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Multiscale method for characterization of porous microstructures and their impact on macroscopic effective permeability

机译:表征多孔微结构的多尺度方法及其对宏观有效渗透率的影响

摘要

Recent technology advancements on X-ray computed tomography (X-ray CT) offer a nondestructive approach to extract complex three-dimensional geometries with details as small as a few microns in size. This new technology opens the door to study the interplay between microscopic properties (e.g. porosity) and macroscopic fluid transport properties (e.g. permeability). To take full advantage of X-ray CT, we introduce a multiscale framework that relates macroscopic fluid transport behavior not only to porosity but also to other important microstructural attributes, such as occluded/connected porosity and geometrical tortuosity, which are extracted using new computational techniques from digital images of porous materials. In particular, we introduce level set methods, and concepts from graph theory, to determine the geometrical tortuosity and connected porosity, while using a lattice Boltzmann/finite element scheme to obtain homogenized effective permeability at specimen-scale. We showcase the applicability and efficiency of this multiscale framework by two examples, one using a synthetic array and another using a sample of natural sandstone with complex pore structure.
机译:X射线计算机断层摄影(X射线CT)的最新技术进步提供了一种无损方法来提取复杂的三维几何体,其细节小至几微米。这项新技术为研究微观性质(例如孔隙度)和宏观流体传输性质(例如渗透率)之间的相互作用打开了大门。为了充分利用X射线CT,我们引入了一个多尺度框架,该框架将宏观流体传输行为不仅与孔隙率相关,而且还与其他重要的微观结构属性(例如,闭塞/连通的孔隙率和几何曲折性)相关联,这些属性是使用新的计算技术提取的来自多孔材料的数字图像。特别是,我们引入了水平集方法和图论的概念来确定几何曲折度和连通孔隙度,同时使用格子Boltzmann /有限元方案在样本规模上获得均质的有效渗透率。我们通过两个示例展示了这种多尺度框架的适用性和效率,一个示例使用合成阵列,另一个示例使用具有复杂孔隙结构的天然砂岩样品。

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