Model Predictive Control of Switched Reluctance Machines with Online Torque Sharing Function Based on Optimal Flux-linkage Curve

被引:1
|
作者
Ge L. [1 ]
Fan Z. [1 ]
Huang J. [1 ]
Cheng Q. [1 ]
Zhao D. [1 ]
Song S. [1 ]
De Doncker R.W. [3 ]
机构
[1] ISEA, RWTH Aachen University, Aachen
关键词
Commutation; Flux-linkage Curve; Reluctance machines; Rotors; Shape; Switched Reluctance Machines (SRMs); Torque; Torque control; Torque measurement; Torque Ripple; Torque Sharing Function (TSF);
D O I
10.1109/TTE.2023.3324707
中图分类号
学科分类号
摘要
Aiming at reducing the large ripple of torque of switched reluctance machines (SRMs), this paper introduces a model predictive control (MPC) approach that leverages the optimal flux-linkage curve for enhanced performance. According to the multi-objective optimization requirement, this paper regulates phase flux-linkage curve based on the Gravitational Search Algorithm (GSA). On this basis, the torque sharing function (TSF) is built according to optimal flux-linkage curve, thus improving the smoothness of flux-linkage curve and reducing ripple of torque. Finally, the TSF is combined with MPC to control torque. This method predicts the phase torque and phase current to construct a cost function and select the optimal candidate switch state to be applied to control the power converter, thus reducing the torque ripple. Simulations and experiments are performed on a three-phase 12/8-pole SRM to validate that the method proposed in this paper could effectually suppress the ripple of torque and reduce RMS (Root Mean Square) phase current. IEEE
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页码:1 / 1
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