Statistical Properties of Residual Stresses and Intergranular Fracture in Ceramic Materials
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[1] S. Suresh,et al. Theory and experiments of fracture in cyclic compression: Single phase ceramics, transforming ceramics and ceramic composites , 1988 .
[2] J. Hutchinson,et al. Microcracking in Ceramics Induced by Thermal Expansion or Elastic Anisotropy , 1988 .
[3] J. Fredrich,et al. Micromechanics of thermally induced cracking in three crustal rocks , 1986 .
[4] Anthony G. Evans,et al. Some effects of microcracks on the mechanical properties of brittle solids—I. Stress, strain relations , 1985 .
[5] J. Blendell,et al. Measurement of Stress Due to Thermal Expansion Anisotropy in Al2O3 , 1982 .
[6] R. Rice,et al. Grain‐Size Dependence of Spontaneous Cracking in Ceramics , 1979 .
[7] A. Evans. Microfracture from thermal expansion anisotropy—I. Single phase systems , 1978 .
[8] R. Bradt,et al. Grain Size/Microcracking Relations for Pseudobrookite Oxides , 1978 .
[9] R. Bradt,et al. Influence of Grain Size on Effects of Thermal Expansion Anisotropy in MgTi2O5 , 1973 .
[10] Herbert F. Wang,et al. Single Crystal Elastic Constants and Calculated Aggregate Properties. A Handbook , 1971 .
[11] R. Davidge,et al. The strength of two-phase ceramic/glass materials , 1968 .
[12] Y. Matsuo,et al. Effect of Grain Size on Microcracking in Lead Titanate Ceramics , 1966 .
[13] F. Clarke. Residual strain and the fracture stress-grain size relationship in brittle solids , 1964 .
[14] R. Honeycombe,et al. The plastic deformation of non-cubic metals by heating and cooling , 1946, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[15] S. Suresh. Fatigue of materials , 1991 .
[16] N. Laws,et al. Microcracking in polycrystalline ceramics: elastic isotropy and thermal anisotropy , 1989 .
[17] M. Ortiz,et al. Microstructural thermal stresses in ceramic materials , 1988 .