kobra : A New Vlasov Code Intended for Plasma‐Wall Modeling

ABSTRACT In a fusion device plasma‐wall interactions on the sheath scale can be modeled as a collisionless problem. When modeling these regions particle‐in‐cell codes suffer from statistical error originating from undersampling the velocity space. On the other hand, Vlasov codes do not have this issue as they evolve the full distribution function. Here, we present a new finite‐volume Vlasov code, kobra , equipped with adaptive‐mesh refinement to reduce computational effort. Currently, the code solves the Vlasov‐Poisson equations. We validate our code in 1d1v and 1d2v using established benchmarks, that is, the two‐stream instability, Landau damping, the Dory‐Guest‐Harris instability, and also a classical electrostatic plasma sheath. We find that the code reproduces the theoretical properties of these problems well. More importantly, the adaptive grid provides a computational gain that is likely to scale to higher dimensional, plasma‐wall simulations.

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Publication Details

Journal
Contributions to Plasma Physics
Published
2026-09-17
DOI
https://doi.org/10.1002/ctpp.70175
Primary Topic
Magnetic confinement fusion research
Type
article
Field-Weighted Citation Impact
0.00

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article

kobra : A New Vlasov Code Intended for Plasma‐Wall Modeling

S. Van Loo, Sebastian Konewko, Nathan Maestracci
Contributions to Plasma Physics
Magnetic confinement fusion research
article

kobra : A New Vlasov Code Intended for Plasma‐Wall Modeling

S. Van Loo, Sebastian Konewko, Nathan Maestracci
article en

Abstract

ABSTRACT In a fusion device plasma‐wall interactions on the sheath scale can be modeled as a collisionless problem. When modeling these regions particle‐in‐cell codes suffer from statistical error originating from undersampling the velocity space. On the other hand, Vlasov codes do not have this issue as they evolve the full distribution function. Here, we present a new finite‐volume Vlasov code, kobra , equipped with adaptive‐mesh refinement to reduce computational effort. Currently, the code solves the Vlasov‐Poisson equations. We validate our code in 1d1v and 1d2v using established benchmarks, that is, the two‐stream instability, Landau damping, the Dory‐Guest‐Harris instability, and also a classical electrostatic plasma sheath. We find that the code reproduces the theoretical properties of these problems well. More importantly, the adaptive grid provides a computational gain that is likely to scale to higher dimensional, plasma‐wall simulations.

Contributions to Plasma Physics
HOGENT University of Applied Sciences and Arts (BE), Ghent University Hospital (BE), Ghent University (BE), Institut Jean Lamour (FR)
Erasmus+
Openalex Percentile: Top 12%
Magnetic confinement fusion research
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kobra : A New Vlasov Code Intended for Plasma‐Wall Modeling — S. Van Loo, Sebastian Konewko, et al. · Contributions to Plasma Physics (2026) | TGRS Research Map | TGRS