磨料
循环平稳过程
振动
机制(生物学)
信号(编程语言)
材料科学
磁道(磁盘驱动器)
跟踪(教育)
结构工程
声学
工程类
机械工程
冶金
计算机科学
频道(广播)
程序设计语言
哲学
心理学
物理
电气工程
认识论
教育学
作者
Ke Feng,Wade A. Smith,Pietro Borghesani,Robert B. Randall,Zhongxiao Peng
标识
DOI:10.1016/j.ymssp.2020.107258
摘要
Fatigue pitting and abrasive wear are the most common wear mechanisms in lubricated gears, and they have different effects on the gear transmission system. To develop effective methods for online gear wear monitoring, in this paper, a vibration-based wear mechanism identification procedure is proposed, and then the wear evolution is tracked using an indicator of vibration cyclostationarity (CS). More specifically, with consideration of the underlying physics of the gear meshing process, and the unique surface features induced by fatigue pitting and abrasive wear, the correlation between tribological features of the two wear phenomena and gearmesh-modulated second-order cyclostationary (CS2) properties of the vibration signal is investigated. Differently from previous works, the carrier frequencies (spectral content) of the gearmesh-cyclic CS2 components are analysed and used to distinguish and track the two wear phenomena. The effectiveness of the developed methods in wear mechanism identification and degradation tracking is validated using vibration data collected in two tests: a lubricated test dominated by fatigue pitting and a dry test dominated by abrasive wear. This development enables vibration-based techniques to be used for identifying and tracking fatigue pitting and abrasive wear.
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