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科学掘削にょる地震断層の応力状態?物性?すべりパラメ一夕一の評価

机译:科学钻井抗震配件的应力状态?滑动参数的特性

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摘要

To better understand seismic fault rupturing mechanisms, recent research results from scientific ocean drilling projects in seismogenic subduction zones such as Japan Trench and Nankai Trough carried out under the International Ocean Discovery Program (IODP) are reviewed and summarized. Stress states in the vicinity of faults and in wall rocks penetrated by drillings are determined or constrained using borehole wall resistivity images and drill core samples. The stress measurement methods are summarized and the stress results are interpreted. Fluid transportation properties and thermal properties within and around the faults are determined from retrieved core samples. The results are both useful and necessary for examining fault rupturing lubrication mechanisms, e.g., coseismic thermal pressurization. Dynamic frictional behavior of fault gouges is elucidated through rotary frictional experiments over a wide range from intermediate to high velocities covering the real coseismic fault slip velocity at around 1 m/s; the results indicate that frictional coefficients of plate boundary fault gouges in subduction zones are very low. In addition, high-temperature history examined with vitrinite reflectance measurements and minor element movements from isotopic analyses using the fault core samples give important evidence of the frictional heat of faults. Such historic high-temperature signals also enable inversion estimations to reveal past fault-rupturing parameters. It is hoped this review paper will be valuable and helpful for planning and implementing future scientific fault drilling programs.
机译:为了更好地了解地震故障破坏机制,综述和总结了诸如日本沟渠和南开槽等地区沟渠和南开槽等科学海洋钻探项目的最新研究成果。使用钻孔壁电阻率图像和钻孔芯样品来确定或约束钻孔附近的压力状态和钻孔穿透的壁岩。总结了应力测量方法,并解释了应力结果。故障内部和周围的流体运输性能和热性能由检索到的核心样本确定。结果既有用,也既是有用的,用于检查故障破裂润滑机制,例如电皮热加压。故障凿孔的动态摩擦行为通过旋转摩擦实验阐明,从中中间到高速度,高速覆盖真正的电影发生故障滑移速度约为1米/秒;结果表明,俯冲区域板边界故障栅格的摩擦系数非常低。此外,使用故障核心样本与来自同位素分析的vitriinite反射测量和次要元素运动检查的高温历史提供了错误的摩擦漏斗的重要证据。这种历史性的高温信号还使反转估计能够揭示过去的故障破坏参数。希望这篇审查文件将是有价值的,有助于规划和实施未来的科学故障钻探计划。

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