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Simulation of Sound Waves Using the Lattice Boltzmann Method for Fluid Flow: Benchmark Cases for Outdoor Sound Propagation

机译:使用格子Boltzmann方法进行流体声波模拟:室外声音传播的基准案例

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摘要

Propagation of sound waves in air can be considered as a special case of fluid dynamics. Consequently, the lattice Boltzmann method (LBM) for fluid flow can be used for simulating sound propagation. In this article application of the LBM to sound propagation is illustrated for various cases: free-field propagation, propagation over porous and non-porous ground, propagation over a noise barrier, and propagation in an atmosphere with wind. LBM results are compared with solutions of the equations of acoustics. It is found that the LBM works well for sound waves, but dissipation of sound waves with the LBM is generally much larger than real dissipation of sound waves in air. To circumvent this problem it is proposed here to use the LBM for assessing the excess sound level, i.e. the difference between the sound level and the free-field sound level. The effect of dissipation on the excess sound level is much smaller than the effect on the sound level, so the LBM can be used to estimate the excess sound level for a non-dissipative atmosphere, which is a useful quantity in atmospheric acoustics. To reduce dissipation in an LBM simulation two approaches are considered: i) reduction of the kinematic viscosity and ii) reduction of the lattice spacing.
机译:声波在空气中的传播可以视为流体动力学的一种特殊情况。因此,用于流体流动的格子Boltzmann方法(LBM)可用于模拟声音传播。本文介绍了LBM在各种情况下在声音传播中的应用:自由场传播,在多孔和非多孔地面上的传播,在噪声屏障上的传播以及在有风的大气中的传播。将LBM结果与声学方程的解进行比较。已经发现,LBM对于声波效果很好,但是使用LBM消散声波通常要比在空气中实际消散声波大得多。为了解决这个问题,这里提出使用LBM来评估多余的声级,即声级与自由场声级之间的差。消散对多余声级的影响要比对声级的影响小得多,因此LBM可以用于估计非消散性大气的过剩声级,这在大气声学中是一个有用的量。为了减少LBM仿真中的耗散,考虑了两种方法:i)降低运动粘度和ii)减小晶格间距。

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