基于真三轴实验的页岩液化石油气压裂水力裂缝起裂扩展研究

Ruxin Zhang, B. Hou, Yijin Zeng, Jian Zhou, Qingyang Li
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引用次数: 4

摘要

传统的水力压裂需要大量的水和砂,导致裂缝长度短,SRV小,产量低。然而,一种新的无水压裂,称为液化石油气(LPG)压裂,被用于有效地刺激页岩地层。为了弄清液化石油气压裂裂缝起裂扩展机理,在页岩露头进行了4次大规模真三轴压裂模拟实验。同时,讨论了泵速、流体粘度等工程因素对页岩地层裂缝扩展行为的影响。实验结果表明,液化石油气压裂不仅激活了不连续面,形成了复杂的裂缝网络,而且增加了诱导裂缝长度,形成了较大的SRV。诱导裂缝有两个起裂点,即裸眼段和井筒壁应力集中点,在页岩地层中主要有三种扩展行为:穿越、剪切和阻滞、扩张和穿越。低粘度压裂液会激活不连续面,导致复杂裂缝,而高粘度压裂液则会在不打开不连续面的情况下形成一些主裂缝。此外,高泵速为诱导裂缝穿过不连续面提供了更多能量,从而使裂缝长度更长,SRV更大。此外,页岩地层的各向异性和不连续面的存在导致信号衰减,从而增加了到达时间,导致声发射(AE)事件在声发射监测中的位置偏差。压力-时间-能量曲线分析表明,试样的破裂时间早于试样的破裂时间。即起爆压力小于破裂压力。本文的实验证明,LPG压裂确实比传统水力压裂具有裂缝长度长、SRV大等优势。研究结果为页岩储层LPG压裂作业提供了理论依据。
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Investigation on Hydraulic Fracture Initiation and Propagation with LPG Fracturing in Shale Formation based on True Tri-Axial Laboratory Experiments
Traditional hydraulic fracturing requires lots of water and sand resulting in short fracture length and small SRV with a low production. However, a new waterless fracturing, called Liquefied Petroleum Gas (LPG) fracturing, is applied to stimulate shale formation effectively. In order to figure out the mechanism of fracture initiation and propagation in LPG fracturing, four large-scale true tri-axial fracturing simulation experiments have been conducted on shale outcrops. Meanwhile, the effects of engineering factors, pump rate and fluid viscosity, on fracture propagation behavior in the shale formation are discussed. The experimental results indicate that LPG fracturing not only activates discontinuities to form a complex fracture network, but also enhances induced fracture length to form a large SRV. Induced fractures have two initiation points, open-hole section and stress concentration point of wellbore wall, and have three main propagation behaviors, crossing, shear and arrest, dilation and crossing in shale formation. A low viscosity fracturing fluid activates discontinuities resulting in complex fractures, whereas, a high viscosity fluid would like to create some main fractures without opening discontinuities. Moreover, a high pump rate offers more energy for induced fractures to cross the discontinuities resulting in a long fracture length and large SRV. In addition, the anisotropic of shale formation and the existence of discontinuities cause signals attenuation, which increases the arrival time, resulting in location deviation of acoustic emission (AE) events in the AE monitoring. The pressure-time-energy curve, however, shows that the fracture initiation is earlier than the sample ruptured. That is, the initiation pressure is smaller than the ruptured pressure. The experiments conducted in this paper prove that the LPG fracturing indeed has some advantages than traditional hydraulic fracturing, such as long fracture length and large SRV. And then, the research results provide the theoretical basis for the LPG fracturing operation in shale formation.
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