Inclusions in melting process of titanium and titanium alloys

Meng-jiang Cen1, Yuan Liu1, Xiang Chen1, Huawei Zhang1, Yanxiang Li1
1Department of Materials Engineering, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China

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Luo Lei, Yang Guanjun, Mao Xiaonan, et al. Development of electron beam cold hearth melting technology for titanium alloys. Casting Forging Welding, 2009, 38(19): 56–59. (In Chinese)

Semiatin S L, Kobryn P A, Ivasishin O M, et al. The role of modeling in the development of advanced processes for metallic aerospace alloys. Metals and Materials International, 2004, 10(6): 589–603.

Jin Hexi, Wei Kexiang, Li Jianmin, et al. Research development of titanium alloy in aerospace industry. The Chinese Journal of Nonferrous Metals, 2015, 25 (2): 280–292. (In Chinese)

Yuan Guosen, Yan Lipeng, Han Yanyan, et al. Application progress of titanium alloy. Hot Working Technology, 2017, 46 (4): 13–16. (In Chinese)

Immarigeon J P, Holt R T, Koul A K, et al. Light materials for aircraft applications. Materials Characterization, 1995, 35: 41–67.

Brewer W D, Bird R K, Wallance T A. Titanium alloys processing for high speed aircraft. Materials Science and Engineering A, 1998, 243: 299–304.

Yamada M. An overview on the development of titanium alloys for non-aerospace application in Japan. Materials Science and Engineering A, 1996, 213: 8–15.

Cai Jianmin, Li Zhenxi, Ma Jimin, et al. Research and development of 600 °C high temperature titanium alloy for aeroengine. Materials Review, 2005, 19 (1): 50–53. (In Chinese)

Zhang Yingming, Zhou Lian, Sun Jun, et al. Research development of electron beam cold hearth remelting of Ti alloys. Titanium Industry Progress, 2008, 25 (4): 14–19. (In Chinese)

Lei Wenguang, Zhao Yongqing, Han Dong, et al. Development of melting technology for titanium and titanium alloys. Materials Review, 2016, 30(3): 101–106. (In Chinese)

Suzuki K. An introduction to the extraction, melting and casting technologies of titanium alloys. Metals and Materials International, 2001, 7(6): 587–604.

Shu Qun, Guo Yongliang, Chen Ziyong, et al. Development of casting and melting technology of titanium alloy. Materials Science & Technology, 2004, 12(3): 332–336. (In Chinese)

Wang Gao, Li Xianjun, Wen Zhigang, et al. Production technology for low cost titanium products. Review, 2013, 3: 8–12. (In Chinese)

Gao Ting, Zhao Liang, Ma Baofei, et al. Present situation and development trend of titanium alloy casting technology. Hot Working Technology, 2014, 43(21): 5–11. (In Chinese)

Chen Xianming. Development of melting and casting technology of titanium alloy. Journal of Zhaoqing University, 2010, 31(2): 20–25. (In Chinese)

Troshchenko V T, Pokrovskii V V, Rarusevich V L, et al. Effect of inclusion contaminants on the crack resistance of ductile titanium alloys. Strength of Materials, 1991(8): 654–862.

Cai Jianming, Ma Jimin, Hao Mengyi, et al. Hard alpha defect in titanium alloys and its control using plasma arc cold hearth melting technique. Failure Analysis and Prevention, 2007, 2(2): 51–57. (In Chinese)

Li Yuxian, Yang Lichun. Electron beam cold hearth melting technology and discussion. Metal World, 2012(6): 51–55. (In Chinese)

Liu Qianli, Li Xiangming, Jiang Yehua. Research progress of electron beam cold hearth melting for titanium and titanium alloys. Hot Working Technology, 2016, 45(9): 9–14. (In Chinese)

Tian Shifan, Ma Jimin. Development and applications of electron beam cold hearth melting. Journal of Materials Engineering, 2012(2): 77–85. (In Chinese)

Qin Guihong, Wang Wanbo, Ji Bo, et al. Introduction and application of industrial cooling hearth melting technology. The Chinese Journal of Nonferrous Metals, 2010, 20(s1): 877–880. (In Chinese)

Chen Feng, Chen Li, Guo Bin, et al. Advantages and disadvantages of electron beam cold hearth melting. The Chinese Journal of Nonferrous Metals, 2010(s1): 873–876. (In Chinese)

Yu Lanlan, Mao Xiaonan, Zhang Yingming, et al. Development of electron-beam cold hearth single melt process for titanium alloy ingots. Titanium Industry Progress, 2009, 26(2): 14–18. (In Chinese)

Duan Junwei. Cold hearth technology and applications for titanium and alloys. Nonferrous Metals Process, 2011, 40(1): 41–42. (In Chinese)

Ma Rongbao, Chen Feng, Guo Bin. Development of EBCHR and discussion of its remelting process. Titanium Industry Progress, 2008, 25 (5): 37–40. (In Chinese)

Wood J R. Producing Ti-6Al-4V plate from single melt EBCHM ingot. Journal of Metals, 2002(2): 56–58.

Huang Haiguang, Cao Zhanyuan, Li Zhimin, et al. Electron beam cold hearth melting process research of titanium recycled material. 2015, 44(7): 137–144. (In Chinese)

Zhao Jiong, Yang Guoqing, Qiao Lu, et al. Study on EB+VAR melting process of TC11 ingot for important usage. China Titanium Industry, 2015(3): 31–34. (In Chinese)

Bao Shujuan. Research development on electron beam cold hearth melting of TC4 alloy. Development and Application of Materials, 2012(5): 87–90. (In Chinese)

Li Xiong, Pang Kechang, Guo Hua, et al. Melting technology of wrought Ti and Ti alloy. The Chinese Journal of Nonferrous Metals, 2010, 20 (s1): 906–913. (In Chinese)

Mitchell A. The electron beam melting and refining of titanium alloys. Materials Science and Engineering A, 1999, 263: 217–223.

Shen Haijun, Wang Ning, Zhang Ge. Hard a inclusions in titanium and titanium alloy and their removal methods. Shanghai Metals, 2010, 32(2): 38–45. (In Chinese)

Henry J L, Hill S D, Schaller J L, et al. Nitride inclusions in titanium ingots: a study of possible sources in the production of Magnesium-reduced sponge. Metallurgical Transactions, 1973, 4: 1859–1864.

Bewlay B P, Gigliotti M F X. Dissolution rate measurements of TiN in Ti-6242. Acta Mater., 1997(1): 357–370.

Wang D J, Mitchell A M. Effects of alloying elements on nitrogen diffusion behavior around TiN/Ti interface aregion in as-cast titanium alloys. Trans. Nonferrous Met. Soc. China, 2001, 5: 738–742.

Bellot J P, Foster B, Hans S. Dissolution of hard-alpha inclusions in liquid titanium alloys. Metallurgical and Materials Transactions B, 1996, 28: 1001–1010.

Wang Hongquan, Yun Pengfei, Liu Huan, et al. Analysis on sources of tungsten inclusion during melting titanium alloy ingot in vacuum consumable arc furnace and its counter measures. Special Steel Technology, 2017, 23(1): 43–47. (In Chinese)

Mitchell A. Melting, casting and forging problems in titanium alloys. Materials Science and Engineering A, 1998, 243: 257–262.

Mitchell A. Melting, casting and forging problems in titanium alloys. Journal of Metals, 1997(6): 40–43.

Yamanaka A, Ichihashi. Dissolution of refractory elements to titanium alloy in VAR. ISIJ International, 1992, 32: 600–606.

Li Xuefei, Huang Lijun, Huang Xu, et al. Analysis of hard impurity defects of titanium alloy. Aerospace Materials & Technology, 2015, 6: 74–77. (In Chinese)

Ghazal G, Jardy A, Chapelle P, et al. On the dissolution of nitrided titanium defects during vacuum arc remelting of Ti alloy. Metallurgical and Materials Transactions B, 2010, 41B: 646–659.

Han Mingchen, Zhang Yingming, Zhou Yigang, et al. Elimination of LDI and HDI in TC4 alloy during electron beam cold melting, Rare Metal Materials and Engineering, 2008, 37(4): 665–669. (In Chinese)

Zhang Yingming, Zhou Lian, Sun Jun, et al. An investigation on electron beam cold hearth melting of Ti64 alloy. Rare Metal Materials and Engineering, 2008, 37(11): 1973–1977.

Bellot J P, Defay B, Jourdan J, et al. Inclusion behavior during the electron beam button melting test. Journal of Materials Engineering and Performance, 2011, 21(10): 2140–2146.

Funagane H. Electron beam melting toward inclusion-free titanium alloys. In: 9th International Symposium on Electromagnetic Processing of Materials (EPM2018), Awaji Yumebutai, 2018: 1–4.

Bellot J P, Hess E, Abletzer D. Aluminum volatilization and inclusion removal in the electron beam cold hearth melting of Ti alloys. Metallurgical and Materials Transactions B, 2000 (31B): 845–854.