页岩储层CO2复合压裂裂缝扩展规律研究

Q3 Chemical Engineering
Liyang Song, Jiwei Wang, Zhiyu Sun, Hu Guo
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引用次数: 0

摘要

近年来,CO2复合压裂技术在非常规油藏中得到了广泛应用。与传统水力压裂相比,CO2压裂可以形成复杂的裂缝,补充地层能量,降低油流阻力。对于具有天然裂缝的页岩油储层,CO2复合压裂不仅可以充分发挥CO2形成的复杂裂缝网络的优势,还可以利用水基压裂液形成高电导率的长裂缝。基于压裂液流动、应力干扰、天然裂缝描述和CO2相变方程,建立了CO2复合裂缝扩展模型,模拟了压裂液类型、CO2比例、施工规模、天然裂缝发育,压裂液注入速率等因素对页岩油藏CO2注入裂缝网络传播形态的影响。结果表明,水基压裂液有利于长主裂缝的形成,但裂缝网络的整体复杂性和裂缝网络的有效激发体积明显低于CO2压裂。应用合适比例的CO2复合压裂液,可以充分发挥CO2和水基压裂液的综合优势,实现储层的充分增产。在主应力差小、天然裂缝发育程度高的页岩油藏中,CO2压裂可以在大范围内连通天然裂缝,形成复杂的裂缝网络。对于具有天然裂缝的页岩油储层,高压裂液注入率可以显著提高裂缝网络的复杂性。X页岩油藏水平井采用CO2复合压裂技术,压裂后产量明显高于偏移井,可在同类型油藏中应用,具有广阔的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A study on fracture propagation law of CO2 composite fracturing in shale reservoir
In recent years, CO2 composite fracturing technology has been widely used in unconventional reservoirs. Compared to conventional hydraulic fracturing, CO2 fracturing can create complex fractures, replenish formation energy and reduce oil flow resistance. For shale oil reservoirs with natural fractures, CO2 composite fracturing can not only give full play to the advantages of complex fracture networks created by CO2 but also make use of water-based fracturing fluid to create long fractures with high conductivity. Based on fracture fluid flow, stress interference, natural fracture description, and CO2 phase change equation, a CO2 composite fracture propagation model was established in this paper to simulate the effects of fracturing fluid type, CO2 proportion, construction scale, natural fracture development, fracturing fluid injection rate and other factors on the propagation morphology of CO2 injection fracture network in shale oil reservoirs. The results show that the water-based fracturing fluid is beneficial to the formation of long main fractures, but the overall complexity of the fracture network and the effective stimulated volume of the fracture network are significantly lower than that of CO2 fracturing. The application of the appropriate proportion of CO2 composite fracturing fluid can give full play to the comprehensive advantages of CO2 and water-based fracturing fluid and realize the full stimulation of the reservoir. CO2 fracturing in shale oil reservoirs with low principal stress difference and high natural fracture development extent can communicate natural fractures in a large range and form a complex fracture network. For shale oil reservoirs with natural fractures, a high fracturing fluid injection rate can significantly improve the complexity of the fracture network. The CO2 composite fracturing technology is applied to horizontal wells in X shale reservoir, and the production after fracturing is significantly higher than that of offset wells, which can be applied in the same type of reservoir and has broad application prospects.
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来源期刊
Recent Innovations in Chemical Engineering
Recent Innovations in Chemical Engineering Chemical Engineering-Chemical Engineering (all)
CiteScore
2.10
自引率
0.00%
发文量
20
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