105 / 2025-02-22 21:26:22
Parameter Robustness Research of Incremental Model-based Deadbeat Predictive Current Control for High-Speed PMSM Drives
Predictive control,Current control,High-speed PMSM,Incremental model,Parameter robustness
Final Paper
Shangjian Dai / School of Electrical Engineering, Southeast University;Shenzhen Institute of Southeast University
Li Zhang / School of Electrical Engineering, Southeast University
Han Zhang / School of Electrical Engineering, Southeast University
Xingyu Lu / School of Electrical Engineering, Southeast University
Wei Hua / School of Electrical Engineering, Southeast University;Engineering Research Center of Electrical Transport Technology, Ministry of Education, Southeast University
The control performance of deadbeat predictive current control (DPCC) depends on machine parameters and degrades with inaccurate values. Its parameter robustness worsens at high speed due to low switching-to-fundamental frequency ratios (SFRs). In this paper, an accurate discrete machine model suitable for high-speed permanent magnet synchronous machine (PMSM) and low SFR is first constructed, based on which an accurate discrete incremental model with the advantage of self-elimination of flux linkage is then derived and the incremental model-based DPCC for high-speed PMSM drives is proposed. The steady-state current control performance under parameter mismatch is analytical analyzed for the incremental model-based DPCC. It is found that steady-state current control accuracy is independent of parameter mismatch. Extensive simulations on a high-speed PMSM prototype have been conducted to verify the effectiveness of the proposed incremental model-based DPCC for high-speed PMSMs and its parameter robustness. By comparisons to the conventional discrete dq-axis voltage model-based DPCC and flux tracking-based DPCC, it is concluded that the incremental model-based DPCC exhibits good steady-state control robustness under all parameter mismatches while its transient performance and stability under inductance mismatch deteriorate more significantly with large oscillation and dq-axis coupling.
Important Date
  • Conference Date

    Jun 05

    2025

    to

    Jun 01

    2026

  • May 30 2025

    Draft paper submission deadline

  • Jun 08 2025

    Registration deadline

Sponsored By
China Southeast University
IEEE Power Electronics Society
Jiangsu Association of Automation
Nanjing Section IE Chapter
Organized By
Southeast University