Experimental Turbulence and Zonal Flow Characteristics in DIII-D Negative Triangularity Plasmas
ORAL
Abstract
Negative Triangularity (NT) shaped plasmas at DIII-D demonstrate high performance (H98 > 1, βN ≥ 2.5, fGW > 1), ELM-free operation for Paux>PLH with an NT-edge when δavg<-0.2. The mechanisms of the improved global confinement and unique edge transport properties are not well understood [1]. Dedicated triangularity scans (δup=+0.41→-0.43;δbot=0.1-0.0) with Paux>PLH are performed to investigate the NT turbulence and confinement characteristics. Ion scale (kθρs < 1, f<500 kHz) turbulence is measured using the Beam Emission Spectroscopy fluctuation diagnostic [2]. TEM-like turbulence is observed outside of ρ>0.9, while ITG-like turbulence is observed in the core region ρ<0.9 [3]. Core turbulence amplitudes are comparable in H-mode and NT-edge phases, while measured turbulent correlation lengths and times vary. When δup is more negative, the core normalized Ti gradients are increased concomitant with the observed reduction in random-walk turbulent diffusivity (Lcorr2/τcorr). Velocimetry analysis of NT-edge phases with Paux>PLH shows no zonal flow structures and indications that edge turbulence (ρ>0.9) is saturated via mean shear flow. In contrast, in L-mode phases (Paux<PLH ) zonal flows are observed and mean shearing rates are insufficient for saturation. Unlike in L-mode, NT-edge turbulence at Paux>PLH may remain shear flow saturated after the H-mode/NT-edge transition.
*Work supported by US DOE under grants DE-FG02-08ER54999, DE-SC0022270, DE-SC0020287, and DE-FC02-04ER54698.
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Publication: [1] K E Thome et al Plasma Phys. Control. Fusion 66 105018, 2024.
[2] G.R. McKee et al. Rev. Sci. Instrum. 81, 10D741, 2010.
[3] S. D. Stewart et al Plasma Phys. Control. Fusion 67 025032, 2025.
Presenters
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Samuel Stewart
- University of Wisconsin - Madison