DocumentCode
1281260
Title
Numerical models of pressure pulse generation by imploding metal liners
Author
Humphries, Stanley, Jr. ; Ekdahl, Carl A.
Author_Institution
Acceleration Assoc., Albuquerque, NM, USA
Volume
24
Issue
6
fYear
1996
fDate
12/1/1996 12:00:00 AM
Firstpage
1334
Lastpage
1347
Abstract
The authors describe numerical calculations of pressure pulse generation using imploding liners. Liners are metal cylinders that are magnetically compressed by an intense axial current flow from a high-power pulse generator. The simulations cover the acceleration of the liner, collision with an internal diagnostic target, followed by compression and shock wave heating of the target. With the projected current waveform of the Atlas capacitor bank (in development at Los Alamos National Laboratory), initial results suggest that it may be possible to achieve pressures exceeding 3000 Gpa (30 Mbar) in a 4 mm diameter sample over an interval of 100-200 ns. The simulations were carried out with Crunch, a new one-dimensional hydrodynamics package for advanced personal computers. The program uses finite-element techniques to solve the coupled problems of hydrodynamics and magnetic diffusion. Crunch fully supports loading and interpolating Sesame equation-of-state tables. The program exhibits excellent stability, even for collisions between material shells and shock convergence on axis
Keywords
finite element analysis; hydrodynamics; microcomputer applications; physics computing; power capacitors; power supplies to apparatus; pulse generators; pulsed power technology; shock waves; software packages; 100 to 200 ns; 1D hydrodynamics package; 20 Mbar; 3000 GPa; 4 mm; Atlas capacitor bank; Crunch software; Sesame equation-of-state tables; compression; computer simulation; finite-element techniques; high-power pulse generator; imploding metal liners; intense axial current flow; magnetic diffusion; numerical models; pressure pulse generation; shock wave heating; Acceleration; Capacitors; Computational modeling; Computer simulation; Heating; Hydrodynamics; Laboratories; Numerical models; Pulse generation; Shock waves;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.553199
Filename
553199
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