A vertical coupling dynamic analysis method and engineering application of vehicle–track–substructure based on forced vibration

Guolong Li, M. Gao, Jingjing Yang, Yunlu Wang, Xueming Cao
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引用次数: 4

Abstract

PurposeThis study aims to propose a vertical coupling dynamic analysis method of vehicle–track–substructure based on forced vibration and use this method to analyze the influence on the dynamic response of track and vehicle caused by local fastener failure.Design/methodology/approachThe track and substructure are decomposed into the rail subsystem and substructure subsystem, in which the rail subsystem is composed of two layers of nodes corresponding to the upper rail and the lower fastener. The rail is treated as a continuous beam with elastic discrete point supports, and spring-damping elements are used to simulate the constraints between rail and fastener. Forced displacement and forced velocity are used to deal with the effect of the substructure on the rail system, while the external load is used to deal with the reverse effect. The fastener failure is simulated with the methods that cancel the forced vibration transmission, namely take no account of the substructure–rail interaction at that position.FindingsThe dynamic characteristics of the infrastructure with local diseases can be accurately calculated by using the proposed method. Local fastener failure will slightly affect the vibration of substructure and carbody, but it will significantly intensify the vibration response between wheel and rail. The maximum vertical displacement and the maximum vertical vibration acceleration of rail is 2.94 times and 2.97 times the normal value, respectively, under the train speed of 350 km·h−1. At the same time, the maximum wheel–rail force and wheel load reduction rate increase by 22.0 and 50.2%, respectively, from the normal value.Originality/valueThis method can better reveal the local vibration conditions of the rail and easily simulate the influence of various defects on the dynamic response of the coupling system.
基于强迫振动的车辆-轨道-子结构垂直耦合动力分析方法及工程应用
本研究旨在提出一种基于强迫振动的车辆-轨道-子结构垂直耦合动力分析方法,并利用该方法分析扣件局部失效对轨道和车辆动力响应的影响。设计方法将轨道和子结构分解为轨道子系统和子结构子系统,其中轨道子系统由两层节点组成,分别对应上轨和下扣。将钢轨视为具有弹性离散点支承的连续梁,采用弹簧-阻尼单元模拟钢轨与扣件之间的约束关系。强迫位移和强迫速度用于处理子结构对轨道系统的影响,而外载荷用于处理反向影响。采用消除强制振动传递的方法,即不考虑该位置的子结构-钢轨相互作用,对扣件失效进行了模拟。结果采用该方法可以准确地计算出局部病害基础设施的动态特征。局部扣件失效对车底结构和车体的振动影响较小,但会显著加剧轮轨间的振动响应。列车运行速度为350 km·h−1时,钢轨最大垂直位移和最大垂直振动加速度分别是正常值的2.94倍和2.97倍。同时,最大轮轨力和轮载减载率分别比正常值提高22.0%和50.2%。该方法能较好地揭示钢轨的局部振动情况,方便地模拟各种缺陷对耦合系统动态响应的影响。
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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