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Ironmaking & Steelmaking
Processes, Products and Applications
Volume 42, 2015 - Issue 9
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Original Articles

Direct chromium alloying by smelting reduction of mill scale and low grade chromite ore

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Pages 648-655 | Received 30 Dec 2014, Accepted 03 Feb 2015, Published online: 22 Dec 2015

References

  • S.E. Olsen, M. Tangstad and T. Lindstad: ‘Production of manganese ferroalloys’, 2007, SINTEF and Tapir Academic Press, Trondheim.
  • M. Eissa, H. El-Faramawy and G. Farid: ‘Production of high carbon ferromanganese using manganese rich slag in the charge’, Steel Research, 1998, 69, 273–280.
  • H. El-Faramawy, T. Mattar, A. Fathy, M. Eissa and A. Ahmed: ‘Silicon manganese production from manganese rich slag’, Ironmaking and Steelmaking, 2004, 31, 31–36. doi: 10.1179/030192304225012132
  • A. Fathy, A. Ahmed, M. El-Mohammady, Eissa and K. El-Fawakhry: ‘Factors affecting silicomanganese production using manganese rich slag in the charge’, Steel Research International, 2007, 78, 24–30.
  • M. Eissa, H. El-Faramawy, A. Ahmed, GhaliS. and H. Halfa: ‘Parameters affecting on the production of high carbon ferromanganese in closed submerged arc furnace’, The Journal of Minerals and Materials Characterization and Engineering, 2012, 11, 1–20. doi: 10.4236/jmmce.2012.111001
  • M. Eissa, and H. EI-faramawy: ‘Carbothermic smelting of high carbon ferrochromium alloy from low- and high-grade chromite ores,’ Ironmaking and Steelmaking, 2012, 39, 31–37.
  • M. Eissa, S. Ghali, A. Ahmed and H. EI-faramawy: ‘Optimum condition for smelting high carbon ferromanganese’, Ironmaking and Steelmaking, 2012, 39, 419–430. doi: 10.1179/1743281211Y.0000000062
  • A. Ahmed, S. Ghali, M. K. El-Fawakhry, H. El-Faramawy and M. Eissa: ‘Silicomanganese production utilizing local manganese ores and manganese rich slag’, Ironmaking and Steelmaking, 2014, 41, 310–320. doi: 10.1179/1743281213Y.0000000173
  • A. Ahmed, M. K. El-Fawkhry, H. Halfa, H. Farmway, and M. Eissa: ‘Parameters affecting energy consumption for producing high carbon ferromanganese in a closed submerged arc furnace’, Journal of Iron and Steel, International, 2014, 21, 666–672. doi: 10.1016/S1006-706X(14)60103-5
  • O.I. Nokhrina, V.P. Komshukov and V.I. Dmitrienko: ‘Developing a technology for the direct alloying of steel with manganese in an electric-arc furnace’, Metallurgist, 2004, 48, 264–265. doi: 10.1023/B:MELL.0000042823.58263.e3
  • O.I. Nokhrina, V.I. Dmitrienko and V.P. Kolpak: ‘Metallurgy of steel and ferroalloys direct alloying of steel with manganese oxide in an arc furnace’, Steel Translation, 2004, 34, 21–23.
  • O.I. Nokhrina and V.I. Dmitrienko: ‘Reduction of manganese from its oxides by silicon in direct furnace alloying of steel’, Steel Translation, 2004, 34, 34–37.
  • O. Bobkova and V. Barsegyan: ‘Prospects of technologies for the direct alloying of steel from oxide melts’ Metallurgist, 2006, 50, 463–468.
  • G. V. Dzhandieri, T. A. Surguladze, D.V. Robakidze, M.S. Shalamberidze, B.A. Shchukin: ‘Control of the process of direct manganese alloying of alloys’ Metal Science Heat Treatment, 2009, 51, 533–539. doi: 10.1007/s11041-010-9207-8
  • M. Kawakami, Y. Kitajima, K. Hashimoto, K. Ito: ‘Kinetic study on the smelting reduction of bottom-injected chromite ore powder by dissolved carbon in iron melt’, J. Iron Steel Inst. Jpn 1987, 73, 820–827.
  • K. Taoka, C. Tada, Z. Yamada, H. Nomura, M. Ohnishi, H. Bada: ‘Production of stainless steel with smelting reduction of chromium ore by two combined blowing converter’ J. Iron Steel Inst. Jpn 1990, 76, 1863–1870.
  • S. Takeuchi, H. Nakamura, T. Sakuraya, T. Fujii, T. Nozaki: ‘Pilot plant experiment of smelting reduction using fine chromium ore’ J. Iron Steel Inst. Jpn 1990, 76, 1847–1854.
  • D. J. Simbi, M. B. C. Tsomondo: ‘Aspects of smelting reduction of chromite ore fines in CaO-FeO-Cr2O3-SiO2-Al2O3 slag system by carbon dissolved in high carbon ferrochromium alloy bath’ Ironmaking and Steelmaking, 2002, 29, 271–275.
  • X. Hu, H. Wang, L. Teng, S. Seetharaman: ‘ Direct chromium alloying by chromite ore with the presence of metallic iron’ J. Min. Metall. Sect. B-Metall 2013, 49B, 207–215.
  • M. Martin, F. Lopez, M. Rabanal and J. Torralba: ‘Obtainment of sponge iron by reduction of a steelmaking by-product’, 1st Spanish National Conference on Advances in Materials Recycling and Eco-Energy, Madrid, November, 2009, S04–5, 107–110.
  • R. Farahat, M. Eissa, G. Megahed and A. Baraka: ‘Reduction of mill scale generated by steel processing’, Steel Grips, 2010, 8, 88–92.
  • H. Unal, E. Turgut, S. Atapek and A. Alkan: ‘Direct reduction of ferrous oxides to form an iron rich alternative charge material and its characterization’, International Iron and Steel Symposium, April 2012, Karabuk, Turkiya, 421–426.
  • O. Benchiheub, S. Mechachti, S. Serrai and M. G. Khalifa: ‘Elaboration of iron powder from mill scale’, Journal of Materials and Environmental Science, 2010, 1,267–276.
  • M. Eissa and A. Ahmed: ‘Utilization of mill scale waste to produce high purity iron’, International Conference on Science and Technology of Ironmaking and Steelmaking (STIS 2013), Jamshedpur, India, December 2013, CSIR.
  • M. Eissa, A. ahmed, M. K. El-fawakhry, R. Abo-Shohba, S. Shahein: ‘Recycling of mill scale waste produced from basic oxygen converter process into stainless steel alloy’, Proc 7th European Oxygen Steelmaking conference, Trinec, Czech Republic, September 2014, Czech Metallurgical Society, Topic 9: No. 8.
  • M. I. Gasik, B.I. Emlin, S.I. Khitrik: ‘Thermodynamics of reduction of chromous oxide by silicon’, Izv. VUZov SSSR, Chern. Metall 1970, 3, 59–62.
  • N.P. Lyakishev, M.I. Gasik: ‘Metallurgy of chromium’, Allerton Press, NY, 1998, pp. 626.
  • M. Gasik: ‘Handbook of ferroalloys: theory and technology’, Oxford, Butterworth-Heinemann, 2013, pp. 536
  • R. J Fruehan: ‘The rate of reduction of iron oxides by carbon’, Metallurgical Transactions B, 1977, 8B, 279–286. doi: 10.1007/BF02657657
  • A.V. Pavlov, A.S. Kazakov, O.V. Chadeava, Y.V. Shurigina, ‘Research of reducing ability of carbon reductants for ferroalloy production by dilatometric method’, Proc 13th International Ferroalloys Congress, Efficient technologies in ferroalloy industry, June 9–13, 2013, Abishev Chemistry and Metallurgy Institute, Almaty, Kazakhstan, 499–504.
  • R.C. Gupta: ‘Theory and laboratory experiments in ferrous metallurgy’ PHI learing privte limited, New Delhi, 2010, pp. 328.

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