Analysis and Design of a ZVT Resonant Boost Converter Using an Auxiliary Resonant Circuit

In this paper, a new zero voltage transition (ZVT) resonant boost converter is proposed. A typical boost converter generates switching losses at turning on and turning off, and these losses cause a reduction in the efficiency of the whole system. This proposed ZVT resonant boost converter utilizes a...

Full description

Bibliographic Details
Main Authors: Hee-Jun Lee, Young-Ho Kim
Format: Article
Language:English
Published: MDPI AG 2019-04-01
Series:Electronics
Subjects:
Online Access:https://www.mdpi.com/2079-9292/8/4/466
id doaj-21193a29e6e34285a2ba8c9eb712778a
record_format Article
spelling doaj-21193a29e6e34285a2ba8c9eb712778a2020-11-25T01:27:08ZengMDPI AGElectronics2079-92922019-04-018446610.3390/electronics8040466electronics8040466Analysis and Design of a ZVT Resonant Boost Converter Using an Auxiliary Resonant CircuitHee-Jun Lee0Young-Ho Kim1Department of Electrical and Computer Engineering, Sungkyunkwan University, Suwon 16419, KoreaDepartment of Electrical and Computer Engineering, Sungkyunkwan University, Suwon 16419, KoreaIn this paper, a new zero voltage transition (ZVT) resonant boost converter is proposed. A typical boost converter generates switching losses at turning on and turning off, and these losses cause a reduction in the efficiency of the whole system. This proposed ZVT resonant boost converter utilizes a soft switching method, using an auxiliary circuit with a resonant inductor, capacitor, and two auxiliary switches. Therefore, it can reduce switching losses more so than the conventional hard switching converter. Also, the conduction period of the resonant inductor current is reduced by using a modified circuit. An experiment is conducted with the converter, which steps up the voltage from 200 V to 380 V and its switching frequency and output power are 30 kHz and 4 kW, respectively. It is confirmed that the experimental results and simulation results are the same and the validity of this proposed converter is verified. The conventional converter and proposed converter are analyzed by comparing the experimental results of two converters under the same conditions. It is confirmed that all switches can achieve soft switching and the proposed converter improves on the conventional converter by measuring the efficiency of two converters.https://www.mdpi.com/2079-9292/8/4/466zero voltage transitionboost convertersoft switchingauxiliary resonant circuitzero voltage switchingzero current switching
collection DOAJ
language English
format Article
sources DOAJ
author Hee-Jun Lee
Young-Ho Kim
spellingShingle Hee-Jun Lee
Young-Ho Kim
Analysis and Design of a ZVT Resonant Boost Converter Using an Auxiliary Resonant Circuit
Electronics
zero voltage transition
boost converter
soft switching
auxiliary resonant circuit
zero voltage switching
zero current switching
author_facet Hee-Jun Lee
Young-Ho Kim
author_sort Hee-Jun Lee
title Analysis and Design of a ZVT Resonant Boost Converter Using an Auxiliary Resonant Circuit
title_short Analysis and Design of a ZVT Resonant Boost Converter Using an Auxiliary Resonant Circuit
title_full Analysis and Design of a ZVT Resonant Boost Converter Using an Auxiliary Resonant Circuit
title_fullStr Analysis and Design of a ZVT Resonant Boost Converter Using an Auxiliary Resonant Circuit
title_full_unstemmed Analysis and Design of a ZVT Resonant Boost Converter Using an Auxiliary Resonant Circuit
title_sort analysis and design of a zvt resonant boost converter using an auxiliary resonant circuit
publisher MDPI AG
series Electronics
issn 2079-9292
publishDate 2019-04-01
description In this paper, a new zero voltage transition (ZVT) resonant boost converter is proposed. A typical boost converter generates switching losses at turning on and turning off, and these losses cause a reduction in the efficiency of the whole system. This proposed ZVT resonant boost converter utilizes a soft switching method, using an auxiliary circuit with a resonant inductor, capacitor, and two auxiliary switches. Therefore, it can reduce switching losses more so than the conventional hard switching converter. Also, the conduction period of the resonant inductor current is reduced by using a modified circuit. An experiment is conducted with the converter, which steps up the voltage from 200 V to 380 V and its switching frequency and output power are 30 kHz and 4 kW, respectively. It is confirmed that the experimental results and simulation results are the same and the validity of this proposed converter is verified. The conventional converter and proposed converter are analyzed by comparing the experimental results of two converters under the same conditions. It is confirmed that all switches can achieve soft switching and the proposed converter improves on the conventional converter by measuring the efficiency of two converters.
topic zero voltage transition
boost converter
soft switching
auxiliary resonant circuit
zero voltage switching
zero current switching
url https://www.mdpi.com/2079-9292/8/4/466
work_keys_str_mv AT heejunlee analysisanddesignofazvtresonantboostconverterusinganauxiliaryresonantcircuit
AT younghokim analysisanddesignofazvtresonantboostconverterusinganauxiliaryresonantcircuit
_version_ 1725106767951560704