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FE Simulation of Split in Fundamental Air-Cavity Mode of Loaded Tires: Comparison with Empirical Results

机译:在基本空气腔内装载轮胎模式下拆分的FE模拟:与经验结果的比较

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摘要

Tire/road noise has become a significant issue in the automotive industry, especially for electric vehicles. Among the various tire/road noise sources, the aircavity mode can amplify the forces transmitted from the tire to the suspension system causing noticeable cabin noise near 200 Hz. Furthermore, when the tire is deformed by loading, the fundamental air-cavity mode separates into two acoustic modes, a fore-aft mode and vertical mode due to the break in geometrical symmetry. This is important because the two components of the split mode can increase force levels at the hub by interacting with neighboring structural modes, thus resulting in increased interior noise levels. In this research, finite element simulations of five commercial tires at rated load were performed with a view to identifying the frequency split and its interaction with structural resonances. These results have been compared with previously obtained empirical results. Both mobility and dispersion diagrams reveal similar patterns as in the testing. Further, for three tires, the relation between the frequency split and the applied load was investigated, indicating that the split was enlarged with increased load level as a higher order function of load.
机译:轮胎/道路噪音已成为汽车行业,尤其​​是电动汽车的重要问题。在各种轮胎/道路噪声源中,气管模式可以扩增从轮胎传输到悬架系统的力,从而导致200 Hz接近200 Hz的机舱噪声。此外,当轮胎通过载荷变形时,基本空气腔模式分为两个声模式,由于几何对称性的破裂而导致的前AFT模式和垂直模式。这很重要,因为拆分模式的两个组件可以通过与相邻的结构模式相互作用,从而增加了集线器的力水平,从而导致内部噪声水平升高。在这项研究中,进行了额定负载下五个商业轮胎的有限元模拟,以确定频率拆分及其与结构共振的相互作用。这些结果已与先前获得的经验结果进行了比较。移动性和分散图都显示出与测试相似的模式。此外,对于三个轮胎,研究了频率拆分与施加载荷之间的关系,表明该分裂的载荷水平增加作为负载的较高级函数。

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