First principles simulation of early stage plasma initiation process in ITER-scale tokamak

A first principles 6D kinetic model is developed to study the earliest times of unassisted plasma breakdown in an International Thermonuclear Experimental Reactor (ITER)-scale tokamak. This is then used for a comparative study of the predicted ionisation rate and the electron parallel velocity betwe...

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Published in:Nuclear Fusion
Main Authors: Junxian Chew, Paul Gibbon, Dirk Brömmel, Tom Wauters, Yuri Gribov, Peter de Vries
Format: Article
Language:English
Published: IOP Publishing 2023-01-01
Subjects:
Online Access:https://doi.org/10.1088/1741-4326/ad0796
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author Junxian Chew
Paul Gibbon
Dirk Brömmel
Tom Wauters
Yuri Gribov
Peter de Vries
author_facet Junxian Chew
Paul Gibbon
Dirk Brömmel
Tom Wauters
Yuri Gribov
Peter de Vries
author_sort Junxian Chew
collection DOAJ
container_title Nuclear Fusion
description A first principles 6D kinetic model is developed to study the earliest times of unassisted plasma breakdown in an International Thermonuclear Experimental Reactor (ITER)-scale tokamak. This is then used for a comparative study of the predicted ionisation rate and the electron parallel velocity between the standard model for tokamak breakdown, assuming a zero-D (OD) Townsend avalanche, and the new kinetic model. The detailed model allows us to study the influence of the magnetic field configurations on the formation of plasma while explicitly resolving the electron trajectories. We introduce a ‘back-traced’ connection length L _bt as a useful predictive tool for the spatial distribution of charged particles during the breakdown process. It is also found that the ionisation rate and the mean electron parallel velocity from the kinetic model generally exceed the 0D model predictions, demonstrating a growth in the total electron population from 10 ^3 to the order of 10 ^8 in approximately 1 ms. This implies that the 0D model can still serve as a conservative prediction for the first plasma campaign on ITER.
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spelling doaj-art-e9ff43255ba144efbe74be4aa583dd792025-08-19T23:04:54ZengIOP PublishingNuclear Fusion0029-55152023-01-0164101600310.1088/1741-4326/ad0796First principles simulation of early stage plasma initiation process in ITER-scale tokamakJunxian Chew0https://orcid.org/0000-0003-2562-4218Paul Gibbon1https://orcid.org/0000-0002-5540-9626Dirk Brömmel2Tom Wauters3https://orcid.org/0000-0002-2941-7817Yuri Gribov4Peter de Vries5https://orcid.org/0000-0001-7304-5486Jülich Supercomputing Centre, Institute for Advanced Simulation , Forschungszentrum Jülich GmbH, 52425 Jülich, GermanyJülich Supercomputing Centre, Institute for Advanced Simulation , Forschungszentrum Jülich GmbH, 52425 Jülich, Germany; Centre for Mathematical Plasma Astrophysics, Katholieke Universiteit Leuven , 3000 Leuven, Belgium; Focused Energy GmbH , Im Tiefen See 45, 64293 Darmstadt, GermanyJülich Supercomputing Centre, Institute for Advanced Simulation , Forschungszentrum Jülich GmbH, 52425 Jülich, GermanyITER Organization , Route de Vinon sur Verdon, 13067 St. Paul Lez Durance, FranceITER Organization , Route de Vinon sur Verdon, 13067 St. Paul Lez Durance, FranceITER Organization , Route de Vinon sur Verdon, 13067 St. Paul Lez Durance, FranceA first principles 6D kinetic model is developed to study the earliest times of unassisted plasma breakdown in an International Thermonuclear Experimental Reactor (ITER)-scale tokamak. This is then used for a comparative study of the predicted ionisation rate and the electron parallel velocity between the standard model for tokamak breakdown, assuming a zero-D (OD) Townsend avalanche, and the new kinetic model. The detailed model allows us to study the influence of the magnetic field configurations on the formation of plasma while explicitly resolving the electron trajectories. We introduce a ‘back-traced’ connection length L _bt as a useful predictive tool for the spatial distribution of charged particles during the breakdown process. It is also found that the ionisation rate and the mean electron parallel velocity from the kinetic model generally exceed the 0D model predictions, demonstrating a growth in the total electron population from 10 ^3 to the order of 10 ^8 in approximately 1 ms. This implies that the 0D model can still serve as a conservative prediction for the first plasma campaign on ITER.https://doi.org/10.1088/1741-4326/ad0796Monte Carlo simulationplasma tree codetokamak ohmic breakdownTownsend avalanche
spellingShingle Junxian Chew
Paul Gibbon
Dirk Brömmel
Tom Wauters
Yuri Gribov
Peter de Vries
First principles simulation of early stage plasma initiation process in ITER-scale tokamak
Monte Carlo simulation
plasma tree code
tokamak ohmic breakdown
Townsend avalanche
title First principles simulation of early stage plasma initiation process in ITER-scale tokamak
title_full First principles simulation of early stage plasma initiation process in ITER-scale tokamak
title_fullStr First principles simulation of early stage plasma initiation process in ITER-scale tokamak
title_full_unstemmed First principles simulation of early stage plasma initiation process in ITER-scale tokamak
title_short First principles simulation of early stage plasma initiation process in ITER-scale tokamak
title_sort first principles simulation of early stage plasma initiation process in iter scale tokamak
topic Monte Carlo simulation
plasma tree code
tokamak ohmic breakdown
Townsend avalanche
url https://doi.org/10.1088/1741-4326/ad0796
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