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Continuous Estimation of Speed and Torque of Induction Motors Using the Unscented Kalman Filter under Voltage Sag

机译:电压暂降下使用无味卡尔曼滤波器的感应电动机速度和转矩连续估计

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Due to sensor limitations in some applications, induction motors state estimators are widely used in industries.One of the most powerful tools available for estimation is the Kalman filter.In this paper, unscented Kalman filter (UKF) and extended Kalman filter (EKF) is used to estimate the speed and torque of an induction motor.In the UKF algorithm, three types of unscented transformation (UT): basic, general and spherical types are presented and compared.It will be shown that the spherical UKF presents good estimation performance.Speed and torque Estimation approach is applied at both steady state conditions and at the time of sudden and rapid change in the motor input voltage.It will be shown that, EKF cannot trace the motor speed at the time of a large disturbance.Finally, experimental validation is presented to show the effectiveness of UKF for continuous estimation of torque and speed of induction motors.
机译:由于传感器在某些应用中的局限性,感应电动机状态估计器在行业中得到了广泛应用。最有效的估计工具之一是卡尔曼滤波器。在本文中,无味卡尔曼滤波器(UKF)和扩展卡尔曼滤波器(EKF)是在UKF算法中,提出并比较了三种类型的无味变换(UT):基本类型,通用类型和球形类型,这表明球形UKF具有良好的估计性能。速度和转矩估算方法在稳态条件下以及电动机输入电压突然快速变化时都适用,这表明EKF在大扰动时无法追踪电动机速度。进行了验证,以显示UKF在连续估计感应电动机的转矩和速度方面的有效性。

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