广西珊瑚钨锡矿床白云母原位微量元素特征及成矿过程约束

    In-situ trace element characteristics of muscovite in the Guangxi Shanhu tungsten-tin deposit and their constraints on the mineralization process

    • 摘要: 广西珊瑚钨锡矿床是华南典型的石英脉型钨锡矿床,为厘清其成矿流体演化与精细成矿过程,对矿床成矿阶段白云母开展LA-ICP-MS原位微量元素分析,以此约束矿床成矿过程与成矿机制。研究结果表明,矿床成矿阶段可划分为石英-黑钨矿、石英-硫化物、石英-萤石、白钨矿-方解石四个阶段;成矿期发育两类白云母(Mic-1、Mic-2),Mic-1形成于石英-黑钨矿阶段,与黑钨矿、锡石共生,Mic-2形成于石英-硫化物阶段,与硫化物共生。两类白云母地球化学特征相近,均显著富集Li、B、Rb、Sn、Cs、Ba元素,中等含量Be、V、Ga、Sr、W、Tl元素,贫Co、Ni、Cu、Zr、Nb、In元素;Mic-1的Li、W、Sn含量显著高于Mic-2,指示Mic-1形成阶段成矿流体中岩浆热液组分占比更高,且分异演化程度更高,石英-黑钨矿阶段黑钨矿、锡石的大量结晶导致流体中W、Sn元素发生显著贫化。白云母微量元素特征指示钨锡矿化形成于高氧逸度、中等pH值的热液环境,大气降水的加入是成矿流体演化的关键因素,其使成矿流体pH值升高,钨的溶解度降低、饱和度增加,最终促使钨从流体中沉淀成矿。白云母原位微量元素可有效示踪珊瑚钨锡矿床成矿流体的演化过程,为解析矿床成矿机制与指导深部找矿提供了矿物学依据。

       

      Abstract: The Guangxi Shanhu tungsten-tin deposit is a typical quartz vein-type tungsten-tin deposit in South China. In order to clarify the evolution of ore-forming fluid and the detailed mineralization process, LA-ICP-MS in-situ trace element analysis is carried out on muscovite in different mineralization stages of the deposit to constrain the mineralization process and mechanism. The results show that the mineralization process of the deposit can be divided into four stages: quartz-wolframite, quartz-sulfide, quartz-fluorite and scheelite-calcite. Two types of muscovite (Mic-1 and Mic-2) develop during the mineralization period. Mic-1 forms in the quartz-wolframite stage and coexisted with wolframite and cassiterite, while Mic-2 forms in the quartz-sulfide stage and coexists with sulfides. The two types of muscovite have similar geochemical characteristics, both significantly enriched in Li, B, Rb, Sn, Cs, Ba, medium in Be, V, Ga, Sr, W, Tl, and depleted in Co, Ni, Cu, Zr, Nb, In. The contents of Li, W and Sn in Mic-1 are significantly higher than those in Mic-2, indicating that the ore-forming fluid in the formation stage of Mic-1 has a higher proportion of magmatic hydrothermal components and a higher degree of differentiation and evolution. The massive crystallization of wolframite and cassiterite in the quartz-wolframite stage leads to the significant depletion of W and Sn in the fluid. The trace element characteristics of muscovite indicate that tungsten-tin mineralization formed in a hydrothermal environment with high oxygen fugacity and moderate pH value. The addition of atmospheric precipitation is a key factor in the evolution of ore-forming fluid, which increases the pH value of ore-forming fluid, reduces the solubility of tungsten, increases its saturation, and ultimately promotes the precipitation of tungsten from the fluid to form ore. The in-situ trace elements of muscovite can effectively trace the evolution process of the ore-forming fluid in the Shanhu tungsten-tin deposit, and provide mineralogical basis for analyzing the mineralization mechanism and guiding deep prospecting.

       

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