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research article

Experimental verification of X-point potential well formation in unfavorable magnetic field direction

Wensing, M.  
•
de Oliveira, H.
•
Loizu, J.  
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November 6, 2020
Nuclear Materials and Energy

Recent TCV experiments confirm the predicted formation of an electric potential well, below the magnetic X-point, in configurations with unfavorable $B_t$ field direction (ion $\nabla B$ drift away from the divertor), that substantially reshapes the typical divertor $E\times B$ flow pattern. The local charge balance $\nabla \cdot j=0$ in the private flux region (PFR) of diverted tokamak plasmas has been previously argued to be dominated by parallel and diamagnetic currents. This hypothesis is tested herein in TCV discharges by comparison with SOLPS-ITER simulations, fully accounting for drifts and currents. Simulated parallel currents correctly capture measured current profile characteristics for both targets and both -directions, whereas those omitting drifts fail. It is shown that the resulting parallel currents dictate the electric fields in the PFR for low temperature (detached divertor) conditions resulting in locally negative electric plasma potential in configurations with unfavorable H-mode access.

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Type
research article
DOI
10.1016/j.nme.2020.100839
Author(s)
Wensing, M.  
de Oliveira, H.
Loizu, J.  
Colandrea, C.  
Février, O.
Gorno, S.
Reimerdes, H.  
Theiler, C.  
Smolders, A.
Duval, B.P.  
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Corporate authors
TCV Team
•
EUROfusion MST1 Team
Date Issued

2020-11-06

Publisher

Elsevier

Published in
Nuclear Materials and Energy
Volume

25

Start page

1

End page

4, 100839

Subjects

Divertor

•

Tokamak

•

Electric potential

•

Drift effects

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SPC  
Available on Infoscience
November 16, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/173403
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