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A time-domain fault detection method based on an electrical machine stator current measurement for planetary gear-sets

机译:基于电机定子电流测量的行星齿轮组时域故障检测方法

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Fault diagnosis of geared drive-train systems is usually based on vibration monitoring. However, such vibration based techniques are difficult to implement in planetary gearboxes due to the complex nature of measured vibration spectrum. Motor current signal analysis (MCSA) provides an alternative and non-intrusive way to detect mechanical faults through electrical signatures. In this paper, a new time-domain fault detection algorithm is presented for the detection of planetary gear faults using electrical machine stator current signals. This time-domain fault detection method combines fast dynamic time warping (DTW) and correlated kurtosis techniques to process the current signals data to detect and identify damaged planetary gear and its position. Fast DTW is employed to highlight the sideband patterns resulting from tooth damage by the introduction of an estimated reference signal that has the same frequency as the gear mesh frequency. Correlated kurtosis (CK) takes advantages of the periodicity of the geared faults; it is used to identify the position of the damaged gear tooth in the planetary gear-set. This method is later applied to simulated current signals generated from a lumped parameter model of planetary gearbox driving a permanent magnet synchronous generator to evaluate its performance. The simulated results demonstrate the effectiveness of the proposed time-domain approach to detect faults in planetary gear-sets based on the electrical stator current signal.
机译:齿轮传动系统的故障诊断通常基于振动监测。然而,由于所测量的振动频谱的复杂性,这种基于振动的技术难以在行星齿轮箱中实现。电机电流信号分析(MCSA)提供了一种替代的,非侵入式的方式,可以通过电气信号检测机械故障。本文提出了一种新的时域故障检测算法,用于利用电机定子电流信号检测行星齿轮故障。这种时域故障检测方法结合了快速动态时间规整(DTW)和相关的峰度技术来处理电流信号数据,以检测和识别损坏的行星齿轮及其位置。快速DTW用于通过引入与齿轮啮合频率相同频率的估计参考信号来突出显示由于牙齿损坏而产生的边带模式。相关峰度(CK)利用了齿轮故障的周期性。它用于确定损坏的齿轮齿在行星齿轮组中的位置。该方法随后应用于从驱动永磁同步发电机的行星齿轮箱的集总参数模型生成的模拟电流信号,以评估其性能。仿真结果证明了所提出的时域方法基于定子电流信号检测行星齿轮组故障的有效性。

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