New Diagnosis and Fault-Tolerant Control Strategy for Photovoltaic System

This paper discusses open-circuit fault (OCF) diagnosis and fault-tolerant control strategy (FTCS) of a nonisolated DC-DC converter. The photovoltaic power conversion structure (PPCS) consists of a photovoltaic generator and an interleaved Boost converter (IBC). The maximum power point tracking (MPP...

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Main Authors: Hassan Abouobaida, Younes Abouelmahjoub
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:International Journal of Photoenergy
Online Access:http://dx.doi.org/10.1155/2021/8075165
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spelling doaj-1e1d81c550e64a4bb9184dc8ff19755c2021-08-02T00:01:00ZengHindawi LimitedInternational Journal of Photoenergy1687-529X2021-01-01202110.1155/2021/8075165New Diagnosis and Fault-Tolerant Control Strategy for Photovoltaic SystemHassan Abouobaida0Younes Abouelmahjoub1Laboratory of Engineering Sciences for Energy (LabSIPE)Laboratory of Engineering Sciences for Energy (LabSIPE)This paper discusses open-circuit fault (OCF) diagnosis and fault-tolerant control strategy (FTCS) of a nonisolated DC-DC converter. The photovoltaic power conversion structure (PPCS) consists of a photovoltaic generator and an interleaved Boost converter (IBC). The maximum power point tracking (MPPT) control of the IBC ensures operation at maximum power. The design of the nonlinear Backstepping control is detailed based on the equivalent average model of IBC, and the stability is studied using Lyapunov’s theorem. The proposed OCF fault detection is based on sampling the voltage across the inductor at a much higher frequency than the switching frequency. In an OCF situation occurrence and a high control signal state, the detection of three negative samples is a condition for signaling the presence of an OCF fault; the photovoltaic system continues its normal operation. The simulation results show the validity of the proposed FTCS. The proposed diagnosis and control strategy improves the performance of the IBC in terms of cost, reliability, and service continuity.http://dx.doi.org/10.1155/2021/8075165
collection DOAJ
language English
format Article
sources DOAJ
author Hassan Abouobaida
Younes Abouelmahjoub
spellingShingle Hassan Abouobaida
Younes Abouelmahjoub
New Diagnosis and Fault-Tolerant Control Strategy for Photovoltaic System
International Journal of Photoenergy
author_facet Hassan Abouobaida
Younes Abouelmahjoub
author_sort Hassan Abouobaida
title New Diagnosis and Fault-Tolerant Control Strategy for Photovoltaic System
title_short New Diagnosis and Fault-Tolerant Control Strategy for Photovoltaic System
title_full New Diagnosis and Fault-Tolerant Control Strategy for Photovoltaic System
title_fullStr New Diagnosis and Fault-Tolerant Control Strategy for Photovoltaic System
title_full_unstemmed New Diagnosis and Fault-Tolerant Control Strategy for Photovoltaic System
title_sort new diagnosis and fault-tolerant control strategy for photovoltaic system
publisher Hindawi Limited
series International Journal of Photoenergy
issn 1687-529X
publishDate 2021-01-01
description This paper discusses open-circuit fault (OCF) diagnosis and fault-tolerant control strategy (FTCS) of a nonisolated DC-DC converter. The photovoltaic power conversion structure (PPCS) consists of a photovoltaic generator and an interleaved Boost converter (IBC). The maximum power point tracking (MPPT) control of the IBC ensures operation at maximum power. The design of the nonlinear Backstepping control is detailed based on the equivalent average model of IBC, and the stability is studied using Lyapunov’s theorem. The proposed OCF fault detection is based on sampling the voltage across the inductor at a much higher frequency than the switching frequency. In an OCF situation occurrence and a high control signal state, the detection of three negative samples is a condition for signaling the presence of an OCF fault; the photovoltaic system continues its normal operation. The simulation results show the validity of the proposed FTCS. The proposed diagnosis and control strategy improves the performance of the IBC in terms of cost, reliability, and service continuity.
url http://dx.doi.org/10.1155/2021/8075165
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