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Characterization and field application of a novel dual-liquid gas leakage material: Mechanical properties and microscopic hydration mechanism

Gas drainage materials are one critical aspect of preventing coal mine gas explosions. Here, a novel dual-liquid gas sealing material was developed to improve gas extraction. The mechanical properties and hydration mechanism of the proposed material were determined. The novel dual-liquid gas sealing...

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Autores principales: Hong, Zijie, Zuo, Jianping, Li, Zhenhua, Xu, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10096304/
https://www.ncbi.nlm.nih.gov/pubmed/37043500
http://dx.doi.org/10.1371/journal.pone.0284140
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author Hong, Zijie
Zuo, Jianping
Li, Zhenhua
Xu, Lei
author_facet Hong, Zijie
Zuo, Jianping
Li, Zhenhua
Xu, Lei
author_sort Hong, Zijie
collection PubMed
description Gas drainage materials are one critical aspect of preventing coal mine gas explosions. Here, a novel dual-liquid gas sealing material was developed to improve gas extraction. The mechanical properties and hydration mechanism of the proposed material were determined. The novel dual-liquid gas sealing material’s performance was verified experimentally and with field testing, with practical application explored in the YunGaiShan 2 coal mine. The results showed that the main factor responsible for gas drainage leakage was the poor sealing effect of the sealing materials on the cracks around the borehole. The novel dual-liquid gas sealing material reduced damage to the rock surrounding the borehole and significantly improved the gas drainage performance. The initial and final setting times of the novel dual-liquid material were shown to be controllable, and the slurry exhibited good fluidity, with a 28-day uniaxial compressive strength of 11.06 MPa. The analysis of the microscopic hydration mechanism showed that the production of ettringite (AFt) in the dual-liquid material increased significantly, forming a denser network interlace that functioned as a network skeleton, improving the compressive strength of the material and achieving the characteristics of plastic deformation. Field-based analysis was performed to verify the practical applicability of the proposed material, showing that the gas drainage concentration increased by 200.5% compared to the original sealing material. Moreover, the average gas drainage negative pressure increased from 7.8 kPa (using the conventional sealing technique) to 16.6 kPa using the proposed material. Overall, the proposed materials are suitable for sealing materials for effective gas drainage performance and can help control gas disasters.
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spelling pubmed-100963042023-04-13 Characterization and field application of a novel dual-liquid gas leakage material: Mechanical properties and microscopic hydration mechanism Hong, Zijie Zuo, Jianping Li, Zhenhua Xu, Lei PLoS One Research Article Gas drainage materials are one critical aspect of preventing coal mine gas explosions. Here, a novel dual-liquid gas sealing material was developed to improve gas extraction. The mechanical properties and hydration mechanism of the proposed material were determined. The novel dual-liquid gas sealing material’s performance was verified experimentally and with field testing, with practical application explored in the YunGaiShan 2 coal mine. The results showed that the main factor responsible for gas drainage leakage was the poor sealing effect of the sealing materials on the cracks around the borehole. The novel dual-liquid gas sealing material reduced damage to the rock surrounding the borehole and significantly improved the gas drainage performance. The initial and final setting times of the novel dual-liquid material were shown to be controllable, and the slurry exhibited good fluidity, with a 28-day uniaxial compressive strength of 11.06 MPa. The analysis of the microscopic hydration mechanism showed that the production of ettringite (AFt) in the dual-liquid material increased significantly, forming a denser network interlace that functioned as a network skeleton, improving the compressive strength of the material and achieving the characteristics of plastic deformation. Field-based analysis was performed to verify the practical applicability of the proposed material, showing that the gas drainage concentration increased by 200.5% compared to the original sealing material. Moreover, the average gas drainage negative pressure increased from 7.8 kPa (using the conventional sealing technique) to 16.6 kPa using the proposed material. Overall, the proposed materials are suitable for sealing materials for effective gas drainage performance and can help control gas disasters. Public Library of Science 2023-04-12 /pmc/articles/PMC10096304/ /pubmed/37043500 http://dx.doi.org/10.1371/journal.pone.0284140 Text en © 2023 Hong et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Hong, Zijie
Zuo, Jianping
Li, Zhenhua
Xu, Lei
Characterization and field application of a novel dual-liquid gas leakage material: Mechanical properties and microscopic hydration mechanism
title Characterization and field application of a novel dual-liquid gas leakage material: Mechanical properties and microscopic hydration mechanism
title_full Characterization and field application of a novel dual-liquid gas leakage material: Mechanical properties and microscopic hydration mechanism
title_fullStr Characterization and field application of a novel dual-liquid gas leakage material: Mechanical properties and microscopic hydration mechanism
title_full_unstemmed Characterization and field application of a novel dual-liquid gas leakage material: Mechanical properties and microscopic hydration mechanism
title_short Characterization and field application of a novel dual-liquid gas leakage material: Mechanical properties and microscopic hydration mechanism
title_sort characterization and field application of a novel dual-liquid gas leakage material: mechanical properties and microscopic hydration mechanism
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10096304/
https://www.ncbi.nlm.nih.gov/pubmed/37043500
http://dx.doi.org/10.1371/journal.pone.0284140
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