DocumentCode :
1142806
Title :
Thermodynamic state of the magnetic flux compression generator volume
Author :
Neuber, Andreas ; Holt, Thomas ; Dickens, James C. ; Kristiansen, Magne
Author_Institution :
Depts. of Electr. & Comput. Eng. & Phys., Texas Tech Univ., Lubbock, TX, USA
Volume :
30
Issue :
5
fYear :
2002
fDate :
10/1/2002 12:00:00 AM
Firstpage :
1659
Lastpage :
1664
Abstract :
The thermodynamic state of the gas trapped in the volume of helical magnetic flux compression generators was measured using optical emission spectroscopy and fast pressure probes. Three main stages of operation are discussed: (1) the initial stage, which can be represented by a freely expanding armature, that shows fairly low gas temperatures, as low as 2000 K; (2) the intermediate stage during 14-4 μs before generator burnout that exhibits mainly an atomic copper line transition at about 0.8 eV; (3) the last few μs that reveal a highly compressed gas with temperatures of about 5000 K and pressures of about 1500 bar. Most experiments were conducted in air, initially at STP, some results are given for argon and sulfur hexafluoride initially at one atmosphere. Additionally, the thermodynamic state is linked to the electrical volume breakdown threshold via simple resistance measurements that were conducted in current-free flux compression generators.
Keywords :
electric breakdown; electrical conductivity measurement; exploding wires; pressure measurement; probes; pulse generators; pulsed power supplies; thermodynamic properties; 0.8 eV; 1500 bar; 2000 to 5000 K; Ar; SF6; argon; atomic copper line transition; current-free flux compression generators; electrical volume breakdown threshold; electroexplosive devices; fairly low gas temperatures; fast pressure probes; freely expanding armature; generator burnout; helical magnetic flux compression generators; highly compressed gas; intermediate stage; magnetic flux compression generator volume; optical emission spectroscopy; shocked gas; simple resistance measurements; sulfur hexafluoride; thermodynamic state; Charge carrier processes; Copper; Magnetic flux; Pressure measurement; Probes; Spectroscopy; Stimulated emission; Temperature; Thermodynamics; Volume measurement;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2002.805396
Filename :
1178192
Link To Document :
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