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Numerical simulation of hydraulic fracture propagation in tight oil reservoirs by volumetric fracturing

机译:体积压裂液压储层液压断裂繁殖的数值模拟

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Volumetric fracturing is a primary stimulation technology for economical and effective exploitation of tight oil reservoirs. The main mechanism is to connect natural fractures to generate a fracture network system which can enhance the stimulated reservoir volume. By using the combined finite and discrete element method, a model was built to describe hydraulic fracture propagation in tight oil reservoirs. Considering the effect of horizontal stress difference, number and spacing of perforation clusters, injection rate, and the density of natural fractures on fracture propagation, we used this model to simulate the fracture propagation in a tight formation of a certain oilfield. Simulation results show that when the horizontal stress difference is lower than 5?MPa, it is beneficial to form a complex fracture network system. If the horizontal stress difference is higher than 6?MPa, it is easy to form a planar fracture system; with high horizontal stress difference, increasing the number of perforation clusters is beneficial to open and connect more natural fractures, and to improve the complexity of fracture network and the stimulated reservoir volume (SRV). As the injection rate increases, the effect of volumetric fracturing may be improved; the density of natural fractures may only have a great influence on the effect of volume stimulation in a low horizontal stress difference.
机译:体积压裂是一种主要的刺激技术,可经济和有效地利用紧储油储层。主要机制是连接自然骨折以产生裂缝网络系统,可以增强刺激的储存量。通过使用组合的有限和分立元件方法,建立了一种模型,以描述紧的油藏中的液压断裂传播。考虑到穿孔簇的水平应力差异,数量和间距,注射速率和自然骨折密度对骨折传播的影响,我们使用该模型模拟了某种油田紧密形成的断裂传播。仿真结果表明,当水平应力差低于5?MPa时,形成复杂的骨折网络系统是有益的。如果水平应力差高于6?MPa,则易于形成平面骨折系统;具有高水平应力差异,增加穿孔簇的数量有利于打开和连接更多的自然骨折,并提高裂缝网络的复杂性和刺激的储存量(SRV)。随着注射速率的增加,体积压裂的效果可以改善;自然骨折的密度可能只对体积刺激在低水平应力差的影响产生很大影响。

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