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一种以菱镁石和白云石混合矿物为原料的真空热还原法炼镁技术 被引量:12

A method of producing magnesium by vacuum thermal reduction using magnesite and dolomite as materials
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摘要 提出一种以白云石和菱镁石的混合矿物为原料、以铝粉为还原剂的真空热还原炼镁,然后利用镁还原后的残渣制取氢氧化铝的工艺和技术,并进行实验研究。结果表明:以煅烧后的白云石和菱镁石混合矿物为原料的真空金属热还原炼镁,在还原温度为1 200℃、还原时间为2 h、铝粉过量系数为5%的条件下,镁的还原率可达89%以上,还原渣主要物相为CaO.2Al2O3,还原渣中Al2O3的含量为67%左右;该炼镁还原渣经碳酸钠和氢氧化钠的混合碱液浸出后,Al2O3的浸出率达到85%,浸出Al2O3后渣的主要成分为CaCO3;浸出液中的Al2O3以可溶解的铝酸钠存在于浸出液中,后经碳分分解制得氢氧化铝,氢氧化铝的白度达到97%。 The experiments of a new method of producing magnesium and aluminum hydroxide as by-product using dolomite and magnesite as materials and aluminum powder as reductant were studied.The results show that when magnesium is produced by vacuum aluminothermic reduction using the mixture of calcined dolomite and calcined magnesite as materials,the reduction ratio of Mg can be over 89% under the conditions of reduction temperature 1 200 ℃,reduction time 2 h,and the excess coefficient of reductant 5%.The main phase of the reduction slag is CaO·2Al2O3 and the content of alumina is about 67%.The Al2O3 leaching rate of reduction slag reaches 85% when the reduction slag is leached with a mixture of sodium hydroxide and sodium carbonate.The main phase of leaching slag is CaCO3.The Al2O3 enters into the leaching solution with soluble sodium aluminate.Aluminum hydroxide with whiteness of over 97% can be obtained after carbonation precipitation.
出处 《中国有色金属学报》 EI CAS CSCD 北大核心 2011年第10期2678-2686,共9页 The Chinese Journal of Nonferrous Metals
关键词 铝热还原 铝酸钙 氧化铝 菱镁石 白云石 真空热还原 浸出 aluminothermic reduction calcium aluminate aluminum oxide magnesium dolomite magnesite vacuum thermal reduction leaching
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  • 1张新明,彭卓凯,陈健美,邓运来.耐热镁合金及其研究进展[J].中国有色金属学报,2004,14(9):1443-1450. 被引量:107
  • 2SUJIT D. Primary magnesium production costs for automotive applications[J]. Journal of the Minerals, Metals and Materials Society, 2008, 60(11): 63-69.
  • 3HANKO G, ANTREKOWlTSCH H, EBNER P. Recycling automotive magnesium scrap[J]. JOM, 2002, 54(2): 51-54.
  • 4鲍荣华,周进生.注重镁的研发与应用,拓宽节约能源新途径[J].资源与产业,2009,11(5):92-95. 被引量:3
  • 5ZHOU Ning-bo, CHEN Bai-zhen, HE Xin-kuai, LI Yi-bing. Preparation of anhydrous magnesium chloride in a gas-solid reaction with ammonium camallite[J]. Frontiers of Chemistry in China, 2006, 1(4): 384-388.
  • 6马鸿文,曹瑛,蒋芸,吴秀文,刘玉芹.中国金属镁工业的环境效应与可持续发展[J].现代地质,2008,22(5):829-837. 被引量:20
  • 7彭建平,冯乃祥,高枫,谭亚菊,陈恒.镁冶金技术的能耗与环境评价[J].有色矿冶,2008,24(1):40-43. 被引量:7
  • 8SUN Ze, ZHANG He-nan, LI Ping, LI Bing, LU Gui-min. Modeling and simulation of the flow field in the electrolysis ofmagnesium[J]. Journal of the Minerals, Metals and Materials Society, 2009, 61(5): 29-33.
  • 9LEBEDEV O A, BRUSAKOV Y, SHKURYAKOV N P. Express monitoring of MgCI2 concentration in the electrolyte of magnesium electrolyzers[J]. Russian Journal of Applied Chemistry, 2005, 78(8): 1276-1279.
  • 10MINIC D, MANASIJEVIC D, DOKIC J, ZIVKOVIC D, ZIVKOVIIC. Silicothermic reduction process in magnesium production[J]. Journal of Thermal Analysis and Calorimetry, 2008, 93(2): 411-415.

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