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Optimization of the Ferromanganese Production from Spent Primary Batteries -Design of the Process Slag

机译:废旧电池生产锰铁的优化-工艺炉渣的设计

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In order to improve the recycling efficiency and especially the manganese recovery yield in the ferromanganese production from spent primary batteries process, slag-metal equilibrium experiments were conducted in a closed MoSij-resistance furnace above argon atmosphere. Four synthetic slag-series: CaO-SiO_2, CaO-SiO_2-Al_2O_3, CaO-SiO_2-MgO and CaO-SiO_2-Al_2O_3-MgO in different compositions were brought into contact with two different Fe-Mn alloys (50 and 90 wt.-percent Mn), using alumina crucibles at 1470 deg C.The equilibrium computations were carried out with the computer software FactSage using the FACT compound 5.0 databases. The theoretical and experimental re/tilts clearly showed the same tendency and an acceptable agreement. Five slag systems were found allowing keeping more than 80 wt- percent Mn in the metallic alloy. The most important factor to increase the manganese fraction in the Fe-Mn-alloy is the CaO-content in the slag, together with the concentration of MgO improving the basicity of the slag. The initial slag basicity must be near to or higher than 1. The best results were obtained using a slag composition of 54 wt.-percent CaO, 6 wt.-percent SiO_2,37 wt.-percent Al_2O_3 and 3 wt.-percent MgO.This recovered more than 90 wt.-percent of the Mn-input in the alloy.
机译:为了提高废旧一次电池生产铁锰过程中的回收效率,特别是提高锰的回收率,在密闭的MoSij电阻炉中于氩气气氛下进行了炉渣-金属平衡实验。将四种不同成分的合成渣系列:CaO-SiO_2,CaO-SiO_2-Al_2O_3,CaO-SiO_2-MgO和CaO-SiO_2-Al_2O_3-MgO与两种不同的Fe-Mn合金(50和90 wt.-使用氧化铝坩埚在1470摄氏度下进行Mn(%Mn)平衡计算。使用FACT Compound 5.0数据库使用计算机软件FactSage进行平衡计算。理论上和实验上的倾斜/倾斜都清楚地表明了相同的趋势并且可以接受。发现有五个炉渣系统,可以在金属合金中保留超过80 wt%的Mn。增加铁锰合金中锰含量的最重要因素是炉渣中的CaO含量,以及提高炉渣碱度的MgO浓度。初始炉渣碱度必须接近或高于1。使用54 wt%CaO,6 wt%SiO_2、37 wt%Al_2O_3和3 wt%MgO的炉渣成分可获得最佳结果这回收了合金中Mn输入量的90%以上。

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