High Performance Flexible Structure Three-Level DC-DC Converter: A Candidate DC Interface for Microgrids With Distributed Energy Resources

High-performance DC interfaces play a pivotal role in microgrids with distributed energy resources (DERs), which would significantly improve the utilization of DERs and the flexibility of the prosumers. For a candidate DC interface converter, how to maintain the performance over a wide operation ran...

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Main Authors: Yong Shi, Yiren Hu, Baoquan Liu
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9296854/
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spelling doaj-94592987c43f4de2a45a53ab3dfa8f712021-03-30T14:52:03ZengIEEEIEEE Access2169-35362021-01-0191032104310.1109/ACCESS.2020.30454999296854High Performance Flexible Structure Three-Level DC-DC Converter: A Candidate DC Interface for Microgrids With Distributed Energy ResourcesYong Shi0https://orcid.org/0000-0003-4829-3183Yiren Hu1Baoquan Liu2College of Electrical and Control Engineering, Shaanxi University of Science & Technology, Xi’an, ChinaCollege of Electrical and Control Engineering, Shaanxi University of Science & Technology, Xi’an, ChinaCollege of Electrical and Control Engineering, Shaanxi University of Science & Technology, Xi’an, ChinaHigh-performance DC interfaces play a pivotal role in microgrids with distributed energy resources (DERs), which would significantly improve the utilization of DERs and the flexibility of the prosumers. For a candidate DC interface converter, how to maintain the performance over a wide operation range becomes the biggest challenge. This paper proposes a flexible structure soft-switching three-level (TL) dc-dc converter, which adds four high-speed MOSFETs and one low-speed electronic relay to achieve overall optimum performance over a wide range. Under high output or low input voltage conditions, the relay and the extra MOSFETs on the primary side are ON permanently. The proposed converter is a zero-voltage switching (ZVS) converter, which guarantees ZVS for all primary switches even under 0 load currents. Under low output or high input voltage conditions, the relay and the extra MOSFETs in the secondary side are OFF permanently. The proposed converter is a zero-voltage and zero-current switching (ZVZCS) converter, and two added MOSFETs provide ZVZCS operation not only for the main primary switches but also themselves over a wide range. Other advantages of the presented converter include reduced filter size, no primary side circulating currents, and reduced current stress of the clamping capacitor. Besides, the switching loss caused by the added power devices is low because of the full range of soft-switching operation and low on-state resistance of these devices. This paper discusses the circuit configuration, operation principle, soft switching characteristics, technical comparison, and experimental results from a 1-kW prototype prove the rightness of the presented converter.https://ieeexplore.ieee.org/document/9296854/TL dc-dc convertersDC interfacedistributed energy resourcesmicrogridssoft switching
collection DOAJ
language English
format Article
sources DOAJ
author Yong Shi
Yiren Hu
Baoquan Liu
spellingShingle Yong Shi
Yiren Hu
Baoquan Liu
High Performance Flexible Structure Three-Level DC-DC Converter: A Candidate DC Interface for Microgrids With Distributed Energy Resources
IEEE Access
TL dc-dc converters
DC interface
distributed energy resources
microgrids
soft switching
author_facet Yong Shi
Yiren Hu
Baoquan Liu
author_sort Yong Shi
title High Performance Flexible Structure Three-Level DC-DC Converter: A Candidate DC Interface for Microgrids With Distributed Energy Resources
title_short High Performance Flexible Structure Three-Level DC-DC Converter: A Candidate DC Interface for Microgrids With Distributed Energy Resources
title_full High Performance Flexible Structure Three-Level DC-DC Converter: A Candidate DC Interface for Microgrids With Distributed Energy Resources
title_fullStr High Performance Flexible Structure Three-Level DC-DC Converter: A Candidate DC Interface for Microgrids With Distributed Energy Resources
title_full_unstemmed High Performance Flexible Structure Three-Level DC-DC Converter: A Candidate DC Interface for Microgrids With Distributed Energy Resources
title_sort high performance flexible structure three-level dc-dc converter: a candidate dc interface for microgrids with distributed energy resources
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2021-01-01
description High-performance DC interfaces play a pivotal role in microgrids with distributed energy resources (DERs), which would significantly improve the utilization of DERs and the flexibility of the prosumers. For a candidate DC interface converter, how to maintain the performance over a wide operation range becomes the biggest challenge. This paper proposes a flexible structure soft-switching three-level (TL) dc-dc converter, which adds four high-speed MOSFETs and one low-speed electronic relay to achieve overall optimum performance over a wide range. Under high output or low input voltage conditions, the relay and the extra MOSFETs on the primary side are ON permanently. The proposed converter is a zero-voltage switching (ZVS) converter, which guarantees ZVS for all primary switches even under 0 load currents. Under low output or high input voltage conditions, the relay and the extra MOSFETs in the secondary side are OFF permanently. The proposed converter is a zero-voltage and zero-current switching (ZVZCS) converter, and two added MOSFETs provide ZVZCS operation not only for the main primary switches but also themselves over a wide range. Other advantages of the presented converter include reduced filter size, no primary side circulating currents, and reduced current stress of the clamping capacitor. Besides, the switching loss caused by the added power devices is low because of the full range of soft-switching operation and low on-state resistance of these devices. This paper discusses the circuit configuration, operation principle, soft switching characteristics, technical comparison, and experimental results from a 1-kW prototype prove the rightness of the presented converter.
topic TL dc-dc converters
DC interface
distributed energy resources
microgrids
soft switching
url https://ieeexplore.ieee.org/document/9296854/
work_keys_str_mv AT yongshi highperformanceflexiblestructurethreeleveldcdcconverteracandidatedcinterfaceformicrogridswithdistributedenergyresources
AT yirenhu highperformanceflexiblestructurethreeleveldcdcconverteracandidatedcinterfaceformicrogridswithdistributedenergyresources
AT baoquanliu highperformanceflexiblestructurethreeleveldcdcconverteracandidatedcinterfaceformicrogridswithdistributedenergyresources
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