钨锡矿石矿物微量元素LA-ICP-MS面扫描特征及赋存状态研究

LA-ICP-MS Mapping Characteristics and Element Occurrence States of W-Sn Ore Minerals

  • 摘要: 黑钨矿与锡石是钨矿石和锡矿石中最重要的矿石矿物。利用LA-ICP-MS面扫描分析矿物中的微量元素,可追踪成矿流体的来源、演化及元素迁移与沉淀机制。前人主要聚焦单个矿床的微量元素面扫描分析,缺乏对不同矿床类型中黑钨矿与锡石铀(U)元素赋存状态及微量元素分布的系统性对比,也未能明确微量元素面扫描对U-Pb定年优先区域选择的指示意义。基于此,本文选取全球6件分别产自石英脉型、云英岩型、矽卡岩型和伟晶岩型钨锡矿床的黑钨矿与锡石样品,采用LA-ICP-MS面扫描技术,揭示了不同样品中微量元素分布规律与铀元素赋存机理。研究结果表明,不同矿床类型的黑钨矿、锡石中,微量元素分带特征差异显著。黑钨矿普遍富集重稀土和高场强元素,铀元素与重稀土、高场强元素相关性较强;锡石中的微量元素分布主要受晶格类质同象替代控制,铀元素多富集于高场强元素富集区。上述元素分带特征的差异,反映了封闭体系连续结晶、稳定流体环境结晶及多期流体叠加改造三种不同的结晶模式。与国内外单一矿床相比,本文通过多类型矿床黑钨矿与锡石的对比分析,明确了裂隙、蚀变边及成分突变带是U-Pb定年中应规避区域,而铀含量稳定、环带连续区为优选测试区。本研究强化了元素面扫描对同位素定年的指导意义,为钨锡矿床成矿时代厘定与物质来源示踪提供了科学依据。

     

    Abstract: Wolframite and cassiterite are the most important ore minerals in tungsten and tin deposits. In-situ trace element mapping via laser ablation inductively coupled plasma-mass spectrometry (LA-ICP-MS) can effectively constrain the origin and evolution of ore-forming fluids, as well as the mechanisms of element migration and precipitation. Previous studies have mainly focused on trace element mapping of individual deposits, lacking systematic comparisons of uranium occurrence states and trace element distributions in wolframite and cassiterite from deposits of diverse genetic types. Moreover, the specific guidance of elemental mapping for U-Pb geochronology remains poorly constrained. To address these issues, six samples of wolframite and cassiterite collected globally from quartz vein-type, greisen-type, skarn-type and pegmatite-type tungsten-tin deposits were investigated using LA-ICP-MS elemental mapping technique. The distribution patterns of trace elements and the occurrence mechanisms of uranium in these samples were revealed. The results show that wolframite and cassiterite from various deposit types exhibit distinct trace element zoning features. Wolframite is generally enriched in heavy rare earth elements (HREEs) and high field strength elements (HFSEs), and uranium shows strong positive correlations with these elements. The trace element distribution of cassiterite is dominated by isomorphous lattice substitution, and uranium is preferentially concentrated in HFSE-rich domains. The distinct elemental zoning characteristics indicate three distinct crystallization models, namely continuous crystallization in closed systems, crystallization under stable fluid conditions, and multistage fluid superimposition and modification. Compared with previous single deposit investigations, this comparative study on wolframite and cassiterite from multiple genetic type deposits confirms that fractures, altered rims and abrupt compositional zones should be avoided during U-Pb dating, whereas domains with stable uranium contents and continuous rhythmic zoning are optimal for geochronological analysis. This study further highlights the application potential of elemental mapping in U-Pb dating, and provides reliable references for constraining metallogenic ages and tracing material sources of tungsten-tin deposits.

     

/

返回文章
返回