Electron cyclotron current start-up using a retarding electric field in the QUEST spherical tokamak

The plasma current start-up experiment is conducted through electron cyclotron (EC) heating in the QUEST spherical tokamak. During the EC heating, the application of a toroidal electric field in the opposite direction to the plasma current effectively inhibits the growth of energetic electrons. Obse...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:Nuclear fusion 2024-10, Vol.64 (10), p.106020
Hauptverfasser: Onchi, T., Idei, H., Hanada, K., Watanabe, O., Miyata, R., Zhang, Y., Koide, Y., Otsuka, Y., Yamaguchi, T., Higashijima, A., Nagata, T., Sekiya, I., Shimabukuro, S., Niiya, I., Kono, K., Zennifa, F., Nakamura, K., Ikezoe, R., Hasegawa, M., Kuroda, K., Nagashima, Y., Ido, T., Kariya, T., Ejiri, A., Murakami, S., Fukuyama, A., Kosuga, Y.
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:The plasma current start-up experiment is conducted through electron cyclotron (EC) heating in the QUEST spherical tokamak. During the EC heating, the application of a toroidal electric field in the opposite direction to the plasma current effectively inhibits the growth of energetic electrons. Observations show rapid increases in plasma current and hard x-ray count immediately following the cancellation of the retarding electric field. When a compact tokamak configuration maintains equilibrium on the high field side, along with the retarding field, it leads to effective bulk electron heating. This heating achieved an electron temperature of T e ≈ 1 keV at electron density n e > 1.0 × 10 18 m −3 . Ray tracing of the EC wave verifies that more power absorption into plasma through a single-pass occurs around the second resonance layer with higher values of electron density and temperature.
ISSN:0029-5515
1741-4326
DOI:10.1088/1741-4326/ad6914