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Interactions between Iron Oxides and the Additives Quartzite, Calcite and Olivine in Magnetite based Pellets

机译:氧化铁与添加剂石英岩,方解石和橄榄石在磁铁矿颗粒之间的相互作用

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摘要

In the present study, magnetite pellets with large amounts of the additives olivine, calcite and quartzite were isothermally reduced in a tubular furnace to study the interaction between iron oxides and the additives. A first attempt at using exaggerated amounts of additives was made in order to enable analyses of phases that do not otherwise occur in sufficient amounts for Xray diffraction and EDS-analyses. The reduction was thermodynamically set to yield either magnetite or wüstite at three different temperatures, 900, 1000 and 1150°C. For olivine, reduction tests were also performed at 500, 600, 700 and 800°C. The mineralogical phases that had formed were studied after oxidation as well as after reduction. The results showed that it was possible to identify, by X-ray diffraction, the main phases formed by the additives in all samples, after oxidation as well as reduction.The quartzite particles were shown to have remained quite intact after the oxidation treatment, except for small particles in the presence of impurities that formed melts. During reduction the quartzite particles reacted with iron so that fayalitic melts were formed already at 1000°C. After reduction at 1150°C all quartzite had transformed into a fayalitic melt so that most of the small pores had disappeared through sintering or had been filled by fayalite.In the sample with calcium oxide the additive particles had reacted during the oxidation treatment and formed calcium ferrites and calcium silicates. Upon reduction, the ferrites that formed during oxidation reduce, so that a porous calciowüstite becomes the primary phase already at 900°C. Calcium silicates that were formed during oxidation also remain in the sample as silicates during reduction.The results showed that the olivine after oxidation had reacted along the particle boundary and turned into magnesioferrite crystals and pyroxene/vitreous silica. Magnesium is liberated when the olivine particle breaks down, and finally ends up as islands of magnesioferrite surrounded by hematite in the original magnetite particles. In the pellet core the magnesium has diffused relatively long distances so that the magnesioferrite islands are not just found close to-, but also further away from the olivine particles. Upon reduction, the hematite converts to magnetite already at 500°C and in the tests carried out at 500-700°C, cracks were observed along the hematitemagnesioferrite boundary. At 800°C, temperature is enough to allow slow diffusion of magnesium from the magnesioferrite to the surrounding magnetite or wüstite, and at 900°C the cracks around the magnesioferrite phase disappear. The Mg stored in the wüstite then reacts with the silica slag in the sample when it approaches its melting point at 1000°C. The magnesium level in the wüstite then approaches a background level which was found to be about 2% after reduction for 2 hours at 1150°C.
机译:在本研究中,具有大量添加剂橄榄石,方解石和石英岩的磁铁矿粒料在管状炉中被等温降低,以研究氧化铁与添加剂之间的相互作用。进行首次尝试使用夸张的添加剂的添加量,以便能够对X射线衍射和EDS分析的足够量的相似分析。减少在热力学上设定,以在三种不同温度,900,1000和1150℃下产生磁铁矿或wüstite。对于橄榄石,还原试验也在500,600,700和800℃下进行。在氧化后以及还原后研究形成的矿物学相。结果表明,通过X射线衍射,可以识别所有样品中的添加剂形成的主要相,在氧化后以及还原后。在氧化处理之外,石英石颗粒显示在氧化处理后保持完整。对于形成熔体的杂质存在的小颗粒。在还原期间,石英岩颗粒与铁反应,使得已经形成了1000℃的脱铝熔体。在将1150℃下减少后,所有石英岩都转化为食用铝熔体,使得大多数小孔隙通过烧结消失,或者已经通过Fayalite填充。在氧化钙的样品中,添加剂颗粒在氧化处理过程中反应并形成钙铁氧体和钙硅酸钙。在还原时,在氧化期间形成的铁氧体减少,使得多孔CalciOwüstite成为已经在900℃的初级阶段。在氧化过程中形成的钙硅酸钙也在还原过程中硅酸盐保留在样品中。结果表明,氧化后的橄榄石沿颗粒边界反应并转化为镁铁矿晶体和辉石英/玻璃纤维素。当橄榄石的颗粒破裂时,镁被释放,最后一直以原始磁铁矿颗粒中的赤铁矿包围的镁铁矿岛。在颗粒芯中,镁的距离扩散得相对长的距离,使得镁铁矿岛不仅恰好靠近 - 而且还远离橄榄石颗粒。在还原时,赤铁矿在已经在500℃下转化为磁铁矿,并且在500-700℃下进行的试验中,沿血管镁铁氧铁墨钢界观察裂缝。在800℃下,温度足以使镁从镁铁矿的缓慢扩散到周围的磁铁矿或Wüstite,并且在900℃下,镁铁矿石的裂缝消失。储存在wüstite中的Mg然后在样品中在1000℃下熔点时与样品中的二氧化硅渣反应。然后,Wüstite中的镁水平接近在1150℃下减少2小时后发现约2%的背景水平。

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