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Evidence for focused magmatic accretion at segment centers from lateral dike injections captured beneath the Red Sea rift in Afar

机译:在阿法尔红海裂谷下方捕获的侧向堤防注入导致段中心集中岩浆增生的证据

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摘要

Continental breakup occurs through repeated episodes of mechanical stretching and dike injection within discrete, narrow rift segments. However, the time and length scales of the dike intrusions, along with the source regions of melt within continental and oceanic rifts, are poorly constrained. We present measurements of spatial and temporal variability in deformation from the currently active 60-km-long Dabbahu segment of the Red Sea rift in Afar, using satellite radar, global positioning system, and seismicity data sets, that capture emplacement of two ~10-km-long, ~1–2-m-wide dike intrusions in June and July 2006. Our observations show that the majority of strain is accommodated by dikes that propagate laterally over ~4–5 h time scales along the rift axis and are sourced from a reservoir in the middle to lower crust, or upper mantle, beneath the center of the rift segment. New intrusions during the ongoing rifting episode in Afar show that the injection of lateral dikes fed from magma reservoirs beneath rift segment centers is a key component in creating and maintaining regular along-axis rift segmentation during the final stages of continental breakup. Our observations also provide evidence that the focused magmatic accretion at segment centers observed in slow-spreading mid-ocean ridges occurs prior to the onset of seafloor spreading.
机译:大陆破裂是通过在离散的狭窄裂谷段内反复进行机械拉伸和堤防注入而发生的。 但是,堤防入侵的时间和长度尺度, 以及大陆裂谷和 洋裂谷内的熔岩源区,受到的约束较弱。我们在远处的红海裂谷 当前活跃的60 km长的Dabbahu段中,对变形的时空变化进行测量 使用卫星雷达,全球定位系统和 地震数据集,捕获了两个〜10 km长, 〜1-2m米宽的堤防入侵的位置2006年6月和2006年7月。我们的 观测结果表明,堤坝中的大部分应变由堤坝提供,该堤坝沿〜4-5 h时间尺度横向传播[sup> 裂谷轴是从裂谷段中部以下的地壳中部 的储层获得的。在阿法尔正在进行的裂谷 期间发生的新侵入表明,从裂谷段中心以下的岩浆储层注入 的侧向堤防的注入是该地区的关键 在大陆解体的最后阶段建立并维持规则的沿轴裂谷 分段。 我们的观察结果还提供了证据,表明该段集中了岩浆 在缓慢扩展的中海 脊中观测到的中心发生在海底扩展开始之前。

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  • 来源
    《Geology》 |2009年第1期|59-62|共4页
  • 作者单位

    School of Earth and Environment, University of Leeds, Leeds LS2 9JT, UK|Department of Earth Sciences, Royal Holloway University of London, Egham TW20 0EX, UK;

    School of Earth and Environment, University of Leeds, Leeds LS2 9JT, UK;

    Institute of Geophysics, Space Science and Astronomy, Addis Ababa University, Addis Ababa, PO Box 1176, Ethiopia;

    Department of Earth and Atmospheric Sciences, Purdue University, West Lafayette, Indiana 47907, USA;

    Department of Earth and Environmental Sciences, University of Rochester, Rochester, New York 14618, USA;

    School of Earth and Environment, University of Leeds, Leeds LS2 9JT, UK;

    Institut de Physique du Globe de Paris, 4, Place Jussieu, 75252 Paris, France;

    Observatoire de Géophysique d'Arta, Arta, Djibouti;

    Department of Earth Sciences, University of Bristol, Bristol BS8 1RJ, UK;

    Department of Earth and Environmental Sciences, University of Rochester, Rochester, New York 14618, USA;

    Department of Earth Sciences, Royal Holloway University of London, Egham TW20 0EX, UK;

    School of Geography, Geology and Environmental Science, University of Auckland, New Zealand;

    Institute of Geophysics, Space Science and Astronomy, Addis Ababa University, Addis Ababa, PO Box 1176, Ethiopia;

    Department of Earth and Atmospheric Sciences, Purdue University, West Lafayette, Indiana 47907, USA;

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