Title :
Influence of nozzle design and radial mass distribution on argon K-shell yield
Author :
Coleman, P. ; Prasad, R. ; Bixler, A. ; Campbell, K. ; Krishnan, M. ; Qi, N. ; Waisman, E. ; Failor, B. ; Levine, J. ; Sze, H.
Author_Institution :
Alameda Appl. Sci. Corp., San Leandro, CA, USA
Abstract :
Summary form only given, as follows. The design of gas flow nozzles for optimum K-shell X-ray emission remains an imperfect science. We report on a limited set of tests, using the Double Eagle simulator, evaluating two key factors. The first factor was the detailed form of the nozzle contours: simple linear contours versus curved "aerodynamic" contours intended to minimize turbulence. The second factor was the relative radial concentration of mass in the flow. All tests employed double shell nozzles. While the test set was incomplete, the data strongly imply that details of nozzle shape are relatively unimportant. On the other hand, radial mass distribution is very critical. With twice the mass (ug/cm) in the outer shell than the inner shell, argon K-shell yield was only 5 kJ. With nearly equal masses in the two shells, yield increased dramatically to over 17 kJ, matching the optimum output on Double Eagle for 200 ns implosions. Since the simplest models of z-pinches favor putting most of the mass at the largest radius, these results strongly imply that that configuration is subject to severe disruption by instabilities during the implosion. These results confirm earlier observations that filled-in mass distributions are preferred, and support the concept of snowplow stabilization.
Keywords :
X-ray emission spectra; Z pinch; explosions; nozzles; plasma devices; plasma diagnostics; plasma flow; plasma instability; plasma production; plasma simulation; plasma turbulence; 17 kJ; 200 ns; 5 kJ; Ar; Double Eagle simulator; K-shell yield; aerodynamic contours; double shell nozzles; filled-in mass distributions; gas flow nozzles; implosions; inner shell; instabilities; linear contours; nozzle contours; nozzle design; nozzle shape; optimum K-shell X-ray emission; optimum output; outer shell; radial mass distribution; relative radial concentration; snowplow stabilization; turbulence; z-pinches; Aerodynamics; Argon; Fluid flow; Gas lasers; Geometry; Impedance matching; Laser modes; Particle beams; Shape; Testing;
Conference_Titel :
Plasma Science, 2002. ICOPS 2002. IEEE Conference Record - Abstracts. The 29th IEEE International Conference on
Conference_Location :
Banff, Alberta, Canada
Print_ISBN :
0-7803-7407-X
DOI :
10.1109/PLASMA.2002.1030388