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The 3-D Spatial Distribution of Shear Strain Energy Changes Associated With the 2016 Kumamoto Earthquake Sequence, Southwest Japan

机译:与2016年日本西南部的2016年熊本序列相关的剪切应变能量变化的三维空间分布

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Shear strain energy is an essential physical quantity governing earthquake generation. To calculate the shear strain energy changes due to an earthquake, we need both coseismic stress changes and background crustal stress. The orientation of the background stress can be estimated from earthquake focal mechanisms, but its absolute level is still uncertain. Assuming the level of the background deviatoric stress to be frictional strength in the crust, we evaluated the three-dimensional distribution of shear strain energy changes associated with the 2016 Kumamoto earthquake sequence, southwest Japan. Its spatial patterns strongly depend on the background stress level. From the energy balance of shear faulting, we proposed that the volume integral of the shear strain energy changes could constrain the background deviatoric stress level. It should be >14 MPa at 10-km depth at the very least. We showed that approximately 75% of aftershocks occurred where the shear strain energy increased.
机译:剪切应变能量是治疗地震产生的基本物理量。 为了计算由于地震而导致的剪切应变能量变化,我们需要两个电影压应力变化和背景地壳应力。 可以从地震焦点机制估算背景应力的定向,但其绝对水平仍然不确定。 假设背景的背景较偏离的压力在地壳中是摩擦强度,我们评估了与日本西南部西南部的2016熊球地震序列相关的剪切应变能量变化的三维分布。 其空间模式强烈依赖于背景应力水平。 从剪切断线的能量平衡来看,我们提出剪切应变能量变化的体积积分可以限制背景偏离偏离应力水平。 它应该是10公里深度的> 14MPa,至少是。 我们表明,剪切应变能量增加,大约75%的余震发生。

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