Author:
Okabe Toru H.,Kamimura Gen,Ouchi Takanari
Abstract
AbstractAs the demand for titanium (Ti) continues to grow, so too does the use of Ti scrap, underscoring the need for innovative techniques for the efficient removal of oxygen (O) impurities from Ti scrap. Despite the immense challenge of directly removing oxygen from Ti–O solid solutions and the current lack of industrially applicable deoxidation methods, the current work explores a groundbreaking approach to address this issue. The thermodynamic analysis of a new technique for eliminating oxygen dissolved in solid Ti was conducted, leveraging the deoxidation properties of rare earth metals (REMs) such as Sc, Y, and La. This cutting-edge method relies on the in-situ production of REMs through the metallothermic reduction of REM halides. It was shown that Sc or Y metal can be synthesized via the reduction of ScCl3 by Mg or YCl3 by Li or Na, respectively. Ti with oxygen concentrations below 100 mass ppm can be obtained by leveraging the deoxidation properties of the Sc and Y metals produced in situ during the metallothermic reduction process, which contribute to deoxidation through their subsequent oxychloride-forming reactions. Employing REM halides in tandem with Li, Na, and Mg enables the efficient removal of oxygen impurities from Ti, even though these reactive metals have only weak deoxidation properties for Ti on their own. Remarkably, the proposed technique achieves oxygen concentrations significantly lower than those obtained using Ca metal as a deoxidant. In the future, this pioneering deoxidation method could be used to reduce CO2 emissions and energy consumption during Ti production while promoting resource circulation as a key technology for Ti recycling.
Publisher
Springer Science and Business Media LLC
Reference64 articles.
1. Z.Z. Fang, F.H. Froes, and Y. Zhang, eds.: Extractive Metallurgy of Titanium: Conventional and Recent Advances in Extraction and Production of Titanium Metal, 1st ed. Elsevier, Amsterdam, 2019.
2. O. Takeda and T.H. Okabe: JOM, 2019, vol. 71(6), pp. 1981–90. https://doi.org/10.1007/s11837-018-3278-1.
3. O. Takeda, T. Ouchi, and T.H. Okabe: Metall. Mater. Trans. B., 2020, vol. 51B, pp. 1315–28. https://doi.org/10.1007/s11663-020-01898-6.
4. U.S. Geological Survey: Mineral Commodity Summaries, https://www.usgs.gov/centers/national-minerals-information-center/mineral-commodity-summaries. Accessed Feb 5, 2023.
5. D.R. Lide: Abundance of elements in the earth’s crust and sea. in CRC Handbook of Physics and Chemistry, 78th ed. CRC Press, Boca Raton, 1997.