Study on the Mechanism and Regulation Method of Longitudinal Penetration of Hydraulic Fractures in Multilayered Shale

IF 4.7 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-05-01 DOI:10.2118/221450-pa
Jianbin Li, Zhifeng Luo, Nanlin Zhang, Xiuquan Zeng, Yucheng Jia
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Abstract

Shale reservoirs have longitudinally developed multilayered weak surfaces. The strong geological discontinuity and the stress heterogeneity caused by it lead to the complicated morphology of hydraulic fracture propagation, and the longitudinal propagation mechanism of the hydraulic fracture is still unclear. The extended finite element 3D numerical model of the single-cluster fracture and multicluster fracture extension has been established. The effects of vertical stress difference, bonding strength of bedding plane, fracturing fluid displacement, fracturing fluid viscosity, and cluster spacing on fracture propagation morphology are analyzed by numerical examples. The results show that as the vertical stress difference and the bonding strength of the bedding plane increase, the bedding plane becomes more difficult to activate, and the fractures are more likely to realize the longitudinal penetration. As the cluster spacing decreases, the interfracture interference becomes stronger, and the hydraulic fractures are more likely to activate the bedding plane and form the orthogonal network fracture. At a high injection rate, the fracture passes easily through the layer and activates the bedding plane. Low-viscosity fracturing fluid is conducive to the activation of the bedding plane, and high-viscosity fracturing fluid can better achieve fracture penetration. Based on the research results, the fracturing parameters of Well X-1 are optimized, and the fracture monitoring results are in good agreement with the design objectives. This study reveals the longitudinal penetration mechanism of multilayered shale hydraulic fractures and provides a reference for the optimization of hydraulic fracturing parameters of multilayered shale.
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多层页岩水力压裂纵向穿透机理及调控方法研究
页岩储层具有纵向发育的多层薄弱面。强烈的地质不连续性及其引起的应力异质性导致水力裂缝扩展形态复杂,水力裂缝纵向扩展机理尚不清楚。建立了单簇断裂和多簇断裂扩展的有限元三维数值模型。通过数值实例分析了垂直应力差、基底面粘结强度、压裂液位移、压裂液粘度、簇间距等因素对压裂扩展形态的影响。结果表明,随着垂直应力差和基底面粘结强度的增加,基底面更难被激活,裂缝更容易实现纵向贯通。随着簇间距的减小,裂缝间的干涉作用变强,水力压裂更有可能激活垫层平面,形成正交网络压裂。在高注入率下,裂缝很容易穿过地层并激活基底面。低粘度压裂液有利于激活基底面,高粘度压裂液能更好地实现压裂穿透。根据研究结果,对 X-1 井的压裂参数进行了优化,压裂监测结果与设计目标十分吻合。该研究揭示了多层页岩水力压裂的纵向渗透机理,为多层页岩水力压裂参数的优化提供了参考。
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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
期刊介绍: ACS Applied Electronic Materials is an interdisciplinary journal publishing original research covering all aspects of electronic materials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials science, engineering, optics, physics, and chemistry into important applications of electronic materials. Sample research topics that span the journal's scope are inorganic, organic, ionic and polymeric materials with properties that include conducting, semiconducting, superconducting, insulating, dielectric, magnetic, optoelectronic, piezoelectric, ferroelectric and thermoelectric. Indexed/​Abstracted: Web of Science SCIE Scopus CAS INSPEC Portico
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