Electromagnetic stabilization of tokamak microturbulence in a high- regime
arXiv:1409.1963 · doi:10.1088/0741-3335/57/1/014032
Abstract
The impact of electromagnetic stabilization and flow shear stabilization on ITG turbulence is investigated. Analysis of a low- JET L-mode discharge illustrates the relation between ITG stabilization, and proximity to the electromagnetic instability threshold. This threshold is reduced by suprathermal pressure gradients, highlighting the effectiveness of fast ions in ITG stabilization. Extensive linear and nonlinear gyrokinetic simulations are then carried out for the high- JET hybrid discharge 75225, at two separate locations at inner and outer radii. It is found that at the inner radius, nonlinear electromagnetic stabilization is dominant, and is critical for achieving simulated heat fluxes in agreement with the experiment. The enhancement of this effect by suprathermal pressure also remains significant. It is also found that flow shear stabilization is not effective at the inner radii. However, at outer radii the situation is reversed. Electromagnetic stabilization is negligible while the flow shear stabilization is significant. These results constitute the high- generalization of comparable observations found at low- at JET. This is encouraging for the extrapolation of electromagnetic ITG stabilization to future devices. An estimation of the impact of this effect on the ITER hybrid scenario leads to a 20% fusion power improvement.
10 pages, 13 figures. Paper coupled to invited talk at the 41st EPS conference, Berlin, 2014
Cited by in corpus (14)
- Tractable flux-driven temperature, density, and rotation profile evolution with the quasilinear gyrokinetic transport model QuaLiKiz
- Application of Gaussian process regression to plasma turbulent transport model validation via integrated modelling
- Comparison between measured and predicted turbulence frequency spectra in ITG and TEM regimes
- Integrated modelling and multiscale gyrokinetic validation study of ETG turbulence in a JET hybrid H-mode scenario
- First-principles-based multiple-isotope particle transport modelling at JET
- Effect of the tangential NBI current drive on the stability of pressure and energetic particle driven MHD modes in LHD plasma
- Magnetic flutter effect on validated edge turbulence simulations
- Fast transport simulations with higher-fidelity surrogate models for ITER
- Predictions of improved confinement in SPARC via energetic particle turbulence stabilization
- Core transport barriers induced by fast ions in global gyrokinetic GENE simulations
- New linear stability parameter to describe low- electromagnetic microinstabilities driven by passing electrons in axisymmetric toroidal geometry
- Towards enhanced performance in fusion plasmas via turbulence suppression by MeV ions
- The role of fast ions in stabilising the ion temperature gradient mode
- Fast ion effects on the threshold conditions of ion temperature gradient mode and electron temperature gradient mode