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首页> 外文期刊>Bulletin of engineering geology and the environment >Experimental study of gas permeability evolution in tight sandstone with damage and cracking along various stress loading paths
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Experimental study of gas permeability evolution in tight sandstone with damage and cracking along various stress loading paths

机译:具有损伤和沿各种应力负荷裂缝造成损伤和裂缝的岩石渗透性进化的实验研究

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摘要

The evolution of permeability of tight sandstone was investigated under different stress states. A series of hydrostatic compression, triaxial compression, and lateral decompression tests with cooccurrence gas permeability measurement were performed on the tight sandstone samples drilled from an underground abandoned mine in Huainan city of China. The deformation and permeability evolution characteristics under different loading paths were analyzed. Furthermore, the key factors controlling changes in permeability were identified, and the mechanism of permeability evolution under different stress states was discussed. Finally, a mathematic model was proposed to describe the evolution of permeability with volumetric strain under triaxial compression. It shows that permeability decreases continuously under hydrostatic compression, while first decreases and then increases under triaxial compression and remains unchanged under lateral decompression. The stress-induced volumetric strain governs the permeability change, and the proposed model can accurately describe the relationship between permeability and volumetric strain under triaxial compression. The results provide a basis for both theoretical and experimental analyses of the sealing ability against permeation of tight rocks.
机译:在不同的应力状态下研究了紧密砂岩的渗透性的演变。在中国淮南市的地下抛弃矿井钻的紧密砂岩样品上进行了一系列静水压缩,三轴压缩和横向减压试验。分析了不同负载路径下的变形和渗透性进化特性。此外,鉴定了控制渗透性变化的关键因素,并讨论了不同应力状态下的渗透性进化机制。最后,提出了一种数学模型来描述三轴压缩下具有体积菌株的渗透性的演变。它表明,渗透性在静水压缩下连续降低,而首先降低,然后在三轴压缩下增加,并在横向减压下保持不变。应激诱导的体积菌株控制渗透性变化,所提出的模型可以准确地描述三轴压缩下渗透性和体积应变之间的关系。结果为密封能力的理论和实验分析提供了密封能力的理论和实验分析。

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  • 来源
    《Bulletin of engineering geology and the environment》 |2021年第10期|7847-7863|共17页
  • 作者单位

    East China Univ Technol Sch Civil & Architectural Engn Nanchang 330013 Jiangxi Peoples R China|Univ Lille FRE 2016 LaMcube Lab Mecan Multiphys Multiechelle CNRS Cent Lille F-59000 Lille France;

    Northeastern Univ Coll Resources & Civil Engn Minist Educ Safe Min Deep Met Mines Key Lab Shenyang 110819 Peoples R China;

    Northeastern Univ Coll Resources & Civil Engn Minist Educ Safe Min Deep Met Mines Key Lab Shenyang 110819 Peoples R China|Univ Lille FRE 2016 LaMcube Lab Mecan Multiphys Multiechelle CNRS Cent Lille F-59000 Lille France;

    Northeastern Univ Coll Resources & Civil Engn Minist Educ Safe Min Deep Met Mines Key Lab Shenyang 110819 Peoples R China|Univ Lille FRE 2016 LaMcube Lab Mecan Multiphys Multiechelle CNRS Cent Lille F-59000 Lille France;

    Northeastern Univ Coll Resources & Civil Engn Minist Educ Safe Min Deep Met Mines Key Lab Shenyang 110819 Peoples R China|Univ Lille FRE 2016 LaMcube Lab Mecan Multiphys Multiechelle CNRS Cent Lille F-59000 Lille France;

    Anhui Univ Sci & Technol Coll Energy & Safety Huainan 232001 Anhui Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Permeability; Stress paths; Tight sandstone; Hydromechanical coupling; Triaxial compression; Lateral decompression;

    机译:渗透率;应力路径;紧密砂岩;流体力学耦合;三轴压缩;横向减压;

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