论文标题

浸入流体渗透的多孔培养基的浸没相场断裂模型,具有不断发展的海狸 - 约瑟夫 - 萨夫曼条件

An immersed phase field fracture model for fluid-infiltrating porous media with evolving Beavers-Joseph-Saffman condition

论文作者

Suh, Hyoung Suk, Sun, WaiChing

论文摘要

这项研究提出了一种相位场模型,用于流体浸润的散发性多孔培养基中的脆性断裂。 While the state-of-the-art in hydraulic phase field fracture considers Darcian fracture flow with enhanced permeability along the crack, in this study, the phase field not only acts as a damage variable that provides diffuse representation of cracks or cavities, but also acts as an indicator function that separates the domain into two regions where fluid flows are governed by Stokes and Darcy equations, respectively.由于相位场及其梯度可以分别被视为重物函数和Dirac Delta功能的平滑近似值,因此我们的新方法能够施加界面的透射性条件,而无需显式界面参数化。另外,通过采用混合理论的概念来对固体和流体成分之间的相互作用进行建模,其中与固体运动相比,Stokes和Darcy区域中的流体速度被认为是相对度量。该模型对于在能量岩土技术问题中经常遇到的脆性裂缝的地质材料中的耦合流量分析特别有吸引力,因为它完全消除了针对复杂的地质学特征量身定制的特定富集功能,集成方案或介绍算法的需求。

This study presents a phase field model for brittle fracture in fluid-infiltrating vuggy porous media. While the state-of-the-art in hydraulic phase field fracture considers Darcian fracture flow with enhanced permeability along the crack, in this study, the phase field not only acts as a damage variable that provides diffuse representation of cracks or cavities, but also acts as an indicator function that separates the domain into two regions where fluid flows are governed by Stokes and Darcy equations, respectively. Since the phase field and its gradient can be respectively regarded as smooth approximations of the Heaviside function and Dirac delta function, our new approach is capable of imposing interfacial transmissibility conditions without explicit interface parametrizations. In addition, the interaction between solid and fluid constituents is modeled by adopting the concept of mixture theory, where the fluid velocities in Stokes and Darcy regions are considered as relative measures compared to the solid motion. This model is particularly attractive for coupled flow analysis in geological materials with complex microstructures undergoing brittle fracture often encountered in energy geotechnics problems, since it completely eliminates the needs to generate specific enrichment function, integration scheme, or meshing algorithm tailored for complex geological features.

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