Speed Sensorless Vector Control of Induction Motors Based on Robust Adaptive Variable Structure Control Law

O. Barambones, A. Garrido, F. Maseda, P. Alkorta
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引用次数: 2

Abstract

A novel sensorless adaptive robust control law is proposed to improve the trajectory tracking performance of induction motors. The proposed design employs the so called vector (or field oriented) control theory for the induction motor drives and the designed control law is based on an integral sliding-mode algorithm that overcomes the system uncertainties. The proposed sliding-mode control law incorporates an adaptive switching gain to avoid calculating an upper limit of the system uncertainties. The proposed design also includes a new method in order to estimate the rotor speed. In this method, the rotor speed estimation error is presented as a first order simple function based on the difference between the real stator currents and the estimated stator currents. The stability analysis of the proposed controller under parameter uncertainties and load disturbances is provided using the Lyapunov stability theory. Finally simulated results show, on the one hand that the proposed controller with the proposed rotor speed estimator provides high-performance dynamic characteristics, and on the other hand that this scheme is robust with respect to plant parameter variations and external load disturbances
基于鲁棒自适应变结构控制律的异步电机无速度传感器矢量控制
为了提高异步电动机的轨迹跟踪性能,提出了一种新的无传感器自适应鲁棒控制律。该设计采用矢量(或场导向)控制理论,设计的控制律基于积分滑模算法,克服了系统的不确定性。所提出的滑模控制律包含一个自适应开关增益,以避免计算系统不确定性的上限。该设计还包括一种新的转子转速估计方法。该方法将转子转速估计误差表示为基于实际定子电流与估计定子电流之差的一阶简单函数。利用李雅普诺夫稳定性理论分析了该控制器在参数不确定性和负载扰动下的稳定性。仿真结果表明,该方法不仅具有良好的动态特性,而且对系统参数变化和外部负载扰动具有较强的鲁棒性
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