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Modelling the variation in the behaviour of pre-fractured rocks subjected to hydraulic fracturing with permeability of the rock matrix using finite-discrete element method

机译:使用有限分元法使用岩体矩阵的液压压裂预裂缝岩体的行为的变化

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In this study, we present the results of two-dimensional numerical simulations for the effects of rock matrix permeability on the behaviour of hydraulic fractures in intact and pre-fractured rocks. The simulations are performed using the Finite-Discrete Element Method (FDEM). In this method, the deformation and fluid pressure fields within the porous rock blocks, pre-existing fracture network, and hydraulically induced fractures are calculated through a fully coupled hydromechanical scheme. Furthermore, new fractures can initiate in crack elements located between each pair of finite elements and can propagate in any path that the boundary and loading conditions require according to non-linear fracture mechanics criteria. Fluid channels are also defined between pairs of finite elements simulating the inter-connected flow paths through porous media. Four models of the rock mass are created in this study: (i) homogeneous-impermeable, (ii) homogeneous-permeable, (iii) heterogeneous-impermeable matrix, and (iv) heterogeneous-permeable matrix. Heterogeneous rock masses contain a discrete fracture network (natural fractures) in the rock mass structure. Hydraulic fracturing is modelled in domains of 40×40 m~(2)with the four different structures and mass transport capacities, and the results are compared to each other. The results highlight the significant effect of diffusive fluid flow through rock blocks, in addition to the flow through fracture network, on the global hydromechanical behaviour of the rock mass. These results help to understand the governing hydromechanical processes taking place in fractured rocks with matrix of different permeability, such as granites, shales, carbonate rocks, and sandstones and the extent of complexities required to model their behaviour to achieve reasonable accuracy.
机译:在这项研究中,我们介绍了二维数值模拟的结果,用于岩石矩阵渗透性对完整和预裂缝岩石中液压骨折行为的影响。使用有限离散元素(FDEM)进行仿真。在该方法中,通过完全耦合的流体机械方案计算多孔岩块内的变形和流体压力场,预先存在的裂缝网络和液压诱导的裂缝。此外,新的裂缝可以在位于每对有限元件之间的裂缝元件中引发,并且可以在任何路径中传播,该路径根据非线性裂缝力学标准所需的边界和装载条件。流体通道也限定在通过多孔介质模拟连接间流动路径的有限元对之间。在本研究中创建了四种岩体模型:(i)均相渗透,(ii)均匀渗透性,(III)非均相渗透基质,和(iv)异质渗透基质。异质岩体在岩体结构中含有离散的断裂网络(自然骨折)。液压压裂在40×40m〜(2)的结构域中,具有四种不同的结构和质量传输能力,结果彼此比较。结果突出了通过岩石块的漫射流体流动的显着效果,除了通过裂缝网络的流动,在岩体的全局流体力学行为之外。这些结果有助于了解在具有不同渗透性的基质的裂缝岩石中进行控制的流体力学过程,例如花岗岩,节宝,碳酸盐岩和砂岩以及模拟其行为所需的复杂程度,以实现合理的准确性。

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