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    青藏高原新生代火山活动的深部力学背景

    熊熊 王继业 滕吉文

    熊熊, 王继业, 滕吉文, 2007. 青藏高原新生代火山活动的深部力学背景. 地球科学, 32(1): 1-6.
    引用本文: 熊熊, 王继业, 滕吉文, 2007. 青藏高原新生代火山活动的深部力学背景. 地球科学, 32(1): 1-6.
    XIONG Xiong, WANG Ji-ye, TENG Ji-wen, 2007. Deep Mechanical Background for the Cenozoic Volcanism in the Tibetan Plateau. Earth Science, 32(1): 1-6.
    Citation: XIONG Xiong, WANG Ji-ye, TENG Ji-wen, 2007. Deep Mechanical Background for the Cenozoic Volcanism in the Tibetan Plateau. Earth Science, 32(1): 1-6.

    青藏高原新生代火山活动的深部力学背景

    基金项目: 

    国家自然科学基金项目 40274037

    国家自然科学基金项目 40474028

    中国科学院创新方向基金项目 KZCX3-SW-153

    详细信息
      作者简介:

      熊熊(1965一),男,理学博士,研究员,主要从事地球动力学研究.E-mail:xxiong@asch.whigg.ac.cn

    • 中图分类号: P317

    Deep Mechanical Background for the Cenozoic Volcanism in the Tibetan Plateau

    • 摘要: 为了研究火山形成基本要素——岩浆运移通道的形成, 基于重力异常反演的青藏高原下地壳底部的地幔对流应力场, 结合地壳破裂形成机理和对流应力场与青藏高原新生代火山分布的关系, 以及青藏高原下地幔对流演化的数值模拟结果, 分析了高原火山岩浆运移通道产生的深部力学机制.研究表明, 高原下地幔对流应力场存在两个大的拉张区, 高原中部和北部的火山岩均分布于拉张应力区.南部的林子宗火山区对应了印度板块与欧亚大陆碰撞前或碰撞早期高原下的地幔上升流.对流应力的量级为~100Ma, 这与导致地壳破裂的应力量级相当.所有这些证据表明, 青藏高原下地幔对流应力场可能是导致高原地壳破裂, 并发展为岩浆物质通道的主要力学机制之一.

       

    • 图  1  青藏高原地幔对流的地球物理学证据

      (灰度表示Pn波速度; 黑圆点表示火山岩分布)

      Fig.  1.  Geophysical evidence for mantle convection beneath the Tibetan Plateau

      图  2  青藏高原及邻区地幔对流应力场

      (黑圆点表示火山岩分布; A、B和D分别对应图 3a3b3d所示的拉张形态)

      Fig.  2.  Mantle convection-generated stress field beneath the Tibetan Plateau and its adjacent areas

      图  3  应力场与地壳张性破裂的4种形式

      Fig.  3.  Four types of stress field and crustal tensional fracture

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    • 收稿日期:  2006-03-28
    • 刊出日期:  2007-01-25

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