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Gas Permeability Evolution Mechanism and Comprehensive Gas Drainage Technology for Thin Coal Seam Mining

机译:薄煤层开采的透气性演化机理及综合抽放技术

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A thin coal seam mined as a protective coal seam above a gas outburst coal seam plays a central role in decreasing the degree of stress placed on a protected seam, thus increasing gas permeability levels and desorption capacities to dramatically eliminate gas outburst risk for the protected seam. However, when multiple layers of coal seams are present, stress-relieved gas from adjacent coal seams can cause a gas explosion. Thus, the post-drainage of gas from fractured and de-stressed strata should be applied. Comprehensive studies of gas permeability evolution mechanisms and gas seepage rules of protected seams close to protective seams that occur during protective seam mining must be carried out. Based on the case of the LongWall (LW) 23209 working face in the Hancheng coal mine, Shaanxi Province, this paper presents a seepage model developed through the FLAC3D software program (version 5.0, Itasca Consulting Group, Inc., Minneapolis, MI, USA) from which gas flow characteristics can be reflected by changes in rock mass permeability. A method involving theoretical analysis and numerical simulation was used to analyze stress relief and gas permeability evolution mechanisms present during broken rock mass compaction in a goaf. This process occurs over a reasonable amount of extraction time and in appropriate locations for comprehensive gas extraction technologies. In using this comprehensive gas drainage technological tool, the safe and efficient co-extraction of thin coal seams and gas resources can be realized, thus creating a favorable environment for the safe mining of coal and gas outburst seams.
机译:在瓦斯突出煤层上方开采的薄煤层作为保护性煤层,在降低保护性煤层所承受的应力程度方面起着核心作用,从而提高了气体渗透率和解吸能力,从而极大地消除了保护性煤层的瓦斯突出风险。但是,当存在多个煤层时,来自相邻煤层的消除应力的气体会引起瓦斯爆炸。因此,应采用裂缝和减压层的后排气方法。必须对保护性煤层在开采过程中发生的,接近保护性煤层的保护性煤层的透气性演化机理和渗流规律进行综合研究。以陕西省汉城煤矿的LongWall(LW)23209工作面为例,提出了一种通过FLAC3D软件程序(5.0版,美国密西根州明尼阿波利斯市伊塔斯卡咨询集团公司)开发的渗流模型。 ),可以通过岩体渗透率的变化反映出气体流动特征。采用一种涉及理论分析和数值模拟的方法来分析采空区破碎岩体压实过程中存在的应力释放和透气性演化机理。此过程在合理的提取时间内进行,并且在适当的位置进行了全面的气体提取技术。利用这种综合瓦斯抽采技术工具,可以实现薄煤层与瓦斯资源的安全,高效共采,从而为煤矿瓦斯突出煤层的安全开采创造了良好的环境。

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