[1]Chen Jie, Li Changsheng, Jin Xin, et al. Effect of quenching process on microstructures and mechanical properties of Fe-0.9Mn-0.5Cr-2.4Ni-0.5Mo-C steel[J]. Journal of Materials Engineering and Performance, 2018, 27(4): 1505-1513. [2]耿文远, 高 平, 王 凡, 等. 热处理工艺对30MnCrNiMo高强钢组织与性能的影响[J]. 金属热处理, 2020, 45(1): 42-47. Geng Wenyuan, Gao Ping, Wang Fan, et al. Effect of heat treatment process on microstructure and properties of 30MnCrNiMo high strength steel[J]. Heat Treatment of Metals, 2020, 45(1): 42-47. [3]赵洁璠, 闵永安, 吴晓春, 等. 不同热处理工艺对S890高强钢强韧性的影响[J]. 材料热处理学报, 2015, 36(5): 129-134. Zhao Jiefan, Min Yong'an, Wu Xiaochun, et al. Effect of heat treatment on strength and toughness of S890 high strength steel[J]. Transactions of Materials and Heat Treatment, 2015, 36(5): 129-134. [4]狄国标, 周砚磊, 麻庆申, 等. 镍含量对海洋平台用钢组织性能的影响[J]. 钢铁研究学报, 2012, 24(6): 52-56. Di Guobiao, Zhou Yanlei, Ma Qingshen, et al. Effect of Ni content on microstructures and mechanical properties of offshore platform steel[J]. Journal of Iron and Steel Research, 2012, 24(6): 52-56. [5]钟 磊, 吴开明, 董航宇. Ni元素对微纳结构低温贝氏体钢组织与力学性能的影响[J]. 武汉科技大学学报, 2018, 41(5): 328-333. Zhong Lei, Wu Kaiming, Dong Hangyu. Effect of Ni on microstructure and mechanical properties of low temperature micro/nano-structured bainitic steel[J]. Journal of Wuhan University of Science and Technology, 2018, 41(5): 328-333. [6]赵晋斌, 邱保文, 田 勇, 等. Ni对高强船板钢显微组织及低温韧性的影响[J]. 轧钢, 2020, 37(4): 12-16. Zhao Jinbin, Qiu Baowen, Tian Yong, et al. Effect of Ni on microstructure and low-temperature toughness of high strength ship plate steel[J]. Steel Rolling, 2020, 37(4): 12-16. [7]王国栋. 高质量中厚板生产关键共性技术研发现状和前景[J]. 轧钢, 2019, 36(1): 1-8, 30. Wang Guodong. Status and prospects of research and development of key common technologies for high-quality heavy and medium plate production[J]. Steel Rolling, 2019, 36(1): 1-8, 30. [8]屈天鹏, 王德永, 田 俊, 等. 镍含量对低温高强钢力学性能的影响机理研究[C]//2017年全国高品质特殊钢生产技术研讨会论文摘要. 2017: 2. Qu Tianpeng, Wang Deyong, Tian Jun, et al. Study on the influence mechanism of nickel content on mechanical properties of low temperature high strength steel[C]//Abstract of 2017 National Symposium on High Quality Special Steel Production Technology. 2017: 2. [9]张 敏, 唐 江, 李继红, 等. 合金元素锰和镍对FV520(B)钢焊接接头组织与力学性能的影响[J]. 机械工程材料, 2015, 39(5): 58-62. Zhang Min, Tang Jiang, Li Jihong, et al. Effects of Mn and Ni on microstructure and mechanical properties of welded joint of FV520(B) steel[J]. Materials for Mechanical Engineering, 2015, 39(5): 58-62. [10]黄桂桥, 韩 冰, 张万灵. Cr, Ni对钢在海水飞溅区的锈层及耐蚀性的影响[J]. 材料保护, 2014, 47(3): 56-58, 71. Huang Guiqiao, Han Bing, Zhang Wanlin. Influences of chromium and nickel on corrosion resistance as well as phase composition and morphology of rust layer of steels in marine splash zone[J]. Materials Protection, 2014, 47(3): 56-58, 71. [11]刘政军, 裘荣鹏, 武 丹, 等. 合金元素Ni和Mo对高强钢金属粉芯型药芯焊丝焊接接头力学性能的响[J]. 热加工工艺, 2017, 46(19): 59-62. Liu Zhengjun, Qiu Rongpeng, Wu Dan, et al. Effect of alloying elements Ni and Mo on mechanical properties of metal powder flux cored wire welding joint of high strength steel[J]. Hot Working Technology, 2017, 46(19): 59-62. [12]吕 彦, 余圣莆, 行舒乐, 等. 钼、镍含量对马氏体不锈钢硬面药芯焊丝堆焊层组织和性能的影响[J]. 机械工程材料, 2013, 37(9): 29-32. Lü Yan, Yu Shengpu, Xing Shule, et al. Effect of Mo and Ni contents on microstructure and properties of deposited metal prepared by martensitic stainless hard-facing flux-cored wire[J]. Materials for Mechanical Engineering, 2013, 37(9): 29-32. [13]王俊山, 史培阳, 刘承军, 等. 镍含量对高强耐候钢组织与性能的影响[J]. 材料与冶金学报, 2015, 14(2): 135-138. Wang Junshan, Shi Peiyang, Liu Chengjun, et al. Effect of Ni content on structure and properties of high strength weathering resistance steel[J]. Journal of Materials and Metallurgy, 2015, 14(2): 135-138. [14]陈雨来, 董长征, 蔡庆伍, 等. Mo和Ni对高强无碳化物贝氏体钢组织转变与力学性能的影响[J]. 材料工程, 2013(9): 16-21. Chen Yulai, Dong Changzheng, Cai Qingwu, et al. Effect of Mo and Ni on microstructure and mechanical properties of carbide-free bainite ultra-high strength steels[J]. Materials Engineering, 2013(9): 16-21. [15]安月娟, 马世博, 张双杰, 等. Q345钢/镍固态剪切连接界面扩散行为研究[J]. 热加工工艺, 2021, 50(3): 47-52. An Yuejuan, Ma Shibo, Zhang Shuangjie, et al. Study on diffusion behavior of solid shear bonding interface of Q345 steel/nickel[J]. Hot Working Technology, 2021, 50(3): 47-52. [16]任勇强, 尚成嘉, 张宏伟, 等. 0.23C-1.9Mn-1.6Si钢中的残余奥氏体对韧塑性的影响[J]. 材料研究学报, 2014, 28(4): 274-280. Ren Yongqiang, Shang Chengjia, Zhang Hongwei, et al. Effect of retained austenite on toughness and plasticity of 0.23C-1.9Mn-1.6Si steel[J]. Chinese Journal of Materials Research, 2014, 28(4): 274-280. [17]Wu M, Zhao F, Che J L, et al. The toughening mechanisms of microstructural variation and Ni addition in direct-cooled microalloyed ferrite-pearlite steels[J]. Materials Science and Engineering A, 2018, 738: 353-361. [18]Krauss G. Steels: Processing, Structure, and Performance[M]. 2nd ed. ASM International, 2015. [19]Jr J, Guo Z, Krenn C R, et al. The limits of strength and toughness in steel[J]. Transactions of the Iron and Steel Institute of Japan, 2001, 41(6): 599-611. [20]何雪松, 左鹏鹏, 吴晓春. Ni对新型压铸模具钢连续冷却转变规律的影响[J]. 材料热处理学报, 2015, 36(10): 134-140. He Xuesong, Zuo Pengpeng, Wu Xiaochun. Effect of Ni on continuous cooling transformation characteristic of new type die-casting steels[J]. Transactions of Materials and Heat Treatment, 2015, 36(10): 134-140. |