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A Comprehensive Comparison of Extended and Unscented Kalman Filters for Speed-Sensorless Control Applications of Induction Motors

机译:延长和无智能卡尔曼滤波器进行综合比较,用于感应电动机无传感器控制应用

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摘要

In this article, the real-time comparison of extended and unscented Kalman filter algorithms, which estimate the stator stationary axis components of stator currents, the stator stationary axis components of rotor fluxes, the rotor mechanical speed, and the load torque including viscous friction term, are performed under different operating conditions for speed-sensorless control applications of induction motors (IMs). Thus, it is clarified which algorithm is more suitable for state and parameter (load torque) estimation problem of IMs. For this purpose, four different real-time experimental tests have been carried out, which examine the effect of noise covariance matrices, parameter changes, sampling time, and computational burdens on estimation performance of both algorithms. Unlike the current literature, remarkable comparison results have been obtained.
机译:在本文中,延长和无编织的卡尔曼滤波器算法的实时比较,其估计定子电流的定子固定轴分量,转子助焊剂的定子固定轴分量,转子机械速度和包括粘性摩擦术语的负载扭矩,在感应电动机(IMS)的无传感器控制应用的不同操作条件下进行。因此,阐明了哪种算法更适合于IMS的状态和参数(负载扭矩)估计问题。为此目的,已经进行了四种不同的实时实验测试,这检查了噪声协方差矩阵,参数变化,采样时间和计算负担对两种算法的估计性能的影响。与当前文献不同,已经获得了显着的比较结果。

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