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Research on mechanism and evolution features of frequency split phenomenon of tire acoustic cavity resonance

机译:轮胎声腔共振频率分裂现象的机理与演化特征研究

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摘要

The acoustic cavity resonance inside the tire-wheel assembly is known to contribute to audible noise in the passenger compartment of vehicles. To obtain control methods of tire acoustic cavity resonance, its characteristics and producing mechanism need to be clarified first. In this article, the finite element model of a tire coupled with acoustic medium in the tire cavity is constructed. The Euler method is introduced to study the modal characteristics of tire cavity under the influence of tire inflation pressure, load, and tire rotation velocity. Frequency splitting phenomena under four separate conditions (stationary tire without load, stationary tire with load, rotating tire without load, and rotating tire with load) are simulated and analyzed. The slope change of the resonance frequency as a function of rotation speed is found to be close to the reciprocal of tire radius which can be explained by a model of wave propagation in a ring-shaped channel with moving media inside the ring. The obtained function of the slope change can help determine the frequency variation range under different vehicle velocity, structure load, and tire inflation pressure, which can then help to control the cavity resonance energy and provide a more comfortable driving experience.
机译:众所周知,轮胎-车轮总成内的声腔共振会导致车辆乘客舱内产生可听见的噪音。为了获得轮胎声谐振的控制方法,首先需要弄清其特性和产生机理。本文建立了轮胎内腔声学介质耦合的有限元模型。采用欧拉方法研究了轮胎充气压力、载荷和轮胎转速对轮胎内腔模态特性的影响。对静止轮胎空载、静止轮胎带负载、转动轮胎空载和转动轮胎带负载四种工况下的分频现象进行了仿真分析。发现共振频率随转速的斜率变化接近轮胎半径的倒数,这可以用环形通道中的波传播模型来解释,环形通道内有移动介质。得到的斜率变化函数有助于确定不同车速、结构载荷和轮胎充气压力下的频率变化范围,从而有助于控制空腔共振能量,提供更舒适的驾驶体验。

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