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20 years of research on the Alcator C-Mod tokamaka)

Authors :
Istvan Cziegler
R. M. McDermott
John Goetz
R.F. Vieira
Robert Granetz
Amanda Hubbard
S. Horne
Ian H. Hutchinson
Nathan Howard
C. K. Li
Robert Mumgaard
E. Edlund
Arturo Dominguez
A. Tronchin-James
Paul Ennever
Theodore Golfinopoulos
C. Gao
John Rice
J. H. Irby
S. Pitcher
Thomas W. Fredian
James Myra
R.R. Parker
N. Smick
Stewart Zweben
D. R. Mikkelsen
Bruce Lipschultz
Olaf Grulke
W. Bergerson
D. Terry
Aaron Bader
D.G. Whyte
V.A. Izzo
Yuichi Takase
Z.S. Hartwig
Brian LaBombard
Harold Barnard
James R. Wilson
W. Burke
S.J. Wukitch
Vincent Tang
G. McCracken
D.R. Ernst
J. M. Sierchio
G.M. Olynyk
Igor Bespamyatnov
W. Beck
C.L. Fiore
Christian Theiler
Jeff Candy
Joshua Stillerman
Dan Brunner
S.M. Wolfe
P.T. Bonoli
Jerry Hughes
A. Loarte
Andrea Schmidt
Choongki Sung
B. P. Duval
John Wright
Odd Erik Garcia
Gregory Wallace
Mohammad Reza Bakhtiari
D. L. Brower
R. Ochoukov
Ian Faust
S. Shiraiwa
A. Mazurenko
Earl Marmar
W. L. Rowan
Anne White
Ahmed Diallo
D. A. Mossessian
Miklos Porkolab
J.L. Terry
C.E. Kessel
Naoto Tsujii
P. B. Snyder
G.M. Wright
J. A. Snipes
Seung Gyou Baek
E. Nelson-Melby
Martin Greenwald
Yuri Podpaly
Brandon Sorbom
Yu-Ming Lin
Cornwall Lau
Matthew Reinke
Orso Meneghini
J.R. Walk
S. D. Scott
M. Churchill
Massachusetts Institute of Technology. Department of Nuclear Science and Engineering
Massachusetts Institute of Technology. Department of Physics
Massachusetts Institute of Technology. Plasma Science and Fusion Center
Greenwald, Martin J.
Baek, Seung Gyou
Barnard, Harold
Beck, William K.
Bonoli, Paul T.
Brunner, Daniel Frederic
Burke, William M.
Ennever, Paul Chappell
Ernst, Darin R.
Faust, Ian Charles
Fiore, Catherine
Fredian, Thomas W.
Gao, Chi
Golfinopoulos, Theodore
Granetz, Robert S.
Hartwig, Zachary
Hubbard, Amanda E.
Hughes, Jerry W., Jr.
Hutchinson, Ian H.
Irby, James Henderson
Labombard, Brian
Li, Chikang
Lin, Yijun
Marmar, Earl S.
Mumgaard, Robert Thomas
Parker, Ronald R.
Porkolab, Miklos
Rice, John E.
Shiraiwa, Shunichi
Sierchio, Jennifer M.
Sorbom, Brandon Nils
Stillerman, Joshua A.
Sung, Choongki
Terry, David Rankin
Terry, James L.
Vieira, Rui F.
Walk, John R., Jr.
Wallace, Gregory Marriner
White, Anne E.
Whyte, Dennis G.
Wolfe, Stephen M.
Wright, Graham
Wright, John C.
Wukitch, Stephen James
Source :
MIT web domain, Physics of Plasmas
Publication Year :
2014
Publisher :
AIP Publishing, 2014.

Abstract

The object of this review is to summarize the achievements of research on the Alcator C-Mod tokamak [Hutchinson et al., Phys. Plasmas 1, 1511 (1994) and Marmar, Fusion Sci. Technol. 51, 261 (2007)] and to place that research in the context of the quest for practical fusion energy. C-Mod is a compact, high-field tokamak, whose unique design and operating parameters have produced a wealth of new and important results since it began operation in 1993, contributing data that extends tests of critical physical models into new parameter ranges and into new regimes. Using only high-power radio frequency (RF) waves for heating and current drive with innovative launching structures, C-Mod operates routinely at reactor level power densities and achieves plasma pressures higher than any other toroidal confinement device. C-Mod spearheaded the development of the vertical-target divertor and has always operated with high-Z metal plasma facing componentsā€”approaches subsequently adopted for ITER. C-Mod has made ground-breaking discoveries in divertor physics and plasma-material interactions at reactor-like power and particle fluxes and elucidated the critical role of cross-field transport in divertor operation, edge flows and the tokamak density limit. C-Mod developed the I-mode and the Enhanced DĪ± H-mode regimes, which have high performance without large edge localized modes and with pedestal transport self-regulated by short-wavelength electromagnetic waves. C-Mod has carried out pioneering studies of intrinsic rotation and demonstrated that self-generated flow shear can be strong enough in some cases to significantly modify transport. C-Mod made the first quantitative link between the pedestal temperature and the H-mode's performance, showing that the observed self-similar temperature profiles were consistent with critical-gradient-length theories and followed up with quantitative tests of nonlinear gyrokinetic models. RF research highlights include direct experimental observation of ion cyclotron range of frequency (ICRF) mode-conversion, ICRF flow drive, demonstration of lower-hybrid current drive at ITER-like densities and fields and, using a set of novel diagnostics, extensive validation of advanced RF codes. Disruption studies on C-Mod provided the first observation of non-axisymmetric halo currents and non-axisymmetric radiation in mitigated disruptions. A summary of important achievements and discoveries are included.<br />United States. Dept. of Energy (Cooperative Agreement DE-FC02-99ER54512)<br />United States. Dept. of Energy (Cooperative Agreement DE-FG03-94ER-54241)<br />United States. Dept. of Energy (Cooperative Agreement DE-AC02-78ET- 51013)<br />United States. Dept. of Energy (Cooperative Agreement DE-AC02-09CH11466)<br />United States. Dept. of Energy (Cooperative Agreement DE-FG02-95ER54309)<br />United States. Dept. of Energy (Cooperative Agreement DE-AC02-05CH11231)<br />United States. Dept. of Energy (Cooperative Agreement DE-AC52-07NA27344)<br />United States. Dept. of Energy (Cooperative Agreement DE-FG02- 97ER54392)<br />United States. Dept. of Energy (Cooperative Agreement DE-SC00-02060)

Details

ISSN :
10897674 and 1070664X
Volume :
21
Database :
OpenAIRE
Journal :
Physics of Plasmas
Accession number :
edsair.doi.dedup.....9e5e1e7a28e9571219b1d1627e913057
Full Text :
https://doi.org/10.1063/1.4901920