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成矿系统的多尺度探测:概念与进展——以长江中下游成矿带为例

吕庆田, 孟贵祥, 严加永, 张昆, 赵金花, 龚雪婧. 2019. 成矿系统的多尺度探测:概念与进展——以长江中下游成矿带为例[J]. 中国地质, 46(4): 673-689. doi: 10.12029/gc20190401
引用本文: 吕庆田, 孟贵祥, 严加永, 张昆, 赵金花, 龚雪婧. 2019. 成矿系统的多尺度探测:概念与进展——以长江中下游成矿带为例[J]. 中国地质, 46(4): 673-689. doi: 10.12029/gc20190401
LÜ Qingtian, MENG Guixiang, YAN Jiayong, ZHANG Kun, ZHAO Jinhua, GONG Xuejing. 2019. Multi-scale exploration of mineral system: Concept and progress-A case study in the middle and lower reaches of the Yangtze River Metallogenic Belt[J]. Geology in China, 46(4): 673-689. doi: 10.12029/gc20190401
Citation: LÜ Qingtian, MENG Guixiang, YAN Jiayong, ZHANG Kun, ZHAO Jinhua, GONG Xuejing. 2019. Multi-scale exploration of mineral system: Concept and progress-A case study in the middle and lower reaches of the Yangtze River Metallogenic Belt[J]. Geology in China, 46(4): 673-689. doi: 10.12029/gc20190401

成矿系统的多尺度探测:概念与进展——以长江中下游成矿带为例

  • 基金项目:
    “十三五”国家重点研发计划“华南陆内成矿系统的深部过程与物质响应”(2016YFC0600200)与中国地质调查局“深部地质调查工程”(DD20160082)及国家自然科学基金(41630320)联合资助
详细信息
    作者简介: 吕庆田, 男, 1964年生, 研究员, 博士生导师, 主要从事矿产勘查技术及应用研究, E-mail:lqt@cags.ac.cn
  • 中图分类号: P611

Multi-scale exploration of mineral system: Concept and progress-A case study in the middle and lower reaches of the Yangtze River Metallogenic Belt

  • Fund Project: Supported jointly by National Key Research and Development Program (No. 2016YFC0600200), China Geological Survey Project (No. DD20160082) and National Natural Science Foundation (No. 41630320)
More Information
    Author Bio: LÜ Qingtian, male, born in 1964, professor, engages in research on mineral exploration technique and its application; E-mail: lqt@cags.ac.cn .
  • 在全球矿产勘查逐渐转向“绿地”、深部和覆盖区的大背景下,急需成矿理论的指导。20世纪末提出的成矿系统概念由于其强大的区域成矿预测功能,引起了矿业界广泛的关注和研究。本文首先回顾了成矿系统的概念、组成和分类,然后讨论了成矿系统主要组成部分的探测和识别方法,最后结合笔者近年在长江中下游成矿带开展的多尺度探测,讨论了陆内典型成矿系统的深部过程、地壳结构和地球物理响应,并对成矿系统概念在成矿预测领域的应用前景进行了展望。本文主要结论:(1)成矿系统是由控制矿床形成和保存所有要素构成的自然系统,基本组成单元包括“源区”、“通道”和“场所”,每个组成单元都包括复杂的物理、化学和动力学过程;(2)矿床是成矿系统多尺度深部过程耦合在某一“点上”的“结果”。成矿系统在演化过程中,各种物理、化学作用对地壳和岩石圈地幔进行了强烈“改造”,留下各种物理、化学和矿物学“痕迹”,这些“痕迹”改变了岩石的地球物理性质,具有很好的可探测性;(3)基于长江中下游多尺度探测结果,提出了陆内典型成矿系统“源区”形成过程、控制岩浆/流体迁移的“通道”和物质沉淀场所的新认识;(4)在地学大数据、机器学习、人工智能不断发展的今天,成矿系统和基于成矿系统的多尺度成矿预测将是未来的重要研究方向。

  • 加载中
  • 图 1  长江中下游成矿带及邻区构造格架及主要矿集区位置示意图(据Pan and Dong, 1999Mao et al., 2011修改)

    Figure 1. 

    图 2  长江中下游成矿带及典型矿集区多尺度综合地球物理探测工作部署图(据吕庆田等,2015

    Figure 2. 

    图 3  长江中下游及邻区区域大地电磁反演结果(据Qiu et al., 2018修改)

    Figure 3. 

    图 4  NW-11-01深地震反射偏移剖面片段(a)及地质解释图(b)(据Lü et al., 2015

    Figure 4. 

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出版历程
收稿日期:  2019-03-18
修回日期:  2019-07-08
刊出日期:  2019-08-25

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