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The noise generated by a landing gear wheel with hub and rim cavities

机译:带有轮毂和轮辋腔的起落架轮产生的噪音

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摘要

Wheels are one of the major noise sources of landing gears. Accurate numerical predictions of wheel noise can provide an insight into the physical mechanism of landing gear noise generation and can aid in the design of noise control devices. The major noise sources of a 33% scaled isolated landing gear wheel are investigated by simulating three different wheel configurations using high-order numerical simulations to compute the flow field and the FW-H equation to obtain the far-field acoustic pressures. The baseline configuration is a wheel with a hub cavity and two rim cavities. Two additional simulations are performed; one with the hub cavity covered (NHC) and the other with both the hub cavity and rim cavities covered (NHCRC). These simulations isolate the effects of the hub cavity and rim cavities on the overall wheel noise. The surface flow patterns are visualised by shear stress lines and show that the flow separations and attachments on the side of the wheel, in both the baseline and the configuration with only the hub cavity covered, are significantly reduced by covering both the hub and rim cavities. A frequency-domain FW-H equation is used to identify the noise source regions on the surface of the wheel. The tyre is the main low frequency noise source and shows a lift dipole and side force dipole pattern depending on the frequency. The hub cavity is identified as the dominant middle frequency noise source and radiates in a frequency range centered around the first and second depth modes of the cylindrical hub cavity. The rim cavities are the main high-frequency noise sources. With the hub cavity and rim cavities covered, the largest reduction in Overall Sound Pressure Level (OASPL) is achieved in the hub side direction. In the other directivities, there is also a reduction in the radiated sound.
机译:车轮是起落架的主要噪声源之一。轮噪声的精确数值预测可以深入了解起落架噪声的产生机理,并有助于噪声控制装置的设计。通过使用高阶数值模拟来计算流场和FW-H方程以获得远场声压,通过模拟三种不同的车轮配置,研究了比例为33%的隔离式起落架齿轮的主要噪声源。基准配置是带有轮毂腔和两个轮辋腔的车轮。进行了两个附加的模拟。一个覆盖轮毂腔(NHC),另一个覆盖轮毂腔和轮辋腔(NHCRC)。这些模拟隔离了轮毂腔和轮辋腔对整体车轮噪声的影响。表面流动模式通过剪切应力线可视化,表明通过覆盖轮毂和轮辋腔,在基线和仅覆盖轮毂腔的配置中,车轮侧面的流分离和附着都得到了显着减少。频域FW-H方程用于识别车轮表面上的噪声源区域。轮胎是主要的低频噪声源,根据频率显示升力偶极子和侧向力偶极子模式。轮毂腔被识别为主要的中频噪声源,并在以圆柱形轮毂腔的第一和第二深度模式为中心的频率范围内辐射。边缘腔是主要的高频噪声源。通过覆盖轮毂腔和轮辋腔,可以在轮毂侧方向上最大程度地降低总体声压级(OASPL)。在其他方向性方面,辐射声也有所降低。

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