First-principles based plasma profile predictions for optimized stellarators
arXiv:2210.01667 · doi:10.1088/1741-4326/acc3af
Abstract
In the present Letter, first-of-its-kind computer simulations predicting plasma profiles for modern optimized stellarators -- while self-consistently retaining neoclassical transport, turbulent transport with 3D effects, and external physical sources -- are presented. These simulations exploit a newly developed coupling framework involving the global gyrokinetic turbulence code GENE-3D, the neoclassical transport code KNOSOS, and the 1D transport solver TANGO. This framework is used to analyze the recently observed degradation of energy confinement in electron-heated plasmas in the Wendelstein 7-X stellarator, where the central ion temperature was "clamped" to keV regardless of the external heating power. By performing first-principles based simulations, we provide key evidence to understand this effect, namely the inefficient thermal coupling between electrons and ions in a turbulence-dominated regime, which is exacerbated by the large ratios, and show that a more efficient ion heat source, such as direct ion heating, will increase the on-axis ion temperature. This work paves the way towards the use of high-fidelity models for the development of the next generation of stellarators, in which neoclassical and turbulent transport are optimized simultaneously.
References in corpus (7)
- Magnetic fields with precise quasisymmetry for plasma confinement
- An experimental characterization of core turbulence regimes in Wendelstein 7-X
- Energetic particle transport in optimized stellarators
- Global gyrokinetic simulations of ASDEX Upgrade up to the transport time-scale with GENE-Tango
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Cited by in corpus (4)
- Robust stellarator optimization via flat mirror magnetic fields
- MONKES: a fast neoclassical code for the evaluation of monoenergetic transport coefficients
- Direct optimization of neoclassical ion transport in stellarator reactors
- Zonal flow suppression of turbulent transport in the optimized stellarators W7-X and QSTK