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Influence of gas migration on permeability of soft coalbed methane reservoirs under true triaxial stress conditions

The permeability of the coal body is the key parameter restricting the efficient extraction of coalbed methane, and scholars have analysed it from two angles of the change of stress state and porosity of the coal body. However, there is still a lack of study on the mechanism of gas migration and mov...

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Autores principales: Wang, Gang, Liu, Zhiyuan, Hu, Yanwei, Fan, Cheng, Wang, Wenrui, Li, Jinzhou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6837214/
https://www.ncbi.nlm.nih.gov/pubmed/31824704
http://dx.doi.org/10.1098/rsos.190892
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author Wang, Gang
Liu, Zhiyuan
Hu, Yanwei
Fan, Cheng
Wang, Wenrui
Li, Jinzhou
author_facet Wang, Gang
Liu, Zhiyuan
Hu, Yanwei
Fan, Cheng
Wang, Wenrui
Li, Jinzhou
author_sort Wang, Gang
collection PubMed
description The permeability of the coal body is the key parameter restricting the efficient extraction of coalbed methane, and scholars have analysed it from two angles of the change of stress state and porosity of the coal body. However, there is still a lack of study on the mechanism of gas migration and movement in soft coalbed methane reservoir under the coupling between the true triaxial stress field (maximum principal stress σ(1) > intermediate principal stress σ(2) > minimum principal stress σ(3)) and the gas pressure field. In this paper, the coal gas adsorption and seepage experiments are conducted through the self-developed true triaxial ‘gas–solid’ coupled coal mass seepage system with gas as the adsorption and seepage medium and coal briquette taking the place of soft coalbed methane reservoirs. Furthermore, the coal gas adsorption deformation model and the permeability evolution model taking gas adsorption into account are developed. Through analysis of both experimental and theoretic results, the main conclusions are drawn as follows: (i) With the increase in gas pressure, the adsorption deformation variation of coal mass is divided into a slow growth zone, a stable growth zone and a rapid growth zone. (ii) The gas adsorption deformation model developed can predict the variation trend of coal mass adsorption volumetric strains for different types of soft coalbeds, and the fitting variance of experimental and theoretical volumetric strains is above 98%. (iii) With the increase in maximum principal stress difference, the coal permeability variation curve shows two obvious turning points, which can be divided into a slow reduction zone, a rapid reduction zone and a steady reduction zone. (iv) The permeability model of coal mass considering the gas adsorption effect can reflect the variation characteristics of permeability in the rapid reduction zone, and the overall fitting variance of experimental and theoretical permeabilities is above 91%. The above results could provide a reliable experimental and theoretical basis for improving coalbed methane extraction rates.
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spelling pubmed-68372142019-12-10 Influence of gas migration on permeability of soft coalbed methane reservoirs under true triaxial stress conditions Wang, Gang Liu, Zhiyuan Hu, Yanwei Fan, Cheng Wang, Wenrui Li, Jinzhou R Soc Open Sci Engineering The permeability of the coal body is the key parameter restricting the efficient extraction of coalbed methane, and scholars have analysed it from two angles of the change of stress state and porosity of the coal body. However, there is still a lack of study on the mechanism of gas migration and movement in soft coalbed methane reservoir under the coupling between the true triaxial stress field (maximum principal stress σ(1) > intermediate principal stress σ(2) > minimum principal stress σ(3)) and the gas pressure field. In this paper, the coal gas adsorption and seepage experiments are conducted through the self-developed true triaxial ‘gas–solid’ coupled coal mass seepage system with gas as the adsorption and seepage medium and coal briquette taking the place of soft coalbed methane reservoirs. Furthermore, the coal gas adsorption deformation model and the permeability evolution model taking gas adsorption into account are developed. Through analysis of both experimental and theoretic results, the main conclusions are drawn as follows: (i) With the increase in gas pressure, the adsorption deformation variation of coal mass is divided into a slow growth zone, a stable growth zone and a rapid growth zone. (ii) The gas adsorption deformation model developed can predict the variation trend of coal mass adsorption volumetric strains for different types of soft coalbeds, and the fitting variance of experimental and theoretical volumetric strains is above 98%. (iii) With the increase in maximum principal stress difference, the coal permeability variation curve shows two obvious turning points, which can be divided into a slow reduction zone, a rapid reduction zone and a steady reduction zone. (iv) The permeability model of coal mass considering the gas adsorption effect can reflect the variation characteristics of permeability in the rapid reduction zone, and the overall fitting variance of experimental and theoretical permeabilities is above 91%. The above results could provide a reliable experimental and theoretical basis for improving coalbed methane extraction rates. The Royal Society 2019-10-02 /pmc/articles/PMC6837214/ /pubmed/31824704 http://dx.doi.org/10.1098/rsos.190892 Text en © 2019 The Authors. http://creativecommons.org/licenses/by/4.0/ Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Engineering
Wang, Gang
Liu, Zhiyuan
Hu, Yanwei
Fan, Cheng
Wang, Wenrui
Li, Jinzhou
Influence of gas migration on permeability of soft coalbed methane reservoirs under true triaxial stress conditions
title Influence of gas migration on permeability of soft coalbed methane reservoirs under true triaxial stress conditions
title_full Influence of gas migration on permeability of soft coalbed methane reservoirs under true triaxial stress conditions
title_fullStr Influence of gas migration on permeability of soft coalbed methane reservoirs under true triaxial stress conditions
title_full_unstemmed Influence of gas migration on permeability of soft coalbed methane reservoirs under true triaxial stress conditions
title_short Influence of gas migration on permeability of soft coalbed methane reservoirs under true triaxial stress conditions
title_sort influence of gas migration on permeability of soft coalbed methane reservoirs under true triaxial stress conditions
topic Engineering
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6837214/
https://www.ncbi.nlm.nih.gov/pubmed/31824704
http://dx.doi.org/10.1098/rsos.190892
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