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Development of Anisotropic Contiguity in Deforming Partially Molten Aggregates I: Theory and Fast Multipole Boundary Elements Method

机译:各向异性连续性在部分熔融聚集体变形中的发展I:理论和快速多极边界元方法

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摘要

The microstructure of partially molten rocks strongly influences the macroscopic physical properties. Contiguity, a geometric parameter, is a tensorial quantity that describes the area fraction of intergranular contact in a partially molten aggregate. It is also a key parameter that controls the effective elastic strength of the grain network. As the shape of the grains evolves during deformation, so does the contiguity of each grain. In this article, we present the first set of numerical simulations of evolution of grain-scale contiguity of an aggregate during matrix deformation using a fast multipole boundary elements method-based model. We simulate a pure shear deformation of an aggregate of 1200 grains up to a shortening of 0.47 and a simple shear deformation of 900 grains up to a shear strain of 0.75, for solid-melt viscosity ratios of 1 and 50. Our results demonstrate that the initially isotropic contiguity tensor becomes strongly anisotropic during deformation. We also observe that the differential shortening, the normalized difference between the major and minor axes of grains, is inversely related to the ratio between the principal components of the contiguity tensor. In pure shear, the principal components of the contiguity tensor remain parallel to the irrotational principal axes of the applied strain. In simple shear, however, the principal components of the contiguity tensor rotate continually during the course of deformation in this study. In the companion article we present the seismic anisotropy resulting from the anisotropic contiguity and the implications for the Earth's lithosphere-asthenosphere boundary.
机译:部分熔融岩石的微观结构强烈影响宏观物理性能。连续性是一种几何参数,它是一个张量,它描述了部分熔融的骨料中晶间接触的面积分数。它也是控制晶粒网络有效弹性强度的关键参数。当晶粒的形状在变形过程中演变时,每个晶粒的连续性也随之变化。在本文中,我们使用快速多极边界元方法为基础的模型,提供了第一组数值模拟,其是在矩阵变形过程中骨料的晶粒度连续性演变。对于固熔体粘度比为1和50的情况,我们模拟了1200个晶粒的骨料的纯剪切变形,直至缩短至0.47,以及一个简单的900晶粒的剪切变形,直至0.75的剪切应变。我们的结果表明最初,各向同性张量在变形过程中变为强各向异性。我们还观察到微分缩短,即晶粒长轴和短轴之间的归一化差异,与邻接张量的主要成分之间的比率成反比。在纯剪切作用下,邻接张量的主要成分保持平行于所施加应变的非旋转主轴。然而,在这项研究中,在简单剪切作用下,连续张量的主要分量在变形过程中连续旋转。在随附的文章中,我们介绍了由各向异性连续性引起的地震各向异性及其对地球岩石圈-软流圈边界的影响。

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