Electrical parameters extraction of PV modules using artificial hummingbird optimizer

Abstract The parameter extraction of PV models is a nonlinear and multi-model optimization problem. However, it is essential to correctly estimate the parameters of the PV units due to their impact on the PV system efficiency in terms of power and current production. As a result, this study introduc...

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Main Authors: Ragab El-Sehiemy, Abdullah Shaheen, Attia El-Fergany, Ahmed Ginidi
Format: Article
Language:English
Published: Nature Portfolio 2023-06-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-023-36284-0
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author Ragab El-Sehiemy
Abdullah Shaheen
Attia El-Fergany
Ahmed Ginidi
author_facet Ragab El-Sehiemy
Abdullah Shaheen
Attia El-Fergany
Ahmed Ginidi
author_sort Ragab El-Sehiemy
collection DOAJ
description Abstract The parameter extraction of PV models is a nonlinear and multi-model optimization problem. However, it is essential to correctly estimate the parameters of the PV units due to their impact on the PV system efficiency in terms of power and current production. As a result, this study introduces a developed Artificial Hummingbird Technique (AHT) to generate the best values of the ungiven parameters of these PV units. The AHT mimics hummingbirds' unique flying abilities and foraging methods in the wild. The AHT is compared with numerous recent inspired techniques which are tuna swarm optimizer, African vulture’s optimizer, teaching learning studying-based optimizer and other recent optimization techniques. The statistical studies and experimental findings show that AHT outperforms other methods in extracting the parameters of various PV models of STM6-40/36, KC200GT and PWP 201 polycrystalline. The AHT’s performance is evaluated using the datasheet provided by the manufacturer. To highlight the AHT dominance, its performance is compared to those of other competing techniques. The simulation outcomes demonstrate that the AHT algorithm features a quick processing time and steadily convergence in consort with keeping an elevated level of accuracy in the offered solution.
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spelling doaj.art-ca2957da2c404580be575970a508798e2023-06-11T11:10:37ZengNature PortfolioScientific Reports2045-23222023-06-0113112310.1038/s41598-023-36284-0Electrical parameters extraction of PV modules using artificial hummingbird optimizerRagab El-Sehiemy0Abdullah Shaheen1Attia El-Fergany2Ahmed Ginidi3Department of Electrical Engineering, Faculty of Engineering, Kafrelsheikh UniversityDepartment of Electrical Engineering, Faculty of Engineering, Suez UniversityElectrical Power and Machines Department, Faculty of Engineering, Zagazig UniversityDepartment of Electrical Engineering, Faculty of Engineering, Suez UniversityAbstract The parameter extraction of PV models is a nonlinear and multi-model optimization problem. However, it is essential to correctly estimate the parameters of the PV units due to their impact on the PV system efficiency in terms of power and current production. As a result, this study introduces a developed Artificial Hummingbird Technique (AHT) to generate the best values of the ungiven parameters of these PV units. The AHT mimics hummingbirds' unique flying abilities and foraging methods in the wild. The AHT is compared with numerous recent inspired techniques which are tuna swarm optimizer, African vulture’s optimizer, teaching learning studying-based optimizer and other recent optimization techniques. The statistical studies and experimental findings show that AHT outperforms other methods in extracting the parameters of various PV models of STM6-40/36, KC200GT and PWP 201 polycrystalline. The AHT’s performance is evaluated using the datasheet provided by the manufacturer. To highlight the AHT dominance, its performance is compared to those of other competing techniques. The simulation outcomes demonstrate that the AHT algorithm features a quick processing time and steadily convergence in consort with keeping an elevated level of accuracy in the offered solution.https://doi.org/10.1038/s41598-023-36284-0
spellingShingle Ragab El-Sehiemy
Abdullah Shaheen
Attia El-Fergany
Ahmed Ginidi
Electrical parameters extraction of PV modules using artificial hummingbird optimizer
Scientific Reports
title Electrical parameters extraction of PV modules using artificial hummingbird optimizer
title_full Electrical parameters extraction of PV modules using artificial hummingbird optimizer
title_fullStr Electrical parameters extraction of PV modules using artificial hummingbird optimizer
title_full_unstemmed Electrical parameters extraction of PV modules using artificial hummingbird optimizer
title_short Electrical parameters extraction of PV modules using artificial hummingbird optimizer
title_sort electrical parameters extraction of pv modules using artificial hummingbird optimizer
url https://doi.org/10.1038/s41598-023-36284-0
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