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An Efficient Simplified Physical Faulty Model of a Permanent Magnet Synchronous Generator Dedicated to Stator Fault Diagnosis Part II: Automatic Stator Fault Diagnosis

机译:专用于定子故障诊断的永磁同步发电机的高效简化物理故障模型第二部分:定子自动故障诊断

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摘要

This paper proposes an automatic and intelligent stator fault diagnosis system for permanent magnet synchronous generators. The system is based on the use of a feedforward multilayer perception artificial neural network (ANN) performed by the back-propagation training algorithm. From a thorough study and analysis of the behavior of the negative-sequence voltage of the machine under different stator faults and different operating conditions, two new robust indicators of faults are selected as the ANN inputs. The two fault indicators are the phase angle of the negative sequence voltage and the frequency of the machine voltages. After successfully training and testing the ANN with specific and meaningful databases, the ANN behavior is validated by using an experimental database acquired from a real machine. The accurate results provided by the ANN prove the reliability of the proposed system to automatically diagnose different stator faults under variable speed, variable fault current, and variable load conditions overcoming different disturbances, such as the noisy signals and the harmonics in the machine.
机译:提出了一种永磁同步发电机自动智能定子故障诊断系统。该系统基于由反向传播训练算法执行的前馈多层感知人工神经网络(ANN)的使用。通过对电机的负序电压在不同定子故障和不同运行条件下的行为进行透彻的研究和分析,选择了两个新的鲁棒故障指示符作为ANN输入。两个故障指示器是负序电压的相角和电机电压的频率。在使用特定且有意义的数据库成功训练和测试了ANN之后,通过使用从真实机器获取的实验数据库来验证ANN行为。人工神经网络提供的准确结果证明了所提出系统的可靠性,该系统可在变速,可变故障电流和可变负载条件下自动诊断不同的定子故障,克服各种干扰,例如电机中的噪声信号和谐波。

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