A Novel Plant Propagation-Based Cascaded Fractional Order PI Controller for Optimal Operation of Grid-Connected Single-Stage Three-Phase Solar Photovoltaic System

Grid-connected photovoltaic (PV) inverters are gaining attention all over the world. The optimal controller setting is key to the successful operation of a grid-connected PV system. In this paper, a novel plant propagation algorithm-based fractional order proportional-integrator (FOPI) controller fo...

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Main Authors: Muhammad Ahsan Zamee, Dongjun Won
Format: Article
Language:English
Published: MDPI AG 2019-10-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/20/4269
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spelling doaj-1453e551273843ca8fda7c00915470d02020-11-24T22:10:24ZengMDPI AGApplied Sciences2076-34172019-10-01920426910.3390/app9204269app9204269A Novel Plant Propagation-Based Cascaded Fractional Order PI Controller for Optimal Operation of Grid-Connected Single-Stage Three-Phase Solar Photovoltaic SystemMuhammad Ahsan Zamee0Dongjun Won1Department of Electrical Engineering, Inha University, 100, Inha-ro, Nam-gu, Incheon 402-751, KoreaDepartment of Electrical Engineering, Inha University, 100, Inha-ro, Nam-gu, Incheon 402-751, KoreaGrid-connected photovoltaic (PV) inverters are gaining attention all over the world. The optimal controller setting is key to the successful operation of a grid-connected PV system. In this paper, a novel plant propagation algorithm-based fractional order proportional-integrator (FOPI) controller for cascaded DC link voltage and inner current control of a grid-connected PV controller has been proposed, which outperforms particle swarm optimization-based PI and elephant herding optimization-based FOPI in terms of multicriteria-based analysis. The performance of the proposed controller also has been measured in terms of total harmonic distortion to maintain the appropriate power quality. Also, the proposed controllers were tested under various solar irradiance and voltage sag conditions to show the effectiveness and robustness of the controllers. The whole system is developed in OPAL-RT using MATLAB/Simulink and RT-LAB as a machine-in-loop (MIL) system to validate the performance in real time.https://www.mdpi.com/2076-3417/9/20/4269grid-connected pvdc link voltage controllerinner current controllerfractional order pi controllerplant propagation algorithmparticle swarm optimizationelephant herding optimization
collection DOAJ
language English
format Article
sources DOAJ
author Muhammad Ahsan Zamee
Dongjun Won
spellingShingle Muhammad Ahsan Zamee
Dongjun Won
A Novel Plant Propagation-Based Cascaded Fractional Order PI Controller for Optimal Operation of Grid-Connected Single-Stage Three-Phase Solar Photovoltaic System
Applied Sciences
grid-connected pv
dc link voltage controller
inner current controller
fractional order pi controller
plant propagation algorithm
particle swarm optimization
elephant herding optimization
author_facet Muhammad Ahsan Zamee
Dongjun Won
author_sort Muhammad Ahsan Zamee
title A Novel Plant Propagation-Based Cascaded Fractional Order PI Controller for Optimal Operation of Grid-Connected Single-Stage Three-Phase Solar Photovoltaic System
title_short A Novel Plant Propagation-Based Cascaded Fractional Order PI Controller for Optimal Operation of Grid-Connected Single-Stage Three-Phase Solar Photovoltaic System
title_full A Novel Plant Propagation-Based Cascaded Fractional Order PI Controller for Optimal Operation of Grid-Connected Single-Stage Three-Phase Solar Photovoltaic System
title_fullStr A Novel Plant Propagation-Based Cascaded Fractional Order PI Controller for Optimal Operation of Grid-Connected Single-Stage Three-Phase Solar Photovoltaic System
title_full_unstemmed A Novel Plant Propagation-Based Cascaded Fractional Order PI Controller for Optimal Operation of Grid-Connected Single-Stage Three-Phase Solar Photovoltaic System
title_sort novel plant propagation-based cascaded fractional order pi controller for optimal operation of grid-connected single-stage three-phase solar photovoltaic system
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-10-01
description Grid-connected photovoltaic (PV) inverters are gaining attention all over the world. The optimal controller setting is key to the successful operation of a grid-connected PV system. In this paper, a novel plant propagation algorithm-based fractional order proportional-integrator (FOPI) controller for cascaded DC link voltage and inner current control of a grid-connected PV controller has been proposed, which outperforms particle swarm optimization-based PI and elephant herding optimization-based FOPI in terms of multicriteria-based analysis. The performance of the proposed controller also has been measured in terms of total harmonic distortion to maintain the appropriate power quality. Also, the proposed controllers were tested under various solar irradiance and voltage sag conditions to show the effectiveness and robustness of the controllers. The whole system is developed in OPAL-RT using MATLAB/Simulink and RT-LAB as a machine-in-loop (MIL) system to validate the performance in real time.
topic grid-connected pv
dc link voltage controller
inner current controller
fractional order pi controller
plant propagation algorithm
particle swarm optimization
elephant herding optimization
url https://www.mdpi.com/2076-3417/9/20/4269
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