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Fault Detection for Railway Traction Motor Bearing through Leakage Current

机译:通过泄漏电流检测铁路牵引电机轴承的故障

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Much research on detecting machinery faults in the early stage is being conducted for the purpose of preventing failure and reducing maintenance effort simultaneously. In this paper, a bearing fault detection method for a railway traction motor through leakage currents is proposed. The proposed detection method combines octave band analysis and machine learning. Experiments simulating abnormalities due to defective bearings were conducted and the effectiveness of the proposed method was verified. These experiments showed that the proposed method can successfully detect failures in railway traction systems in relation to specific conditions and that leakage current could potentially be used to detect bearing faults.
机译:为了防止故障并同时减少维护工作,正在对早期检测机械故障进行大量研究。提出了一种通过漏电流检测铁路牵引电动机轴承故障的方法。提出的检测方法结合了倍频程分析和机器学习。进行了模拟轴承缺陷引起的异常的实验,并验证了所提方法的有效性。这些实验表明,所提出的方法可以成功地检测与特定条件相关的铁路牵引系统故障,并且泄漏电流可以潜在地用于检测轴承故障。

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