[1]冯路路, 吴开明, 鲁修宇, 等. 桥梁缆索用超高强度钢丝的研究现状及发展趋势[J]. 中国材料进展, 2025, 39(5): 395-403. Feng Lulu, Wu Kaiming, Lu Xiuyu, et al. Research status and development tendency of ultra-high strength steel wire for bridge cables[J]. Materials China, 2025, 39(5): 395-403. [2]麻 晗, 王 雷. V和Ti在高碳钢中的应用[J]. 钢铁研究学报, 2015, 27(4): 69-74. Ma Han, Wang Lei. Application of vanadium and titanium in high carbon steel[J]. Journal of Iron and Steel Research, 2015, 27(4): 69-74. [3]王 雷, 麻 晗, 李 平, 等. Si在高碳钢盘条开发中的应用[J]. 钢铁研究学报, 2014, 26(6): 54-56. Wang Lei, Ma Han, Li Ping, et al. Application of silicon on development of high carbon steel wire rod[J]. Journal of Iron and Steel Research, 2014, 26(6): 54-56. [4]Bhadeshia H. Steels for bearings[J]. Progress in Materials Science, 2012, 57(2): 268-435. [5]刘耀中, 范崇惠. 高碳铬轴承钢滚动轴承零件热处理技术发展与展望[J]. 金属热处理, 2014, 39(1): 53-57. Liu Yaozhong, Fan Chonghui. Development and prospect of heat treatment technology for rolling bearing parts made of high carbon chromium bearing steel[J]. Heat Treatment of Metals, 2014, 39(1): 53-57. [6]吴华春, 李名尧, 董黎涛, 等. 冷作模具材料性能分析及其选用[J]. 机械设计与制造, 2011(1): 250-252. Wu Huachun, Li Mingyao, Dong Litao, et al. Performance analysis of cold die material and its application[J]. Machinery Design and Manufacture, 2011(1): 250-252. [7]王冬晨, 李晓源, 时 捷, 等. 淬火温度对高碳钢组织和断裂韧度的影响[J]. 钢铁研究学报, 2018, 30(3): 229-235. Wang Dongchen, Li Xiaoyuan, Shi Jie, et al. Effect of quenching temperature on microstructure and fracture toughness of high carbon steel[J]. Journal of Iron and Steel Research, 2018, 30(3): 229-235. [8]袁 影, 钱 坤, 昝 祥, 等. 不同淬火加热温度对GCr15钢球显微组织及硬度的影响[J]. 热加工工艺, 2024(15): 83-88, 93. Yuan Ying, Qian Kun, Zan Xiang, et al. Effects of different quenching heating temperatures on microstructure and hardness of GCr15 steel balls[J]. Hot Working Technology, 2024(15): 83-88, 93. [9]王冬晨, 李晓源, 韦丽金, 等. 回火温度对高碳钢断裂韧性的影响[J]. 钢铁研究学报, 2017, 29(6): 494-499. Wang Dongchen, Li Xiaoyuan, Wei Lijin, et al. Effect of tempering temperature on fracture toughness of high carbon steel[J]. Journal of Iron and Steel Research, 2017, 29(6): 494-499. [10]Vatavuk J, Totten E G, Nucci E J, 等. 高碳钢经淬火-回火和等温淬火后冲击性能的对比[J]. 热处理, 2015, 30(6): 21-27. Vatavuk J, Totten E G, Nucci E J, et al. Comparative impact behavior of high C steel after conventional quenching and tempering and austempering[J]. Heat Treatment, 2015, 30(6): 21-27. [11]蔡 红, 刘国强, 王绍中, 等. 淬火温度对60Si2CrVAT弹簧钢组织与性能的影响[J]. 金属热处理, 2017, 42(2): 185-189. Cai Hong, Liu Guoqiang, Wang Shaozhong, et al. Effect of quenching temperature on microstructure and properties of 60Si2CrVAT spring steel[J]. Heat Treatment of Metals, 2017, 42(2): 185-189. [12]Liu H, Sun J, Jiang T, et al. Improved rolling contact fatigue life for an ultra-high-carbon steel with nanobainitic microstructure[J]. Scripta Materialia, 2014, 90-91: 17-20. [13]Cheng L, Brakman C M, Korevaar B M, et al. The tempering of iron-carbon martensite: Dilatometric and calorimetric analysis[J]. Metallurgical Transactions, 1988, 19(10): 2415-2426. [14]Zurnadzhy V I, Efremenko V G, Wu K M, et al. Effects of stress relief tempering on microstructure and tensile/impact behavior of quenched and partitioned commercial spring steel[J]. Materials Science and Engineering A, 2019, 745(4): 307-318. [15]胡光立, 谢希文. 钢的热处理: 原理和工艺[M]. 西安: 西北工业大学出版社, 2011. |