• DocumentCode
    2549412
  • Title

    Heat flux limits on the plasma-facing components for a commercial fusion reactor

  • Author

    Wang, X.R. ; Sze, D.-K. ; Tillack, M.S. ; Wong, C.P.C.

  • Author_Institution
    California Univ., San Diego, La Jolla, CA, USA
  • Volume
    2
  • fYear
    1995
  • fDate
    30 Sep-5 Oct 1995
  • Firstpage
    1206
  • Abstract
    In this work, the heat flux limits of conventional plasma-facing components (PFC) were examined. The limits are based on maximum allowable temperature and stress levels in the structures. The substrate materials considered were V, SiC composite and HT-9. The use of Cu also was considered. However, low temperature limits, activation and very limited radiation damage lifetime, make the using of Cu in a commercial power plant unattractive. With selected heat transfer enhancement, the heat flux allowable is about 5.3 MW/m2 for lithium-cooled V-alloy, 2.7 MW/m2 for helium-cooled SiC composite, and 2.7 MW/m2 for helium/water-cooled HT-9. Compared with the maximum heat flux attainable with Cu and cold water (13.4 MW/m2), acceptable power plant materials place severe restrictions on heat removal. The thermal conductivity of SiC composite at 1000°C and after irradiation is a factor of several lowered than the value we used. This indicates a need to examine the heat transfer problems associated with PFC, in terms of material development and enhancement in heat transfer. Physics regimes which can provide low peak and average heat flux should be pursued
  • Keywords
    composite materials; fusion reactor materials; fusion reactors; heat transfer; radiation effects; thermal conductivity; 1000 C; Cu; HT-9; SiC; V; commercial fusion reactor; composite; heat flux limits; heat transfer enhancement; low temperature limits; material development; maximum allowable temperature; plasma-facing components; radiation damage lifetime; stress levels; substrate materials; thermal conductivity; Conducting materials; Heat transfer; Plasma applications; Plasma materials processing; Plasma temperature; Power generation; Silicon carbide; Stress; Thermal conductivity; Water heating;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Fusion Engineering, 1995. SOFE '95. Seeking a New Energy Era., 16th IEEE/NPSS Symposium
  • Conference_Location
    Champaign, IL
  • Print_ISBN
    0-7803-2969-4
  • Type

    conf

  • DOI
    10.1109/FUSION.1995.534443
  • Filename
    534443