Deep cleaning of a metallurgical zinc leaching residue and recovery of valuable metals

被引:0
作者
Peng Xing [1 ]
Baozhong Ma [1 ]
Peng Zeng [1 ,2 ]
Chengyan Wang [1 ]
Ling Wang [1 ]
Yonglu Zhang [1 ]
Yongqiang Chen [1 ]
Shuo Wang [3 ]
Qiuyin Wang [2 ]
机构
[1] School of Metallurgical and Ecological Engineering, University of Science and Technology Beijing
[2] Yunnan Yuntong Zinc CoLtd
[3] Faculty of Metallurgical and Energy Engineering, Kunming University of Science and Technology
关键词
deep cleaning; zinc leaching residue; zinc; lead; leaching; electrowinning;
D O I
暂无
中图分类号
TF812 [铅]; X758 [有色金属工业];
学科分类号
080603 ; 083002 ;
摘要
Huge quantities of zinc leaching residues(ZLRs) generated from zinc production are dumped continuously around the world and pose a potential environmental threat because of their considerable amounts of entrained heavy metals(mainly lead). Most ZLRs have not been properly treated and the valuable metals in them have not yet been effectively recovered. Herein, the deep cleaning of a ZLR and recovery of valuable metals via a hydrometallurgical route were investigated. The cleaning process consists of two essential stages: acid leaching followed by calcium chloride leaching. The optimum conditions for extracting zinc, copper, and indium by acid leaching were a sulfuric acid concentration of 200 g·L-1, a liquid/solid ratio of 4:1(m L/g), a leaching time of 2 h, and a temperature of 90°C. For lead and silver extractions, the optimum conditions were a calcium chloride concentration of 400 g·L-1, a pH value of 1.0, a leaching time of 1 h, and a temperature of 30°C. After calcium chloride leaching, silver and lead were extracted out and the lead was finally recovered as electrolytic lead by electrowinning. The anglesite phase, which poses the greatest potential environmental hazard, was removed from the ZLR after deep cleaning, thus reducing the cost of environmental management of ZLRs. The treatment of chlorine and spent electrolyte generated in the process was discussed.
引用
收藏
页码:1217 / 1227
页数:11
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