Robust Flux-Weakening Control Strategy Against Multiple Parameter Variations for Interior Permanent Magnet Synchronous Motors

  • Jinqiu Gao
  • , Huichao Li
  • , Shicai Yin
  • , Yao Ming
  • , Gerui Zhang
  • , Chao Gong
  • , Ke Tang
  • , Pengcheng Guo

Research output: Contribution to journalArticlepeer-review

Abstract

Interior permanent magnet synchronous motors (IPMSMs) are widely adopted in electric vehicles due to their high torque density and efficiency, and they require flux-weakening operation to achieve high-speed performance under certain driving conditions. However, the traditional current vector control (CVC)-based flux-weakening strategies suffer from performance degradation when motor parameters, such as inductances and flux linkage, vary with temperature and operating conditions. To address this issue, this paper proposes a robust flux-weakening control strategy against multiple parameter variations. First, three sequential sliding-mode observers (SMOs) that form a sliding-mode observer suite (SMOS), whose stability is analyzed using Lyapunov theory, are designed to estimate the flux linkage, q-axis inductance, and d-axis inductance, respectively. Second, an error-analysis extraction (EAE) is developed to refine the parameter estimation accuracy by analytically solving a set of linear equations derived from observer results. Third, the accurately estimated parameters are applied to the CVC framework to generate adaptive reference currents, achieving robust and stable flux-weakening control performance. Finally, simulation and experiment are conducted to demonstrate that the proposed strategy effectively enhances control performance under multiple parameter variations.

Original languageEnglish
Article number53
JournalMachines
Volume14
Issue number1
DOIs
StatePublished - Jan 2026

Keywords

  • flux-weakening control
  • interior permanent magnet synchronous motor
  • parameter variations
  • sliding-mode observer

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