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Performance enhancement of a stand-alone induction generator-based wind energy system using neural network controller
Authors:Sanjay Dewangan  Shelly Vadhera
Institution:1. Electrical Engineering, National Institute of Technology, Kurukshetra, Indiasanjay_6170067@nitkkr.ac.in;3. Electrical Engineering, National Institute of Technology, Kurukshetra, India
Abstract:ABSTRACT

The limitation of self-excited induction generator (SEIG) when used in the stand-alone wind energy system (WES) is poor voltage regulation at variable speed. The indirect vector control (IVC) technique is employed for both the generator-side converter (GSC) and load-side converter (LSC) to regulate the variation of SEIG speed, DC link voltage, and electromagnetic torque independently. Further performance of the proposed IVC technique has been analyzed independently with neural network controller (NNC) and fuzzy logic controller (FLC) as its components. The FLC is replaced by an NNC to improve the performance of the proposed system. IVC of SEIG-based WES has been simulated in MATLAB/SIMULINK software, and the prototype model of the proposed WES is developed to experimentally validate the performance using dSPACE DS-1104 R&D controller board.
Keywords:Wind energy system  IVC  neural network controller and fuzzy logic controller
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