• DocumentCode
    1094130
  • Title

    Solid-oxide-fuel-cell performance and durability: resolution of the effects of power-conditioning systems and application loads

  • Author

    Mazumder, Sudip K. ; Acharya, Kaustuva ; Haynes, Comas Lamar ; Williams, Robert, Jr. ; Von Spakovsky, Michael R. ; Nelson, Douglas J. ; Rancruel, Diego F. ; Hartvigsen, Joseph ; Gemmen, Randy S.

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of Illinois, Chicago, IL, USA
  • Volume
    19
  • Issue
    5
  • fYear
    2004
  • Firstpage
    1263
  • Lastpage
    1278
  • Abstract
    We describe methodologies for comprehensive and reduced-order modeling of solid-oxide-fuel-cell (SOFC) power-conditioning system (PCS) at the subsystem/component and system levels to resolve the interactions among SOFC, balance-of-plant subsystem, and power-electronics subsystem (PES) and application loads (ALs). Using these models, we analyze the impacts of electrical-feedback effects (e.g., ripple-current dynamics and load transients) on the performance and reliability of the SOFC. Subsequently, we investigate the effects of harmonics in the current, drawn from the SOFC by a PES, on the temperature and fuel utilization of the SOFC. We explore the impacts of inverter space-vector modulation strategies on the transient response, flow parameters, and current density of the SOFC during load transients and demonstrate how these two traditionally known superior modulation/control methodologies may in fact have a negative effect on the performance and durability of the SOFC unless carefully implemented. Further, we resolve the impacts of the current drawn by the PES from the SOFC, on its microcrack density and electrode/electrolyte degradation. The comprehensive analytical models and interaction-analysis methodologies and the results provided in this paper lead to an improved understanding, and may yield realizations of cost-effective, reliable, and optimal PESs, in particular, and SOFC PCSs, in general.
  • Keywords
    current density; electrochemical electrodes; electrolytes; feedback; power electronics; solid oxide fuel cells; transient response; SOFC; application loads; current density; electrical feedback effects; electrode degradation; electrolyte degradation; interaction-analysis methodologies; inverter space-vector modulation strategy; microcrack density; power conditioning systems; power-electronics subsystem; reduced-order modelling; solid-oxide-fuel-cell performance; transient response; Fuels; Inverters; Performance analysis; Personal communication networks; Power system modeling; Power system reliability; Solid modeling; Temperature; Transient analysis; Transient response; PCS; PES; Power-conditioning system; SOFC; power-electronics subsystem; solid-oxide-fuel-cell;
  • fLanguage
    English
  • Journal_Title
    Power Electronics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8993
  • Type

    jour

  • DOI
    10.1109/TPEL.2004.833992
  • Filename
    1331488