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Transient Pressure Analysis of Volume-Fractured Horizontal Wells Considering Complex Fracture Networks and Stress Sensitivity in Tight Reservoirs

机译:考虑致密油藏复杂裂缝网络和应力敏感性的压裂水平井瞬态压力分析

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Tight reservoirs, as an important alternative for conventional energy resources, have been successfully exploited with the aid of hydraulic fracturing technologies. Because of the inherent ultralow permeability and porosity, tight oil reservoirs generally suffer from the effects of stress sensitivity. Both hydraulic fractures with complex geometries and a high-permeability area known as stimulated reservoir volume (SRV) may be generated by the massive hydraulic fracturing operations. All these bring huge challenges in transient pressure analysis of tight reservoirs. Up till now, although many research studies have been carried out on the transient pressure analysis of volume-fractured horizontal wells in tight reservoirs, unfortunately, there is still a lack of research studies that have taken stress sensitivity, complex fracture networks, and the SRV into consideration, simultaneously. To fill up this gap, this paper first idealizes the reservoir after hydraulic fracturing as two radial composite regions, that is, the unstimulated outer region and the inner SRV. The stress sensitivity is characterized by the variable permeability depending on the pore pressure. A linear source with consideration of the stress sensitivity in the composite reservoir is obtained by the perturbation technique, Laplace transformation, and the flow coupling of two regions. Second, the complex fracture networks are discretized into segments to capture their geometries. A semi-analytical model is finally established and validated by the comparison with previous models. On the basis of our model, six flow stages of volume-fractured horizontal well are identified and special features of each regime are analyzed. The stress sensitivity has a great impact on the later stage of production. The mobility ratio and the SRV radius mainly affect SRV pseudo-steady-state flow period and interporosity flow period in the outer region. Fracture number mainly affects the linear flow in the SRV. Fracture geometries mainly affect linear flow and interporosity flow in the SRV. This study has some significance for well test interpretation and production performance analysis of tight reservoirs.
机译:致密油藏作为常规能源的重要替代品,已借助水力压裂技术成功开发。由于固有的超低渗透率和孔隙率,致密油藏通常受到应力敏感性的影响。大规模的水力压裂作业可能会产生具有复杂几何形状的水力压裂和被称为增产油藏(SRV)的高渗透率区域。所有这些给致密油藏的瞬态压力分析带来了巨大的挑战。到目前为止,尽管已经对致密油藏中的体积压裂水平井的瞬态压力分析进行了许多研究,但不幸的是,仍然缺乏对应力敏感性,复杂裂缝网络和SRV的研究。同时考虑。为了填补这一空白,本文首先将水力压裂后的储层理想化为两个径向复合区域,即未受激的外部区域和内部SRV。应力敏感性的特征在于取决于孔隙压力的可变渗透率。通过扰动技术,拉普拉斯变换和两个区域的流动耦合,获得了考虑复合储层应力敏感性的线性源。其次,将复杂的裂缝网络离散化为多个部分,以捕获其几何形状。通过与先前模型的比较,最终建立并验证了一个半分析模型。在我们的模型的基础上,确定了体积压裂水平井的六个流动阶段,并分析了每种方案的特点。应力敏感性对生产的后期阶段有很大的影响。迁移率和SRV半径主要影响外部区域的SRV拟稳态流动时期和孔隙间流动时期。断裂数主要影响SRV中的线性流动。裂缝的几何形状主要影响SRV中的线性流动和孔隙流动。该研究对致密油层试井解释和生产性能分析具有重要意义。

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