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基于接触斑能量耗散轮轨磨损与损伤机制研究

郭立昌,杨斌,何成刚,朱文涛,王文健,刘启跃

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郭立昌, 杨斌, 何成刚, 朱文涛, 王文健, 刘启跃. 基于接触斑能量耗散轮轨磨损与损伤机制研究[J]. 江南娱乐网页版入口官网下载安装学报, 2018, 53(5): 945-950. doi: 10.3969/j.issn.0258-2724.2018.05.010
引用本文: 郭立昌, 杨斌, 何成刚, 朱文涛, 王文健, 刘启跃. 基于接触斑能量耗散轮轨磨损与损伤机制研究[J]. 江南娱乐网页版入口官网下载安装学报, 2018, 53(5): 945-950.doi:10.3969/j.issn.0258-2724.2018.05.010
GUO Lichang, YANG Bin, HE Chenggang, ZHU Wentao, WANG Wenjian, LIU Qiyue. Wear and Damage Mechanism of Wheel-Rail Materials Based on Contact Zone Energy Dissipation[J]. Journal of Southwest Jiaotong University, 2018, 53(5): 945-950. doi: 10.3969/j.issn.0258-2724.2018.05.010
Citation: GUO Lichang, YANG Bin, HE Chenggang, ZHU Wentao, WANG Wenjian, LIU Qiyue. Wear and Damage Mechanism of Wheel-Rail Materials Based on Contact Zone Energy Dissipation[J].Journal of Southwest Jiaotong University, 2018, 53(5): 945-950.doi:10.3969/j.issn.0258-2724.2018.05.010

基于接触斑能量耗散轮轨磨损与损伤机制研究

doi:10.3969/j.issn.0258-2724.2018.05.010
详细信息
    作者简介:

    郭立昌(1983—),男,博士研究生,讲师,研究方向为轮轨系统摩擦学,E-mail: lcguo@swjtu.cn

    通讯作者:

    王文健(1980—),男,博士,研究员,研究方向为轮轨系统摩擦学,E-mail:wwj527@163.com

  • 中图分类号:V221.3

Wear and Damage Mechanism of Wheel-Rail Materials Based on Contact Zone Energy Dissipation

    • 摘要:为了建立轮轨磨损与损伤实验的统一标准,在目前实验方法研究轮轨磨损与损伤机制的基础上,提出了基于接触斑能量耗散轮轨磨损与损伤机制的分析方法. 针对轮轨磨损与损伤实验缺乏统一标准的现状,对不同实验方法获得的磨损与损伤结果进行对比分析;通过对不同实验结果的对比分析,提出了基于接触斑能量耗散轮轨磨损与损伤机制的分析方法,并分析了不同轮轨材料与实验方法的单位面积轮轨接触斑耗散能-磨损率曲线的变化规律. 研究结果表明:根据轮轨材料的单位面积轮轨接触斑耗散能-磨损率变化曲线规律及轮轨损伤特征,可将轮轨磨损划分为3个分区:轻微磨损、严重磨损、灾难性磨损,单位面积轮轨接触斑耗散能-磨损率曲线在实际应用中可预测轮轨磨损;轮轨接触斑耗散能准确地表征轮轨磨损率和损伤形式,可用于轮轨磨损与损伤数据的对比分析.

    • 图 1JD–1轮轨摩擦模拟试验机

      Figure 1.JD–1 wheel-rail friction simulation testing machine

      图 2日本轮轨滚动磨损试验装置示意

      Figure 2.Schematic diagram of Japan wheel-rail rolling wear testing device

      图 3不同材料的磨损率结果对比

      Figure 3.Comparisons of wear rate results under different material conditions

      图 4不同试验机钢轨Tγ/A-磨损率对比(U71Mn)

      Figure 4.Comparisons ofTγ/Avs. wear rate of rail material (U71Mn) on different testing machines

      图 5CL60车轮材料磨损率随/A值变化

      Figure 5.Wear rate of CL60 wheel material changing with/A

      图 6不同磨损阶段下车轮试样损伤SEM照片

      Figure 6.Scanning electron microscope (SEM) micrographs of damage on wheel roller at different wear stages.

      图 7仿真流程

      Figure 7.Simulation flowchart.

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    出版历程
    • 收稿日期:2016-12-21
    • 刊出日期:2018-10-01

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