论文标题

多尺度毛弹性材料的各向异性双核表示:开发和数值建模

Anisotropic dual-continuum representations for multiscale poroelastic materials: Development and numerical modelling

论文作者

Ashworth, Mark, Doster, Florian

论文摘要

双重核电(DC)模型可以是具有多物理行为的多尺度材料的数值建模的明确方法的替代方法。这项工作涉及孔层耦合双尺度材料(例如自然断裂的岩石)的概念和数值建模。除少数例外外,先前的孔弹性DC模型已经假定成分的各向同性和双重物质。此外,通常假设只有一个连续体具有固有的刚度特性。最后,验证DC范式是否可以在DC建模量表上捕获显式数值表示的全局毛弹性行为。我们分两个步骤解决了上述知识差距。首先,我们利用基于Levin定理的均质方法来开发先前衍生的各向异性孔隙弹性组成型模型。我们的发展涵盖了两种连续性的各向异性内在刚度。这种添加类似于各向异性骨折的岩石块,碎裂块。其次,我们执行数值建模,以测试针对精细尺度显式等效物的双键盘模型。在这样做时,我们介绍了混合数值框架以及解释数值结果所需的条件。测试本身从各向同性的材料到各向异性机械和流动性能。细尺度模拟显示各向异性可能对变形和流动行为产生明显的影响。但是,我们的数值实验表明,直流方法可以捕获各向同性和各向异性细尺度表示的全局毛弹性行为。

Dual-continuum (DC) models can be tractable alternatives to explicit approaches for the numerical modelling of multiscale materials with multiphysics behaviours. This work concerns the conceptual and numerical modelling of poroelastically coupled dual-scale materials such as naturally fractured rock. Apart from a few exceptions, previous poroelastic DC models have assumed isotropy of the constituents and the dual-material. Additionally, it is common to assume that only one continuum has intrinsic stiffness properties. Finally, little has been done into validating whether the DC paradigm can capture the global poroelastic behaviours of explicit numerical representations at the DC modelling scale. We address the aforementioned knowledge gaps in two steps. First, we utilise a homogenisation approach based on Levin's theorem to develop a previously derived anisotropic poroelastic constitutive model. Our development incorporates anisotropic intrinsic stiffness properties of both continua. This addition is in analogy to anisotropic fractured rock masses with stiff fractures. Second, we perform numerical modelling to test the dual-continuum model against fine-scale explicit equivalents. In doing, we present our hybrid numerical framework, as well as the conditions required for interpretation of the numerical results. The tests themselves progress from materials with isotropic to anisotropic mechanical and flow properties. The fine-scale simulations show anisotropy can have noticeable effects on deformation and flow behaviour. However, our numerical experiments show the DC approach can capture the global poroelastic behaviours of both isotropic and anisotropic fine-scale representations.

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