Progress Toward Improved Compact Stellarator Designs

POSTER

Abstract

Stellarators offer robust physics solutions for MFE challenges-- steady-state operation, disruption elimination, and high-density operation-- but require design improvements to overcome technical risks in the construction and maintenance of future large-scale stellarators. Using the ARIES-CS design (aspect ratio 4.56) as a starting point, compact stellarator designs with improved maintenance characteristics have been developed. By making the outboard legs of the main magnetic field coils nearly straight and parallel, a sector maintenance scheme compatible with high availability becomes possible. Approaches that can allow the main coil requirements to be relaxed in this way are: 1) increase aspect ratio at the expense of compactness, 2) add local removable coils in the maintenance ports for plasma shaping, and 3) use passive conducting tiles made of bulk high-temperature superconducting material to help shape the magnetic field. Such tiles would be arranged on a shaped, segmented internal support structure behind the shield.

*Research supported by U.S. DOE Contract \#DE-AC02-09CH11466 with Princeton Univ.

Authors

  • G.H. Neilson

    • PPPL
  • T. Brown

    • PPPL
  • D.A. Gates

    • PPPL
    • Princeton Plasma Physics Laboratory
  • L.P. Ku

    • PPPL
  • S. Lazerson

    • PPPL
  • N. Pomphrey

    • PPPL
  • Allan Reiman

    • PPPL
    • Princeton Plasma Physics Laboratory
  • M.C. Zarnstorff

    • PPPL
  • L. Bromberg

    • MIT
  • A. Boozer

    • Columbia Univ.
  • J.H. Harris

    • ORNL
    • Oak Ridge National Laboratory, Oak Ridge, TN, USA