Abstract

A wind turbine (WT)-based doubly fed induction generator (DFIG) is the most often used generator in the wind conversion system market due to its advantages such as the ability of operating under variable wind speed and its high performance. However, nonlinear dynamical and parameter uncertainties of the DFIG make the controller design of this kind of system a challenging work. Thus, in this study, a novel control strategy was proposed to design the desired system dynamics, to highlight the efficacy of the proposed system, and to improve the performance of the closed-loop system. The proposed controller combines the twelve-sector direct torque control (12-DTC) and the fuzzy controller with modified rules to solve the limitations and shortcomings of the usual methods for the WT-DFIG system. All operation modes, successively and continually, were considered to reflect the true operation of WT-DFIG system subject to random wind speeds. The aims of this work was to ensure an optimal operation of the wind generator, extracting maximum power in the zone II of the WT characteristic, and limiting this power in its maximum value in the case (zone III), to transmit the power generated by the DFIG to the grid-side with minimum losses in the disturbances related to DFIG. Extensive numerical simulations were performed under MATALB/Simulink, where the proposed fuzzy twelve direct torque control (F12-DTC) was compared with conventional nonlinear controls: conventional DTC (C-DTC) and 12-DTC. The simulation results demonstrated clearly that the proposed one had the highest performance and robustness, with a significant reduction in rotor flux and electromagnetic torque ripples and better-generated power quality with low currents’ THD over the conventional strategies (C-DTC and 12-DTC).

Highlights

  • In [29,30,31], the fuzzy logic controller (FLC) was introduced to improve direct torque control (FDTC) applied to the wind conversion-doubly fed induction generator (DFIG) system, where the results showed an important reduction in rotor flux and electromagnetic torque ripples with generated current’s total harmonic distortion (THD)

  • The objectives of the present work were to ensure an optimal operation of the wind generator, extracting maximum power in region II of the wind turbine (WT) characteristic and limiting this power in its maximum value in the case, and to transmit the power generated by the DFIG to the grid-side with minimum loses of the disturbances related to DFIG

  • The proposed controller combines the new twelvesector methodology direct torque control (12-DTC) and a fuzzy logic controller with modified rules to solve the WT-DFIG system constraints and the drawbacks faced by the conventional methods

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Summary

Introduction

The massive penetration of wind generation in the energy market is supported by the problems caused by pollution and their consequences such as climate change and lung diseases. The aim of most researchers and companies is to reduce the installation and production costs of renewable energy systems. The doubly fed induction generator (DFIG) is widely used for wind energy conversion systems (WECS), occupying the majority of the wind energy market due to its advantages such as the ability of operating under variable wind speeds and its high performance. This induction machine is connected to Sustainability 2021, 13, 11593.

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