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11.05.2024 | Original Paper

Low complexity model predictive current control for dual three-phase permanent magnet synchronous motor with extended control set and duty cycle modulation

verfasst von: Quanzeng Sun, Zhifeng Zhang

Erschienen in: Electrical Engineering

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Abstract

The model predictive current control (MPCC) method is considered to be one of the most effective methods to solve the dual three-phase permanent magnet synchronous motor driving problem. However, the existing traditional MPCC method is limited. In some cases, inaccuracies in the selected optimal voltage vector (Vopt) can lead to additional current ripple and unsatisfactory steady-state performance, and the MPCC method needs to carry out the traversal optimization process, which increases the computational burden. To solve the above problem, this paper proposes an MPCC method based on an extended finite control set and duty cycle modulation. Firstly, 12 virtual voltage vectors (V3s) with new directions are synthesized, and an extended control set containing 24 V3s is constructed to effectively reduce harmonic current and torque ripple. Then, the dead-beat current control is used to calculate the sector of the reference voltage vector (Vref), and the Vopt is selected by judging the position of the sector, which reduces the calculation burden. More importantly, the technique of duty cycle modulation is put forward to calculate the residence time of the Vopt, aiming to amend the Vopt magnitude, which can improve the control accuracy. For ease of understanding and software implementation on Digital Signal Processors, triangular carriers are used to generate asymmetric switching sequences. Finally, the experimental results show that the proposed method has better current quality and lower torque ripple than the two existing methods, and the calculation burden is reduced.

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Metadaten
Titel
Low complexity model predictive current control for dual three-phase permanent magnet synchronous motor with extended control set and duty cycle modulation
verfasst von
Quanzeng Sun
Zhifeng Zhang
Publikationsdatum
11.05.2024
Verlag
Springer Berlin Heidelberg
Erschienen in
Electrical Engineering
Print ISSN: 0948-7921
Elektronische ISSN: 1432-0487
DOI
https://doi.org/10.1007/s00202-024-02433-5