September 2016

Journal

Alcator C-Mod: research in support of ITER and steps beyond

By:
Marmar, E. S.; Baek, S-G.; Barnard, H.; Bonoli, P.; Brunner, D.; Candy, J.; Canik, John M; Churchill, R.M.; Cziegler, I.; Dekow, G.; Delgado-Aparicio, L.; Diallo, A.; Edlund, E.; Ennever, P.; Faust, I.; Fiore, C.; Gao, C.; Golfinopoulos, T.; Greenwald, M.; Hartwig, Z.S.; Holland, Chris; Hubbard, A.; Hughes, J. W.; Hutchinson, I.H.; Irby, J.; LaBombard, Brian; Lin, Y. J.; Lipschultz, B.; Loarte, A.; Mumgaard, R.; Parker, R. R.; Porkolab, M.; Reinke, M.; Rice, J.; Scott, S.; Shiraiwa, S.; Snyder, P.; Sorbom, B.; Terry, D.; Terry, J.; Theiler, C.; Vieira, R.; Walk, J.; Wallace, G. M.; White, A.; Whyte, D.; Wolfe, S. M.; Wright, G. M.; Wright, J.; Wukitch, S.; Xu, P.
Journal Name:
Nuclear Fusion
Page Number:
104020
Volume:
55
Issue Number:
10
Publication Date:
September 2016
View DOI Listing:
https://doi.org/10.1088/0029-5515/55/10/104020

Abstract

This paper presents an overview of recent highlights from research on Alcator C-Mod. Significant progress has been made across all research areas over the last two years, with particular emphasis on divertor physics and power handling, plasmamaterial interaction studies, edge localized mode-suppressed pedestal dynamics, core transport and turbulence, and RF heating and current drive utilizing ion cyclotron and lower hybrid tools. Specific results of particular relevance to ITER include: inner wall SOL transport studies that have led, together with results from other experiments, to the change of the detailed shape of the inner wall in ITER; runaway electron studies showing that the critical electric field required for runaway generation is much higher than predicted from collisional theory; core tungsten impurity transport studies reveal that tungsten accumulation is naturally avoided in typical C-Mod conditions.