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Journal article

Ion temperature clamping in Wendelstein 7-X electron cyclotron heated plasmas

From

Max Planck Institute for Plasma Physics1

CIEMAT2

Technical University of Denmark3

Department of Physics, Technical University of Denmark4

National Institutes of Natural Sciences - National Institute for Fusion Science5

Princeton Plasma Physics Laboratory6

The neoclassical transport optimization of the Wendelstein 7-X stellarator has not resulted in the predicted high energy confinement of gas fueled electron-cyclotron-resonance-heated (ECRH) plasmas as modelled in (Turkin et al 2011 Phys. Plasmas 18 022505) due to high levels of turbulent heat transport observed in the experiments.

The electron-turbulent-heat transport appears non-stiff and is of the electron temperature gradient (ETG)/ion temperature gradient (ITG) type (Weir et al 2021 Nucl. Fusion 61 056001). As a result, the electron temperature T e can be varied freely from 1 keV–10 keV within the range of P ECRH = 1–7 MW, with electron density n e values from 0.1–1.5 × 1020 m−3.

By contrast, in combination with the broad electron-to-ion energy-exchange heating profile in ECRH plasmas, ion-turbulent-heat transport leads to clamping of the central ion temperature at T i ∼ 1.5 keV ± 0.2 keV. In a dedicated ECRH power scan at a constant density of 〈n e〉 = 7 × 1019 m−3, an apparent ‘negative ion temperature profile stiffness’ was found in the central plasma for (r/a < 0.5), in which the normalized gradient ∇T i/T i decreases with increasing ion heat flux.

The experiment was conducted in helium, which has a higher radiative density limit compared to hydrogen, allowing a broader power scan. This ‘negative stiffness’ is due to a strong exacerbation of turbulent transport with an increasing ratio of T e/T i in this electron-heated plasma.

This finding is consistent with electrostatic microinstabilities, such as ITG-driven turbulence. Theoretical calculations made by both linear and nonlinear gyro-kinetic simulations performed by the GENE code in the W7-X three-dimensional geometry show a strong enhancement of turbulence with an increasing ratio of T e/T i.

The exacerbation of turbulence with increasing T e/T i is also found in tokamaks and inherently enhances ion heat transport in electron-heated plasmas. This finding strongly affects the prospects of future high-performance gas-fueled ECRH scenarios in W7-X and imposes a requirement for turbulence-suppression techniques.

Language: English
Publisher: IOP Publishing
Year: 2021
Pages: 116072
ISSN: 17414326 , 00295515 and 10185577
Types: Journal article
DOI: 10.1088/1741-4326/ac1653
ORCIDs: 0000-0002-3354-0279 , 0000-0003-4289-3532 , 0000-0003-3545-4822 , 0000-0003-2617-3658 , 0000-0001-6863-8578 , 0000-0002-4395-239X , 0000-0002-7824-3307 , 0000-0001-6205-2656 , 0000-0002-0585-4561 , 0000-0002-6557-3497 , 0000-0001-7747-3066 , 0000-0001-7874-7575 , 0000-0001-8002-0121 , 0000-0002-2107-5488 , 0000-0003-3588-6801 , 0000-0001-6617-8459 , 0000-0003-2398-966X , 0000-0002-2727-9385 , 0000-0002-5800-4907 and 0000-0002-2606-5289

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