Conditions of ore formation of the Aunikskoye F-Be deposit (Western Transbaikal)

L. B. Damdinova, Людмила Дамдинова, B. Damdinov, Б Б Дамдинов, M. Rampilov, М О Рампилов, S. V. Kanakin, С В Канакин
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Abstract

This study examines the compositions of the ore and the ore formation solutions, conditions of formation, and sources of Be mineralization using the Aunikskoye F-Be deposit, which is an integral part of the Western Transbaikal beryllium-bearing provinces, as a representative example. Further, the main factors responsible for the formation of beryllium mineralization were evaluated. The ore deposits are presented by the feldsparic–fluorspar–phenacite–bertrandite metasomatites formed in the carboniferous limestones during their metasomatic alternation with hydrothermal solutions by introducing F, Be, and other associated elements. The formation of early phenacite–fluorspar association occurred in high-fluorite СО2-containing solutions of elevated alkalinity with a salinity of ~10.5%–12% wt eq. NaCl in a temperature range of ~ 370–260 °С at pressures ranging from 1873 to 1248 bar. More recent fluorite and bertrandite deposits were formed by solutions with a salinity of 6.4%–7.7% wt eq. NaCl in a temperature range of ~156 °C–110 °C and a pressure range of 639–427 bar. The examination of the isotopic signature of the ore association minerals confirmed the apocarbonate nature of the main ore deposit and allowed the determination of the magmatogene nature of the ore-forming paleothermal springs, which are the source of subalkaline leucogranites. The primary factors that influenced the formation of the F-Be ore included the reduction of the F activity in solutions because of the binding of Ca and F in fluorite as well as because of the decrease in temperature during the ore deposition process. The elevated alkalinity of the ore-formation solutions resulted in the low solubility of the Be complexes, which caused a relatively low Be content in the ore and a relatively small amount of mineralization in the deposit.
外贝加尔西部Aunikskoye F-Be矿床成矿条件
本研究以外贝加尔西部含铍省的一个组成部分Aunikskoye F-Be矿床为代表,考察了矿石的组成、成矿溶液、形成条件和Be矿化来源。并对铍矿化形成的主要因素进行了评价。该矿床由石炭系石灰岩与热液交代交替过程中引入F、Be等伴生元素形成的长石-萤石-辉长石-硼砂质交代闪锌矿组成。早期辉石-萤石结合的形成发生在高萤石СО2-containing溶液中,这些溶液的碱度升高,盐度为~ 10.5%-12%,重量为NaCl,温度范围为~ 370-260°С,压力范围为1873 - 1248 bar。最近的萤石和菱黄铁矿矿床是由盐度为6.4%-7.7% (wt eq. NaCl)的溶液在~156°C - 110°C和639-427 bar的压力范围内形成的。矿石伴生矿物的同位素特征确定了主矿床的碳酸盐岩性质,并确定了成矿古温泉水的岩浆成因性质,而古温泉水是亚碱性亮花岗岩的来源。影响F- be矿石形成的主要因素包括:萤石中Ca和F的结合导致溶液中F活性的降低,以及矿石沉积过程中温度的降低。成矿溶液碱度升高,导致Be络合物溶解度低,导致矿石中Be含量较低,矿化程度较低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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