Integral backstepping improvement versus classical and multiscalar backstepping controllers for water IM‐pump fed by backstepping MPPT PV source based on solar measurements in a tropical insular region

Abstract The work presented here deals with a comparison between integral, classical and multiscalar backstepping controllers applied for a PV water pumping system. The solar pumping system is controlled in its first part by a backstepping maximum power point tracking approach in order to extract a...

Full description

Bibliographic Details
Main Authors: Fateh Mehazzem, Abdellatif Reama, Paul Charles, Ted Soubdhan
Format: Article
Language:English
Published: Wiley 2021-09-01
Series:IET Renewable Power Generation
Online Access:https://doi.org/10.1049/rpg2.12217
id doaj-45df9b50e08f4a728d6ee55678f46e16
record_format Article
spelling doaj-45df9b50e08f4a728d6ee55678f46e162021-08-14T15:44:41ZengWileyIET Renewable Power Generation1752-14161752-14242021-09-0115122629264410.1049/rpg2.12217Integral backstepping improvement versus classical and multiscalar backstepping controllers for water IM‐pump fed by backstepping MPPT PV source based on solar measurements in a tropical insular regionFateh Mehazzem0Abdellatif Reama1Paul Charles2Ted Soubdhan3Univ Antilles LaRGE Laboratoire de Recherche en Géosciences et Energies (EA 4539) F‐97100 Pointe‐à‐Pitre FranceESIEE‐Paris Université Paris‐Est Noisy le Grand Cedex FranceUniv Antilles LaRGE Laboratoire de Recherche en Géosciences et Energies (EA 4539) F‐97100 Pointe‐à‐Pitre FranceUniv Antilles LaRGE Laboratoire de Recherche en Géosciences et Energies (EA 4539) F‐97100 Pointe‐à‐Pitre FranceAbstract The work presented here deals with a comparison between integral, classical and multiscalar backstepping controllers applied for a PV water pumping system. The solar pumping system is controlled in its first part by a backstepping maximum power point tracking approach in order to extract a maximum power from solar panels. The second part, composed mainly by induction motor–pump is controlled by backstepping structures. The integral backstepping control structure gives interesting features in terms of stability using recursive Lyapunov design, increases robustness despite parameters variation, and provides good tracking and optimization performance. In order to validate the study with a real solar data, a measured irradiance profile is used to fed the PV system, based on solar measurements in tropical insular context. The measurements are collected at Sonapi site located in Haiti country. The fast variability of the tropical irradiance profile will allow to test the robustness of the used control algorithms and determine their limits. Simulation of the proposed solution is validated under Matlab/Simulink. Results demonstrate clearly that integral backstepping provides the best solution with a good tracking, and optimization performance: fast dynamic response and stable static power output, even when weather conditions (irradiation) are rapidly changing.https://doi.org/10.1049/rpg2.12217
collection DOAJ
language English
format Article
sources DOAJ
author Fateh Mehazzem
Abdellatif Reama
Paul Charles
Ted Soubdhan
spellingShingle Fateh Mehazzem
Abdellatif Reama
Paul Charles
Ted Soubdhan
Integral backstepping improvement versus classical and multiscalar backstepping controllers for water IM‐pump fed by backstepping MPPT PV source based on solar measurements in a tropical insular region
IET Renewable Power Generation
author_facet Fateh Mehazzem
Abdellatif Reama
Paul Charles
Ted Soubdhan
author_sort Fateh Mehazzem
title Integral backstepping improvement versus classical and multiscalar backstepping controllers for water IM‐pump fed by backstepping MPPT PV source based on solar measurements in a tropical insular region
title_short Integral backstepping improvement versus classical and multiscalar backstepping controllers for water IM‐pump fed by backstepping MPPT PV source based on solar measurements in a tropical insular region
title_full Integral backstepping improvement versus classical and multiscalar backstepping controllers for water IM‐pump fed by backstepping MPPT PV source based on solar measurements in a tropical insular region
title_fullStr Integral backstepping improvement versus classical and multiscalar backstepping controllers for water IM‐pump fed by backstepping MPPT PV source based on solar measurements in a tropical insular region
title_full_unstemmed Integral backstepping improvement versus classical and multiscalar backstepping controllers for water IM‐pump fed by backstepping MPPT PV source based on solar measurements in a tropical insular region
title_sort integral backstepping improvement versus classical and multiscalar backstepping controllers for water im‐pump fed by backstepping mppt pv source based on solar measurements in a tropical insular region
publisher Wiley
series IET Renewable Power Generation
issn 1752-1416
1752-1424
publishDate 2021-09-01
description Abstract The work presented here deals with a comparison between integral, classical and multiscalar backstepping controllers applied for a PV water pumping system. The solar pumping system is controlled in its first part by a backstepping maximum power point tracking approach in order to extract a maximum power from solar panels. The second part, composed mainly by induction motor–pump is controlled by backstepping structures. The integral backstepping control structure gives interesting features in terms of stability using recursive Lyapunov design, increases robustness despite parameters variation, and provides good tracking and optimization performance. In order to validate the study with a real solar data, a measured irradiance profile is used to fed the PV system, based on solar measurements in tropical insular context. The measurements are collected at Sonapi site located in Haiti country. The fast variability of the tropical irradiance profile will allow to test the robustness of the used control algorithms and determine their limits. Simulation of the proposed solution is validated under Matlab/Simulink. Results demonstrate clearly that integral backstepping provides the best solution with a good tracking, and optimization performance: fast dynamic response and stable static power output, even when weather conditions (irradiation) are rapidly changing.
url https://doi.org/10.1049/rpg2.12217
work_keys_str_mv AT fatehmehazzem integralbacksteppingimprovementversusclassicalandmultiscalarbacksteppingcontrollersforwaterimpumpfedbybacksteppingmpptpvsourcebasedonsolarmeasurementsinatropicalinsularregion
AT abdellatifreama integralbacksteppingimprovementversusclassicalandmultiscalarbacksteppingcontrollersforwaterimpumpfedbybacksteppingmpptpvsourcebasedonsolarmeasurementsinatropicalinsularregion
AT paulcharles integralbacksteppingimprovementversusclassicalandmultiscalarbacksteppingcontrollersforwaterimpumpfedbybacksteppingmpptpvsourcebasedonsolarmeasurementsinatropicalinsularregion
AT tedsoubdhan integralbacksteppingimprovementversusclassicalandmultiscalarbacksteppingcontrollersforwaterimpumpfedbybacksteppingmpptpvsourcebasedonsolarmeasurementsinatropicalinsularregion
_version_ 1721207401574563840