Electrical conductivity of tungsten in a continuous transition from condensed to gaseous state

被引:10
作者
Rakhel, AD [1 ]
Korobenko, VN [1 ]
Savvatimski, AI [1 ]
Fortov, VE [1 ]
机构
[1] Inst High Energy Densities, Moscow 125412, Russia
关键词
electrical conductivity; exploding wires; liquid metal; mercury; metal-nonmetal transition; strongly coupled plasma; tungsten;
D O I
10.1023/B:IJOT.0000038510.75997.c3
中图分类号
O414.1 [热力学];
学科分类号
摘要
A pulse heating technique is developed that makes it possible to investigate the transition of a metal from a condensed to a gaseous state while maintaining almost uniform temperature and pressure distributions in a sample. By means of the technique, the electrical conductivity of tungsten was measured in a process during which a pressure in the range of 30-100 kbar was applied to the sample and its density decreased from the standard solid density to a density 15-20 times less. Since the pressures are substantially higher than the critical pressure, the transition from a condensed to a gaseous state was continuous. Earlier results have shown that along isobars in the range of 30-60 kbar the density dependence of the electrical conductivity changes radically at a certain density value (at which it has a pronounced knee). At the knee, the density is approximately 10 times less than the standard solid density, and the internal energy is about two times the sublimation energy. The dependence of the electrical conductivity near the knee becomes smoother as the pressure increases. In this paper new results on the conductivity of tungsten at the pressures up to 100 kbar are presented. It is shown that the knee becomes remarkably flatter and smoother than the corresponding low pressure dependence. Nevertheless, the main features of the electrical conductivity dependence observed at low pressures persist at the maximum applied pressure.
引用
收藏
页码:1203 / 1214
页数:12
相关论文
共 15 条
[1]  
[Anonymous], BESTIMMUNG THERMOPHY
[2]  
Basko M. M., 1985, TEPLOFIZ VYS TEMP, V23, P483
[3]   Electrical resistivity measurements of hot dense aluminum [J].
Benage, JF ;
Shanahan, WR ;
Murillo, MS .
PHYSICAL REVIEW LETTERS, 1999, 83 (15) :2953-2956
[4]   HIGH-PRESSURE, HIGH-TEMPERATURE THERMO-PHYSICAL MEASUREMENTS ON TANTALUM AND TUNGSTEN [J].
BERTHAULT, A ;
ARLES, L ;
MATRICON, J .
INTERNATIONAL JOURNAL OF THERMOPHYSICS, 1986, 7 (01) :167-179
[5]   Measurement of the electrical conductivity of metals in the vicinity of the critical point [J].
DeSilva, AW ;
Katsouros, JD .
INTERNATIONAL JOURNAL OF THERMOPHYSICS, 1999, 20 (04) :1267-1277
[6]   Electrical conductivity for warm, dense aluminum plasmas and liquids [J].
Desjarlais, MP ;
Kress, JD ;
Collins, LA .
PHYSICAL REVIEW E, 2002, 66 (02)
[7]  
Kikoin I. K., 1967, FIZ MET METALLOVED, V24, P843
[8]   Technique for measuring thermophysical properties of refractory metals at supercritical temperatures [J].
Korobenko, VN ;
Rakhel, AD .
INTERNATIONAL JOURNAL OF THERMOPHYSICS, 1999, 20 (04) :1257-1266
[9]   Measurement of the electric conductivity of tungsten in a continuous liquid-to-gas transition [J].
Korobenko, VN ;
Rakhel, AD ;
Savvatimskiy, AI ;
Fortov, VE .
PLASMA PHYSICS REPORTS, 2002, 28 (12) :1008-1016
[10]   Transport coefficients for dense metal plasmas [J].
Kuhlbrodt, S ;
Redmer, R .
PHYSICAL REVIEW E, 2000, 62 (05) :7191-7200