LAHA K, KYONO J, SASAKI T, et al. Improved creep strength and creep ductility of type 347 austenitic stainless steel through the self-healing effect of boron for creep cavitation[J]. Metallurgical and Material Transactions A, 2005, 36(2): 399-409.
[2]
ASARO R J, TILLER W A. Interface morphology development during stress corrosion cracking[J]. Metallurgical Transactions, 1972, 3(7): 1789-1796.
[3]
MILLER M K, RUSSELL K F, SOKOLOV M A, et al. APT characterization of irradiated high nickel RPV steels[J]. Journal of Nuclear Materials, 2007, 361(2-3): 248-261.
[4]
MILLER M K, RUSSELL K F, SOKOLOV M A, et al.Atom probe tomography characterization of radiation-sensitive ks-01 weld[J]. Journal of Nuclear Materials, 2003, 320(3): 177-183.
[5]
ACOSTA B, DEBARBERIS L, SEVINI F, et al.Cu effects on radiation embrittlement of Ni-containing complex model alloys and the related potentials of the thermoelectric method[J]. NDT&E International, 2004, 37(4): 321-324.
[6]
佟振峰,林虎,宁广胜,等. 低铜合金反应堆压力容器钢辐照脆化预测评估模型[J]. 原子能科学技术,2009, 43(增刊1):103-108.TONG Zhen-feng, LIN Hu, NING Guang-sheng, et al. Prediction model on irradiation embrittlement of low copper alloy reactor pressure vessel steels[J]. Atomic Energy Science and Technology, 2009, 43(Suppl 1): 103-108.
[7]
STYMAN P D, HYDE J M, WILFORD K, et al. Precipitation in long term thermally aged high copper, high nickel model RPV steel welds[J]. Progress in Nuclear Energy, 2012, 57: 86-92.
[8]
HYDE J M, SHA G, MARQUIS E A, et al. A comparison of the structure of solute clusters formed during thermal ageing and irradiation[J]. Ultramicroscopy, 2011, 111(6): 664-671.
[9]
PAREIGE P, RUSSELL K F, STOLLER R E, et al. Influence of long-term thermal aging on the microstructural evolution of nuclear reactor pressure vessel materials: an atom probe study[J]. Journal of Nuclear Materials, 1997, 250(2-3): 176-183.
[10]
MILLER M K. Atom Probe Tomography: Analysis at the Atomic Level[M]. New York: Kliwer Academic/Plenum Publishers, 2000.
[11]
MILLER M K, SOKOLOV M A, NANSTAD R K, et al. APT characterization of high nickel RPV steels[J]. Journal of Nuclear Materials, 2006, 351(1-3): 187-196.
[12]
LU Z, FAULKNER R G, FLEWITT P E J. The role of irradiation-induced intergranular phosphorous segregation in the ductile-to-brittle transition temperature in ferritic steels[J]. Materials Science and Engineering: A, 2006, 437(2): 306-312.
[13]
CABALLERO F G, MILLER M K, GARCIA-MATEO C. Carbon supersaturation of ferrite in a nanocrystalline bainitic steel [J]. Acta Materialia, 2010, 58(7): 2338-2343.
[14]
徐刚,蔡琳玲,冯柳,等. 利用APT对RPV模拟钢中界面上原子偏聚特征的研究[J]. 金属学报,2012, 48(7): 789-796. XU Gang, CAI Lin-ling, FENG Liu, et al. Segregation of atoms on the interfaces in the RPV model steel studied by APT[J]. Acta Metallurgica Sinica, 2012, 48(7): 789-796.
[15]
TAKEUCHI T, KAMEDA J, NAGAI Y, et al. Study on microstructural changes in thermally-aged stainless steel weld-overlay cladding of nuclear reactor pressure vessels by atom probe tomography[J]. Journal of Nuclear Materials, 2011, 415(2): 198-204.
[16]
HAN Q B, QIAN M L, WANG H. Investigation of solid/solid interface waves with laser ultrasonics[J]. Ultrasonics, 2006, 44: 1323-1327.
[17]
CHARLEUX M, POOLE W J, MILITZER M, et al. Precipitation behavior and its effect on strengthening of an HSLA-Nb/Ti steel[J]. Metallurgical and Material Transactions A, 2001, 32(7): 1635-1647.
[18]
FUJIWARA M, UCHIDA H, OHTA S. Effect of boron and carbon on creep strength of cold-worked type 316 stainless steel[J]. Journal of Materials Science Letters, 1994, 13(8): 557-559.
[19]
XU G, CHU D F, CAI L L, et al. Investigation on the precipitation and structural evolution of Cu-rich nanophase in RPV model steel[J]. Acta Metallurgica Sinica, 2011, 47(7): 905-911.