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Numerical investigation of cavity self-oscillation and noise radiation induced by turbulent flow at non-zero inclination angle

机译:非零倾斜角度湍流流动诱导腔自振荡和噪声辐射的数值研究

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摘要

A hybrid numerical approach was used on a three-dimensional cavity at a non-zero inclination angle of the upstream section to reveal the mechanism of self-oscillation and the characteristics of far-field sound field. In this hybrid approach, the unsteady flow physics was captured by a compressible large eddy simulation, and the far-field sound field was calculated by the FW-H integral equation, with the noise source provided by near-field calculation. The mechanism of self-oscillation was revealed based on the instantaneous flow field structure and the pressure inside the cavity. The effects of the position of opening, inclination angle and neck thickness on the frequency and amplitude of the fluctuation pressure inside the cavity were examined. Results showed that the frequency and the amplitude were sensitive to the inclination angle but not to the position of the opening. Under varying neck thicknesses, the fundamental frequencies changed, but the amplitude remained almost constant. The influences of the boundary layer thickness on the amplitude of the fluctuation pressure was also investigated. Results revealed that the oscillation was suppressed once the boundary layer thickness reached a critical value. The findings could provide a reference for a quiet car with a low sunroof buffeting noise. (C) 2017 Acoustical Society of America.
机译:在上游部分的非零倾斜角处的三维空腔上使用混合数值方法,以揭示自振荡的机制和远场声场的特性。在这种混合方法中,通过可压缩的大涡模拟捕获不稳定的流物理,并且通过近场计算提供的FW-H积分方程计算远场声场。基于瞬时流场结构和腔内的压力揭示了自振荡的机理。检查了打开位置,倾斜角度和颈部厚度对腔内波动压力频率和幅度的影响。结果表明,频率和幅度对倾斜角度敏感,但不对开口的位置敏感。在不同的颈部厚度下,基本频率发生变化,但幅度几乎保持不变。还研究了边界层厚度对波动压力幅度的影响。结果显示,一旦边界层厚度达到临界值,振荡被抑制。调查结果可以为一个带有低天窗噪声的安静汽车提供参考。 (c)2017年声学社会。

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    Wuhan Univ Technol Dept Automot Engn 205 Luoshi Rd Wuhan 430070 Hubei Peoples R China;

    Wuhan Univ Technol Dept Automot Engn 205 Luoshi Rd Wuhan 430070 Hubei Peoples R China;

    Wuhan Univ Technol Dept Automot Engn 205 Luoshi Rd Wuhan 430070 Hubei Peoples R China;

    Wuhan Univ Technol Dept Automot Engn 205 Luoshi Rd Wuhan 430070 Hubei Peoples R China;

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  • 正文语种 eng
  • 中图分类 声学;
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