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Influence of Texture and Trace Element Composition on Hematite to Wüstite Reduction Rates of Fine Iron ore Fragments

机译:赤铁矿的质地和微量元素组成对铁精矿碎块白钨还原率的影响

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Reduction of ore is the key process in its conversion to the metal form, and the reducibility of ore fragments is therefore a crucial parameter in smelting operations. At constant oxygen fugacity, reducibility is controlled by the texture of the ore fragments, which determines the transport length from reduction front to fragment interface, and the chemistry of the ore fragments, which impacts element mobility within the crystal lattice. Their relative contribution was studied here for iron-ore reduction by combining compositional analyses and thermo-gravitational reduction experiments on individual ore fragments. Results indicate that despite large, and ore-characteristic differences in chemistry, ore-fragment composition has a negligible impact on reducibility. The large variations among bulk ores; e.g. the start of hematite-to-magnetite reduction varies by over 300°C, is therefore attributable to ore-texture effects. Porous, goethite-dominated ores show the highest reducibility, followed by fractured and layered fragments and finally dense ore fragments.
机译:矿石的还原是其转化为金属形式的关键过程,因此矿石碎片的还原性是冶炼操作中的关键参数。在恒定的氧气逸度下,还原性受矿石碎片的质地控制,矿石的质地决定了从还原前沿到碎片界面的运输长度,以及矿石碎片的化学性质,这会影响元素在晶格中的迁移率。通过组合组成分析和热重力还原实验对单个矿石碎片进行研究,从而研究了它们对铁矿石还原的相对贡献。结果表明,尽管化学上存在很大的矿石特征差异,但矿石碎片的组成对还原性的影响可忽略不计。散装矿石之间的差异很大; 例如赤铁矿到磁铁矿还原的开始变化超过300°C,因此归因于矿石纹理效应。针铁矿为主的多孔矿石具有最高的还原性,其次是破碎和分层的碎片,最后是致密的矿石碎片。

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