Ultra high voltage gain non-isolated DC-DC converter based on new interleaved triple boosting technique
This paper introduces a DC-DC converter that employs a modified triple boosting architecture (MTB), interleaved with modified switched inductor capacitors (MSIC), to achieve ultra-high voltage gain in photovoltaic applications. The converter design also includes a modified switched inductor with a m...
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Format: | Article |
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Frontiers Media S.A.
2023-09-01
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Series: | Frontiers in Energy Research |
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Online Access: | https://www.frontiersin.org/articles/10.3389/fenrg.2023.1273155/full |
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author | Ammar Algamluoli Xiaohua Wu Haider M. Abdulhadi Kitmo Malak Adnan Khan |
author_facet | Ammar Algamluoli Xiaohua Wu Haider M. Abdulhadi Kitmo Malak Adnan Khan |
author_sort | Ammar Algamluoli |
collection | DOAJ |
description | This paper introduces a DC-DC converter that employs a modified triple boosting architecture (MTB), interleaved with modified switched inductor capacitors (MSIC), to achieve ultra-high voltage gain in photovoltaic applications. The converter design also includes a modified switched inductor with a modified voltage multiplier mode (MVM), which interleaves with the main switch and effectively doubles the voltage transfer gain. Furthermore, a modified triple boosting mode technique, utilizing interleaved components and an auxiliary switch, is integrated into the converter design. The main switch and auxiliary switch, combined with modified voltage multiplyer, contribute to achieving high voltage gain. The proposed converter offers numerous advantages. It exhibits remarkable efficiency while ensuring low voltage stress across diodes and MOSFETs. Moreover, by utilizing low inductance and capacitance values at high switching frequencies, the converter’s overall performance is enhanced. To validate and substantiate the simulation and laboratory results, the converter has undergone PCB design and experimental testing. Specifically, this converter is designed to boost input voltage levels ranging from 30 V to 40 V to a variable output voltage between 200 V and 400 V, with a power output of 360 W and an efficiency rating of 96.5%. |
first_indexed | 2024-03-12T01:34:41Z |
format | Article |
id | doaj.art-ea01da98c1f6457997f7aa3194475a8f |
institution | Directory Open Access Journal |
issn | 2296-598X |
language | English |
last_indexed | 2024-03-12T01:34:41Z |
publishDate | 2023-09-01 |
publisher | Frontiers Media S.A. |
record_format | Article |
series | Frontiers in Energy Research |
spelling | doaj.art-ea01da98c1f6457997f7aa3194475a8f2023-09-11T11:35:24ZengFrontiers Media S.A.Frontiers in Energy Research2296-598X2023-09-011110.3389/fenrg.2023.12731551273155Ultra high voltage gain non-isolated DC-DC converter based on new interleaved triple boosting techniqueAmmar Algamluoli0Xiaohua Wu1Haider M. Abdulhadi2 Kitmo3Malak Adnan Khan4School of Automation, Northwestern Polytechnical University, Xi’an, ChinaSchool of Automation, Northwestern Polytechnical University, Xi’an, ChinaCollege of Science for Women, University of Baghdad, Baghdad, IraqDepartment of Renewable Energy, National Advanced School of Engineering of Maroua, University of Maroua, Maroua, Far North Region, CameroonDepartment of Electronics Engineering, University of Engineering and Technology, Peshawar, Peshawar, Khyber Pakhtunkhwa, PakistanThis paper introduces a DC-DC converter that employs a modified triple boosting architecture (MTB), interleaved with modified switched inductor capacitors (MSIC), to achieve ultra-high voltage gain in photovoltaic applications. The converter design also includes a modified switched inductor with a modified voltage multiplier mode (MVM), which interleaves with the main switch and effectively doubles the voltage transfer gain. Furthermore, a modified triple boosting mode technique, utilizing interleaved components and an auxiliary switch, is integrated into the converter design. The main switch and auxiliary switch, combined with modified voltage multiplyer, contribute to achieving high voltage gain. The proposed converter offers numerous advantages. It exhibits remarkable efficiency while ensuring low voltage stress across diodes and MOSFETs. Moreover, by utilizing low inductance and capacitance values at high switching frequencies, the converter’s overall performance is enhanced. To validate and substantiate the simulation and laboratory results, the converter has undergone PCB design and experimental testing. Specifically, this converter is designed to boost input voltage levels ranging from 30 V to 40 V to a variable output voltage between 200 V and 400 V, with a power output of 360 W and an efficiency rating of 96.5%.https://www.frontiersin.org/articles/10.3389/fenrg.2023.1273155/fulltriple boost techniqueZCSDC-DC converterswitched capacitatorswitched indcutor circuit |
spellingShingle | Ammar Algamluoli Xiaohua Wu Haider M. Abdulhadi Kitmo Malak Adnan Khan Ultra high voltage gain non-isolated DC-DC converter based on new interleaved triple boosting technique Frontiers in Energy Research triple boost technique ZCS DC-DC converter switched capacitator switched indcutor circuit |
title | Ultra high voltage gain non-isolated DC-DC converter based on new interleaved triple boosting technique |
title_full | Ultra high voltage gain non-isolated DC-DC converter based on new interleaved triple boosting technique |
title_fullStr | Ultra high voltage gain non-isolated DC-DC converter based on new interleaved triple boosting technique |
title_full_unstemmed | Ultra high voltage gain non-isolated DC-DC converter based on new interleaved triple boosting technique |
title_short | Ultra high voltage gain non-isolated DC-DC converter based on new interleaved triple boosting technique |
title_sort | ultra high voltage gain non isolated dc dc converter based on new interleaved triple boosting technique |
topic | triple boost technique ZCS DC-DC converter switched capacitator switched indcutor circuit |
url | https://www.frontiersin.org/articles/10.3389/fenrg.2023.1273155/full |
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