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首页> 外文期刊>Advances in Water Resources >Numerical simulation of hydro-mechanical coupling in fractured vuggy porous media using the equivalent continuum model and embedded discrete fracture model
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Numerical simulation of hydro-mechanical coupling in fractured vuggy porous media using the equivalent continuum model and embedded discrete fracture model

机译:等效连续介质模型和嵌入式离散裂缝模型在裂隙多孔介质中水力耦合的数值模拟

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摘要

In this study, an efficient numerical model is proposed to simulate the hydro-mechanical coupling in the fractured vuggy porous media containing multi-scale fractures and vugs. Specifically, an improved Equivalent Continuum Model (ECM), which is obtained through the asymptotic homogenization method, is applied to model micro fractures and vugs, while macro fractures are modeled explicitly by using the Embedded Discrete Fracture Model (EDFM) and non-matching grids. As an important feature of the explicit representment, the effects of fillings and fluid pressure on preventing macro fractures from closing can be considered. After that, the new mixed space discretization (i.e., Mimetic Finite Difference (MFD) method for flow and stabilized eXtended Finite Element Method (XFEM) for geomechanics) and fully coupled methods are applied to solve the proposed model. The mixed space discretization can deal with complex heterogeneous properties (e.g., full tensor permeability), and yields the benefits of local mass conservation and numerical stability in space. Finally, we demonstrate the accuracy and application of the proposed model to capture the coupled hydro-mechanical impacts of multiscale fractures and vugs on fluid flow in fractured porous media.
机译:在这项研究中,提出了一个有效的数值模型来模拟包含多尺度裂缝和孔洞的缝隙多孔介质中的水力耦合。具体而言,将一种通过渐近均化方法获得的改进的等效连续谱模型(ECM)应用于微裂缝和孔洞的建模,而宏观裂缝则通过使用嵌入式离散裂缝模型(EDFM)和不匹配的网格来明确建模。 。作为明确表示的重要特征,可以考虑填充物和流体压力对防止宏观裂缝闭合的影响。之后,采用新的混合空间离散化方法(即用于流动的模拟有限差分法(MFD)和用于地质力学的稳定扩展有限元方法(XFEM))以及完全耦合的方法来求解所提出的模型。混合空间离散化可以处理复杂的非均质特性(例如完整的张量渗透率),并产生局部质量守恒和空间数值稳定性的好处。最后,我们证明了所提出的模型的准确性和应用,以捕获多尺度裂缝和孔洞对破裂的多孔介质中流体流动的耦合流体力学影响。

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