首页> 外文期刊>International journal of modeling, simulation and scientific computing >Finite element implementation of coupled hydro-mechanical modeling of transversely isotropic porous media in DEAL.Ⅱ
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Finite element implementation of coupled hydro-mechanical modeling of transversely isotropic porous media in DEAL.Ⅱ

机译:交易中横向各向同性多孔介质耦合水力机械建模的有限元实施。Ⅱ

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In geotechnical engineering, modeling geo-structures is challenging, particularly in cases where the interaction between the structures and soil or rock is complex. Most well-known commercial modeling software is based on homogenous and isotropic materials. However, soil and rock are often modeled in heterogeneous and anisotropic media because of the inherent anisotropy of sedimentary rock masses and their stratified structure. In recent decades, coupled hydro-mechanical (HM) interactions in isotropic porous media have been studied; however, the behavior of transversely isotropic porous media is rarely considered. In addition, it is difficult for commercial software such as Plaxis and Flac3D to express complex rock formation where the anisotropy of the material and the associated cracks and fractures could be assembled into a single model. In this study, a finite element implementation using Differential Equation Analysis Library (DEAL.Ⅱ), an open-source library of finite element codes, was developed to model the fully coupled HM behavior of transversely isotropic porous media. The proposed implementation can be applied to both isotropic and transversely isotropic porous media based on Biot's theory. The developed code can be used to model poroelastic media with (1) equations of linear elasticity for the solid matrix and (2) diffusion equations for fluid flow based on mass and linear-momentum conservation laws. We verified the performance and accuracy of the code through two examples, i.e., Mandel's problem with a compared analytical solution and a tunnel excavation process with the Flac3D software. On the basis of these numerical applications, we present the code to model the behavior of various geo-structures such as tunnels and pile-soil interactions with anisotropic materials.
机译:在岩土工程中,建模地理结构是具有挑战性的,特别是在结构和土壤或岩石之间相互作用的情况下复杂的情况。最着名的商业建模软件基于均质和各向同性的材料。然而,由于沉积岩体的固有各向异性及其分层结构,土壤和岩石通常在异质和各向异性介质中进行建模。近几十年来,已经研究了各向同性多孔介质中的耦合水力 - 机械(HM)相互作用;然而,很少考虑横向各向同性多孔介质的行为。此外,诸如Plaxis和Flac3D的商业软件难以表达复杂的岩层,其中材料的各向异性和相关的裂缝和裂缝可以组装成单一模型。在该研究中,开发了使用微分方程分析库(Aff.Ⅱ)的有限元件,是有限元代码的开源库,以模拟横向各向同性多孔介质的完全耦合的HM行为。拟议的实施方式可以基于Biot理论应用于各向同性和横向各向同性多孔介质。开发的代码可用于模拟多孔弹性介质(1)用于基于质量和线性动量守恒定律的固体矩阵和(2)流体流动的扩散方程的线性弹性方程。我们通过两个示例验证了代码的性能和准确性,即使用FLAC3D软件的比较分析解决方案和隧道挖掘过程。在这些数值应用的基础上,我们介绍了模拟各种地理结构的行为,例如隧道和各向异性材料的相互作用。

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