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    特提斯喜马拉雅金锑铅锌多金属成矿带成矿流体特征:来自H-O同位素的约束

    梁维

    梁维, 2019. 特提斯喜马拉雅金锑铅锌多金属成矿带成矿流体特征:来自H-O同位素的约束. 地球科学, 44(7): 2308-2318. doi: 10.3799/dqkx.2019.172
    引用本文: 梁维, 2019. 特提斯喜马拉雅金锑铅锌多金属成矿带成矿流体特征:来自H-O同位素的约束. 地球科学, 44(7): 2308-2318. doi: 10.3799/dqkx.2019.172
    Liang Wei, 2019. Characteristics of Ore-Forming Fluids in Himalayan Au-Sb-Pb-Zn Polymetallic Belt: Constraints from H-O Isotopes. Earth Science, 44(7): 2308-2318. doi: 10.3799/dqkx.2019.172
    Citation: Liang Wei, 2019. Characteristics of Ore-Forming Fluids in Himalayan Au-Sb-Pb-Zn Polymetallic Belt: Constraints from H-O Isotopes. Earth Science, 44(7): 2308-2318. doi: 10.3799/dqkx.2019.172

    特提斯喜马拉雅金锑铅锌多金属成矿带成矿流体特征:来自H-O同位素的约束

    doi: 10.3799/dqkx.2019.172
    基金项目: 

    国家重点研发计划项目 2016YFC0600308

    西藏山南地区铍锡多金属矿调查评价项目 DD20190147

    国家重点研发计划项目 2018YFC0604103

    国家自然科学基金 41702080

    详细信息
      作者简介:

      梁维(1986-), 男, 博士, 工程师, 长期从事青藏高原岩浆和矿床相关研究

    • 中图分类号: P597

    Characteristics of Ore-Forming Fluids in Himalayan Au-Sb-Pb-Zn Polymetallic Belt: Constraints from H-O Isotopes

    • 摘要: 特提斯喜马拉雅成矿带产出数十个规模不等的金矿、锑金矿、锑矿和铅锌多金属矿,近期的矿产勘查在片麻岩穹窿发现了铍稀有多金属矿床.该成矿带内发育两期金锑铅锌矿化,其一为以邦布金矿和马攸木金矿为代表的造山型金矿,形成于59~45 Ma,属于青藏高原造山主碰撞阶段的产物;其二为以姐纳各普金矿、车穷卓布锑矿、扎西康铅锌矿的晚期矿化和吉松铅锌矿等为代表的热液型矿化,集中形成于21~12 Ma的后碰撞造山阶段.大量的流体包裹体研究表明喜马拉雅金锑铅锌成矿带的成矿流体主要为中低温(小于300℃)、中低盐度流体(< 10% NaCleqv).本文统计了已发表的和新获得的带内不同类型矿床共169个石英、绢云母、菱锰矿等热液矿物氢氧同位素数据,发现在δ18OH2O-δDV-SMOW相图中,这些同位素组成构成了3个端元:A端元以车穷卓布锑矿为代表,显示出极低的δ18OH2O值(低于-13‰)和低的δDV-SMOW值(< -111‰),靠近现代雨水线,完全落入西藏地热水H-O同位素范围;B端元以沙拉岗锑矿为代表,显示出具有最低的δDV-SMOW值(最低至-172‰)和较高的δ18OH2O值(高达12‰),落入建造水的H-O同位素范围内;端元C以邦布金矿和浪卡子金矿为代表,显示出具有极高的δDV-SMOW值(高达-43‰)和中等的δ18OH2O值,与造山型金矿氧同位素6‰~13‰的范围相同,包括了原始岩浆水的范围和部分变质水的范围.带内主要金属矿床成矿流体氢氧同位素均介于这3个流体端元之间,显示出绝大部分矿床的流体均非单一流体来源,而具有多源流体混合的特征.

       

    • 图  1  特提斯喜马拉雅金锑铅锌成矿带矿床分布

      张刚阳(2012)修改

      Fig.  1.  Distribution of Tethys Himalayan Au-Sb-Pb-Zn metallogenic belt

      图  2  特提斯喜马拉雅典型矿床氢氧同位素组成特征

      底图据Hedenquist and Lowenstern(1994);西藏地热水数据据郑淑蕙等(1982)

      Fig.  2.  Hydrogen-oxygen isotope diagram for deposits in Himalayan metallogenic belt

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    • 收稿日期:  2019-01-30
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