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Towards the Development of Adaptive Finite Element Methods for Internal Flow Aeroacoustics

机译:内流空气声学自适应有限元方法的发展

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We report the latest results obtained in the development of an adaptive finite element method for computational aeroacoustics (CAA). The new methodology is based on the General Galerkin (G2) method, which has been successfully used for the computation of incompressible, turbulent flow. Here, we simulate the flow past an in-duct mixer plate and compare the results with available experimental data. The comparisons include mean velocity profiles and frequency content of the turbulent signal. No direct simulation of sound or sound wave propagation has been performed; instead, simple analogy arguments have been used to extract acoustic results from incompressible simulations by assuming a direct correlation between the computed pressure drop signal and the sound at the far field. We were able to reproduce the sound signal from experiments with our incompressible simulation and our results compared well with both the level and the broadband frequency peak of the measured sound. We suggest that the methodology presented here is mainly suitable for the prediction of sound in low Mach number pipe flows.
机译:我们报告在计算航空声学(CAA)的自适应有限元方法的发展中获得的最新结果。新方法基于通用Galerkin(G2)方法,该方法已成功用于不可压缩湍流的计算。在这里,我们模拟流过管道内混合器板的流量,并将结果与​​可用的实验数据进行比较。比较包括湍流信号的平均速度分布和频率含量。没有进行声音或声波传播的直接模拟;取而代之的是,通过假设计算的压降信号与远场声音之间存在直接相关性,简单的类比参数已被用于从不可压缩的模拟中提取声学结果。我们能够通过不可压缩的模拟从实验中再现声音信号,并将结果与​​所测声音的电平和宽带频率峰值进行了很好的比较。我们建议这里介绍的方法主要适用于低马赫数管道中的声音预测。

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