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首页> 外文期刊>Hydrometallurgy >Preparation of Zn-Mn ferrite from spent Zn-Mn batteries using a novel multi-step process of bioleaching and co-precipitation and boiling reflux
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Preparation of Zn-Mn ferrite from spent Zn-Mn batteries using a novel multi-step process of bioleaching and co-precipitation and boiling reflux

机译:采用新型的生物浸出-共沉淀-沸腾回流多步法从废锌锰电池中制备锌锰铁氧体

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摘要

Synthesis of wide-application Zn-Mn ferrite soft magnetic materials using spent Zn-Mn batteries as starting raw materials has attained growing attentions in recent years. The multi-step series processes of reductive acid leaching and oxidative co-precipitation and high temperature calcination or hydrothermal reaction were generally utilized to carry out the conversion. In this work, a novel multi-step process of bioleaching and co-precipitation at 30 degrees C and boiling reflux at 100 degrees C, which was characteristic of low cost, environmental friendliness and energy saving, was attempted to accomplish the conversion for the first time. The results showed that synthesis of Zn-Mn ferrite using bioleaching liquor as a precursor was feasible. NaOH was the best co-precipitator for manufacturing the soft magnetic material from bioleaching liquor compared with NaHCO3 and NH4HCO3. Higher pH value of the second co-precipitation at 13.0, higher total concentration of Mn2+ + Zn2+ + Fe2+ at 2.0 mol/l and longer reflux time at 5 h were essential for greater magnetization and better crystallinity. Under optimum conditions, this novel multi-step process harvested soft magnetic material with highest saturation magnetization of 102 emu . g(-1), offering an alternative to convert spent Zn-Mn batteries into Zn-Mn ferrite. (C) 2015 Elsevier B.V. All rights reserved.
机译:近年来,以废旧锌锰电池为原料合成用途广泛的锌锰铁氧体软磁材料受到越来越多的关注。一般采用还原酸浸出和氧化共沉淀与高温煅烧或水热反应的多步骤串联过程进行转化。在这项工作中,尝试了一种新颖的多步骤生物浸出和共沉淀过程,并在100摄氏度下沸腾回流,该过程具有低成本,环境友好和节能的特点,首次实现了转化时间。结果表明,以生物浸出液为前驱体合成锌锰铁氧体是可行的。与NaHCO3和NH4HCO3相比,NaOH是用生物浸出液制造软磁材料的最佳共沉淀剂。第二次共沉淀的较高pH值为13.0,Mn2 + + Zn2 + + Fe2 +的总浓度较高,为2.0 mol / l,5 h的回流时间较长,这对于更大的磁化强度和更好的结晶度至关重要。在最佳条件下,这种新颖的多步过程可收获具有102 emu最高饱和磁化强度的软磁材料。 g(-1),提供了将废Zn-Mn电池转换为Zn-Mn铁氧体的替代方法。 (C)2015 Elsevier B.V.保留所有权利。

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