从火花到磨损:了解不规则导线条件下受电弓接触网系统的电弧侵蚀和摩擦学机制

IF 6.3 1区 工程技术 Q1 ENGINEERING, MECHANICAL
Dehui Ji, Siyang Chen, Haihong Wu, Guoliang Wu, Minhao Zhu, Mingxue Shen
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引用次数: 0

摘要

受电弓接触网系统承担着为高速列车提供电能的关键任务。然而,随着列车速度的不断攀升,接触线的不规则性加剧了受电弓-接触网系统的振动,经常引发受电弓弧。为了深入研究这些电弧的特征和侵蚀机制,本研究利用高速摄像机和光电二极管精确捕捉了接触对不规则性引发的电弧形态演变和电弧强度波动。通过调节电流强度,进一步分析电弧放电对碳带摩擦磨损性能及载流效率的影响。研究发现,当电流足够大时,接触对分离时形成的旧电弧的弧柱与尚未接触的新电弧的弧根相连,形成连续电弧。在相同电流条件下,摩擦副接触前的电弧强度明显弱于分离时的电弧强度。此外,燃弧率、磨损量和温度等参数均与电流强度呈正相关。严重的电弧放电不仅会使系统的电气性能恶化,引起电流畸变,而且会加剧系统运行的不稳定性。摩擦系数的突然变化可以作为接触副之间强烈弧的预兆。电弧侵蚀对载流摩擦副造成严重破坏,烧蚀坑中充满热裂纹和孔,留下大量熔融铜颗粒,大大增加了磨损量。本研究为了解接触丝不规则引起的电弧侵蚀过程和碳带异常磨损机理提供了有力的支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

From sparks to wear: Understanding arc erosion and tribological mechanisms in pantograph-catenary systems under irregular wire conditions

From sparks to wear: Understanding arc erosion and tribological mechanisms in pantograph-catenary systems under irregular wire conditions

The pantograph-catenary system bears the crucial task of supplying electrical energy to high-speed trains. However, as train speeds continue to climb, irregularities in the contact wire exacerbate vibrations within the pantograph-catenary system, frequently triggering pantograph arcs. To delve deeper into the characteristics and erosion mechanisms of these arcs, this study employed high-speed cameras and photodiodes to precisely capture the evolution of arc morphology and fluctuations in arc intensity triggered by contact pair irregularities. By adjusting the current intensity, we further analyzed the impact of arc discharge on the friction and wear performance of carbon strips, as well as their current-carrying efficiency. The study found that when the current is sufficiently high, the arc column of the old arc, which forms when the contact pair separates, connects with the arc root of the new arc that is yet to make contact, leading to the formation of a continuous arc. Additionally, under the same current conditions, the arc intensity prior to contact between the tribo-pair is notably weaker than that at the moment of separation. Furthermore, parameters such as arc ignition rate, wear volume, and temperature all positively correlate with current intensity. Severe arc discharge not only deteriorates the electrical performance of the system, causing current distortion, but also exacerbates the instability of system operation. Abrupt changes in the friction coefficient can serve as a harbinger of intense arcs between the contact pair. Arc erosion causes severe damage to the current-carrying tribo-pairs, with ablation pits riddled with thermal cracks and pores, and leaving behind numerous molten copper particles, significantly increasing the wear volume. This study provides strong support for understanding the arc erosion process caused by contact wire irregularities and the mechanisms underlying abnormal wear of carbon strips.

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来源期刊
Friction
Friction Engineering-Mechanical Engineering
CiteScore
12.90
自引率
13.20%
发文量
324
审稿时长
13 weeks
期刊介绍: Friction is a peer-reviewed international journal for the publication of theoretical and experimental research works related to the friction, lubrication and wear. Original, high quality research papers and review articles on all aspects of tribology are welcome, including, but are not limited to, a variety of topics, such as: Friction: Origin of friction, Friction theories, New phenomena of friction, Nano-friction, Ultra-low friction, Molecular friction, Ultra-high friction, Friction at high speed, Friction at high temperature or low temperature, Friction at solid/liquid interfaces, Bio-friction, Adhesion, etc. Lubrication: Superlubricity, Green lubricants, Nano-lubrication, Boundary lubrication, Thin film lubrication, Elastohydrodynamic lubrication, Mixed lubrication, New lubricants, New additives, Gas lubrication, Solid lubrication, etc. Wear: Wear materials, Wear mechanism, Wear models, Wear in severe conditions, Wear measurement, Wear monitoring, etc. Surface Engineering: Surface texturing, Molecular films, Surface coatings, Surface modification, Bionic surfaces, etc. Basic Sciences: Tribology system, Principles of tribology, Thermodynamics of tribo-systems, Micro-fluidics, Thermal stability of tribo-systems, etc. Friction is an open access journal. It is published quarterly by Tsinghua University Press and Springer, and sponsored by the State Key Laboratory of Tribology (TsinghuaUniversity) and the Tribology Institute of Chinese Mechanical Engineering Society.
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