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A coupled hydro-mechanical analysis for prediction of hydraulic fracture propagation in saturated porous media using EFG mesh-less method

机译:EFG-less mesh法耦合流体力学分析预测饱和多孔介质中的水力压裂扩展

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The details of the Element Free Galerkin (EFG) method are presented with the method being applied to a Study on hydraulic fracturing initiation and propagation process in a saturated porous medium using coupled hydro-mechanical numerical modelling. In this EFG method, interpolation (approximation) is based on nodes without using elements and hence an arbitrary discrete fracture path can be modelled. The numerical approach is based upon solving two governing partial differential equations of equilibrium and continuity of pore water simultaneously. Displacement increment and pore water pressure increment are discretized using the same EFG shape functions. An incremental constrained Galerkin weak form is used to create the discrete system of equations and a fully implicit scheme is used for discretization in the time domain. Implementation of essential boundary conditions is based on the penalty method. In order to model discrete fractures, the so-called diffraction method is used. Examples are presented and the results are compared to some closed-form solutions and FEM approximations in order to demonstrate the validity of the developed model and its capabilities. The model is able to take the anisotropy and inhomogeneity of the material into account. The applicability of the model is examined by simulating hydraulic fracture initiation and propagation process from a borehole by injection of fluid. The maximum tensile strength criterion and Mohr-Coulomb shear criterion are used for modelling tensile and shear fracture, respectively. The model successfully simulates the leak-off of fluid from the fracture into the surrounding material. The results indicate the importance of pore fluid pressure in the initiation and propagation pattern of fracture in saturated soils.
机译:介绍了无元素加勒金(EFG)方法的详细信息,并将该方法应用于使用耦合水力-力学数值模拟的饱和多孔介质中的水力压裂起始和扩展过程研究。在这种EFG方法中,插值(逼近)基于不使用元素的节点,因此可以对任意离散的断裂路径进行建模。数值方法是基于同时解决孔隙水平衡和连续性的两个支配偏微分方程。使用相同的EFG形状函数离散位移增量和孔隙水压力增量。增量约束Galerkin弱形式用于创建离散方程组,而全隐式方案用于时域离散化。基本边界条件的实现基于惩罚方法。为了模拟离散裂缝,使用了所谓的衍射法。给出示例,并将结果与​​某些闭式解和FEM近似进行比较,以证明所开发模型及其功能的有效性。该模型能够考虑材料的各向异性和不均匀性。该模型的适用性通过模拟通过注入流体从井眼中发生的水力压裂起始和扩展过程来进行检验。最大拉伸强度标准和莫尔-库仑剪切标准分别用于模拟拉伸断裂和剪切断裂。该模型成功地模拟了流体从裂缝泄漏到周围材料中的过程。结果表明,孔隙水压力对饱和土壤中裂缝的萌生和扩展模式的重要性。

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