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Design of a chattering‐free integral terminal sliding mode approach for DFIG ‐based wind energy systems
Author(s) -
Morshed Mohammad Javad,
Fekih Afef
Publication year - 2020
Publication title -
optimal control applications and methods
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.458
H-Index - 44
eISSN - 1099-1514
pISSN - 0143-2087
DOI - 10.1002/oca.2635
Subject(s) - terminal sliding mode , control theory (sociology) , robustness (evolution) , wind power , singularity , fuzzy logic , integral sliding mode , turbine , computer science , sliding mode control , engineering , mathematics , nonlinear system , control (management) , physics , mechanical engineering , mathematical analysis , biochemistry , chemistry , quantum mechanics , artificial intelligence , electrical engineering , gene
Summary This article proposes a Fuzzy Second Order Integral Terminal Sliding Mode (FSOITSM) control approach for DFIG‐based wind turbines subject to grid faults and parameter variations. Since traditional terminal sliding mode control (SMC) suffers from singularity, a novel integral terminal sliding manifold is proposed to eliminate chattering and improve the wind turbine's performance in the presence of faults and disturbances. A fuzzy system is proposed to auto‐tune the controllers' gains and ensures the invariance of the sliding surfaces even under heavy uncertainties, thus further improving the reliability and performance of the proposed controller. The performance of the proposed approach was assessed under various operating conditions. A comparison analysis with a standard SMC approach as well as the state of the art in voltage sag mitigation was also carried over. Reliability, robustness, and power availability under faulty grid conditions are among the main features of the proposed approach. In addition, the proposed approach exhibited chattering free dynamics and enabled the finite time convergence of the sliding manifold and overcame the singularity problem associated with standard TSMC.