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The Behaviour of Fracture Growth in Sedimentary Rocks: A Numerical Study Based on Hydraulic Fracturing Processes

机译:沉积岩中裂缝增长的行为:基于水力压裂过程的数值研究

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摘要

To capture the hydraulic fractures in heterogeneous and layered rocks, a numerical code that can consider the coupled effects of fluid flow, damage, and stress field in rocks is presented. Based on the characteristics of a typical thin and inter-bedded sedimentary reservoir, China, a series of simulations on the hydraulic fracturing are performed. In the simulations, three points, i.e. , (1) confining stresses, representing the effect of in situ stresses, (2) strength of the interfaces, and (3) material properties of the layers on either side of the interface, are crucial in fracturing across interfaces between two adjacent rock layers. Numerical results show that the hydrofracture propagation within a layered sequence of sedimentary rocks is controlled by changing in situ stresses, interface properties, and lithologies. The path of the hydraulic fracture is characterized by numerous deflections, branchings, and terminations. Four types of potential interaction, i.e. , penetration, arrest, T-shaped branching, and offset, between a hydrofracture and an interface within the layered rocks are formed. Discontinuous composite fracture segments resulting from out-of-plane growth of fractures provide a less permeable path for fluids, gas, and oil than a continuous planar composite fracture, which are one of the sources of the high treating pressures and reduced fracture volume.
机译:为了捕获非均质层状岩石中的水力压裂,给出了一个可以考虑流体流动,损伤和应力场耦合效应的数字代码。根据中国典型的薄层间沉积储层的特征,对水力压裂进行了一系列模拟。在仿真中,三个点,即(1)表示原位应力影响的约束应力,(2)界面强度和(3)界面两侧的层的材料特性在以下方面至关重要。跨两个相邻岩石层之间的界面破裂。数值结果表明,通过改变原地应力,界面性质和岩性,可控制层状沉积岩中水力裂缝的扩展。水力压裂的路径以许多挠曲,分支和终止为特征。在层状岩石内的水力压裂和界面之间形成了四种类型的潜在相互作用,即渗透,滞留,T形分支和偏移。与连续平面复合裂缝相比,由裂缝的平面外生长产生的不连续复合裂缝段为流体,气体和石油提供的渗透路径较少,而连续平面复合裂缝是处理压力高和裂缝体积减小的原因之一。

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