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Characterization of nanopore morphology of shale and its effects on gas permeability

机译:页岩纳米孔形态的表征及其对瓦斯渗透性的影响

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From a microscopic point of view, nano-scale pores are dominant in shale matrix, which provide transport space for natural gas. Accordingly, a pore-scale modeling, which can accurately capture the complex pore morphology and its effects on gas flow behavior, is crucial for understanding the gas transport mechanisms in shale matrix. In this study, the focused ion beam-scanning electron microscope (FIB-SEM) technique was employed to observe and characterize the morphology of the nanopores in shale. Based on the morphology characterizations, three representative porous models (i.e. intergranular pore model, micro-crack model and "honeycomb" pore model) were proposed and generated by numerical methods. The high-Knudsen gas flows in these generated structures were simulated by the lattice Boltzmann method (LBM). A comparison of the simulation results among these three porous models suggests that the nano-scale pore morphology plays an important role in the gas transport properties. Moreover, the high-Knudsen effect leads to a larger apparent permeability for each nano-scale porous model. Our work indicates the importance of the nano-scale pore morphology and the high-Knudsen effect on gas transport properties of shale matrix. (c) 2017 Elsevier B.V. All rights reserved.
机译:从显微角度来看,纳米尺寸孔隙在页岩基质中占主导地位,为天然气提供运输空间。因此,可以精确地捕获复杂孔形态的孔径建模及其对气流行为的影响,对于理解页岩基质中的气体传输机制至关重要。在该研究中,使用聚焦离子束扫描电子显微镜(FIB-SEM)技术观察和表征页岩中纳米孔的形态。基于形态学特征,提出并通过数值方法提出并产生了三种代表性多孔模型(即骨间孔模型,微裂纹模型和“蜂窝”孔模型)。这些产生的结构中的高knudsen气体通过晶格Boltzmann方法(LBM)模拟。这三种多孔模型中的模拟结果的比较表明,纳米尺度孔形态在气体运输特性中起重要作用。此外,高knudsen效应导致每个纳米级多孔模型的表观渗透性更大。我们的作品表明了纳米尺度孔隙形态的重要性以及对页岩基质的气体运输性能的高卷曲作用。 (c)2017 Elsevier B.v.保留所有权利。

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