-
1
-
-
0018329431
-
The Significance of Hardness
-
Angus, H. T., 1979, “The Significance of Hardness,” Wear, Vol. 54, pp. 33-78.
-
(1979)
Wear
, vol.54
, pp. 33-78
-
-
Angus, H.T.1
-
2
-
-
3342877821
-
E 92-82: Standard Test Method for Vickers Hardness of Metallic Materials
-
ASTM, Sec. 03, Vol. 01, ASTM, Easton, MD
-
ASTM, 1996a, “E 92-82: Standard Test Method for Vickers Hardness of Metallic Materials,” 1996 Annual Book of ASTM Standards, Sec. 03, Vol. 01, ASTM, Easton, MD.
-
(1996)
1996 Annual Book of ASTM Standards
-
-
-
3
-
-
17444426175
-
E 384-89: Standard Test Method for Microhardness of Materials
-
ASTM, Sec. 03, Vol. 01, ASTM, Easton, MD
-
ASTM, 1996b, “E 384-89: Standard Test Method for Microhardness of Materials,” 1996 Annual Book of ASTM Standards, Sec. 03, Vol. 01, ASTM, Easton, MD.
-
(1996)
1996 Annual Book of ASTM Standards
-
-
-
6
-
-
17444411197
-
-
Edwards, C. A., and Herbert, A., 1921, J. Inst. Metals, Vol. 25, p. 175.
-
(1921)
J. Inst. Metals
, vol.25
, pp. 175
-
-
Edwards, C.A.1
Herbert, A.2
-
7
-
-
0001570815
-
Experimental Observations and Numerical Modeling of Inelasticity in Dynamically Loaded Ceramics
-
Espinosa, H. D., Raiser, G., Clifton, R. J., and Ortiz, M., 1992, “Experimental Observations and Numerical Modeling of Inelasticity in Dynamically Loaded Ceramics,” Journal of Hard Materials, Vol. 3, No 3/4, p. 285.
-
(1992)
Journal of Hard Materials
, vol.3
, Issue.3-4
, pp. 285
-
-
Espinosa, H.D.1
Raiser, G.2
Clifton, R.J.3
Ortiz, M.4
-
8
-
-
0020175947
-
Rate Effects in Hardness
-
Fairbanks, C. J., Polvani, R. S., Wiederhorn, S. M., Hockey, B. J., and Lawn, B. R., 1982, “Rate Effects in Hardness,” J. Mater. Sci Letters, Vol. 1, p. 391-393.
-
(1982)
J. Mater. Sci Letters
, vol.1
, pp. 391-393
-
-
Fairbanks, C.J.1
Polvani, R.S.2
Wiederhorn, S.M.3
Hockey, B.J.4
Lawn, B.R.5
-
9
-
-
0346181739
-
Hardness Testing
-
Fee, A. R., Segabache, R., and Tobolski, E. L., 1985, “Hardness Testing,” Metals Handbook 8, pp. 71-108.
-
(1985)
Metals Handbook
, vol.8
, pp. 71-108
-
-
Fee, A.R.1
Segabache, R.2
Tobolski, E.L.3
-
10
-
-
0000485115
-
The Hopkinson Bar
-
9th Edition, American Society of Metals, Metals Park, OH
-
P. S. Follansbee, 1985, “The Hopkinson Bar,” Materials Testing, Metals Handbook; 9th Edition, American Society of Metals, Metals Park, OH, Vol. 8, 198-203.
-
(1985)
Materials Testing, Metals Handbook
, vol.8
, pp. 198-203
-
-
Follansbee, P.S.1
-
11
-
-
0141479721
-
Analysis of the Strain-Rate Sensitivity at High Strain Rates in FCC and BCC Metals
-
J. Harding, ed. Institute of Physics Publishing, England
-
Follansbee, P. S., 1989, “Analysis of the Strain-Rate Sensitivity at High Strain Rates in FCC and BCC Metals,” Mechanical Properties of Materials at High Rates of Strain 1989, J. Harding, ed. Institute of Physics Publishing, England, pp. 213-220.
-
(1989)
Mechanical Properties of Materials at High Rates of Strain 1989
, pp. 213-220
-
-
Follansbee, P.S.1
-
13
-
-
0028516336
-
Analysis of Vickers Indentation
-
Giannakopoulus, P. L. and Vestergaard, R., 1994, “Analysis of Vickers Indentation,” International J. Solids and Structures, Vol. 31 (19) pp. 2679-2708.
-
(1994)
International J. Solids and Structures
, vol.31
, Issue.19
, pp. 2679-2708
-
-
Giannakopoulus, P.L.1
Vestergaard, R.2
-
14
-
-
0025803351
-
Deformation Substructures Induced by High Strain Rate Deformation
-
T. C. Lowe, A. D. Rollett, P. S. Follansbee and G. S. Daehn, eds., TMS, Warrendale
-
Gray, G. T., 1991, “Deformation Substructures Induced by High Strain Rate Deformation,” Modeling the Deformation of Crystalline Solids, T. C. Lowe, A. D. Rollett, P. S. Follansbee and G. S. Daehn, eds., TMS, Warrendale, pp. 145-157.
-
(1991)
Modeling the Deformation of Crystalline Solids
, pp. 145-157
-
-
Gray, G.T.1
-
15
-
-
0001588447
-
Criteria for Impulsive Rock Fracture
-
Grady, D. E., and Lipkin, J., 1980, “Criteria for Impulsive Rock Fracture,” Geophysical Research Letters, Vol. 7, p. 255.
-
(1980)
Geophysical Research Letters
, vol.7
, pp. 255
-
-
Grady, D.E.1
Lipkin, J.2
-
18
-
-
0031139484
-
A Novel Technique to Determine Dynamic Indentation Hardness of Metals
-
Koeppel, B.J., and G. Subhash, 1997, “A Novel Technique to Determine Dynamic Indentation Hardness of Metals,” Experimental Techniques, Vol. 21 [3]. pp. 16-18.
-
(1997)
Experimental Techniques
, vol.21
, Issue.3
, pp. 16-18
-
-
Koeppel, B.J.1
Subhash, G.2
-
19
-
-
36149056607
-
An Investigation of the Mechanical properties of Materials at Very High Rates of Loading
-
Series B62
-
H. Kolsky, (1949), “An Investigation of the Mechanical properties of Materials at Very High Rates of Loading,” Proc. R. Soc. London, Series B62, pp. 676-700.
-
(1949)
Proc. R. Soc. London
, pp. 676-700
-
-
Kolsky, H.1
-
20
-
-
84987278725
-
Mechanisms Responsible for Strain-Rate Dependent Compressive Strength in Ceramic Materials
-
Lankford, J., 1981, “Mechanisms Responsible for Strain-Rate Dependent Compressive Strength in Ceramic Materials,” Journal of the American Ceramic Society, Vol. 64, p. c-33.
-
(1981)
Journal of the American Ceramic Society
, vol.64
-
-
Lankford, J.1
-
21
-
-
0038372955
-
Fragmentation of Brittle Materials at High rates of Loading
-
Lankford, J., and Blanchard, C. R., 1991, “Fragmentation of Brittle Materials at High rates of Loading,” Journal of Material Science, Vol. 26, p. 3067.
-
(1991)
Journal of Material Science
, vol.26
, pp. 3067
-
-
Lankford, J.1
Blanchard, C.R.2
-
22
-
-
0024301279
-
Dynamic Compressive Fracture in Fiber-reinforced Ceramic Matrix Composites
-
Lankford, J., and Blanchard, C. R., 1989, “Dynamic Compressive Fracture in Fiber-reinforced Ceramic Matrix Composites,” Materials Science and Engineering, Vol. 107A, pp. 261-268.
-
(1989)
Materials Science and Engineering
, vol.107A
, pp. 261-268
-
-
Lankford, J.1
Blanchard, C.R.2
-
25
-
-
11144234770
-
The Dynamic Stress-Strain Relation of Metals as Determined from Impact Tests with Hard Ball
-
Mok, C. H., and Duffy, J., 1965, “The Dynamic Stress-Strain Relation of Metals as Determined from Impact Tests with Hard Ball,” International J. of Mech. Sci., Vol. 7, pp. 355-371.
-
(1965)
International J. Of Mech. Sci
, vol.7
, pp. 355-371
-
-
Mok, C.H.1
Duffy, J.2
-
26
-
-
0001252007
-
Hopkinson Techniques for Dynamic Recovery Experiments
-
Series A
-
Nemat-Nasser, S., Isaacs, J. B., and Starrett, J. E., 1991, “Hopkinson Techniques for Dynamic Recovery Experiments,” Proceedings of the Royal Society of London, Series A, Vol. 435, pp. 371-391.
-
(1991)
Proceedings of the Royal Society of London
, vol.435
, pp. 371-391
-
-
Nemat-Nasser, S.1
Isaacs, J.B.2
Starrett, J.E.3
-
28
-
-
0029379068
-
A Micromechanical Model for the High Strain Rate Behavior of Ceramics
-
Ravichandran, G., and Subhash, G., 1995, “A Micromechanical Model for the High Strain Rate Behavior of Ceramics,” International Journal of Solids Structures, Vol. 32, No. 17/18, pp. 2627-2646.
-
(1995)
International Journal of Solids Structures
, vol.32
, Issue.17-18
, pp. 2627-2646
-
-
Ravichandran, G.1
Subhash, G.2
-
29
-
-
0001946444
-
The Fundamental Basis of the Hardness Test
-
J. H. Westbrook and H. Conrad, eds., ASM, Metals Park, Ohio
-
Shaw Milton, C., 1973, “The Fundamental Basis of the Hardness Test,” The Science of Hardness Testing and Its Research Applications, J. H. Westbrook and H. Conrad, eds., ASM, Metals Park, Ohio.
-
(1973)
The Science of Hardness Testing and Its Research Applications
-
-
Shaw Milton, C.1
-
31
-
-
0027264401
-
Dynamic Stress-Induced Transformation and Texture Formation in Uniaxial Compression of Zirconia Ceramics
-
Subhash, G., and Nemat-Nasser, S., 1993a, “Dynamic Stress-Induced Transformation and Texture Formation in Uniaxial Compression of Zirconia Ceramics,” Journal of the American Ceramic Society, Vol. 76, No. 1, p. 153
-
(1993)
Journal of the American Ceramic Society
, vol.76
, Issue.1
, pp. 153
-
-
Subhash, G.1
Nemat-Nasser, S.2
-
32
-
-
0027698118
-
Uniaxial Stress Behavior of Y-TZP
-
Subhash, G.f and Nemat-Nasser, S., 1993b, “Uniaxial Stress Behavior of Y-TZP,” Journal of Material Science, Vol. 25, p. 5949.
-
(1993)
Journal of Material Science
, vol.25
, pp. 5949
-
-
Subhash, G.F.1
Nemat-Nasser, S.2
-
33
-
-
0001796269
-
The Constitutive Behavior of Refractory Metals as a Function of Strain Rate
-
Subhash, G., 1995, “The Constitutive Behavior of Refractory Metals as a Function of Strain Rate,” JOM, Vol. 47, No. 5, pp. 55-58.
-
(1995)
JOM
, vol.47
, Issue.5
, pp. 55-58
-
-
Subhash, G.1
-
34
-
-
0032049797
-
Mechanical Behavior of Hot-Pressed Aluminum Nitride Under Uniaxial Compression
-
Subhash, G., and Ravichandran, G., 1998, “Mechanical Behavior of Hot-Pressed Aluminum Nitride Under Uniaxial Compression,” Journal of Material Science, Vol. 33, pp. 1933-1939.
-
(1998)
Journal of Material Science
, vol.33
, pp. 1933-1939
-
-
Subhash, G.1
Ravichandran, G.2
-
35
-
-
0025478235
-
Tensile Fracture Toughness of Ceramic Materials: Effects of Dynamic Loading and Elevated Temperatures
-
Suresh, S., Nakamura, T., Yeshurun, Y., Yang, K.-H., and Duffy, J., 1990, “Tensile Fracture Toughness of Ceramic Materials: effects of Dynamic Loading and Elevated Temperatures,” Journal of the American Ceramic Society, Vol. 73, No. 8, p. 2457.
-
(1990)
Journal of the American Ceramic Society
, vol.73
, Issue.8
, pp. 2457
-
-
Suresh, S.1
Nakamura, T.2
Yeshurun, Y.3
Yang, K.-H.4
Duffy, J.5
-
38
-
-
4043162627
-
A Hybrid Procedure for Dynamic Characterization of Ceramics at Elevated Temperatures
-
SEM
-
Yang, K. H., and Kobayashi, A. S., 1989, “A Hybrid Procedure for Dynamic Characterization of Ceramics at Elevated Temperatures,” Proc. Conf. Hostile Environments and High Temperature Measurements, SEM, pp. 41-44.
-
(1989)
Proc. Conf. Hostile Environments and High Temperature Measurements
, pp. 41-44
-
-
Yang, K.H.1
Kobayashi, A.S.2
-
39
-
-
0000222250
-
Dynamic Process of Vickers Indentation Made on Glass Surfaces
-
Yoshioka, M., and Naoto, Y., 1995, “Dynamic Process of Vickers Indentation Made on Glass Surfaces,” Journal of Applied Physics, Vol. 78, No. 5, pp. 3431-3437.
-
(1995)
Journal of Applied Physics
, vol.78
, Issue.5
, pp. 3431-3437
-
-
Yoshioka, M.1
Naoto, Y.2
|