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Assessment of a lithium ore to determine its amenability to processing for the extraction of lithium

机译:评估锂矿石以确定其对锂萃取的加工的可移植性

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With the impetus for less reliance on fossil fuels and cleaner environments, the ability to be able to extract lithium used in rechargeable batteries for portable electronic devices from ores economically, is essential. However a comprehensive understanding of the deportment of lithium and associated minerals in some ore bodies is limited. To facilitate further process development, a comprehensive understanding of the deportment of Li and associated minerals in ore bodies is essential to allow the industry to predict the response of ore reserves to metallurgical treatment options.To quantify the different lithium bearing minerals in the ore, the chemistry and structural characteristics of a suite of Li mineral phases were examined and defined prior to examining ore material. The mineralogy, mineral associations and liberation characteristics of both ore-bearing and gangue minerals were characterised using a Tescan Integrated Mineral Analyser and X-ray powder diffraction studies. The Li content and distribution within minerals were defined in both ore and mineral standards using LA-ICPMS and FESEM with ToF-SIMS capabilities. The Al:Si ratio, Mn, Na, Fe and F contents were used to classify and group the different Li mica minerals.Analysis of a micaceous pegmatite from Lepidolite Hill (400,000 t, 1.5 wt-% Li, Resource ~ 6 kt) indicated the ore is predominately lepidolite composite particles, with moderate to minor amounts of liberated trilithionite, albite, quartz, polylithionite and muscovite. Minor amounts of topaz, el-baite and beryl also occur. The lepidolite particles consist of fine textured intergrowths of Li muscovite- muscovite, lepidolite, polylithionite and trilithionite. A calculated theoretical grade-recovery for minerals lepidolite and combined trilithionite and polylithionite indicated that optimum Li-bearing mineral recovery occurs in the sieve fraction - 355 to +180 urn with rejection of quartz and albite that make up ~ 20 % of the sample. However, further grinding of lepidolite particles to particle size < 90 um is required to breakup and expose fine grains of polylithionite, trilithionite and possibly reject some muscovite, before applying a process for leaching and extracting lithium. Liberation and leaching of F from micas also has to be managed.
机译:通过推动力依赖于化石燃料和更清洁的环境,能够在经济上经济地从矿石中提取用于便携式电子设备的可再充电电池的锂。然而,综合了解某些矿体中锂锂和相关矿物质的驱逐有限。为了促进进一步的流程开发,对矿石李和相关矿物质的综合了解矿石和相关矿物质对允许该行业预测矿石储备对冶金治疗方案的反应至关重要。可以量化矿石中的不同锂含量矿物质在检查矿石之前,检查和定义了锂矿物相套装的化学和结构特征。使用Tescan集成矿物分析仪和X射线粉末衍射研究,表征了矿石和煤矸石矿物的矿物学,矿物关联和解放特性。矿物质中的LI含量和分布在矿石和矿泉标准中定义了使用LA-ICPMS和TOF-SIMS能力的FESEM。 Al:Si比率,Mn,Na,Fe和F含量用于对不同的锂云母矿物分类进行分类。来自Lepidolite Hill的云母Pegmatite的分析(400,000吨,1.5重量%Li,Resource〜6 kt)表示矿石主要是Lepidolite复合颗粒,中度至少量的释放三氟硫代硫酮,阿尔巴石,石英,聚锂硫代和Muscovite。还会出现少量的黄玉,El-Baite和Beryl。 Lepidolite颗粒由李麦芽糖钠,鳞翅石,聚锂离子素和三氟氨基酮的细纹理渗透。矿物质锂锂锂和三硫代硫代钛矿和聚锂硫代钛矿的计算理论级恢复表明,在筛分 - 355至+180瓮中发生最佳的Li-轴承矿物质恢复,其排斥石英和Albite,其占样品的〜20%。然而,在施用浸出和提取锂的过程之前,需要进一步研磨颗粒尺寸<90μm的粒度<90μm,并且可能渗出细粒粒子,三硫代酮,并且可能拒绝一些杂种物。也必须管理从云母的解放和浸出。

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