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Double Vector Based Model Predictive Torque Control for SPMSM Drives with Improved Steady-State Performance

机译:具有改善的稳态性能的SPMSM驱动器的基于双矢量的模型预测转矩控制

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摘要

In order to further improve the steady-state control performance of model predictive torque control (MPTC), a double-vectorbased model predictive torque control without a weighting factor is proposed in this paper. The extended voltage vectors synthesized by two basic voltage vectors are used to increase the number of feasible voltage vectors. Therefore, the control precision of the torque and the stator flux along with the steady-state performance can be improved. To avoid testing all of the feasible voltage vectors, the solution of deadbeat torque control is calculated to predict the reference voltage vector. Thus, the candidate voltage vectors, which need to be evaluated by a cost function, can be reduced based on the sector position of the predicted reference voltage vector. Furthermore, a cost function, which only includes a reference voltage tracking error, is designed to eliminate the weighting factor. Moreover, two voltage vectors are applied during one control period, and their durations are calculated based on the principle of reference voltage tracking error minimization. Finally, the proposed method is tested by simulations and experiments.
机译:为了进一步提高模型预测转矩控制(MPTC)的稳态控制性能,提出了一种基于双矢量的无加权模型预测转矩控制。由两个基本电压矢量合成的扩展电压矢量用于增加可行电压矢量的数量。因此,可以提高转矩和定子磁通的控制精度以及稳态性能。为了避免测试所有可行的电压矢量,计算无差拍转矩控制的解来预测参考电压矢量。因此,可以基于预测的参考电压矢量的扇区位置来减少需要通过成本函数评估的候选电压矢量。此外,设计了仅包含参考电压跟踪误差的成本函数,以消除加权因子。此外,在一个控制周期内施加两个电压矢量,并根据参考电压跟踪误差最小化的原理计算其持续时间。最后,通过仿真和实验对提出的方法进行了测试。

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