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Smelting and Selective Reduction of Limonitic Laterite Ore in Mini Blast Furnace

机译:小型高炉褐铁矿红土矿的冶炼及选择性还原

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摘要

Abstract One main source of nickel besides nickel sulfide ore is laterite nickel ore. Laterite ore is more sustainable and has abundant reserves. Nowadays, nickel demands are increasingly needed either for the manufacture of stainless steel or nickel-based batteries. This study aims to study the smelting process of limonitic laterite nickel ore. The smelting process was performed using a Mini Blast Furnace pilot plant with a capacity of ten tons of ore per day or 350?kg per batch. In the interest of modifying the properties of slag and enhance selective reduction, limestone and coal were used. The smelting process was performed by feeding raw material bearing nickel (ore and sinter) as much as 480?kg. The ratio of nickel:sintered:coal:limestone was 1:2.3:2.73:(1.14–1.44). The blast air used was 26?m3/min. Then, the crude ferronickel or nickel pig iron products and the resulting slag were characterized using EDX and XRD. As a result, the resulting crude ferronickel products had relatively high nickel and sulfur contents, namely 24.30 and 1.15, respectively. In addition, the nickel recovery produced was 64.3. Selective reduction proved can be enhanced by amount of limestone fed into Mini Blast Furnace.
机译:摘要 除硫化镍矿外,镍的一个主要来源是红土镍矿。红土矿更具可持续性,储量丰富。如今,不锈钢或镍基电池的制造对镍的需求越来越大。本研究旨在研究褐铁矿红土镍矿的冶炼过程。冶炼过程使用小型高炉试验装置进行,该试验装置的产能为每天10吨矿石或每批350?kg。为了改变炉渣的性质和增强选择性还原,使用了石灰石和煤。冶炼过程是通过进料多达480?kg的含镍原料(矿石和烧结矿)进行的。镍:烧结:煤:石灰石的比例为1:2.3:2.73:(1.14–1.44)。使用的鼓风为26?m3/min。然后,采用EDX和XRD对粗镍铁或镍生铁产品及其所得炉渣进行表征。因此,所得镍铁粗产品的镍和硫含量相对较高,分别为24.30%和1.15%。此外,镍回收率为64.3%。事实证明,通过向小型高炉进料的石灰石量可以增强选择性还原。

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