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Seismic loading of fault-controlled fluid seepage systems by great subduction earthquakes

机译:大俯冲地震对断层渗漏系统的地震荷载作用

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摘要

Various types of fluid expulsion features (mud volcanoes, pockmarks, authigenic carbonate mounds and associated gas pipes, etc.) are often found above subduction zones, which have the highest seismic potential on Earth. Faults potentially control the liberation of deep-seated greenhouse gases into the feeder systems of seepage features located above subduction thrusts. These feeder systems could be stressed by large earthquakes, yet the mechanisms that can drive episodic mobilization of stored hydrocarbon gases remain poorly understood. Here I address the potential stress loading on fluid expulsion systems created by past earthquakes nucleated at both accretionary and erosive subduction margins. The most significant effects occur in the epicentral area where subduction earthquakes can produce normal stress changes as high as 20–100 bar, although these are generally restricted to relatively small regions. Coseismic normal stress changes and elastic strain relaxation upon a ruptured subduction thrust could increase crustal permeability by dilating fault-controlled conduits, and channelling fluids to the seafloor. Fluid pressure pulses released during subduction earthquakes can greatly contribute to the rupture of fluid pathways that have been brought closer to failure from coseismic static stress changes, although the inaccessible location of most submarine seepage systems has so far hampered probing these relationships.
机译:在俯冲带上方经常发现各种类型的流体排泄特征(泥火山,麻子,自生碳酸盐土丘和相关的天然气管道等),这是地球上具有最高地震潜力的地区。断层有可能控制深层温室气体释放到俯冲推力上方的渗流特征的馈线系统中。这些支线系统可能会在大地震中承受压力,但人​​们对驱动储存的碳氢化合物气体动员的机制仍然知之甚少。在这里,我讨论了由过去的地震在增生和侵蚀俯冲裕度处形核所形成的流体驱除系统上的潜在应力负荷。最显着的影响发生在震中地区,俯冲地震会产生高达20–100 bar的正应力变化,尽管通常只限于相对较小的区域。俯冲推力破裂时,地震顺应力变化和弹性应变松弛可通过扩张断层控制的管道并将流体引导至海底来提高地壳渗透性。在俯冲地震中释放的流体压力脉冲可能极大地导致了流体路径的破裂,尽管由于大多数海底渗流系统无法到达的位置迄今为止阻碍了探索这些关系,但由于同震静应力的变化,流体路径更接近于破坏。

著录项

  • 期刊名称 Scientific Reports
  • 作者

    Marco Bonini;

  • 作者单位
  • 年(卷),期 -1(9),-1
  • 年度 -1
  • 页码 11332
  • 总页数 12
  • 原文格式 PDF
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