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Construction of Buertai Coal Macromolecular Model and GCMC Simulation of Methane Adsorption in Micropores

[Image: see text] With the increase in high gas mines in the low coal rank mining area in the northwestern part of China, high gas mines in the low-rank coal mining area have caused many gas emission accidents. Coal is a porous material, containing a large number of micropores (<2 nm), which can...

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Autores principales: Yang, Zhiyuan, Yin, Zhiqiang, Xue, Wenying, Meng, Zhuoyue, Li, Yinyan, Long, Jiang, Wang, Jizhen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153943/
https://www.ncbi.nlm.nih.gov/pubmed/34056272
http://dx.doi.org/10.1021/acsomega.0c04649
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author Yang, Zhiyuan
Yin, Zhiqiang
Xue, Wenying
Meng, Zhuoyue
Li, Yinyan
Long, Jiang
Wang, Jizhen
author_facet Yang, Zhiyuan
Yin, Zhiqiang
Xue, Wenying
Meng, Zhuoyue
Li, Yinyan
Long, Jiang
Wang, Jizhen
author_sort Yang, Zhiyuan
collection PubMed
description [Image: see text] With the increase in high gas mines in the low coal rank mining area in the northwestern part of China, high gas mines in the low-rank coal mining area have caused many gas emission accidents. Coal is a porous material, containing a large number of micropores (<2 nm), which can absorb large amounts of methane, so it is necessary to explore methane adsorption in micropores of low-rank coal. In this work, FTIR, HRTEM, and (13)C-NMR were used to test the macromolecular structural parameters of Buertai coal, which was a kind of low-rank Jurassic coal in northwestern China. The results showed that the aromatic structural units in the Buertai coal structure mainly consist of naphthalene, anthracene, and phenanthrene. The fat structure mainly occurs in the form of aliphatic side chains, cycloalkanes, and other compounds. The oxygen atoms are present in the form of carbonyl groups, ether bonds, and phenol groups with a ratio of about 6:4:9. The nitrogen atoms are present in the form of pyrrole and pyridine compounds. Finally, the macromolecular structure model of Buertai coal was built, and the calculated NMR spectrum from the model was very consistent with the experimental NMR spectrum of Buertai coal. The relationship between the macromolecular density and energy of Buertai coal was explored using the Amorphous Cell module in the simulation software, Materials Studios 8.0 (MS 8.0), and the density value at the lowest energy was determined to be about 1.23 g/cm(3). The pore structure parameters of Buertai coal were also calculated. It was found that both pore volume and void fraction decreased evenly as the diameter of the probe molecule increased, but the surface area decreased rapidly when the diameter of the probe molecule was 3.46 Å. All pore sizes were found to be smaller than 10 Å from the pore size distribution (PSD) curve of Buertai coal, which provided a lot of adsorption sites for methane (CH(4)). The results of the CH(4) adsorption simulation from Grand Canonical Monte Carlo (GCMC) showed that CH(4) is adsorbed inside the micropores of coal, and the adsorption capacity of CH(4) depends on the diameters of micropores when the micropores are less than 8.5 Å. There are many micropores where CH(4) did not appear because these micropores are closed and did not provide a channel for CH(4) to enter. The results of experimental methane adsorption indicate that the excess adsorption capacity from the GCMC simulation was very close to the experimental results of Buertai coal. This work provides a new perspective to study the methane adsorption behavior in micropores of coal.
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spelling pubmed-81539432021-05-27 Construction of Buertai Coal Macromolecular Model and GCMC Simulation of Methane Adsorption in Micropores Yang, Zhiyuan Yin, Zhiqiang Xue, Wenying Meng, Zhuoyue Li, Yinyan Long, Jiang Wang, Jizhen ACS Omega [Image: see text] With the increase in high gas mines in the low coal rank mining area in the northwestern part of China, high gas mines in the low-rank coal mining area have caused many gas emission accidents. Coal is a porous material, containing a large number of micropores (<2 nm), which can absorb large amounts of methane, so it is necessary to explore methane adsorption in micropores of low-rank coal. In this work, FTIR, HRTEM, and (13)C-NMR were used to test the macromolecular structural parameters of Buertai coal, which was a kind of low-rank Jurassic coal in northwestern China. The results showed that the aromatic structural units in the Buertai coal structure mainly consist of naphthalene, anthracene, and phenanthrene. The fat structure mainly occurs in the form of aliphatic side chains, cycloalkanes, and other compounds. The oxygen atoms are present in the form of carbonyl groups, ether bonds, and phenol groups with a ratio of about 6:4:9. The nitrogen atoms are present in the form of pyrrole and pyridine compounds. Finally, the macromolecular structure model of Buertai coal was built, and the calculated NMR spectrum from the model was very consistent with the experimental NMR spectrum of Buertai coal. The relationship between the macromolecular density and energy of Buertai coal was explored using the Amorphous Cell module in the simulation software, Materials Studios 8.0 (MS 8.0), and the density value at the lowest energy was determined to be about 1.23 g/cm(3). The pore structure parameters of Buertai coal were also calculated. It was found that both pore volume and void fraction decreased evenly as the diameter of the probe molecule increased, but the surface area decreased rapidly when the diameter of the probe molecule was 3.46 Å. All pore sizes were found to be smaller than 10 Å from the pore size distribution (PSD) curve of Buertai coal, which provided a lot of adsorption sites for methane (CH(4)). The results of the CH(4) adsorption simulation from Grand Canonical Monte Carlo (GCMC) showed that CH(4) is adsorbed inside the micropores of coal, and the adsorption capacity of CH(4) depends on the diameters of micropores when the micropores are less than 8.5 Å. There are many micropores where CH(4) did not appear because these micropores are closed and did not provide a channel for CH(4) to enter. The results of experimental methane adsorption indicate that the excess adsorption capacity from the GCMC simulation was very close to the experimental results of Buertai coal. This work provides a new perspective to study the methane adsorption behavior in micropores of coal. American Chemical Society 2021-04-20 /pmc/articles/PMC8153943/ /pubmed/34056272 http://dx.doi.org/10.1021/acsomega.0c04649 Text en © 2021 American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Yang, Zhiyuan
Yin, Zhiqiang
Xue, Wenying
Meng, Zhuoyue
Li, Yinyan
Long, Jiang
Wang, Jizhen
Construction of Buertai Coal Macromolecular Model and GCMC Simulation of Methane Adsorption in Micropores
title Construction of Buertai Coal Macromolecular Model and GCMC Simulation of Methane Adsorption in Micropores
title_full Construction of Buertai Coal Macromolecular Model and GCMC Simulation of Methane Adsorption in Micropores
title_fullStr Construction of Buertai Coal Macromolecular Model and GCMC Simulation of Methane Adsorption in Micropores
title_full_unstemmed Construction of Buertai Coal Macromolecular Model and GCMC Simulation of Methane Adsorption in Micropores
title_short Construction of Buertai Coal Macromolecular Model and GCMC Simulation of Methane Adsorption in Micropores
title_sort construction of buertai coal macromolecular model and gcmc simulation of methane adsorption in micropores
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153943/
https://www.ncbi.nlm.nih.gov/pubmed/34056272
http://dx.doi.org/10.1021/acsomega.0c04649
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