Determination of confinement regime boundaries via separatrix parameters on Alcator C-Mod based on a model for interchange-drift-Alfv\'en turbulence
Abstract
The separatrix operational space (SepOS) model [Eich \& Manz, \emph{Nuclear Fusion} (2021)] is shown to predict the L-H transition, the L-mode density limit, and the ideal MHD ballooning limit in terms of separatrix parameters for a wide range of Alcator C-Mod plasmas. The model is tested using Thomson scattering measurements across a wide range of operating conditions on C-Mod, spanning m, T, and T. An empirical regression for the electron pressure gradient scale length, , against a turbulence control parameter, , and the poloidal fluid gyroradius, , for H-modes is constructed and found to require positive exponents for both regression parameters, indicating turbulence widening of near-SOL widths at high and an inverse scaling with , consistent with results on AUG. The SepOS model is also tested in the unfavorable drift direction and found to apply well to all three boundaries, including the L-H transition as long as a correction to the Reynolds energy transfer term, is applied. I-modes typically exist in the unfavorable drift direction for values of . Finally, an experiment studying the transition between the type-I ELMy and EDA H-mode is analyzed using the same framework. It is found that a recently identified boundary at excludes most EDA H-modes but that the balance of wavenumbers responsible for the L-mode density limit, namely , may better describe the transition on C-Mod. The ensemble of boundaries validated and explored is then applied to project regime access and limit avoidance for the SPARC primary reference discharge parameters.
Keywords
Cite
@article{arxiv.2412.13100,
title = {Determination of confinement regime boundaries via separatrix parameters on Alcator C-Mod based on a model for interchange-drift-Alfv\'en turbulence},
author = {M. A. Miller and J. W. Hughes and T. Eich and G. R. Tynan and P. Manz and T. Body and D. Silvagni and O. Grover and A. E. Hubbard and A. Cavallaro and M. Wigram and A. Q. Kuang and S. Mordijck and B. LaBombard and J. Dunsmore and D. Whyte},
journal= {arXiv preprint arXiv:2412.13100},
year = {2024}
}