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An Experimental and Multiphysics Based Numerical Study to Predict Automotive Fuel Tank Sloshing Noise

机译:基于实验和多物理场的数值研究预测汽车油箱晃动噪声

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摘要

With significant decrease in the background noise in present day automobiles, liquid slosh noise from an automotive fuel tank is considered as a major irritant during acceleration and deceleration. All major international OEMs and their suppliers try to reduce sloshing noise by various design modifications in the fuel tank. However, most major activities reported in open literature are primarily based on performing various CAE and experimental studies in isolation. However, noise generation and its propagation is a multiphysics phenomenon, where fluid mechanics due to liquid sloshing affects structural behaviour of the fuel tank and its mountings which in turn affects noise generation and propagation. In the present study a multiphysics approach to noise generation has been used to predict liquid sloshing noise from a rectangular tank. Computational Fluid dynamics (CFD), Finite Element Analysis (FEA) and Boundary Element Method (BEM) simulation studies have been performed in a semi-coupled manner to predict noise. VOF based multiphase model along with k-ε turbulence model was used to perform the CFD studies. Sloshing Noise generated due to fluid interaction with structural walls is simulated using Vibro-acoustic model. An integrated model is developed to predict dynamic forces and vibration displacement on tank walls due to dynamic pressure loading on tank walls. Noise radiated from tank walls is modelled by Harmonic Boundary Element Method. Experimental and numerical studies have been performed to understand the mechanics of sloshing noise generation. Images from high speed video camera and noise measurement data have been used to compare with numerical models.
机译:随着当今汽车的背景噪声的显着降低,来自汽车燃料箱的液体晃动噪声被认为是加速和减速期间的主要刺激物。所有主要的国际OEM及其供应商都试图通过对油箱进行各种设计更改来减少晃动噪音。但是,公开文献中报道的大多数主要活动主要是基于单独进行各种CAE和实验研究。但是,噪声的产生和传播是一种多物理现象,在这种情况下,由于液体晃动引起的流体力学会影响燃油箱及其安装件的结构性能,进而影响噪声的产生和传播。在本研究中,已经采用了一种多物理场的噪声生成方法来预测来自矩形水箱的液体晃动噪声。已经以半耦合方式进行了计算流体力学(CFD),有限元分析(FEA)和边界元方法(BEM)模拟研究,以预测噪声。基于VOF的多相模型与k-ε湍流模型一起用于CFD研究。使用振动声学模型模拟由于流体与结构墙相互作用而产生的晃动噪声。开发了一个集成模型来预测由于罐壁上的动态压力载荷而引起的罐壁上的动力和振动位移。罐壁辐射的噪声通过谐波边界元法建模。已经进行了实验和数值研究,以了解晃荡噪声产生的机理。来自高速摄像机的图像和噪声测量数据已用于与数值模型进行比较。

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