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J Ma et al. Journal of the European Ceramic Society 24(2004)825-831 References 9. He. Y. M.. Bartlett. A. Evans. A. G. and Hutchinson, J. W. Kinking of a crack out of an interface: role of in-plane stress. J. 1. Clegg endall, K. Alford. N. M. Birchall, J. D. and Am. Ceran.Soc.1991,74.767-771 Button, T.W., A simple way to make tough ceramics. Nature. 10. Mammoli, A. A. Graham, A. L. Reimanis, I. E and Tullock 1990,347,455-457 D. L, The effect of flaws on the propagation of cracks at bi 2. Blanks, K.s., Kristoffersson. A, Carlstrom. E and Clegg. w.J materials interfaces. Acta Mater. 1995.. 1149-1156 Crack deflection in ceramic laminates using porous interlayers.J. 11. Davis. J. B. Kristoffersson, A. Carlstrom, E and Clegg. w.J Eur.cerm.Soc.1998,18,1945-1951. Fabrication and crack deflection in ceramic laminates with por- 3. Kendall. K. Transition between cohesive and interfacial failure interlayers. J. Am. Ceram. Soc., 2000. 8. 2369-2374 n a laminate. Proc. R. Soc. London. 1975. A344. 287-302. 12. Kellett, B J and Lange, F. F, Thermodynamics of densification 4. He M. Y. and Hutchinson. J. w. Crack deflection at an inter- sintering of simple particle arrays, equilibrium configurations, pore face between dissimilar elastic materials. Int. Solids Struct stability, and shrinkage. J. Am. Cera. Soc., 1989. 72. 725-734. 1989,25,1053-1067 13. Kingery, W.D. and Francois, B, The sintering of crystallin 5. Martinez, D and Gupta, V. Energy criterion for crack deflection ides, I. interactions between grain boundaries and pores. In at an interface between two orthotropic media. J. Mech. Phys. Sintering and Related Phenomena, ed. G. C. Kuczynski Solids.1994.42.1247-1271 N. A. Hooton and C. F. Gibbon. Gordon and Breach Science In Key Engineering Materials, Vol 116-117. ed. T. w. Clyne. 14. Lange, F. F. Sinterability of agglomerated powders. J. Am Trans Tech. Publications. Aedersmannsdorf. Switzerland. 1996 Ceran.Soc.1984,67,83-89 93-208. 15. He, Y. M. and Hutchinson, J. W.. Kinking of a crack out of an 7. Lee, W., Howard, S. J. and Clegg. W.J.. Growth of interface interface. J. App. Mech., 1989, 56, 270-278 defects and its effect on crack deflection and toughening criteria. 16. Clegg, w.J., Design of ceramic laminates for structural applica- Acta mater,1996,44,3905-3922 ns. Mater. Sci. Tech. 1998. 14. 483-495. 8. Cook. J. and Gordon. J. E. A mechanism for the control of 17. Sida, G.R., On the determination of stress intensity factors for crack propagation in all-brittle systems. Proc. R. Soc. London me common structural fract. Mech. 2 Problems. 1970. En 1964,A282,508-520References 1. Clegg, W. J., Kendall, K., Alford, N. M., Birchall, J. D. and Button, T. W., A simple way to make tough ceramics. Nature, 1990, 347, 455–457. 2. Blanks, K. S., Kristoffersson, A., Carlstrom, E. and Clegg, W. J., Crack deflection in ceramic laminates using porous interlayers. J. Eur. Ceram. Soc., 1998, 18, 1945–1951. 3. Kendall, K., Transition between cohesive and interfacial failure in a laminate. Proc. R. Soc. London, 1975, A344, 287–302. 4. He, M. Y. and Hutchinson, J. W., Crack deflection at an inter￾face between dissimilar elastic materials. Int. J. Solids Struct., 1989, 25, 1053–1067. 5. Martinez, D. and Gupta, V., Energy criterion for crack deflection at an interface between two orthotropic media. J. Mech. Phys. Solids, 1994, 42, 1247–1271. 6. Lee, W. and Clegg, W. J., The deflection of cracks at interfaces. In Key Engineering Materials, Vol 116–117, ed. T. W. Clyne. Trans Tech. Publications, Aedersmannsdorf, Switzerland, 1996, pp. 193–208. 7. Lee, W., Howard, S. J. and Clegg, W. J., Growth of interface defects and its effect on crack deflection and toughening criteria. Acta Mater., 1996, 44, 3905–3922. 8. Cook, J. and Gordon, J. E., A mechanism for the control of crack propagation in all-brittle systems. Proc. R. Soc. London, 1964, A282, 508–520. 9. He, Y. M., Bartlett, A., Evans, A. G. and Hutchinson, J. W., Kinking of a crack out of an interface: role of in-plane stress. J. Am. Ceram. Soc., 1991, 74, 767–771. 10. Mammoli, A. A., Graham, A. L., Reimanis, I. E. and Tullock, D. L., The effect of flaws on the propagation of cracks at bi￾materials interfaces. Acta Mater., 1995, 43, 1149–1156. 11. Davis, J. B., Kristoffersson, A., Carlstrom, E. and Clegg, W. J., Fabrication and crack deflection in ceramic laminates with por￾ous interlayers. J. Am. Ceram. Soc., 2000, 8, 2369–2374. 12. Kellett, B. J. and Lange, F. F., Thermodynamics of densification: sintering of simple particle arrays, equilibrium configurations, pore stability, and shrinkage. J. Am. Ceram. Soc., 1989, 72, 725–734. 13. Kingery, W. D. and Francois, B., The sintering of crystalline oxides, I.: interactions between grain boundaries and pores. In Sintering and Related Phenomena, ed. G. C. Kuczynski, N. A. Hooton and C. F. Gibbon. Gordon and Breach Science Publisher, NY, 1967. 14. Lange, F. F., Sinterability of agglomerated powders. J. Am. Ceram. Soc., 1984, 67, 83–89. 15. He, Y. M. and Hutchinson, J. W., Kinking of a crack out of an interface. J. App. Mech., 1989, 56, 270–278. 16. Clegg, W. J., Design of ceramic laminates for structural applica￾tions. Mater. Sci. Tech., 1998, 14, 483–495. 17. Isida, G. R., On the determination of stress intensity factors for some common structural Fract. Mech., 2 Problems, 1970, Eng, 61–79. J. Ma et al. / Journal of the European Ceramic Society 24 (2004) 825–831 831
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