• DocumentCode
    1165396
  • Title

    A natural ZVS medium-power bidirectional DC-DC converter with minimum number of devices

  • Author

    Li, Hui ; Zheng Peng, Fang ; Lawler, J.S.

  • Author_Institution
    FAMU-FSU Coll. of Eng., Tallahassee, FL, USA
  • Volume
    39
  • Issue
    2
  • fYear
    2003
  • Firstpage
    525
  • Lastpage
    535
  • Abstract
    This paper introduces a new bidirectional, isolated DC-DC converter. A typical application for this converter can be found in the auxiliary power supply of hybrid electric vehicles. A dual half-bridge topology has been developed to implement the required power rating using the minimum number of devices. Unified zero-voltage switching was achieved in either direction of power flow with neither a voltage-clamping circuit nor extra switching devices and resonant components. All these new features allow high power density, efficient power conversion, and compact packaging. Complete descriptions of operating principle and design guidelines are provided in this paper. An extended state-space averaged model is developed to predict large- and small-signal characteristics of the converter in either direction of power flow. A 1.6-kW prototype has been built and successfully tested under full power. The experimental results of the converter´s steady-state operation confirm the soft-switching operation, simulation analysis, and the developed averaged model. The proposed converter is a good alternative to full-bridge isolated bidirectional DC-DC converter in medium-power applications.
  • Keywords
    DC-DC power convertors; bridge circuits; load flow; switching convertors; 1.6 kW; auxiliary power supply; compact packaging; design guidelines; dual half-bridge topology; efficient power conversion; extended state-space averaged model; high power density; hybrid electric vehicles; isolated DC-DC converter; natural ZVS medium-power bidirectional DC-DC converter; operating principle; power flow; soft-switching operation; unified zero-voltage switching; Circuit topology; DC-DC power converters; Hybrid electric vehicles; Load flow; Power conversion; Power supplies; RLC circuits; Resonance; Switching circuits; Zero voltage switching;
  • fLanguage
    English
  • Journal_Title
    Industry Applications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-9994
  • Type

    jour

  • DOI
    10.1109/TIA.2003.808965
  • Filename
    1189231