Global scaling of the heat transport in fusion plasmas
arXiv:1908.00397 · doi:10.1103/PhysRevResearch.2.013027
Abstract
A global heat flux model based on a fractional derivative of plasma pressure is proposed for the heat transport in fusion plasmas. The degree of the fractional derivative of the heat flux, , is defined through the power balance analysis of the steady state. The model was used to obtain the experimental values of for a large database of the JET Carbon-wall as well as ITER Like-wall plasmas. The findings show that the average fractional degree of the heat flux over the database for electrons is , suggesting a global scaling between the net heating and the pressure profile in the JET plasmas. The model is expected to provide an accurate and a simple description of heat transport that can be used in transport studies of fusion plasmas.
6 pages submitted to Physical Review Research
References in corpus (4)
- Core micro-instability analysis of JET hybrid and baseline discharges with carbon wall
- Symmetry breaking in MAST plasma turbulence due to toroidal flow shear
- On the relevance of uncorrelated Lorentzian pulses for the interpretation of turbulence in the edge of magnetically confined toroidal plasmas
- Charged particle dynamics in the presence of non-Gaussian Lévy electrostatic fluctuations