Global gyrokinetic turbulence simulations of MAST plasmas

Electrostatic gyrokinetic analyses are presented for an L-mode discharge with an internal transport barrier, from the spherical tokamak, MAST. Local and global microstability analysis finds similar linear growth rates for ion temperature gradient (ITG) driven modes. When the electron response is ass...

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Main Authors: Saarelma, S, Hill, P, Bottino, A, Colyer, G, Field, A, McMillan, B, Peeters, A, Roach, C, Team, MAST
Format: Journal article
Language:English
Published: 2012
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author Saarelma, S
Hill, P
Bottino, A
Colyer, G
Field, A
McMillan, B
Peeters, A
Roach, C
Team, MAST
author_facet Saarelma, S
Hill, P
Bottino, A
Colyer, G
Field, A
McMillan, B
Peeters, A
Roach, C
Team, MAST
author_sort Saarelma, S
collection OXFORD
description Electrostatic gyrokinetic analyses are presented for an L-mode discharge with an internal transport barrier, from the spherical tokamak, MAST. Local and global microstability analysis finds similar linear growth rates for ion temperature gradient (ITG) driven modes. When the electron response is assumed to be adiabatic, growth rates are found to be lower than the experimental E×B flow shearing rate. Including kinetic electrons, without collisions, increases the ITG growth rates above the flow shearing rate, and these modes are found to be linearly unstable in the outer part of the plasma only. In global simulations the flow shear stabilization is found to be asymmetric with respect to the direction of the flow: there is a small destabilizing effect at low flow shear when the flow is in the co-direction. Global non-linear simulations with kinetic electrons and including the flow shear effects predict turbulent ion heat transport that is well above the neoclassical level in the region outside the internal transport barrier in this MAST plasma. In non-linear simulations we also find turbulence extending from the outer part of the plasma into the linearly stable core region. © 2012 IOP Publishing Ltd.
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spelling oxford-uuid:c3388095-ee30-460f-9ddc-e55fd923344d2022-03-27T06:14:56ZGlobal gyrokinetic turbulence simulations of MAST plasmasJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:c3388095-ee30-460f-9ddc-e55fd923344dEnglishSymplectic Elements at Oxford2012Saarelma, SHill, PBottino, AColyer, GField, AMcMillan, BPeeters, ARoach, CTeam, MASTElectrostatic gyrokinetic analyses are presented for an L-mode discharge with an internal transport barrier, from the spherical tokamak, MAST. Local and global microstability analysis finds similar linear growth rates for ion temperature gradient (ITG) driven modes. When the electron response is assumed to be adiabatic, growth rates are found to be lower than the experimental E×B flow shearing rate. Including kinetic electrons, without collisions, increases the ITG growth rates above the flow shearing rate, and these modes are found to be linearly unstable in the outer part of the plasma only. In global simulations the flow shear stabilization is found to be asymmetric with respect to the direction of the flow: there is a small destabilizing effect at low flow shear when the flow is in the co-direction. Global non-linear simulations with kinetic electrons and including the flow shear effects predict turbulent ion heat transport that is well above the neoclassical level in the region outside the internal transport barrier in this MAST plasma. In non-linear simulations we also find turbulence extending from the outer part of the plasma into the linearly stable core region. © 2012 IOP Publishing Ltd.
spellingShingle Saarelma, S
Hill, P
Bottino, A
Colyer, G
Field, A
McMillan, B
Peeters, A
Roach, C
Team, MAST
Global gyrokinetic turbulence simulations of MAST plasmas
title Global gyrokinetic turbulence simulations of MAST plasmas
title_full Global gyrokinetic turbulence simulations of MAST plasmas
title_fullStr Global gyrokinetic turbulence simulations of MAST plasmas
title_full_unstemmed Global gyrokinetic turbulence simulations of MAST plasmas
title_short Global gyrokinetic turbulence simulations of MAST plasmas
title_sort global gyrokinetic turbulence simulations of mast plasmas
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