[1] 郑成明, 袁荷平, 田青超. 无缝钢管穿孔顶头的研究进展[J]. 钢管, 2018, 47(6): 14-19. Zheng Chengming, Yuan Heping, Tian Qingchao. Progress of research on seamless steel tube piercing plug[J]. Steel Pipe, 2018, 47(6): 14-19. [2] 王 斌, 易丹青, 吴伯涛, 等. 无缝钢管穿孔顶头失效形式分析及提高使用寿命的研究进展[J]. 材料导报, 2006, 20(6): 82-84. Wang Bin, Yi Danqing, Wu Botao, et al. Failure type analysis and studies on prolonging service life of piercer plug for seamless steel tube[J]. Materials Reports, 2006, 20(6): 82-84. [3] 王 萍, 黄贞益, 王光朋. 高合金钢管穿孔顶头氧化工艺研究[J]. 热加工工艺, 2010, 39(12): 106-109. Wang Ping, Huang Zhenyi, Wang Guangpeng. Study on oxidation process for piercing plug made of high-alloy steel[J]. Hot Working Technology, 2010, 39(12): 106-109. [4] 郑成明, 田青超. 合金元素对顶头钢氧化行为的影响[J]. 金属学报, 2019, 55(4): 427-435. Zheng Chengming, Tian Qingchao. Effect of alloy elements on oxidation behavior of piercing plug steel[J]. Acta Metallurgica Sinica, 2019, 55(4): 427-435. [5] 石满鹰, 詹 飞, 张程远. 15Cr2Ni3MoW钢穿孔顶头试制[J]. 北京科技大学学报, 2012, 34(S1): 78-83. Shi Manying, Zhan Fei, Zhang Chengyuan. Trial-manufacture of 15Cr2Ni3MoW steel piercing plugs for seamless pipe production[J]. Journal of University of Science and Technology Beijing, 2012, 34(S1): 78-83. [6] Lu Lei, Tian Qingchao. Influence of furnace pressure on the growth characteristic of oxide film on piercing plug steel[J]. Steel Research International, 2024, 95(8): 2400034. [7] 张家辉, 赵 彦, 田青超, 等. 20Cr2Ni3钢顶头表面氧化膜断裂行为的数值研究[J]. 上海金属, 2024, 46(1): 75-81. Zhang Jiahui, Zhao Yan, Tian Qingchao, et al. Numerical study on fracture behavior of oxide film on surface of piercing plug made of 20Cr2Ni3 steel[J]. Shanghai Metals, 2024, 46(1): 75-81. [8] 周红灯, 徐文进, 田青超. 钼合金穿孔顶头失效分析[J]. 钢管, 2023, 52(1): 78-83. Zhou Hongdeng, Xu Wenjin, Tian Qingchao. Failure analysis of Mo alloy piercing plug[J]. Steel Pipe, 2023, 52(1): 78-83. [9] 潘以庆, 田青超, 徐文进. 钼合金顶头制备技术研究进展[J]. 粉末冶金技术, 2021, 39(5): 452-461. Pan Yiqing, Tian Qingchao, Xu Wenjin. Research progress on the preparation technology of molybdenum alloy piercing plug[J]. Powder Metallurgy Technology, 2021, 39(5): 452-461. [10] 徐有容, 窦铁镛, 宋治鉴. 穿孔不锈钢管用钼合金顶头的研制和应用[J]. 上海金属, 1995, 17(5): 37-40. Xu Yourong, Dou Tieyong, Song Zhijian. A manufacture and its application of wrought Mo alloy piercing-mandrel to stainless steel tube piercing[J]. Shanghai Metals, 1995, 17(5): 37-40. [11] 张金菊, 易丹青, 王 斌, 等. 15Cr2Ni3MoW钢管穿孔顶头氧化膜制备工艺的研究[J]. 热加工工艺, 2011, 40(18): 133-137. Zhang Jinju, Yi Danqing, Wang Bin, et al. Study on preparation process of perforated head oxide film for 15Cr2Ni3MoW steel[J]. Hot Working Technology, 2011, 40(18): 133-137. [12] Shen Zhao, Chen Kai, Yu Hongbing, et al. New insights into the oxidation mechanisms of a ferritic-martensitic steel in high-temperature steam[J]. Acta Materialia, 2020, 194: 522-539. [13] Jin Yiming, Pei Jianlu, Li Chong, et al. Effect of Cr and W addition on the oxidation behavior of Ni-8%Al alloy at 1000 ℃[J]. Vacuum, 2022, 200: 111044. [14] 郑成明, 袁荷平, 田青超. Ni在穿孔顶头制备和穿孔过程中的作用[J]. 钢管, 2020, 49(2): 63-66. Zheng Chengming, Yuan Heping, Tian Qingchao. Effect by Ni on piercing plug as being prepared and operated[J]. Steel Pipe, 2020, 49(2): 63-66. [15] Gao Jianwei, Si Xiaoqing, Wang Xiaoyang, et al. Exploring the effects of Mn content in the Mn-Co spinel coating on its formation and slowing the outward Cr diffusion[J]. Corrosion Science, 2023, 217: 111158. [16] Luo Langli, Su Mao, Yan Pengfei, et al. Atomic origins of water-vapour-promoted alloy oxidation[J]. Nature Materials, 2018, 17(6): 514-518. [17] Xue Feng, Marquis Emmanuelle A. Role of diffusion-induced grain boundary migration in the oxidation response of a Ni-30Cr alloy[J]. Acta Materialia, 2022, 240: 118343. [18] Xu Jiyuan, Meng Ruiyang, Liu Jing, et al. Thermal stability improvement and microstructure optimization of high cobalt content Nd-Fe-B magnets via terbium grain boundary diffusion[J]. Journal of Rare Earths, 2024, 42(8): 1531-1538. [19] Suzuki A, Mishin Y. Atomic mechanisms of grain boundary diffusion: Low versus high temperatures[J]. Journal of Materials Science, 2005, 40(12): 3155-3161. [20] Yu Xiaoxiang, Taylor Matthew A, Perepezko John H, et al. Competition between thermodynamics, kinetics and growth mode in the early-stage oxidation of an equimolar CoCrFeNi alloy[J]. Acta Materialia, 2020, 196: 651-659. [21] Saunders S R J, Monteiro M, Rizzo F. The oxidation behaviour of metals and alloys at high temperatures in atmospheres containing water vapour: A review[J]. Progress in Materials Science, 2008, 53(5): 775-837. [22] Wang Fangming, Zhou Ruonan, Xu Kai, et al. Effect of Si content on the surface high-temperature oxidation mechanism in Ni5Y-containing NiAIYSi alloys[J]. Corrosion Science, 2023, 218: 111173. [23] Jiang Jufu, Xiao Guanfei, Wang Ying, et al. High temperature oxidation behavior of the wrought Ni-based superalloy GH4037 in the solid and semi-solid state[J]. Journal of Alloys and Compounds, 2019, 784: 394-404. [24] Sehat Alireza, Hadi Morteza, Isfahani Taghi, et al. Comparative analysis of microstructural, compositional, and grazing incidence characteristics of oxide scale on 316L steel: SLM vs. wrought conditions[J]. Journal of Materials Research and Technology, 2024, 31: 2077-2093. [25] Osgerby S, Fry A. The role of alloy composition on the steam oxidation resistance of 9-12%Cr steels[J]. Materials Science Forum, 2006, 522-523: 129-138. [26] 程国祥, 郑成明, 卢 磊, 等. 顶头钢成分对氧化行为及组织性能的影响[J]. 钢管, 2024, 53(1): 23-28. Cheng Guoxiang, Zheng Chengming, Lu Lei, et al. Effect of chemical compositions of plug steel on oxidation behavior and microstructure and properties[J]. Steel Pipe, 2024, 53(1): 23-28. [27] 范修谦. 铸造奥氏体不锈钢的铬镍当量比和相对磁导率[J]. 特种铸造及有色合金, 2011, 31(5): 439-441, 389. Fan Xiuqian. Chromium nickel equivalent ratio and relative magnetic permeability of cast austenitic stainless steel[J]. Special Casting & Nonferrous Alloys, 2011, 31(5): 439-441, 389. |