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Horizontal permeability anisotropy: Effect upon the evaluation and design of primary and secondary hydraulic fracture treatments in tight gas reservoirs

机译:水平渗透率各向异性:对致密气藏一次,二次水力压裂评价和设计的影响

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摘要

Numerous field trials have shown that fracturing and refracturing of tight sands have improved the economics of gas production from these reservoirs. In order to evaluate and design hydraulic stimulation in these reservoirs, it is essential to implement a holistic approach in which conducting a secondary fracture treatment after a primary production period from an initial hydraulic fracture is considered as an option. In such an approach, the optimal design is determined based on the combined performance of primary and secondary hydraulic fractures. In this paper we show that horizontal permeability anisotropy significantly affects productivity of both fracture and refracture as well as the potential length of a re-oriented secondary fracture and the optimal time for refracture treatment. For this purpose a numerical model is used to simulate fully coupled gas flow and stress changes from a hydraulically fractured and refractured tight gas reservoir. Results of this study have shown that horizontal permeability anisotropy is a key parameter in the holistic design of hydraulic fracture treatment. In particular, results of this study show that refracture treatment has a high potential to increase production when parallel component of horizontal permeability to the primary fracture is greater than the orthogonal component. We have also shown that horizontal permeability anisotropy controls the optimal time for conducting refracture treatment.
机译:大量的现场试验表明,致密砂的压裂和压裂提高了这些油藏的天然气生产经济性。为了评估和设计这些油藏中的水力增产,必不可少的是要采用一种整体方法,在该方法中,从初始水力压裂开始的一次开采期后进行二次压裂处理被认为是一种选择。在这种方法中,基于主要和次要水力压裂的综合性能确定最佳设计。在本文中,我们表明水平渗透率各向异性显着影响裂缝和裂缝的生产率,以及重新定向的二次裂缝的潜在长度和裂缝处理的最佳时间。为此,使用数值模型来模拟水力压裂和压裂的致密气藏的全耦合气体流量和应力变化。这项研究的结果表明,水平渗透率各向异性是水力压裂处理整体设计的关键参数。特别是,这项研究的结果表明,当与主要裂缝的水平渗透率平行的分量大于正交分量时,压裂处理具有提高产量的潜力。我们还表明,水平渗透率各向异性控制进行裂缝处理的最佳时间。

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