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Model Predictive Direct Torque Control of induction machines using a two-fold state approximation strategy

机译:基于双重状态近似策略的感应电机模型预测直接转矩控制

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This paper presents a novel method for adopting the concept of Model Predictive Control (MPC) in Direct Torque Control (DTC) of Electrical machines. The proposed algorithm enhances the performance of a DTC controller by keeping the motor's electromagnetic torque and stator flux magnitude within predefined hysteresis bounds while minimizing the switching power losses. The MPC controller predicts the output trajectories using an explicit model of the drive. A two-fold state approximation policy limits the quantity of the admissible outputs in drawing the tree of feasible trajectories over the prediction horizon. The chains of switching sequences and relevant switching losses are identified and a dynamic programming algorithm chooses the chain of switching sequences that minimizes a cost function on power losses in the inverter. Using receding horizon policy, only the first component of this chain is applied to the machine as the input signal at every sampling instant. The simulations are performed a small-sized induction motor-drive unit. The outcomes verify the advantages of this method in comparison with classic DTC.
机译:本文提出了一种在电机直接转矩控制(DTC)中采用模型预测控制(MPC)概念的新方法。所提出的算法通过将电动机的电磁转矩和定子磁通量保持在预定义的磁滞范围之内,同时最大程度地降低了开关功率损耗,从而提高了DTC控制器的性能。 MPC控制器使用驱动器的显式模型预测输出轨迹。双重状态近似策略在绘制预测范围上的可行轨迹树时限制了可允许输出的数量。确定开关序列链和相关的开关损耗,并采用动态编程算法选择开关序列链,以最大程度降低逆变器中功率损耗的成本函数。使用后退范围策略,在每个采样时刻,仅将此链的第一部分作为输入信号应用于机器。模拟是在小型感应电动机驱动单元上进行的。结果证明了该方法与经典DTC相比的优势。

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