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Iron Carbonate Beneficiation Through Reductive Calcination – Parameter Optimization to Maximize Methane Formation

机译:还原煅烧碳酸铁矿床提纯—参数优化以最大化甲烷形成

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摘要

Direct iron carbonate reduction through reductive calcination in a hydrogen atmosphere is a high‐potential candidate for environmentally benign pig iron production. In addition to the direct formation of elemental iron in one reaction step, carbon dioxide is only partially released from the carbonate. Instead, carbon monoxide, methane, and higher hydrocarbons form as gaseous reaction products. The experimental study described here is based on Mg‐Mn substituted iron carbonate ore. First, the chemical thermodynamics of the reductive calcination of iron, magnesium, and manganese carbonate are discussed. The influence of temperature and pressure on equilibrium conversion is reviewed together with the accessible products. Results for the reductive calcination of mineral iron carbonate in a tubular reactor setup are presented. The methane yield was optimized via statistically planned design of experiments. The gauge pressure and temperature showed a statistically significant effect on the total iron carbonate conversion, as well as on carbon monoxide, and methane yield.
机译:通过在氢气气氛中进行还原性煅烧直接还原碳酸铁是生产环境良好的生铁的高潜力候选人。除了在一个反应​​步骤中直接形成元素铁外,二氧化碳仅从碳酸盐中部分释放。相反,一氧化碳,甲烷和高级烃形成为气态反应产物。这里描述的实验研究是基于Mg-Mn取代的碳酸铁矿石。首先,讨论了铁,镁和碳酸锰还原煅烧的化学热力学。回顾温度和压力对平衡转化的影响以及可获得的产品。给出了在管式反应器装置中还原性煅烧矿物碳酸铁的结果。通过统计计划的实验设计来优化甲烷产量。表压和温度显示出对总碳酸铁转化率,一氧化碳和甲烷产率的统计学显着影响。

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