基于弓网电弧重燃模型的地铁车辆网侧暂态过电压分析

Analysis of Metro Vehicle Network-side Transient Overvoltage Based on Pantograph-catenary Arc Reignition Model

  • 摘要:
    目的 弓网系统作为城市轨道交通车辆供电系统的核心,承担着通过接触网向车辆输送电能、保障车辆正常运行的重要职能,其稳定工作状态对列车运行的安全与高效具有决定性影响。在弓网系统动态相互作用过程中,燃弧现象频繁发生,不仅直接降低了受流质量,还会引发整车电磁干扰与暂态过电压问题。因此,有必要深入探究弓网电弧的电气特性及其影响。
    方法 围绕地铁车辆弓网系统的离线过程展开研究,重点分析了受电弓与接触网由接触至分离再至重新接触的全过程动态行为。在此基础上,构建了能够反映电弧多次重燃特性的弓网电弧重燃模型,精细描述了燃弧过程的动态变化特征。通过建立整车系统仿真分析模型,研究了直流牵引供电条件下,弓网电弧所引发的暂态过电压变化规律,并通过对比仿真与实测电弧电压波形,验证了所提弓网电弧重燃模型的准确性与有效性。
    结果及结论 所建立的弓网电弧重燃模型仿真结果与实测数据吻合良好,有效模拟了实际弓网离线过程中的网压变化特征,揭示了燃弧引起的电压跌落与振荡现象。该模型有助于进一步研究弓网暂态过电压对车辆高压设备的影响。

     

    Abstract:
    Objective As the core for power supply system of urban rail transit vehicles, the pantograph-catenary system undertakes the important functions of transmitting electrical energy to vehicles through catenary and ensuring their normal operation. Its stable operating state has a decisive impact on train operation safety and efficiency. During the dynamic interaction of the pantograph-catenary system, arcing phenomena occur frequently, which not only directly reduced current collection quality, but also induced electromagnetic interference and transient overvoltage problems in the vehicle system. Therefore, it is necessary to conduct an in-depth investigation of the electrical characteristics of pantograph-catenary arcs and their effects.
    Method Research is carried out focusing on the off-line process of the metro vehicle pantograph-catenary system, mainly analyzing the complete dynamic behavior of the pantograph and catenary from contact to separation and then to re-contact. On this basis, a pantograph-catenary arc reignition model capable of reflecting multiple arc reignition characteristics is established, providing a detailed description of the dynamic evolution of the arcing process. By developing a whole-vehicle system simulation model, the variation law of transient overvoltage induced by pantograph-catenary arcs under DC (direct current) traction power supply conditions are investigated. The accuracy and effectiveness of the proposed pantograph-catenary arc reignition model are verified through a comparison between simulated and measured arc voltage waveforms.
    Result & Conclusion  The simulation results of the established pantograph-catenary arc reignition model show good agreement with measured data, effectively simulating the network voltage variation characteristics during the actual pantograph-catenary off-line process, and revealing the voltage drop and oscillation phenomena caused by arcing. The model is beneficial for further investigation of the impact of pantograph-catenary transient overvoltage on vehicle high-voltage equipment.

     

/

返回文章
返回