An Adaptive FNN Control for Torque-Ripple Reduction of SR Motor Drive

Chih‐Hong Lin
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引用次数: 3

Abstract

The purpose of this paper is to implement a novel approach to learning control for torque-ripple reduction of switched reluctance motor (SRM) using an adaptive fuzzy neural network (AFNN) control. First, the dynamic models of a SRM drive system are builted though SRM experimental tests and parameters measurements. Then, in order to reduce torque ripple, an AFNN speed control system that combined FNN and compensated control with adaptive law is developed to control SRM drive system. The AFNN control system produces smooth torque up to the motor base speed. Finally, the effectiveness of the proposed control scheme is demonstrated by experimental results.
SR电机驱动转矩脉动抑制的自适应FNN控制
本文的目的是利用自适应模糊神经网络(AFNN)控制实现开关磁阻电机(SRM)转矩纹波减小的学习控制。首先,通过SRM实验测试和参数测量,建立了SRM驱动系统的动力学模型。然后,为了减小转矩脉动,设计了一种将模糊神经网络与自适应补偿控制相结合的AFNN速度控制系统来控制SRM驱动系统。AFNN控制系统产生平滑转矩直至电机基本速度。最后,通过实验验证了所提控制方案的有效性。
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