Fundamental research on the role of differential stress in hydraulic fracturing in strength-anisotropic medium

H. Ohtani, H. Mikada, J. Takekawa
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引用次数: 1

Abstract

Hydraulic fracturing is a technique to enhance the permeability around the borehole to create fracture networks in oil and natural gas reservoirs. Since the performance of hydraulic fracturing is not fully predictable beforehand, it is important to pre-estimate the extension and the connectivity of artificial fractures for a given condition such as in-situ stress and various mechanical properties of reservoir rock. It, therefore, has been drawing attention to achieve this with a method of numerical simulation in recent years. The propagating direction of hydraulic fractures is the direction of maximum principal stress in an isotropic medium. Since reservoir rock of shale oil or gas is anisotropic in the mechanical properties inferred from several laboratory tests, the propagating direction of hydraulic fractures is strongly affected by the direction of anisotropy axis. Since there are few researches conducted on the numerical simulation of hydraulic fracturing in strongly anisotropic media with the existence of differential stress towards the borehole, it is necessary to examine the role of the differential stress. We give mechanically anisotropic properties such as uniaxial compressive strength, uniaxial tensile strength, permeability, etc., based on the calibration of microscopic parameters of DEM to represent macroscopic parameters of the reservoir rock. The empirical assumption of macroscopic uniaxial tensile strength distribution is introduced into microscopic strength of the model. The result showed that if the differential stress is large, hydraulic fractures tend to propagate in the direction of maximum principal stress whereas hydraulic fractures tend to propagate in the direction of bedding plane under low differential stress. Moreover, this information suggests that in the shale reservoir, which has mechanical anisotropy, the differential stress has important role in estimating the propagation direction of hydraulic fractures.
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强度各向异性介质中差应力在水力压裂中的作用基础研究
水力压裂是一种提高井眼周围渗透率,在油气储层中形成裂缝网络的技术。由于水力压裂的性能不能完全预测,因此在给定地应力和储层岩石各种力学性质的条件下,对人工裂缝的延伸和连通性进行预估是很重要的。因此,近年来利用数值模拟的方法来实现这一目标已引起人们的关注。水力裂缝的扩展方向是各向同性介质中最大主应力方向。由于页岩油气储层岩石的力学性质具有各向异性,水力裂缝的扩展方向受各向异性轴方向的影响较大。由于目前对强各向异性介质中存在向孔差应力的水力压裂数值模拟研究较少,因此有必要对差应力的作用进行研究。在标定DEM微观参数的基础上,给出了储层岩石的力学各向异性,如单轴抗压强度、单轴抗拉强度、渗透率等,以表示储层岩石的宏观参数。将宏观单轴抗拉强度分布的经验假设引入到模型的微观强度中。结果表明:当差应力较大时,水力裂缝倾向于向最大主应力方向扩展,而在低差应力条件下,水力裂缝倾向于向顺层面方向扩展;这表明,在具有力学各向异性的页岩储层中,差应力对水力裂缝的扩展方向估计具有重要作用。
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