角质-III 型缝隙模型中甲烷和二氧化碳的竞争吸附和扩散特征

IF 2.1 3区 地球科学 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Jihong Shi, Tao Zhang, Xiaoping Xie, Wei Wei, Liang Gong, Shuyu Sun
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引用次数: 0

摘要

弄清甲烷在角质层中的吸附和扩散特性有助于有效开采页岩气藏。我们完善了角质层 III 系列模型,构建了角质层 III-B 和角质层 III-C 的分子结构。与含有少量有机物的传统简化缝隙模型相比,我们进一步提出了一种混合角质-石英缝隙模型。这些无机-有机模型,包括角质原 II-D、角质原 III-B 和角质原 III-C,为研究页岩气在页岩中的吸附和扩散特性提供了一个真实的储层环境。基于这些模型,我们使用大规范蒙特卡洛(GCMC)方法研究了甲烷和二氧化碳的竞争吸附。然后,我们使用分子动力学(MD)方法研究了甲烷分子在整个模型区域和不同吸附块(分为内缝区、表面区和基质区)中的扩散特性。结果表明,随着二氧化碳注入压力的增加,二氧化碳会逐渐取代甲烷分子,从而引起甲烷的解吸和扩散。甲烷在角质层缝隙模型中的整体扩散能力顺序为角质层 II-D >kerogen III-C >角质层 III-B。此外,甲烷分子在不同区域的扩散能力顺序为内缝区 >表面区 >基质区。这项工作为更有效地开采页岩气迈出了一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterizing competitive adsorption and diffusion of methane and carbon dioxide in kerogen type-III slit model

Clarifying methane’s adsorption and diffusion properties in kerogen contributes to efficiently exploiting shale gas reservoirs. We refined the kerogen III-series model to construct the kerogen III-B and kerogen III-C molecular structures. In contrast to the traditional simplified slit model containing small organic matter, a mixed kerogen-quartz slit model was further proposed. These inorganic-organic models, including kerogen II-D, kerogen III-B, and kerogen III-C, provide a realistic reservoir environment for the study of the shale gas adsorption and diffusion characteristics in shale. Based on these models, we investigated the competitive adsorption of methane and carbon dioxide using the grand canonical Monte Carlo (GCMC) method. We then studied the diffusion characteristics of methane molecules throughout the model area and in the different adsorption blocks classified as the inner slit zone, surface zone, and matrix zone using the molecular dynamics (MD) method. The results showed that carbon dioxide gradually replaces methane molecules as the injection pressure of carbon dioxide increases, causing desorption and diffusion of methane. The order of the overall diffusion capability of methane in the kerogen slit models is kerogen II-D >kerogen III-C >kerogen III-B. In addition, the diffusion capability of methane molecules in the different zones is ordered as inner slit zone >surface zone >matrix zone. This work is a step towards more effective exploitation of shale gas.

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来源期刊
Computational Geosciences
Computational Geosciences 地学-地球科学综合
CiteScore
6.10
自引率
4.00%
发文量
63
审稿时长
6-12 weeks
期刊介绍: Computational Geosciences publishes high quality papers on mathematical modeling, simulation, numerical analysis, and other computational aspects of the geosciences. In particular the journal is focused on advanced numerical methods for the simulation of subsurface flow and transport, and associated aspects such as discretization, gridding, upscaling, optimization, data assimilation, uncertainty assessment, and high performance parallel and grid computing. Papers treating similar topics but with applications to other fields in the geosciences, such as geomechanics, geophysics, oceanography, or meteorology, will also be considered. The journal provides a platform for interaction and multidisciplinary collaboration among diverse scientific groups, from both academia and industry, which share an interest in developing mathematical models and efficient algorithms for solving them, such as mathematicians, engineers, chemists, physicists, and geoscientists.
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