September 2016

Journal

Integrated fusion simulation with self-consistent core-pedestal coupling

By:
Meneghini, O; Snyder, P.; Smith, S; Candy, J.; Staebler, G. M.; Belli, E.; Lao, L.L.; Park, J.; Green, David L; Elwasif, Wael R; Grierson, Brian; Holland, Chris
Journal Name:
Physics of Plasmas
Page Number:
042507-1-042507-10
Volume:
23
Issue Number:
4
Publication Date:
September 2, 2016
View DOI Listing:
https://doi.org/10.1063/1.4947204

Abstract

Accurate prediction of fusion performance in present and future tokamaks requires taking into account the strong interplay between core transport, pedestal structure, current profile and plasma equilibrium. An integrated modeling workflow capable of calculating the steady-state self- consistent solution to this strongly-coupled problem has been developed. The workflow leverages state-of-the-art components for collisional and turbulent core transport, equilibrium and pedestal stability. Validation against DIII-D discharges shows that the workflow is capable of robustly pre- dicting the kinetic profiles (electron and ion temperature and electron density) from the axis to the separatrix in good agreement with the experiments. An example application is presented, showing self-consistent optimization for the fusion performance of the 15 MA D-T ITER baseline scenario as functions of the pedestal density and ion effective charge Z eff.


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