Plasma--Surface Interactions and RF Antennas

POSTER

Abstract

Implementation of recently developed finite-difference time-domain (FDTD) modeling techniques on high-performance computing platforms allows RF power flow, and antenna near- and far-field behavior, to be studied in realistic experimental ion-cyclotron resonance heating scenarios at previously inaccessible levels of resolution. We present results and 3D animations of high-performance (10k--100k core) FDTD simulations of Alcator C-Mod's field-aligned ICRF antenna on the Titan supercomputer, considering (a) the physics of slow wave excitation in the immediate vicinity of the antenna hardware and in the scrape-off layer for various edge densities, and (b) sputtering and impurity production, as driven by self-consistent sheath potentials at antenna surfaces. Related research efforts in low-temperature plasma modeling, including the use of proper orthogonal decomposition methods for PIC/fluid modeling and the development of plasma chemistry tools (e.g. a robust and flexible reaction database, principal path reduction analysis capabilities, and improved visualization options), will also be summarized.

*Supported by U.S. DoE SBIR Phase I/II Award DE-SC0009501 and ALCC/OLCF.

Authors

  • Thomas Jenkins

    • Tech-X Corporation
  • D.N. Smithe

    • Tech-X Corporation
  • K. Beckwith

    • Tech-X Corporation
  • B.D. Davidson

    • Tech-X Corporation
  • S.E. Kruger

    • Tech-X Corporation
  • A.Y. Pankin

    • Tech-X Corporation
  • C.M. Roark

    • Tech-X Corporation