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Direct Reduction of Solid Fe_2O_3 in Molten CaCl_2 by Potentially Green Process 被引量:5

Direct Reduction of Solid Fe_2O_3 in Molten CaCl_2 by Potentially Green Process
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摘要 Sintered (300℃) porous pellets of Fe2O3 were electrolyzed to Fe in molten CaCl2 (800-900℃) under argon at 1.8-3.2 V for 2-20 h. The laboratory scale experiments show that it was a potentially direct green method to produce Fe powder. At lower electrolysis voltage (〈2.2 V), higher current efficiency (〉90%) and smaller energy consumption (-3.0 kWh/kg) can be obtained. When the electrolysis voltage was above 2.4 V, the deposition of metal Ca from the salt lowered the current efficiency and increased the energy consumption. The electrolysis voltage also had effects on the micrographs of the reduced powder. The cubic particles can be seen in the products at the voltage lower than 2.2 V; when the voltage was higher than 2.2 V, it was nodular. The reduction proceeds at the cathode in two steps, i.e., from Fe2O3 to FeO and then to Fe. The oxygen emits at the anode. The process is potentially free of carbon emission and produces two useful products at both cathode and anode, promising a zero-emission technology for the extractive metallurgical industry. Sintered (300℃) porous pellets of Fe2O3 were electrolyzed to Fe in molten CaCl2 (800-900℃) under argon at 1.8-3.2 V for 2-20 h. The laboratory scale experiments show that it was a potentially direct green method to produce Fe powder. At lower electrolysis voltage (〈2.2 V), higher current efficiency (〉90%) and smaller energy consumption (-3.0 kWh/kg) can be obtained. When the electrolysis voltage was above 2.4 V, the deposition of metal Ca from the salt lowered the current efficiency and increased the energy consumption. The electrolysis voltage also had effects on the micrographs of the reduced powder. The cubic particles can be seen in the products at the voltage lower than 2.2 V; when the voltage was higher than 2.2 V, it was nodular. The reduction proceeds at the cathode in two steps, i.e., from Fe2O3 to FeO and then to Fe. The oxygen emits at the anode. The process is potentially free of carbon emission and produces two useful products at both cathode and anode, promising a zero-emission technology for the extractive metallurgical industry.
出处 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2009年第6期767-771,共5页 材料科学技术(英文版)
关键词 ELECTRO-REDUCTION Ferric oxide Iron powder Molten calcium chloride Electro-reduction Ferric oxide Iron powder Molten calcium chloride
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  • 1J.J. Robinson: JOM, 2007, 59(4), 149.
  • 2FACTSageTM: http://www.factsage.com.
  • 3Nippon Steel Corporation: http://wwwO.nsc.co.jp/ kankyou/index.html.
  • 4International Iron and Steel Institute: World Steel in Figures, 2006, http://www.worldsteel.org/pietures/ newsfiles/WSIF06.pdf.
  • 5USA Energy Information Administration: Emission of Greenhouse Gases in the United States 2005, Nov. 2006, http://www.eia.doe.gov/oiaf/1605/ ggrpt/index.html.
  • 6UK Department for Environment, Food, and Rural Affairs: Statistical Release, 2007, http://www.defra.gov.uk/news/2007/070131a.htm.
  • 7X.L. Wang: Iron and Steel Metallurgy (Ironmaking Section), Metallurgical Industry Press, Beijing, 2005.
  • 8Q.J. Zhao: Ironmaking, 1997, 2, 32.
  • 9D.J. Fray, T.W. Farthing and Z. Chen: PCT Patent, W09964638, 1998.
  • 10G.Z. Chen, D.J. Fray and T.W. Farthing: Nature, 2000, 407, 361.

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