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Integrated experimentation and modeling of the formation processes underlying coal combustion-triggered methane explosions in a mined-out area

机译:在挖掘区域中煤气燃烧引发甲烷爆炸的地层工艺的综合实验和建模

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摘要

A methane explosion can take place when a methane concentration is within the explosive concentration range. Therefore, the methane migration around a coal combustion zone is important for assessing the disaster risk and revealing the disaster formation process. The thermal buoyancy effect has seldom been considered before, even though it could influence methane movement in coal mined-out areas. In this study, an integrated investigation using experimentation and modeling was conducted to explore the disaster formation process. For the experiment, a coal mine gob was heated locally to produce the buoyancy effect, and the consequent methane accumulation was observed. To explain this observation, a gas flow model reflecting the buoyancy effect was developed and verified against the experimental observations. Through this analysis, the formation processes for a methane explosion disaster in a coal mined-out area were revealed as follows: (1) coal combustion decreases the gas density to produce the buoyancy effect and create negative pressure in the combustion area; (2) this negative pressure leads to methane inflow, and the buoyancy effect causes upward methane movement; and (3) the local methane inflow and the local upward movement develop methane accumulation in the coal combustion area to form a methane explosion.
机译:当甲烷浓度在爆炸浓度范围内时,可以进行甲烷爆炸。因此,煤燃区周围的甲烷迁移对于评估灾害风险并揭示灾害形成过程非常重要。在之前,热浮力效果很少被认为是可能影响煤中的甲烷运动。在这项研究中,进行了使用实验和建模的综合调查,以探讨灾害形成过程。对于实验,煤矿加热器在本地加热以产生浮力效应,并观察到随之而来的甲烷积累。为了解释这种观察,开发并验证了反映浮力效果的气体流模型,并针对实验观察。通过该分析,煤外射出区域的甲烷爆炸灾害的形成方法如下:(1)煤燃烧降低气体密度,以产生浮力效果并在燃烧区域产生负压; (2)这种负压导致甲烷流入,浮力效应导致甲烷运动上升; (3)本地甲烷流入和局部向上运动在煤燃烧区域中发育甲烷积聚以形成甲烷爆炸。

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  • 来源
    《Energy》 |2020年第jul15期|117855.1-117855.12|共12页
  • 作者单位

    Key Laboratory of Gas and Fire Control for Mines (China University of Mining and Technology (CUMT)) Ministry of Education Xuzhou 221116 China School of Safety Engineering China University of Mining and Technology Xuzhou 221116 China School of Engineering The University of Western Australia (UWA) Perth 6009 Australia;

    Key Laboratory of Gas and Fire Control for Mines (China University of Mining and Technology (CUMT)) Ministry of Education Xuzhou 221116 China School of Safety Engineering China University of Mining and Technology Xuzhou 221116 China;

    School of Engineering The University of Western Australia (UWA) Perth 6009 Australia;

    School of Engineering The University of Western Australia (UWA) Perth 6009 Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Coal combustion; Methane accumulation; Buoyancy effect; Negative pressure; Methane explosion;

    机译:煤燃烧;甲烷积累;浮力效应;负压;甲烷爆炸;

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