Signal Injection Based Sensorless Online Monitoring of Induction Motor Temperature

A. Y. Hassan, M. Elzalik
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Abstract

This research work presents an accurate sensorless temperature monitoring for the commercial induction motor (IM) operated by soft starters (SSs). This technique is relying on calculating stator winding temperature (SWT) of the IM. The methodology is to inject or translate a DC signal into the motor at its normal operation without interrupting the motor running. The research work employs the artificial neural network (ANN) techniques in the asynchronous thermal monitoring scheme for supplying efficient and active temperature calculation of the stator winding, also for decreasing the estimation error. The value of Stator Winding Resistance (SWR) and SWT that computed from signal injection is processed by the ANN with other parameters such the current of stator winding to obtain an accurate value of SWT. A comparison between the results of the proposed ANN scheme and other techniques is performed and the obtained results are inventively.
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基于信号注入的感应电机温度无传感器在线监测
本研究为软起动器驱动的商用感应电动机(IM)提供了一种精确的无传感器温度监测。该技术依赖于计算IM的定子绕组温度(SWT)。该方法是在电机正常运行时注入或转换直流信号,而不中断电机运行。研究工作将人工神经网络技术应用于异步热监测方案中,提供了有效的定子绕组温度计算,并减小了估计误差。由信号注入计算得到的定子绕组电阻(SWR)和SWT值,再与定子绕组电流等其他参数进行处理,得到准确的定子绕组电阻(SWR)值。将所提出的人工神经网络方案的结果与其他技术进行了比较,所得结果具有创造性。
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