用于预测通用侧镜近场气声噪声的涡流声模型

IF 0.9 4区 物理与天体物理 Q4 ACOUSTICS
X. Gu, J. Du
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引用次数: 0

摘要

摘要 建立了一个用于研究气流与崖体相互作用产生的空气动力声的数值模型,并将其应用于计算通过普通侧反射镜的湍流气流引起的近场噪声。流场采用粘性漩涡法进行模拟。然后利用涡流声方程从模拟结果中提取计算域内的声源。声波是辐射声和散射声的总和,采用时域边界元法结合卷积正交法来确定,以提高时间行进算法的稳定性。此外,还采用了快速多极法来提高计算效率。计算得到的压力系数和表面压力波动与测量结果和模拟结果非常吻合,得到的近场空气动力声频谱也与测量结果接近。另外两种情况的计算结果与之前的研究结果进行了比较,结果令人信服地表明,所提出的模型可以有效地预测流动引起的近场噪声。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Vortex Sound Model for the Prediction of Near-Field Aeroacoustic Noise from a Generic Side Mirror

A Vortex Sound Model for the Prediction of Near-Field Aeroacoustic Noise from a Generic Side Mirror

A Vortex Sound Model for the Prediction of Near-Field Aeroacoustic Noise from a Generic Side Mirror

A numerical model for investigating the aerodynamic sound generated by the interaction between flow and bluff body is developed, and then applied to the computation of near-field noise induced by the turbulent airflow passing through a generic side mirror. The flow field is simulated by employing the viscous vortex method. Then the sound sources within the computational domain are extracted from the simulated results with a vortex sound equation. The sound waves, sum of radiated sound and scattered sound, are determined using a time-domain boundary element method combined with the convolution quadrature method for improving the stability of the time marching algorithm. Further, the fast multipole method is adopted to enhance the computational efficiency. The computed pressure coefficients and surface pressure fluctuations match the measurements and simulations very well, and the obtained spectra of near-field aerodynamic sound are also close to the measured results. The comparisons of computed results of two additional cases with the previous studies demonstrate convincingly that the proposed model can effectively predict the flow-induced near-field noise.

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来源期刊
Acoustical Physics
Acoustical Physics 物理-声学
CiteScore
1.60
自引率
50.00%
发文量
58
审稿时长
3.5 months
期刊介绍: Acoustical Physics is an international peer reviewed journal published with the participation of the Russian Academy of Sciences. It covers theoretical and experimental aspects of basic and applied acoustics: classical problems of linear acoustics and wave theory; nonlinear acoustics; physical acoustics; ocean acoustics and hydroacoustics; atmospheric and aeroacoustics; acoustics of structurally inhomogeneous solids; geological acoustics; acoustical ecology, noise and vibration; chamber acoustics, musical acoustics; acoustic signals processing, computer simulations; acoustics of living systems, biomedical acoustics; physical principles of engineering acoustics. The journal publishes critical reviews, original articles, short communications, and letters to the editor. It covers theoretical and experimental aspects of basic and applied acoustics. The journal welcomes manuscripts from all countries in the English or Russian language.
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