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S. Bueno et al. / Journal of the European Ceramic Society 28(2008)1961-1971 36. Mussler, B, Swain, M. V and Claussen, N, Dependence of fracture tough- al model and ultrasonic deter alumina on grain size and test technique. J. Am. Cera. Soc., 1982, of the effective elastic constants of aluminium titanate. Ceram. Int. 2008 65,566-572. 34.181-188 Damani, R Gstrein, R and Danzer, R Critical notch-root radius effect 46. Hernandez, M. G. Bueno, S, Sanchez, T, Anaya, J J and Baudin, C, Non in senb.s fracture toughness testing.. Eur Ceram soc. I destructive characterisation of alumina/aluminium titanate composites using echanical model and ultrason 38. Sbaizero, O, Pezzotti, G. and Nishida, T, Fracture energy and R-curve of microcraking Ceram. Int, 2008, 34, 189-19 behaviour of Al]O3/Mo composites. Acta Mater, 1998, 46, 681-687 47. Evans, A. G and Faber, K. T, Crack-growth resistance of microcracking 39. Bar-On, I, Baratta, F I and Cho, K, Crack Stability and its effect on fracture brittle materials. J. Am. Ceram. Soc 1984 67. 255-26 toughness ofhot pressed silicon nitride beam specimens. J Am Ceram Soc., 48. Lutz, E H, Claussen, N and Swain, M. V,KR-curve behaviour of duplex 1996,79,2300-2308. J. Am. Ceram Soc. 1991.74.11-18 40. Seidel, J and Rodel, J, Measurement of crack tip toughness in alumina as 49. Knehens, R and Steinmbrech, R, Memory effect of crack resistance during function of grain size. J. Am. Ceram. Soc., 1997, 80, 433-438 slow crack growth in notched Al2O3 bend specimens. J Mater Sci. Le 41. Fett, T, Munz, D, Sidel. J. Stech. M. and Rodel, J, Correlation between 1982,1,327-329 long and short crack R-curves in alumina using the crack opening displace- 50. Davidge, R. w. and Tappin, G, The effective surface energy of brittle ment and fracture mechanical weight function approach. J Am. Ceram Soc. naterials. J. Mater Sci.. 1968, 3, 165-173. 1996,79,1189-1196. 51. Simpson, A, Effect of microstructure on measurements of fracture energy 42. ROdel, J, Kelly, J F and Lawn, B.R., In situ measurements of bridged crack of AlO3. J Arm. Cera. Soc., 1973, 56, 7-11 interfaces in the scanning electron microscope. J. Am. Ceram. Soc., 1990, 52. Wu, CC. M, Freiman, S. w, Rice, R. W. and Mecholsky, J.J. Microstruc- 73,3313-3318 tural aspects of crack propagation in ceramics. J. Mater Sci, 1978, 13, 43. Reichl. A. and Steinbrech, R. w. Determination of crack-bridging forces 659-2670 J.Am. Ceram Soc.,1988,71,C-299C-301 3. Chantikul, P. Bennison, S.J. and Lawn, B. R. Role of grain size in the 44. Wiederhom, S M., Fracture of sapphire. J. A. Ceram Soc., 1969, 52, 485 ength and R-curve properties of alumina. J. Am. Ceram. Soc., 1990, 73, 5. Bueno, S, Hernandez, M. G, Sanchez, T, Anaya, J.J. and Baudin, C, Non 2419-242 destructive characterisation of alumina/aluminium titaS. Bueno et al. / Journal of the European Ceramic Society 28 (2008) 1961–1971 1971 36. Mussler, B., Swain, M. V. and Claussen, N., Dependence of fracture tough￾ness of alumina on grain size and test technique. J. Am. Ceram. Soc., 1982, 65, 566–572. 37. Damani, R., Gstrein, R. and Danzer, R., Critical notch-root radius effect in SENB-S fracture toughness testing. J. Eur. Ceram. Soc., 1996, 16, 695– 702. 38. Sbaizero, O., Pezzotti, G. and Nishida, T., Fracture energy and R-curve behaviour of Al2O3/Mo composites. Acta Mater., 1998, 46, 681–687. 39. Bar-On, I., Baratta, F. I. and Cho, K., Crack Stability and its effect on fracture toughness of hot pressed silicon nitride beam specimens. J. Am. Ceram. Soc., 1996, 79, 2300–2308. 40. Seidel, J. and Rodel, J., Measurement of crack tip toughness in alumina as ¨ a function of grain size. J. Am. Ceram. Soc., 1997, 80, 433–438. 41. Fett, T., Munz, D., Sidel, J., Stech, M. and Rodel, J., Correlation between ¨ long and short crack R-curves in alumina using the crack opening displace￾ment and fracture mechanical weight function approach. J. Am. Ceram. Soc., 1996, 79, 1189–1196. 42. Rodel, J., Kelly, J. F. and Lawn, B. R., In situ measurements of bridged crack ¨ interfaces in the scanning electron microscope. J. Am. Ceram. Soc., 1990, 73, 3313–3318. 43. Reichl, A. and Steinbrech, R. W., Determination of crack-bridging forces. J. Am. Ceram. Soc., 1988, 71, C-299–C-301. 44. Wiederhorn, S. M., Fracture of sapphire. J. Am. Ceram. Soc., 1969, 52, 485. 45. Bueno, S., Hernandez, M. G., S ´ anchez, T., Anaya, J. J. and Baudin, C., Non ´ destructive characterisation of alumina/aluminium titanate composites using a micromechanical model and ultrasonic determinations. Part I. Evaluation of the effective elastic constants of aluminium titanate. Ceram. Int., 2008, 34, 181–188. 46. Hernandez, M. G., Bueno, S., S ´ anchez, T., Anaya, J. J. and Baudin, C., Non ´ destructive characterisation of alumina/aluminium titanate composites using a micromechanical model and ultrasonic determinations. Part II. Evaluation of microcraking. Ceram. Int., 2008, 34, 189–195. 47. Evans, A. G. and Faber, K. T., Crack-growth resistance of microcracking brittle materials. J. Am. Ceram. Soc., 1984, 67, 255–260. 48. Lutz, E. H., Claussen, N. and Swain, M. V., KR-curve behaviour of duplex ceramics. J. Am. Ceram. Soc., 1991, 74, 11–18. 49. Knehens, R. and Steinmbrech, R., Memory effect of crack resistance during slow crack growth in notched Al2O3 bend specimens. J. Mater. Sci. Lett., 1982, 1, 327–329. 50. Davidge, R. W. and Tappin, G., The effective surface energy of brittle materials. J. Mater. Sci., 1968, 3, 165–173. 51. Simpson, A., Effect of microstructure on measurements of fracture energy of Al2O3. J. Am. Ceram. Soc., 1973, 56, 7–11. 52. Wu, C. C. M., Freiman, S. W., Rice, R. W. and Mecholsky, J. J., Microstruc￾tural aspects of crack propagation in ceramics. J. Mater. Sci., 1978, 13, 2659–2670. 53. Chantikul, P., Bennison, S. J. and Lawn, B. R., Role of grain size in the strength and R-curve properties of alumina. J. Am. Ceram. Soc., 1990, 73, 2419–2427
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