China Safety Science Journal ›› 2026, Vol. 36 ›› Issue (7): 135-143.doi: 10.16265/j.cnki.issn1003-3033.2026.07.0402

• Safety Technology and Engineering • Previous Articles     Next Articles

Influence of pore-functional group synergy on gas adsorption in coals with different metamorphic degrees

Wu Chunlei1,2(), Shi Bobo1,**(), Li Jia3, Xue Yong2   

  1. 1 School of Safety Engineering, China University of Mining and Technology, Xuzhou Jiangsu 221116, China
    2 School of Atmospheric Physics, Nanjing University of Information Sciences and Technology, Nanjing Jiangsu 210044, China
    3 China Academy of Safety Science and Technology, Beijing 100012, China
  • Received:2026-03-10 Revised:2026-05-12 Online:2026-08-10 Published:2027-01-28
  • Contact: Shi Bobo

Abstract:

To investigate the intrinsic relationship between pore structure, surface functional groups, and adsorption characteristics of O2, N2, and CO2 in coals with different metamorphic degrees, four coal samples including long-flame coal, gas coal, bituminous coal, and anthracite were selected. The microscopic structures were characterized using low-temperature N2/CO2 adsorption, mercury intrusion porosimetry, the Frenkel-Halsey-Hill (FHH) fractal model, and Fourier Transform Infrared Spectroscopy (FTIR). Adsorption experiments of O2, N2, and CO2 were conducted at 20, 30, and 40 ℃ under 0.1-1.0 MPa. The results indicate that micropore volume and specific surface area exhibit a non-monotonic evolution of "decrease-increase-decrease" with increasing coal rank, with bituminous coal (YCW) showing the most developed micropores and highest fractal dimension (2.68). Oxygen-containing functional groups decrease while aromaticity increases with coalification. The adsorption of non-polar gases (O2, N2) is strictly controlled by micropore volume, following the order YCW>XT>DX>TX, whereas the adsorption of polar gas (CO2) is governed by the synergistic "pore-functional group" effect, yielding a distinct order of YCW>TX>XT>DX. All three gases undergo physical adsorption, with isosteric heats following CO2>O2>N2.

Key words: pore structure, fractal dimension, functional group characteristics, gas adsorption, isosteric heat of adsorption, coal metamorphic degree

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