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    王佳, 李凤杰, 张玺华, 陈聪, 高兆龙. 湘西南黔阳盆地“大塘坡式”锰矿成因分析: 以湖南靖州地区为例[J]. 中国地质, 2023, 50(1): 249-263. DOI: 10.12029/gc20220130001
    引用本文: 王佳, 李凤杰, 张玺华, 陈聪, 高兆龙. 湘西南黔阳盆地“大塘坡式”锰矿成因分析: 以湖南靖州地区为例[J]. 中国地质, 2023, 50(1): 249-263. DOI: 10.12029/gc20220130001
    WANG Jia, LI Fengjie, ZHANG Xihua, CHEN Cong, GAO Zhaolong. Genetic analysis of "Datangpo type" manganese deposit in Qianyang Basin, southwest Hunan: A case study of Jingzhou, Hunan Province[J]. GEOLOGY IN CHINA, 2023, 50(1): 249-263. DOI: 10.12029/gc20220130001
    Citation: WANG Jia, LI Fengjie, ZHANG Xihua, CHEN Cong, GAO Zhaolong. Genetic analysis of "Datangpo type" manganese deposit in Qianyang Basin, southwest Hunan: A case study of Jingzhou, Hunan Province[J]. GEOLOGY IN CHINA, 2023, 50(1): 249-263. DOI: 10.12029/gc20220130001

    湘西南黔阳盆地“大塘坡式”锰矿成因分析: 以湖南靖州地区为例

    Genetic analysis of "Datangpo type" manganese deposit in Qianyang Basin, southwest Hunan: A case study of Jingzhou, Hunan Province

    • 摘要:
      研究目的 锰矿作为一种金属矿产,应用于国民经济的多个领域。黔阳成锰盆地是中国重要的锰矿基地,其锰矿床类型为赋存于南华系大塘坡组地层中的一套海相碳酸锰矿床,资源储量大,开采历史长,但其成矿模式尚不清楚。
      研究方法 本文以锰矿集中分布的湖南靖州地区为例,在野外剖面实测、地球化学数据分析的基础上,通过Co/Zn-(Cu+CO+Ni)图解、Fe-Mn-(Cu+CO+Ni)×10三端元判别图解、(Zr+Ce +Y)×100-(Cu+Ni)×15-(Fe+Mn)/4三角图解以及Al/(Fe+Mn+Al)比值、(Fe+Mn)/Ti比值和Fe/Ti比值等一系列判别指标分析了锰矿中锰元素的来源。利用锰矿石的V/Cr、Th/U、Ce/La以及Ce标志分析了锰矿石沉积时的古环境。
      研究结果 黔阳成锰盆地靖州地区锰矿石中锰元素主要来源于海底热液系统,沉积时水体处于贫氧—缺氧环境,前期形成的断裂带为锰元素的运移提供了通道。
      结论 黔阳成锰盆地靖州地区锰矿石是冰期由地壳深部经众多断裂带上升到海盆中的锰元素,在间冰期与海水中的CO32-相结合富集而成。

       

      Abstract:
      This paper is the result of mineral exploration engineering.
      Objective As a kind of metal mineral, manganese ore is used in many fields of national economy. Qianyang manganese-forming basin is an important manganese ore base in China. Th type of manganese deposit is a set of marine manganese carbonate deposits occurring in the strata of Datangpo Formation of Nanhua System, with large resource reserves and long mining history, but its metallogenic model is still unclear.
      Methods This paper takes Jingzhou area of Hunan Province as an example, where manganese deposits are concentrated. On the basis of field profile measurement and geochemical data analysis, the sources of manganese in manganese ores are analyzed by Co/Zn-(Cu+CO+Ni) diagram, Fe-Mn-(Cu+CO+Ni)×10 three-terminal discriminant diagram, (Zr + Ce + Y) × 100- (Cu + Ni) × 15- (Fe + Mn)/4 ternary diagram, Al/(Fe + Mn + Al) ratio, (Fe + Mn)/Ti ratio and Fe/Ti ratio. The paleoenvironment of manganese ore deposition was analyzed by using V/Cr, Th/U, Ce/La and Ce markers of manganese ore.
      Results The manganese element in the manganese ore in Jingzhou area of Qianyang manganese basin mainly comes from the seafloor hydrothermal system, and the water body is in the oxygen-poor-anoxic environment at the time of deposition. The fault zone formed in the early stage provided a channel for manganese migration.
      Conclusions The manganese ore in Jingzhou area of Qianyang manganese basin is formed by the enrichment of the combination between manganese and CO32- in interglacial period, and the manganese in the sea basin were from the deep crust through fault zones in the glacial period.

       

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