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A Study of Groove Pulsation Noise Reduction by Simple Aerodynamic Modelling of a Tire Rolling on Porous Pavement

机译:通过在多孔路面上滚动的轮胎的简单气动建模来减少沟槽脉动噪声的研究

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The effect of road surface porosity on tire noise was investigated using a simple computational fluid dynamics model. The object of this study is the air pulsation amplitude in a tread groove placed in the circumferential direction. In this CFD simulation, the rolling tire was replaced by the wind speed distribution around a cylinder. Then, a mirror image of the tire was set on the underside of the road surface and it expressed the road surface porosity by slightly reducing the wind speed distribution around it avoiding complex shape modelling. In this way, air flows into the road surface, and the air pressure decreases slightly there eventually. As a result, the pressure difference before and after groove becomes small. Another result is that pulsation within the groove is generated when the effective cross-sectional area of the groove changes due to the roughness of the road surface. According to simple calculation, the sound source intensity due to this pulsation is comparable to that caused by monopole sources at the groove entrance due to surface unevenness. This study confirmed that porous pavement decreases tire groove pulsation noise by reducing static pressure difference between the leading and trailing entrances.
机译:使用简单的计算流体动力学模型研究了路面孔隙度对轮胎噪声的影响。本研究的目的是沿周向放置的胎面花纹沟中的空气脉动幅度。在此CFD模拟中,将滚动轮胎替换为圆柱周围的风速分布。然后,将轮胎的镜像设置在路面的下侧,并通过略微减小轮胎周围的风速分布来避免复杂的造型,从而表示路面的孔隙率。这样,空气流入路面,并且空气压力最终在那里稍微降低。结果,凹槽前后的压力差变小。另一个结果是,当凹槽的有效截面积由于路面的粗糙度而变化时,在凹槽内产生脉动。根据简单的计算,由于这种脉动而产生的声源强度可与由于表面不平整而在凹槽入口处由单极声源引起的声源强度相媲美。这项研究证实,多孔路面可通过减小前入口和后入口之间的静压差来降低轮胎凹槽的脉动噪声。

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