Towards green energy for smart cities: particle swarm optimization based MPPT approach

This paper proposes an improved one-power-point (OPP) maximum power point tracking (MPPT) algorithm for wind energy conversion system (WECS) to overcome the problems of the conventional OPP MPPT algorithm, namely, the difficulty in getting a precise value of the optimum coefficient, requiring pre-kn...

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Main Authors: Abdullah, Majid Abdullateef, Al-Hadhrami, Tawfik, Chee, Wei Tan, Yatim, Abdul Halim
Format: Article
Published: Institute of Electrical and Electronics Engineers Inc. 2018
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Online Access:http://eprints.utm.my/id/eprint/84552/
http://dx.doi.org/10.1109/ACCESS.2018.2874525
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spelling my.utm.845522020-01-11T07:32:44Z http://eprints.utm.my/id/eprint/84552/ Towards green energy for smart cities: particle swarm optimization based MPPT approach Abdullah, Majid Abdullateef Al-Hadhrami, Tawfik Chee, Wei Tan Yatim, Abdul Halim TK Electrical engineering. Electronics Nuclear engineering This paper proposes an improved one-power-point (OPP) maximum power point tracking (MPPT) algorithm for wind energy conversion system (WECS) to overcome the problems of the conventional OPP MPPT algorithm, namely, the difficulty in getting a precise value of the optimum coefficient, requiring pre-knowledge of system parameters, and non-uniqueness of the optimum curve. The solution is based on combining the particle swarm optimization (PSO) and optimum-relation-based (ORB) MPPT algorithms. The PSO MPPT algorithm is used to search for the optimum coefficient. Once the optimum coefficient is obtained, the proposed algorithm switches to the ORB MPPT mode of operation. The proposed algorithm neither requires knowledge of system parameters nor mechanical sensors. In addition, it improves the efficiency of the WECS. The proposed algorithm is studied for two different wind speed profiles, and its tracking performance is compared with conventional optimum torque control (OTC) and conventional ORB MPPT algorithms under identical conditions. The improved performance of the algorithm in terms of tracking efficiency is validated through simulation using MATLAB/Simulink. The simulation results confirm that the proposed algorithm has a better performance in terms of tracking efficiency and energy extracted. The tracking efficiency of the PSO-ORB MPPT algorithm could reach up to 99.4% with 1.9% more harvested electrical energy than the conventional OTC and ORB MPPT algorithms. Experiments have been carried out to demonstrate the validity of the proposed MPPT algorithm. The experimental results compare well with system simulation results, and the proposed algorithm performs well, as expected. Institute of Electrical and Electronics Engineers Inc. 2018 Article PeerReviewed Abdullah, Majid Abdullateef and Al-Hadhrami, Tawfik and Chee, Wei Tan and Yatim, Abdul Halim (2018) Towards green energy for smart cities: particle swarm optimization based MPPT approach. IEEE Access, 6 (848528). pp. 58427-58438. ISSN 2169-3536 http://dx.doi.org/10.1109/ACCESS.2018.2874525 DOI:10.1109/ACCESS.2018.2874525
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Abdullah, Majid Abdullateef
Al-Hadhrami, Tawfik
Chee, Wei Tan
Yatim, Abdul Halim
Towards green energy for smart cities: particle swarm optimization based MPPT approach
description This paper proposes an improved one-power-point (OPP) maximum power point tracking (MPPT) algorithm for wind energy conversion system (WECS) to overcome the problems of the conventional OPP MPPT algorithm, namely, the difficulty in getting a precise value of the optimum coefficient, requiring pre-knowledge of system parameters, and non-uniqueness of the optimum curve. The solution is based on combining the particle swarm optimization (PSO) and optimum-relation-based (ORB) MPPT algorithms. The PSO MPPT algorithm is used to search for the optimum coefficient. Once the optimum coefficient is obtained, the proposed algorithm switches to the ORB MPPT mode of operation. The proposed algorithm neither requires knowledge of system parameters nor mechanical sensors. In addition, it improves the efficiency of the WECS. The proposed algorithm is studied for two different wind speed profiles, and its tracking performance is compared with conventional optimum torque control (OTC) and conventional ORB MPPT algorithms under identical conditions. The improved performance of the algorithm in terms of tracking efficiency is validated through simulation using MATLAB/Simulink. The simulation results confirm that the proposed algorithm has a better performance in terms of tracking efficiency and energy extracted. The tracking efficiency of the PSO-ORB MPPT algorithm could reach up to 99.4% with 1.9% more harvested electrical energy than the conventional OTC and ORB MPPT algorithms. Experiments have been carried out to demonstrate the validity of the proposed MPPT algorithm. The experimental results compare well with system simulation results, and the proposed algorithm performs well, as expected.
format Article
author Abdullah, Majid Abdullateef
Al-Hadhrami, Tawfik
Chee, Wei Tan
Yatim, Abdul Halim
author_facet Abdullah, Majid Abdullateef
Al-Hadhrami, Tawfik
Chee, Wei Tan
Yatim, Abdul Halim
author_sort Abdullah, Majid Abdullateef
title Towards green energy for smart cities: particle swarm optimization based MPPT approach
title_short Towards green energy for smart cities: particle swarm optimization based MPPT approach
title_full Towards green energy for smart cities: particle swarm optimization based MPPT approach
title_fullStr Towards green energy for smart cities: particle swarm optimization based MPPT approach
title_full_unstemmed Towards green energy for smart cities: particle swarm optimization based MPPT approach
title_sort towards green energy for smart cities: particle swarm optimization based mppt approach
publisher Institute of Electrical and Electronics Engineers Inc.
publishDate 2018
url http://eprints.utm.my/id/eprint/84552/
http://dx.doi.org/10.1109/ACCESS.2018.2874525
_version_ 1662754273836924928
score 13.251813