A Review of Series-Connected Partial Power Converters for DC-DC Applications

被引:39
|
作者
dos Santos, Niwton Gabriel Feliciani [1 ]
Zientarski, Jonatan Rafael Rakoski [2 ]
Martins, Mario Lucio da Silva [1 ]
机构
[1] Fed Univ St Maria, Power Elect & Control Res Grp, BR-97105900 Santa Maria, Brazil
[2] Catarinense Fed Inst Educ Sci & Technol, BR-89560000 Videira, Brazil
关键词
Bidirectional power flow; dc-dc converters; partial power processing (PPP); series-connected partial power converters (S-PPCs); step-up/-down voltage regulation; ENERGY; ARCHITECTURES; EFFICIENCY; DENSITY;
D O I
10.1109/JESTPE.2021.3082869
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This article presents a review of series-connected partial power converters (S-PPCs) for dc-dc applications, which allows carrying out the partial power processing (PPP), whose main goal is to achieve a reduction of the power processed by the converters. An analysis of the S-PPCs' characteristics, topologies, and applications concerning the active and nonactive power processing is presented. The power processing factor (PPF) is then defined, which refers to the active power and depends exclusively on the voltage regulation range. The so-called Fryze power factor (PF) is used to evaluate the nonactive power processed, which depends on the topology voltage and current waveforms. Due to the lack of research around step-up/-down S-PPCs, this article presents the restrictions and requirements for the design of this type of S-PPCs. Finally, it is demonstrated that the turns ratio of magnetic devices can be optimized to reduce the nonactive power and improve the converter Fryze PF, ensuring PPP. In order to validate the analyses, two 2200-W prototypes were built and evaluated for a photovoltaic (PV) application example. Experimental results show that the reduction of both the active and nonactive power processed by the S-PPCs results in lower component ratings and higher efficiencies.
引用
收藏
页码:7825 / 7838
页数:14
相关论文
共 50 条
  • [31] Compact Medium Voltage DC/DC Converter Using Series-Connected Power Devices
    Zheng, Shaoduo
    Lyu, Feng
    ELECTRONICS, 2020, 9 (06) : 1 - 10
  • [32] DC-DC converters for electric vehicle applications
    Bellur, Dakshina M.
    Kazimierczuk, Marian K.
    2007 ELECTRICAL INSULATION CONFERENCE AND ELECTRICAL MANUFACTURING EXPO, 2007, : 286 - 293
  • [33] Applications and Market Analysis of DC-DC Converters
    Mitchell, S. D.
    Ncube, S. M.
    Owen, T. G.
    Rashid, M. H.
    PROCEEDINGS OF ICECE 2008, VOLS 1 AND 2, 2008, : 887 - 891
  • [34] Study of the multilevel converters in DC-DC applications
    Zhang, F
    Peng, FZ
    Qian, ZM
    PESC 04: 2004 IEEE 35TH ANNUAL POWER ELECTRONICS SPECIALISTS CONFERENCE, VOLS 1-6, CONFERENCE PROCEEDINGS, 2004, : 1702 - 1706
  • [35] The description methods of DC-DC power converters
    Janke, Wlodzimierz
    PRZEGLAD ELEKTROTECHNICZNY, 2012, 88 (11B): : 5 - 10
  • [36] A nonlinear control for dc-dc power converters
    Chan, Chok-You
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2007, 22 (01) : 216 - 222
  • [37] Review of DC-DC Partial Power Converter Configurations and Topologies
    Gsous, Omar
    Rizk, Reem
    Barbon, Arsenio
    Georgious, Ramy
    ENERGIES, 2024, 17 (06)
  • [38] A family of soft-switching DC-DC power converters to high power applications
    Fuentes, RC
    Hey, HL
    CIEP 96 - V IEEE INTERNATIONAL POWER ELECTRONICS CONGRESS, TECHNICAL PROCEEDINGS, 1996, : 264 - 268
  • [39] Series interconnection of DC-DC converters for output control
    Rodrigues, O
    Ghosh, P
    POWER ELECTRONICS IN TRANSPORTATION, 2004, : 133 - 137
  • [40] Alternative Source-Port-Tolerant Series-Connected Double-Input DC-DC Converter
    Sun, Xiaofeng
    Zhou, Yue
    Wang, Wei
    Wang, Baocheng
    Zhang, Zhe
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2015, 30 (05) : 2733 - 2742