基于离散元法的开槽诱导水力裂缝定向传播模拟

IF 4.2 Q2 ENERGY & FUELS
Kai Wang , Guodong Zhang , Feng Du , Yanhai Wang , Liangping Yi , Jianquan Zhang
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引用次数: 2

摘要

水力压裂(HF)技术可以安全高效地提高煤层的渗透率,有利于煤层气勘探和防止煤与瓦斯突出。然而,传统的高频裂缝倾向于向最大主应力方向扩展,这可能与项目要求的压裂方向不一致。因此,煤层渗透率的增加方向与预期方向不同。为了解决这些问题,使用 PFC2D 软件模拟研究了定向水力压裂(DHF),即开槽与水力压裂的结合。分析了不同的开槽角 (θ)、不同的水平应力差系数 (K) 和不同的注入压力对 DHF 压裂传播的影响。结果表明,当θ、K和注液压力较小时,DHF方法可以克服初始原位应力对水力裂缝扩展方向的主导作用,控制裂缝沿开槽方向和垂直于开槽方向扩展。当 DHF 压裂与人工开槽相连时,压力会发生剧烈晃动,压裂曲线呈现多峰型。压裂孔周围颗粒压力的增大和减小分别反映了压裂端压力积累和压裂扩展的过程。与常规高频相比,DHF 不仅能缩短压裂时间,还能使裂缝网络更加复杂,更有利于气体流动。在原位应力的作用下,缝间应力会增大,超过最大水平主应力。此外,随着压裂时间的变化,模型的局部应力也会发生变化。水力压裂总是向局部应力大的区域扩展。该研究成果可为DHF的理论研究和工程应用提供一定的帮助。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of directional propagation of hydraulic fractures induced by slotting based on discrete element method

Hydraulic fracturing (HF) technology can safely and efficiently increase the permeability of coal seam, which is conducive to CBM exploration and prevent coal and gas outburst. However, conventional HF fractures tend to expand in the direction of maximum principal stress, which may be inconsistent with the direction of fracturing required by the project. Therefore, the increased direction of coal seam permeability is different from that expected. To solve these problems, PFC2D software simulation is used to study directional hydraulic fracturing (DHF), that is the combination of slotting and hydraulic fracturing. The effects of different slotting angles (θ), different horizontal stress difference coefficients (K) and different injection pressures on DHF fracture propagation are analyzed. The results show that the DHF method can overcome the dominant effect of initial in-situ stress on the propagation direction of hydraulic fractures and control the propagation of fractures along and perpendicular to the slotting direction when θ, K and liquid injection pressure are small. When the DHF fracture is connected with manual slotting, the pressure will shake violently, and the fracturing curve presents a multi-peak type. The increase and decrease of particle pressure around the fracturing hole reflect the process of pressure accumulation and fracture propagation at the fracture tip respectively. Compared with conventional HF, DHF can not only shorten the fracturing time but also make the fracture network more complex, which is more conducive to gas flow. Under the action of in-situ stress, the stress between slots will increase to exceed the maximum horizontal principal stress. Moreover, with the change in fracturing time, the local stress of the model will also change. Hydraulic fractures are always expanding to the area with large local stress. The research results could provide certain help for DHF theoretical research and engineering application.

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来源期刊
Petroleum
Petroleum Earth and Planetary Sciences-Geology
CiteScore
9.20
自引率
0.00%
发文量
76
审稿时长
124 days
期刊介绍: Examples of appropriate topical areas that will be considered include the following: 1.comprehensive research on oil and gas reservoir (reservoir geology): -geological basis of oil and gas reservoirs -reservoir geochemistry -reservoir formation mechanism -reservoir identification methods and techniques 2.kinetics of oil and gas basins and analyses of potential oil and gas resources: -fine description factors of hydrocarbon accumulation -mechanism analysis on recovery and dynamic accumulation process -relationship between accumulation factors and the accumulation process -analysis of oil and gas potential resource 3.theories and methods for complex reservoir geophysical prospecting: -geophysical basis of deep geologic structures and background of hydrocarbon occurrence -geophysical prediction of deep and complex reservoirs -physical test analyses and numerical simulations of reservoir rocks -anisotropic medium seismic imaging theory and new technology for multiwave seismic exploration -o theories and methods for reservoir fluid geophysical identification and prediction 4.theories, methods, technology, and design for complex reservoir development: -reservoir percolation theory and application technology -field development theories and methods -theory and technology for enhancing recovery efficiency 5.working liquid for oil and gas wells and reservoir protection technology: -working chemicals and mechanics for oil and gas wells -reservoir protection technology 6.new techniques and technologies for oil and gas drilling and production: -under-balanced drilling/gas drilling -special-track well drilling -cementing and completion of oil and gas wells -engineering safety applications for oil and gas wells -new technology of fracture acidizing
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