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重载货车车轮磨耗与动力学性能演变

李亨利 李芾 王新锐 杨继震

李亨利, 李芾, 王新锐, 杨继震. 重载货车车轮磨耗与动力学性能演变[J]. 交通运输工程学报, 2016, 16(5): 49-56. doi: 10.19818/j.cnki.1671-1637.2016.05.006
引用本文: 李亨利, 李芾, 王新锐, 杨继震. 重载货车车轮磨耗与动力学性能演变[J]. 交通运输工程学报, 2016, 16(5): 49-56. doi: 10.19818/j.cnki.1671-1637.2016.05.006
LI Heng-li, LI Fei, WANG Xin-rui, YANG Ji-zhen. Evolution of wheel wear and dynamics performance of heavy haul freight car[J]. Journal of Traffic and Transportation Engineering, 2016, 16(5): 49-56. doi: 10.19818/j.cnki.1671-1637.2016.05.006
Citation: LI Heng-li, LI Fei, WANG Xin-rui, YANG Ji-zhen. Evolution of wheel wear and dynamics performance of heavy haul freight car[J]. Journal of Traffic and Transportation Engineering, 2016, 16(5): 49-56. doi: 10.19818/j.cnki.1671-1637.2016.05.006

重载货车车轮磨耗与动力学性能演变

doi: 10.19818/j.cnki.1671-1637.2016.05.006
基金项目: 

国家自然科学基金项目 50975238

四川省科技支撑计划项目 2013GZX0142

中央高校基本科研业务费专项资金项目 SWJTU12CX041

详细信息
    作者简介:

    李亨利(1981-), 男, 四川大竹人, 中车眉山车辆有限公司高级工程师, 西南交通大学工学博士研究生, 从事车辆系统动力学研究

    李芾(1956-), 男, 云南昆明人, 西南交通大学教授, 工学博士

  • 中图分类号: U270.33

Evolution of wheel wear and dynamics performance of heavy haul freight car

More Information
    Author Bio:

    LI Heng-li(1981-), male, senior engineer, doctoral student, +86-28-38098063, li_hengli@163.com

    LI Fu(1956-), male, professor, PhD, +86-28-87601881, liswjtu@sohu.com

  • 摘要: 基于多体动力学软件SIMPACK建立了考虑车轮磨耗过程的车辆动力学模型, 编制了自动实现轮轨迭代计算程序, 并将车辆动力学模型、轮轨接触模型、轮轨磨耗模型、轮轨外形更新及运行工况统一组织在动力学软件中。采用内嵌SIMPACK软件的子程序进行动力学计算和磨耗过程的工况和数据组织, 采用FASTSim算法进行车辆动力学计算, 采用Contact算法进行磨耗计算, 并构成在线自动磨耗计算循环, 无需外部程序的协同仿真和数据交互。基于C80B型敞车在大秦线的运行环境, 研究了车轮磨耗和车辆动力学性能在车辆运用过程中的演变。研究结果表明: 车轮踏面磨耗深度和车轮全断面磨耗面积均与运行里程呈近似线性关系, 每1.0×10~5 km的车轮磨耗深度和磨耗面积分别约为1.68mm和100.63mm2;随着车辆运行里程的增加, 车轮磨耗与车辆动力学性能也随之恶化, 车辆运行2.5×10~5 km后, 车辆横向运行平稳性从新车工况下的优级下降为良级, 脱轨系数、轮重减载率与曲线通过轮轴横向力等车辆运行安全性指标均较新车状态增大50%以上。

     

  • 图  1  计算流程

    Figure  1.  Calculation flow

    图  2  运行工况组合

    Figure  2.  Operation conditions assembly

    图  3  车辆动力学模型

    Figure  3.  Vehicle dynamics model

    图  4  接触斑磨耗与车轮截面磨耗

    Figure  4.  Contact patch wear and wheel section wear

    图  5  车轮磨耗外形与运行里程的关系

    Figure  5.  Relationship between wheel wear profile and running distance

    图  6  车轮磨耗与运行里程的关系

    Figure  6.  Relationships between wheel wears and running distance

    图  7  运行平稳性与运行里程的关系

    Figure  7.  Relationships between riding qualities and running distance

    图  8  运行安全性指标与运行里程的关系

    Figure  8.  Relationships between running safety indexes and running distance

    图  9  车轮磨耗状态下的横向平稳性

    Figure  9.  Lateral riding qualities under worn wheels conditions

    图  10  车轮磨耗状态下的垂向平稳性

    Figure  10.  Vertical riding qualities under worn wheels conditions

    图  11  车轮磨耗状态下的脱轨系数

    Figure  11.  Derailment coefficients under worn wheels conditions

    图  12  车轮磨耗状态下的轮重减载率

    Figure  12.  Wheel unloading rates under worn wheels conditions

    图  13  轮对冲角曲线

    Figure  13.  Curves of wheelset attack angle

    图  14  轮对横向力曲线

    Figure  14.  Lateral force curves of wheelset

    图  15  脱轨系数曲线

    Figure  15.  Curves of derailment coefficient

    图  16  轮重减载率曲线

    Figure  16.  Curves of wheel unloading rate

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出版历程
  • 收稿日期:  2016-05-27
  • 刊出日期:  2016-10-25

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