Quantifying the role of higher order neoclassical corrections to gyrokinetics in tokamak plasmas
Resource type
Authors/contributors
- Dudkovskaia, A. V. (Author)
- Connor, J. W. (Author)
- Dickinson, D. (Author)
- Wilson, H. R. (Author)
Title
Quantifying the role of higher order neoclassical corrections to gyrokinetics in tokamak plasmas
Abstract
We implement the higher order gyrokinetic theory developed in Dudkovskaia et al (2023 Plasma Phys. Control. Fusion 65 045010), reduced to the limit of , where B 0 is the tokamak equilibrium magnetic field, and B ϑ is its poloidal component, in the local gyrokinetic turbulence code, GS2. The principal motivation for this extension is to quantify the importance of neoclassical flows in electromagnetic gyrokinetics, with a particular interest in sharp pressure gradient regions where the bootstrap current becomes dominant. To incorporate neoclassical equilibrium physics, GS2 is coupled to NEO, a multi-species drift kinetic solver. It is found that the regions where microinstabilities are most likely to be influenced by neoclassical equilibrium effects are in a pedestal plasma and a spherical tokamak core plasma.
Publication
Plasma Physics and Controlled Fusion
Volume
65
Issue
5
Pages
054006
Date
2023-04
Journal Abbr
Plasma Phys. Control. Fusion
Language
en
ISSN
0741-3335
Accessed
8/29/24, 10:41 AM
Library Catalog
Institute of Physics
Extra
1 citations (Crossref/DOI) [2024-10-03]
1 citations (Crossref/DOI) [2024-10-02]
Publisher: IOP Publishing
Citation
Dudkovskaia, A. V., Connor, J. W., Dickinson, D., & Wilson, H. R. (2023). Quantifying the role of higher order neoclassical corrections to gyrokinetics in tokamak plasmas. Plasma Physics and Controlled Fusion, 65(5), 054006. https://doi.org/10.1088/1361-6587/acc688
Outputs
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