DocumentCode :
2879134
Title :
Time resolved visible spectroscopy characterizations of single wire aluminum plasmas
Author :
Blesener, K.S. ; Pikuz, S.A. ; Shelkovenko, T.A. ; Hammer, D.A. ; Maron, Y. ; Bernshtam, V. ; Weingarten, L.
Author_Institution :
Lab. of Plasma Studies, Cornell Univ., Ithaca, NY, USA
fYear :
2011
fDate :
26-30 June 2011
Firstpage :
1
Lastpage :
1
Abstract :
Summary form only given. The conditions within plasmas generated by current-driven explosions of single 15-50μm aluminum (Al) wires are being investigated using time-resolved emission spectroscopy at visible wavelengths. The experiments are being carried out at Cornell University on the 10kA, 500ns rise time Low Current Pulser 3 (LCP3). The plasma parameters being determined as a function of time and radial position include electron temperature and density, ionization state and magnetic field. To determine the magnetic field, a new diagnostic method is being developed which makes use of Zeeman-effect-produced differences in the line shapes of two fine structure components of a multiplet that are equally broadened by both Stark effect and Doppler broadening. This method has been demonstrated at the Weizmann Institute of Science (WSI) in laser-produced plasmas [1] with lower energy densities than are being studied here. As in the work at WSI, we use the Al III [4s-4p] transitions at 5696Å and 5722Å to determine the magnitude of the magnetic field. In the experimental plasmas generated by LCP3, electron number densities are in the range 1017-1018cm-3 while electron temperatures are between 2 and 5eV. Under these conditions, seen close to peak current 300 μm away from the wire, the line broadening due to a magnetic field of 6.5 T is calculated to be 3.0 Å while the Stark broadening at 1018/cm3 is calculated to be 3.5 Å; the Doppler broadening is negligible. The total FWHM difference of the doublet lines resulting from these mechanisms is estimated to be 10%. We are setting up a new spectroscopic system capable of clearly detecting this difference after carrying out preliminary experiments on a lower resolution system. Initial high-resolution data will be presented.
Keywords :
Doppler broadening; Stark effect; Zeeman effect; aluminium; electron density; explosions; fine structure; ionisation; plasma density; plasma diagnostics; plasma production by laser; plasma temperature; time resolved spectra; visible spectra; Al; Doppler broadening; Stark broadening; Stark effect; Zeeman-effect-produced differences; current 10 kA; current-driven explosions; diagnostic method; doublet lines; electron number densities; electron temperature; energy densities; fine structure components; initial high-resolution data; ionization state; laser-produced plasmas; line broadening; line shapes; low current pulser 3; magnetic field magnitude; multiplet; peak current; plasma parameters; radial position; rise time; single aluminum wires; single wire aluminum plasmas; size 15 mum to 50 mum; spectroscopic system; time 500 ns; time resolved visible spectroscopy characterizations; time-resolved emission spectroscopy; total FWHM difference; visible wavelengths; wavelength 5696 A; wavelength 5722 A; Aluminum; Energy resolution; Joints; Plasmas;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science (ICOPS), 2011 Abstracts IEEE International Conference on
Conference_Location :
Chicago, IL
ISSN :
0730-9244
Print_ISBN :
978-1-61284-330-8
Electronic_ISBN :
0730-9244
Type :
conf
DOI :
10.1109/PLASMA.2011.5992918
Filename :
5992918
Link To Document :
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