Enhancement of Weighting Coefficient Selection using Grey Relational Analysis for Model Predictive Torque Control of PMSM Drive: Analysis and Experiments

Avinash Vujji, R. Dahiya
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Abstract

Permanent magnet synchronous motor (PMSM) with model predictive torque control (MPTC) is popular for its simplified control structure and adaptable in incorporating control parameters into the control algorithm. However, in control technique the primary concern for objective function (OF) depends on the selection of appropriate weighting coefficient (WC). Basically, for weighting coefficient selection, empirical methods are used but it takes additional time and heuristic process. In this paper, Grey Relational Analysis (GRA) technique is introduced in optimization of objective function for selection of appropriate weighting coefficient. In this methodology, stator flux and torque having individual OF are modified from single-OF. This ensures that in each sampling period, selection of grey relational optimal control action is dependent on the preference given to the control parameters in OF. For each sampling, a Grey Relational Grade (GRG) is employed to determine the appropriate control action. The models for two-level inverter fed PMSM are developed in MATLAB/Simulink to test the various operations of PMSM drive and the results are validated on the experimental test bench using dSPACE-1104 R&D controller. In order to highlight the effectiveness of the proposed technique, the results are compared with DTFC and MPTC approach.
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利用灰色关系分析改进 PMSM 驱动器模型预测转矩控制的加权系数选择:分析与实验
采用模型预测转矩控制(MPTC)的永磁同步电机(PMSM)因其简化的控制结构和将控制参数纳入控制算法的适应性而广受欢迎。然而,在控制技术中,目标函数(OF)的主要关注点取决于选择适当的加权系数(WC)。权重系数的选择基本上采用经验方法,但这需要额外的时间和启发式过程。本文在优化目标函数时引入了灰色关系分析(GRA)技术,以选择合适的加权系数。在这种方法中,定子磁通和转矩的单个目标函数由单个目标函数修改而来。这确保了在每个采样周期内,灰色关系最佳控制行动的选择取决于对 OF 中控制参数的偏好。每次采样时,都会采用灰色关联等级 (GRG) 来确定适当的控制策略。在 MATLAB/Simulink 中开发了馈电 PMSM 的两电平逆变器模型,以测试 PMSM 驱动器的各种操作,并使用 dSPACE-1104 研发控制器在实验测试台上验证了结果。为了突出所提技术的有效性,将结果与 DTFC 和 MPTC 方法进行了比较。
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