页岩储层多井块压裂水力裂缝扩展及井间干扰机理研究

IF 6.9 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Bo Zhang, Tiankui Guo, Ming Chen, Linrui Xue, Yunpeng Wang, Haiyang Wang, Jiwei Wang, Zhanqing Qu, Wentao Ma
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引用次数: 0

摘要

页岩储层具有非均质性强、垂向多层等不利特征。多井座压裂是一种能够实现储层立体开发的高效压裂技术。以往的研究多集中在二维模型上,无法同时实现纵向和纵向传播。采用连续-非连续单元法(CDEM),建立CDEM- hm3d模型,研究井间干扰下裂缝扩展机理,以及井距、井布设、裂缝间距对具有层理面的页岩储层多井台压裂的影响。结果表明:低应力层优先压裂优于高应力层优先压裂;前者充分利用井间干扰,避免高应力层裂缝穿透,有利于目标储层安全独立开发;与交错井压裂相比,叠井压裂可以更有效地补偿不同层间的改造差异,激活更多的层理面积,但裂缝控制范围减小。在无裂缝侵彻的前提下,适当加大井距可以扩大裂缝控制范围,达到最佳压裂效果。最佳裂缝间距可以防止高应力层裂缝侵彻,扩大横向裂缝控制范围,从而开发更多缝间资源。研究结果可为页岩储层高效开发提供理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on hydraulic fracture propagation and interwell interference mechanisms during multi-well pad fracturing in shale reservoirs
Shale reservoirs have unfavourable characteristics such as strong heterogeneity and vertical multiple layers. Multi-well pad fracturing is a highly efficient fracturing technology that can achieve stereoscopic reservoir exploitation. Previous studies usually focused on 2D models, but they cannot simultaneously achieve longitudinal and vertical propagation. Through continuum-discontinuum element method (CDEM), a CDEM-HM3D model is established to investigate the fracture propagation mechanism under well interference and the influences of well spacing, well layout, and fracture spacing on multi-well pad fracturing in a field-scale shale reservoir model with bedding planes. Results show the fracturing performance from preferential fracturing in the lower-stress layer is superior to that in the high-stress layer. The former fully utilizes interwell interference to avoid fracture penetration in the high-stress layer, which is conducive to the safe and independent development of the target reservoir. Compared with staggered well fracturing, stacked well fracturing can more effectively compensate for the reconstruction difference between different layers and activate more bedding area, but the fracture control range decreases. Under the premise of no fracture penetration, increasing the well spacing properly can expand the fracture control range and achieve optimal fracturing performance. An optimal fracture spacing can prevent fracture penetration in the high-stress layer and enlarge the transverse fracture control range, thereby exploiting more resources between fractures. The results can provide theoretical guidance for the efficient development of shale reservoirs.
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来源期刊
Engineering Geology
Engineering Geology 地学-地球科学综合
CiteScore
13.70
自引率
12.20%
发文量
327
审稿时长
5.6 months
期刊介绍: Engineering Geology, an international interdisciplinary journal, serves as a bridge between earth sciences and engineering, focusing on geological and geotechnical engineering. It welcomes studies with relevance to engineering, environmental concerns, and safety, catering to engineering geologists with backgrounds in geology or civil/mining engineering. Topics include applied geomorphology, structural geology, geophysics, geochemistry, environmental geology, hydrogeology, land use planning, natural hazards, remote sensing, soil and rock mechanics, and applied geotechnical engineering. The journal provides a platform for research at the intersection of geology and engineering disciplines.
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