A spatially hybrid fluid-kinetic neutral model for SOLPS-ITER plasma edge simulations

Plasma edge transport simulations typically rely on Monte-Carlo simulations for the kinetic neutral transport. However, for detached operating conditions the dominance of charge-exchange reactions between plasma and neutrals leads to excessive computational costs of these Monte-Carlo simulations. Si...

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Main Authors: Maarten Blommaert, Niels Horsten, Petra Börner, Wouter Dekeyser
Format: Article
Language:English
Published: Elsevier 2019-05-01
Series:Nuclear Materials and Energy
Online Access:http://www.sciencedirect.com/science/article/pii/S235217911830228X
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spelling doaj-f684052419c74cc38e524ec6f05179d12020-11-24T21:43:38ZengElsevierNuclear Materials and Energy2352-17912019-05-01192833A spatially hybrid fluid-kinetic neutral model for SOLPS-ITER plasma edge simulationsMaarten Blommaert0Niels Horsten1Petra Börner2Wouter Dekeyser3Corresponding author.; KU Leuven, Department of Mechanical Engineering, Leuven, 3001, BelgiumKU Leuven, Department of Mechanical Engineering, Leuven, 3001, BelgiumInstitute of Energy and Climate Research (IEK-4), FZ Jülich GmbH, Jülich, D-52425, GermanyKU Leuven, Department of Mechanical Engineering, Leuven, 3001, BelgiumPlasma edge transport simulations typically rely on Monte-Carlo simulations for the kinetic neutral transport. However, for detached operating conditions the dominance of charge-exchange reactions between plasma and neutrals leads to excessive computational costs of these Monte-Carlo simulations. Since the fluid assumption becomes valid in these highly-collisional conditions, the use of a fluid neutral model is interesting to reduce computational costs. In this paper, we show within the SOLPS-ITER code suite that while our recently developed fluid neutral model is able to accurately represent the neutral transport in the divertor, it is unable to capture the kinetic effects near the outer wall. Due to this model flaw, discrepancies in plasma state arise between the fluid plasma-neutral model and a simulation with kinetic neutrals after converging the model equations. As a solution, we present a spatially hybrid neutral model that captures these kinetic effects near the wall, while benefiting from the fluid approach in the divertor region. Moreover, by using the kinetic code in the region outside the plasma grid, the method is able to accurately account for neutral transport through the voids surrounding the plasma and into pumps. We show on a case with a simplified ‘slab’ geometry that the results of the proposed hybrid model compare excellently to those of the kinetic solution. Keywords: Plasma edge simulation, Hybrid fluid-kinetic neutral modelhttp://www.sciencedirect.com/science/article/pii/S235217911830228X
collection DOAJ
language English
format Article
sources DOAJ
author Maarten Blommaert
Niels Horsten
Petra Börner
Wouter Dekeyser
spellingShingle Maarten Blommaert
Niels Horsten
Petra Börner
Wouter Dekeyser
A spatially hybrid fluid-kinetic neutral model for SOLPS-ITER plasma edge simulations
Nuclear Materials and Energy
author_facet Maarten Blommaert
Niels Horsten
Petra Börner
Wouter Dekeyser
author_sort Maarten Blommaert
title A spatially hybrid fluid-kinetic neutral model for SOLPS-ITER plasma edge simulations
title_short A spatially hybrid fluid-kinetic neutral model for SOLPS-ITER plasma edge simulations
title_full A spatially hybrid fluid-kinetic neutral model for SOLPS-ITER plasma edge simulations
title_fullStr A spatially hybrid fluid-kinetic neutral model for SOLPS-ITER plasma edge simulations
title_full_unstemmed A spatially hybrid fluid-kinetic neutral model for SOLPS-ITER plasma edge simulations
title_sort spatially hybrid fluid-kinetic neutral model for solps-iter plasma edge simulations
publisher Elsevier
series Nuclear Materials and Energy
issn 2352-1791
publishDate 2019-05-01
description Plasma edge transport simulations typically rely on Monte-Carlo simulations for the kinetic neutral transport. However, for detached operating conditions the dominance of charge-exchange reactions between plasma and neutrals leads to excessive computational costs of these Monte-Carlo simulations. Since the fluid assumption becomes valid in these highly-collisional conditions, the use of a fluid neutral model is interesting to reduce computational costs. In this paper, we show within the SOLPS-ITER code suite that while our recently developed fluid neutral model is able to accurately represent the neutral transport in the divertor, it is unable to capture the kinetic effects near the outer wall. Due to this model flaw, discrepancies in plasma state arise between the fluid plasma-neutral model and a simulation with kinetic neutrals after converging the model equations. As a solution, we present a spatially hybrid neutral model that captures these kinetic effects near the wall, while benefiting from the fluid approach in the divertor region. Moreover, by using the kinetic code in the region outside the plasma grid, the method is able to accurately account for neutral transport through the voids surrounding the plasma and into pumps. We show on a case with a simplified ‘slab’ geometry that the results of the proposed hybrid model compare excellently to those of the kinetic solution. Keywords: Plasma edge simulation, Hybrid fluid-kinetic neutral model
url http://www.sciencedirect.com/science/article/pii/S235217911830228X
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