MIT Libraries logoDSpace@MIT

MIT
View Item 
  • DSpace@MIT Home
  • MIT Open Access Articles
  • MIT Open Access Articles
  • View Item
  • DSpace@MIT Home
  • MIT Open Access Articles
  • MIT Open Access Articles
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.

Non-local heat transport in Alcator C-Mod ohmic L-mode plasmas

Author(s)
Rice, John E.; Sun, H. J.; Reinke, Matthew Logan; Howard, Nathaniel Thomas; Mikkelson, D.; Hubbard, Amanda E.; Chilenski, Mark Alan; Walk Jr, John R.; Ennever, Paul Chappell; Porkolab, Miklos; White, Anne E.; Sung, Choongki; Delgado-Aparicio, Luis; Baek, Seung Gyou; Rowan, William L.; Brookman, M. W.; Greenwald, Martin J.; Granetz, Robert S.; Wolfe, Stephen M.; Marmar, Earl S.; Alcator C-Mod Team; Gao, Chi, Ph. D. Massachusetts Institute of Technology; Hughes, Jerry W.; ... Show more Show less
Thumbnail
DownloadWhite_Non-local heat.pdf (3.825Mb)
OPEN_ACCESS_POLICY

Open Access Policy

Creative Commons Attribution-Noncommercial-Share Alike

Terms of use
Creative Commons Attribution-Noncommercial-Share Alike http://creativecommons.org/licenses/by-nc-sa/4.0/
Metadata
Show full item record
Abstract
Non-local heat transport experiments were performed in Alcator C-Mod ohmic L-mode plasmas by inducing edge cooling with laser blow-off impurity (CaF2) injection. The non-local effect, a cooling of the edge electron temperature with a rapid rise of the central electron temperature, which contradicts the assumption of 'local' transport, was observed in low collisionality linear ohmic confinement (LOC) regime plasmas. Transport analysis shows this phenomenon can be explained either by a fast drop of the core diffusivity, or the sudden appearance of a heat pinch. In high collisionality saturated ohmic confinement (SOC) regime plasmas, the thermal transport becomes 'local': the central electron temperature drops on the energy confinement time scale in response to the edge cooling. Measurements from a high resolution imaging x-ray spectrometer show that the ion temperature has a similar behaviour as the electron temperature in response to edge cooling, and that the transition density of non-locality correlates with the rotation reversal critical density. This connection may indicate the possible connection between thermal and momentum transport, which is also linked to a transition in turbulence dominance between trapped electron modes (TEMs) and ion temperature gradient (ITG) modes. Experiments with repetitive cold pulses in one discharge were also performed to allow Fourier analysis and to provide details of cold front propagation. These modulation experiments showed in LOC plasmas that the electron thermal transport is not purely diffusive, while in SOC the electron thermal transport is more diffusive like. Linear gyrokinetic simulations suggest the turbulence outside r/a = 0.75 changes from TEM dominance in LOC plasmas to ITG mode dominance in SOC plasmas.
Date issued
2014-08
URI
http://hdl.handle.net/1721.1/95895
Department
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
Journal
Nuclear Fusion
Publisher
Institute of Physics/International Atomic Energy Agency
Citation
Gao, C., J.E. Rice, H.J. Sun, M.L. Reinke, N.T. Howard, D. Mikkelson, A.E. Hubbard, et al. “Non-Local Heat Transport in Alcator C-Mod Ohmic L-Mode Plasmas.” Nuclear Fusion 54, no. 8 (June 26, 2014): 083025.
Version: Original manuscript
ISSN
0029-5515
1741-4326

Collections
  • MIT Open Access Articles

Browse

All of DSpaceCommunities & CollectionsBy Issue DateAuthorsTitlesSubjectsThis CollectionBy Issue DateAuthorsTitlesSubjects

My Account

Login

Statistics

OA StatisticsStatistics by CountryStatistics by Department
MIT Libraries
PrivacyPermissionsAccessibilityContact us
MIT
Content created by the MIT Libraries, CC BY-NC unless otherwise noted. Notify us about copyright concerns.