Speed estimator in closed-loop scalar control using neural networks

T. H. Santos, A. Goedtel, S. A. O. Silva, M. Suetake
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引用次数: 2

Abstract

This work proposes an artificial neural network approach to estimate the induction motor speed applied in a closed-loop scalar control. The induction motor speed is the important quantity in an industrial process. Thus, when the load coupled to the axis needs speed control, some of the drive and control strategies are based on the estimated axis speed of the motor. This paper proposes an alternative methodology for estimating the speed of a three phase induction motor driven by a voltage source inverter, using space vector modulation under the scalar control strategy and based on artificial neural networks. Experimental results are presented to validate the performance of the proposed method under motor load torque and speed reference set point variations.
基于神经网络的闭环标量控制速度估计
本文提出了一种人工神经网络方法来估计异步电动机在闭环标量控制中的速度。感应电机转速是工业生产过程中的重要参数。因此,当耦合到轴上的负载需要速度控制时,一些驱动和控制策略是基于估计的电机轴速。本文提出了一种利用标量控制策略下的空间矢量调制和基于人工神经网络的电压源逆变器驱动三相异步电动机速度估计的替代方法。实验结果验证了该方法在电机负载转矩和转速参考设定值变化下的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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