气动声学中Ffowcs - williams - hawkins公式积分的快速多极子计算方法

IF 1.3 Q3 ACOUSTICS
Yadong Zhang, Yijun Liu
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引用次数: 0

摘要

本文提出了一种利用时域快速多极子法(FMM)加速计算一般三维气动声学问题单极子和偶极子源积分的新方法。在这种方法中,气动声场通过一种混合方法进行预测,该方法使用计算流体力学(CFD)进行近场流场计算,使用Ffowcs williams - hawkins (FW-H)声学类比进行远场声场预测。利用三维FMM加速计算FW-H公式中单极子源项和偶极子源项的表面积分,以降低计算成本。本文将提出的方法称为Fast FW-H。通过几个实例验证了所提方法的性能和效率。首先,研究了均匀流动中静止声单极子、运动声单极子和静止声偶极子情况下的气动声学预测,结果与解析解基本一致。其次,研究了气流通过有限长圆柱体和无人机螺旋桨前飞时的声场,比较了在静止可渗透表面下,采用FW-H法和Fast FW-H法在时域上的计算结果。通过Fast FW-H方法获得的声场解的整体计算效率比原FW-H方法的计算效率快约两倍,表明该方法可以成为模拟远场气动声学问题的准确高效的计算工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fast Evaluations of Integrals in the Ffowcs Williams–Hawkings Formulation in Aeroacoustics via the Fast Multipole Method
A new approach to accelerating the evaluation of monopole and dipole source integrals via the fast multipole method (FMM) in the time domain for general three-dimensional (3-D) aeroacoustic problems is presented in this paper. In this approach, the aeroacoustic field is predicted via a hybrid method that uses computational fluid dynamics (CFD) for near-field flow field calculations and the Ffowcs Williams–Hawkings (FW-H) acoustic analogy for far-field sound field predictions. The evaluation of the surface integrals of the monopole and dipole source terms appearing in the FW-H formulation is accelerated by a 3-D FMM to reduce computational cost. The proposed method is referred to as Fast FW-H in this work. The performance and efficiency of the proposed methodology are demonstrated using several examples. First, aeroacoustic predictions for the cases of a stationary acoustic monopole, moving acoustic monopole and stationary acoustic dipole in a uniform flow are studied, generally showing good agreement with the analytical solutions. Second, the sound field radiating from a flow passing a finite-length circular cylinder and the propeller of an unmanned aerial vehicle (UAV) during forward flight are studied, and the computed results obtained via the FW-H and Fast FW-H methods in the time domain with a stationary, permeable surface are compared. The overall computational efficiency of the sound field solutions obtained via the Fast FW-H method is found to be approximately two times faster than the computational efficiency of the original FW-H method, indicating that this proposed approach can be an accurate and efficient computational tool for modelling far-field aeroacoustic problems.
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来源期刊
CiteScore
3.70
自引率
0.00%
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审稿时长
11 weeks
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