[1]姚志浩, 董建新, 张麦仓, 等, GH864合金显微组织与力学性能的关联性[J]. 稀有金属材料与工程,2010, 39(9): 1565-1570. [2]Mandy L Brogdon,Andrew H Rosenberger. Evaluation of the influence of grain structure on the fatigue variablity of Waspaloy[A]. Eleventh International Symposium on Superalloys[C]. Rennsylvania,2008. [3]Tokoro K, Wikstrom N P, Ojo O A, et al. Variation in diffusion-induced solidification rate of liquated Ni-Cr-B insert during TLP bonding of Waspaloy superalloy[J]. Materials Science and Engineering, 2008, 477: 311-318. [4]Keh-Minn Chang, Xingbo Liu. Effect of γ′ content on the mechanical behavior of the Waspaloy alloy system[J]. Materials Science and Engineering A, 2001, 308: 1-8. [5]Kelekanjeri V, Siva Kumar G, Gerhardt Rosario A. Characterization of mirostructure fluctuations in Waspaloy exposed to 760℃ for times up to 2500h[J]. Electrochimica Acta, 2006, 51:1873-1880. [6]Karhausen K, Kopp R, De Souza M M. Numerical simulation method for designing thermomechanical treatments, illustrated by bar rolling[J]. Scandinavian Journal of Metallurgy, 1991, 20(6):351-363. [7]Shen G S, Semiatin S L, Shivpuri R. Modeling microstructural development during the forging of Waspaloy[J]. Metallurgical and Materials Transactions A, 1995, 26A:1795-1803. [8]Hu Z M, Brooks J W, Dean T A. Experimental and theoretical analysis of deformation and microstructural evolution in the hot-die forging of Titanium alloy aerofoil sections[J]. Journal of Materials Processing Technology,1999, 88:251-265. [9]李俊. 热锻成型工件的微观组织模拟[J]. 塑性工程学报, 1999, 6(2):8-12. [10]《中国航空材料手册》编辑委员会.中国航空材料手册[M].北京:中国标准出版社,2001.
|