中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Relationship between multiscale nanopore structure and coal connectivity during coalification process

文献类型:期刊论文

作者Shen Z; Meng ZP; Liu Y; Lei JH; Shen WJ(沈伟军); Ren HX; Gao TW; Zhang K; Wang YH; Tan LB
刊名Microporous and Mesoporous Materials
出版日期2023-07
卷号360页码:112717
ISSN号1387-1811
DOI10.1016/j.micromeso.2023.112717
英文摘要

The complex nanopore structures in coal provide the space for gas adsorption and migration, which is crucial for the development of coalbed methane. However, the mechanism of the evolution of multi-scale nanopore structures during coalification is still unclear. In this work, a combined method of CO2/N2 adsorption and synchrotron radiation Nano-CT experiments were used to reveal the multi-scale pore structure characterization during coalification. The synchrotron radiation Nano-CT experiment reconstructed the 3D pore network model for different rank coal and revealed the effective diameter is less than 0.5 μm, accounting for 97.4%–99.6% of the total number of macropores. The combination of these methods, including CO2/N2 adsorption and Nano-CT, accurately characterizes the multi-scale pore distribution in coal, ranging from <2 nm, 2–300 nm and 64 nm - 3.5 μm. The ultra-micropores occupy the primary advantage, accounting for approximately 60.3%–95.2% of the total pore volume and the micropores, mesopores and macropores are more poorly developed than ultra-micropores. During the coalification process, the proportion of porosity contributed by ultra-micropores to the total porosity gradually increases, with the contribution rising by 57.9%. The proportion of porosity contributed by micropores, mesopores and macropores to the total porosity gradually decreases, with the contribution decreasing by 81.0%, 82.8% and 93.6%, respectively. Besides, with growing coal maturity, the total permeability gradually decreases by 9.26 × 10−3 - 3.05 × 10−1 mD, which is negatively correlated with coal maturity during coalification. And the total permeability is mainly provided by macropores, which account for about 99% of the total permeability. This research provides an in-depth understanding of the storage and transport of coalbed methane in a multi-scale nanopore structure.

分类号二类/Q1
语种英语
WOS记录号WOS:001034487800001
源URL[http://dspace.imech.ac.cn/handle/311007/92493]  
专题力学研究所_流固耦合系统力学重点实验室(2012-)
作者单位1.Institute of Mechanics, Chinese Academy of Sciences
2.China University of Mining and Technology (Beijing)
3.Henan Polytechnic University
推荐引用方式
GB/T 7714
Shen Z,Meng ZP,Liu Y,et al. Relationship between multiscale nanopore structure and coal connectivity during coalification process[J]. Microporous and Mesoporous Materials,2023,360:112717.
APA Shen Z.,Meng ZP.,Liu Y.,Lei JH.,Shen WJ.,...&Tan LB.(2023).Relationship between multiscale nanopore structure and coal connectivity during coalification process.Microporous and Mesoporous Materials,360,112717.
MLA Shen Z,et al."Relationship between multiscale nanopore structure and coal connectivity during coalification process".Microporous and Mesoporous Materials 360(2023):112717.

入库方式: OAI收割

来源:力学研究所

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