Research Status and Progress on the Current-Carrying Friction and Wear Performance of Conductive Slip Rings in Harsh Environments

多物理 打滑(空气动力学) 滑环,滑环 摩擦学 耐久性 机械工程 导电体 涂层 失效机理 工程类 材料科学 法律工程学 有限元法 热的 可靠性(半导体) 结构工程 灾难性故障 热流密度 实验研究 球(数学)
作者
Hailin Wu,Xinze Zhao,Wanting Li,Yang Li,Tengda Pan,Wei Yang,Xuetao Li
出处
期刊:Coatings [Multidisciplinary Digital Publishing Institute]
卷期号:15 (11): 1347-1347 被引量:1
标识
DOI:10.3390/coatings15111347
摘要

With the rapid development of aerospace, industrial automation, and weapons manufacturing, the performance requirements for conductive slip rings have become more stringent, and their operating environments have become increasingly harsh, making the study of the effects of harsh environmental conditions on slip rings particularly important. This paper systematically reviews the effects of harsh environments on the current-carrying friction and wear behavior of slip rings, with a detailed discussion on the mechanisms by which environmental factors such as high temperature, humidity, corrosive gases, and vacuum influence the tribological properties of slip ring materials. Research has shown that these harsh environments significantly change the friction coefficient, wear rate, and electrical contact performance of slip rings, causing degradation of material properties. By reviewing current experimental studies and numerical simulations, this paper analyzes the performance variations and failure mechanisms of slip rings in various environments, summarizing the key technological progress in enhancing slip ring performance under such conditions, particularly the application of material modification and surface coating technologies. Additionally, concerning the lifetime prediction and monitoring of slip ring systems, this paper explores the potential of multiphysics simulation technology and intelligent monitoring methods. Finally, this paper looks forward to future research directions, including optimization design based on multiphysics simulation, the development of high-temperature coatings, the improvement of lifetime prediction models, and the optimization of thermal management strategies, aiming to provide theoretical support and technical guidance for enhancing the reliability and durability of slip rings in extreme environments.

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