Direct reduction of magnesium oxide to magnesium using thermal plasma technology

被引:0
作者
M. Ramachandran
R. G. Reddy
机构
[1] The University of Alabama,Department of Metallurgical and Materials Engineering
来源
Mining, Metallurgy & Exploration | 2015年 / 32卷
关键词
Direct reduction; Magnesium; Thermal plasma;
D O I
暂无
中图分类号
学科分类号
摘要
A direct route for the reduction of magnesium oxide to magnesium using thermal plasma processing, with methane as the reducing gas, has been systematically evaluated. A feasibility study of the reduction reaction has been performed on the MgO-CH4 system at different methane concentrations and temperatures. The effects of changes in the key process parameters, such as the oxide-to-methane ratio and plasma power, on the yield of magnesium have been systematically evaluated. A maximum yield of about 61 mol% Mg was obtained using power of 20.0 kW and a molar ratio of MgO:CH4=1:1. Phase, morphological, elemental and binding energy analyses were performed on the product powders to understand the reduction reaction. Surface oxidation was observed in smaller magnesium particles in all the experiments, while the in-situ sintering of magnesium rods was observed at a molar ratio of MgO:CH4=1:1.5. Magnesium carbide (Mg2C3) was observed in the product, and its mechanism of formation is proposed using phase equilibrium data and a predominance diagram.
引用
收藏
页码:30 / 37
页数:7
相关论文
共 57 条
  • [1] Brooks G(2006)The magnesium carbides JOM 58 51-55
  • [2] Trang S(2008)undefined JOM 60 63-69
  • [3] Witt P(1984)undefined Ind. Eng. Chem. Process Des. Dev. 23 210-7
  • [4] Khan MNH(2000)undefined Surface and Coatings Technology 131 493-9
  • [5] Nagle M(2003)undefined Scandi. J. Metall. 32 171-6
  • [6] Das S(2010)undefined J. Min. Metall. Sect. B-Metall. 46 97-103
  • [7] Eckert CA(1948)undefined Helv. Chim. Acta 31 1584-1602
  • [8] Irwin RB(1990)undefined Binary Alloy Phase Diagrams 3 2531-2532
  • [9] Graves CW(2001)undefined Solid State Ionics 141–142 163-8
  • [10] Fukumasa O(1998)undefined Thin Solid Films 316 189-94