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Tetragonal-10-monoclinic phase transformation in ceria-zirconia [4XY. Chen, X H. Zheng, H.S. Fang, H Z. Shi, X F. Wang and H.M. Chen, The study of martensitic transformation and nanoscale surface relief in zirconia. j Mater. Sci. Lett 21415418(2002) S]G M. Wolten, Diffusionless phase transformation in zirconia and hafnia. J. Am. Ceram Soc.46418-422(1963) [6J.E. Bailey, Monoclinic-tetragonal transformation and associated twinning in thin films of zirconia. Proc. Roy. Soc. A 279 395-412(1964) [7G. K. Bansal and A H. Heuer, On a martensitic phase transformation in zirconia(ZrO2)-L Metallographic evidence. Acta Metall. 20 1281-1289(1972) [8E.C. Subbarao, H.S. Maiti and K.K. Srivastava, Martensitic transformation in zirconia. Phys. Stat Sol. (a)219-39(1974) 9S.T. Buljan, H.A. McKinstry and V.s. Stubican, Optical and X-ray single crystal studies f the monoclinic 2 tetragonal transition in J. Am. Ceram. Soc. 59 351-354 (1976 [0 P.E. Reyes-Morel and l.w. Chen, Transformation plasticity of CeO2-stabilized tetragonal zirconia polycrystals: I. Stress assistance and autocatalysis. J. Am. Ceram. Soc. 71 43-353(1988) [1]G. Rauchs, T. Fett and D. Munz, R-curve behaviour of 9Ce-TZP ceramics Eng Fract Mech.69389401(2002) [12] W.M. Riven, W L. Fraser and S.w. Kennedy, The martensite crystallography of tetragonal zirconia, in Advances in Ceramics, edited by A.H. Heuer and L w. Hobbs Vol. 3(The American Ceramic Society, Columbus, OH, 1981), pp. 82-97 [3]GR. Hugo and B.C. Muddle, Tetragonal to monoclinic transformation in ceria-zirconia, in Mater. Sci. Forum, edited by B. C Muddle, Vol 56-58(Trans. Tech Pub., Switzerland, 1990),pp.357-362 [14]GR. Hugo, B.C. Muddle and R H.J. Hannink, Ceramic developments in Mater Sci. Forum, edited by CC Sorell and B. Ben Nissan, Vol. 34-36(Trans. Tech. Pub Switzerland, 1988), pp. 165-169 [5]GR. Hugo and B.C. Muddle, Application of the crystallographic theory to the tetragonal to monoclinic transformation in ceria-zirconia, in Proc. ICOMAT-92 International Conference on Martensitic Transformations(Monterey Institute, USA 1993),pp.665-670 []A F. Acton, M. Bevis, A.G. Crocker and N D H. Ross, Transformation strain in lattices Proc.Roy.Soc.A320101-103(1970) [17 M.S. Wechsler, D.S. Lieberman and T.A. Read, On the theory of the formation of martensite.Trans. AIME 197 1503-1515(1953 rapny of martensitic transformations Acta Metall. 2 224-232(195 [9T Mura, T. Mori and M. Kato, The elastic field caused by elipsoidal inclusion and the application to martensite formation. J. Mech. Phy 24305-318(1976) [20N. Navruz, Crystallography of cubic to orthorhombic mart ansformation based on the infinitesimal deformation approach in the alloy Aucu Trans.7610291035 [21]N. Navruz, Crystallographic analysis of cubic to orthorhombic martensitic transforma tion for the formation of the oxide plates in tantalum. J. Mater. Sci. Lett. 22 17-19 222 N. Navruz, Application of the infinitesimal deformation approach to the tetragona to-monoclinic transformation in Mgo-partially stabilized zirconia. Phil. Mag. Lett 8415-20(2004)[4] X.Y. Chen, X.H. Zheng, H.S. Fang, H.Z. Shi, X.F. Wang and H.M. Chen, The study of martensitic transformation and nanoscale surface relief in zirconia. J. Mater. Sci. Lett. 21 415–418 (2002). [5] G.M. Wolten, Diffusionless phase transformation in zirconia and hafnia. J. Am. Ceram. Soc. 46 418–422 (1963). [6] J.E. Bailey, Monoclinic-tetragonal transformation and associated twinning in thin films of zirconia. Proc. Roy. Soc. A 279 395–412 (1964). [7] G.K. Bansal and A.H. Heuer, On a martensitic phase transformation in zirconia (ZrO2) – I. Metallographic evidence. Acta. Metall. 20 1281–1289 (1972). [8] E.C. Subbarao, H.S. Maiti and K.K. Srivastava, Martensitic transformation in zirconia. Phys. Stat. Sol. (a) 21 9–39 (1974). [9] S.T. Buljan, H.A. McKinstry and V.S. Stubican, Optical and X-ray single crystal studies of the monoclinic ! tetragonal transition in ZrO2. J. Am. Ceram. Soc. 59 351–354 (1976). [10] P.E. Reyes-Morel and I.W. Chen, Transformation plasticity of CeO2-stabilized tetragonal zirconia polycrystals: I. Stress assistance and autocatalysis. J. Am. Ceram. Soc. 71 343–353 (1988). [11] G. Rauchs, T. Fett and D. Munz, R-curve behaviour of 9Ce-TZP ceramics. Eng. Fract. Mech. 69 389–401 (2002). [12] W.M. Kriven, W.L. Fraser and S.W. Kennedy, The martensite crystallography of tetragonal zirconia, in Advances in Ceramics, edited by A.H. Heuer and L.W. Hobbs, Vol. 3 (The American Ceramic Society, Columbus, OH, 1981), pp. 82–97. [13] G.R. Hugo and B.C. Muddle, Tetragonal to monoclinic transformation in ceria-zirconia, in Mater. Sci. Forum, edited by B.C. Muddle, Vol. 56–58 (Trans. Tech. Pub., Switzerland, 1990), pp. 357–362. [14] G.R. Hugo, B.C. Muddle and R.H.J. Hannink, Ceramic developments in Mater. Sci. Forum, edited by C.C Sorell and B. Ben Nissan, Vol. 34–36 (Trans. Tech. Pub., Switzerland, 1988), pp. 165–169. [15] G.R. Hugo and B.C. Muddle, Application of the crystallographic theory to the tetragonal to monoclinic transformation in ceria-zirconia, in Proc. ICOMAT-92, International Conference on Martensitic Transformations (Monterey Institute, USA, 1993), pp. 665–670. [16] A.F. Acton, M. Bevis, A.G. Crocker and N.D.H. Ross, Transformation strain in lattices. Proc. Roy. Soc. A 320 101–103 (1970). [17] M.S. Wechsler, D.S. Lieberman and T.A. Read, On the theory of the formation of martensite. Trans. AIME 197 1503–1515 (1953). [18] J.S. Bowles and J.K. Mackenzie, The crystallography of martensitic transformations, Acta Metall. 2 224–232 (1954). [19] T. Mura, T. Mori and M. Kato, The elastic field caused by a general elipsoidal inclusion and the application to martensite formation. J. Mech. Phys. Solids 24 305–318 (1976). [20] N. Navruz, Crystallography of cubic to orthorhombic martensitic transformation based on the infinitesimal deformation approach in the alloy AuCu. Phas. Trans. 76 1029–1035 (2003a). [21] N. Navruz, Crystallographic analysis of cubic to orthorhombic martensitic transforma￾tion for the formation of the oxide plates in tantalum. J. Mater. Sci. Lett. 22 17–19 (2003b). [22] N. Navruz, Application of the infinitesimal deformation approach to the tetragonal￾to-monoclinic transformation in MgO-partially stabilized zirconia. Phil. Mag. Lett. 84 15–20 (2004). Tetragonal-to-monoclinic phase transformation in ceria-zirconia 545
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