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Flow Induced Interior Noise Prediction of a Passenger Car

机译:客车流动引起的室内噪声预测

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Prediction of flow induced noise in the interior of a passenger car requires accurate representations of both fluctuating surface pressures across the exterior of the vehicle and efficient models of the vibro-acoustic transmission of these surface pressures to the driver's ear. In this paper, aeroacoustic and vibro-acoustic methods are combined in order to perform an aero-vibro-acoustic analysis of a Mercedes-Benz A-class. The exterior aero-acoustic method consists of a time domain incompressible Detached Eddy Simulation (DES) and an acoustic wave equation. The method is extended in this paper to account for convection effects when modelling the exterior sound propagation. The interior vibro-acoustic model consists of a frequency domain Finite Element (FE) model of the side glass combined with a generalized Statistical Energy Analysis (SEA) model of the interior cabin. The method is extended in this paper to account for additional geometric details that affect the direct and reverberant fields within the cabin. The overall approach is presented and validated against vibro-acoustics tests and wind tunnel measurements for two separate mirror designs. The aero-vibro-acoustic method achieves very good results and accurately predicts the change in interior noise resulting from an exterior body design change.
机译:预测乘用车内部流动引起的噪声需要准确表示车辆外部整个表面的波动表面压力,以及将这些表面压力通过振动声传递到驾驶员耳朵的有效模型。在本文中,将空气声学和振动声学方法相结合,以便对梅赛德斯-奔驰A级进行空气振动声学分析。外部航空声学方法由时域不可压缩的分离涡模拟(DES)和声波方程组成。本文扩展了该方法,以在对外部声音传播进行建模时考虑对流效应。内部振动声学模型由侧玻璃的频域有限元(FE)模型与内部舱室的广义统计能量分析(SEA)模型组成。本文扩展了该方法,以解决影响机舱内直接和混响场的其他几何细节。提出并针对两个单独的反射镜设计进行了振动声学测试和风洞测量,并对整个方法进行了验证。航空振动声学方法取得了很好的效果,并准确地预测了由外部车身设计变化引起的内部噪声变化。

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