Tokamak edge-SOL turbulence in H-mode conditions simulated with a global, electromagnetic, transcollisional drift-fluid model
arXiv:2403.10113 · doi:10.1088/1741-4326/ad7611
Abstract
The design of commercially feasible magnetic confinement fusion reactors strongly relies on the reduced turbulent transport in the plasma edge during operation in the high confinement mode (H-mode). We present first global turbulence simulations of the ASDEX Upgrade tokamak edge and scrape-off layer (SOL) in ITER baseline H-mode conditions. Reasonable agreement with the experiment is obtained for outboard mid-plane measurements of plasma density, electron and ion temperature, as well as the radial electric field. The radial heat transport is underpredicted by roughly 1/3. These results were obtained with the GRILLIX code implementing a transcollisional, electromagnetic, global drift-fluid plasma model, coupled to diffusive neutrals. The transcollisional extensions include neoclassical corrections for the ion viscosity, as well as either a Landau-fluid or free-streaming limited model for the parallel heat conduction. Electromagnetic fluctuations are found to play a critical role in H-mode conditions. We investigate the structure of the significant flow shear, finding both neoclassical components as well as zonal flows. But unlike in L-mode, geodesic acoustic modes are not observed. The turbulence mode structure is mostly that of drift-Alfvén waves. However, in the upper part of the pedestal, it is very weak and overshadowed by neoclassical transport. At the pedestal foot, on the other hand, we find instead the (electromagnetic) kinetic ballooning mode (KBM), most clearly just inside the separatrix. Our results pave the way towards predictive simulations of fusion reactors.
Accepted by Nuclear Fusion
References in corpus (9)
- Global turbulence simulations of the tokamak edge region with GRILLIX
- The GBS code for the self-consistent simulation of plasma turbulence and kinetic neutral dynamics in the tokamak boundary
- Validation of edge turbulence codes against the TCV-X21 diverted L-mode reference case
- Nonlinear polarisation and dissipative correspondence between low frequency fluid and gyrofluid equations
- Drift reduced Landau fluid model for magnetized plasma turbulence simulations in BOUT++ framework
- Equations and improved coefficients for paralleltransport in multicomponent collisional plasmas: method and application for tokamak modelling
- Magnetic flutter effect on validated edge turbulence simulations
- Impact of the improved parallel kinetic coefficients on the helium and neon transport in SOLPS-ITER for ITER
- Flux driven pedestal formation in tokamaks: turbulence simulations validated against the isotope effect
Cited by in corpus (5)
- Simulating X-point radiator turbulence
- Turbulent Nature of the Quasicontinuous Exhaust Regime for Fusion Plasmas
- Conservative formulation of the drift-reduced fluid plasma model
- The impact of plasma turbulence on atomic reaction rates in the detached ASDEX Upgrade divertor
- On the mechanism of Pedestal Relaxation Events -- Insights gained by turbulence simulations with GRILLIX