Optimisation of confinement in a fusion reactor using a nonlinear turbulence model

The confinement of heat in the core of a magnetic fusion reactor is optimised using a multidimensional optimisation algorithm. For the first time in such a study, the loss of heat due to turbulence is modelled at every stage using first-principles nonlinear simulations which accurately capture the t...

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Main Authors: Highcock, E, Mandell, N, Barnes, M, Dorland, W
Format: Journal article
Language:English
Published: Cambridge University Press 2018
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author Highcock, E
Mandell, N
Barnes, M
Dorland, W
author_facet Highcock, E
Mandell, N
Barnes, M
Dorland, W
author_sort Highcock, E
collection OXFORD
description The confinement of heat in the core of a magnetic fusion reactor is optimised using a multidimensional optimisation algorithm. For the first time in such a study, the loss of heat due to turbulence is modelled at every stage using first-principles nonlinear simulations which accurately capture the turbulent cascade and large-scale zonal flows. The simulations utilise a novel approach, with gyrofluid treatment of the small-scale drift waves and gyrokinetic treatment of the large-scale zonal flows. A simple near-circular equilibrium with standard parameters is chosen as the initial condition. The figure of merit, fusion power per unit volume, is calculated, and then two control parameters, the elongation and triangularity of the outer flux surface, are varied, with the algorithm seeking to optimise the chosen figure of merit. A twofold increase in the plasma power per unit volume is achieved by moving to higher elongation and strongly negative triangularity.
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spelling oxford-uuid:d64b83fc-d595-4d8c-93f4-4e8a202a94552022-03-27T08:32:26ZOptimisation of confinement in a fusion reactor using a nonlinear turbulence modelJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:d64b83fc-d595-4d8c-93f4-4e8a202a9455EnglishSymplectic Elements at OxfordCambridge University Press2018Highcock, EMandell, NBarnes, MDorland, WThe confinement of heat in the core of a magnetic fusion reactor is optimised using a multidimensional optimisation algorithm. For the first time in such a study, the loss of heat due to turbulence is modelled at every stage using first-principles nonlinear simulations which accurately capture the turbulent cascade and large-scale zonal flows. The simulations utilise a novel approach, with gyrofluid treatment of the small-scale drift waves and gyrokinetic treatment of the large-scale zonal flows. A simple near-circular equilibrium with standard parameters is chosen as the initial condition. The figure of merit, fusion power per unit volume, is calculated, and then two control parameters, the elongation and triangularity of the outer flux surface, are varied, with the algorithm seeking to optimise the chosen figure of merit. A twofold increase in the plasma power per unit volume is achieved by moving to higher elongation and strongly negative triangularity.
spellingShingle Highcock, E
Mandell, N
Barnes, M
Dorland, W
Optimisation of confinement in a fusion reactor using a nonlinear turbulence model
title Optimisation of confinement in a fusion reactor using a nonlinear turbulence model
title_full Optimisation of confinement in a fusion reactor using a nonlinear turbulence model
title_fullStr Optimisation of confinement in a fusion reactor using a nonlinear turbulence model
title_full_unstemmed Optimisation of confinement in a fusion reactor using a nonlinear turbulence model
title_short Optimisation of confinement in a fusion reactor using a nonlinear turbulence model
title_sort optimisation of confinement in a fusion reactor using a nonlinear turbulence model
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AT mandelln optimisationofconfinementinafusionreactorusinganonlinearturbulencemodel
AT barnesm optimisationofconfinementinafusionreactorusinganonlinearturbulencemodel
AT dorlandw optimisationofconfinementinafusionreactorusinganonlinearturbulencemodel