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Transport and turbulence studies in the linear ohmic confinement regime in Alcator C-Mod

Authors :
Naoto Tsujii
Amanda Hubbard
Ye Ma
Matthew Reinke
R. E. Waltz
Earl Marmar
J.R. Dorris
Martin Greenwald
G. M. Staebler
Jeff Candy
J. E. Rice
C.L. Fiore
J.C. Rost
Y. Podpaly
Paul Ennever
D.R. Ernst
Miklos Porkolab
Massachusetts Institute of Technology. Department of Physics
Massachusetts Institute of Technology. Plasma Science and Fusion Center
Porkolab, Miklos
Ennever, Paul Chappell
Fiore, Catherine L.
Greenwald, Martin J.
Hubbard, Amanda E.
Dorris, James R.
Ma, Y.
Marmar, Earl S.
Podpaly, Y.
Reinke, Matthew Logan
Rice, John E.
Rost, Jon C.
Tsujii, Naoto
Ernst, Darin R.
Source :
Prof. Porkolab via Chris Sherratt
Publication Year :
2012
Publisher :
IOP Publishing, 2012.

Abstract

Transport in ohmically heated plasmas in Alcator C-Mod was studied in both the linear (LOC) and saturated (SOC) ohmic L-mode confinement regimes and the importance of turbulent transport in the region r/a = 0.5–0.8 was established. After an extensive analysis with TGLF and GYRO, it is found that using an effective impurity ion species with Z[subscript i] = 8, and moderately high Z[subscript eff] (2.0–5.6), in the LOC regime electron transport becomes dominant due to TEM turbulence. The key ingredient in the present results is the observation that dilution of the main ion species (deuterium) by impurity species of moderate charge state reduces dominant ITG turbulence, in contrast to the SOC regime with little, if any dilution. The turbulent spectrum measured with the phase contrast imaging (PCI) diagnostic is in qualitative agreement with predictions of a synthetic PCI diagnostic adopted to Global GYRO. The toroidal rotation in the low-density LOC regime is in the co-current direction but as the density is raised in the SOC regime the rotation reverses to the counter current drive direction. The impurity content of the plasma was measured recently and an effective Z[subscript i] of 9 was deduced.<br />United States. Dept. of Energy (Grant DE-FC02-99ER54512-CMOD)

Details

ISSN :
13616587 and 07413335
Volume :
54
Database :
OpenAIRE
Journal :
Plasma Physics and Controlled Fusion
Accession number :
edsair.doi.dedup.....bffa3d3075c32c3c95a58ad1cdb78819
Full Text :
https://doi.org/10.1088/0741-3335/54/12/124029