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Concurrent finite element simulation of quadrupolar and dipolar flow noise in low Mach number aeroacoustics

机译:低马赫数气动声学中四极和偶极流动噪声的并行有限元模拟

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摘要

The computation of flow-induced noise at low Mach numbers usually relies on a two-step hybrid methodolgy. In the first step, an incompressible fluid dynamics simulation (CFD) is performed and an acoustic source term is derived from it. The latter becomes the inhomogeneous term for an acoustic wave equation, which is solved in the second step, often resorting to boundary integral formulations. In the presence of rigid bodies, Curie's acoustic analogy is probably the most extended approach. It has been shown that Curie's boundary dipolar noise contribution does in fact correspond to the diffraction of the quadrupolar aerodynamic noise generated by the flow past the rigid body. In this work, advantage is taken from this fact to propose an alternative computational methodology to get the individual quadrupolar and dipolar contributions to the total acoustic pressure. For any linear acoustic wave operator, the unknown acoustic pressure can be split into its incident and diffracted components and be computed simultaneously to the incompressible flow field, in a single finite element computational run. This circumvents the problem found in Curie's analogy of needing the total pressure at the body's boundary, which includes the acoustic pressure fluctuations. The latter cannot be obtained from an incompressible CFD simulation. The proposed unified strategy could be beneficial for a large variety problems such as those involving noise generated from duct terminations, or those related with the simulation of fricatives in numerical voice production, among many others.
机译:低马赫数下流动引起的噪声的计算通常依赖于两步混合方法。第一步,执行不可压缩的流体动力学模拟(CFD),并从中得出声源项。后者成为声波方程的不均匀项,通常在第二步求解,通常采用边界积分公式。在刚体存在的情况下,居里的声学比喻可能是最广泛的方法。已经显示出居里边界偶极噪声的贡献实际上确实对应于流过刚体而产生的四极气动噪声的衍射。在这项工作中,从这一事实出发利用了优势,提出了一种替代的计算方法,以获得对总声压的各个四极和偶极贡献。对于任何线性声波算子,可以在单个有限元计算过程中将未知声压分为入射分量和衍射分量,并与不可压缩流场同时进行计算。这避免了居里类比中发现的需要身体边界处的总压力(包括声压波动)的问题。后者无法通过不可压缩的CFD模拟获得。所提出的统一策略可能有益于解决各种问题,例如涉及管道终端产生的噪声或与数字语音产生中的摩擦音模拟相关的问题。

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