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Dynamic Cost Function Design of Finite-Control-Set Model Predictive Current Control for PMSM Drives

机译:PMSM驱动器有限控制集模型预测电流控制的动态成本函数设计

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One of the clear advantages of finite-control-set model predictive control (FCS-MPC) is that several control targets and constraints can be contained in a cost function. However, the traditional fixed weighting factors cannot make each term in cost function fully express their performance, especially during a dynamic process. This paper proposes an FCS-MPC with a dynamic cost function based on fuzzy rules. The speed error and its change are used for tuning weighting factors adaptively by fuzzy method. The membership functions and fuzzy decision rules are built. The proposed method can improve the dynamic response, and the switching frequency is optimized at the same time. The performance is demonstrated in both simulation and experiment.
机译:有限控制设定模型预测控制(FCS-MPC)的清晰优点之一是可以以成本函数包含多个控制目标和约束。但是,传统的固定加权因子不能使成本函数的每个术语充分表达其性能,尤其是在动态过程中。本文提出了一种基于模糊规则的动态成本函数的FCS-MPC。速度误差及其变化用于通过模糊方法自适应调整加权因子。建立会员函数和模糊决策规则。所提出的方法可以提高动态响应,并且同时优化开关频率。两者的模拟和实验都证明了性能。

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