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Gear Fault Diagnosis in Variable Speed Condition Based on Multiscale Chirplet Path Pursuit and Linear Canonical Transform

机译:基于多尺度Chirplet路径追踪和线性规范变换的变速条件下齿轮故障诊断

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The vibration signals analysis is a very effective and reliable method for detecting the gear failures. Because the vibration signals acquired from the gear in the variable speed condition often contain more useful fault information, the analysis of the gear vibration signals during the variable speed condition has been a hot research topic. In this paper, a method based on the multiscale chirplet path pursuit (MSCPP) and the linear canonical transform (LCT) has been applied to diagnose the gear fault in the variable speed condition for the first time. First, by using the MSCPP method to estimate the instantaneous meshing frequency, the suitable signal segment approximation to the acceleration or deceleration process can be selected. Then, because the LCT is a novel and efficient nonstationary signals analysis tool, the optimal LCT spectrum of the selected signal has been attainted to diagnose the gear faults based on the properties of the LCT. In addition, the simulations and the experimental evaluation are provided to verify the effectiveness of the proposed method.
机译:振动信号分析是检测齿轮故障的非常有效和可靠的方法。由于在变速条件下从齿轮获取的振动信号通常包含更多有用的故障信息,因此在变速条件下对齿轮振动信号的分析一直是研究的热点。本文首次将基于多尺度Chirplet路径追踪(MSCPP)和线性经典变换(LCT)的方法用于变速状态下的齿轮故障诊断。首先,通过使用MSCPP方法估计瞬时啮合频率,可以选择适合加速或减速过程的合适信号段近似值。然后,由于LCT是一种新颖且有效的非平稳信号分析工具,因此已基于LCT的特性获得了所选信号的最佳LCT频谱,以诊断齿轮故障。另外,通过仿真和实验评估,验证了所提方法的有效性。

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