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湿度可控条件下受电弓-接触网接触副的电弧动力学与侵蚀行为

Arc Dynamics and Erosion Behavior of Pantograph-Catenary Contacts Under Controlled Humidity Levels.

作者信息

Li Bingquan, Zhao Yijian, Ji Ran, Dong Huajun, Wei Ningning

机构信息

School of Mechanical Engineering, Dalian Jiaotong University, Dalian 116028, China.

Department of Railway Rolling Stock, Liaoning Railway Vocational and Technical College, Jinzhou 121000, China.

出版信息

Sensors (Basel). 2025 Aug 21;25(16):5208. doi: 10.3390/s25165208.

Abstract

In response to the instability fluctuations and erosion characteristic changes in pantograph-catenary system (PCS) arcs induced by humidity variations in an open environment, a single-variable controlled experimental approach based on multi-source data fusion is proposed. This study innovatively establishes a humidity-controlled reciprocating current-carrying arc initiation test platform, integrating digital image processing with the dynamic analysis of multi-physics sensor signals (current, voltage, temperature). The study quantitatively evaluates the arc motion characteristics and the erosion effects on the frictional contact pair under different relative humidity levels (30%, 50%, 70%, and 90%) with a DC power supply (120 V/25 A). The experimental data and analysis reveal that increasing humidity results in higher contact resistance and accumulated arc energy, with arc stability first improving and then decreasing. At low humidity, arc behavior is more intense, and the erosion rate is faster. As humidity increases, the electrode wear transitions from adhesive wear to electrochemical wear, accompanied by copper transfer. The results suggest that the arc stability is optimal at moderate humidity (50% RH), with a peak current-carrying efficiency of 66% and a minimum loss rate of 14.5%. This threshold offers a vital theoretical framework for the optimization and risk assessments of PCS design.

摘要

针对开放环境中湿度变化引起的受电弓-接触网系统(PCS)电弧的不稳定波动和侵蚀特性变化,提出了一种基于多源数据融合的单变量控制实验方法。本研究创新性地建立了一个湿度控制的往复载流电弧起弧试验平台,将数字图像处理与多物理传感器信号(电流、电压、温度)的动态分析相结合。该研究使用直流电源(120 V/25 A)定量评估了在不同相对湿度水平(30%、50%、70%和90%)下电弧的运动特性以及对摩擦接触副的侵蚀影响。实验数据和分析表明,湿度增加会导致接触电阻和累积电弧能量升高,电弧稳定性先提高后降低。在低湿度下,电弧行为更剧烈,侵蚀速率更快。随着湿度增加,电极磨损从粘着磨损转变为电化学磨损,并伴有铜转移。结果表明,在中等湿度(50%RH)下电弧稳定性最佳,载流效率峰值为66%,损失率最低为14.5%。这一阈值为PCS设计的优化和风险评估提供了重要的理论框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c1f8/12390007/60f3886abc12/sensors-25-05208-g0A1.jpg

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