4.6 Article

Fractal characteristics and theirs influence on methane adsorption in high-rank coals with NMR

Journal

FRONTIERS IN EARTH SCIENCE
Volume 10, Issue -, Pages -

Publisher

FRONTIERS MEDIA SA
DOI: 10.3389/feart.2022.1047557

Keywords

nuclear magnetic resonance; fractal dimension; coalbed methane; adsorption; coal pore structure

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In this study, the pore structure characteristics of 11 fresh coal samples from the Zhina coalfield in South China were analyzed using low-temperature liquid-nitrogen adsorption (LP-N(2)A) measurements. The fractal dimensions of different types of pores were obtained through nuclear magnetic resonance (NMR) and their effects on CH4 adsorption were discussed.
To further understand the pore structure characteristics and their effect on CH4 adsorption capacity for high-rank coals. Based on 11 fresh coal samples from the Zhina coalfield of South China. We analyzed the pore structure characteristics of coal samples by low-temperature liquid-nitrogen adsorption (LP-N(2)A) measurements. On the basis of nuclear magnetic resonance (NMR), we obtained the fractal dimensions of different types of pores by the new model, studied the relationship between the fractal dimensions, and the characteristic parameters of coals (composition and pore characteristics) and discussed the influence of the fractal dimensions on CH4 adsorption. The results show that according to LP-N(2)A isotherms, all coals can be classified into three types. The micropores provide the largest proportion of the specific surface area (SSA) of coals. Two fractal dimensions, D-a (adsorption pore) and D-s (seepage pore), ranged from 2.471 to 2.805 and from 2.812 to 2.976, which were acquired in the saturated water condition by NMR. Furthermore, D-a and D-s have different correlations with ash yield, carbon contents, moisture, SSA and irreducible fluid porosity. The coal composition and pore parameters have much greater control over fractal dimensions. Moreover, the different fractal dimensions have different influences on methane adsorption. With the increase of D-a, the methane adsorption capacity is enhanced, but it is weakened with the increase of D-s. The high-rank coals have more SSA with higher D-a and provide more adsorption sites for CH4. Langmuir pressure P-L has different correlations with fractal dimensions. D-a decreases with the increase of P-L. The adsorption velocity is faster with higher D-a. Thus, the fractal dimensions are the comprehensive reflection of differences among the physical properties of coal and are able to show the effect of coal properties on methane adsorption fully.

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