ICF13A

13th International Conference on Fracture June 16–21, 2013, Beijing, China 7 References [1] W.Weibull, A Statistical distribution function of wide applicability. J. Appl. Mech. 18 (1951), pp. 293-297. [2] C. Lei, W. Frazier, E. Lee, The effect of hot isostatic pressing on cast aluminum, JOM 49 (1997) , pp. 38-39. [3] G. Lütjering ,A. Gysler, in Titanium Science and Technology, vol. 4, DGM, 1985, p.2068. [4] ASTM E-399. Test methods for plane-strain fracture toughness of metallic materials. Annual Book of ASTM Standards, 1978, American Society of Testing and Materials, West Conshohoken, Pa. [5] ASTM E-647. Measurements of fatigue crack growth rate. Annual Book of ASTM Standards. American Society of Testing and Materials, 1978, West Conshohoken, Pa. [6] N. L. Richards,Quantitative evaluation of fracture toughness–microstructural relationships in alpha-beta titanium alloys . JMEPEG,13 (2004),pp. 218−225. [7] K. K. Murthy, S. Sundaresan, Eng. Fract. Mech. 58 (1997), pp.29-41. [8] A.A. Rubinstein, Mechanics of the crack path formation. Int. J. Fracture 47(1991), pp.291-305. [9] K.S. Chan, Y-W. Kim, Effects of lamellae spacing and colony size on the fracture resistance of a fully-lamellar TiAl alloy, Acta Metall. Mater. 43 (1995), pp. 439-451. [10] H. Margolin, Metall. Mater. Trans. 13 (1982), pp 269-274. [11] M. Niinomi, T. Kobayashi, Fracture characteristics analysis related to the microstructures in titanium alloys, Mater. Sci. Eng A 213 (1996), pp.16-24. [12] J.E. Campbell et al., Application of Fracture Mechanics for Selection of Metallic Structural Materials, Translated by Wang Yilin, Beijing: Metallurgical Industry Press, 1992. [13] M.A. Langøy, S.R. Stock, Metall. Mater. Trans. A 32 (2001), pp.2297-2314. (c) (d)

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