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Journal of the Southern African Institute of Mining and Metallurgy

On-line version ISSN 2411-9717
Print version ISSN 2225-6253

J. S. Afr. Inst. Min. Metall. vol.111 n.3 Johannesburg  2011

 

JOURNAL PAPER

 

Production of titanium metal powder by the HDH process

 

 

X. Goso; A. Kale

Pyrometallurgy Division, Mintek, Johannesburg

 

 


SYNOPSIS

Laboratory-scale tests were conducted at Mintek for the production of titanium powder from particulate Kroll sponge by the hydrogenation-dehydrogenation (HDH) process. The aim of this work was to produce titanium powder for powder metallurgical consolidations. The work involved the production of titanium powder at optimized conditions, which included hydrogenation in a horizontal tube furnace at 600°C for 2 hours, milling using planetary and roller mills, and dehydrogenation in a vacuumed retort fitted in a muffle furnace running at 700°C for 36 hours. The titanium powder produced in this project matched the elemental specifications of commercially available titanium powder, except for high carbon content. Nevertheless, the powder has been tested further in mechanical alloying and has been found suitable for the production of powder metallurgical compacts.

Keywords: Powder metallurgy, titanium components, HDH process, ball milling


 

 

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References

1. TZMI & EHK Technologies 2007.         [ Links ]

2. IMAM, M.A. and FROES, F.H. Low Cost Titanium and Developing Applications. JOM, vol. 62, no. 5, 2010, pp. 17-21.         [ Links ]

3. MOXSON, V.S., SENKOV, O.N., and FROES, F.H. Innovations in Titanium Powder Processing. JOM, vol. 52, no. 5, 2000, pp. 24-26.         [ Links ]

4. CROWLEY, G. Low cost titanium. Advanced materials and processes, 2003, pp. 25-27.         [ Links ]

5. SEGALL, A.E., PAPYRIN, A.N., CONWAY, J.C. JR., and SHAPIRO, D. A Cold-Gas Spray Coating Process for Enhancing Titanium. JOM, vol. 50, 1998, pp. 52-54.         [ Links ]

6. Roskill 2007.         [ Links ]

7. BOBET, J., EVEN, C., and QUENISSET, J. On the Production of Ultra-Fine Titanium Hydride Powder at Room Temperature. Journal of Alloys and Compounds, vol. 348, 2003, pp. 247-251.         [ Links ]

8. Wonsik, L., Jinman, J., and Sehyun, K. Manufacturing Method for Titanium hydride powders. World intellectual Property Organisation, Patent number WO 2008/030029 A1. 2008, pp. 1-8.         [ Links ]

9. EIICHI, F. AND SATOSHI, S. Titanium-Base Powders and Process for Production of the Same. US Patent 6168644. 2001, pp. 1-8.         [ Links ]

10. Brochure: Retsch GmbH, Rheinische Straße 36, 42781 Haan, Germany, www.retsch.com (2009/03/23).         [ Links ]

11. POULSEN, E. Safety-related problems in titanium industry in the last 50 years. JOM, vol. 52, 2000, pp. 13-17.         [ Links ]

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