西藏努日Cu-W-Mo矿床白钨矿原位微量元素、Sr同位素特征及其指示意义

吴志山, 汤立伟, 巴桑元旦, 陈文庆, 陈斌, 杜庆安, 侯海峰, 缪恒毅. 2024. 西藏努日Cu-W-Mo矿床白钨矿原位微量元素、Sr同位素特征及其指示意义. 沉积与特提斯地质, 44(4): 723-739. doi: 10.19826/j.cnki.1009-3850.2024.05004
引用本文: 吴志山, 汤立伟, 巴桑元旦, 陈文庆, 陈斌, 杜庆安, 侯海峰, 缪恒毅. 2024. 西藏努日Cu-W-Mo矿床白钨矿原位微量元素、Sr同位素特征及其指示意义. 沉积与特提斯地质, 44(4): 723-739. doi: 10.19826/j.cnki.1009-3850.2024.05004
WU Zhishan, TANG Liwei, BASANG Yuandan, CHEN Wenqing, CHEN Bin, DU Qing'an, HOU Haifeng, MIAO Hengyi. 2024. In situ trace-element and Sr isotopic characteristics of scheelite and their implications for the genesis in the Nuri Cu-W-Mo deposit, Xizang. Sedimentary Geology and Tethyan Geology, 44(4): 723-739. doi: 10.19826/j.cnki.1009-3850.2024.05004
Citation: WU Zhishan, TANG Liwei, BASANG Yuandan, CHEN Wenqing, CHEN Bin, DU Qing'an, HOU Haifeng, MIAO Hengyi. 2024. In situ trace-element and Sr isotopic characteristics of scheelite and their implications for the genesis in the Nuri Cu-W-Mo deposit, Xizang. Sedimentary Geology and Tethyan Geology, 44(4): 723-739. doi: 10.19826/j.cnki.1009-3850.2024.05004

西藏努日Cu-W-Mo矿床白钨矿原位微量元素、Sr同位素特征及其指示意义

  • 基金项目: 国家重点研发计划项目(2021YFC2901903,2023YFC2906805);中国冶金地质总局地质综合研究项目([2022]CMGBDZYJ005);中国地质调查局地质调查项目(DD20240069,DD20240014)
详细信息
    作者简介: 吴志山(1981—),男,高级工程师,长期从事多金属矿调查评价工作。E-mail:87507457@qq.com
  • 中图分类号: P618.41

In situ trace-element and Sr isotopic characteristics of scheelite and their implications for the genesis in the Nuri Cu-W-Mo deposit, Xizang

  • 西藏努日Cu-W-Mo矿床是目前冈底斯成矿带上发现的唯一具有Cu-W-Mo矿化组合的大型矿床。然而,自该矿床上世纪发现以来,关于其成因类型,一直存在较大的争议。本次研究根据矿床地质特征对矿床成矿阶段进行了精确的划分,并以氧化物阶段和石英–硫化物阶段的白钨矿(Sch–A和Sch–B)为研究对象,通过LA-ICP-MS微量元素和Sr同位素测试分析,对矿床成矿流体来源、演化过程及成因进行深入探讨。扫描电镜–阴极发光(SEM-CL)图像显示,白钨矿Sch–A具有两个世代,暗色均质Sch–A1被浅色均质Sch–A2不规则交代;而白钨矿Sch–B具有“核–边”结构,核部Sch–B1呈深灰色、具有均匀生长环带,边部为浅灰色、均质的Sch–B2。白钨矿Sch–A的稀土元素球粒陨石标准化分布特征和Sr同位素数据指示,成矿流体早期来源于花岗闪长斑岩,后期因强烈的水–岩反应而有围岩物质混入,而成矿流体与围岩发生的强烈水–岩反应也是白钨矿大量沉淀的重要机制。其高Mo和低Sr含量的特征,也符合岩浆–热液型矿床中白钨矿的特点。因此,综合努日矿床地质特征,白钨矿微量元素、Sr同位素地球化学特征及其对成矿流体来源、演化过程及矿床成因的指示,认为努日矿床属于斑岩–夕卡岩型矿床。

  • 加载中
  • 图 1  青藏高原及冈底斯构造简图(a、b)和努日地区地质简图(c)(转引自代作文等,2018

    Figure 1. 

    图 2  西藏努日矿床地质简图(据王勤等,2018

    Figure 2. 

    图 3  努日矿床中典型手标本照片及显微照片

    Figure 3. 

    图 4  努日Cu-W-Mo矿床白钨矿球粒陨石标准化稀土元素配分模式图(球粒陨石标准化值据Sun and McDonough, 1989

    Figure 4. 

    图 5  努日矿床中白钨矿的δEu–Mo图解(a); 努日矿床中白钨矿的δEu–Sr图解(b)

    Figure 5. 

    图 6  努日矿床中白钨矿的∑REE+Y-Eu–Na图解(a);努日矿床中白钨矿的∑REE+Y-Eu–Nb图解(b)

    Figure 6. 

    图 7  努日矿床中白钨矿的EuN–EuN*图解(a)和努日矿床中白钨矿的δEu–δCe图解(b)

    Figure 7. 

    图 8  努日Cu-W-Mo矿床中白钨矿的Sr/Mo–δEu图解(底图据Poulin et al.,2018

    Figure 8. 

    图 9  努日Cu-W-Mo矿床和与斑岩有关的夕卡岩型W矿床以及石英脉型W矿床中白钨矿的Mo含量对比

    Figure 9. 

    表 1  努日矿床成矿期次及矿物生成顺序表

    Table 1.  Mineralization stages and mineral generation sequence of Nuri deposit

    下载: 导出CSV
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出版历程
收稿日期:  2023-08-27
修回日期:  2024-02-29
录用日期:  2024-03-05
刊出日期:  2024-12-31

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