High Step-Up Interleaved Converter Mixed With Magnetic Coupling and Voltage Lift

被引:19
作者
Seo, Sang-Wha [1 ]
Lim, Dong-Kuk [2 ]
Choi, Han Ho [3 ]
机构
[1] Korea Railrd Res Inst, Syst Res Team, Seoul 16105, South Korea
[2] Univ Ulsan, Sch Elect Engn, Ulsan 44610, South Korea
[3] Dongguk Univ, Div Elect & Elect Engn, Seoul 04620, South Korea
基金
新加坡国家研究基金会;
关键词
Magnetic flux; Switches; Capacitors; Inductance; Magnetic circuits; Magnetomechanical effects; Couplings; High voltage gain; magnetic coupling; non-isolated; voltage lift (VL) technique; zero current switching (ZCS); HIGH-EFFICIENCY; DC/DC CONVERTER; MULTIPLIER; CELL; DESIGN;
D O I
10.1109/ACCESS.2020.2983757
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In this paper, a non-isolated high step-up interleaved DC-DC converter for distributed generation applications such as solar cells and fuel cells. The proposed converter mixes the benefits of magnetic coupling, voltage multiplier, and voltage lift techniques to conventional interleaved schemes. The proposed converter & x2019;s voltage lift technique can increase the voltage gain while guaranteeing low voltage stress of the switches. And the magnetic coupling method can combine the switched capacitor of the voltage multiplier technique with the lossless clamp circuit to achieve high voltage gain and reuse the leakage inductance energy to the output terminal. In addition, this leakage inductance energy can achieve zero current switching turn on soft switching performance and mitigate the output diode reverse recovery problem. The proposed converter avoids the extreme duty cycles that cause conduction losses in power devices and can give very low voltage stresses. Therefore, the use of low voltage rated MOSFETs and diodes not only reduces switching losses and costs, but also improves efficiency.
引用
收藏
页码:72768 / 72780
页数:13
相关论文
共 30 条
  • [1] Highly Efficient High Step-Up Converter for Fuel-Cell Power Processing Based on Three-State Commutation Cell
    Araujo, Samuel Vasconcelos
    Torrico-Bascope, Rene P.
    Torrico-Bascope, Grover V.
    [J]. IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2010, 57 (06) : 1987 - 1997
  • [2] Switched-capacitor/switched-inductor structures for getting transformerless hybrid dc-dc PWM converters
    Axelrod, Boris
    Berkovich, Yefim
    Ioinovici, Adrian
    [J]. IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS I-REGULAR PAPERS, 2008, 55 (02) : 687 - 696
  • [3] Bellar M. D., 1992, IEEE Transactions on Power Electronics, V7, P526, DOI 10.1109/63.145140
  • [4] An approach to quantify the technical benefits of distributed generation
    Chiradeja, P
    Ramakumar, R
    [J]. IEEE TRANSACTIONS ON ENERGY CONVERSION, 2004, 19 (04) : 764 - 773
  • [5] Erickson R. W., 2001, FUNDAMENTALS POWER E, V2nd, P55
  • [6] High-Efficiency High Step-Up DC-DC Converter With Dual Coupled Inductors for Grid-Connected Photovoltaic Systems
    Forouzesh, Mojtaba
    Shen, Yanfeng
    Yari, Keyvan
    Siwakoti, Yam P.
    Blaabjerg, Frede
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2018, 33 (07) : 5967 - 5982
  • [7] Step-Up DC-DC Converters: A Comprehensive Review of Voltage-Boosting Techniques, Topologies, and Applications
    Forouzesh, Mojtaba
    Siwakoti, Yam P.
    Gorji, Saman A.
    Blaabjerg, Frede
    Lehman, Brad
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2017, 32 (12) : 9143 - 9178
  • [8] An Advanced Current-Autobalance High Step-Up Converter With a Multicoupled Inductor and Voltage Multiplier for a Renewable Power Generation System
    He, Liangzong
    Liao, Yuxian
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2016, 31 (10) : 6992 - 7005
  • [9] A High Gain Input-Parallel Output-Series DC/DC Converter With Dual Coupled Inductors
    Hu, Xuefeng
    Gong, Chunying
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2015, 30 (03) : 1306 - 1317
  • [10] Ultrahigh Step-up DC-DC Converter for Distributed Generation by Three Degrees of Freedom (3DoF) Approach
    Hu, Yihua
    Wu, Jiande
    Cao, Wenping
    Xiao, Weidong
    Li, Peng
    Finney, Stephen J.
    Li, Yuan
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2016, 31 (07) : 4930 - 4941