\" height=\"1406\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_fig28.png\" data-zoomable=\"true\" alt=\"A line graph showing normalized IMD integrated over carrier frequencies for different ingestion cases.\"\/><\/p>\n<p class=\"p\"> Following from the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline404.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"58\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline404.png\" data-zoomable=\"false\" alt=\"normal upper I normal upper M normal upper D left parenthesis alpha right parenthesis\"\/><\/p>\n<p>$\\mathrm{IMD}(\\alpha )$<\/p>\n<p> in <a class=\"xref fig\" href=\"#f28\">figure\u00a028<\/a>, the distinction between amplitude-modulated sidebands and turbulence-induced haystacking can be further drawn using several indicators and spectral organisation. In particular, the SST case is characterised by compact modulation and limited blade-to-blade correlation at the blade-passing delay, whereas the LST case exhibits stronger repeated blade interaction with coherent inflow structures, leading to broader humps around the BPF harmonics. The first acoustic metric quantifies the sharpness of the sidebands at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline405.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"70\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline405.png\" data-zoomable=\"false\" alt=\"normal upper B normal upper P normal upper F plus or minus f 0\"\/><\/p>\n<p>$\\mathrm{BPF}\\pm f_0$<\/p>\n<p> using the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline406.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"32\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline406.png\" data-zoomable=\"false\" alt=\"3 normal d normal upper B\"\/><\/p>\n<p>${3}\\,\\mathrm{dB}$<\/p>\n<p> bandwidths <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline407.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"48\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline407.png\" data-zoomable=\"false\" alt=\"upper B Subscript minus 3 normal d normal upper B\"\/><\/p>\n<p>$B_{-{3}\\,\\mathrm{dB}}$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline408.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"48\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline408.png\" data-zoomable=\"false\" alt=\"upper B Subscript plus 3 normal d normal upper B\"\/><\/p>\n<p>$B_{+{3}\\,\\mathrm{dB}}$<\/p>\n<p>. The averaged width is computed as <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline409.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"237\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline409.png\" data-zoomable=\"false\" alt=\"upper B Subscript plus or minus 3 normal d normal upper B Baseline equals left parenthesis 1 divided by 2 right parenthesis left parenthesis upper B Subscript minus 3 normal d normal upper B Baseline plus upper B Subscript plus 3 normal d normal upper B Baseline right parenthesis\"\/><\/p>\n<p>$B_{{\\pm 3}\\,\\mathrm{dB}}=(1\/2)\\! (B_{-{3}\\,\\mathrm{dB}}+B_{+{3}\\,\\mathrm{dB}} )$<\/p>\n<p> and the sideband compactness index is defined as <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline410.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"117\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline410.png\" data-zoomable=\"false\" alt=\"upper S Subscript s b Baseline equals f 0 divided by upper B Subscript plus or minus 3 normal d normal upper B\"\/><\/p>\n<p>$S_{sb}={f_0}\/{B_{{\\pm 3}\\,\\mathrm{dB}}}$<\/p>\n<p>. A large value of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline411.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"22\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline411.png\" data-zoomable=\"false\" alt=\"upper S Subscript s b\"\/><\/p>\n<p>$S_{sb}$<\/p>\n<p> indicates narrow sidebands, while haystacking produces broader humps, and is indicated by a low <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline412.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"22\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline412.png\" data-zoomable=\"false\" alt=\"upper S Subscript s b\"\/><\/p>\n<p>$S_{sb}$<\/p>\n<p> value (Yangzhou et\u00a0al. <a class=\"xref bibr\" href=\"#ref104\">Reference Yangzhou, Wu, Ma, Huang, Yangzhou, Wu, Ma and Huang2023<\/a>). The second acoustic metric compares the sidebands (<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline413.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"123\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline413.png\" data-zoomable=\"false\" alt=\"f Subscript plus or minus s b Baseline equals normal upper B normal upper P normal upper F plus or minus f 0\"\/><\/p>\n<p>$f_{\\pm sb}=\\mathrm{BPF}\\pm f_0$<\/p>\n<p>) and tone power using the same symmetric integration over half-bandwidth <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline414.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"16\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline414.png\" data-zoomable=\"false\" alt=\"upper W\"\/><\/p>\n<p>$W$<\/p>\n<p> (full bandwidth <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline415.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"61\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline415.png\" data-zoomable=\"false\" alt=\"upper B equals 2 upper W\"\/><\/p>\n<p>$B=2W$<\/p>\n<p>),<\/p>\n<p>(3.12)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn17.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"395\" height=\"97\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn17.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row upper R Subscript s p Baseline left parenthesis upper W right parenthesis equals StartFraction integral Subscript f Subscript italic hyphen s b Baseline minus upper W Superscript f Subscript italic hyphen s b Baseline plus upper W Baseline phi Subscript p p Baseline left parenthesis f right parenthesis normal d f plus integral Subscript f Subscript plus s b Baseline minus upper W Superscript f Subscript plus s b Baseline plus upper W Baseline phi Subscript p p Baseline left parenthesis f right parenthesis normal d f Over integral Subscript upper B upper P upper F minus upper W Superscript upper B upper P upper F plus upper W Baseline phi Subscript p p Baseline left parenthesis f right parenthesis normal d f EndFraction comma EndLayout\"\/><\/p>\n<p>\\begin{align} R_{\\mathit{sp}}(W)= \\frac {\\displaystyle \\int _{f_{\\textit{-}sb}-W}^{f_{\\textit{-}sb}+W}\\!\\phi _{pp}(f)\\,\\mathrm{d}f +\\int _{f_{+sb}-W}^{f_{+sb}+W}\\!\\phi _{pp}(f)\\,\\mathrm{d}f} {\\displaystyle \\int _{\\mathit{BPF}-W}^{\\mathit{BPF}+W}\\!\\phi _{pp}(f)\\,\\mathrm{d}f}, \\end{align}<\/p>\n<p class=\"p\"> where <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline416.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"53\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline416.png\" data-zoomable=\"false\" alt=\"phi Subscript p p Baseline left parenthesis f right parenthesis\"\/><\/p>\n<p>$\\phi _{pp}(f)$<\/p>\n<p> is the far-field pressure spectral density at the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline417.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"55\" height=\"14\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline417.png\" data-zoomable=\"false\" alt=\"theta equals 90 Superscript ring\"\/><\/p>\n<p>$\\theta =90^\\circ$<\/p>\n<p> observer. For compact peaks, <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline418.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"56\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline418.png\" data-zoomable=\"false\" alt=\"upper R Subscript s p Baseline left parenthesis upper W right parenthesis\"\/><\/p>\n<p>$R_{\\mathit{sp}}(W)$<\/p>\n<p> saturates quickly as <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline419.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"16\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline419.png\" data-zoomable=\"false\" alt=\"upper W\"\/><\/p>\n<p>$W$<\/p>\n<p> is increased, since most of the sideband energy is confined to the tone. Conversely, a smooth trend indicates that additional bandwidth continues to capture distributed broadband energy and is therefore characteristic of a hump of a broadband nature (Beckenbauer, Stemplinger\u00a0&amp; Selter <a class=\"xref bibr\" href=\"#ref6\">Reference Beckenbauer, Stemplinger and Selter1996<\/a>). In the SST ingestion case the sideband sharpness has a value of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline420.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"66\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline420.png\" data-zoomable=\"false\" alt=\"upper S Subscript s b Baseline equals 8.6\"\/><\/p>\n<p>$S_{sb}=8.6$<\/p>\n<p>, analogous of narrow peaks, and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline421.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"56\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline421.png\" data-zoomable=\"false\" alt=\"upper R Subscript s p Baseline left parenthesis upper W right parenthesis\"\/><\/p>\n<p>$R_{\\mathit{sp}}(W)$<\/p>\n<p> changes by <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline422.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"43\" height=\"13\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline422.png\" data-zoomable=\"false\" alt=\"almost equals 5 percent sign\"\/><\/p>\n<p>$\\approx 5\\,\\%$<\/p>\n<p> between <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline423.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"55\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline423.png\" data-zoomable=\"false\" alt=\"upper W equals 40\"\/><\/p>\n<p>$W=40$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline424.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"51\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline424.png\" data-zoomable=\"false\" alt=\"200 normal upper H normal z\"\/><\/p>\n<p>$200\\,\\mathrm{Hz}$<\/p>\n<p>, whereas in the LST ingestion case, the sidebands are broad with an <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline425.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"65\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline425.png\" data-zoomable=\"false\" alt=\"upper S Subscript s b Baseline almost equals 2.1\"\/><\/p>\n<p>$S_{sb}\\approx 2.1$<\/p>\n<p> and <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline426.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"56\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline426.png\" data-zoomable=\"false\" alt=\"upper R Subscript s p Baseline left parenthesis upper W right parenthesis\"\/><\/p>\n<p>$R_{\\mathit{sp}}(W)$<\/p>\n<p> decreases over the same range by <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline427.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"52\" height=\"12\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline427.png\" data-zoomable=\"false\" alt=\"almost equals 40 percent sign\"\/><\/p>\n<p>$\\approx 40\\,\\%$<\/p>\n<p>.<\/p>\n<p class=\"p\"> The cyclostationary metric probes coherence at the modulation scale directly. The cyclic coherence <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline428.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"61\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline428.png\" data-zoomable=\"false\" alt=\"gamma Subscript c Baseline left parenthesis f comma alpha right parenthesis\"\/><\/p>\n<p>$\\gamma _c(f,\\,\\alpha )$<\/p>\n<p>, evaluated at the cyclic frequency <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline429.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"10\" height=\"8\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline429.png\" data-zoomable=\"false\" alt=\"alpha\"\/><\/p>\n<p>$\\alpha$<\/p>\n<p>, is summarised by a carrier-centred band average with frequency resolution <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline430.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"78\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline430.png\" data-zoomable=\"false\" alt=\"normal upper Delta f equals 4 normal upper H normal z\"\/><\/p>\n<p>$\\Delta f={4}\\,\\mathrm{Hz}$<\/p>\n<p> and given by<\/p>\n<p>(3.13)<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn18.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"293\" height=\"47\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_eqn18.png\" data-zoomable=\"false\" alt=\"StartLayout 1st Row left angle bracket gamma Subscript c Baseline right angle bracket Subscript f Baseline left parenthesis alpha right parenthesis equals StartFraction 1 Over normal upper Delta f EndFraction integral Subscript upper B upper P upper F minus normal upper Delta f divided by 2 Superscript upper B upper P upper F plus normal upper Delta f divided by 2 Baseline gamma Subscript c Baseline left parenthesis f comma alpha right parenthesis normal d f comma EndLayout\"\/><\/p>\n<p>\\begin{align} \\langle \\gamma _c\\rangle _f(\\alpha )=\\frac {1}{\\Delta f}\\int _{\\mathit{BPF}-\\Delta f\/2}^{\\mathit{BPF}+\\Delta f\/2}\\gamma _c(f,\\,\\alpha )\\,\\mathrm{d}f, \\end{align}<\/p>\n<p class=\"p\"> so that a clear peak near <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline431.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"49\" height=\"16\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline431.png\" data-zoomable=\"false\" alt=\"alpha asymptotically equals f 0\"\/><\/p>\n<p>$\\alpha \\simeq f_0$<\/p>\n<p> indicates coherent amplitude modulation (Grizewski et\u00a0al. <a class=\"xref bibr\" href=\"#ref36\">Reference Grizewski, Behn, Funke and Siller2021<\/a>). The SST ingestion case shows a pronounced peak of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline432.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"89\" height=\"19\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline432.png\" data-zoomable=\"false\" alt=\"left angle bracket gamma Subscript c Baseline right angle bracket Subscript f Baseline equals 0.45\"\/><\/p>\n<p>$\\langle \\gamma _c\\rangle _f=0.45$<\/p>\n<p> at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline433.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"78\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline433.png\" data-zoomable=\"false\" alt=\"alpha asymptotically equals f Subscript 0 comma upper S upper S upper T\"\/><\/p>\n<p>$\\alpha \\simeq f_{0,\\,\\mathit{SST}}$<\/p>\n<p>, consistent with the compact sidebands, the results shown in <a class=\"xref fig\" href=\"#f28\">figure\u00a028<\/a> and the large <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline434.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline434.png\" data-zoomable=\"false\" alt=\"upper S t Subscript c\"\/><\/p>\n<p>$St_c$<\/p>\n<p> noted above. The LST ingestion case shows a broad maximum of <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline435.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"90\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline435.png\" data-zoomable=\"false\" alt=\"left angle bracket gamma Subscript c Baseline right angle bracket Subscript f Baseline equals 0.40\"\/><\/p>\n<p>$\\langle \\gamma _c\\rangle _f=0.40$<\/p>\n<p> at <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline436.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"79\" height=\"18\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline436.png\" data-zoomable=\"false\" alt=\"alpha asymptotically equals f Subscript 0 comma upper L upper S upper T\"\/><\/p>\n<p>$\\alpha \\simeq f_{0,\\,\\mathit{LST}}$<\/p>\n<p>, consistent with broad sidebands and the lower <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline437.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"21\" height=\"15\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline437.png\" data-zoomable=\"false\" alt=\"upper S t Subscript c\"\/><\/p>\n<p>$St_c$<\/p>\n<p>. Taken together, these metrics convey a consistent picture that aligns with previous results and reinforces that the SST ingestion case aligns with compact amplitude modulation, while the LST ingestion case exhibits haystacking, agreeing with the <\/p>\n<p><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/www.newsbeep.com\/il\/wp-content\/uploads\/2026\/07\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline438.png\" class=\"aop-lazy-load-image mathjax-alternative mathjax-alt-graphic mathjax-off\" width=\"58\" height=\"17\" data-original-image=\"\/binary\/version\/id\/urn:cambridge.org:id:binary:20260711111520038-0004:S0022112026118011:S0022112026118011_inline438.png\" data-zoomable=\"false\" alt=\"normal upper I normal upper M normal upper D left parenthesis alpha right parenthesis\"\/><\/p>\n<p>$\\mathrm{IMD}(\\alpha )$<\/p>\n<p> and with the spectra shown earlier. These flow and acoustic indicators have provided further evidence that the far-field acoustic characteristics of the propeller in response to turbulence inflows with different turbulence intensity, length scales and the extent of interaction are governed by distinct mechanisms with the SST ingestion case having significant acoustic modulations at the BPF and higher harmonics and the LST ingestion case experiencing more broadband increase with haystacking and a coexisting, yet weaker modulation at the BPF.<\/p>\n<p class=\"p\"> The present study generates inflow by two physical upstream cylinders of different diameters, representative of eVTOL configurations; the resulting wakes differ not only in characteristic scale but also in spatial extent, coherence and intensity at the propeller plane. In addition, other key parameters, such as the wake offset relative to the propeller axis, the cylinder Reynolds number and the ratio between the wake-shedding and propeller revolutions per minute, are not varied independently in this study. These quantities are all expected to influence the resulting blade loading and radiated sound through changes in the interaction area, persistence of blade-to-blade correlation and the extent to which the spectral response remains harmonic-dominated versus forming haystacking-like humps. Moreover, a continuous transition is expected between these two responses as the length scale and coherence are varied, such that intermediate inflow conditions would be anticipated to exhibit a combination of compact sideband modulation and haystacking spreading (see <a class=\"xref app\" href=\"#app2\">Appendix B<\/a> for the noise spectra from ingesting the turbulent wakes of an intermediate-sized cylinder). These results can inform predictive noise models as they further the understanding of the underlying mechanisms of noise generation for turbulence ingestion configurations of forward flight propellers.<\/p>\n","protected":false},"excerpt":{"rendered":"3.1. Aerodynamic characteristics of turbulence ingestion In order to understand the physical mechanisms of turbulence ingestion noise when&hellip;\n","protected":false},"author":2,"featured_media":540815,"comment_status":"","ping_status":"","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[24],"tags":[85,46,370,141],"class_list":["post-540814","post","type-post","status-publish","format-standard","has-post-thumbnail","category-physics","tag-il","tag-israel","tag-physics","tag-science"],"_links":{"self":[{"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/posts\/540814","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/comments?post=540814"}],"version-history":[{"count":0,"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/posts\/540814\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/media\/540815"}],"wp:attachment":[{"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/media?parent=540814"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/categories?post=540814"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.newsbeep.com\/il\/wp-json\/wp\/v2\/tags?post=540814"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}