ICF13B

-9- improving the durability of TBCs no matter by increasing the surface crack density to enlarge the strain tolerance of ceramic coating or reducing the surface crack to prolong the spalling of the ceramic coating. Acknowledgements. This work is supported by the State 973 Program of China (2013CB035700), NSFC (11002104, 11021202, 11272259 and 11172227) and MOE fund. References [1] D. Clarke, C. Levi, Materials design for the next generation thermal barrier coatings. Annual review of materials research, 33 (2003) 383-417. [2] R. Vaßen, M.O. Jarligo, T. Steinke, D.E. Mack, D. Stöver, Overview on advanced thermal barrier coatings. Surface and Coatings Technology, 205 (2010) 938-942. [3] N.P. Padture, M. Gell, E.H. Jordan, Thermal barrier coatings for gas-turbine engine applications. Science, 296 (2002) 280. [4] I. Zaplatynsky, Thermal expansion of some nickel and cobalt spinels and their solid solutions, National Aeronautics and Space Administration, 1971. [5] T. Xu, S. Faulhaber, C. Mercer, M. Maloney, A. Evans, Observations and analyses of failure mechanisms in thermal barrier systems with two phase bond coats based on NiCoCrAlY. Acta materialia, 52 (2004) 1439-1450. [6] Y.C. Zhou, T. Tonomori, A. Yoshida, L. Liu, G. Bignall, T. Hashida, Fracture characteristics of thermal barrier coatings after tensile and bending tests. Surface and Coatings Technology, 157 (2002) 118-127. [7] A.G. Evans, D. Mumm, J. Hutchinson, G. Meier, F. Pettit, Mechanisms controlling the durability of thermal barrier coatings. Progress in Materials Science, 46 (2001) 505-553. [8] W. Tie-Jun, Micro-and macroscopic damage and fracture behaviour of welding coarse grained heat affected zone of a low alloy steel: Mechanisms and modelling. Engineering Fracture Mechanics, 45 (1993) 799-812. [9] G.W. Schulze, F. Erdogan, Periodic cracking of elastic coatings. International Journal of Solids and Structures, 35 (1998) 3615-3634. [10] J.J. Vlassak, Channel cracking in thin films on substrates of finite thickness. International Journal of Fracture, 119 (2003) 299-323. [11] X. Fan, W. Zhang, T. Wang, G. Liu, J. Zhang, Investigation on periodic cracking of elastic film/substrate system by the extended finite element method. Applied Surface Science, 257 (2011) 6718-6724. [12] X.L. Fan, W.X. Zhang, T.J. Wang, Q. Sun, The effect of thermally grown oxide on multiple surface cracking in air plasma sprayed thermal barrier coating system. Surface and Coatings Technology, (2012). [13] W. Zhang, X. Fan, T. Wang, The surface cracking behavior in air plasma sprayed thermal barrier coating system incorporating interface roughness effect. Applied Surface Science, (2011). [14] J.R. Rice, Elastic fracture mechanics concepts for interfacial cracks. J. Appl. Mech.(Trans. ASME), 55 (1988) 98-103. [15] D. Mumm, A. Evans, On the role of imperfections in the failure of a thermal barrier coating made by electron beam deposition. Acta materialia, 48 (2000) 1815-1827. [16] D.L. Ruckle, Plasma-sprayed ceramic thermal barrier coatings for turbine vane platforms. Thin solid films, 73 (1980) 455-461. [17] R.A. Miller, Current status of thermal barrier coatings--An overview* 1. Surface and Coatings Technology, 30 (1987) 1-11. [18] Y. Bai, Z. Han, H. Li, C. Xu, Y. Xu, Z. Wang, C. Ding, J. Yang, High performance nanostructured ZrO2 based thermal barrier coatings deposited by high efficiency supersonic plasma

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