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Systematic study on separation of Mn and Fe from ferruginous manganese ores by carbothermic reduction roasting process: Phase transformation and morphologies

机译:用碳热还原焙烧过程对铁素锰矿石分离的系统研究:相转化与形态

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Carbothermic roasting reduction followed by magnetic separation process is reported as an effective technological process to separation and recovery of Fe and Mn from low-grade ferruginous manganese ores (Fe–Mn ores) as an acceptable feed to meet the demands of the developing manganese industry. In this study, the effects of operating variables on the recovery and grade of Fe and Mn are initially investigated during the carbothermic roasting reduction process followed by magnetic separation. Then, the phase transformation and morphologies of spinel (FeyMn1?y)Al2O4, fayalite FeyMn2?ySiO4and (FeO)x(MnO)1?xare investigated by SEM-EDS, XRD, TG/DTG and thermodynamic analyses. Finally, the stepwise reduction and interfacial reaction of three types of phases are investigated at 700–1100?°C for 10–120?min to clarify the reason for the poor separation of Mn and Fe from Fe–Mn ores. The effect of MnO on the stepwise reduction behavior of Fe2SiO4and FeAl2O4is analyzed in detail. Finally, the tight integration of the MnO phase with a metallic Fe–Mn alloy derived from the stepwise reduction of (FeO)x(MnO)1?xare closely associated with the stepwise reduction of the FeyMn2?ySiO4, (FeyMn1?y)Al2O4and (Fe,Mn)2O3phases. In addition, the formation mechanism and the interfacial reduction reaction of (FeO)x(MnO)1?x, (FeyMn1?y)Al2O4and FeyMn2?ySiO4are systematically analyzed to show the effect of the MnO phase on the stepwise reduction of the Fe2SiO4and FeAl2O4phases. Finally, some suggestions were recommended for the carbothermic reduction followed by magnetic separation for utilizing the Fe–Mn ores effectively. The manganese-rich product an acceptable feed containing 53.60?wt.% total Mn with the Mn recovery of 89.38% and mass fraction of Mn/Fe of 5.43 are obtained.
机译:据报道,磁性分离过程随后被磁性分离过程作为一种有效的技术方法,可以从低级铁素锰矿(Fe-Mn Ores)作为一种可接受的饲料,以满足发育中锰行业的需求的可接受的饲料。在该研究中,最初在碳热还原过程中最初研究了操作变量对Fe和Mn的回收和等级的影响,然后进行磁分离。然后,通过SEM-EDS,XRD,TG / DTG和热力学分析研究了尖晶石(FEYMN1αY)Al2O4,Fayalite Feymn2的相变和形态,Fayalite Feymn2αYSiO4和(FeO)x(MnO)1。XARE。最后,在700-1100℃下研究三种各相的逐步减少和界面反应10-120℃,以阐明Fe-Mn矿石中Mn和Fe分离不良的原因。详细介绍了MNO对Fe2SiO4和Feal2O4的逐步减少行为的影响。最后,MNO相用衍生自逐步减少的金属Fe-Mn合金的MNO相的紧密整合与Feymn2,(Feymn1γ)Al2O4和(Fe,Mn)2o3phases。此外,形成机制和(FeO)X(MNO)1αx,(Feymn1γ)Al2O4和Feymn2的界面还原反应,系统地分析以显示MnO相对Fe2SiO4和Feal2O4phase的逐步减少的影响。 。最后,建议使用一些建议进行碳热还原,然后有效地利用Fe-Mn矿石进行磁性分离。富含锰的产品是含有53.60·wt的可接受的饲料。获得Mn回收率为89.38%的Mn恢复和5.43的质量分数的%Mn。

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