Observation of increase in ion temperature estimated from neutron rate on dropping Boron powder in WEST L-mode plasmas.

POSTER

Abstract

The effect of dropping boron powder on LHCD-heated L-mode WEST plasmas was studied. The drop rates were increased from 0 mg/s to 53 mg/s in multiple steps. The ion temperature estimated from the neutron rate showed a 55% increase from 1.1 keV to 1.7 keV on dropping boron. The increase in ion temperature was found to be accompanied by a reduction in density scale length. This reduction in density scale length may reduce the growth rate of ion temperature gradient-driven instability and the associated thermal transport. Furthermore, upon adding boron, a reduction in D-alpha signal near the divertor was observed, suggesting a reduction in deuterium recycling. The line-integrated interferometer chord near the separatrix indicates a reduction in density after adding boron. The plasma internal inductance was also observed to increase with increased boron. The trends in the data are being analyzed to understand the cause of the increase in ion temperature. The results of the experiment and these analyses will be presented.

*The research was supported by the US Department of Energy, Office of Science, Office of Fusion Energy Sciences, under contract Number DE-AC02-09CH11466 with the US Department of Energy. This work has been carried out within the framework of the EUROfusion Consortium, funded by the European Union via the Euratom Research and Training Programme (Grant Agreement No 101052200 — EUROfusion).

Presenters

  • Sayak Bose

    • Princeton Plasma Physics Laboratory
    • Princeton Plasma Physics Laboratory, Department of Physics and Astronomy Princeton University
    • Princeton Plasma Physics Laboratory, Princeton University

Authors

  • Sayak Bose

    • Princeton Plasma Physics Laboratory
    • Princeton Plasma Physics Laboratory, Department of Physics and Astronomy Princeton University
    • Princeton Plasma Physics Laboratory, Princeton University
  • Robert A. Lunsford

    • Princeton Plasma Physics Laboratory
  • Ahmed Diallo

    • Princeton Plasma Physics Laboratory
    • Princeton Plasma Physics Laboratory (PPPL)
  • Kirill Afonin

    • CEA Cadarache
    • CEA, IRFM
  • Clarisse Bourdelle

    • CEA, IRFM, F-13108 St-Paul-Lez-Durance, France
    • CEA, IRFM
  • Philippe Moreau

    • CEA IRFM, F-13108 Saint-Paul-Lez-Durance
    • CEA, IRFM
  • Rajesh Maingi

    • Princeton Plasma Physics Laboratory
    • Princeton Plasma Physics Laboratory (PPPL)
  • Grant M Bodner

    • General Atomics
  • Alexander Nagy

    • Princeton Plasma Physics Laboratory
  • Francis-Pierre Pellissier

    • CEA IRFM, F-13108 Saint-Paul-Lez-Durance
  • Christophe Guillemaut

    • CEA IRFM, F-13108 Saint-Paul-Lez-Durance
    • CEA, IRFM
  • James Paul P Gunn

    • CEA IRFM, F-13108 Saint-Paul-Lez-Durance
    • CEA-IRFM
  • Pierre Manas

    • CEA Cadarache
    • CEA, IRFM
  • Patrick Maget

    • CEA, IRFM
  • Corinne Desgranges

    • CEA IRFM, F-13108 Saint-Paul-Lez-Durance
  • Alessandro Bortolon

    • Princeton Plasma Physics Laboratory
  • Joseph A Snipes

    • Princeton Plasma Physics Laboratory
  • C.Christopher Klepper

    • ORNL
  • emmanuelle Tsitrone

    • IRFM-CEA
    • CEA, IRFM
    • CEA-IRFM, Centre de Cadarache, Saint-Paul-lez-Durance, 13108 Cedex
  • E.A. A Unterberg

    • Oak Ridge National Laboratory
  • Laure Vermare

    • Ecole Polytechnique—LPP