Integrated, Reactor Relevant Solutions for Lower Hybrid Range of Frequencies Actuators

POSTER

Abstract

RF (radiofrequency) actuators with high system efficiency (wall-plug to plasma) and ability for continuous operation have long be recognized as essential tools for realizing a steady state tokamak. A number of physics and technological challenges to utilization remain including current drive efficiency and location, efficient coupling, and impurity contamination. In a reactor environment, plasma material interaction (PMI) issues associated with coupling structures are similar to the first wall and have been identified as a potential show-stopper. High field side (HFS) launch of LHRF power represents an integrated solution that both improves core wave physics and mitigates PMI/coupling issues. For HFS LHRF, wave penetration is vastly improves because wave accessibility scales as 1/B allowing for launching the wave at lower n$_{||}$ (parallel refractive index). The lower n$_{||}$ penetrate to higher electron temperature resulting in higher current drive efficiency (~ 1/n$_{||}^2$). HFS RF launch also provides for a means to dramatically improve launcher robustness in a reactor environment. On the HFS, the SOL is quiescent; local density profile is steep and controlled through magnetic shape; fast particle, neutron, turbulent heat and particle fluxes are eliminated or minim

*Work supported by the U.S. DoE, Office of Science, Office of Fusion Energy Sciences, User Facility Alcator C-Mod under DE-FC02-99ER54512 and US DoE Contract No. DE-FC02-01ER54648 under a Scientific Discovery through Advanced Computing Initiative

Authors

  • S. Shiraiwa

    • PSFC, MIT
    • MIT-PSFC
    • MIT - PSFC
  • P. T. Bonoli

    • PSFC, MIT
  • Y Lin

    • PSFC, MIT
  • G. M. Wallace

    • PSFC, MIT
  • S. J. Wukitch

    • PSFC, MIT