Details on the transport properties and profile prediction analysis of the preconceptual design of the “Helios” stellarator fusion power plant (Swanson et al., 2025) are discussed in the present work. A multi-scale framework is used that incorporates turbulent timescales in the evolution of macroscopic profiles on transport timescales. High-fidelity electrostatic gyrokinetic and drift-kinetic calculations are performed to simulate transport fluxes. Scenarios are considered that include alpha heating power, auxiliary electron heating, radiation losses, and collisional energy exchange in the presence of turbulent/neoclassical losses to predict the steady-state temperature profiles, using a prescribed density profile. Targeting an ignited plasma, the results of this analysis show that a near-ignited scenario can be found with a fusion power output of P fus = 945 MW , fusion gain of Q f u s = 47 , a confinement scaling factor of H ISS04 = 1.34 , and a Sudo density fraction of f Sudo = 〈 n e 〉 / n Sudo = 1.25 . Results indicate a slightly lower fusion power and confinement enhancement factor, and a higher but reasonable Sudo density fraction compared with the reference values of P fus ref = 958 MW , H ISS04 ref = 1.4 and f Sudo ref = 1.1 , respectively. Additional transport calculations with impurities were performed on the final profiles. Inclusion of fully kinetic impurities produced a strong reduction in gyrokinetic heat and particle fluxes for the bulk ions.
Martin et al. (Tue,) studied this question.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: