从井筒扩展水力裂缝:地应力和近井应力重分布的影响

Q. Gao, De-sheng Zhou, A. Ghassemi, Xiong Liu, Yafei Liu, Min Guo
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摘要

水力压裂作为一种成熟的提高地层渗透率的技术,在地热能开发和石油工业中得到了广泛的应用。由于其在实际应用中的有效性,吸引了大量的研究工作。由于水力压裂本身的复杂性和井筒周围应力的复杂分布,准确描述水力裂缝的行为仍然是一项具有挑战性的任务。本文建立了水力裂缝从井筒开始弯曲扩展的数值模型,重点研究了地应力和近井筒应力重分布的影响。在所建立的流体力学模型中,特别考虑了其模拟水力裂缝弯曲扩展的能力。采用相场法模拟裂缝的扩展过程。利用该模型研究了水平井水力裂缝的起裂和扩展问题。通过解析解对模型进行了验证。分析了井筒加压引起的应力重分布对水力裂缝起裂的影响。在不同的地应力配置和初始裂缝方向下(以初始裂缝代表井筒周围的射孔或缺陷),识别出了几种井筒周围水力裂缝扩展模式。研究发现,井筒附近的应力重分布对裂缝的起裂和扩展有很大影响,使水力裂缝以非平面、复杂的方式扩展。当水力裂缝从井筒周围的应力重分布区域向外扩展时,地应力决定了裂缝的扩展方向;裂缝扩展路径的曲率主要由地应力差(σv−σhmin)决定。研究还表明,在分析井筒裂缝扩展时,除了考虑裂缝扩展条件外,还应考虑井筒稳定性或井筒非线性变形。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Propagating Hydraulic Fractures from Wellbores: Effects of In-Situ Stress and Near-Wellbore Stress Redistribution
As a mature technology to enhance the permeability of geological formations, hydraulic fracturing has widely been used in geothermal energy development and in the petroleum industry. Due to its effectiveness in practical applications, it attracts many research efforts. Because of the complexity of hydraulic fracturing itself and the complex distribution of stresses around wellbores, accurately describing the behaviors of hydraulic fractures is still a challenging task. In this study, a numerical model is developed to simulate curved propagation of hydraulic fractures from a wellbore, and emphases are placed on influence of in-situ stress and near wellbore stress redistribution. In the developed hydromechanical model, special considerations are given to its ability to simulate curved propagation of hydraulic fractures. The propagation of fractures is modeled through the phase-field method. Several cases on hydraulic fracture initiation and propagation from horizontal wellbores are studied through the proposed model. The model has been successfully verified through analytical solutions. The influence of stress redistribution caused by wellbore pressurization on hydraulic fracture initiation from wellbores is analyzed. Under different in-situ stress configurations and initial fracture orientations (perforation or flaws around wellbores are represented by the initial fractures), several patterns of hydraulic fracture propagation around the wellbores are recognized. It is found that the stress redistribution in the close vicinity of wellbores has great influences on the fracture initiation and propagation, and it makes hydraulic fractures propagate in nonplanar, complex manners. As hydraulic fractures propagate away from the stress redistribution regions around the wellbores, in-situ stress then determines the directions of fracture propagation; the curvature of fracture growth paths is mainly determined by the difference in in-situ stress, for example, σv − σhmin in this study. It has also been demonstrated that, when analyzing fracture propagation from wellbores, the wellbore stability or nonlinear deformation of a wellbore should be considered together with the fracture propagation conditions.
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