[1] 刘运娜, 刘献达. 60Si2Mn弹簧钢脱碳行为研究[J]. 金属热处理, 2019, 44(S1): 115-118. Liu Yunna, Liu Xianda. The research on decarburization behavior of 60Si2Mn spring steel[J]. Heat Treatment of Metals, 2019, 44(S1): 115-118. [2] Yan J S, Chen L, Zhang C L, et al. Influence of sulfur on the splitting fracture and machining performance of microalloyed medium-carbon steel 36MnVS4 connecting rods[J]. Journal of Materials Engineering and Performance, 2024(33): 12125-12132. [3] 孙 华, 周 蕾, 王占花, 等. 正火处理对胀断连杆用C70S6非调质钢组织和力学性能的影响[J]. 金属热处理, 2017, 42(11): 93-97. Sun Hua, Zhou Lei, Wang Zhanhua, et al. Effect of normalization on microstructure and mechanical properties of C70S6 non-quenched-and-tempered steel for fracture splitting connecting rod[J]. Heat Treatment of Metals, 2017, 42(11): 93-97. [4] 张朝磊, 刘雅政. 汽车胀断连杆用非调质钢的应用现状与发展[J]. 材料导报, 2017, 31(5): 58-64. Zhang Chaolei, Liu Yazheng. Application and development of air-cooled forging steel for automotive fracture splitting connecting rod[J]. Materials Reports, 2017, 31(5): 58-64. [5] 李晓辉, 张朝磊, 李 戬, 等. 国产非调质钢36MnVS4连杆胀断缺陷分析[J]. 塑性工程学报, 2018, 25(1): 151-155. Li Xiaohui, Zhang Chaolei, Li Jian, et al. Analysis for fracture splitting defect of domestic ail-cooled forging steel 36MnVS4 connecting rod[J]. Journal of Plasticity Engineering, 2018, 25(1): 151-155. [6] 黄博远, 董帅君, 孙建林, 等. 中碳微合金非调质钢36MnVS4连杆胀断缺陷分析[J]. 锻压技术, 2023, 48(7): 228-233. Huang Boyuan, Dong Shuaijun, Sun Jianlin, et al. Analysis on bulging fracture defects for medium carbon microalloy non-quenched and tempered steel 36MnVS4 connecting rod[J]. Forging and Stamping Technology, 2023, 48(7): 228-233. [7] Yu Z W, Xu X L. Fatigue fracture of truck diesel engine connecting rods[J]. Journal of Failure Analysis and Prevention, 2015, 15(2): 311-319. [8] 陈 然, 胡 赞, 张 月, 等. 汽车发动机连杆失效分析[J]. 金属热处理, 2019, 44(S1): 194-197. Chen Ran, Hu Zan, Zhang Yue, et al. Automobile engine connecting rod failure analysis[J]. Heat Treatment of Metals, 2019, 44(S1): 194-197. [9] Tian J, Xue S, Cheng G G, et al. Effect of alloy addition on mechanical properties and decarburization sensitivity of spring steel[J]. Advanced Materials Research, 2012, 476: 188-193. [10] Chen R Y, Yeun W Y D. Review of the high-temperature oxidation of iron and carbon steels in air or oxygen[J]. Oxidation of Metals, 2003, 59(5): 433-468. [11] 屠兴圹, 左锦中, 赵 赟, 等. 加热和冷却条件对合金工具钢S2表面氧化与脱碳的影响[J]. 金属热处理, 2023, 48(8): 124-131. Tu Xingkuang, Zuo Jinzhong, Zhao Yun, et al. Effects of heating and cooling conditions on surface oxidation and decarbonization of alloy tool steel S2[J]. Heat Treatment of Metals, 2023, 48(8): 124-131. [12] Zhang C L, Xie L Y, Liu G L, et al. Surface decarburization behavior and its adverse effects of air-cooled forging steel C70S6 for fracture splitting connecting rod[J]. Metals and Materials International, 2016, 22: 836-841. [13] 王 欢, 黄博远, 刘哲铭, 等. 碳含量和晶粒尺寸对高碳钢表面脱碳类型和深度的影响[J]. 钢铁研究学报, 2022, 34(7): 687-693. Wang Huan, Huang Boyuan, Liu Zheming, et al. Effect of carbon content and grain size on structure and depth of surface decarburization of high carbon steel[J]. Journal of Iron and Steel Research, 2022, 34(7): 687-693. [14] 熊 韬, 赵 刚, 徐耀文, 等. 弹簧钢50CrV4加热气氛对表面脱碳的影响[J]. 热加工工艺, 2018, 47(4): 54-58. Xiong Tao, Zhao Gang, Xu Yaowen, et al. Effect of heating atmosphere on surface decarburization of 50CrV4 spring steel[J]. Hot Working Technology, 2018, 47(4): 54-58. [15] 许 成, 杨 玉, 王润琦, 等. 空气气氛条件下加热温度对45钢脱碳层深度的影响[J]. 金属热处理, 2024, 49(4): 219-222. Xu Cheng, Yang Yu, Wang Runqi, et al. Effect of heating temperature on depth of decarburization layer of 45 steel in air atmosphere[J]. Heat Treatment of Metals, 2024, 49(4): 219-222. [16] 蒲博闻, 刘玉婷, 王延荣, 等. 调质处理对34CrNiMo6钢连杆锻件组织与硬度的影响[J]. 金属热处理, 2024, 49(5): 173-178. Pu Bowen, Liu Yuting, Wang Yanrong, et al. Effect of quenching and tempering on microstructure and hardness of 34CrNiMo6 steel forged connecting rods[J]. Heat Treatment of Metals, 2024, 49(5): 173-178. [17] 包万遥, 李金波, 高秀华, 等. Cr含量和加热温度对高铁弹条用60Si2Mn弹簧钢脱碳层的影响[J]. 金属热处理, 2021, 46(6): 41-44. Bao Wanyao, Li Jinbo, Gao Xiuhua, et al. Effect of Cr content and heating temperature on decarburized layer of 60Si2Mn spring steel for high-speed rail spring[J]. Heat Treatment of Metals, 2021, 46(6): 41-44. |