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Fast computational aeroacoustics using random distributions of Kirchhoff's spinning vortices with application to sibilant sound generation.

机译:使用基尔霍夫旋转涡旋的随机分布进行快速计算的航空声学,并用于产生稳定的声音。

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Hybrid approaches to low Mach number computational aeroacoustics (CAA) for three-dimensional problems have a high computational cost and often demand resorting to supercomputing facilities. The bottleneck concerns the lirst step of the process, in which a computational fluid dynamics (CFD) simulation is carried out to solve the incompressible Navier-Stokes equations, to obtain the source term for the acoustic wave equation. In this work we suggest that, for some problems in which average results are only needed, it may be possible to avoid the CFD simulation and approximate the flow noise sources by means of a random distribution of Kirchhoff's spinning vortices. In this way, one simply needs to solve an acoustic linear wave operator to solve the aeroacoustics problem. We have applied such methodology to simulate the generation of the sibilant sound /s/ on a realistic geometry for which CAA and experimental data exist. After validation, the versatility of the proposed approach is tested on a simplified geometry, which may be useful to synthesize more complex sound in the future, like syllables. Implementation details of the vortex distribution in a stabilized finite element (FEM) code are also discussed.
机译:对于三维问题的低马赫数计算空气声学(CAA)的混合方法具有高的计算成本,并且经常需要诉诸超级计算设施。瓶颈涉及该过程的第一步骤,其中执行计算流体动力学(CFD)仿真以解决不可压缩的Navier-Stokes方程,以获得声波方程的源术语。在这项工作中,我们建议,对于仅需要平均结果的一些问题,可以避免CFD仿真并通过Kirchhoff的纺纱涡流的随机分布近似流噪声源。通过这种方式,只需要解决声学线性波操作员来解决空气声学问题。我们已经应用了这样的方法来模拟Sibilant声音/ s /在现实几何中的生成,其中存在CAA和实验数据。在验证之后,在简化的几何图形上测试所提出的方法的多功能性,这可能有助于在将来更复杂的声音,如音节。还讨论了稳定有限元(FEM)代码中涡流分布的实施细节。

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