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Transient detachment dynamics induced by supersonic molecular beam injection and radio-frequency heating in GAMMA 10/PDX

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Abstract

The transient detachment dynamics under upstream perturbations was investigated in the GAMMA 10/PDX tandem mirror device using a combination of supersonic molecular beam injection (SMBI) and radio-frequency heating. These actuators generated intermittent high-density plasma fluxes directed toward the divertor-simulation module, enabling controlled studies of detachment stability under pulsed loading. The experiments revealed rapid transitions between detached and partially reattached plasma states, accompanied by significant increases in electron density and ion flux. Time-resolved diagnostics - including microwave interferometry, Thomson scattering and high-speed Balmer-line imaging - captured the spatio-temporal evolution of excitation and recombination processes, highlighting localised emission structures potentially related to molecular activated recombination activity and asymmetric plasma modification associated with directional SMBI fuelling. A delayed response in the divertor-simulation module indicated finite axial propagation of particle flux from the central cell. The combined observations demonstrate the sensitivity of detached plasma to upstream particle perturbations and provide insight into the possible role of molecular processes in mediating transient partial reattachment. These results provide new insight into detachment control and transient plasma behaviour in mirror-based divertor-simulation experiments.

Year of Publication
2026
Journal
Journal of Plasma Physics
Volume
92
Issue
5
Number of Pages
E119
DOI
PId
468402749d4584e5061df7cc140ad231
Alternate Journal
J. Plasma Phys.
Label
OA
Journal Article
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Citation
Yoshikawa, M., Yoshida, K., Kohagura, J., Ezumi, N., Minami, R., Hirata, M., … Kobayashi, S. (2026). Transient detachment dynamics induced by supersonic molecular beam injection and radio-frequency heating in GAMMA 10/PDX. Journal of Plasma Physics, 92(5), E119. https://doi.org/10.1017/s002237782610230x