振动
变量(数学)
方位(导航)
断层(地质)
控制理论(社会学)
计算机科学
结构工程
工程类
声学
振动控制
状态监测
时频分析
滚柱轴承
理论(学习稳定性)
信号处理
故障检测与隔离
物理
瞬态分析
加速度
电子工程
作者
Ruo-Bin Sun,Maojun Xu,Zhi-Bo Yang,Xuefeng Chen
标识
DOI:10.1109/tim.2026.3697082
摘要
Rotating machinery often operates under non-stationary conditions, posing particular challenges for the fault diagnosis of bearings. A common approach for processing bearing vibrations at variable rotational speeds involves resampling the signals and converting them into corresponding vibrations at a constant speed. This process is also known as de-warping. However, the current de-warping methods do not account for the different warping mechanisms between pulse trains and other components in fault-bearing vibrations. Therefore, there is a certain degree of error in the de-warped waveform. This paper proposes a hybrid de-warping method for processing non-stationary bearing vibration signals. The core idea is to segment the vibrations into pulse areas and other waveform-distortion areas: a global shift is performed in the pulse-based areas; while a scale transform is implemented in the remaining parts. The scale transform is achieved through the warping path calculated by the proposed unilateral dynamic time warping (UDTW) algorithm. The proposed method exhibits superior de-warping accuracy and effectively restores the regular statistical properties of the vibration. The effectiveness of the proposed method is validated through numerical simulations and experimental case studies.
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