首页> 外文期刊>Journal of porous media >FAST AND INEXPENSIVE 2D-MICROGRAPH BASED METHOD OF PERMEABILITY ESTIMATION THROUGH MICRO-MACRO COUPLING IN POROUS MEDIA
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FAST AND INEXPENSIVE 2D-MICROGRAPH BASED METHOD OF PERMEABILITY ESTIMATION THROUGH MICRO-MACRO COUPLING IN POROUS MEDIA

机译:通过多孔介质微型宏耦合的快速廉价的2D显微照片基于微型透视估算方法

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摘要

The closure formulation, developed as a part of the derivation of Darcy's law proposed by Whitaker (1998), is used to develop a method based on two-dimensional (2D) micrographs for estimating the full in-plane (2D) permeability tensor of a porous medium without requiring multiple flow simulations in different directions. The governing equations were solved in the pore space of a representative elementary volume (REV) using the finite-element (FE) method via COMSOL Multiphysics software. The permeabilities of two distinct porous media created from cellulose nanofibers (CNF) and sintered polymer beads were then estimated numerically. In order to use real micrographs in such simulations, scanning electron microscopy (SEM) pictures of the CNF and polymer-wick porous media were considered. The mesh-size independence studies were conducted to find the appropriate FE mesh for computations. A falling-head permeameter was used for measuring the experimental permeability in order to test the accuracy of the permeability results obtained by numerical simulation. Unequal diagonal terms of the permeability tensor pointed to the presence of anisotropicity in CNF; such characterization is a benefit of the proposed method. A good agreement between the numerical permeability results and the experimental results confirmed the accuracy of the proposed micro-macro coupling based method in estimating this crucial property using 2D micrographs. This 2D closure formulation based permeability estimation, which is faster, less expensive, and less troublesome than its three-dimensional (3D) counterpart, has the potential to emerge as a powerful characterization tool in the arsenal of porous-media scientists and researchers.
机译:作为Whitaker(1998)提出的达西法律推导的封闭制剂用于开发基于二维(2D)显微照片的方法,用于估计A的完整内部(2D)渗透性张量多孔介质而不需要在不同方向上进行多个流模拟。通过COMSOL Multiphysics软件使用有限元(FE)方法,在代表性基本体积(REV)的孔隙空间中解决了控制方程。然后在数值上估计由纤维素纳米纤维(CNF)和烧结聚合物珠粒产生的两个不同多孔介质的渗透率。为了在这种模拟中使用真实显微照片,考虑了CNF和聚合物 - 芯晶体介质的扫描电子显微镜(SEM)图像。进行网格尺寸的独立性研究以查找适当的FE网格以供计算。用于测量实验渗透率的下降头渗透率,以便测试通过数值模拟获得的渗透率结果的准确性。渗透性张量的不平等对角线术语指向CNF中各向异性的存在;这种表征是所提出的方法的好处。数值渗透率和实验结果之间的良好一致性证实了使用2D显微照片估计该关键性的基于微型宏耦合的方法的准确性。这种基于闭合配方的渗透率估计,比其三维(3D)对应更快,更便宜,更令人难以困扰,并且具有潜力在多孔媒体科学家和研究人员的阿森纳成为强大的表征工具。

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