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Understanding fluid transport through the multiscale pore network of a natural shale

机译:了解天然页岩的多尺度孔隙网络中的流体传输

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The pore structure of a natural shale is obtained by three imaging means. Micro-tomography results are extended to provide the spatial arrangement of the minerals and pores present at a voxel size of 700 nm (the macroscopic scale). FIB/SEM provides a 3D representation of the porous clay matrix on the so-called mesoscopic scale (10-20 nm); a connected pore network, devoid of cracks, is obtained for two samples out of five, while the pore network is connected through cracks for two other samples out of five. Transmission Electron Microscopy (TEM) is used to visualize the pore space with a typical pixel size of less than 1 nm and a porosity ranging from 0.12 to 0.25. On this scale, in the absence of 3D images, the pore structure is reconstructed by using a classical technique, which is based on truncated Gaussian fields. Permeability calculations are performed with the Lattice Boltzmann Method on the nanoscale, on the mesoscale, and on the combination of the two. Upscaling is finally done (by a finite volume approach) on the bigger macroscopic scale. Calculations show that, in the absence of cracks, the contribution of the nanoscale pore structure on the overall permeability is similar to that of the mesoscale. Complementarily, the macroscopic permeability is measured on a centimetric sample with a neutral fluid (ethanol). The upscaled permeability on the macroscopic scale is in good agreement with the experimental results.
机译:天然页岩的孔隙结构是通过三种成像手段获得的。扩展了显微断层照相术的结果,以提供体素大小为700 nm(宏观尺度)下存在的矿物和孔隙的空间排列。 FIB / SEM以所谓的介观尺度(10-20 nm)提供了多孔粘土基质的3D表示。五分之二的样品获得了无裂纹的连通孔网络,而五分之二的样品则通过裂纹连接了孔网络。透射电子显微镜(TEM)用于显示孔隙空间,其典型像素尺寸小于1 nm,孔隙率范围为0.12至0.25。在这种规模下,在没有3D图像的情况下,可使用基于截断的高斯场的经典技术重建孔结构。渗透率的计算是用莱迪思·玻尔兹曼方法在纳米尺度,中尺度和两者的结合上进行的。最终,放大(通过有限体积方法)在更大的宏观尺度上进行。计算表明,在不存在裂纹的情况下,纳米级孔结构对总渗透率的贡献与中尺度相似。补充地,使用中性流体(乙醇)在厘米样品上测量宏观渗透率。宏观尺度上的渗透率与实验结果吻合良好。

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