Understanding the Effects of Electrical Sliding Speed on Contact Characteristics of On-Load Tap Changers

Xingzu Yang, Shuaibing Li, Yongqiang Kang, Lilong Dou
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Abstract

This paper analyzes the influence of sliding speed on the electrical contact performance and tribological characteristics of on-load tap changer (OLTC) contacts. The current-carrying friction and wear test of copper-tinned and copper contact couple in an insulating oil medium is carried out to simulate a real oil-immersed on-load tap changer's contact switching and operation process to reveal the contact deterioration and wear mechanism. The results show that the contact resistance between contacts increases with sliding speed. When the sliding speed is 119 mm/s, the maximum contact resistance is 0.3 Ω. At the same time, the average contact resistance presents a “U”-shaped curve change, which increases slowly in the initial stage, decreases gradually after 50 mm/s, and reaches the minimum at 76 mm/s-95 mm/s. Then it increases rapidly, and the arc erosion phenomenon turns to be intensified. The micromorphology and element analysis shows that the surface wears mechanism of moving contact changes from abrasive wear, adhesive wear, and delamination wear to abrasive wear, adhesive wear, delamination wear, and arc erosion large erosion pits on the surface. In addition, about 95 mm/s is a critical threshold. Below this threshold speed, the increase of contact resistance is mainly caused by mechanical wear. Beyond this threshold, non-mechanical factors such as arc erosion and chemical oxidation aggravate the deterioration of the contact surface, increasing contact resistance.
了解电滑动速度对有载分接开关接触特性的影响
分析了滑动速度对有载分接开关(OLTC)触点电接触性能和摩擦学特性的影响。通过对绝缘油介质中铜锡和铜接触偶的载流摩擦磨损试验,模拟真实油浸有载分接开关的触点切换和运行过程,揭示触点劣化和磨损机理。结果表明,触点间的接触电阻随滑动速度增大而增大。当滑动速度为119mm /s时,最大接触电阻为0.3 Ω。同时,平均接触电阻呈“U”型曲线变化,在初始阶段缓慢增大,在50 mm/s后逐渐减小,在76 mm/s-95 mm/s时达到最小值。然后迅速增大,弧蚀现象开始加剧。微观形貌和元素分析表明,运动接触的表面磨损机理由磨粒磨损、黏着磨损、脱层磨损转变为表面出现磨粒磨损、黏着磨损、脱层磨损、电弧侵蚀等大蚀坑。此外,95mm /s左右是一个临界阈值。在此阈值速度以下,接触电阻的增加主要是由机械磨损引起的。超过这个阈值,非机械因素如电弧侵蚀和化学氧化加剧了接触面的劣化,增加了接触电阻。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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