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Predicting behavior of induction motors during service faults and interruptions

机译:在维修故障和中断期间预测感应电动机的行为

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摘要

A neural network-based identification for induction motor speed is proposed. The backpropagation neural network technique is used to provide real-time adaptive estimation of the motor speed. The validity and effectiveness of the proposed estimator as well as its sensitivity to parameter variation are verified by digital simulations. The proposed identification performs well under vector control and therefore can lead to an improvement in the performance of speed sensorless drives. The new approach is presented in a way that will contribute to a better understanding of neural network applications to motion control.
机译:提出了一种基于神经网络的异步电动机转速辨识方法。反向传播神经网络技术用于提供电动机速度的实时自适应估计。通过数字仿真验证了所提估计器的有效性和有效性以及其对参数变化的敏感性。所提出的识别在矢量控制下表现良好,因此可以提高无速度传感器驱动器的性能。提出的新方法将有助于更好地理解神经网络在运动控制中的应用。

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