Core performance predictions in projected SPARC first-campaign plasmas with nonlinear CGYRO

Author:

Rodriguez-Fernandez P.1ORCID,Howard N. T.1ORCID,Saltzman A.1ORCID,Shoji L.1ORCID,Body T.2ORCID,Battaglia D. J.2ORCID,Hughes J. W.1ORCID,Candy J.3ORCID,Staebler G. M.4ORCID,Creely A. J.2ORCID

Affiliation:

1. MIT Plasma Science and Fusion Center 1 , Cambridge, Massachusetts 02139, USA

2. Commonwealth Fusion Systems 2 , Devens, Massachusetts 01434, USA

3. General Atomics 3 , San Diego, California 92186, USA

4. Oak Ridge National Laboratory 4 , Oak Ridge, Tennessee 37831, USA

Abstract

This work characterizes the core transport physics of SPARC early-campaign plasmas using the PORTALS-CGYRO framework. Empirical modeling of SPARC plasmas with L-mode confinement indicates an ample window of breakeven (Q > 1) without the need of H-mode operation. Extensive modeling of multi-channel (electron energy, ion energy, and electron particle) flux-matched conditions with the nonlinear CGYRO code for turbulent transport coupled to the macroscopic plasma evolution using PORTALS reveals that the maximum fusion performance to be attained will be highly dependent on the near-edge pressure. Stiff core transport conditions are found, particularly when fusion gain approaches unity, and predicted density peaking is found to be in line with empirical databases of particle source-free H-modes. Impurity optimization is identified as a potential avenue to increase fusion performance while enabling core-edge integration. Extensive validation of the quasilinear TGLF model builds confidence in reduced-model predictions. The implications of projecting L-mode performance to high-performance and burning-plasma devices is discussed, together with the importance of predicting edge conditions.

Funder

Commonwealth Fusion Systems

US DOE

Publisher

AIP Publishing

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