Fuzzy logic control based maximum power point tracking technique in standalone photovoltaic system

This study describes the development of a smart technique for tracking the highest power point on a standalone photovoltaic (SAPV) system when temperature and irradiance conditions are changing using fuzzy logic control (FLC). The PV systems comprises of a PV array, a boost converter, a controller f...

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Published in:International Journal of Power Electronics and Drive Systems
Main Author: Azmi M.H.; Noor S.Z.M.; Musa S.
Format: Article
Language:English
Published: Institute of Advanced Engineering and Science 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85150283584&doi=10.11591%2fijpeds.v14.i2.pp1110-1120&partnerID=40&md5=f9f5e54ce373c87bde4e2bf45029e2bf
id 2-s2.0-85150283584
spelling 2-s2.0-85150283584
Azmi M.H.; Noor S.Z.M.; Musa S.
Fuzzy logic control based maximum power point tracking technique in standalone photovoltaic system
2023
International Journal of Power Electronics and Drive Systems
14
2
10.11591/ijpeds.v14.i2.pp1110-1120
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85150283584&doi=10.11591%2fijpeds.v14.i2.pp1110-1120&partnerID=40&md5=f9f5e54ce373c87bde4e2bf45029e2bf
This study describes the development of a smart technique for tracking the highest power point on a standalone photovoltaic (SAPV) system when temperature and irradiance conditions are changing using fuzzy logic control (FLC). The PV systems comprises of a PV array, a boost converter, a controller for tracking the maximum power point, and an inverter to power the AC loads. The FLC-based maximum power point tracking (MPPT) is proposed because the technique is not complex and does not need a deep comprehension of the particular model of the system. Furthermore, the technique is efficient and fast response in tracking maximum power (MP) from the PV array. The technique overcame the limitation of the conventional MPPT technique that resulted in slow tracking of the MP and was not accurate on the optimal position of the PV array output power. The SAPV system is integrated with the sealed lead acid (SLA) battery bank as an alternative power source and makes up for power shortages by supplying energy to the load without interruption during power shortages. A system for managing the battery has been included in the system to preserve the battery's longevity by controlling the battery's charging process. The PV system is able to supply single-phase output AC voltage of 230 Vrms and has low total harmonic distortion (THD) that is suitable for home appliances. The achieved simulation results demonstrate the effectiveness of the suggested fuzzy logic controller in tracking the MPP. © 2023, Institute of Advanced Engineering and Science. All rights reserved.
Institute of Advanced Engineering and Science
20888694
English
Article
All Open Access; Gold Open Access; Green Open Access
author Azmi M.H.; Noor S.Z.M.; Musa S.
spellingShingle Azmi M.H.; Noor S.Z.M.; Musa S.
Fuzzy logic control based maximum power point tracking technique in standalone photovoltaic system
author_facet Azmi M.H.; Noor S.Z.M.; Musa S.
author_sort Azmi M.H.; Noor S.Z.M.; Musa S.
title Fuzzy logic control based maximum power point tracking technique in standalone photovoltaic system
title_short Fuzzy logic control based maximum power point tracking technique in standalone photovoltaic system
title_full Fuzzy logic control based maximum power point tracking technique in standalone photovoltaic system
title_fullStr Fuzzy logic control based maximum power point tracking technique in standalone photovoltaic system
title_full_unstemmed Fuzzy logic control based maximum power point tracking technique in standalone photovoltaic system
title_sort Fuzzy logic control based maximum power point tracking technique in standalone photovoltaic system
publishDate 2023
container_title International Journal of Power Electronics and Drive Systems
container_volume 14
container_issue 2
doi_str_mv 10.11591/ijpeds.v14.i2.pp1110-1120
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85150283584&doi=10.11591%2fijpeds.v14.i2.pp1110-1120&partnerID=40&md5=f9f5e54ce373c87bde4e2bf45029e2bf
description This study describes the development of a smart technique for tracking the highest power point on a standalone photovoltaic (SAPV) system when temperature and irradiance conditions are changing using fuzzy logic control (FLC). The PV systems comprises of a PV array, a boost converter, a controller for tracking the maximum power point, and an inverter to power the AC loads. The FLC-based maximum power point tracking (MPPT) is proposed because the technique is not complex and does not need a deep comprehension of the particular model of the system. Furthermore, the technique is efficient and fast response in tracking maximum power (MP) from the PV array. The technique overcame the limitation of the conventional MPPT technique that resulted in slow tracking of the MP and was not accurate on the optimal position of the PV array output power. The SAPV system is integrated with the sealed lead acid (SLA) battery bank as an alternative power source and makes up for power shortages by supplying energy to the load without interruption during power shortages. A system for managing the battery has been included in the system to preserve the battery's longevity by controlling the battery's charging process. The PV system is able to supply single-phase output AC voltage of 230 Vrms and has low total harmonic distortion (THD) that is suitable for home appliances. The achieved simulation results demonstrate the effectiveness of the suggested fuzzy logic controller in tracking the MPP. © 2023, Institute of Advanced Engineering and Science. All rights reserved.
publisher Institute of Advanced Engineering and Science
issn 20888694
language English
format Article
accesstype All Open Access; Gold Open Access; Green Open Access
record_format scopus
collection Scopus
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