用于感应电机无传感器控制的扩展卡尔曼滤波

F. Alonge, F. D’Ippolito
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引用次数: 18

摘要

本文研究了用扩展卡尔曼滤波(EKF)估计异步电动机转速和转子磁链的问题。该滤波器从感应电动机非线性模型的一阶离散化得到的离散时间模型出发进行设计。为了获得上述变量的准确估计,将负载转矩纳入状态变量中进行估计,从而构造六阶EKF。实验结果显示了一个闭环无传感器控制系统,该系统由电压源逆变器供电的750w感应电机、由四个PI控制环组成的级联控制器和给出反馈变量的设计EKF组成。通过Matlab/Simulink环境下的仿真,与模型中不包含力学方程的五阶EKF进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extended Kalman Filter for sensorless control of induction motors
This paper deals with speed and rotor flux estimation of induction motors via Extended Kalman Filter (EKF). The filter is designed starting from a discrete time model obtained by means of a first order discretization of the original nonlinear model of the induction motor (IM). In order to obtain accurate estimation of the above mentioned variables, the load torque is included into the state variables and then estimated, thus constructing a sixth order EKF. Experimental results are shown with reference to a closed loop sensorless control system, consisting of a 750 W induction motor supplied by a voltage source inverter, a cascade controller consisting of four PI control loops and the designed EKF which gives the feedback variables. Comparison with a fifth order EKF, which does not include mechanical equation in the model, is carried out by means of simulation in Matlab/Simulink environment.
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