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An overview of rare-earth recovery by ion-exchange leaching from ion-adsorption clays of various origins

机译:从各种来源的离子吸附粘土中通过离子交换浸提回收稀土的概述

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Continuous development of advanced technologies has created increasing demand for rare-earth elements (REE), with global emphasis on identifying new alternate sources to ensure adequate supply. Ore deposits containing physically adsorbed lanthanides are substantially lower grade than other REE deposit types; however, the low mining and processing costs make them economically attractive as sources of REE. To evaluate the commercial potential for the recovery of REEs from ion-adsorption deposits in a systematic manner, a standardized procedure for REE leaching was developed previously. Using this procudure it was found that, regardless of variations in ore origin and REE content, all REE consistently reached peak extraction levels under ambient conditions with fast kinetics. Various techniques to improve the REE extraction through process variations were also investigated: it was found that decreasing the L:S ratio, re-using leachate on fresh ores and counter-current leaching were all capable of increasing REE concentrations in the resultant leachate, albeit at the expense of REE extraction levels. In addition, the water content trapped in the leached material was found to contain significant amounts of REE and residual lixiviant requiring thorough washing of the solid residue.
机译:不断发展的先进技术已导致人们对稀土元素(REE)的需求不断增加,全球重点是寻找新的替代来源以确保充足的供应。含有物理吸附镧系元素的矿床的品位明显低于其他REE矿床。然而,低廉的采矿和加工成本使其成为稀土的经济来源。为了以系统的方式评估从离子吸附沉积物中回收REE的商业潜力,以前开发了REE浸出的标准化程序。使用该程序发现,无论矿石来源和稀土元素含量如何变化,所有稀土元素在环境条件下均以快速动力学稳定地达到峰值提取水平。还研究了各种通过工艺变化来改善REE提取的技术:发现降低L:S比,在新鲜矿石上重复使用渗滤液和逆流浸提均能够提高所得渗滤液中的REE浓度。以牺牲REE提取水平为代价。另外,发现沥滤材料中截留的水含量包含大量的REE和残留浸滤剂,需要彻底洗涤固体残余物。

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