THE STRENGTH AND RHEOLOGY OF COMMERCIAL TUNGSTEN CARBIDE CERMETS USED IN HIGH-PRESSURE APPARATUS

被引:32
作者
GETTING, IC
CHEN, GL
BROWN, JA
机构
[1] Cooperative Institute for Research In Environmental Science (CIRES), University of Colorado, Boulder, 80309-0216, CO
[2] Department of Geological Sciences, University of Colorado, Boulder, 80309, CO
关键词
TUNGSTEN CARBIDE; STRENGTH; RHEOLOGY; HIGH PRESSURE DESIGN;
D O I
10.1007/BF00998345
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Uniaxial compressive stress-strain curves have been measured on a suite of 26 commercial grades of tungsten carbide cermets and three maraging steels of interest for use in high-pressure apparatus. Tests were conducted on cylindrical specimens with a length to diameter ratio of two. Load was applied to the specimens by tungsten carbide anvils padded by extrudable lead disks. Interference fit binding rings of maraging steel were pressed on to the ends of the specimens to inhibit premature corner fractures. Bonded resistance strain gages were used to measure both axial and tangential strains. Deformation was exremely uniform in the central, gauged portion of the specimens. Tests were conducted at a constant engineering strain rate of 1 x 10(-5) s-1. The composition of the specimens was principally WC/Co with minor amounts of other carbides in some cases. The Co weight fraction ranged from 2 to 15%. Observed compressive strengths ranged from about 4 to just above 8 GPa. Axial strain amplitude at failure varied from approximately 1.5% to approximately 9%. Representative stress-strain curves and a ranking of the grades in terms of yield strength and strain at failure are presented. A power law strain hardening relation and the Ramberg-Osgood stress-strain equation were fit to the data. Fits were very good for both functions to axial strain amplitudes of about 2%. The failure of these established functions is accompanied by an abrupt change in the trend of volumetric strain consistent with the onset of substantial microcrack volume.
引用
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页码:545 / 577
页数:33
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共 34 条
[1]  
Brace W.F., Paulding B.W., Scholz C., Dilatancy in the Fracture of Crystalline Rocks, Journal of Geophysical Research, 71, pp. 3939-3953, (1966)
[2]  
Dol H., Fujiwara Y., Miyake K., Mechanism of Plastic Deformation and Dislocation Damping of Cemented Carbides, Trans. Met. Soc. of AIME, 245, pp. 1457-1470, (1969)
[3]  
Exner H.E., Physical and Chemical Nature of Cemented Carbides, International Metals Reviews, 4, pp. 149-173, (1979)
[4]  
Exner H.E., Gurland J., A Review of Parameters Influencing Some Mechanical Properties of Tungsten Carbide-cobalt Alloys, Powder Metallurgy, 13, pp. 13-31, (1970)
[5]  
Fischmeister H.F., Schmauder S., Sigl L.S., Finite Element Modeling of Crack Propagatin in WC-Co Hard Metals, Materials Science and Engineering: A, 105-106, pp. 305-311, (1988)
[6]  
Godse R., Guriand J., Applicability of the Critical Strain Fracture Criterion to WC-Co Hard Metals, Materials Science and Engineering: A, 105-106, pp. 331-336, (1988)
[7]  
Han D., Mecholsky J.J., Fracture Analysis of Cobalt-Tungsten Carbide Composites, J. Mater. Sci., 25, pp. 4949-4956, (1990)
[8]  
Han D., Mecholsky J.J., Fracture Behavior of Metal Particulate-reinforced WC-Co Composites, Mater. Sci. Engr. A, 144, pp. 293-302, (1991)
[9]  
Hanabusa T., Nishioka K., Fujiwara H., Criterion for the Triaxal X-ray Residual Stress Analysis, Z. Metallkde., 74, pp. 307-313, (1983)
[10]  
Hara A., Ikeda T., Behavior of Compressive Deformation of WC-Co Cemented Carbide, Trans. Jpn. Inst. Met., 13, pp. 129-133, (1972)