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Three-dimensional investigation investigation of multiple stage hydraulic fracturing in unconventional reservoirs

机译:非常规油藏多级水力压裂三维研究

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Production efficiency from low permeability shale reservoirs demands promoting techniques including horizontal well drilling and multiple hydraulic fracture stimulation. What significantly affects the fracture patterns and associated geometries is the stress field changes induced by pre-existing or simultaneous fractures, depending on proposed hydraulic fracturing scenarios. Devising a reliable and robust simulation tool for hydro-mechanical modeling of hydraulic fracturing is imperative inasmuch as an appropriate fracturing job in a porous medium cannot be extended to another owing to various characteristics and limited access to the field data acquisition. In order to present a numerical technique, which is capable of capturing the non-planar hydraulically fluid-driven crack propagation with unpredictable path, in one hand, and tackling the feasible emergence of multiple cohesive cracks in a porous medium with fracture process zone at the crack tip, on the other hand, the Cohesive segments method in combination with Phantom Node Method, called CPNM herein, is established to simulate 3-D non-planar hydraulically driven fracture problem in a quasi-brittle shale medium. The present simulation fully couple fracturing fluid flow inside the crack with poro-elasticity in porous formation and continuum-based leak-off on the crack surfaces, and capture the fracture process zone at the fracture tip in quasi-brittle shale. In this paper, two different key scenarios including sequentially and simultaneously multiple hydraulic fracturing in a quasi-brittle shale multi-layer are investigated by using CPNM. The interesting and new results show that later stages in sequentially hydraulic fracturing mainly secure larger values of fracture opening than that of simultaneously hydraulic fracturing, which can be attributed to the effect of stress interactions of fractures on each other. Detailed parametric studies shed new light on the impacts of pre-existing or simultaneous fluid-driven fractures on the pore pressure of the formation, crack propagation pattern, von Mises stresses, fracture opening, leak-off flow rate, and fracturing fluid pressure. (C) 2016 Elsevier B.V. All rights reserved.
机译:低渗透性页岩油藏的生产效率需要促进技术,包括水平井钻井和多次水力压裂增产。取决于拟议的水力压裂方案,显着影响裂缝模式和相关几何形状的是由既有裂缝或同时裂缝引起的应力场变化。必须为水力压裂的水力力学模型设计可靠而强大的仿真工具,因为多孔介质中的适当压裂工作由于各种特性和对现场数据采集的限制而无法扩展。为了提出一种数值技术,该技术能够一方面捕获具有不可预测路径的非平面液压流体驱动的裂纹扩展,并解决多孔介质中具有破裂过程区的多个粘性裂纹的可能出现。另一方面,建立裂缝段方法和幻影节点方法相结合,在此称为CPNM,以模拟准脆性页岩介质中的3-D非平面水力驱动裂缝问题。本模拟将裂缝内部的压裂液流动与多孔地层中的孔隙弹性和裂缝表面上基于连续介质的渗漏完全耦合,并捕获了准脆性页岩中裂缝尖端的裂缝过程区域。在本文中,使用CPNM研究了准脆性页岩多层中连续和同时进行多道水力压裂的两种不同的关键方案。有趣的和新的结果表明,相继进行水力压裂的后期阶段,与同时进行水力压裂的过程相比,主要确保了较大的裂缝开度值,这可以归因于裂缝之间的应力相互作用。详细的参数研究为先前存在的或同时发生的流体驱动裂缝对地层孔隙压力,裂缝扩展模式,冯·米塞斯应力,裂缝开度,泄漏流量和压裂流体压力的影响提供了新的思路。 (C)2016 Elsevier B.V.保留所有权利。

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