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Concurrent fault diagnosis of modular multilevel converter with Kalman filter and optimized support vector machine

机译:Kalman滤波器模块化多电平转换器的并发故障诊断和优化支持向量机

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摘要

In this paper, concurrent fault diagnosis problem of modular multilevel converter (MMC) with Kalman filter and optimized support vector machine (SVM) is investigated. The state space model by synthesizing the circulating current and the output current is first established. Recurring to the Kalman filtering theory, the estimation on circulating and output current is realized, the residual is achieved by using the innovation which involved the predicted and measured current. Based on the obtained residual, the residual evaluation function and its threshold are constructed. Then, the fault can be detected according to the proposed fault detection strategy. Once the fault is detected, the fault localization unit is triggered and the residual data is adopted as data set. By employing the optimized SVM with genetic algorithm, the concurrent and intermittent fault localization of MMC can be accomplished. Finally, an 11-level MMC simulation systems with concurrent fault and intermittent fault are set up in MATLAB/Simulink, and the effectiveness of the proposed fault detection and localization method is verified.
机译:本文研究了模块化多电平转换器(MMC)的并发故障诊断问题与卡尔曼滤波器和优化的支持向量机(SVM)进行了调查。首先建立通过合成循环电流的状态空间模型和输出电流。反复出现到卡尔曼滤波理论,实现了关于循环和输出电流的估计,通过使用涉及预测和测量电流的创新来实现残差。基于所得残余,构建残余评价函数及其阈值。然后,可以根据所提出的故障检测策略来检测故障。检测到故障后,触发故障定位单元,并将残差数据作为数据集。通过采用具有遗传算法的优化SVM,可以实现MMC的并发和间歇故障定位。最后,在MATLAB / SIMULINK中设置了一个具有并发故障和间歇性故障的11级MMC仿真系统,验证了所提出的故障检测和定位方法的有效性。

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