The Study of Multi-Z Impurity Transport in DIII-D ITER Similar Shape Discharges

ORAL

Abstract

The diffusion and convection of impurities arising from neoclassical and turbulent transport mechanisms has been studied in a set of DIII-D discharges operated with the ITER shape, RMP ELM suppression, and approximately equal ion and electron heat loss (Qi~Qe). Neoclassical and nonlinear, flux-matched (Qi, Qe, Ge) gyrokinetic simulations (NEO and CGYRO) were performed from the plasma axis to near the pedestal top (rho = 0.0 – 0.8) to assess the relative impact of collisions and turbulence on the transport of 7 impurities (He, Li, C, F, Al, Ca, and W). Inside of rho = 0.45 simulation predicts a negative correlation of diffusion with Z, in contrast to a strong positive correlation found outside of this region. Linear simulations suggest these trends may be linked to the dominant local instabilities (ITG/TEM) but the physical origin is the subject of ongoing investigations. We will present a summary of the experiments, gyrokinetic and neoclassical simulations, and comparisons with experimentally determined impurity transport in the target discharges.

*Work supported by US DOE under grants DE-SC0014264 and DE-FC02-04ER54698, DE-AC02-09CH11466, DE-SC0020284, DE-AC05-00OR22725.

Presenters

  • Nathan T Howard

    • Massachusetts Institute of Technology MIT
    • MIT PSFC
    • Massachusetts Institute of Technology MI

Authors

  • Nathan T Howard

    • Massachusetts Institute of Technology MIT
    • MIT PSFC
    • Massachusetts Institute of Technology MI
  • Tomas Odstrcil

    • General Atomics - San Diego
  • Brian A Grierson

    • Princeton Plasma Physics Laboratory
  • Francesco Sciortino

    • Massachusetts Institute of Technology
    • Massachusetts Institute of Technology MIT
    • MIT PSFC
    • Massachusetts Institute of Technology MI
  • Tyler Abrams

    • General Atomics - San Diego
    • General Atomics
  • Alessandro Bortolon

    • Princeton Plasma Physics Laboratory
  • Edward T Hinson

    • University of Wisconsin - Madison
  • Filippo Scotti

    • Lawrence Livermore Natl Lab