A multi-input, multi-stage step-up DC-DC converter for PV applications

The paper introduces a step-up multiple-input multi-stage dc-dc converter with a soft-switching for Photovoltaic (PV) applications. The proposed topology is constructed from series connection of switched capacitor circuits to minimize the effects of partial shading and mismatch between PV modules. A...

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Main Author: Mohammed Alsolami
Format: Article
Language:English
Published: Elsevier 2021-04-01
Series:Alexandria Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1110016820306785
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spelling doaj-e88f91aaf27844a0bae60d8aeb5b82292021-06-02T14:00:56ZengElsevierAlexandria Engineering Journal1110-01682021-04-0160223152324A multi-input, multi-stage step-up DC-DC converter for PV applicationsMohammed Alsolami0Department of Electrical Engineering, Taibah University, Saudi ArabiaThe paper introduces a step-up multiple-input multi-stage dc-dc converter with a soft-switching for Photovoltaic (PV) applications. The proposed topology is constructed from series connection of switched capacitor circuits to minimize the effects of partial shading and mismatch between PV modules. A soft switching is achieved for the entire switches in the converter with no need for additional components. The applied technique utilizes the stray inductance of PCB traces to create a LC circuit so that the zero current switching is achieved for all switches. Moreover, the converter will take advantage of the superior features of Wideband gap devices in order to operate at high switching frequency. As a result, bulky capacitors in switched-capacitor circuits are significantly reduced, hence, small size multilayers ceramic capacitors with high temperature capability will be employed. Furthermore, with the lower losses and the higher temperature capability of Wideband gap devices, the thermal requirements will be reduced and with fast reverse recovery time, the snubber circuit are not required. Simulation results are presented, laboratory prototype is constructed, and experimental results are given at rated power to validate the feasibility of proposed dc-dc converter under soft switching operation.http://www.sciencedirect.com/science/article/pii/S1110016820306785Step up dc/dc converterPhotovoltaic systemZero current switching (ZCS)And wide bandgap devices
collection DOAJ
language English
format Article
sources DOAJ
author Mohammed Alsolami
spellingShingle Mohammed Alsolami
A multi-input, multi-stage step-up DC-DC converter for PV applications
Alexandria Engineering Journal
Step up dc/dc converter
Photovoltaic system
Zero current switching (ZCS)
And wide bandgap devices
author_facet Mohammed Alsolami
author_sort Mohammed Alsolami
title A multi-input, multi-stage step-up DC-DC converter for PV applications
title_short A multi-input, multi-stage step-up DC-DC converter for PV applications
title_full A multi-input, multi-stage step-up DC-DC converter for PV applications
title_fullStr A multi-input, multi-stage step-up DC-DC converter for PV applications
title_full_unstemmed A multi-input, multi-stage step-up DC-DC converter for PV applications
title_sort multi-input, multi-stage step-up dc-dc converter for pv applications
publisher Elsevier
series Alexandria Engineering Journal
issn 1110-0168
publishDate 2021-04-01
description The paper introduces a step-up multiple-input multi-stage dc-dc converter with a soft-switching for Photovoltaic (PV) applications. The proposed topology is constructed from series connection of switched capacitor circuits to minimize the effects of partial shading and mismatch between PV modules. A soft switching is achieved for the entire switches in the converter with no need for additional components. The applied technique utilizes the stray inductance of PCB traces to create a LC circuit so that the zero current switching is achieved for all switches. Moreover, the converter will take advantage of the superior features of Wideband gap devices in order to operate at high switching frequency. As a result, bulky capacitors in switched-capacitor circuits are significantly reduced, hence, small size multilayers ceramic capacitors with high temperature capability will be employed. Furthermore, with the lower losses and the higher temperature capability of Wideband gap devices, the thermal requirements will be reduced and with fast reverse recovery time, the snubber circuit are not required. Simulation results are presented, laboratory prototype is constructed, and experimental results are given at rated power to validate the feasibility of proposed dc-dc converter under soft switching operation.
topic Step up dc/dc converter
Photovoltaic system
Zero current switching (ZCS)
And wide bandgap devices
url http://www.sciencedirect.com/science/article/pii/S1110016820306785
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