Improvement of the energy production of a photovoltaic-wind hybrid system using NF-PSO MPPT

This manuscript gives a contribution to the optimization of a hybrid Photovoltaic-Wind Turbine system with a storage system. In order to capture the maximum power that can be produced by each source, while maintaining the rotor speed of the wind turbine at its maximum values according to wind variat...

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Main Authors: Paul Abena Malobé, Philippe Djondiné, Pascal Ntsama Eloundou, Hervé Abena Ndongo
Format: Article
Language:English
Published: Renewable Energy Development Center (CDER) 2022-10-01
Series:Revue des Énergies Renouvelables
Subjects:
Online Access:https://revue.cder.dz/index.php/rer/article/view/1068
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author Paul Abena Malobé
Philippe Djondiné
Pascal Ntsama Eloundou
Hervé Abena Ndongo
author_facet Paul Abena Malobé
Philippe Djondiné
Pascal Ntsama Eloundou
Hervé Abena Ndongo
author_sort Paul Abena Malobé
collection DOAJ
description This manuscript gives a contribution to the optimization of a hybrid Photovoltaic-Wind Turbine system with a storage system. In order to capture the maximum power that can be produced by each source, while maintaining the rotor speed of the wind turbine at its maximum values according to wind variations, the Neuro-Fuzzy-Particle Swarm Optimization (NF-PSO) controller is proposed. The Neuro-Fuzzy method is used here because it allows an automatic generation of fuzzy rules, and the Particle Swarm Optimization to find an optimal gain allowing to readjust the dynamics of the fuzzy rules by reducing the power losses (oscillations). For the proper functioning of such a system, we have developed a fuzzy supervisor in order to have an optimal control of the system according to the variations of the requested load and the produced power by considering the storage system and the load shedding. The simulation results of the system confirmed the better performance of this method in terms of speed with a response time of 0.2s on the wind side and 0.025s on the side photovoltaic, of efficiency with 99.87% on the photovoltaic side and 99.6% on the wind side, and above all in term of oscillation reduction with practically a negligible oscillation rate compared to the NF and the Cuckoo algorithm.
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spelling doaj.art-eac98510d4a3400087084db9649bb3082022-12-22T04:33:17ZengRenewable Energy Development Center (CDER)Revue des Énergies Renouvelables1112-22422716-82472022-10-0125152510.54966/jreen.v25i1.10681068Improvement of the energy production of a photovoltaic-wind hybrid system using NF-PSO MPPTPaul Abena Malobé0Philippe Djondiné1Pascal Ntsama Eloundou2Hervé Abena Ndongo3Department of Physics, Faculty of Sciences, University of Ngaoundéré, P.O. Box 454 Ngaoundéré, CameroonDepartment of Physics, Faculty of Sciences, University of Ngaoundéré, P.O. Box 454 Ngaoundéré, CameroonDepartment of Physics, Faculty of Sciences, University of Ngaoundéré, P.O. Box 454 Ngaoundéré, CameroonDepartment of Physics, Faculty of Sciences, University of Ngaoundéré, P.O. Box 454 Ngaoundéré, CameroonThis manuscript gives a contribution to the optimization of a hybrid Photovoltaic-Wind Turbine system with a storage system. In order to capture the maximum power that can be produced by each source, while maintaining the rotor speed of the wind turbine at its maximum values according to wind variations, the Neuro-Fuzzy-Particle Swarm Optimization (NF-PSO) controller is proposed. The Neuro-Fuzzy method is used here because it allows an automatic generation of fuzzy rules, and the Particle Swarm Optimization to find an optimal gain allowing to readjust the dynamics of the fuzzy rules by reducing the power losses (oscillations). For the proper functioning of such a system, we have developed a fuzzy supervisor in order to have an optimal control of the system according to the variations of the requested load and the produced power by considering the storage system and the load shedding. The simulation results of the system confirmed the better performance of this method in terms of speed with a response time of 0.2s on the wind side and 0.025s on the side photovoltaic, of efficiency with 99.87% on the photovoltaic side and 99.6% on the wind side, and above all in term of oscillation reduction with practically a negligible oscillation rate compared to the NF and the Cuckoo algorithm.https://revue.cder.dz/index.php/rer/article/view/1068neuro-fuzzyparticle swarm optimizationcuckoosupervisoroscillations
spellingShingle Paul Abena Malobé
Philippe Djondiné
Pascal Ntsama Eloundou
Hervé Abena Ndongo
Improvement of the energy production of a photovoltaic-wind hybrid system using NF-PSO MPPT
Revue des Énergies Renouvelables
neuro-fuzzy
particle swarm optimization
cuckoo
supervisor
oscillations
title Improvement of the energy production of a photovoltaic-wind hybrid system using NF-PSO MPPT
title_full Improvement of the energy production of a photovoltaic-wind hybrid system using NF-PSO MPPT
title_fullStr Improvement of the energy production of a photovoltaic-wind hybrid system using NF-PSO MPPT
title_full_unstemmed Improvement of the energy production of a photovoltaic-wind hybrid system using NF-PSO MPPT
title_short Improvement of the energy production of a photovoltaic-wind hybrid system using NF-PSO MPPT
title_sort improvement of the energy production of a photovoltaic wind hybrid system using nf pso mppt
topic neuro-fuzzy
particle swarm optimization
cuckoo
supervisor
oscillations
url https://revue.cder.dz/index.php/rer/article/view/1068
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