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Use of colemanite in ferronickel smelting

机译:镍铁矿在镍铁冶炼中的用途

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Use of colemanite in metal-slag systems aims primarily to decrease the viscosity of slag and, therefore, achieve better metal-slag separation. Enhanced metal-slag separation is helpful to decrease the number of suspended metal/alloy droplets in slag, i.e. the physical losses. In the literature, successful use of colemanite was reported both in steelmaking and copper matte smelting processes. Ferronickel smelting slags contain nickel in the range of 0.1-0.2% and correspondingly, metal-slag distribution ratio values of nickel are reported even above 200. On the contrary, nickel recoveries are hard to exceed 95%. This can be mostly attributed to the physical losses of nickel due to very high slag volume in ferronickel smelters; for 1 ton of ferronickel, 10-15 tonnes of slag are generated regardless of the type of the laterite, which contains significant quantity of gangue components. The authors thought that use of colemanite could be a solution to decrease physical losses. Therefore, the use of colemanite in ferronickel smelting was investigated in the present work. Laboratory-scale smelting experiments were conducted using calcined and prereduced laterites in a vertical tube furnace under different gas atmospheres. The amount of colemanite added was in the range of 0 - 2.5% of the total charge. The experiments were also performed using ferronickel and slag samples obtained from a ferronickel smelter.
机译:在金属炉渣系统中使用硬锰矿主要目的是降低炉渣的粘度,并因此实现更好的金属炉渣分离。增强的金属-炉渣分离有助于减少炉渣中悬浮的金属/合金液滴的数量,即物理损失。在文献中,据报道在炼钢和铜磨砂冶炼过程中均成功使用了硬锰矿。镍铁冶炼炉渣中的镍含量在0.1-0.2%之间,据报道,镍的金属渣分布比值甚至超过200。相反,镍的回收率很难超过95%。这主要归因于镍铁冶炼厂中很高的炉渣体积导致的镍的物理损失。对于1吨镍铁,无论红土的类型如何,都会产生10-15吨的炉渣,而其中的红土含有大量的脉石成分。作者认为,使用硬锰矿可以减少物理损失。因此,在本工作中研究了锰铁矿在镍铁冶炼中的用途。在垂直管式炉中,在不同的气体气氛下,使用煅烧和预还原的红土进行实验室规模的熔炼实验。钙锰矿的加入量为总装料量的0-2.5%。还使用镍铁和从镍铁冶炼厂获得的炉渣样品进行了实验。

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