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Model Predictive MRAS Estimator for Sensorless Induction Motor Drives

机译:用于无传感器感应电动机驱动器的模型预测MRAS估计器

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This paper presents a novel predictive model reference adaptive system (MRAS) speed estimator for sensorless induction motor (IM) drives applications. The proposed estimator is based on the finite control set-model predictive control (FCS-MPC) principle. The rotor position is calculated using a search-based optimization algorithm which ensures a minimum speed tuning error signal at each sampling period. This eliminates the need for a proportional–integral (PI) controller which is conventionally employed in the adaption mechanism of MRAS estimators. Extensive experimental tests have been carried out to evaluate the performance of the proposed estimator using a 2.2-kW IM with a field-oriented control (FOC) scheme employed as the motor control strategy. Experimental results show improved performance of the MRAS scheme in both open- and closed-loop sensorless modes of operation at low speeds and with different loading conditions including regeneration. The proposed scheme also improves the system robustness against motor parameter variations and increases the maximum bandwidth of the speed loop controller.
机译:本文提出了一种新颖的预测模型参考自适应系统(MRAS)速度估计器,适用于无传感器感应电动机(IM)驱动器应用。所提出的估计器基于有限控制集模型预测控制(FCS-MPC)原理。使用基于搜索的优化算法计算转子位置,该算法可确保每个采样周期的最小速度调整误差信号。这消除了对比例积分(PI)控制器的需要,该控制器通常用于MRAS估计器的自适应机制中。已经进行了广泛的实验测试,以评估使用2.2 kW IM的拟议估算器的性能,并采用了磁场定向控制(FOC)方案作为电机控制策略。实验结果表明,在低速和不同负载条件下(包括再生),MRAS方案在开环和闭环无传感器运行模式下的性能均得到改善。所提出的方案还提高了针对电动机参数变化的系统鲁棒性,并增加了速度环控制器的最大带宽。

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