铜电精炼中典型杂质对浮泥形成的影响

Q1 Earth and Planetary Sciences
Shila Jafari , Mikko Kiviluoma , Taina Kalliomäki , Elisabeth Klindtworth , Arif Tirto Aji , Jari Aromaa , Benjamin P. Wilson , Mari Lundström
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引用次数: 16

摘要

在电精炼过程中,第15组杂质砷、锑和铋可能以悬浮黏液的形式在电解液中沉淀并污染铜阴极。为了确定与悬浮物形成相关的杂质比阈值,采用连续过滤法研究了含不同浓度砷、锑和铋的合成铜电解精炼液。根据合成电解质中存在的初始杂质浓度来评估获得的浮动黏液的数量和组成。从而确定了砷、锑和铋对浮泥形成的具体影响。结果表明,电精炼电解液中锑(Sb)的上限为800 mg/L,但对铋的上限不太明确。利用SEM-EDS和XRD对合成的悬浮沉淀物进行了结构分析,结果表明,悬浮泥具有典型的非晶态结构,粒径约为25 μm,并预测了BiAsO4、SbAsO4、Sb2O3和Bi2O3的组成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of typical impurities for the formation of floating slimes in copper electrorefining

In electrorefining, Group 15 impurities arsenic, antimony and bismuth, may precipitate within the bulk electrolyte as floating slimes and contaminate the copper cathodes. In order to determine the impurity specific thresholds related to the formation of suspended solids, synthetic copper electrorefining electrolytes with different concentrations of arsenic, antimony and bismuth were investigated by a continuous filtration method. The amount and composition of the floating slimes obtained were evaluated in terms of the initial impurity concentrations present in the synthetic electrolyte. As a result, the specific influence of arsenic, antimony and bismuth on the floating slime formation was ascertained. The results suggest that there is an upper limit in electrorefining electrolytes for antimony (Sb) of 800 mg/L for floating slime formation, although the limit for Bi was less clear. Furthermore, the structure of the synthetic floating precipitates produced were analyzed using both SEM-EDS and XRD and showed typical amorphous structure of floating slimes with particle size of approximately 25 μm and predicted composition of BiAsO4, SbAsO4, Sb2O3 and Bi2O3.

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来源期刊
International Journal of Mineral Processing
International Journal of Mineral Processing 工程技术-工程:化工
CiteScore
3.02
自引率
0.00%
发文量
0
审稿时长
11.1 months
期刊介绍: International Journal of Mineral Processing has been discontinued as of the end of 2017, due to the merger with Minerals Engineering. The International Journal of Mineral Processing covers aspects of the processing of mineral resources such as: Metallic and non-metallic ores, coals, and secondary resources. Topics dealt with include: Geometallurgy, comminution, sizing, classification (in air and water), gravity concentration, flotation, electric and magnetic separation, thickening, filtering, drying, and (bio)hydrometallurgy (when applied to low-grade raw materials), control and automation, waste treatment and disposal. In addition to research papers, the journal publishes review articles, technical notes, and letters to the editor..
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