Physical Review Letters · 2000 · 621 citations · 22 references
Magnetic Confinement Fusion PhysicsEngineeringPhysicsTurbulent Flow Heat TransferPlasma SimulationApplied PhysicsTurbulenceCondensed Matter PhysicsApplied Plasma PhysicMagnetohydrodynamicsPlasma PhysicsMagnetic ConfinementElectron TemperatureElectron Temperature GradientFirst ToroidalMagnetic Confinement FusionPlasma TurbulenceElectron Physic
The study presents the first toroidal, gyrokinetic, electromagnetic simulations of small‑scale plasma turbulence. The simulations model turbulence driven by electron temperature gradients using toroidal gyrokinetic electromagnetic equations. The results demonstrate that ETG turbulence induces significant electrostatic thermal losses and long‑wavelength streamer transport in tokamaks, consistent with a linear‑secondary mode balance model.
The first toroidal, gyrokinetic, electromagnetic simulations of small scale plasma turbulence are presented. The turbulence considered is driven by gradients in the electron temperature. It is found that electron temperature gradient (ETG) turbulence can induce experimentally relevant thermal losses in magnetic confinement fusion devices. For typical tokamak parameters, the transport is essentially electrostatic in character. The simulation results are qualitatively consistent with a model that balances linear and secondary mode growth rates. Significant streamer-dominated transport at long wavelengths occurs because the secondary modes that produce saturation become weak in the ETG limit.
22
Electron temperature gradient driven turbulence
F. Jenko, W. Dorland, M. Kotschenreuther et al. · Physics of Plasmas · 2000 · 1.1K citations
Comparisons and physics basis of tokamak transport models and turbulence simulations
A. M. Dimits, G. Bateman, M Beer et al. · Physics of Plasmas · 2000 · 983 citations