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Assessing energy budget of laboratory fault slip using quantitative micro-CT image analysis

机译:使用定量微型CT图像分析评估实验室故障滑动的能量预算

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Off-fault fracturing that occurs out of the main fault is observed at all scales, from laboratory to plate boundaries. Understanding these co-seismic fracturing phenomena in the laboratory under controlled conditions can provide insight on the in situ dynamic stress and fault conditions of the earthquakes. Studies regarding the relative amount of energy consumed by fracturing (E_G) is inconclusive, and the disagreement about the relative size of E_G is related to the difficulty in assessing the fracture surface area. We conducted a rotary shear experiment under X-ray micro-CT, which allowed not only the measurement of macroscopic stresses but also the imaging of the newly formed fractures inside the sample. With the careful analysis of the micro-CT images, we quantitatively assessed the fracture surface area. Then, we used Griffith theory of brittle fracture to estimate E_G, which accounted for only 0.15-0.43% of the total energy consumption during slipping. The E_a we estimated may imply the lower bound of the actual fracture energy, because it did not include the micro-fractures below the resolution of the micro-CT or the energy consumed by non-elastic deformation. Friction work, which is calculated from the macroscopic shear stress and angular slipping distance, consumed most (>80%) of the total energy. Less than 18% energy may have radiated in form of stress waves.
机译:从实验室到板边界的所有尺度都观察到主故障发生的故障压裂。理解在受控条件下实验室中的这些共同地震压裂现象可以提供对地震原位动态应力和故障条件的洞察。关于压裂(E_G)消耗的相对能量(E_G)的研究的研究是不确定的,并且关于E_G的相对大小的分歧与评估断裂表面区域的难题有关。我们在X射线微型CT下进行了旋转剪切实验,其不仅允许测量宏观应力,而且允许测量样品内的新形成的骨折的成像。随着微型CT图像的仔细分析,我们定量评估了裂缝表面积。然后,我们使用Griffith脆性骨折理论来估计E_G,其在滑倒过程中仅占总能量消耗的0.15-0.43%。我们估计的E_A可能意味着实际骨折能量的下限,因为它不包括低于微型CT的分辨率的微骨折或不弹性变形消耗的能量。从宏观剪切应力和角度滑动距离计算的摩擦工作,消耗总能量的大多数(> 80%)。小于18%的能量可能以应力波的形式辐射。

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