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Multiscale model of global inner-core anisotropy induced by hcp alloy plasticity

机译:hcp合金可塑性引起的全球内核各向异性的多尺度模型

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摘要

The Earth's solid inner core exhibits a global seismic anisotropy of several percents. It results from a coherent alignment of anisotropic Fe alloy crystals through the inner-core history that can be sampled by present-day seismic observations. By combining self-consistent polycrystal plasticity, inner-core formation models, Monte-Carlo search for elastic moduli, and simulations of seismic measurements, we introduce a multiscale model that can reproduce a global seismic anisotropy of several percents aligned with the Earth's rotation axis. Conditions for a successful model are an hexagonal close packed structure for the inner-core Fe alloy, plastic deformation by pyramidal c + a slip, and large-scale flow induced by a low-degree inner-core formation model. For global anisotropies ranging between 1 and 3%, the elastic anisotropy in the single crystal ranges from 5 to 20% with larger velocities along the c axis.
机译:地球的固体内核表现出百分之几的整体地震各向异性。这是由于各向异性Fe合金晶体通过内芯历史的一致排列而产生的,可以通过当今的地震观测进行采样。通过将自洽多晶可塑性,内芯形成模型,蒙特卡洛搜索弹性模量以及地震测量模拟相结合,我们引入了多尺度模型,该模型可以重现与地球旋转​​轴对齐百分之几的全局地震各向异性。成功的模型的条件是内芯铁合金的六方密堆积结构,金字塔形c +滑移引起的塑性变形以及低度内芯形成模型引起的大规模流动。对于介于1%和3%之间的整体各向异性,单晶中的弹性各向异性在5%至20%的范围内,沿c轴的速度较大。

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