Efficient separation and recovery of Co and Ni from ammonium sulfate roasting‐water leaching solutions of oceanic cobalt‐rich crusts by sulfide precipitation and P507–Cyanex 272 synergistic extraction

烘烤 浸出(土壤学) 硫酸 化学 硫化物 硫酸铵 硫化钴 钴萃取技术 无机化学 降水 硫酸盐 萃取(化学) 核化学 色谱法 土壤水分 电化学 地质学 物理 有机化学 物理化学 电极 气象学 土壤科学
作者
Jinrong Ju,Yali Feng,Haoran Li,Zhonghua Xue,Jun Yang,Xingquan Du
出处
期刊:Asia-Pacific Journal of Chemical Engineering [Wiley]
卷期号:19 (3) 被引量:3
标识
DOI:10.1002/apj.3033
摘要

Abstract Oceanic cobalt‐rich crusts contain many valuable metals including Co, Ni, Cu, and Mn, of which Co and Ni are scarce metal resources on terrestrial land. Co, Ni, Cu, and Mn in cobalt‐rich crusts can be efficiently extracted by the ammonium sulfate roasting‐water leaching (ARWL) process, but separating and recovering Co and Ni from the leaching solution containing high concentrations of Mn is a challenging problem. In this study, a combination of sulfide precipitation and P507–Cyanex 272 synergistic extraction is proposed for the separation and recovery of Co and Ni from the ARWL solutions of oceanic cobalt‐rich crusts. Under the optimum sulfide precipitation conditions, Co and Ni were precipitated with 99.85% and 99.63% efficiency, respectively, while Mn was coprecipitated with only .79% efficiency. The Co–Ni mixed sulfides were dissolved by dilute sulfuric acid under oxidative conditions to obtain a solution containing 12.584 g/L Co, 11.012 g/L Ni, and a small amount of Mn. Subsequently, Co and Mn were extracted from this solution using P507–Cyanex 272 synergistic extraction, the single‐stage extraction efficiencies of Co and Mn were 95.76% and 99.73%, respectively, and the coextraction efficiency of Ni was 3.02%, under the conditions of a feed solution pH of 3.0, an extractant saponification degree of 70%, a total extractant concentration of 20% (P507 to Cyanex 272 ratio of 3:7), and an O/A ratio of 1.1:1. The results of the thermodynamic study showed that the reaction of Co extraction by this mixed extraction system was exothermic. Ni in the organic phase was washed with an H 2 SO 4 concentration of .12 mol/L, followed by stripping of Co and Mn with an H 2 SO 4 concentration of .6 mol/L. Mn in the stripping solution was removed by oxidative precipitation with (NH 4 ) 2 S 2 O 8 , after which the Co 3 O 4 product was obtained by precipitation with (NH 4 ) 2 C 2 O 4 and calcination. Similarly, NiC 2 O 4 ·2H 2 O can be obtained from the raffinate by (NH 4 ) 2 C 2 O 4 precipitation. Finally, a flowsheet was developed for the separation and recovery of Co, Ni, Cu, and Mn from the ARWL solutions of oceanic cobalt‐rich crusts. The study provides a promising scheme for the recovery of various valuable metals from deep‐sea cobalt‐rich crusts or manganese nodules.
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