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Comprehensive Analysis of Fault Diagnosis Methods for Aluminum Electrolytic Control System

机译:铝电解控制系统故障诊断方法综合分析

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摘要

This paper established the fault diagnosis system of aluminum electrolysis, according to the characteristics of the faults in aluminum electrolysis. This system includes two subsystems; one is process fault subsystem and the other is fault subsystem. Process fault subsystem includes the subneural network layer and decision fusion layer. Decision fusion neural network verifies the diagnosis result of the subneural network by the information transferring over the network and gives the decision of fault synthetically. EMD algorithm is used for data preprocessing of current signal in stator of the fault subsystem. Wavelet decomposition is used to extract feature on current signal in the stator; then, the system inputs the feature to the rough neural network for fault diagnosis and fault classification. The rough neural network gives the results of fault diagnosis. The simulation results verify the feasibility of the method.
机译:本文建立了铝电解的故障诊断系统,根据铝电解故障的特点。该系统包括两个子系统;一个是过程故障子系统,另一个是故障子系统。过程故障子系统包括子网层和决策融合层。决策融合神经网络通过传输网络的信息来验证子网的诊断结果,并综合地给出了故障的决定。 EMD算法用于故障子系统定子中的电流信号的数据预处理。小波分解用于提取定子中电流信号的特征;然后,系统将该特征输入到粗糙神经网络中进行故障诊断和故障分类。粗糙的神经网络给出了故障诊断结果。仿真结果验证了该方法的可行性。

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