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UNDERSTANDING TIRE ACOUSTICS THROUGH COMPUTATIONAL FLUID DYNAMICS (CFD) OF GROOVES WITH DEFORMING WALLS

机译:通过具有变形墙壁的凹槽的计算流体动力学(CFD)了解轮胎声学

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Reducing tire noise has been a topic of increased focus in the recent years in industrial countries in order to decrease road traffic noise. Computational fluid dynamics (CFD) simulations conducted using ANSYS FLUENT are presented here to provide a better understanding of the small-scale noise generation mechanisms due to air-pumping at the tire-road interface. The CFD model employs a large eddy simulation (LES) turbulence modeling approach, where the filtered compressible Navier-Stokes equations are solved for simple groove geometries with a moving bottom wall that represents the deformation due to the tire movement along the road surface. A horizontally moving wall is used to represent the motion of the tire groove in and out of the contact patch while the deformation of the groove is prescribed. Temporal and spatially accurate pressure fluctuations are utilized to determine sound pressure levels and dominant frequencies. In addition to an understanding of noise generation mechanisms in such grooves, the CFD model developed here can potentially provide a series of control parameters that can help optimize the tire performance in terms of tire acoustics.
机译:减少轮胎噪音是近年来工业国家近年来焦点的主题,以减少道路交通噪音。这里介绍了使用ANSYS流畅的计算流体动力学(CFD)模拟,以便在轮胎道路界面处泵送引起的小规模噪声产生机制更好地理解。 CFD模型采用大型涡流仿真(LES)湍流建模方法,其中滤波的可压缩Navier-Stokes方程求解用于具有移动底壁的简单凹槽几何形状,所述移动底壁表示由于沿着路面的轮胎运动而表示变形。水平移动的壁用于表示轮胎槽进出接触贴片的运动,同时规定凹槽的变形。使用时间和空间精确的压力波动来确定声压水平和主导频率。除了理解这种凹槽中的噪声生成机制之外,这里开发的CFD模型可能提供一系列控制参数,可以帮助优化轮胎声学的轮胎性能。

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