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http://dx.doi.org/10.3740/MRSK.2017.27.5.263

Production of Fe-Si-Cr Ferro Alloy by Using Mixed Silicothermic and Carbothermic Reduction  

Kim, Jong Ho (Research Institute of Industrial Science and Technology)
Jung, Eun Jin (Research Institute of Industrial Science and Technology)
Lee, Go-Gi (Research Institute of Industrial Science and Technology)
Jung, Woo-Gwang (Kookmin University)
Yu, Seon Jun (Dankook University)
Chang, Young Chul (Korea University of Technology and Education)
Publication Information
Korean Journal of Materials Research / v.27, no.5, 2017 , pp. 263-269 More about this Journal
Abstract
Fe-Si-Cr ferroalloy is predominantly produced by carbothermic reduction. In this study, silicothermic and carbothermic mixed reduction of chromite ore to produce Fe-Si-Cr alloy is suggested. As reductants, silicon and silicon carbide are evaluated by thermochemical calculations, which prove that silicon carbide can be applied as a raw material. Considering the critical temperature of the change from the carbide to the metallic form of chromium, thereduction experiments were carried out. In these high temperature reactions, silicon and silicon carbide act as effective reductants to produce Fe-Si-Cr ferroalloy. However, at temperatures lower than the critical temperature, silicon carbide shows a slow reaction rate for reducing chromite ore. For the proper implementation of a commercial process that uses silicon carbide reductants, the operation temperature should be kept above the critical temperature. Using equilibrium calculations for chromite ore reduction with silicon and silicon carbide, the compositions of reacted metal and slag were successfully predicted. Therefore, the mass balance of the silicothermic and carbothermic mixed reduction of chromite ore can be proposed based on the calculations and the experimental results.
Keywords
ferrosilichrome; silicothermic; carbothermic; reduction; ferroalloy;
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Times Cited By KSCI : 1  (Citation Analysis)
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