[1]赵继维, 李人宪. 高功率密度柴油机连杆强度分析[J]. 柴油机, 2010, 32(5): 23-26. Zhao Jiwei, Li Renxian. Strength analysis on connecting rod of a high powder density diesel engine[J]. Diesel Engine, 2010, 32(5): 23-26. [2]胡丰泽, 张 波, 马 茂, 等. 舰船柴油机用34CrNiMo6钢工艺性能的研究[J]. 机械管理开发, 2011(3): 12-13. Hu Fengze, Zhang Bo, Ma Mao, et al. Research on 34CrNiMo6 processing property used for naval vessel engines[J]. Mechanical Management and Development, 2011(3): 12-13. [3]王银燕, 张鹏奇, 王 善. 柴油机连杆杆身疲劳强度可靠性分析[J]. 哈尔滨工程大学学报, 2001(1): 67-71. Wang Yinyan, Zhang Pengqi, Wang Shan. Reliability analysis of diesel engine connecting rod fatigue strength[J]. Journal of Harbin Engineering University, 2001(1): 67-71. [4]方 琴, 陈 庚, 吴永波, 等. 热处理对34CrNiMo6钢组织和力学性能的影响[J]. 铸造技术, 2017, 38(8): 1866-1867. Fang Qin, Chen Geng, Wu Yongbo, et al. Influence of heat treatment on microstructure and mechanical properties of 34CrNiMo6 steel[J]. Foundry Technology, 2017, 38(8): 1866-1867. [5]赵 帆, 胡 昊, 刘雅政, 等. 基于23MnNiMoCr54钢复杂显微组织和表面脱碳演变规律的退火条件控制[J]. 材料导报, 2022, 36(1): 130-135. Zhao Fan, Hu Hao, Liu Yazheng, et al. Annealing condition control based on the evolution of complex microstructure and surface decarburization in 23MnNiMoCr54 steel[J]. Materials Reports, 2022, 36(1): 130-135. [6]Gildersleeve M J. Relationship between decarburisation and fatigue strength of through hardened and carburising steels[J]. Materials Science and Technology, 1991, 7(4): 307-310. [7]鲁修宇, 吴 超, 罗德信, 等. 55SiCr弹簧钢脱碳与氧化行为研究[J]. 热处理技术与装备, 2016, 37(2): 63-66. Lu Xiuyu, Wu Chao, Luo Dexin, et al. Behavioral research on decarburization and oxidation of the 55SiCr spring steel[J]. Heat Treatment Technology and Equipment, 2016, 37(2): 63-66. [8]张 凯, 陈银莉, 孙彦辉, 等. 加热过程中H2O(g)对55SiCr弹簧钢脱碳的影响[J]. 金属学报, 2018, 54(10): 1350-1358. Zhang Kai, Chen Yinli, Sun Yanhui, et al. Effect of H2O(g) on decarburization of 55SiCr spring steel during the heating process[J]. Acta Metallurgica Sinica, 2018, 54(10): 1350-1358. [9]王 萍, 沈千成, 吴旭明, 等. 加热气氛对GCr15轴承钢氧化和脱碳特性的影响[J]. 热加工工艺, 2018, 47(22): 78-81. Wang Ping, Shen Qiancheng, Wu Xuming, et al. Effect of heating atmosphere on oxidation and decarburization properties of GCr15 bearing steel[J]. Hot Working Technology, 2018, 47(22): 78-81. [10]李 京, 王 剑, 高 磊, 等. 34CrNiMo6钢连杆热处理工艺研究[J]. 热加工工艺, 2017, 46(6): 234-235, 240. Li Jing, Wang Jian, Gao Lei, et al. Study on heat treatment technology of 34CrNiMo6 steel connecting rod[J]. Hot Working Technology, 2017, 46(6): 234-235, 240. [11]Yang H, Gao T, Liu G, et al. Simultaneously improving strength and ductility for Al-Cu-Mg alloy via threadiness array of TiC nanoparticles[J]. Materialia, 2019, 6: 100333. [12]Pu Bowen, Zhang Xiang, Chen Xiaofeng, et al. Exceptional mechanical properties of aluminum matrix composites with heterogeneous structure induced by in-situ graphene nanosheet-Cu hybrids[J]. Composites Part B: Engineering, 2022, 234: 109731. [13]Zhang C L, Liu Y Z, Zhou L Y, et al. Forming condition and control strategy of ferrite decarburization in 60Si2MnA spring steel wires for automotive suspensions[J]. International Journal of Minerals, Metallurgy and Materials, 2012, 19(2): 116-121. [14]何 珺, 张 辉, 刘 哲, 等. 35CrMo钢过冷奥氏体转变曲线的测定[J]. 金属热处理, 2017, 42(12): 6-9. He Jun, Zhang Hui, Liu Zhe, et al. Determination of CCT curves of 35CrMo steel[J]. Heat Treatment of Metals, 2017, 42(12): 6-9. [15]杨顺贞, 唐建永, 吕均益, 等. 回火温度对1Cr13不锈钢组织与力学性能的影响[J]. 热加工工艺, 2012, 41(12): 181-183, 186. Yang Shunzhen, Tang Jianyong, Lü Junyi, et al. Effect of tempering temperature on microstructure and mechanical properties of 1Cr13 stainless steel[J]. Hot Working Technology, 2012, 41(12): 181-183, 186. [16]孙维连, 杨钰瑛. 35CrMo钢拉杆显微组织与性能[J]. 金属热处理, 2005, 30(11): 79-82. Sun Weilian, Yang Yuying. Microstructure and properties of pulling pole of 35CrMo steel[J]. Heat Treatment of Metals, 2005, 30(11): 79-82. |