首页> 外文会议>EPD(Extraction and Processing Division) Congress 2006 vol.2 >ION-EXCHANGE RECOVERY OF NICKEL AND COBALT FROM METAL-ORGANIC COMPLEXES GENERATED IN BIOLEACHING OF LOW GRADE NICKEL LATERITE ORES
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ION-EXCHANGE RECOVERY OF NICKEL AND COBALT FROM METAL-ORGANIC COMPLEXES GENERATED IN BIOLEACHING OF LOW GRADE NICKEL LATERITE ORES

机译:低品位镍红土矿石生物浸出过程中产生的金属有机络合物中镍和钴的离子交换回收

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Bioleaching of nickel laterite ores is based on the use of heterotrophic fungi organisms and their metabolites (organic acids) to dissolve nickel and cobalt from oxide minerals to form metal-organic complexes. Metal recovery from this process using an aminophosphonic acid based chelating resin (Purolite S950) was investigated as a function of metal concentrations, complexing agent including citric, dL-malic and lactic acids. Batch adsorptions were conducted using synthetic leachate solutions of nickel and cobalt with concentrations from 15 to 2000 mg/L prepared in 0.01 and 0.1 M organic acids. Adsorption equilibrium data were interpreted using the Langmuir, Freundlich and Dubinin-Kagner-Radushkevich (DKR) models. The results showed that equilibrium adsorption data for nickel-organic complexes followed the Freundlich model and those for cobalt agreed with the Langmuir model. It was observed that the maximum adsorption capacities of nickel and cobalt were 3.26 and 10.48 mg/g resins respectively. These were achieved in metal complexes prepared from 0.01 M lactic acid. Metal elution was conducted using 2 M nitric acid. High metal recoveries were achieved from low metal concentrations but were found to decrease with increasing metal concentration. The results suggest that effective recovery of nickel and cobalt from low concentration of metals, such as those generated from bioleaching operations, can be achieved suitably using chelating resins.
机译:红土镍矿的生物浸提是基于使用异养真菌生物及其代谢产物(有机酸)从氧化物矿物中溶解镍和钴以形成金属有机配合物。研究了使用氨基膦酸基螯合树脂(Purolite S950)从该过程中回收的金属与金属浓度,络合剂(包括柠檬酸,dL-苹果酸和乳酸)的关系。使用镍和钴的合成浸出液溶液(在0.01和0.1 M有机酸中制备的浓度为15至2000 mg / L)进行批量吸附。使用Langmuir,Freundlich和Dubinin-Kagner-Radushkevich(DKR)模型解释吸附平衡数据。结果表明,镍-有机配合物的平衡吸附数据遵循Freundlich模型,钴的平衡吸附数据与Langmuir模型一致。可以看出,镍和钴的最大吸附容量分别为3.26和10.48 mg / g树脂。这些是在由0.01 M乳酸制备的金属络合物中实现的。使用2 M硝酸进行金属洗脱。低金属浓度可实现较高的金属回收率,但随着金属浓度的增加而降低。结果表明,使用螯合树脂可以适当地从低浓度的金属(例如由生物浸出操作产生的金属)中有效回收镍和钴。

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