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首页> 外文期刊>Journal of Petroleum Science & Engineering >How transport properties of a shale gas reservoir change during extraction: A strain-dependent triple-porosity model
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How transport properties of a shale gas reservoir change during extraction: A strain-dependent triple-porosity model

机译:萃取过程中页岩气储层的运输性能如何变化:一种应变依赖性三孔隙度模型

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摘要

In this study, we consider a shale gas reservoir as a triple-porosity media consisting of organic matrix, inorganic matrix, and fractures. A strain-dependent triple-porosity model is established by accurately expressing the deformation of each medium to reveal the change in the transport properties of a shale gas reservoir during production and to predict the reservoir recovery. The deformation of each medium is based on a combination of mechanical deformation and desorption-induced shrinkage behavior, and fracture aperture as well as the difference of effective stress in each medium were considered. We find that the transport properties of shale gas reservoirs are related to the porosity and diffusion coefficient of the organic matrix, and the porosity and permeability of the fracture system and inorganic matrix. The triple-porosity model is then incorporated into the governing equations for gas flow. The finite element method is used to solve the governing equations. By comparing the simulation result with field data, analytical solution, and previous simulation result, we are able to verify the accuracy of our model. Then, we analyze and reveal in detail how the transport properties of shale gas reservoirs change during extraction through the combined evolution of gas pressure, volumetric strain, and strain induced by the adsorption/desorption of gas in the organic matrix. Finally, we conduct sensitive analysis focusing on how the initial transport properties affect their evolutions. We find that the relationship between mechanical deformation and strain induced by adsorption/desorption is not always competitive during gas extraction.
机译:在这项研究中,我们认为页岩气藏是由有机基质,无机基质和骨折组成的三孔隙率介质。通过精确表达每个介质的变形来确定应变依赖性三孔隙率模型,以揭示生产过程中页岩气藏的运输特性的变化,并预测储层恢复。每种培养基的变形是基于机械变形和解吸诱导的收缩行为的组合,并且考虑了每个培养基中的裂缝孔以及有效应力的差异。我们发现页岩气储层的运输特性与有机基质的孔隙率和扩散系数以及裂缝系统和无机基质的孔隙率和渗透性有关。然后将三孔隙度模型结合到用于气流的控制方程中。有限元方法用于解决控制方程。通过将模拟结果与现场数据进行比较,分析解决方案和先前的仿真结果,我们能够验证模型的准确性。然后,我们详细分析和揭示了通过在有机基质中气体吸附/解吸诱导的气体压力,体积菌株和菌株的组合演变,在提取过程中的转换性能如何改变。最后,我们进行敏感分析,重点是初始运输属性如何影响其演变。我们发现,在气体提取过程中,吸附/解吸引起的机械变形和菌株之间的关系并不总是竞争力。

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  • 作者单位

    Shandong Univ Sci &

    Technol Shandong Prov Key Lab Civil Engn Disaster Prevent Qingdao 266590 Shandong Peoples R China;

    Shandong Univ Sci &

    Technol Shandong Prov Key Lab Civil Engn Disaster Prevent Qingdao 266590 Shandong Peoples R China;

    Shandong Univ Sci &

    Technol State Key Lab Breeding Base Mine Disaster Prevent Qingdao 266590 Shandong Peoples R China;

    Shandong Univ Geotech &

    Struct Engn Res Ctr Jinan 250061 Shandong Peoples R China;

    Shandong Univ Sci &

    Technol Shandong Prov Key Lab Civil Engn Disaster Prevent Qingdao 266590 Shandong Peoples R China;

    Ocean Univ China Coll Engn Qingdao 266100 Shandong Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 石油、天然气工业;
  • 关键词

    Triple-porosity model; Volumetric strain; Permeability; Diffusion coefficient;

    机译:三孔隙度模型;体积菌株;渗透率;扩散系数;

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