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Prediction of Split in Fundamental Air-Cavity Mode of Loaded Tires based on Experimental Observations and Computational Simulations

机译:基于实验观测和计算模拟的加载轮胎基本空腔模式分裂预测

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In previous studies, it was found that a tire's fundamental air-cavity mode, typically near 200 Hz for current passenger car tires, splits into two features when the tire is loaded. Since the deformed tire is no longer geometrically symmetric, separate fore-aft and vertical modes appear, the former mode appearing at a slightly lower frequency than the vertical mode. These modes are key contributors to dynamic loads on the suspension system and consequently on cabin noise near 200 Hz. In this context, measurements of the dispersion relations for a set of loaded tires were performed to investigate the range of magnitudes of the modal frequency split. Also, finite element analysis of a tire was deployed to model the dispersion in the vicinity of the fundamental air cavity mode. Splits ranging from approximately 3 Hz to 12 Hz at rated load were identified, and it has also been found that the magnitude of the frequency split for a given tire shows a low order polynomial relationship to the applied load.
机译:在以前的研究中,发现轮胎的基本空腔模式,通常接近200 Hz的当前乘用车轮胎,在装载轮胎时分为两个特征。由于变形轮胎不再是几何对称的,因此出现单独的前后和垂直模式,以前的模式出现在频率略低于垂直模式。这些模式是悬架系统上动态负载的关键贡献者,从而靠近200Hz附近的驾驶室噪声。在这种情况下,执行用于一组装载轮胎的分散关系的测量以研究模态频率分裂的大小的范围。此外,部署了轮胎的有限元分析以模拟基本空腔模式附近的分散体。鉴定了在额定载荷下从大约3 Hz到12Hz的分裂,并且还发现给定轮胎的频率分割的大小显示出与施加的负载的低阶多项式关系。

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