FORMATION OF PLASMA WORKING FLUIDS FOR COMPRESSION BY LINER IMPLOSIONS

被引:4
作者
LEHR, FM
ALANIZ, A
BEASON, JD
CARSWELL, LC
DEGNAN, JH
CRAWFORD, JF
ENGLERT, SE
ENGLERT, TJ
GAHL, JM
HOLMES, JH
HUSSEY, TW
KIUTTU, GF
MULLINS, BW
PETERKIN, RE
RODERICK, NF
TURCHI, PJ
GRAHAM, JD
机构
[1] MAXWELL LABS INC,ALBUQUERQUE,NM 87119
[2] UNIV NEW MEXICO,DEPT ELECT & COMP ENGN,ALBUQUERQUE,NM 87131
[3] UNIV NEW MEXICO,DEPT CHEM & NUCL ENGN,ALBUQUERQUE,NM 87131
[4] OHIO STATE UNIV,DEPT AERONAUT & ASTRONAUT,COLUMBUS,OH 43210
关键词
D O I
10.1063/1.356051
中图分类号
O59 [应用物理学];
学科分类号
摘要
Research on the formation of a hot hydrogen working fluid, which may be used in multiple concentric solid-density liner implosions, is reported. In such implosions, an axisymmetric outer liner is driven by a multi-megamp axial discharge, and a coaxial inner liner is driven by a working fluid contained between the liners. The fluid is shocklessly compressed to high pressure as the outer liner implodes around it. In the work reported here a 10 to 100 Torr pressure, hydrogen filled coaxial gun discharge was used to inject-plasma into a diagnostic chamber simulating an interliner volume. Spectroscopically determined electron densities of between 10(17) and 10(18) cm-3 and electron temperatures in the 0.5-2.0 eV range were obtained with a fair degree of reproducibility and symmetry. Two-dimensional, time-dependent magnetohydrodynamic computer simulations of the working fluid formation experiment have been performed, and the computations suggest that the present experiment achieves electron number densities and temperatures at the lower extreme of these limits, and neutral densities approximately 0.3-1.0 X 10(19) cm-3. The simulations further suggest that the upper range, and beyond, can be achieved in a more energetic version of the present experiment.
引用
收藏
页码:3769 / 3776
页数:8
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