[1]杨志荣, 闫德胜, 杨怀君. 夹杂物对15MnB钢冲击性能的影响[J]. 金属热处理, 2020, 45(11): 32-37. Yang Zhirong, Yan Desheng, Yang Huaijun. Effect of inclusions on impact performance of 15MnB steel[J]. Heat Treatment of Metals, 2020, 45(11): 32-37. [2]吴 昊, 邓想涛, 李成儒, 等. 耐磨钢NM400冷弯开裂分析[J]. 金属热处理, 2021, 46(9): 262-267. Wu Hao, Deng Xiangtao, Li Chengru, et al. Analysis on cold bending fracture of wear-resistant steel NM400[J]. Heat Treatment of Metals, 2021, 46(9): 262-267. [3]杨 浩, 程俊杰, 曲锦波. 夹杂物对EQ70海工钢Z向性能的影响[J]. 金属热处理, 2018, 43(8): 224-227. Yang Hao, Cheng Junjie, Qu Jinbo. Effect of inclusion on the Z-direction property of EQ70 offshore structure steel[J]. Heat Treatment of Metals, 2018, 43(8): 224-227. [4]李明阳, 王福明, 李 明, 等. 夹杂物对工程机械用钢Q345FCA疲劳寿命的影响[J]. 金属热处理, 2020, 45(8): 7-11. Li Mingyang, Wang Fuming, Li Ming, et al. Effect of inclusions on fatigue life of engineering machinery structural steel Q345FCA[J]. Heat Treatment of Metals, 2020, 45(8): 7-11. [5]Zhang L F,Thomas B G. State of the art in evaluation and control of steel cleanliness[J]. ISIJ International, 2003, 43(3): 271-291. [6]张立峰, 杨 文, 张学伟, 等. 钢中夹杂物的系统分析技术[J]. 钢铁, 2014, 49(2): 1-8, 28. Zhang Lifeng, Yang Wen, Zhang Xuewei, et al. Systematic analysis of non-metallic inclusions in steel[J]. Iron and Steel, 2014, 49(2): 1-8, 28. [7]张立峰, 李树森, 王建伟, 等. 酸蚀法观察钢中夹杂物的三维形貌[J]. 钢铁, 2009, 44(3): 75-80. Zhang Lifeng, Li Shusen, Wang Jianwei, et al. Observation of the 3-dimensional morphology of inclusions using partial acid extraction[J]. Iron and Steel, 2009, 44(3): 75-80. [8]刘自立, 郑少波, 吴永全, 等. 用酸溶法研究钢中超细氧化物夹杂的三维形貌[J]. 钢铁研究学报, 2007(4): 85-89. Liu Zili, Zheng Shaobo, Wu Yongquan, et al. Three dimensional morphology of ultrafine oxide inclusion in steel observed by acid dissolution method[J]. Journal of Iron and Steel Research, 2007(4): 85-89. [9]王 敏, 包燕平, 吴维双, 等. 一种用于观察钢中非金属夹杂物真实形貌的方法: 中国, CN101812720B[P]. 2011-12-28. [10]田永华, 包燕平, 王 敏, 等. 铝镇静钢中非金属夹杂物二维和三维形态差异的试验研究[J]. 钢铁钒钛, 2012, 33(6): 74-79. Tian Yonghua, Bao Yanping, Wang Min, et al. Experimental study on two-dimensional and three-dimensional morphology differences of non-metallic inclusions in aluminum killed steel[J]. Iron Steel Vanadium Titanium, 2012, 33(6): 74-79. [11]郭 靖, 郭汉杰, 方克明, 等. 钢中第二相粒子形貌预报理论和检测方法[J]. 金属学报, 2017, 53(7): 789-796. Guo Jing, Guo Hanjie, Fang Keming, et al. Morphology prediction theory and experimental measurement for the secondary phase particle in steel[J]. Acta Metallurgica Sinica, 2017, 53(7): 789-796. [12]孙立根, 张 奇, 朱立光, 等. 硅锰镇静钢中非金属夹杂物三维全尺寸形貌分析研究[J]. 冶金分析, 2015, 35(11): 1-7. Sun Ligen, Zhang Qi, Zhu Liguang, et al. Analysis and research on the three-dimensional full-size morphology of non-metallic inclusions in Si-Mn killed steel[J]. Metallurgical Analysis, 2015, 35(11): 1-7. [13]马 超, 罗海文. 扫描电镜和电解萃取法用于超洁净钢中夹杂物的表征[J]. 冶金分析, 2017, 37(8): 1-8. Ma Chao, Luo Haiwen. Inclusion particles of super-clean steel examined by both scanning electron microscope and electrolytic extraction[J]. Metallurgical Analysis, 2017, 37(8): 1-8. [14]张 毅, 缪乐德, 王国栋, 等. 低合金钢中非金属夹杂物的综合表征[J]. 冶金分析, 2011, 31(7): 1-12. Zhang Yi, Miao Lede, Wang Guodong, et al. Synthetical characterization technology of non-metallic inclusions in low alloy steel[J]. Metallurgical Analysis, 2011, 31(7): 1-12. [15]王昆鹏, 姜 敏, 赵昊乾, 等. 切割丝用盘条非金属夹杂物对比分析[J]. 钢铁, 2016, 51(1): 33-38. Wang Kunpeng, Jiang Min, Zhao Haoqian, et al. Contrast on non-metallic inclusions control in wire rods for saw wire[J]. Iron and Steel, 2016, 51(1): 33-38. [16]史学红, 杨礼林, 夏 明, 等. 稀土Ce含量对4Cr5MoSiV1钢中夹杂物的变质作用[J]. 金属热处理, 2022, 47(11): 223-229. Shi Xuehong, Yang Lilin, Xia Ming, et al. Modification effect of rare earth Ce content on inclusions in 4Cr5MoSiV1 steel[J]. Heat Treatment of Metals, 2022, 47(11): 223-229. [17]王英虎. 热处理工艺对含硫易切削不锈钢中硫化锰夹杂物的影响[J]. 金属热处理, 2020, 45(10): 64-69. Wang Yinghu. Effect of heat treatment process on manganese sulfide inclusions in resulfurized free-cutting stainless steel[J]. Heat Treatment of Metals, 2020, 45(10): 64-69. [18]严春莲, 尹立新, 任 群, 等. 钢中夹杂物扫描电镜自动统计分析结果的影响因素探讨[J]. 冶金分析, 2018, 38(8): 1-10. Yan Chunlian, Yin Lixin, Ren Qun, et al. Discussion on influencing factors in automatic statistical analysis of inclusions in steel by scanning electron microscopy[J]. Metallurgical Analysis, 2018, 38(8): 1-10. [19]于会香, 邵肖静, 张 静, 等. 采用ASPEX扫描电镜研究钢中总氧和非金属夹杂物的定量关系[J]. 工程科学学报, 2015, 37(5): 35-44. Yu Huixiang, Shao Xiaojing, Zhang Jing, et al. Study on the quantitative relationship between total oxygen content and nonmetallic inclusion in steel with ASPEX SEM[J]. Chinese Journal of Engineering, 2015, 37(5): 35-44. [20]秦颐鸣, 王新华, 黄福祥, 等. IF钢生产过程非金属夹杂物行为研究[J]. 东北大学学报(自然科学版), 2015, 36(11): 1614-1618. Qin Yiming, Wang Xinhua, Huang Fuxiang, et al. Behavior of non-metallic inclusions of IF steel during production process[J]. Journal of Northeastern University (Natural Science), 2015, 36(11): 1614-1618. |