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Fourier transform and image processing for automatic detection of broken rotor bars in induction motors

机译:自动检测感应电动机破损转子杆的傅里叶变换和图像处理

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摘要

In the literature, many research studies have proposed the diagnosis of the induction motor condition where both the electrical and mechanical faults have been considered. Despite obtaining promising results, the diagnosis is mostly achieved qualitatively, requiring an expert user to interpret the results. This disadvantage could lead to time delays and additional costs that at an inopportune stage could prevent the diagnosis of the motor. In this study, a methodology based on signal processing and image processing is proposed to automatically diagnose a broken rotor bar (BRB) by using current signals. For the signal processing, first a decimation stage is proposed and then short-time Fourier transform is applied to the current signal. The proposed signal processing eliminates the 60 Hz component of the power line and its associated leakage. Next, the fault diagnosis is automated by applying image processing algorithms to the time-frequency plane of the current signal. From this time-frequency plane, the region of interest, in this case, the V-shaped pattern associated with the BRB condition, is automatically located mainly by using mathematical morphology-based algorithms. In addition, the area of the V-shaped pattern is also computed in order to automatically distinguish between the faulty and healthy condition, half BRB, one BRB, and two BRB. This last step of the method avoids the need of an expert user. For the area values, an analysis of variance is performed, where a 100% effectiveness is obtained for automatically determining the motor condition.
机译:在文献中,许多研究研究提出了诊断了电气和机械故障的感应电动机状态。尽管获得了有希望的结果,但诊断大多是定性实现的,需要专家用户来解释结果。这种缺点可能导致时间延迟和额外的成本,在零售期可以防止电机的诊断。在该研究中,提出了一种基于信号处理和图像处理的方法来通过使用电流信号自动诊断破坏的转子杆(BRB)。对于信号处理,提出第一抽取阶段,然后将短时傅里叶变换应用于电流信号。所提出的信号处理消除了电力线的60 Hz分量及其相关的泄漏。接下来,通过将图像处理算法应用于电流信号的时频平面来自动诊断。从该时频平面,在这种情况下,感兴趣的区域,在这种情况下,与BRB条件相关联的V形模式,主要通过使用基于数学形态学的算法自动定位。另外,还计算了V形图案的面积,以便自动区分故障和健康状态,半BRB,一个BRB和两个BRB。该方法的最后一步避免了专家用户的需要。对于区域值,执行方差分析,其中获得100%的有效性,用于自动确定电动机状态。

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