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A particle accelerated CFD-BEM technique applied to aeroacoustic scattering

机译:粒子加速CFD-BEM技术应用于空气声散射

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A particle accelerated computational fluid dynamics (CFD) - boundary element method (BEM) technique is proposed that allows the total sound pressure field produced by low Mach number flow past a rigid body to be predicted. An incompressible CFD solver is used to calculate the transient hydrodynamic flow field. The CFD/BEM coupling technique is then used to compute the acoustic pressure and pressure gradient incident on the body. The incident acoustic field is calculated based on a near-field solution of Lighthill's analogy. Numerical techniques are employed to accurately evaluate the strongly singular and hypersingular surface and volume integrals. A particle condensation technique is applied to accelerate the incident field computations and reduce the amount of data that must be stored during the CFD analysis. The incident field is then combined with a BEM model of the body to predict the scattered sound pressure field. The BEM model solves the Burton-Miller boundary integral equations to guarantee a unique solution at all frequencies. Results from the particle accelerated CFD-BEM technique are presented for flow past a circular cylinder with Reynolds number, Re_D=100 and Mach number, M=0.02. The directivity of the sound pressure field at the vortex shedding frequency and its harmonics predicted using the condensation technique are compared with non-condensed results as well as results obtained using Curie's analogy.
机译:提出了一种粒子加速计算流体力学(CFD)-边界元方法(BEM)技术,该技术可以预测由低马赫数流过刚体所产生的总声压场。不可压缩的CFD求解器用于计算瞬态流体动力流场。然后,将CFD / BEM耦合技术用于计算声压和入射在人体上的压力梯度。基于Lighthill类比的近场解计算入射声场。使用数值技术来准确评估强奇异和超奇异的表面和体积积分。应用粒子凝聚技术来加速入射场计算并减少在CFD分析过程中必须存储的数据量。然后,将入射场与人体的BEM模型结合起来,以预测散射的声压场。 BEM模型求解Burton-Miller边界积分方程,以确保在所有频率下都有唯一的解决方案。给出了通过粒子加速CFD-BEM技术的结果,结果表明流经具有Reynolds数Re_D = 100和Mach数M = 0.02的圆柱体。将声压场在涡旋脱落频率处的方向性以及使用冷凝技术预测的谐波与未压缩的结果以及使用居里的类比获得的结果进行了比较。

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