[1]Anjos A D, Scheuer C J, Brunatto S F, et al. Low-temperature plasma nitrocarburizing of the AISI 420 martensitic stainless steel: Microstructure and process kinetics[J]. Surface and Coatings Technology, 2015, 275: 51-57. [2]Köse C, Kaçar R. The effect of preheat & post weld heat treatment on the laser weldability of AISI 420 martensitic stainless steel[J]. Materialsand Design, 2014, 64: 221-226. [3]Mesquita T J, Chauveau E, Mantel M, et al. Corrosion and metallurgical investigation of two supermartensitic stainless steels for oil and gas environments[J]. Corrosion Science, 2014, 81: 152-161. [4]Lu S, Yao K, Chen Y, et al. Effect of quenching and partitioning on the microstructure evolution and electrochemical properties of a martensitic stainless steel[J]. Corrosion Science, 2016, 103: 95-104. [5]Barlow L D, Du Toit M. Effect of austenitizing heat treatment on the microstructure and hardness of martensitic stainless steel AISI 420[J]. Journal of Materials Engineering and Performance, 2012, 21(7): 1327-1336. [6]Zeng T Y, Li W, Wang N M, et al. Microstructural evolution during tempering and intrinsic strengthening mechanisms in a low carbon martensitic stainless bearing steel[J]. Materials Science and Engineering A, 2022, 836: 142736. [7]杨向同, 吕祥鸿, 谢俊峰, 等. 高强15Cr马氏体不锈钢在有机盐完井液中的腐蚀行为[J]. 腐蚀与防护, 2018, 39(12): 901-905. Yang Xiangtong, Lü Xianghong, Xie Junfeng, et al. Corrosion behavior of high strength 15Cr martensitic stainless steel in organic salt completion fluid[J]. Corrosion and Protection, 2018, 39(12): 901-905. [8]李晓蔚, 张志明, 李心刚, 等. 微观组织对17-4PH马氏体不锈钢冲击韧性和点蚀敏感性的影响[J]. 腐蚀与防护, 2020, 41(9): 55-59. Li Xiaowei, Zhang Zhiming, Li Xingang, et al. Influence of microstructure on impact toughness and pitting sensitivity of 17-4PH martensitic stainless steel[J]. Corrosion and Protection, 2020, 41(9): 55-59. [9]Morsdorf L, Emelina E, Gault B, et al. Carbon redistribution in quenched and tempered lath martensite[J]. Acta Materialia, 2021, 205: 116521. [10]Gunn R. Duplex Stainless Steels: Microstructure, Propertiesand Applications[M]. Woodhead Publishing, 1997. [11]Moshkbar Bakhshayesh M, Farzadi A, Doustahadi A, et al. Measurement of degree of sensitization in post-weld heat treated 13Cr-4Ni martensitic stainless steel clad using double loop electrochemical potentiokinetic technique[J]. Engineering Failure Analysis, 2022, 134: 106046. [12]Kumar B S, Kain V, Vishwanadh B. Effect of tempering treatments on microstructure and intergranular corrosion of 13wt%Cr martensitic stainless steel[J]. Corrosion, 2016, 73(4): 362-378. [13]Calderón-Hernández J, Hincapíe-Ladino D, Edson B, et al. Relation between pitting potential, degree of sensitization and reversed austenite in a supermartensitic stainless steel[J]. Corrosion, 2017, 73(8): 953-960. [14]Zhao Y, Liu W, Zhang T, et al. Assessment of the correlation between M23C6 precipitates and pitting corrosion resistance of 0Cr13 martensitic stainless steel[J]. Corrosion Science, 2021, 189: 109580. [15]Ma D, Chi H, Zhou J, et al. Microstructure and mechanical properties of martensitic stainless steel 6Cr15MoVn[J]. Journal of Ironand Steel Research, International, 2012, 19(3): 56-61. [16]Taji I, Moayed M H, Mirjalili M. Correlation between sensitisation and pitting corrosion of AISI 403 martensitic stainless steel[J]. Corrosion Science, 2015, 92: 301-308. [17]Djebaili H, Zedira H, Djelloul A, et al. Characterization of precipitates in a 7.9Cr-1.65Mo-1.25Si-1.2V steel during tempering[J]. Materials Characterization, 2009, 60(9): 946-952. [18]Aquino J M, Della Rovere C A, Kuri S E. Intergranular corrosion susceptibility in supermartensitic stainless steel weldments[J]. Corrosion Science, 2009, 51(10): 2316-2323. [19]Zhang H, Zhao Y L, Jiang Z D. Effects of temperature on the corrosion behavior of 13Cr martensitic stainless steel during exposure to CO2 and Cl- environment[J]. Materials Letters, 2005, 59(27): 3370-3374. [20]王 垚, 李春福, 林元华. Cr对Fe-Cr合金耐蚀性能影响的电子理论研究[J]. 金属学报, 2017, 53(5): 622-630. Wang Yao, Li Chunfu, Lin Yuanhua. Electronic theoretical study of the influence of Cr on corrosion resistance of Fe-Cr alloy[J]. Acta Metallurgica Sinica, 2017, 53(5): 622-630. |