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Investigation of Processes of Interaction between Hydraulic and Natural Fractures by PFC Modeling Comparing against Laboratory Experiments and Analytical Models

机译:与实验室实验和分析模型相比,通过PFC建模研究水力与自然裂缝相互作用的过程

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Hydraulic fracturing technology is usually used to stimulate tight gas reservoirs for increasing gas production. The stimulated volume depends in part on the pre-existing natural fractures in a reservoir. The mechanisms influencing the interaction between hydraulic fractures and natural fractures have to be well understood in order to achieve a successful application of hydraulic fracturing. In this paper, hydraulic fracturing simulations were performed based on a two-dimensional Particle Flow Code with an embedded Smooth Joint Model to investigate the interactions between hydraulic fractures and natural fractures and compare these against laboratory experimental results and analytical models. Firstly, the ability of the Smooth Joint Model to mimic the natural rock joints was validated. Secondly, the interactions between generated hydraulic fractures and natural fractures were simulated. Lastly, the influence of angle of approach, in situ differential stress, and the permeability of natural fractures was studied. It is found that the model is capable of simulating the variety of interactions between hydraulic fractures and natural fractures such as Crossed type, Arrested type and Dilated type, and the modeling examples agree well with the experimental results. Under high approach angles and high differential stresses, the hydraulic fractures tend to cross pre-existing natural fractures. Under contrary conditions, a hydraulic fracture is more likely to propagate along the natural fracture and re-initiate at a weak point or the tip of the natural fracture. Moreover, these numerical results are in good agreement compared with Blanton’s criterion. The variety of permeability of natural fractures has a great effect on their interactions, which should not be overlooked in hydraulic fracturing studies.
机译:水力压裂技术通常用于增产致密的气藏以增加天然气产量。增产量部分取决于储层中已存在的天然裂缝。为了成功地应用水力压裂,必须充分理解影响水力压裂与自然压裂之间相互作用的机理。在本文中,基于带有嵌入式光滑接头模型的二维粒子流代码进行了水力压裂模拟,以研究水力压裂与自然压裂之间的相互作用,并将其与实验室实验结果和分析模型进行比较。首先,验证了平滑节理模型模拟天然岩石节理的能力。其次,模拟了水力裂缝与自然裂缝之间的相互作用。最后,研究了进角,原地微分应力和天然裂缝渗透率的影响。结果表明,该模型能够模拟水力压裂与自然压裂之间的相互作用,如交叉型,滞留型和膨胀型,建模实例与实验结果吻合良好。在高进角和高微分应力下,水力裂缝往往会跨越原有裂缝。在相反的条件下,水力裂缝更有可能沿着自然裂缝传播,并在自然裂缝的薄弱点或尖端重新开始。此外,与布兰顿的标准相比,这些数值结果非常吻合。天然裂缝渗透率的变化对其相互作用有很大影响,在水力压裂研究中不应忽视。

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