论文标题

用晶格Boltzmann方法分析和减少在网格细化界面产生的杂散噪声

Analysis and reduction of spurious noise generated at grid refinement interfaces with the lattice Boltzmann method

论文作者

Astoul, Thomas, Wissocq, Gauhier, Boussuge, Jean-François, Sengissen, Alois, Sagaut, Pierre

论文摘要

本研究的重点是在晶格Boltzmann方法中使用不均匀网格引起的非物理效应。特别是,跨网格细化界面上的涡旋结构的对流可能会产生可能影响整个计算域的虚假噪声。在空气模拟的情况下,此问题变得至关重要,因为精确的压力估计至关重要。本文的目的是确定界面处发生的问题,并提出可能的解决方案,从而为空气声模拟带来重大改进。更具体地说,这项研究强调了非物理模式在虚假涡度和声学的产生中的关键参与。由于在流体核心中进行的线性稳定性分析以及在模拟过程中专门强调它们的非流动力传感器,因此可以识别这些模式。寻求纯声波和剪切流的研究允许隔离每种模式的贡献。一个重要的结果是,由于网格转变算法的细节,伪造波的产生本质上是由于网格分辨率(即混轴剂)的变化。最后,提出的旨在最小化伪波幅度的解决方案包括在流体核心中选择适当的碰撞模型,以取消非流动力模式的贡献,无论网格耦合算法如何。结果在对流涡流和圆柱周围的湍流上得到了验证,在气缸围绕圆柱体上,均可获得伪噪声和涡度的巨大降低。

The present study focuses on the unphysical effects induced by the use of non-uniform grids in the lattice Boltzmann method. In particular, the convection of vortical structures across a grid refinement interface is likely to generate spurious noise that may impact the whole computation domain. This issue becomes critical in the case of aeroacoustic simulations, where accurate pressure estimations are of paramount importance. The purpose of this article is to identify the issues occurring at the interface and to propose possible solutions yielding significant improvements for aeroacoustic simulations. More specifically, this study highlights the critical involvement of non-physical modes in the generation of spurious vorticity and acoustics. The identification of these modes is made possible thanks to linear stability analyses performed in the fluid core, and non-hydrodynamic sensors specifically developed to systematically emphasize them during a simulation. Investigations seeking pure acoustic waves and sheared flows allow for isolating the contribution of each mode. An important result is that spurious wave generation is intrinsically due to the change in the grid resolution (i.e. aliasing) independently of the details of the grid transition algorithm. Finally, the solution proposed to minimize spurious wave amplitude consists of choosing an appropriate collision model in the fluid core so as to cancel the non-hydrodynamic mode contribution regardless the grid coupling algorithm. Results are validated on a convected vortex and on a turbulent flow around a cylinder where a huge reduction of both spurious noise and vorticity are obtained.

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