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Fault Diagnosis Method and Application of Power Converter Based on Variational Mode Decomposition combined with Kernel Density

机译:基于变分模式分解的功率转换器的故障诊断方法与应用结合核密度

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The fault diagnosis of power converter plays a decisive role in the intelligent and stable operation of DC microgrid. Aiming at the nonlinearity of fault output of converter power transistor and the difficulty of feature extraction, a combination of variational mode decomposition and kernel density estimation was proposed. Firstly, the power converter output signal was collected. Secondly, the signal was subjected to variational mode decomposition to decompose the complex signal into a series of sub-signals, and each modal component was extracted as a feature vector. Finally, the fault diagnosis was realized by means of the kernel density estimation classifier. The experimental results showed that the method reduced the diagnostic cost and improved the diagnostic accuracy, and the method was feasible and effective.
机译:功率转换器的故障诊断在DC微电网的智能和稳定运行中起着决定性作用。针对转换器功率晶体管的故障输出的非线性以及特征提取的难度,提出了变分模式分解和内核密度估计的组合。首先,收集功率转换器输出信号。其次,对信号进行变分模式分解以将复数信号分解为一系列子信号,并且每个模态分量被提取为特征向量。最后,通过内核密度估计分类器实现了故障诊断。实验结果表明,该方法降低了诊断成本并提高了诊断准确性,该方法可行且有效。

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