[1] FUKUDA M. Advanced USC technology development in Japan[M]. Amsterdam:Elsevier,2017. [2] 张涛,郝丽婷,田峰,等. 700℃超超临界火电机组用高温材料研究进展[J]. 机械工程材料,2016,40(2):1-6. ZHANG Tao,HAO Liting,TIAN Feng,et al. Research progress on high temperature materials for 700℃ ultra-supercritical coal-fired unit[J]. Materials for Mechanical Engineering,2016,40(2):1-6. [3] LEE N H,KIM S,CHOE B H,et al. Failure analysis of a boiler tube in USC coal power plant[J]. Engineering Failure Analysis,2009,16(7):2031-2035. [4] HYDE C J,HYDE T H,SUN W,et al. Damage mechanics based predictions of creep crack growth in 316 stainless steel[J]. Engineering Fracture Mechanics,2010,77(12):2385-2402. [5] MEHMANPARAST A,MALEKI S,YATOMI M,et al. Specimen geometry and size effects on the creep crack growth behaviour of P91 weldments[C]//The ASME 2013 Pressure Vessels and Piping Conference,14 July,2013. Paris,France. [6] KUMAR Y,VENUGOPAL S,SASIKALA G,et al. Study of creep crack growth in a modified 9Cr-1Mo steel weld metal and heat affected zone[J]. Materials Science and Engineering:A,2016,655:300-309. [7] HYDE T,SABER M,SUN W. Testing and modelling of creep crack growth in compact tension specimens from a P91 weld at 650℃[J]. Engineering Fracture Mechanics. 2010,77(15):2946-2957. [8] HYDE T. Creep crack growth in 316 stainless steel at 600℃[J]. High Temperature Technology,1988,6(2):51-61. [9] WEN J F,TU S T,GAO X L,et al. Simulations of creep crack growth in 316 stainless steel using a novel creep-damage model[J]. Engineering Fracture Mechanics,2013,98:169-184. [10] R5. Assessment procedure for the high temperature response of structures[S]. Gloucester:EDF Energy Nuclear Generation Ltd,2014. [11] BS7910. Guidance on method for assessing the acceptability of flaws in metallic structure[S]. London:British Standards Institution,2019. [12] RCC-MRx. Design and construction rules for mechanical components of nuclear installations:High-temperature,research and fusion reactors,appendix A16[S]. Courbevoie:AFCEN,2018. [13] ASME BPVC.II.A. Boiler and pressure vessel code,Section II.A,SA-355/SA-355M[S]. New York:American Society of Mechanical Engineers,2019. [14] YAMAMOTO M,MIURA N,OGATA T. Applicability of C* parameter in assessing Type IV creep cracking in Mod. 9Cr-1Mo steel welded joint[J]. Engineering Fracture Mechanics,2010,77(15):3022-3034. [15] 中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会. GB/T 2039-2012金属材料单轴拉伸蠕变试验方法[S]. 北京:中国标准出版社,2012. General Administration of Quality Supervision,Inspection and Quarantine of the People's Repubulic of China,Standardization Administration of the People's Repubulic of China. GB/T 2039-2012 Metallic materials-Uniaxial creep testing method in tension[S]. Beijing:Standards Press of China,2012. [16] TAN J P,TU S T,WANG G Z,et al. Effect and mechanism of out-of-plane constraint on creep crack growth behavior of a Cr-Mo-V steel[J]. Engineering Fracture Mechanics,2013,99:324-334. [17] ZHAO L,JING H Y,XU L Y,et al. Analysis of creep crack growth behavior of P92 steel welded joint by experiment and numerical simulation[J]. Materials Science and Engineering:A,2012,558:119-128. [18] TABUCHI M,YOKOBORI A T,SUGIURA R,et al. Results of a Japanese round robin program for creep crack growth using Gr.92 steel welds[J]. Engineering Fracture Mechanics,2010,77(15):3066-3076. [19] AINSWORTH R,HOOTON D,GREEN D. Failure assessment diagrams for high temperature defect assessment[J]. Engineering Fracture Mechanics,1999,62(1):95-109. [20] NEWMAN J J,RAJU I. An empirical stress-intensity factor equation for the surface crack[J]. Engineering Fracture Mechanics,1981,15(1-2):185-192. [21] GOODALL I,WEBSTER G. Theoretical determination of reference stress for partially penetrating flaws in plates[J]. International Journal of Pressure Vessels and Piping,2001,78(10):687-695. [22] ABAQUS. Version 6.14-1[Z]. Vélizy-Villacoublay:Dassault Systèmes,2014. [23] WANG G Z,LI B K,XUAN F Z,et al. Numerical investigation on the creep crack-tip constraint induced by loading configuration of specimens[J]. Engineering Fracture Mechanics,2012,79:353-362. [24] BIGLARI F,NIKBIN K,GOODALL I,et al. Determination of fracture mechanics parameters J and C* by finite element and reference stress methods for a semi-elliptical flaw in a plate[J]. International Journal of Pressure Vessels and Piping,2003,80(7-8):565-571. [25] LEI Y. J-integral and limit load analysis of semi-elliptical surface cracks in plates under tension[J]. International Journal of Pressure Vessels and Piping,2004,81(1):21-30. [26] McCLUNG R C,CHELL G,LEE Y D,et al. Development of a practical methodology for elastic-plastic and fully plastic fatigue crack growth[R]. NASA Report NASA/CR-1999-209428,1999. [27] YAGAWA G,KITAJIMA Y,UEDA H. Three-dimensional fully plastic solutions for semi-elliptical surface cracks[J]. International Journal of Pressure Vessels and Piping,1993,53(3):457-510. [28] ZENCRACK. Version 7.8[Z]. London:Zentch International Limited,2013. [29] XU L Y,RONG J Y,ZHAO L,et al. Creep-fatigue crack growth behavior of G115 steel at 650℃[J]. Materials Science and Engineering:A,2018,726:179-186. [30] XU L Y,ZHAO L,HAN Y D,et al. Characterizing crack growth behavior and damage evolution in P92 steel under creep-fatigue conditions[J]. International Journal of Mechanical Sciences,2017,134:63-74. [31] WEN J F,TU S T. A multiaxial creep-damage model for creep crack growth considering cavity growth and microcrack interaction[J]. Engineering Fracture Mechanics,2014,123:197-210. [32] YATOMI M,O'DOWD N,NIKBIN K,et al. Theoretical and numerical modelling of creep crack growth in a carbon-manganese steel[J]. Engineering Fracture Mechanics,2006,73(9):1158-1175. [33] NIKBIN K,SMITH D,WEBSTER G. Prediction of creep crack growth from uniaxial creep data[J]. Proceedings of the Royal Society of London A Mathematical and Physical Sciences,1984,396(1810):183-197. [34] YATOMI M,NIKBIN K. Sensitivity analysis of creep crack growth prediction using the statistical distribution of uniaxial data[J]. Fatigue & Fracture of Engineering Materials & Structures,2010,33(9):549-561. |