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  4. Verification and validation of linear gyrokinetic and kinetic-MHD simulations for internal kink instability in DIII-D tokamak
 
research article

Verification and validation of linear gyrokinetic and kinetic-MHD simulations for internal kink instability in DIII-D tokamak

Brochard, G.
•
Bao, J.
•
Liu, C.
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March 1, 2022
Nuclear Fusion

Verification and linear validation of the internal kink instability in tokamak have been performed for both gyrokinetic (GTC) and kinetic-MHD codes (GAM-solver, M3D-C1-K, NOVA, XTOR-K). Using realistic magnetic geometry and plasma profiles from the same equilibrium reconstruction of the DIII-D shot #141216, these codes exhibit excellent agreement for the growth rate and mode structure of the internal kink mode when all kinetic effects are suppressed. The simulated radial mode structures, obtained from linear simulations, are in reasonable agreement with the normalised electron cyclotron emission measurement after adjusting, within the experimental uncertainty, the safety factor q = 1 flux-surface location in the equilibrium reconstruction. Compressible magnetic perturbations strongly destabilize the kink, while poloidal variations of the equilibrium current density reduce the growth rate of the kink. Furthermore, kinetic effects of thermal ions are found to decrease the kink growth rate in kinetic-MHD simulations, but increase the kink growth rate in gyrokinetic simulations, due to the additional drive of the ion temperature gradient and parallel electric field. Kinetic thermal electrons are found to have negligible effects on the internal kink instability.

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Type
research article
DOI
10.1088/1741-4326/ac48a6
Web of Science ID

WOS:000749510100001

Author(s)
Brochard, G.
Bao, J.
Liu, C.
Gorelenkov, N.
Choi, G.
Dong, G.
Liu, P.
Mc Clenaghan, J.
Nicolau, J. H.
Wang, F.
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Date Issued

2022-03-01

Publisher

IOP Publishing Ltd

Published in
Nuclear Fusion
Volume

62

Issue

3

Article Number

036021

Subjects

Physics, Fluids & Plasmas

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Physics

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gyrokinetic

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kinetic-mhd

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tokamak

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diii-d

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internal kink

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validation and verification

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stability

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plasma

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modes

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magnetohydrodynamics

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code

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SPC  
Available on Infoscience
February 14, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/185440
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