DocumentCode
764860
Title
The internal structure and dynamics of the railgun plasma armature between infinitely wide ablating rails
Author
Frese, Michael H.
Author_Institution
NumerEx, Albuquerque, NM
Volume
27
Issue
1
fYear
1991
fDate
1/1/1991 12:00:00 AM
Firstpage
233
Lastpage
239
Abstract
Computer simulations of the plasma flow in two-dimensionally symmetric railgun plasma arcs were performed. The direction of symmetry is normal to the insulator surface, so that the rails are effectively infinite in width. The rail surface ablates according to one of two ablation models, in which either all absorbed energy flux, or only the excess over that which the rail material can conduct away, ablates mass. A number of combinations of initial conditions, boundary conditions, and resistivity models were explored. The full ablation model produces an arc of continuously growing mass and length in which the current distributions reaches from the projectile halfway to the breech. The conduction-limited ablation model produces a compact arc approximately eight times the bore height in length, which ceases to ablate material from the rails before the projectile reaches a velocity of 1 km/s. There is need for further study in several areas. These include the arc initiation process, the ablation of the insulators, and three-dimensional effects
Keywords
arcs (electric); digital simulation; electromagnetic launchers; physics computing; plasma devices; plasma diagnostics; plasma flow; projectiles; 1000 m/s; absorbed energy flux; boundary conditions; breech; computer simulations; infinitely wide ablating rails; insulator surface; plasma flow; projectile; railgun plasma armature; resistivity models; two-dimensionally symmetric railgun plasma arcs; Boundary conditions; Computer simulation; Conducting materials; Conductivity; Insulation; Plasma materials processing; Plasma simulation; Projectiles; Railguns; Rails;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/20.101032
Filename
101032
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