November 2023

Journal

Integrated modeling of high β N steady state scenario on DIII-D

By:
Park, Jin Myung ; Ferron, J.R.; Holcomb, C.T.; Buttery, R.J.; M. Solomon, W.; Batchelor, Donald B; Elwasif, Wael R; Green, David L; Kim, K-J; Meneghini, O; Murakami, Masanori ; Snyder, P. B.
Journal Name:
Physics of Plasmas
Page Number:
12506
Volume:
25
Issue Number:
1
Publication Date:
November 9, 2023
View DOI Listing:
https://doi.org/10.1063/1.5013021

Abstract

Theory-based integrated modeling validated against DIII-D experiments predicts that fully non-inductive DIII-D operation with βN > 4.5 is possible with certain upgrades. IPS-FASTRAN is a new iterative numerical procedure that integrates models of core transport, edge pedestal, equilibrium, stability, heating, and current drive self-consistently to find steady-state (d/dt = 0) solutions and reproduces most features of DIII-D high βN discharges with a stationary current profile. Projecting forward to scenarios possible on DIII-D with future upgrades, the high qmin > 2 scenario achieves stable operation at βN as high as 5 by using a very broad current density profile to improve the ideal-wall stabilization of low-n instabilities along with confinement enhancement from low magnetic shear. This modeling guides the necessary upgrades of the heating and current drive system to realize reactor-relevant high βN steady-state scenarios on DIII-D by simultaneous optimization of the current and pressure profiles.