Circulating currents suppression for IPOP nonisolated dc/dc converters based on modified topologies

Nonisolated dc/dc converters are widely used in practice because of their low losses and high power density. To accommodate some high-power scenarios and modular applications, these nonisolated converters are usually connected in the input-parallel output-parallel (IPOP) structure. Because there is...

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Main Authors: Xia, Yanghong, Yu, Miao, Peng, Yonggang, Lin, Pengfeng, Shi, Donghang, Wei, Wei
Other Authors: Energy Research Institute @ NTU (ERI@N)
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/141558
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1415582021-01-06T08:47:51Z Circulating currents suppression for IPOP nonisolated dc/dc converters based on modified topologies Xia, Yanghong Yu, Miao Peng, Yonggang Lin, Pengfeng Shi, Donghang Wei, Wei Energy Research Institute @ NTU (ERI@N) Engineering::Electrical and electronic engineering Circulating Currents Input-parallel Outputparallel (IPOP) Structure Nonisolated dc/dc converters are widely used in practice because of their low losses and high power density. To accommodate some high-power scenarios and modular applications, these nonisolated converters are usually connected in the input-parallel output-parallel (IPOP) structure. Because there is no galvanic isolation, the ac side and dc side are coupled together, which causes complicated circulating currents in the system. The great circulating currents will endanger the stable and reliable operation of the IPOP nonisolated dc/dc converters system. Focusing on this problem, this paper proposes a novel decentralized circulating currents suppression strategy for IPOP nonisolated dc/dc converters based on the modified topologies, which can still hold the main advantages of nonisolated solutions. First, the complicated circulating currents among the IPOP nonisolated dc/dc converters are analyzed in detail. It is found that various circulating currents exist in the system including the circulating currents within the single converter and the circulating currents among the multiple converters. Then, the limitations of the conventional dc/dc converter topologies are presented and it is proved that these topologies cannot eliminate all the circulating currents. Second, being inspired by the drawbacks of the conventional topologies, the modified topologies with two degrees of freedom modulation are designed. Based on the modified topologies, a corresponding suppression method consisting of two degrees of freedom control is proposed, which can eliminate the different types of circulating currents in a decoupling way. The first degree of freedom control mainly suppresses the circulating currents within the single converter, whereas the droop-based second degree of freedom control mainly suppresses the circulating currents among the multiple converters. Through the proposed solution, the IPOP nonisolated dc/dc converters can operate well with high reliability and scalability. The effectiveness of the proposed solution is validated by the real-time hardware-in-loop tests. 2020-06-09T04:39:58Z 2020-06-09T04:39:58Z 2018 Journal Article Xia, Y., Yu, M., Peng, Y., Lin, P., Shi, D., & Wei, W. (2019). Circulating currents suppression for IPOP nonisolated dc/dc converters based on modified topologies. IEEE Transactions on Power Electronics, 34(2), 1901-1913. doi:10.1109/TPEL.2018.2832295 0885-8993 https://hdl.handle.net/10356/141558 10.1109/TPEL.2018.2832295 2-s2.0-85046376383 2 34 1901 1913 en IEEE Transactions on Power Electronics © 2018 IEEE. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
Circulating Currents
Input-parallel Outputparallel (IPOP) Structure
spellingShingle Engineering::Electrical and electronic engineering
Circulating Currents
Input-parallel Outputparallel (IPOP) Structure
Xia, Yanghong
Yu, Miao
Peng, Yonggang
Lin, Pengfeng
Shi, Donghang
Wei, Wei
Circulating currents suppression for IPOP nonisolated dc/dc converters based on modified topologies
description Nonisolated dc/dc converters are widely used in practice because of their low losses and high power density. To accommodate some high-power scenarios and modular applications, these nonisolated converters are usually connected in the input-parallel output-parallel (IPOP) structure. Because there is no galvanic isolation, the ac side and dc side are coupled together, which causes complicated circulating currents in the system. The great circulating currents will endanger the stable and reliable operation of the IPOP nonisolated dc/dc converters system. Focusing on this problem, this paper proposes a novel decentralized circulating currents suppression strategy for IPOP nonisolated dc/dc converters based on the modified topologies, which can still hold the main advantages of nonisolated solutions. First, the complicated circulating currents among the IPOP nonisolated dc/dc converters are analyzed in detail. It is found that various circulating currents exist in the system including the circulating currents within the single converter and the circulating currents among the multiple converters. Then, the limitations of the conventional dc/dc converter topologies are presented and it is proved that these topologies cannot eliminate all the circulating currents. Second, being inspired by the drawbacks of the conventional topologies, the modified topologies with two degrees of freedom modulation are designed. Based on the modified topologies, a corresponding suppression method consisting of two degrees of freedom control is proposed, which can eliminate the different types of circulating currents in a decoupling way. The first degree of freedom control mainly suppresses the circulating currents within the single converter, whereas the droop-based second degree of freedom control mainly suppresses the circulating currents among the multiple converters. Through the proposed solution, the IPOP nonisolated dc/dc converters can operate well with high reliability and scalability. The effectiveness of the proposed solution is validated by the real-time hardware-in-loop tests.
author2 Energy Research Institute @ NTU (ERI@N)
author_facet Energy Research Institute @ NTU (ERI@N)
Xia, Yanghong
Yu, Miao
Peng, Yonggang
Lin, Pengfeng
Shi, Donghang
Wei, Wei
format Article
author Xia, Yanghong
Yu, Miao
Peng, Yonggang
Lin, Pengfeng
Shi, Donghang
Wei, Wei
author_sort Xia, Yanghong
title Circulating currents suppression for IPOP nonisolated dc/dc converters based on modified topologies
title_short Circulating currents suppression for IPOP nonisolated dc/dc converters based on modified topologies
title_full Circulating currents suppression for IPOP nonisolated dc/dc converters based on modified topologies
title_fullStr Circulating currents suppression for IPOP nonisolated dc/dc converters based on modified topologies
title_full_unstemmed Circulating currents suppression for IPOP nonisolated dc/dc converters based on modified topologies
title_sort circulating currents suppression for ipop nonisolated dc/dc converters based on modified topologies
publishDate 2020
url https://hdl.handle.net/10356/141558
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