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May 7, 2026Processes2 citationsOpen Access

Improved Terminal Integral Sliding Mode Control Based on PMSM for New Energy Vehicle Applications

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WHWenqiang HeJBJing BaiYXYu Xu

Key Points

  • This research aims to improve control performance in PMSM drive systems for new energy vehicles affected by multi-source disturbances.
  • Proposed improved terminal integral sliding mode control (ITISMC-ADERL) strategy
  • Developed a piecewise adaptive terminal integral sliding mode surface
  • Applied state-dependent ADERL for dynamic gain adjustment
  • Conducted tests on a TMS320F28379D DSP platform
  • Eliminated singularity and integral saturation defects
  • Achieved finite-time convergence via Lyapunov stability theory
  • Outperformed existing control strategies in all test scenarios
  • Enhanced control accuracy and anti-disturbance robustness

Abstract

To address the deteriorated control performance of permanent magnet synchronous motor (PMSM) drive systems for new energy vehicles (NEVs) under complex conditions caused by multi-source disturbances (internal parameter perturbations and external load mutations), this paper proposes an improved terminal integral sliding mode control (ITISMC-ADERL) strategy integrating a piecewise adaptive terminal integral sliding mode surface and an ADERL. The proposed sliding mode surface adopts interval-adaptive switching between high- and low-order power terms, completely eliminating singularity and integral saturation defects of traditional terminal sliding mode control while ensuring fast convergence, and achieving an optimal structural balance between convergence speed and chattering suppression. The state-dependent ADERL leverages the synergy of error-sliding variable coupled dynamic gain adjustment and variable exponential power compensation, realizing dual-mode adaptive switching of “strong driving for fast approaching far from the sliding surface, weak gain for smooth regulation near the sliding surface”, which significantly improves control accuracy and anti-disturbance robustness. The finite-time convergence of the closed-loop system is rigorously proved via Lyapunov stability theory. Full-operating-condition comparative tests on a TMS320F28379D DSP platform show that the proposed strategy outperforms SMC-ERL, ISMC-ERL and ITISMC-ERL in all test scenarios (no-load startup, acceleration/deceleration, sudden load changes, flux linkage perturbation), meeting the requirements of high-performance NEV drive systems and possessing important engineering application potential.

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Cite This Study

He et al. (2026) studied this question.

synapsesocial.com/papers/69fbe2f2164b5133a91a24b2https://doi.org/10.3390/pr14091377
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