• DocumentCode
    3775572
  • Title

    The Material Plasma Exposure eXperiment MPEX: Pre-design, development and testing of source concept

  • Author

    J. Rapp;T.M. Biewer;T. Bigelow;J.B.O. Caughman;R. Duckworth;D. Giuliano;R.H. Goulding;D.L. Hillis;R. Howard;R.J. Ellis;T. Lessard;J.D. Lore;A. Lumsdaine;E. Martin;W.D. McGinnis;S.J. Meitner;L.W. Owen;H. Ray;G. Shaw;V. Varma

  • Author_Institution
    Fusion and Materials for Nuclear Systems Division, Oak Ridge National Laboratory, TN, USA
  • fYear
    2015
  • fDate
    5/1/2015 12:00:00 AM
  • Firstpage
    1
  • Lastpage
    8
  • Abstract
    The availability of future fusion devices such as a Fusion Nuclear Science Facility (FNSF) or DEMO greatly depends on long operating lifetimes of plasma facing components in their divertors. ORNL is designing the Material-Plasma Exposure eXperiment (MPEX), a superconducting magnet, steady-state device to address the plasma material interactions of fusion reactors. MPEX will utilize a new high-intensity plasma source concept based on RF technology. This source concept will allow the experiment to cover the entire expected plasma conditions in the divertor of a future fusion reactor. It will be able to study erosion and re-deposition for relevant geometries with relevant electric and magnetic fields in-front of the target. MPEX is being designed to allow for the exposure of a-priori neutron-irradiated samples. The target transfer cask has been designed to undock from the linear plasma generator such that it can be transferred to diagnostics stations for more detailed surface analysis. MPEX is being developed in a staged approach with successively increased capabilities. After the initial development step of the helicon source and ECH system the source concept is being tested in the Proto-MPEX device (100 kW helicon, 200 kW EBW, 30 kW ICRH). Proto-MPEX has achieved electron densities of more than 4×1019m-3 with a large diameter (13cm) helicon antenna at 100 kW power. First heating with microwaves resulted in a higher ionization represented by higher electron densities on axis, when compared to the helicon plasma only without microwave heating.
  • Keywords
    "Heating","Magnetic fields","Antennas","Radio frequency","Plasma sources","Couplings"
  • Publisher
    ieee
  • Conference_Titel
    Fusion Engineering (SOFE), 2015 IEEE 26th Symposium on
  • Electronic_ISBN
    2155-9953
  • Type

    conf

  • DOI
    10.1109/SOFE.2015.7482351
  • Filename
    7482351