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Cleat structure analysis and permeability simulation of coal samples based on micro-computed tomography (micro-CT) and scan electron microscopy (SEM) technology

机译:基于微计算机断层扫描(微型CT)的煤样和扫描电子显微镜(SEM)技术的煤样结构分析及渗透性模拟

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摘要

Coal has been playing an important role as a valuable source of energy for many years. In turn, gas production from coal reservoirs is a modern development and coal bed methane (CBM), also known as coal seam gas (CSG), is attracting global attention due to its wide occurrence and benefits for the environment as opposed to the conventional energy sources. Developing coal bed methane reservoirs requires better understanding of the flow behaviours of gas and liquids in cleats and analysis of possible contribution of pores to the flow. This paper describes the implementation of micro computed tomography (micro-CT) and scan electron microscopy (SEM) techniques for analysis of coal samples. Intermediate rank coal samples used in this study were collected from Southern Qinshui Basin (China). In the course of the described research, coal samples were scanned, processed and segmented to study the cleat spacing and permeability. Due to the partial volume effect, the resolution of cleats needed improvement which was achieved by subvoxel processing using a novel algorithm as explained in detail in the paper. Permeability was obtained through simulation of one phase flow using Lattice Boltzmann method (LBM). The results show that the simulated permeability is comparable to the analytical approximation. The subvoxel processing has proved an effective method of overcoming the partial volume effect for the low resolution micro-CT images.
机译:煤炭多年来一直在发挥重要作用作为宝贵的能源来源。反过来,煤炭储层的天然气生产是一种现代化的开发和煤层(CBM),也称为煤层气(CSG),由于其对环境的广泛发生和益处而导致全球引起全球关注,而不是传统能源来源。开发煤层甲烷储层需要更好地了解煤气和液体的流动行为,并分析毛孔对流动的可能贡献。本文介绍了微计算机断层扫描(Micro-CT)和扫描电子显微镜(SEM)技术的实现,用于分析煤样。本研究中使用的中间排行煤样品从秦水盆地南部(中国)收集。在所述研究的过程中,扫描,加工和分段扫描,加工和分割以研究凝胶间距和渗透性。由于部分体积效应,通过使用新颖算法在纸张中详细说明的新算法,通过子痫加工来实现的凝固性所需的改进。通过使用晶格Boltzmann方法(LBM)模拟一种相流来获得渗透率。结果表明,模拟渗透率与分析近似相当。 Subvoxel处理已经证明了一种克服低分辨率微CT图像的部分体积效应的有效方法。

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