[1]唐学智, 李录平, 黄章俊, 等. 重型燃气轮机涡轮叶片寿命分析研究进展[J]. 燃气轮机技术, 2015(3): 6-13. Tang Xuezhi, Li Luping, Huang Zhangjun, et al. Development of study on life prediction for turbine blade of heavy-duty gas turbine[J]. Gas Turbine Technology, 2015(3): 6-13 [2]Jiang X W, Wang D, Xie G, et al. The effect of long-term thermal exposure on the microstructure and stress rupture property of a directionally solidified Ni-based superalloy[J]. Metallurgical & Materials Transactions A, 2014, 45(13): 6016-6026. [3]Han S L, Yoo K B, Kim D S, et al. Effects of thermal exposure on microstructure and mechanical properties of Ni based superalloy GTD111[J]. Advanced Materials Research, 2011, 275: 31-34. [4]Qin X Z, Guo J T, Yuan C, et al. Effects of long-term thermal exposure on the microstructure and properties of a cast Ni-base superalloy[J]. Metallurgical and Materials Transactions A, 2007, 38: 3014-3022. [5]Aghaie-Khafri M, Farahany S. Creep life prediction of thermally exposed Rene 80 superalloy[J]. Journal of Materials Engineering and Performance, 2010, 19(7): 1065-1070. [6]Choi B G, Kim I S, Kim D H, et al. Temperature dependence of MC decomposition behavior in Ni-base superalloy GTD 111[J]. Materials Science and Engineering A, 2008, 478(1/2): 329-335. [7]Yang J X, Zheng Q, Sun X F, et al. Morphological evolution of γ′ phase in K465 superalloy during prolonged aging[J]. Materials Science & Engineering A, 2007, 457(1/2): 148-155. [8]姚志浩, 董建新, 陈 旭, 等. GH738高温合金长期时效过程中γ′相演变规律[J]. 材料热处理学报, 2013, 34(1): 31-37. Yao Zhihao, Dong Jianxin, Chen Xu, et al. Gamma prime phase evolution during long-time exposure for GH738 superalloy[J]. Transactions of Materials and Heat Treatment, 2013, 34(1): 31-37. [9]杨功显, 徐永锋, 江 雷, 等. 长期时效对燃气轮机叶片用镍基高温合金微观组织的影响[J]. 西安理工大学学报, 2012(4): 453-458. Yang Gongxian, Xu Yongfeng, Jiang Lei, et al. The effect of long-term thermal exposure on the microstructure of a directionally solidified nickel-base superalloy[J]. Journal of Xi'an University of Technology, 2012(4): 453-458. [10]Chang J C, Yun Y H, Choi C, et al. Failure analysis of gas turbine buckets[J]. Engineering Failure Analysis, 2003(10): 559-567. [11]Lvov G, Levit V I, Kaufman M J. Mechanism of primary MC carbide decomposition in Ni-base superalloys[J]. Metallurgical & Materials Transactions A, 2004, 35(6): 1669-1679. [12]Lvova E, Norsworthy D. Influence of service-induced microstructural changes on the aging kinetics of rejuvenated Ni-based superalloy gas turbine blades[J]. Journal of Materials Engineering & Performance, 2001, 10(3): 299-312. [13]Koul A K, Castillo R. Assessment of service induced microstructural damage and its rejuvenation in turbine blades[J]. Metallurgical Transactions A, 1988, 19(8): 2049-2066. [14]Kim K M, Park J S, Lee D H, et al. Analysis of conjugated heat transfer, stress and failure in a gas turbine blade with circular cooling passages[J]. Engineering Failure Analysis, 2011(18): 1212-1222. [15]姜祥伟. 重型工业燃气轮机涡轮叶片的服役损伤与寿命预测研究[D]. 北京: 中国科学院大学, 2015. Jiang Xiangwei. Research on service damage and life prediction of heavy industrial gas turbine blade[D]. Beijing: University of Chinese Academy of Sciences, 2015. [16]Zhong X Y, Han E H, Wu X Q. Corrosion behavior of alloy 690 in aerated supercritical water[J]. Corrosion Science, 2013, 66: 369-379. [17]Lobnig R E, Schmidt H P, Hennesen K, et al. Diffusion of cations in chromia layers grown on iron-base alloys[J]. Oxidation of Metals, 1992, 37(1): 81-93. [18]冯 强, 童锦艳, 郑运荣, 等. 燃气涡轮叶片的服役损伤与修复[J]. 中国材料进展, 2012, 31(12): 21-34. Feng Qiang, Tong Jinyan, Zheng Yunrong, et al. Service induced degradation and rejuvenation of gas turbine blades[J]. Materials China, 2012, 31(12): 21-34. [19]Prikhodko S V, Ardell A J. Coarsening of γ′ in Ni-Al alloys aged under uniaxial compression: I. Early-stage kinetics[J]. Acta Materialia, 2003, 51(17): 5001-5012. [20]Ardell A J, Prikhodko S V. Coarsening of γ′ in Ni-Al alloys aged under uniaxial compression: II. Diffusion under stress and retardation of coarsening kinetics[J]. Acta Materialia, 2003, 51(17): 5013-5019. [21]Prikhodko S V, Ardell A J. Coarsening of γ′ in Ni-Al alloys aged under uniaxial compression: III. Characterization of the morphology[J]. Acta Materialia, 2003, 51(17): 5021-5036. [22]Sondhi S K, Dyson B F, Mclean M. Tension-compression creep asymmetry in a turbine disc superalloy: Roles of internal stress and thermal ageing[J]. Acta Materialia, 2004, 52(7): 1761-1772. [23]《工程材料实用手册》委员会, 工程材料实用手册-第2卷: 变形高温合金 铸造高温合金[M]. 2版. 北京: 中国标准出版社, 2002. |