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Helicopter Blade-Vortex Interaction Airload and Noise Prediction Using Coupling CFD/VWM Method

机译:基于CFD / VWM耦合的直升机叶片涡相互作用空气载荷和噪声预测

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As a high resolution airload with accurate rotor wake is pivotal for rotor BVI (Blade-vortex interaction) analysis, a hybrid method with combined Navier-Stokes equation, viscous wake model, and FW-H (Ffowcs Williams-Hawkings) equation is developed for BVI airload and noise in this paper. A comparison with the CFD (Computational Fluid Dynamics)/FW-H method for the AH-1/OLS (Operational Load Survey) rotor demonstrates its capability for favorable accuracy and high computation efficiency. This paper further discusses the mechanisms for the impacts of four flight parameters (i.e., tip-path-plane angle, thrust coefficient, tip Mach number, advance ratio) on BVI noise. Under the BVI condition, several BVI events concurrently occur on the rotor disk. Each interaction has a distinct radiation direction which depends on the interaction azimuth, and its noise intensity is highly associated with the characteristic parameters (e.g., miss-distance, interaction angle, vortex strength). The BVI noise is dominated by the interactions at 30–90° in azimuth on the advancing side, of which the wake angle range is from 180° to 540°. Furthermore, the tip-path-plane angle, thrust coefficient, and tip Mach number change the noise intensity mainly via miss-distance, interaction angle, and vortex strength, but for different advance ratios, the noise intensity and propagation direction are more dependent on the interaction angle and interaction azimuth.
机译:由于具有精确转子尾流的高分辨率空气负荷对于转子BVI(叶片-涡旋相互作用)分析至关重要,因此,开发了一种结合了Navier-Stokes方程,粘性尾流模型和FW-H(Ffowcs Williams-Hawkings)方程的混合方法本文中的英属维尔京群岛空载和噪音。与用于AH-1 / OLS(运行负荷测量)转子的CFD(计算流体力学)/ FW-H方法的比较证明了其具有良好的精度和较高的计算效率的能力。本文进一步讨论了四个飞行参数(即叶尖-路径平面角,推力系数,叶尖马赫数,前进比)对BVI噪声影响的机制。在BVI条件下,转子盘上同时发生多个BVI事件。每个相互作用具有取决于相互作用方位角的不同辐射方向,并且其噪声强度与特征参数(例如,错位距离,相互作用角,涡旋强度)高度相关。 BVI噪声主要由前进侧方位角在30-90°处的相互作用所决定,其尾波角度范围为180°至540°。此外,叶顶路径平面角,推力系数和叶顶马赫数主要通过未命中距离,相互作用角和涡流强度来改变噪声强度,但是对于不同的前进比,噪声强度和传播方向更依赖于相互作用角和相互作用方位角。

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