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In-situ synchrotron characterisation of fracture initiation and propagation in shales during indentation

机译:原位同步缩进在缩进期间骨折启动和传播的同步

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摘要

The feasibility and advantages of synchrotron imaging have been demonstrated to effectively characterise fracture initiation and propagation in shales during indentation tests. These include 1) fast (minute-scale) and high-resolution (μm-scale) imaging of fracture initiation, 2) concurrent spatial and temporal information (4D) about fracture development, 3) quantification and modelling of shale deformation prior to fracture. Imaging experiments were performed on four shale samples with different laminations and compositions in different orientations, representative of three key variables in shale microstructure. Fracture initiation and propagation were successfully captured in 3D over time, and strain maps were generated using digital volume correlation (DVC). Subsequently, post-experimental fracture geometries were characterised at nano-scale using complementary SEM imaging. Characterisation results highlight the influence of microstructural and anisotropy variations on the mechanical properties of shales. The fractures tend to kink at the interface of two different textures at both macroscale and microscale due to deformation incompatibility. The average composition appears to provide the major control on hardness and fracture initiation load; while the material texture and the orientation of the indentation to bedding combine to control the fracture propagation direction and geometry. This improved understanding of fracture development in shales is potentially significant in the clean energy applications.
机译:已经证明了同步rotron成像的可行性和优点是在压痕试验期间有效地表征骨折引发和繁殖中的繁殖。这些包括1)快速(微调)和断裂引发的高分辨率(μm级)成像,2)关于断裂发育的同时的空间和时间信息(4d),3)裂缝前的页岩变形量化和建模。对四个页岩样品进行成像实验,其具有不同层压的不同叠片和组合物,具有不同取向的组成,代表页岩微观结构的三个关键变量。随着时间的推移,在3D中成功捕获裂缝启动和传播,并使用数字体积相关(DVC)产生应变映射。随后,使用互补SEM成像以纳米级表征实验后骨折几何形状。特征结果突出了微观结构和各向异性变化对节的力学性能的影响。由于变形不相容,裂缝倾向于在宏观和微观尺寸的两种不同纹理的界面处扭结。平均组成似乎为硬度和断裂引发负荷提供了主要的控制;虽然材料纹理和压痕到床上用品的定向组合以控制裂缝传播方向和几何形状。这种改善了对岩石骨折发育的理解在清洁能源应用中是可能的显着性。

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  • 来源
    《Energy》 |2021年第2期|119161.1-119161.11|共11页
  • 作者单位

    Department of Chemical Engineering and Analytic Sciences The University of Manchester Oxford Road Manchester M13 9PL UK;

    Centrale Nantes Institut de Recherche en Genie Civil et Mecanique (GeM) - UMR CNRS 6183 1 Rue de La Noe 44321 Nantes Cedex 3 France;

    Department of Earth and Environmental Sciences The University of Manchester Oxford Road Manchester M13 9PL UK;

    Department of Earth and Environmental Sciences The University of Manchester Oxford Road Manchester M13 9PL UK;

    Department of Earth and Environmental Sciences The University of Manchester Oxford Road Manchester M13 9PL UK;

    Department of Earth and Environmental Sciences The University of Manchester Oxford Road Manchester M13 9PL UK;

    UCL Mechanical Engineering Torrington Place London WC1E 7JE UK Research Complex at Harwell Rutherford Appleton Laboratory Didcot Oxon OX11 OFA UK;

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

    In-situ imaging; Synchrotron characterisation; Fracture initiation; Fracture propagation; 4D; Shale;

    机译:原位成像;同步rotron表征;骨折开始;裂缝繁殖;4D;页岩;

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