• DocumentCode
    301068
  • Title

    Design and analysis of the DIII-D radiative divertor water-cooled structures

  • Author

    Hollerbach, M.A. ; Smith, J.P. ; Baxi, C.B. ; Bozek, A.S. ; Chin, E. ; Phelps, R.D. ; Redler, K.M. ; Reis, E.E.

  • Author_Institution
    Gen. Atomics, San Diego, CA, USA
  • Volume
    1
  • fYear
    1995
  • fDate
    30 Sep-5 Oct 1995
  • Firstpage
    817
  • Abstract
    The radiative divertor is a major modification to the divertor of DIII-D and is being designed and fabricated for installation in late 1996. The Radiative Divertor Program (RDP) will enhance the dissipative processes in the edge and divertor plasmas to reduce the heat flux and plasma erosion at the divertor target. This approach will have major implications for the heat removal methods used in future devices. The divertor is of slot-type configuration designed to minimize the flow of sputtered and injected impurities back to the core plasma. The new divertor will be composed of toroidally continuous, Inconel 625 water-cooled rings of sandwich construction with an internal water channel, incorporating seam welding to provide the water-to-vacuum seal as well as structural integrity. The divertor structure is designed to withstand electromagnetic loads as a result of halo currents and induced toroidal currents. It also accommodates the thermal differences experienced during the 400°C bake used on DIII-D. A low Z plasma-facing surface is provided by mechanically attached graphite tiles. Water flow through the rings will inertially cool these tiles which will be subjected to 38 MW, 10 second pulses. Current schedules call for detailed design in 1996 with installation completed in March 1997. A full size prototype, one-quarter of one ring, is being built to validate manufacturing techniques, machining, roll-forming, and seam welding. The experience and knowledge gained through the fabrication of the prototype is discussed. The design of the electrically isolated (5 kV) vacuum-to-air water feedthroughs supplying the water-cooled rings is also discussed
  • Keywords
    fusion reactor design; fusion reactors; seals (stoppers); welding; 10 s; 38 MW; 400 C; 5 kV; C; CrNi; DIII-D radiative divertor water-cooled structures; core plasma; dissipative processes; divertor plasmas; edge plasmas; fusion reactor; halo currents; heat flux reduction; heat removal methods; induced toroidal currents; low Z plasma-facing surface; machining; mechanically attached graphite tiles; plasma erosion; roll-forming; sandwich construction; seam welding; slot-type configuration; structural integrity; thermal differences; toroidally continuous Inconel 625 water-cooled rings; water-to-vacuum seal; Fabrication; Impurities; Job shop scheduling; Machining; Manufacturing; Plasma devices; Plasma welding; Prototypes; Seals; Tiles;
  • 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.1995.535958
  • Filename
    535958