DocumentCode :
2560391
Title :
The ecton model of unipolar arcing at fine-structured surface
Author :
Barengolts, S.A. ; Mesyats, G.A. ; Tsventoukh, M.M.
Author_Institution :
Prokhorov Gen. Phys. Inst., Moscow, Russia
fYear :
2012
fDate :
8-13 July 2012
Abstract :
The initiation of the explosive electron emission pulses - ectons being responsible for the ignition and burning of a vacuum discharge, in particular, - unipolar arcs. The latter being a common feature of intense plasma-surface interactions in fusion devices. A fusion devices first wall with a strongly non-uniform surface, as well as an intense power load onto the surface in the edge localized modes (ELMs) form, intensely promotes explosive emission ignition. Furthermore, the thin-film metallic surfaces define the arcing properties, such as the erosion rate. This agrees with a novel detailed experiments on unipolar arcing at linear simulator NAGDIS-II, the Asdex-Upgrade tokamak, and the Large Helical Device. Such fine-structured - film-like surfaces, are as follows: a micron-scale layer of tungsten nanowires (so called “W-fuzz”) that had been grown at the bulk tungsten; a liquid lithium coating of capillary porous system made from tungsten or molybdenum; and tungsten layers deposited on a carbon tiles. We are considering the ecton processes (ecton current, its life-time, spot-cell motion velocity, erosion rate) depending on the film thickness and its thermo-physical and explosive properties.
Keywords :
Tokamak devices; arcs (electric); explosions; explosives; nanowires; plasma toroidal confinement; plasma-wall interactions; Asdex-Upgrade tokamak; Large Helical Device; W-fuzz; burning; capillary porous system; carbon tiles; ecton model; edge localized modes; erosion rate; explosive electron emission pulses -; explosive emission ignition; explosive properties; film thickness; fine-structured film-like surfaces; fine-structured surface; fusion devices; intense power load; linear simulator NAGDIS-II; liquid lithium coating; nonuniform surface; plasma-surface interactions; thermophysical properties; thin film metallic surfaces; tungsten nanowires; unipolar arcing; vacuum discharge; Electron emission; Explosives; Ignition; Physics; Region 8; Surface discharges; Tungsten;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science (ICOPS), 2012 Abstracts IEEE International Conference on
Conference_Location :
Edinburgh
ISSN :
0730-9244
Print_ISBN :
978-1-4577-2127-4
Electronic_ISBN :
0730-9244
Type :
conf
DOI :
10.1109/PLASMA.2012.6383663
Filename :
6383663
Link To Document :
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