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高速列车随机激振载荷无砟轨道路基的动应力分布规律
引用本文:董小龙,冯靖淳,刘刚,胡瑞奇. 高速列车随机激振载荷无砟轨道路基的动应力分布规律[J]. 土木与环境工程学报, 2021, 43(4): 42-51
作者姓名:董小龙  冯靖淳  刘刚  胡瑞奇
作者单位:中铁隧道集团二处有限公司, 河北 廊坊 065000;华东交通大学 土木建筑学院, 南昌 330013
基金项目:国家自然科学基金(51978265);江西省主要学科学术和技术带头人培养计划(20194BCJ22009)
摘    要:相较于传统的列车-轨道-路基整体耦合三维有限元模型,提出一种优化处理列车荷载的方法,基于多体系统动力学理论建立列车-轨道垂向耦合模型,并通过数值计算得到考虑了轨道随机不平顺条件下的轮轨激振载荷,随后利用二次开发子程序将轮轨载荷导入无砟轨道-路基-天然地基土非线性数值分析三维有限元模型,在此基础上研究分析高速移动荷载作用...

关 键 词:列车荷载  高速铁路路基  随机不平顺  无砟轨道  动应力
收稿时间:2020-07-19

Dynamic stress distribution law of ballastless track subgrade under random excitation load of high-speed train
DONG Xiaolong,FENG Jingchun,LIU Gang,HU Ruiqi. Dynamic stress distribution law of ballastless track subgrade under random excitation load of high-speed train[J]. Journal of Civil and Environmental Engineering, 2021, 43(4): 42-51
Authors:DONG Xiaolong  FENG Jingchun  LIU Gang  HU Ruiqi
Affiliation:China Railway Tunnel Group Second Engineering Co., Ltd., Langfang 065000, Hebei, P. R. China;School of Civil Engineering, East China Jiaotong University, Nanchang 330013, P. R. China
Abstract:In this study, compared with the traditional train-track-subgrade integral coupling three-dimensional finite element model, an optimized method for handling train loads has been proposed. The train-track vertical coupling model was established based on the multi-body system dynamics theory, and the wheel-rail excitation load under the condition of random track irregularity was obtained through numerical calculation. Then the wheel-rail load was imported into the ballastless track-subgrade-natural foundation soil nonlinear numerical analysis three-dimensional finite element model by using the secondary development subroutine. On this basis, the dynamic stress distribution law of subgrade under high-speed moving load was studied and analyzed. The research results show that the vehicle load processing method used in this paper replaces the vehicle-irregular track-subgrade-foundation integrated vibration model under the premise of ensuring the calculation accuracy, reducing the modeling and calculation time cost, which has certain reference significance; The vertical dynamic stress distribution law along the transverse direction shows that the value is larger in the track structure, and the value in the subgrade bed is much smaller than that in the track structure. The surface layer of the subgrade bed and the bottom surface of the subgrade bed appears "saddle-shaped" distribution; The vertical dynamic stress distribution law along the vertical shows that as the depth increases, the vertical dynamic stress gradually decreases, and the attenuation rate in the surface layer of the subgrade bed is relatively large, even exceeding 50%; The vertical dynamic stress distribution law along the longitudinal direction shows that the number of stress peaks equal to the number of bogies is produced in each structural layer. The dynamic stress changes of the track and subgrade during train operation can be regarded as repeated loading and unloading processes; The moving speed of the train has an obvious effect on the dynamic response of the subgrade. When the speed increases from 200 km/h to 350 km/h, the dynamic stress amplitude of each structural layer increases by more than 30%.
Keywords:train load  high-speed railway subgrade  random irregularity  ballastless track  dynamic stress
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