Transversal Vibration Analysis of Vehicle Track System

Pingxin Wang, X. Rui, Jianshu Zhang, Hailong Yu
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Abstract

The track is mainly composed of track shoes, track pins and rubber bushing elements. In order to suppress the transversal vibration of the upper track during the smooth running process of the tracked vehicle, it is necessary to study the important factors affecting the frequency characteristics of the kinematic chain and their interaction. Unlike the conventional chain drive system, the track in the natural state has a bending rigidity due to the action of the rubber bushing. Based on the dynamic theory of axially moving beam, the differential equation of transversal vibration of a beam element is established. The entire upper track is assumed to be a continuous multi-span axially moving Euler-Bernoulli beam with an axial tension. Based on the Transfer Matrix Method of Multibody System, the transfer equation is obtained. According to the boundary conditions, the natural frequency of the system is solved. The correctness of the beam model hypothesis is verified by experiments. The results show that the first-order natural frequency of the upper track increases with the increase of the tension and the decrease of the vehicle speed. Through frequency analysis, the main excitation source for the transversal vibration of the track is the polygon effect produced by the meshing of the track and the sprocket. This study provides a theoretical basis for the vibration analysis and stability control of the upper track on the tracked vehicle.
车辆轨道系统横向振动分析
履带主要由履带鞋、履带销和橡胶衬套元件组成。为了抑制履带车辆在平稳行驶过程中上部轨道的横向振动,有必要对影响运动链频率特性及其相互作用的重要因素进行研究。与传统的链传动系统不同,由于橡胶衬套的作用,轨道在自然状态下具有弯曲刚度。基于轴向运动梁的动力学理论,建立了梁单元横向振动的微分方程。整个上部轨道假定为具有轴向张力的连续多跨轴向运动欧拉-伯努利梁。基于多体系统的传递矩阵法,得到了传递方程。根据边界条件,求解了系统的固有频率。通过实验验证了梁模型假设的正确性。结果表明:上部轨道的一阶固有频率随张力的增大和车速的减小而增大;通过频率分析,轨道横向振动的主要激励源是轨道与链轮啮合产生的多边形效应。该研究为履带车辆上部轨道的振动分析和稳定性控制提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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