Synthesis of Commercial-Scale Tungsten Carbide-Cobalt (WC/Co) Nanocomposite Using Aqueous Solutions of Tungsten (W), Cobalt (Co), and Carbon (C) Precursors
- 1 Inframat Corporation, 151 Progress Drive, Manchester, CT, USA
- 2 State Key Laboratory of Powder Metallurgy, Central South University, Changsha, China
- 3 State Key Laboratory of Powder Metallurgy, Central South University, Changsha, China
- 4 Fujian Jinxin Tungsten Co., Ltd., Longyan City, China
- 5 Fujian Jinxin Tungsten Co., Ltd., Longyan City, China
- 6 Hunan ACME Technology Co., Ltd, ACME Technology Park, Changsha, China
- 7 Hunan ACME Technology Co., Ltd, ACME Technology Park, Changsha, China
Abstract
This paper reports the chemical synthesis of tungsten carbide/cobalt (WC/Co) nanocomposite powders via a unique chemical processing technique, involving the using of all water soluble solution of W-, Co- and C-precursors. In the actual synthesis, large quantities of commercial-scale WC-Co nanocomposite powders are made by an unique combination of converting a molecularly mixed W-, Co-, and C-containing solutions into a complex inorganic polymeric powder precursor, conversion of the inorganic polymeric precursor powder into a W-Co-C-O containing powder intermediates using a belt furnace with temperature at about 500 ° C - 600 ° C in an inert atmosphere, followed by carburization in a rotary furnace at temperature less than 1000 ° C in nitrogen. Liquid phase sintering technique is used to consolidate the WC/Co nanocomposite powder into sintered bulk parts. The sintered parts have excellent hardness in excess of 93 HRA, with WC grains in the order of 200 - 300 nm, while Co phase is uniformly distributed on the grain boundaries of the WC nanoparticles. We also report the presence of cobalt Co precipitates inside tungsten carbide WC nanograins in the composites of the consolidated bulk parts. EDS is used to identify the presence of these precipitates and micro-micro-diffraction technique is employed to determine the nature of these precipitates.
- Moissan, H. (1897) The Electrical Furnace. French Edition, Translated by Lenher, V., Chemical Publishing Company, Revere.
- Voigtlander, H. and Lohmann, H. (1915) Metall-Fabrikations—G.m.b.H. German Patent 289,066.
- (1925) Patent-Treuhand-Gesellschaft fur elektriche Gluhlampen m.b.H. German Patent 420,689.
- Baumhauer, H. (1924) US Patent 1,512,191.
- Gortsema, F.P. (1976) US Patent 3,932,594, Union Carbide Corp.
- Gortsema, F.P. (1980) US Patent 4,190,439, Union Carbide Corp.
- Gortsema, F. and Kotval, P.S. (1976) Plansesee Seminar of Powder Metallurgy. Planseeberichte fur Pulvermetalurgie, 24, 254.
- Takatsu, S., et al. (1969) US Patent 3,440,035, Toshiba Tungalloy KK.
- Takatsu, S. (1971) Japanese Kokai 46/19300, Toshiba Tungalloy Co., Ltd.
- Takatsu, S. (1978) A New Continuous Process for Production of WC-Co Mixed Powder by Rotary Kilns. Powder Metallurgy International, 10, 13.
- Miyake, M. and Hara, A. (1979) On the Carbothermic Reduction of WO3 Powder in Nitrogen Atmosphere. Journal of the Japan Society of Powder and Powder Metallurgy, 26, 16-21. http://dx.doi.org/10.2497/jjspm.26.16
- Hara, A., Miyake, M. and Yamamoto, T. (1975) Studies on Direct Carburization of WC form the Mixture lf WO3 and Carbon. Journal of the Japan Society of Powder and Powder Metallurgy, 22, 12-16. http://dx.doi.org/10.2497/jjspm.22.12
- Miyake, M., Hara, A. and Sho, T. (1979) Me-thod for Making Metallic Carbide Powders. Journal of the Japan Society of Powder and Powder Metallurgy, 26, 90-95.
- Xiao, T.D., Zhang, Z.T. and Wang, D.M. (2009) US Patent No. 7,625,542.
- Qiao, Y., Fischer, T.E. and Dent, A. (2003) The Effects of Fuel Chemistry and Feedstock Powder Structure on the Mechanical and Tribological Properties of HVOF Thermal-Sprayed WC-Co Coatings with Very Fine Structures. Surface and Coatings Technology, 172, 24-41. http://dx.doi.org/10.1016/S0257-8972(03)00242-1
- Guillemany, J.M., Dosta, S., Nin, J. and Miguel, J.R. (2005) Study of the Properties of WC-Co Nanostructured Coatings Sprayed by High-Velocity Oxyfuel. Journal of Thermal Spray Technology, 14, 405-413.
- Zucker, G., Downey, J., Bahr, D., Stephens, F. and Hager, J. (2002) Method for Production Tungsten Carbide. US Patent Application No. 20020009411.