[1]Song Y Y , Ping D H , Yin F X , et al. Microstructural evolution and low temperature impact toughness of a Fe-13%Cr-4%Ni-Mo martensitic stainless steel[J]. Materials Science and Engineering A, 2010, 527(3): 614-618. [2]Ma X P, Wang L J, Liu C M, et al. Microstructure and properties of 13Cr5Ni1Mo0.025Nb0.09V0.06N super martensitic stainless steel[J]. Materials Science and Engineering A, 2012, 539(30): 271-279. [3]Post J, Huétink J, Geijselaers H J M, et al. FEM simulations of a multi stage forming process on Sandvik maraging steel 1RK91 describing the stress assisted and the strain induced martensite transformation[J]. Journal de Physique IV, 2003, 112: 417-420. [4]李 驹, 杜巧连, 王小祥. 00Cr12Ni9Mo4Cu2马氏体时效不锈钢的时效硬化行为及其影响因素[J]. 稀有金属材料与工程, 2007, 36(A03): 273-276. Li Ju, Du Qiaolian, Wang Xiaoxiang. Age-hardening behaviour and the factors of 00Cr12Ni9Mo4Cu2 maraging stainless steel and its factors[J]. Rare Metal Materials and Engineering, 2007, 36(A03): 273-276. [5]李 蓉, 王小祥. Ti含量及时效工艺对00Cr12Ni9Mo4Cu合金组织和硬度的影响[J]. 材料热处理学报, 2009, 30(3): 137-140. Li Rong, Wang Xiaoxiang. Effect of Ti content and ageing on microstructure and hardness of 00Cr12Ni9Mo4Cu maraging stainless steel[J]. Transactions of Materials and Heat Treatment, 2009, 30(3): 137-140. [6]杜乐一, 王小祥. Mo含量对00Cr12Ni9Mo(x)Cu2Ti马氏体时效不锈钢组织和性能的影响[J]. 材料科学与工程学报, 2013, 31(2): 235-238. Du Leyi, Wang Xiaoxiang. Effect of Mo content on microstructure and properties of 00Cr12Ni9Mo(x)Cu2Ti maraging stainless steel[J]. Journal of Materials Sicence and Engineering, 2013, 31(2): 235-238. [7]李 帅, 徐裕来, 王 雷, 等. 冷轧变形对00Cr12Ni9Mo4Cu3Ti0.9Al0.4马氏体时效不锈钢力学性能和耐蚀性能的影响[J]. 上海金属, 2018, 40(2): 52-58. Li Shuai, Xu Yulai, Wang Lei, et al. Effect of cold rolling deformation on mechanical properties and corrosion resistance of 00Cr12Ni9Mo4Cu3Ti0.9Al0.4 maraging stainless steel[J]. Shanghai Metal, 2018, 40(2): 52-58. [8]邓利芬, 严 伟, 王 威, 等. 新型形变诱发马氏体时效不锈钢的组织与性能[J]. 材料热处理学报, 2011, 32(4): 92-96. Deng Lifen, Yan Wei, Wang Wei, et al. Microstructure and properties of a new deformation induced maraging stainless steel[J]. Transactions of Materials and Heat Treatment, 2011, 32(4): 92-96. [9]Olson G B, Cohen M. Kinetics of strain-induced martensitic nucleation[J]. Metallurgical Transactions A, 1975, 6(4): 791-795. [10]Shin H C, Ha T K, Chang Y W. Kinetics of deformation induced martensitic transformation in a 304 stainless steel[J]. Scripta Materialia, 2001, 45(7): 823-829. [11]Háttestranda M, Nilsson J O, Stiller K, et al. Precipitation hardening in a 12%Cr-9%Ni-4%Mo-2%Cu stainless steel[J]. Acta Materialia, 2004, 52(4): 1023-1037. [12]Stiller K M, Danoix F, Hattestrand M, et al. Mo precipitation in a 12Cr-9Ni-4Mo-2Cu maraging steel[J]. Materials Science and Engineering A-structural Materials Properties Microstructure and Processing, 1998, 250(1): 22-26. [13]Stiller K M, Hattestrand M, Danoix F, et al. Precipitation in 9Ni-12Cr-2Cu maraging steels[J]. Acta Materialia, 1998, 46(17): 6063-6073. [14]Schnitzer R, Schober M, Zinner S, et al. Effect of Cu on the evolution of precipitation in an Fe-Cr-Ni-Al-Ti maraging steel[J]. Acta Materialia, 2010, 58(10): 3733-3741. [15]Chen M, Liu H, Wang L, et al. Residual stress and microstructure evolutions of SAF 2507 duplex stainless steel after shot peening[J]. Applied Surface Science, 2018, 459(30): 155-163. [16]Yang Q, Luo J L. Martensite transformation and surface cracking of hydrogen charged and outgassed type 304 stainless steel[J]. Materials Science and Engineering A, 2000, 288(1): 75-83. [17]Hedstrom P, Lienert U, Almer J, et al. Stepwise transformation behavior of the strain-induced martensitic transformation in a metastable stainless steel[J]. Scripta Materialia, 2007, 56(3): 213-216. [18]Rezaee A, Kermanpur A, Najafizadeh A, et al. Investigation of cold rolling variables on the formation of strain-induced martensite in 201L stainless steel[J]. Materials and Design, 2013, 46: 49-53. [19]Chung J H, Jeon J B, Chang Y W, et al. Work-hardening and ductility enhancement mechanism of cold rolled multiphase TRIP steels[J]. Metals and Materials International, 2010, 16(4): 533-541. [20]Mirzadeh H, Najafizadeh A. Aging kinetics of 17-4PH stainless steel[J]. Materials Chemistry and Physics, 2009, 116(1): 119-124. [21]Heung Nam Han, Chang Gil Lee, Chang-Seok Oh, et al. A model for deformation behavior and mechanically induced martensitic transformation of metastable austenitic steel[J]. Acta Materialia, 2004, 52(17): 5203-5214. [22]Hedayati A, Najafizadeh A, Kermanpur A, et al. The effect of cold rolling regime on microstructure and mechanical properties of AISI 304L stainless steel[J]. Journal of Materials Processing Technology, 2010, 210(8): 1017-1022. [23]Murugesan S, Kuppusami P, Mohandas E, et al. X-ray diffraction Rietveld analysis of cold worked austenitic stainless steel[J]. Materials Letters, 2012, 67(1): 173-176. [24]Perdahcogˇlua E S, Geijselaers H J M. A macroscopic model to simulate the mechanically induced martensitic transformation in metastable austenitic stainless steels[J]. Acta Materialia, 2012, 60(11): 4409-4419. [25]张 熹, 王春旭, 刘宪民, 等. 18-18-0.5N高氮奥氏体不锈钢冷轧变形过程中的组织演变和形变强化[C]//北京金属学会第五届冶金年会论文集. 2008: 545-548. [26]徐效谦, 李 朋. 超高强度高韧性钢02Cr12Ni9Mo4Cu2TiAI[C]//纪念全国金属制品信息网建网40周年暨2014金属制品行业技术信息交流会论文集. 2014: 264-282. [27]周 宇, 钱丽华, 刘天宇, 等. 冷轧板条马氏体组织与力学性能研究[J]. 材料导报, 2020, 34(8): 8154-8158. Zhou Yu, Qian Lihua, Liu Tianyu, et al. Study on microstructure and mechanical properties of cold rolled lath martensite[J]. Materials Reports, 2020, 34(8): 8154-8158. [28]Kim B, Boucard E, Sourmail T, et al. The influence of silicon in tempered martensite: Understanding the microstructure-properties relationship in 0.5-0.6wt%C steels[J]. Acta Materialia, 2014, 68(15): 169-178. [29]Gladman T. Precipitation hardening in metals[J]. Materials Science and Technology, 1999, 15(1): 30-36. [30]尹洋洋, 王小祥. Fe-12Cr-9Ni-4Mo-1.8Ti-2Cu马氏体时效不锈钢的组织与性能[J]. 材料科学与工程学报, 2018, 36(5): 735-738. Yin Yangyang, Wang Xiaoxiang. Microstructure and properties of maraging stainless steel Fe-12Cr-9Ni-4Mo-1.8Ti-2Cu[J]. Journal of Materials Science and Engineering, 2018, 36(5): 735-738. [31]刘 勇. 3J33(AB)马氏体时效钢强韧化热处理工艺及力学性能[D]. 哈尔滨: 哈尔滨工业大学, 1999. [32]朱景川, 罗 鸿, 尹钟大, 等. 18Ni马氏体时效钢的调幅分解强韧化热处理新工艺[C]//全国热处理大会. 洛阳: 中国机械工程学会, 1999: 210-213. |