直供方式下高速铁路牵引回流系统金具熔烧故障研究
DOI:
作者:
作者单位:

华东交通大学电气与自动化工程学院,江西 南昌 330013

作者简介:

通讯作者:

中图分类号:

U225

基金项目:

江西省主要学科学术和技术带头人培养项目(20232BCJ22004);江西省自然科学基金项目(2021ACB204004)


Research on the Melting and Burning Failure of Metal Fittings in HighSpeed Railway Traction Return System Under Direct Supply Mode
Author:
Affiliation:

School of Electrical and Automation Engineering, East China Jiaotong University, Nanchang 330013 , China

Fund Project:

  • 摘要
  • |
  • 图/表
  • |
  • 访问统计
  • |
  • 参考文献
  • |
  • 相似文献
  • |
  • 引证文献
  • |
  • 资源附件
  • |
  • 文章评论
    摘要:

    回流系统是牵引供电系统的重要组成部分,直供方式下该系统由多个回路组成,结构复杂,回流不畅可能导致支撑金具出现熔烧,严重威胁铁路行车安全。文章旨在分析直供方式下牵引回流系统故障导致支撑金具熔烧的机理,明确其关键影响因素,并为牵引回流系统的故障诊断和排查提供理论依据。首先,对牵引回流系统中电流分布特性进行了深入分析,建立了基于CDEGS的牵引供电回流系统仿真模型;然后,分别模拟了正常工况、接触网支柱未接地和回流线未接地等典型故障工况下的电流与电位分布特性;进一步对比分析了不同土壤电阻率和接地电阻对系统电流分布的影响规律,总结了引起支撑金具熔烧的原因。仿真结果表明,在正常工况下,回流线和贯通地线的最大回流比例分别为37.00%和19.00%;当回流线未接地时,回流线和贯通地线回流占比分别为 47.34%和 10.10%,此时部分电流通过支柱流入贯通地线,支柱最大通过电流可达 74.73 A,回流线和支柱间存在最大40 V的电压差。当回流线未接地时,回流线、支柱和贯通地线存在电压差,同时有较大电流流过支柱上的支撑金具,两者共同作用导致支撑金具发热熔烧。在实际运行中需加强对回流线未接地情况的排查,以避免此类故障的发生。

    Abstract:

    The return system is an important component of the traction power supply system. Under the direct power supply mode, the traction return system consists of multiple circuits with a complex structure. If the return is not smooth, it may cause the supporting fittings to melt and burn, seriously threatening the safety of railway operation. This study aims to analyze the mechanism of support fittings melting and burning caused by traction return system faults under direct power supply mode, clarify its key influencing factors, and provide theoretical basis for fault diagnosis and troubleshooting of traction return system. Firstly, an in-depth analysis was conducted on the current distribution characteristics in the traction return system, and a simulation model of the traction power supply return system based on CDEGS was established; Then, the current and potential distribution characteristics were simulated under typical fault conditions such as normal working conditions, ungrounded contact wire pillars, and ungrounded return lines; Further comparative analysis was conducted on the influence of different soil resistivity and grounding resistance on the distribution of system current, and the reasons for the melting and burning of pillar fittings were summarized. The simulation results show that under normal operating conditions, the maximum return ratios of the return line and the through ground line are 37.00% and 19.00% respectively; When the return wire is not grounded, the proportion of return wire and through ground wire return is 47.34% and 10.10% respectively. At this time, some current flows into the through ground wire through the pillar, and the maximum current passing through the pillar can reach 74.73 A. There is a maximum voltage difference of 40 V between the return wire and the pillar. When the return wire is not grounded, there is a voltage difference between the return wire, pillar, and through ground wire, and a large current flows through the supporting fittings on the pillar. The combined effect of the two causes the supporting fittings to heat up and melt. In actual operation, it is necessary to strengthen the investigation of ungrounded return lines to avoid the occurrence of such faults.

    参考文献
    相似文献
    引证文献
引用本文

伦利,何洪,漆星,等. 直供方式下高速铁路牵引回流系统金具熔烧故障研究[J]. 华东交通大学学报,2026,43 (1):64-70.

复制
分享
文章指标
  • 点击次数:
  • 下载次数:
  • HTML阅读次数:
  • 引用次数:
历史
  • 收稿日期:2024-11-20
  • 最后修改日期:
  • 录用日期:
  • 在线发布日期: 2026-03-13
  • 出版日期:
关闭