• DocumentCode
    630322
  • Title

    Improved instantaneous current control for the three-phase dual-active bridge DC-DC converter

  • Author

    Engel, Stefan P. ; Soltau, Nils ; Stagge, Hanno ; De Doncker, Rik W.

  • Author_Institution
    E.ON Energy Res. Center, RWTH Aachen Univ., Aachen, Germany
  • fYear
    2013
  • fDate
    3-6 June 2013
  • Firstpage
    855
  • Lastpage
    860
  • Abstract
    With the share of renewable and decentralized power sources increasing, the need for power electronics and especially for efficient high-power dc-dc converters is expected to grow. The three-phase dual-active bridge is a promising technology, as it has a high power density and inherently features galvanic isolation. A highly dynamic method to control the current and thus the transferred power for this converter type has recently been published. The published approach gives excellent results for transformers with a high decay time constant. However, the method can be improved for transformers with significant influence of the winding resistance. The present paper suggests two exact approaches that reach steady state in one third and half of a switching period, respectively. Independent of the winding resistance, the suggested control schemes give superior results, oscillations of the dc current are completely eliminated. The control schemes are investigated in detail and proven mathematically in an elegant manner. Simulations and an experimental verification on a laboratory prototype confirm the outstanding performance of the developed approach.
  • Keywords
    DC-DC power convertors; electric current control; power transformers; dc current; decentralized power sources; dynamic method; galvanic isolation; high decay time constant; high-power dc-dc converters; improved instantaneous current control; power density; power electronics; renewable power sources; switching period; three-phase dual-active bridge converter; transformers; winding resistance; Oscillators; Switches; Trajectory; Control design; current control; dc-dc power converters; power distribution; power grid; power transmission;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    ECCE Asia Downunder (ECCE Asia), 2013 IEEE
  • Conference_Location
    Melbourne, VIC
  • Print_ISBN
    978-1-4799-0483-9
  • Type

    conf

  • DOI
    10.1109/ECCE-Asia.2013.6579204
  • Filename
    6579204