DOI: 10.1177/09596518261485784 ISSN: 0959-6518

Nonsingular fast terminal sliding mode control for direct-drive permanent magnet wind power systems based on an inverse hyperbolic sine extended state observer

Jianrui Li, Guoxin Sun, Xuefei Zhao, Baihan Liu, Ruifeng Li, Qihui Yu, Ripeng Qin

To address the strong nonlinearity, parameter perturbations, and stochastic wind disturbances in direct-drive PMSG wind power systems operating below the rated wind speed, this paper proposes a composite speed-tracking control strategy integrating an improved extended state observer (ESO) with nonsingular fast terminal sliding mode (NFTSM) control. An improved NFTSM sliding surface and a composite reaching law are designed to achieve finite-time convergence while suppressing chattering. The inverse hyperbolic sine ( ar sinh) function replaces the conventional piecewise fal function within the ESO, yielding a globally smooth observer that eliminates estimation chattering and phase lag caused by derivative discontinuities. The disturbance estimate is fed forward to the sliding mode controller for dynamic compensation, with finite-time convergence on the sliding manifold and closed-loop stability rigorously proved. Simulations under ramp, gust, and natural wind conditions show that, compared with PI and ADRC, the proposed strategy reduces speed regulation time by 26.3% and power coefficient recovery time by 27.4% on average; compared with fal -ESO-based sliding mode control, speed tracking accuracy improves by 21.4% and response speed by 14.3%. Experimental platform results confirm the simulation findings.