转向架
阻尼器
工程类
刚度
结构工程
汽车工程
临界转速
车辆动力学
机制(生物学)
机械工程
转子(电动)
物理
量子力学
作者
Zhaotuan Guo,Maoru Chi,Jianfeng Sun,Yixiao Li,Liangcheng Dai
标识
DOI:10.1080/00423114.2023.2250887
摘要
AbstractThe yaw damper serves as a hydraulic system connecting the bogie frame with the carbody and is the most critical component to prevent unstable oscillations of high-speed vehicles. Accidently, some unexpected factors can cause the yaw damper to fail, resulting in vehicle hunting instability. In this paper, a severe bogie-hunting phenomenon was monitored during the operation of a Chinese high-speed train. Specific research on the cause and solutions was performed by experimental and numerical methods. The wheel-rail contact relationship and the dynamic performance of the yaw damper were measured and analysed to identify the primary contributor to violent bogie hunting. The results indicated that the abnormal dynamic stiffness and damping of the yaw damper caused by the compression empty stokes serve as the primary origin of this abnormal vibration. The multi-body dynamics model of the high-speed train was established by integrating the field-tested parameters. The bogie hunting phenomenon was reproduced successfully, and the influences of yaw damper parameters on bogie hunting stability were analysed to propose the optimisation scheme. Finally, two solutions were adopted to suppress the empty compression strokes of the yaw damper and verified by the roller rig test.KEYWORDS: High-speed trainBogie huntingyaw dampercompression empty strokesroller rig test Disclosure statementNo potential conflict of interest was reported by the author(s).Additional informationFundingThis work was supported by National Natural Science Foundation of China [Grant Number U21A20168].
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