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车轮非圆化磨耗问题研究进展

金学松,吴越,梁树林,温泽峰

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金学松, 吴越, 梁树林, 温泽峰. 车轮非圆化磨耗问题研究进展[J]. 江南娱乐网页版入口官网下载安装学报, 2018, 53(1): 1-14. doi: 10.3969/j.issn.0258-2724.2018.01.001
引用本文: 金学松, 吴越, 梁树林, 温泽峰. 车轮非圆化磨耗问题研究进展[J]. 江南娱乐网页版入口官网下载安装学报, 2018, 53(1): 1-14.doi:10.3969/j.issn.0258-2724.2018.01.001
JIN Xuesong, WU Yue, LIANG Shuling, WEN Zefeng. Mechanisms and Countermeasures of Out-of-Roundness Wear on Railway Vehicle Wheels[J]. Journal of Southwest Jiaotong University, 2018, 53(1): 1-14. doi: 10.3969/j.issn.0258-2724.2018.01.001
Citation: JIN Xuesong, WU Yue, LIANG Shuling, WEN Zefeng. Mechanisms and Countermeasures of Out-of-Roundness Wear on Railway Vehicle Wheels[J].Journal of Southwest Jiaotong University, 2018, 53(1): 1-14.doi:10.3969/j.issn.0258-2724.2018.01.001

车轮非圆化磨耗问题研究进展

doi:10.3969/j.issn.0258-2724.2018.01.001
基金项目:

国家重点研发计划资助2016YFB1200503-02

国家自然科学高铁联合重点基金项目U1734201

国家重点研发计划资助2016YFB1200506-08

详细信息
    作者简介:

    金学松(1956-), 男, 教授, 博士, 博士生导师, 研究方向为机车车辆/轨道结构振动噪声与轻轨关系, E-mail:xsjin@swjtu.edu.cn

  • 中图分类号:U270.1

Mechanisms and Countermeasures of Out-of-Roundness Wear on Railway Vehicle Wheels

    • 摘要:高速铁路在我国迅速的发展,显著改善了人民的出行方式和质量,大幅度缩短了出行周期,充分提高了工作效率.我国的高速铁路网已成为"国民经济建设高速发展的大动脉",但运营中的高速列车车轮因连续磨耗和定期的镟修,轮径不断缩小且在缩小的不同阶段发生不同程度的非圆化磨损现象,某些阶段还十分严重.列车车轮非圆化磨耗会使轮轨间作用力显著增大,导致铁路车辆和轨道产生强烈的振动和噪声,影响车辆的运行品质、旅客乘坐舒适度和车辆-轨道系统零部件的使用寿命,严重时将会威胁到行车安全.车轮各类非圆化磨耗类型,主要分为局部非圆化磨耗和全周非圆化磨耗,其中局部非圆化磨耗主要包括扁疤、剥离、脱层、塌陷等局部异常磨耗,全周非圆化磨耗主要为车轮多边形磨耗.近几年,在我国各类型高速动车组列车上均发现车轮多边形磨损,在车轮全寿命周期内的不同轮径情况下,多边形磨损的边数(波长)和发展速度不同,已经越来越受到行业内相关研究人员的重视.文章详细地综述了国内外对铁路车辆车轮非圆化磨耗的研究历史和现状,涉及到相关研究文献75篇,对车轮非圆化磨耗的研究主要分为3个方面:(1)车轮非圆化磨耗对车辆/轨道系统动力学行为、车辆噪声的影响研究,大量研究表明车轮非圆化幅值、波长、车速和轴重等因素对车辆/轨道系统动力学行为和车辆噪声均有显著的影响.(2)列车车轮非圆化磨耗发展规律研究和列车车轮多边形磨耗机理研究.车轮多边形磨耗产生的根源在于转向架系统的高频柔性共振,系统的共振频率、列车速度和车轮的周长在满足一定的条件下,车轮多边形磨耗发展速率较高,轮轨滚动接触界面严重的不平顺激励,将促使多边形磨损萌生和发展.到目前为止,对于车轮多边形磨耗发生和发展的机理,国内外仍众说纷纭,未达成共识,尚待开展进一步的研究工作.(3)列车车轮非圆化磨耗检测技术相关研究.最后,对该领域今后的研究方向进行了展望:发展车辆轨道刚柔耦合动力学模型再现车轮多边形演化过程,多边形形成的机理;通过改变运营方式来抑制多边形发展速率;研究车轮智能踏面修形器来消除或抑制车轮多边形的发展.

    • 图 1车轮扁疤和剥离

      Figure 1.Wheel spalling and wheel flattening

      图 2车轮多边形示意图

      Figure 2.Schematics of polygonal wheels

      图 3车辆/轨道耦合动力学模型

      Figure 3.Vehicle-track coupled dynamics model

      图 4轮轨振动噪声

      Figure 4.Wheel/track vibration and noise

      图 5车轮非圆化磨耗计算框图

      Figure 5.Calculation block diagram of out-of-roundness wheel wear

      图 6轮对动力学模型

      Figure 6.Dynamic model of a wheelset

      图 7轮对动力学模型

      Figure 7.Dynamic model of a wheelset

      图 8车轮9边形磨耗形成示意

      Figure 8.Generation of ninth-order wheel wear

      图 9车轮多边形磨耗照片

      Figure 9.Wheel with polygonal wear

      图 10车轮多边形测试结果(镟修前)

      Figure 10.Measurements of the out-of-roundness wear of wheelsets (before reprofiling)

      图 11列车运行速度图

      Figure 11.Map of train operation speeds

      图 12车轮磨耗测试结果(第3阶段试验)

      Figure 12.Measurements of the out-of-roundness wear of wheelsets (third-stage test)

      图 13便携式车轮多边形磨耗测试装置系统框图

      Figure 13.Portable measuring device for wheel rolling circle

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    • 收稿日期:2017-06-05
    • 刊出日期:2018-02-25

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