[1]Kamrunnahar M, Urquidi-Macdonald M. Prediction of corrosion behavior of Alloy 22 using neural network as a data mining tool [J]. Corrosion Science, 2011, 53(3): 961-967. [2]Samin A J, Taylor C D. First-principles investigation of surface properties and adsorption of oxygen on Ni-22Cr and the role of molybdenum [J]. Corrosion Science, 2018, 134(4): 103-111. [3]秦兴文, 杨伟良, 王 坤, 等. 固溶处理对S32168不锈钢管组织及性能的影响 [J]. 钢管, 2021, 50(2): 24-29. Qin Xingwen, Yang Weiliang, Wang Kun, et al. Effect bysolution treatment on structure and properties of S32168 stainless steel pipe [J]. Steel Pipe, 2021, 50(2): 24-29. [4]秦兴文, 王 坤, 佴启亮, 等. 热处理温度对冷变形Inconel625合金管组织及性能的影响 [J]. 金属热处理, 2021, 46(9): 164-169. Qin Xingwen, Wang Kun, Nai Qiliang, et al. Effect of heat treatment temperature on microstructure and properties of cold deformed Inconel625 alloy pipe [J]. Heat Treatment of Metals, 2021, 46(9): 164-169. [5]Yuan Liang, Hu Rui, Zhang Tiebang, et al. Precipitation behavior of second phases during isothermal oxidation of Hastelloy C-2000 alloys [J]. Rare Metal Materials and Engineering, 2016, 45(1): 28-31. [6]Lei T, Jiang L, Ye X X, et al. Effect of W/Mo ratio on the as-cast microstructure of Nb-modified Hastelloy N alloys[J]. Materials Characterization, 2021, 175(12): 111075. [7]Jakupi P, Noeel J J, Shoesmith D W. The evolution of crevice corrosion damage on the Ni-Cr-Mo-W alloy-22 determined by confocal laser scanning microscopy [J]. Corrosion Science, 2012, 54: 260-269. [8]寇立忠, 曾燕屏, 谢锡善. 标准热处理状态下高强耐蚀C-22HS合金的显微组织和力学性能 [J]. 北京科技大学学报, 2008, 30(1): 40-44. Kou Lizhong, Zeng Yanping, Xie Xishan. Microstucture and mechanical properties of a corrosion-resistant alloy C-22HS with high strength under standard heat treatment condition [J]. Journal of University of Science and Technology Beijing, 2008, 30(1): 40-44. [9]Su N, Deng Q, Wu Y, et al. Deformation-induced dissolution of long-period stacking ordered structures and its re-precipitation in a Mg-Gd-Zn-Mn alloy [J]. Materials Characterization, 2020, 171: 110756. [10]Aghili A. Representation and evaluation of the Arrhenius and general temperature integrals by special functions [J]. Thermochimica Acta, 2021, 705: 179034. [11]Liu Y, Li M, Ren X W, et al. Flow stress prediction of Hastelloy C-276 alloy using modified Zerilli-Armstrong, Johnson-Cook and Arrhenius-type constitutive models [J]. The Chinese Journal of Nonferrous Metals, 2020, 30(11): 3031-3042. [12]Rayner A J, Corbin S F. Grain growth activation during supersolidus liquid phase sintering in a metal injection molded nickel-base superalloy [J]. Materials Today Communications, 2020, 26: 101769. [13]Jin M, Cao P, Short M P. Mechanisms of grain boundary migration and growth in nanocrystalline metals under irradiation [J]. Scripta Materialia, 2019, 163: 66-70. [14]Tsba B, Jnca B, Ugna B, et al. Reactive sintering of WC-Ni-Co-Cr-Ti-Al cemented carbides and precipitation of gamma prime in their metallic binder phases [J]. International Journal of Refractory Metals and Hard Materials, 2020, 95: 105427. [15]Chauhan A K S, Shukla M. Molecular dynamics simulation of the effect of temperature and size on the mechanical behavior of Cu50Zr50 metallic glass [J]. Materials Today: Proceedings, 2021, 44: 2112-2115. [16]Yu Zhiyuan, Chai Ze, Xu Jijin , et al. Achieving high strength and ductility in 17-4PH steel with a periodic layer structure by laser direct metal depositing and aging [J]. Materials Science and Engineering A, 2021, 824: 141787. [17]Saimoto S, Diak B J. Advanced method for structure-strength-ductility assessment of dispersion-strengthened FCC metals using activation work, mean slip distance and constitutive relation analyses: Decoding the Haasen plot [J]. Materials Science and Engineering A, 2021, 828: 142119. [18]Zhang X, Li W, Ma J, et al. Temperature dependent strengthening mechanisms and yield strength for CNT/metal composites-Science Direct [J]. Composite Structures, 2020, 244: 112246. [19]Ye T, Zhao F, Chen L, et al. Effect of strain rate and low temperature on mechanical behavior and microstructure evolution in twinning-induced plasticity steel [J]. Materials Science and Engineering A, 2021, 823: 141734. [20]Geng Y, Dong X, Wang K, et al. Effect of microstructure evolution and phase precipitations on hot corrosion behavior of IN718 alloy subjected to multiple laser shock peening [J]. Surface and Coatings Technology, 2019, 370: 244-254. |