Fangxuan Chen, Guang Ji, Dewei Meng, Guoting Wang, Naichao Feng, Shuai Zheng, Suqi Huang*, Xiaomin Shi and Yanrong Li,
{"title":"裂隙-孔隙模型中深层煤层气吸附特征及产气机理的分子研究","authors":"Fangxuan Chen, Guang Ji, Dewei Meng, Guoting Wang, Naichao Feng, Shuai Zheng, Suqi Huang*, Xiaomin Shi and Yanrong Li, ","doi":"10.1021/acsomega.5c04400","DOIUrl":null,"url":null,"abstract":"<p >More than 50% of global coalbed methane (CBM) resources are estimated to reside in deep coal seams (depth >1500 m). The CBM retained in deep coal seams has higher free gas content with less formation water compared to the CBM in shallow coal seams, leading to different production methods. Current research has primarily addressed the shallow CBM extraction, with limited transferability to deep CBM (DCBM) reservoirs due to the distinct reservoir characteristics and occurrence state. In this work, we developed a slit-pore model to investigate the adsorption behaviors and production mechanisms of DCBM using molecular dynamics simulations. The slit-pore model includes a micropore, a macropore, and a fracture/cleat to simulate the flow unit of anthracite. We analyzed the adsorption patterns at different production stages and quantitatively evaluated the production performance of pressure-relief production and pressure-control production. DCBM components (CH<sub>4</sub>, C<sub>2</sub>H<sub>6</sub>, N<sub>2</sub>, and CO<sub>2</sub>) are heterogeneously distributed in the multiscale model, with higher proportions of CH<sub>4</sub>, C<sub>2</sub>H<sub>6</sub>, and CO<sub>2</sub> in the micropore due to the high adsorption affinity and small molecular diameters. CH<sub>4</sub>, C<sub>2</sub>H<sub>6</sub>, and CO<sub>2</sub> exhibit monolayer adsorption in the micropore, and the production methods do not affect the adsorption pattern. Compared to the pressure-relief production, the pressure-control production yields higher DCBM production. The mass transfer from the macropore and the water-blocking effect in the micropore collectively constrain the fluid release from the micropore during pressure-relief production. This work provides a comprehensive understanding of the DCBM adsorption behaviors and production mechanisms.</p>","PeriodicalId":22,"journal":{"name":"ACS Omega","volume":"10 32","pages":"36310–36320"},"PeriodicalIF":4.3000,"publicationDate":"2025-08-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://pubs.acs.org/doi/pdf/10.1021/acsomega.5c04400","citationCount":"0","resultStr":"{\"title\":\"Molecular Insights of Deep Coalbed Methane Adsorption Characteristics and Production Mechanisms in a Slit-Pore Model\",\"authors\":\"Fangxuan Chen, Guang Ji, Dewei Meng, Guoting Wang, Naichao Feng, Shuai Zheng, Suqi Huang*, Xiaomin Shi and Yanrong Li, \",\"doi\":\"10.1021/acsomega.5c04400\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >More than 50% of global coalbed methane (CBM) resources are estimated to reside in deep coal seams (depth >1500 m). The CBM retained in deep coal seams has higher free gas content with less formation water compared to the CBM in shallow coal seams, leading to different production methods. Current research has primarily addressed the shallow CBM extraction, with limited transferability to deep CBM (DCBM) reservoirs due to the distinct reservoir characteristics and occurrence state. In this work, we developed a slit-pore model to investigate the adsorption behaviors and production mechanisms of DCBM using molecular dynamics simulations. The slit-pore model includes a micropore, a macropore, and a fracture/cleat to simulate the flow unit of anthracite. We analyzed the adsorption patterns at different production stages and quantitatively evaluated the production performance of pressure-relief production and pressure-control production. DCBM components (CH<sub>4</sub>, C<sub>2</sub>H<sub>6</sub>, N<sub>2</sub>, and CO<sub>2</sub>) are heterogeneously distributed in the multiscale model, with higher proportions of CH<sub>4</sub>, C<sub>2</sub>H<sub>6</sub>, and CO<sub>2</sub> in the micropore due to the high adsorption affinity and small molecular diameters. CH<sub>4</sub>, C<sub>2</sub>H<sub>6</sub>, and CO<sub>2</sub> exhibit monolayer adsorption in the micropore, and the production methods do not affect the adsorption pattern. Compared to the pressure-relief production, the pressure-control production yields higher DCBM production. The mass transfer from the macropore and the water-blocking effect in the micropore collectively constrain the fluid release from the micropore during pressure-relief production. 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Molecular Insights of Deep Coalbed Methane Adsorption Characteristics and Production Mechanisms in a Slit-Pore Model
More than 50% of global coalbed methane (CBM) resources are estimated to reside in deep coal seams (depth >1500 m). The CBM retained in deep coal seams has higher free gas content with less formation water compared to the CBM in shallow coal seams, leading to different production methods. Current research has primarily addressed the shallow CBM extraction, with limited transferability to deep CBM (DCBM) reservoirs due to the distinct reservoir characteristics and occurrence state. In this work, we developed a slit-pore model to investigate the adsorption behaviors and production mechanisms of DCBM using molecular dynamics simulations. The slit-pore model includes a micropore, a macropore, and a fracture/cleat to simulate the flow unit of anthracite. We analyzed the adsorption patterns at different production stages and quantitatively evaluated the production performance of pressure-relief production and pressure-control production. DCBM components (CH4, C2H6, N2, and CO2) are heterogeneously distributed in the multiscale model, with higher proportions of CH4, C2H6, and CO2 in the micropore due to the high adsorption affinity and small molecular diameters. CH4, C2H6, and CO2 exhibit monolayer adsorption in the micropore, and the production methods do not affect the adsorption pattern. Compared to the pressure-relief production, the pressure-control production yields higher DCBM production. The mass transfer from the macropore and the water-blocking effect in the micropore collectively constrain the fluid release from the micropore during pressure-relief production. This work provides a comprehensive understanding of the DCBM adsorption behaviors and production mechanisms.
ACS OmegaChemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍:
ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.