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Recycling of spent refractory materials to produce Al-Si master alloys via the aluminum reduction cell

机译:回收废耐火材料通过铝制还原细胞生产Al-Si主合金

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This paper explored a process for preparing Al-Si master alloys by recycling spent refractory material via aluminum electrolytic cells. The feasibility of spent refractory material electrolysis in the electrolytic cell was evaluated through thermodynamic analysis. The dissolution rates of alumina and spent refractory material were compared to obtain the appropriate mixing ratio. The effect of the addition of spent refractory material on the process was studied. The results show that the cryolite ratio, cathode voltage drop, and bath level were generally stable and had little negative effect on electrolysis. The current efficiency for the production of Al-Si master alloys was about 4% lower than that for the production of primary aluminum, which increased power consumption. However, the alumina consumption per ton of metal produced was reduced by 100 kg, which reduced the consumption of smelter grade alumina. Adding spent refractory material as a raw material to the aluminum electrolytic cell, fluorides were recycled to the electrolyte, whereas alumina and silica were electrolytically reduced to form liquid aluminum and silicon at the cathode. The process proposed shows immense advantage of generating no waste as slag, water or gas, and achieving cleaner production.(c) 2020 Elsevier Ltd. All rights reserved.
机译:本文探讨了通过通过铝电解细胞再循环耐火材料制备Al-Si主合金的方法。通过热力学分析评估电解槽中耐火材料电解的可行性。比较氧化铝和废耐火材料的溶解速率,以获得适当的混合比。研究了在该过程中添加了废耐火材料的效果。结果表明,龙晶石比,阴极电压降和浴液通常稳定,对电解几乎没有负面影响。基础铝生产的Al-Si主合金的目前的效率约为4%,这增加了功耗。然而,每吨生产的金属氧化铝消耗量减少了100千克,这降低了冶炼级氧化铝的消耗。将废耐火材料作为原料加入铝电解电池,氟化物被再循环到电解质,而氧化铝和二氧化硅被电解化以形成液体铝和硅在阴极处。提出的过程表明,没有作为炉渣,水或气体产生废物的巨大优势,以及实现清洁生产。(c)2020 elestvier有限公司保留所有权利。

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