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Torque based selection of ANN for fault diagnosis of wound rotor asynchronous motor-converter association

机译:基于转矩的ANN选择用于绕线转子异步电动机-变频器关联故障诊断

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In this paper, an automatic system of diagnosis was developed to detect and locate in real time the defects of the wound rotor asynchronous machine associated to electronic converter. For this purpose, we have treated the signals of the measured parameters (current and speed) to use them firstly, as indicating variables of the machine defects under study and, secondly, as inputs to the Artificial Neuron Network (ANN) for their classification in order to detect the defect type in progress. Once a defect is detected, the interpretation system of information will give the type of the defect and its place of appearance.
机译:在本文中,开发了一种自动诊断系统来实时检测和定位与电子转换器相关的绕线转子异步电机的缺陷。为此,我们已经处理了测量参数(电流和速度)的信号,以将其用作指示所研究机器缺陷的变量,其次用作输入人工神经元网络(ANN)进行分类。为了检测进行中的缺陷类型。一旦检测到缺陷,信息解释系统将给出缺陷的类型及其出现的位置。

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