Experimental investigation on cross-layer propagation of hydraulic fractures in shale-sandstone interbedded reservoirs

IF 6.1 1区 工程技术 Q2 ENERGY & FUELS
Chao Liu , Hai-Yan Zhu , Kai Tang , Peng Zhao , Xuan-He Tang , Lei Tao , Zhao-Peng Zhang , Guo-Hui Ren
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引用次数: 0

Abstract

China's shale oil and gas resources are widely distributed in shale-sandstone interbedded reservoirs, whose complex lithology and strong heterogeneity pose significant challenges to hydraulic fracturing design. To address issues such as the difficulty in controlling fracture height and the challenge of forming an effective fracture network, this study utilizes synthetic rock samples that can represent the characteristics of interbedded reservoirs and investigates the initiation and propagation of hydraulic fractures under different viscosity, injection rate, and construction scheme. By combining real-time monitoring of injection pressure with acoustic emission, the temporal and spatial evolution characteristics of hydraulic fractures as well as the mechanisms of their vertical and horizontal extension are revealed. The results indicate that a higher fracturing fluid viscosity is essential for ensuring the vertical cross-layer propagation of hydraulic fractures, while a lower fluid viscosity facilitates the activation of weak interlayer surfaces, promoting sufficient horizontal propagation along these planes and forming branched fractures. Although a higher injection rate enhances the vertical cross-layer propagation of hydraulic fractures, it also causes greater diversion of the main fracture plane, resulting in simpler fracture morphology and limiting the stimulation effect. Additionally, an alternating injection of high and low viscosity fracturing fluids allows hydraulic fractures to both break through weak interlayer surfaces and achieve uniform horizontal propagation, resulting in a more complex fracture morphology. The findings are expected to provide a scientific basis and practical guidance for optimizing hydraulic fracturing designs in interbedded reservoir conditions.
页岩-砂岩互层储层水力裂缝跨层扩展试验研究
中国页岩油气资源广泛分布在页岩-砂岩互层储层中,其岩性复杂、非均质性强,给水力压裂设计带来了重大挑战。针对裂缝高度难以控制、有效裂缝网络难以形成等问题,本研究利用能够代表互层储层特征的合成岩样,研究了不同粘度、注入速率和施工方案下水力裂缝的起裂和扩展。通过声发射与注入压力实时监测相结合,揭示了水力裂缝的时空演化特征及其垂向和水平延伸机理。结果表明,较高的压裂液粘度对于保证水力裂缝的垂直跨层扩展至关重要,而较低的流体粘度有利于激活弱层间表面,促进沿这些面充分的水平扩展并形成分支裂缝。虽然较高的注入速度增强了水力裂缝的垂向跨层扩展,但也会导致主裂缝面转向较大,导致裂缝形态更简单,限制了增产效果。此外,交替注入高粘度和低粘度压裂液,使得水力裂缝既能突破薄弱的层间表面,又能实现均匀的水平扩展,从而形成更复杂的裂缝形态。研究结果有望为互层储层条件下水力压裂优化设计提供科学依据和实践指导。
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来源期刊
Petroleum Science
Petroleum Science 地学-地球化学与地球物理
CiteScore
7.70
自引率
16.10%
发文量
311
审稿时长
63 days
期刊介绍: Petroleum Science is the only English journal in China on petroleum science and technology that is intended for professionals engaged in petroleum science research and technical applications all over the world, as well as the managerial personnel of oil companies. It covers petroleum geology, petroleum geophysics, petroleum engineering, petrochemistry & chemical engineering, petroleum mechanics, and economic management. It aims to introduce the latest results in oil industry research in China, promote cooperation in petroleum science research between China and the rest of the world, and build a bridge for scientific communication between China and the world.
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