Published March 1995 | Version v1
Journal article

Vacuum UV spectroscopy of armor erosion from plasma gun disruption simulation experiments

  • 1. Sandia Nat. Labs., Albuquerque, NM (United States). Fusion Tech. Dept.
  • 2. Electrical Engineering and Computer Engineering Department, University of New Mexico, Albuquerque, NM 87131 (United States)
  • 3. Troitsk Institute for Innovation and Technology (TRINITI), Troitsk, Moscow Region (Russian Federation)
  • 4. Research Inst. of Electrophysical Apparatus, St. Petersburg (Russian Federation)

Description

Extensive simulations of tokamak disruptions have provided a picture of material erosion that is limited by the transfer of energy from the incident plasma to the armor solid surface through a dense vapor shield. Two transmission grating vacuum ultraviolet (VUV) spectrographs were designed and utilized to study the plasma-material interface in plasma gun simulation experiments. Target materials included POCO graphite, ATJ graphite, boron nitride and plasma-sprayed tungsten. Detailed spectra were recorded with a spatial resolution of ca. 0.7mm resolution on VIKA at Efremov and on 2MK-200 at Troitsk. Time-resolved data with 40-200ns resolution were then recorded along with the same spatial resolution on 2MK-200. The VIKA plasma gun directly illuminated a target with a high-intensity plasma pulse of 2-100MJm-2 with low-energy ions of ca. 100eV. The 2MK-200 plasma gun illuminated the target via a magnetic cusp that permitted only deuterium to pass with energies of ca. 1keV, but which produced a fairly low intensity of 2MJm-2. Power densities on target ranged from 107 to 108Wcm-2. Emitted spectra were recorded from 15 to 450A over a distance from 0 to 7cm above the armor target surface. The data from both plasma gun facilities demonstrated that the hottest plasma region was sitting several millimeters above the armor tile surface. This apparently constituted the absorption region, which confirmed past computer simulations. Spectra indicated both the species and ionization level that were being ablated from the target, demonstrating impurity content, and showing plasma ablation velocity. Graphite samples clearly showed CV lines as well as impurity lines from O V and O VI. The BN tiles produced textbook examples of BIV and BV, and extensive NIV, V and VI lines. These are being compared with radiation-hydrodynamic calculations. (orig.)

Additional details

Publishing Information

Journal Title
Fusion Engineering and Design
Journal Volume
28
Journal Issue
1-4
Journal Page Range
p. 149-156.
ISSN
0920-3796
CODEN
FEDEEE

Conference

Title
3. international symposium on fusion nuclear technology (ISFNT-3).
Dates
26 Jun - 1 Jul 1994.
Place
Los Angeles, CA (United States).