Deconvolving the roles of E × B shear and pedestal structure in the energy confinement quality of super H-mode experiments

Author:

Garofalo A.M.ORCID,Ding S.ORCID,Solomon W.M.,Grierson B.A.ORCID,Jian X.,Osborne T.H.,Holland C.ORCID,Knolker M.ORCID,Laggner F.M.,Chrystal C.ORCID,Marinoni A.,Petty C.C.ORCID

Abstract

AbstractAnalysis of ‘super H-mode’ experiments on DIII-D has put forward that high plasma toroidal rotation, not high pedestal, plays the essential role in achieving energy confinement qualityH98y2≫ 1 (Dinget al2020Nucl. Fusion60034001). Recently, super H-mode experiments with variable input torque have confirmed that high rotation shear discharges have very high levels ofH98y2(>1.5), independent of the pedestal height, and that high pedestal discharges with low rotation shear have levels ofH98y2only slightly above 1 (⩽1.2). Although some increase in stored energy with higher pedestal occurs, the energy confinement quality mainly depends on the toroidal rotation shear, which varies according to different levels of injected neutral beam torque per particle. Quasi-linear gyrofluid modeling achieves a good match of the experiment when including theE×Bshear; without including plasma rotation, the modeling predicts a confinement quality consistent with the empirical observation ofH98y2∼ 1.2 at low rotation. Nonlinear gyrokinetic transport modeling shows that the effect ofE×Bturbulence stabilization is far larger than other mechanisms, such as the so-called hot-ion stabilization (Ti/Te) effect. Consistent with these experimental and modeling results are previous simulations of the ITER baseline scenario using a super H-mode pedestal solution (Solomonet al2016Phys. Plasmas23056105), which showed the potential to exceed theQ= 10 target if the pedestal density could be increased above the Greenwald limit. A close look at these simulations reveals that the predicted energy confinement quality is below 1 even at the highest pedestal pressure. The improvement inQat higher pedestal density is due to the improved fusion power generation at the higher core density associated with higher pedestal density, not to an improved energy confinement quality.

Funder

US Department of Energy

Publisher

IOP Publishing

Subject

Condensed Matter Physics,Nuclear and High Energy Physics

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