DOI: 10.3390/machines14101100 ISSN: 2075-1702

Maximum Power Point Tracking of Permanent Magnet Synchronous Generator-Based Wind Power Systems Using an Anti-Windup Adaptive Fuzzy Logic Controller: Simulation and Experimental Validation

Basem E. Elnaghi, Hala Samy Sayed Abdelhafez, Mohamed M. Ismail, Ahmed M. Shehata, Ahmed M. Ismaiel

This article introduces an adaptive fuzzy logic controller with an anti-windup mechanism (AFLC-AW) for enhancing dynamic control of permanent magnet synchronous generator (PMSG)-based wind power plants (WPPs). The proposed controller imposes maximum power point tracking (MPPT), reactive power control, and DC-link voltage regulation while mitigating actuator saturation and improving transient behavior. AFLC-AW’s performance is compared with proportional integral (PI), PI with anti-windup (PI-AW), and adaptive fuzzy logic controllers (AFLCs). AFLC-AW mitigates oscillations and overshoots. PMSG based on WPP is emulated and modeled with the Matlab/Simulink 2026a software. An experimental study was conducted using the Dspace DS 1104 control board in order to verify the simulation results. Results demonstrate that AFLC-AW provides faster tracking, lower overshoot, improved damping, and higher steady-state accuracy under varying wind conditions. Rotor-speed tracking performance improves by 64.32%, 40.36%, and 32.63% compared with PI, PI-AW, and AFLC, respectively. The AFLC-AW reduces the mean of six IAEs by 16.16% compared to the PI-AW, 5.89% relative to the AFLC, and 22.34% in comparison with the conventional PI controller. These results confirm that AFLC-AW enhances tracking accuracy while providing a practical control solution for efficient energy extraction and stable grid integration of PMSG-based wind energy systems.