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Evaluation of Microstructure and Transport Properties of Deteriorated Cementitious Materials from Their X-ray Computed Tomography (CT) Images

机译:从X射线计算机断层扫描(CT)图像评估退化的胶凝材料的微观结构和传输特性

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摘要

Pore structure, tortuosity and permeability are considered key properties of porous materials such as cement pastes to understand their long-term durability performance. Three-dimensional image analysis techniques were used in this study to quantify pore size, effective porosity, tortuosity, and permeability from the X-ray computed tomography (CT) images of deteriorated pastes that were subjected to accelerated leaching test. X-ray microtomography is a noninvasive three-dimensional (3D) imaging technique which has been recently gaining attention for material characterization. Coupled with 3D image analysis, the digitized pore can be extracted and computational simulation can be applied to the pore network to measure relevant microstructure and transport properties. At a spatial resolution of 0.50 μm, the effective porosity (φe) was found to be in the range of 0.04 to 0.33. The characteristic pore size (d) using a local thickness algorithm was found to be in the range of 3 to 7 μm. The geometric tortuosity (τg) based on a 3D random walk simulation in the percolating pore space was found to be in the range of 2.00 to 7.45. The water permeability values (K) using US NIST Permeability Stokes Solver range from an order of magnitudes of 10−14 to 10−17 m2. Indications suggest that as effective porosity increases, the geometric tortuosity increases and the permeability decreases. Correlation among these microstructure and transport parameters is also presented in this study.
机译:孔隙结构,曲折度和渗透性被认为是多孔材料(例如水泥浆)的关键特性,以了解其长期耐久性能。这项研究中使用了三维图像分析技术,通过对经过加速浸出测试的变质糊状物的X射线计算机断层扫描(CT)图像进行定量分析,确定孔径,有效孔隙率,曲折度和渗透率。 X射线显微断层照相术是一种非侵入性的三维(3D)成像技术,最近在材料表征方面受到关注。结合3D图像分析,可以提取数字化的孔隙,并将计算仿真应用于孔隙网络,以测量相关的微观结构和传输特性。在0.50μm的空间分辨率下,发现有效孔隙率(φe)在0.04至0.33的范围内。发现使用局部厚度算法的特征孔径(d)在3至7μm的范围内。发现基于3D随机游走模拟的渗透孔空间中的几何曲折度(τg)在2.00至7.45的范围内。使用US NIST渗透率斯托克斯求解器的水渗透率值(K)范围从10 −14 到10 −17 m 2 。迹象表明,随着有效孔隙度的增加,几何曲折度增加,渗透率降低。这些微观结构和传输参数之间的相关性也在本研究中提出。

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