A Reconfiguration Technique for Multilevel Inverters Incorporating Diagnostic System Based on Neural Network

S. Khomfoi, L. Tolbert
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引用次数: 11

Abstract

A reconfiguration technique for multilevel inverters incorporating a diagnostic system based on neural network is proposed in this paper. It is difficult to diagnose a multilevel-inverter drive (MLID) system using a mathematical model because MLID systems consist of many switching devices and their system complexity has a nonlinear factor. Therefore, a neural network (NN) classification is applied to the fault diagnosis of a MLID system. Multilayer perceptron networks are used to identify the type and location of occurring faults. The principal component analysis (PCA) is utilized in the feature extraction process to reduce the NN input size. A lower dimensional input space will also usually reduce the time necessary to train a NN, and the reduced noise may improve the mapping performance. The output phase voltage of a MLID can be used to diagnose the faults and their locations. The reconfiguration technique is also proposed. The effects of using the proposed reconfiguration technique at high modulation index are addressed. The proposed system is validated with experimental results. The experimental results show that the proposed system performs satisfactorily to detect the fault type, fault location, and reconfiguration
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基于神经网络诊断系统的多电平逆变器重构技术
提出了一种基于神经网络诊断系统的多电平逆变器重构技术。由于多电平逆变驱动系统由多个开关器件组成,且系统复杂性具有非线性因素,因此用数学模型对多电平逆变驱动系统进行诊断比较困难。因此,将神经网络分类方法应用于MLID系统的故障诊断。多层感知器网络用于识别发生故障的类型和位置。在特征提取过程中利用主成分分析(PCA)来减小神经网络的输入大小。低维输入空间通常也会减少训练神经网络所需的时间,并且减少的噪声可能会提高映射性能。MLID的输出相电压可以用来诊断故障及其位置。并提出了重构技术。讨论了在高调制指数下使用所提出的重构技术的影响。实验结果验证了该系统的有效性。实验结果表明,该系统在故障类型检测、故障定位和重构等方面取得了满意的效果
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