Importance of resonant wave-filament interactions for HHFW, helicon, and LH current drive in tokamaks

POSTER

Abstract

A significant challenge in tokamaks is to demonstrate efficient current drive in advanced tokamak scenarios for steady-state operation of future reactors. Recent analytical work has hypothesized that the interaction of filaments with waves in the SOL of plasmas can create resonant wave-filament interactions that may lead to large SOL power absorption of waves and reduced current drive efficiency. The potential impact of these resonant wave-filament interactions on current drive schemes such as high harmonic fast waves on NSTX-U, helicon waves on DIII-D, and lower hybrid waves on Alcator C-Mod will be presented. Both the cylindrical analytical model and experimentally constrained toroidal full-wave computational models suggests that these resonant wave-filament interactions exist for the above-mentioned current drive schemes and may trigger large wave SOL losses in tokamaks. Future work to measure these resonant wave fields on the LaPD linear plasma experiment and current tokamaks will be discussed.

*Work supported by DE-AC05-00OR22725.

Authors

  • Cornwall Lau

    • Oak Ridge National Lab
    • ORNL
    • Oak Ridge National Laboratory
  • E.H. Martin

    • ORNL
    • Oak Ridge National Laboratory
  • N. Bertelli

    • Princeton Plasma Physics Laboratory
    • PPPL
  • Syun'ichi Shiraiwa

    • Princeton Plasma Physics Laboratory
  • Wouter Tierens

    • Max-Planck IPP
  • M. W. Brookman

    • General Atomics - San Diego
    • General Atomics
  • R. I. Pinsker

    • GA
    • General Atomics - San Diego
    • General Atomics
  • Bart Van Compernolle

    • General Atomics
    • General Atomics - San Diego
  • Abhay Ram

    • MIT Plasma Science and Fusion Center
  • Greg Wallace

    • MIT PSFC
    • MIT Plasma Science and Fusion Center
    • MIT
  • A. Dimits

    • Lawrence Livermore Natl Lab
    • Lawrence Livermore National Laboratory
    • LLNL
  • J. R. Myra

    • Lodestar
    • Lodestar Research Corporation, Boulder CO
    • Lodestar Research Corporation
    • Lodestar Research
  • Steve Vincena

    • University of California, Los Angeles
    • UCLA
  • Xiaokang Yang

    • TAE Technologies