Up/Down Impurity Density Asymmetries in C-Mod Plasmas

ORAL

Abstract



Brightness profiles of x-ray emission from H-like Ar17+ exhibit a distinct up/down asymmetry under certain operating conditions in C-Mod plasmas,
indicating that impurity densities are not constant on flux surfaces with r/a between ~0.8 and ~0.95. In L- and I-mode plasmas, there is an x-ray brightness excess,
up to a factor of 8, on the side opposite to the ion B x gradB drift direction. This effect is not observed in H-mode plasmas,
presumably due to edge impurity transport being dominated by a strong inward pinch, which is absent in L- and I-mode. The asymmetry magnitude in L- and I-mode
decreases with increasing Ip, similar to the observed decrease in radial impurity diffusivity. In I-mode, where the codependence between ne
and Te can be broken with ICRF heating power, the asymmetry magnitude is found to decrease with increasing density, and with increasing edge temperature
at fixed density. These measurements exhibit some qualitative features of neo-classical expectations but the observed asymmetry magnitude is much larger than
predicted and some scalings with plasma parameters are not seen. The up/down asymmetry appears to be largest when the cross field impurity diffusivity is the highest.

Presenters

  • John Edward Rice

    Massachusetts Inst of Tech-MIT, MIT Plasma Science and Fusion Center

Authors

  • John Edward Rice

    Massachusetts Inst of Tech-MIT, MIT Plasma Science and Fusion Center

  • Matthew Reinke

    ORNL, Oak Ridge National Laboratory

  • Norman M. Cao

    Massachusetts Inst of Tech-MIT, MIT Plasma Science and Fusion Center

  • Jerry W Hughes

    Massachusetts Inst of Tech-MIT, Massachusetts Institute of Technology, MIT, MIT Plasma Science and Fusion Center

  • Joanna Ashbourn

    University of Oxford

  • Darin R Ernst

    Massachusetts Inst of Tech-MIT

  • Amanda E Hubbard

    MIT Plasma Science and Fusion Center, Massachusetts Inst of Tech-MIT

  • James Henderson Irby

    Massachusetts Inst of Tech-MIT, MIT, MIT Plasma Science and Fusion Center, MIT - PSFC