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Recent progress of magnetic reconnection research in the MAST spherical tokamak
Author(s) -
Hiroshi Tanabe,
Taro Yamada,
T. Watanabe,
Keii Gi,
Michiaki Inomoto,
Ryota Imazawa,
M. Gryaznevich,
C. Michael,
B. Crowley,
N. J. Conway,
R. Scannell,
J. Harrison,
I. Fitzgerald,
A. Meakins,
N. Hawkes,
K. G. McClements,
T. O’Gorman,
C. Z. Cheng,
Yasushi Ono
Publication year - 2017
Publication title -
physics of plasmas
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.75
H-Index - 160
eISSN - 1089-7674
pISSN - 1070-664X
DOI - 10.1063/1.4977922
Subject(s) - physics , magnetic reconnection , spherical tokamak , electron temperature , atomic physics , electron , plasma , stagnation point , tokamak , mechanics , nuclear physics , heat transfer
In the last three years, magnetic reconnection research in the MAST spherical tokamak achieved major progress by the use of new 32 chord ion Doppler tomography and 130 channel YAG and 300 channel Ruby Thomson scattering diagnostics. In addition to the previously achieved high power plasma heating during merging, detailed full temperature profile measurements including the diffusion region have been achieved for the first time. 2D imaging measurements of ion and electron temperature profiles have revealed that magnetic reconnection mostly heats ions globally in the downstream region of outflow jet and electrons locally around the X-point. The toroidal field in MAST “over 0.3T” strongly inhibits cross-field thermal transport, and the characteristic peaked electron temperature profile around the X-point is sustained on a millisecond time scale. In contrast, ions are mostly heated in the downstream region of outflow acceleration and around the stagnation point formed by reconnected flux mostly by viscosity di...

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