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Model-Based Predictive Direct Control Strategies for Electrical Drives: An Experimental Evaluation of PTC and PCC Methods

机译:电力驱动器基于模型的预测直接控制策略:PTC和PCC方法的实验评估

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摘要

Model-based predictive direct control methods are advanced control strategies in the field of power electronics. To control an induction machine (IM), the predictive torque control (PTC) method evaluates the electromagnetic torque and stator flux in the cost function. The switching vector selected for the use in the insulated gate bipolar transistors (IGBTs) minimizes the error between references and the predicted values. The system constraints can be easily included. The predictive current control (PCC) strategy assesses the stator current in the cost function. The weighting factor is not necessary. Both the PTC and PCC methods are very useful direct control methods that do not require the use of a modulator. In this paper, the PTC and PCC methods are carried out experimentally for an IM on the same test bench. The behaviors and the robustness in steady state and the performances in transient state are evaluated.
机译:基于模型的预测直接控制方法是电力电子领域中的高级控制策略。为了控制感应电机(IM),预测转矩控制(PTC)方法评估成本函数中的电磁转矩和定子磁通。选择用于绝缘栅双极型晶体管(IGBT)的开关矢量可最大程度地减少参考值和预测值之间的误差。系统约束很容易包含在内。预测电流控制(PCC)策略在成本函数中评估定子电流。加权因子不是必需的。 PTC和PCC方法都是非常有用的直接控制方法,不需要使用调制器。在本文中,PTC和PCC方法是在同一测试台上针对IM进行实验性执行的。评估了稳态下的行为和鲁棒性以及瞬态下的性能。

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