Identification of gas outburst precursors based on outburst percolation theory

Abstract Uniaxial compression experiments were conducted on coal rock utilizing a computed tomography (CT) scanning system for real-time monitoring to explain the issue of gas volume significantly exceeding reservoir capacity during coal and gas outbursts. A percolation factor a which can make a sig...

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Main Authors: Yulin Ma, Mingyu Chen
Format: Article
Language:English
Published: Nature Portfolio 2025-01-01
Series:Scientific Reports
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Online Access:https://doi.org/10.1038/s41598-025-87837-4
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author Yulin Ma
Mingyu Chen
author_facet Yulin Ma
Mingyu Chen
author_sort Yulin Ma
collection DOAJ
description Abstract Uniaxial compression experiments were conducted on coal rock utilizing a computed tomography (CT) scanning system for real-time monitoring to explain the issue of gas volume significantly exceeding reservoir capacity during coal and gas outbursts. A percolation factor a which can make a significant contribution to the research on premonitory information of gas outbursts is introduced to determine whether percolation occurs in coal rock, and supports the outburst percolation theory. It was found that percolation probability and correlation length increase with greater porosity, and that the number of pore clusters decreases as porosity increases. All three parameters exhibit explosive increases or decreases before the porosity reaches the percolation threshold. The percolation threshold for the coal varies at different stress levels; as the coal approaches its stress limit, the percolation threshold decreases, making percolation transformation more likely to occur and increasing the risk of a coal and gas outburst. When a > 1, percolation transformation occurs within the coal, and large-scale gas migration channels are formed. This stage completes the latent phase of the outburst, significantly elevating the likelihood of an outburst incident. This approach establishes quantitative relationships between porosity and various percolation parameters at different stress levels. It contributes to the research on precursory information of coal and gas outbursts.
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spelling doaj-art-e1875b80788a4431a109d321758174cd2025-01-26T12:31:08ZengNature PortfolioScientific Reports2045-23222025-01-0115111710.1038/s41598-025-87837-4Identification of gas outburst precursors based on outburst percolation theoryYulin Ma0Mingyu Chen1School of Mechanics and Engineering, Liaoning Technical UniversitySchool of Mechanics and Engineering, Liaoning Technical UniversityAbstract Uniaxial compression experiments were conducted on coal rock utilizing a computed tomography (CT) scanning system for real-time monitoring to explain the issue of gas volume significantly exceeding reservoir capacity during coal and gas outbursts. A percolation factor a which can make a significant contribution to the research on premonitory information of gas outbursts is introduced to determine whether percolation occurs in coal rock, and supports the outburst percolation theory. It was found that percolation probability and correlation length increase with greater porosity, and that the number of pore clusters decreases as porosity increases. All three parameters exhibit explosive increases or decreases before the porosity reaches the percolation threshold. The percolation threshold for the coal varies at different stress levels; as the coal approaches its stress limit, the percolation threshold decreases, making percolation transformation more likely to occur and increasing the risk of a coal and gas outburst. When a > 1, percolation transformation occurs within the coal, and large-scale gas migration channels are formed. This stage completes the latent phase of the outburst, significantly elevating the likelihood of an outburst incident. This approach establishes quantitative relationships between porosity and various percolation parameters at different stress levels. It contributes to the research on precursory information of coal and gas outbursts.https://doi.org/10.1038/s41598-025-87837-4Coal and gas outburstPercolation parameterPercolation factorSeepage channelsCT scanning
spellingShingle Yulin Ma
Mingyu Chen
Identification of gas outburst precursors based on outburst percolation theory
Scientific Reports
Coal and gas outburst
Percolation parameter
Percolation factor
Seepage channels
CT scanning
title Identification of gas outburst precursors based on outburst percolation theory
title_full Identification of gas outburst precursors based on outburst percolation theory
title_fullStr Identification of gas outburst precursors based on outburst percolation theory
title_full_unstemmed Identification of gas outburst precursors based on outburst percolation theory
title_short Identification of gas outburst precursors based on outburst percolation theory
title_sort identification of gas outburst precursors based on outburst percolation theory
topic Coal and gas outburst
Percolation parameter
Percolation factor
Seepage channels
CT scanning
url https://doi.org/10.1038/s41598-025-87837-4
work_keys_str_mv AT yulinma identificationofgasoutburstprecursorsbasedonoutburstpercolationtheory
AT mingyuchen identificationofgasoutburstprecursorsbasedonoutburstpercolationtheory