Overview of results from the 2023 DIII-D negative triangularity campaign

Negative triangularity (NT) is a potentially transformative configuration for tokamak-based fusion energy with its high-performance core, edge localized mode (ELM)-free edge, and low-field-side divertors that could readily scale to an integrated reactor solution. Previous NT work on the TCV and DIII...

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Veröffentlicht in:Plasma physics and controlled fusion 2024-10, Vol.66 (10), p.105018
Hauptverfasser: Thome, K E, Austin, M E, Hyatt, A, Marinoni, A, Nelson, A O, Paz-Soldan, C, Scotti, F, Boyes, W, Casali, L, Chrystal, C, Ding, S, Du, X D, Eldon, D, Ernst, D, Hong, R, McKee, G R, Mordijck, S, Sauter, O, Schmitz, L, Barr, J L, Burke, M G, Coda, S, Cote, T B, Fenstermacher, M E, Garofalo, A, Khabanov, F O, Kramer, G J, Lasnier, C J, Logan, N C, Lunia, P, McLean, A G, Okabayashi, M, Shiraki, D, Stewart, S, Takemura, Y, Truong, D D, Osborne, T, Van Zeeland, M A, Victor, B S, Wang, H Q, Watkins, J G, Wehner, W P, Welander, A S, Wilks, T M, Yang, J, Yu, G, Zeng, L
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Sprache:eng
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Zusammenfassung:Negative triangularity (NT) is a potentially transformative configuration for tokamak-based fusion energy with its high-performance core, edge localized mode (ELM)-free edge, and low-field-side divertors that could readily scale to an integrated reactor solution. Previous NT work on the TCV and DIII-D tokamaks motivated the installation of graphite-tile armor on the low-field-side lower outer wall of DIII-D. A dedicated multiple-week experimental campaign was conducted to qualify the NT scenario for future reactors. During the DIII-D NT campaign, high confinement ( H 98 y , 2 ≳ 1), high current ( q 95 < 3), and high normalized pressure plasmas ( β N > 2.5) were simultaneously attained in strongly NT-shaped discharges with average triangularity δ avg = −0.5 that were stably controlled. Experiments covered a wide range of DIII-D operational space (plasma current, toroidal field, electron density and pressure) and did not trigger an ELM in a single discharge as long as sufficiently strong NT was maintained; in contrast, to other high-performance ELM-suppression scenarios that have narrower operating windows. These strong NT plasmas had a lower outer divertor X-point shape and maintained a non-ELMing edge with an electron temperature pedestal, exceeding that of typical L-mode plasmas. Also, the following was achieved during the campaign: high normalized density ( n e / n GW of at least 1.7), particle confinement comparable to energy confinement with Z eff ∼ 2 , a detached divertor without impurity seeding, and a mantle radiation scenario using extrinsic impurities. These results are promising for a NT fusion pilot plant but further questions on confinement extrapolation and core-edge integration remain, which motivate future NT studies on DIII-D and beyond.
ISSN:0741-3335
1361-6587
DOI:10.1088/1361-6587/ad6f40