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Numerical study of Mach number and thermal effects on sound radiation by a mixing layer

机译:马赫数和热对混合层声辐射影响的数值研究

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Mach number and thermal effects on the mechanisms of sound generation and propagation are investigated in spatially evolving two-dimensional isothermal and non-isothermal mixing layers at Mach number ranging from 0.2 to 0.4 and Reynolds number of 400. A characteristic-based formulation is used to solve by direct numerical simulation the compressible Navier-Stokes equations using high-order schemes. The radiated sound is directly computed in a domain that includes both the near-field aerodynamic source region and the far-field sound propagation. In the isothermal mixing layer, Mach number effects may be identified in the acoustic field through an increase of the directivity associated with the non-compactness of the acoustic sources. Baroclinic instability effects may be recognized in the non-isothermal mixing layer, as the presence of counter-rotating vorticity layers, the resulting acoustic sources being found less efficient. An analysis based on the acoustic analogy shows that the directivity increase with the Mach number can be associated with the emergence of density fluctuations of weak amplitude but very efficient in terms of noise generation at shallow angle. This influence, combined with convection and refraction effects, is found to shape the acoustic wavefront pattern depending on the Mach number.
机译:在空间演化的二维等温和非等温混合层中研究了马赫数和热对声音生成和传播机理的影响,马赫数范围为0.2到0.4,雷诺数为400。通过直接数值模拟使用高阶方案求解可压缩的Navier-Stokes方程。在包含近场空气动力源区域和远场声音传播的域中直接计算辐射的声音。在等温混合层中,可以通过增加与声源的非紧凑性相关的方向性来在声场中识别马赫数效应。在非等温混合层中,由于存在反向旋转的涡旋层,因此可以认识到斜压不稳定效应,发现所得声源效率较低。基于声学类比的分析表明,方向性随马赫数的增加可能与弱振幅密度波动的出现有关,但在浅角度产生噪声方面非常有效。发现这种影响与对流和折射效应相结合,可以根据马赫数对声波阵面图形进行整形。

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