Nanopore structure and surface roughness in brittle tectonically deformed coals explored by atomic force microscopy

被引:0
|
作者
Zhang N. [1 ]
Yao S. [1 ]
机构
[1] Key Laboratory of Surficial Geochemistry, Ministry of Education, School of Earth Sciences and Engineering, Nanjing University, Nanjing
关键词
atomic force microscopy; brittle deformation; pore size distribution; pore structure; surface roughness; tectonically deformed coal;
D O I
10.12363/issn.1001-1986.21.09.0500
中图分类号
学科分类号
摘要
The pore structure of coal is the key to coalbed methane (CBM) exploration and exploitation, and coal mining safety. Compared to primary coals, tectonically deformed coals (TDCs) have stronger heterogeneity and are of great importance in coal reservoir study. Here, the pore structure and surface roughness of brittle TDCs were obtained with atomic force microscopy (AFM) and NanoScope Analysis and Gwyddion software. The results show that tectonic deformation generally promotes the pore development in brittle TDCs, but the extent of tectonic impact varies greatly among different brittle TDCs. As a result, two stages in brittle TDCs were identified: weak brittle deformation stage (primary coal, cataclastic coal, schistose coal and mortar coal) and strong brittle deformation stage (mortar coal, granulitic coal and flaky coal). In the weak brittle deformation stage, tectonic stress has little impact on coals’ pore structure. The mean pore number increases slowly and the mean pore size decreases slowly. In this stage, the tectonic process mainly promotes the development of 100-200 nm macropores. In the strong brittle deformation stage, tectonic stress has a major impact on coals’ pore structure. The mean pore number increases quickly and the mean pore size decreases quickly. The tectonic process in this stage mainly promotes the development of mesopores of 10-50 nm and macropores of 50-100 nm. The two different tectonic stages demonstrate that the whole brittle TDCs do not evolve linearly with tectonic deformation. The arithmetical average height (Ra) and root-mean-square (Rq) roughness are 3.00-6.05 nm and 3.94-7.62 nm respectively. The weak brittle TDCs’ Ra and Rq fluctuate slightly, while the strong brittle TDCs’ Ra and Rq decrease fast. A mathematical model of the morphology of pores in the coal surface was established based on AFM sectional analysis. The Ra simulation of coal samples based on this model shows that pores of larger diameter are mainly responsible for surface roughness. Ra and Rq of coal samples are controlled mainly by nanopore development during tectonic deformation. © 2022 Science Press. All right reserved.
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页码:32 / 42
页数:10
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共 30 条
  • [1] LI Ming, Structure evolution and deformation mechanism of tectonically deformed coal, (2013)
  • [2] REN Jiangang, SONG Zhimin, Bing LI, Et al., Structure feature and evolution mechanism of pores in different metamorphism and deformation coals[J], Fuel, 283, (2021)
  • [3] ZHU Haitao, Study on the microstructure of different metamorphic deformed coal based on AFM, (2014)
  • [4] ZHANG Ruigang, FANG Litao, HU Bo, Et al., Tectonic coal structure and pore characteristics of Zhuxianzhuang mine[J], Coal Geology & Exploration, 43, 4, (2015)
  • [5] ZHANG Xiaohui, The fine characterization of pore structure of tectonically deformed coals from Hancheng mining area on multiscale, (2014)
  • [6] Yuanping CHENG, Zhejun PAN, Reservoir properties of Chinese tectonic coal:A review[J], Fuel, 260, (2020)
  • [7] YAO Yupeng, Physical properties of brittle deformation series tectonically defromed coal and quantitative characterization of its structure, (2017)
  • [8] DONG Kui, JIA Jiancheng, GONG Zewen, Et al., Study on pore structure and pressure–sensitive effect of tectonic coal in Huaibei Xutuan mine[J], Coal Geology & Exploration, 47, 2, pp. 58-65, (2019)
  • [9] GAO Bin, HUANG Huazhou, NING Na, Et al., Pore size characteristics of tectonic coal and its influence on gas bearing properties[J], Coal Geology & Exploration, 46, 5, (2018)
  • [10] Jienan PAN, Haitao ZHU, Quanlin HOU, Et al., Macromolecular and pore structures of Chinese tectonically deformed coal studied by atomic force microscopy[J], Fuel, 139, (2015)