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On the Accuracy of Fault Detection and Separation in Permanent Magnet Synchronous Machines Using MCSA/MVSA and LDA

机译:基于MCSA / MVSA和LDA的永磁同步电机故障检测与分离的精度

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In this paper, the motor current/voltage signature analysis and linear discriminant analysis (LDA) are evaluated with respect to the accuracy to detect the status of permanent magnet synchronous machines (PMSMs) whether it is healthy or faulted, determine the type of that fault, and estimate the severity in the case of static eccentricity or turn-to-turn short-circuit fault. Three types of faults are discussed: static eccentricity, turn-to-turn short circuit, and partial demagnetization fault. Two-dimensional finite element analysis (FEA) is used to model and simulate the machine under healthy and faulted conditions. Fast Fourier transform is applied to the phase voltage or current signals to obtain the frequency spectrum. A combination of the amplitude of the harmonics of the stator voltage or current signals are used as detailed features for the classifier for fault detection. LDA is chosen as a classification method for both detecting the fault and estimating its severity. Two different winding types of PMSMs are tested: a concentrated and a distributed winding machine. To validate the simulation results, experiments at different operational points are carried out and the results are compared with the sFEA.
机译:本文就电机电流/电压特征分析和线性判别分析(LDA)的准确性进行了评估,以检测永磁同步电机(PMSM)的运行状况是否正常,是否有故障,确定该故障的类型,并估算静态偏心或匝间短路故障时的严重性。讨论了三种类型的故障:静态偏心率,匝间短路和部分退磁故障。二维有限元分析(FEA)用于在健康和故障条件下对机器进行建模和仿真。将快速傅立叶变换应用于相电压或电流信号以获得频谱。定子电压或电流信号的谐波幅度的组合用作故障检测分类器的详细功能。选择LDA作为检测故障和估计其严重性的分类方法。测试了两种不同类型的PMSM绕组:集中式和分布式绕组机。为了验证仿真结果,在不同的操作点进行了实验,并将结果与​​sFEA进行了比较。

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