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    Impact of Creep Effect on Hydraulic Fracture Long-Term Conductivity in Deep Shale Reservoirs

    Source: Journal of Energy Resources Technology:;2023:;volume( 145 ):;issue: 007::page 73301-1
    Author:
    Ren, Lan
    ,
    Hu, Zheyu
    ,
    Zhao, Jinzhou
    ,
    Lin, Ran
    ,
    Wu, Jianfa
    ,
    Song, Yi
    ,
    Lin, Chen
    DOI: 10.1115/1.4056613
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The main factor contributing to the decline in effective fracture width and conductivity is proppant embedding into the fracture surface. In the deep shale's high-temperature, high-pressure, and high-stress environment, the rheological properties of rock cause proppant embedding to be deeper. Additionally, the effect of hydraulic fracture is difficult to maintain after fracturing, which causes a sharp decline in cumulative production. In this paper, the Hertz contact theory is used to establish a long-term fracture conductivity model that incorporates the two embedding behaviors of proppant elastic deformation and reservoir creep deformation. Through time integration, the variation of long-term fracture conductivity is obtained. The experimental data and the theoretical model agree well. The results show that long-term fracture conductivity gradually decreases as the proppant progresses from the elastic embedding stage to the creep embedding stage. The elastic modulus, viscoelastic coefficient, and particle size significantly impact on the fracture width. The rock's elastic modulus and viscoelastic coefficient have a negligible impact on the long-term fracture conductivity, which is positively correlated with sand concentration, proppant particle size, and elastic modulus. In this research, an accurate and effective analysis model is proposed to quantify the long-term fracture conductivity, reveal the hydraulic fracture closure mechanism of deep shale under high temperature and high stress, and provide technological solutions for long-term maintenance of high conductivity fracture channels, which is useful to increase deep shale production efficiency, lower the production decline rate, and extend the stable production cycle.
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      Impact of Creep Effect on Hydraulic Fracture Long-Term Conductivity in Deep Shale Reservoirs

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4292174
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    contributor authorRen, Lan
    contributor authorHu, Zheyu
    contributor authorZhao, Jinzhou
    contributor authorLin, Ran
    contributor authorWu, Jianfa
    contributor authorSong, Yi
    contributor authorLin, Chen
    date accessioned2023-08-16T18:35:08Z
    date available2023-08-16T18:35:08Z
    date copyright2/6/2023 12:00:00 AM
    date issued2023
    identifier issn0195-0738
    identifier otherjert_145_7_073301.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4292174
    description abstractThe main factor contributing to the decline in effective fracture width and conductivity is proppant embedding into the fracture surface. In the deep shale's high-temperature, high-pressure, and high-stress environment, the rheological properties of rock cause proppant embedding to be deeper. Additionally, the effect of hydraulic fracture is difficult to maintain after fracturing, which causes a sharp decline in cumulative production. In this paper, the Hertz contact theory is used to establish a long-term fracture conductivity model that incorporates the two embedding behaviors of proppant elastic deformation and reservoir creep deformation. Through time integration, the variation of long-term fracture conductivity is obtained. The experimental data and the theoretical model agree well. The results show that long-term fracture conductivity gradually decreases as the proppant progresses from the elastic embedding stage to the creep embedding stage. The elastic modulus, viscoelastic coefficient, and particle size significantly impact on the fracture width. The rock's elastic modulus and viscoelastic coefficient have a negligible impact on the long-term fracture conductivity, which is positively correlated with sand concentration, proppant particle size, and elastic modulus. In this research, an accurate and effective analysis model is proposed to quantify the long-term fracture conductivity, reveal the hydraulic fracture closure mechanism of deep shale under high temperature and high stress, and provide technological solutions for long-term maintenance of high conductivity fracture channels, which is useful to increase deep shale production efficiency, lower the production decline rate, and extend the stable production cycle.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleImpact of Creep Effect on Hydraulic Fracture Long-Term Conductivity in Deep Shale Reservoirs
    typeJournal Paper
    journal volume145
    journal issue7
    journal titleJournal of Energy Resources Technology
    identifier doi10.1115/1.4056613
    journal fristpage73301-1
    journal lastpage73301-12
    page12
    treeJournal of Energy Resources Technology:;2023:;volume( 145 ):;issue: 007
    contenttypeFulltext
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