Integrated numerical simulation of hydraulic fracturing and production in shale gas well considering gas-water two-phase flow

IF 7 Q1 ENERGY & FUELS Petroleum Exploration and Development Pub Date : 2024-06-01 DOI:10.1016/S1876-3804(24)60497-0
Huiying TANG , Shangui LUO , Haipeng LIANG , Bo ZENG , Liehui ZHANG , Yulong ZHAO , Yi SONG
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Abstract

Based on the displacement discontinuity method and the discrete fracture unified pipe network model, a sequential iterative numerical method was used to build a fracturing-production integrated numerical model of shale gas well considering the two-phase flow of gas and water. The model accounts for the influence of natural fractures and matrix properties on the fracturing process and directly applies post-fracturing formation pressure and water saturation distribution to subsequent well shut-in and production simulation, allowing for a more accurate fracturing-production integrated simulation. The results show that the reservoir physical properties have great impacts on fracture propagation, and the reasonable prediction of formation pressure and reservoir fluid distribution after the fracturing is critical to accurately predict the gas and fluid production of the shale gas wells. Compared with the conventional method, the proposed model can more accurately simulate the water and gas production by considering the impact of fracturing on both matrix pressure and water saturation. The established model is applied to the integrated fracturing-production simulation of practical horizontal shale gas wells. The simulation results are in good agreement with the practical production data, thus verifying the accuracy of the model.

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考虑气水两相流的页岩气井水力压裂与生产综合数值模拟
基于位移不连续法和离散压裂统一管网模型,采用顺序迭代数值方法建立了考虑气水两相流的页岩气井压裂-生产一体化数值模型。该模型考虑了天然裂缝和基质性质对压裂过程的影响,并将压裂后地层压力和水饱和度分布直接应用于后续关井和生产模拟,从而实现了更精确的压裂-生产一体化模拟。研究结果表明,储层物性对压裂传播有很大影响,合理预测压裂后地层压力和储层流体分布是准确预测页岩气井产气产液的关键。与传统方法相比,所提出的模型考虑了压裂对基质压力和水饱和度的影响,能更准确地模拟产水量和产气量。所建立的模型被应用于实际水平页岩气井的压裂-生产综合模拟。模拟结果与实际生产数据非常吻合,从而验证了模型的准确性。
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来源期刊
CiteScore
11.50
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0.00%
发文量
473
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