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September 23, 2025Symmetry3 citationsOpen Access

Research on Speed Control of Permanent Magnet Synchronous Motor Based on Improved Fast Terminal Sliding Mode with Adaptive Control Law

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MHMingyuan HuLZLei ZhangRTRan Tao

Key Points

  • The proposed control algorithm enhances speed tracking accuracy while maintaining system stability.
  • Experimental results show improved anti-interference capability against disturbances in PMSM systems.
  • The integration of IFTSM and NARL enables finite-time convergence of system states, resolving traditional control issues.
  • Dynamic optimization of reaching speed improves the system's smoothness and response time during operation.

Abstract

Aiming at the control performance degradation of permanent magnet synchronous motor (PMSM) drive systems caused by uncertainties of internal and external disturbances, a robust control algorithm integrating an improved fast terminal sliding mode (IFTSM) surface with a novel adaptive reaching law (NARL) is proposed. A dynamic model of PMSM with disturbances is established, and an improved fast terminal sliding mode surface is designed. By introducing nonlinear terms and error derivative feedback mechanisms, the finite-time rapid convergence of system states is achieved, while solving the singularity problem of traditional terminal sliding mode control. Combined with the novel adaptive reaching law strategy, a state-dependent gain adjustment function is used to dynamically optimize the balance between reaching speed and chattering, enhancing the smoothness of the system′s dynamic response. Through the synergy of the finite-time convergence characteristic of the improved sliding mode surface and the novel adaptive reaching law, the proposed algorithm significantly enhances the system′s anti-interference capability against load mutations and parameter time variations. Experiment results demonstrate that under complex working conditions, the algorithm achieves superior speed tracking accuracy and current stability, providing a control solution with strong anti-interference capability and fast response for PMSM speed control systems.

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Cite This Study

Hu et al. (2025) studied this question.

synapsesocial.com/papers/68d4757f31b076d99fa6ce7fhttps://doi.org/10.3390/sym17101586
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