刘超, 孙宝强, 李树刚, 张超, 薛俊华, 李鑫, 范富槐. 厚煤层双重卸压采动覆岩裂隙分布特征及卸压瓦斯抽采技术[J]. 煤矿安全, 2021, 52(12): 89-96.
    引用本文: 刘超, 孙宝强, 李树刚, 张超, 薛俊华, 李鑫, 范富槐. 厚煤层双重卸压采动覆岩裂隙分布特征及卸压瓦斯抽采技术[J]. 煤矿安全, 2021, 52(12): 89-96.
    LIU Chao, SUN Baoqiang, LI Shugang, ZHANG Chao, XUE Junhua, LI Xin, FAN Fuhuai. Distribution characteristics of fractured rock in overburden induced by double pressure relief mining of thick coal seam and pressure relief gas extraction technology[J]. Safety in Coal Mines, 2021, 52(12): 89-96.
    Citation: LIU Chao, SUN Baoqiang, LI Shugang, ZHANG Chao, XUE Junhua, LI Xin, FAN Fuhuai. Distribution characteristics of fractured rock in overburden induced by double pressure relief mining of thick coal seam and pressure relief gas extraction technology[J]. Safety in Coal Mines, 2021, 52(12): 89-96.

    厚煤层双重卸压采动覆岩裂隙分布特征及卸压瓦斯抽采技术

    Distribution characteristics of fractured rock in overburden induced by double pressure relief mining of thick coal seam and pressure relief gas extraction technology

    • 摘要: 针对下石节煤矿222工作面开采过程中双重卸压造成工作面瓦斯涌出量高导致瓦斯超限的安全难题,结合采动裂隙“O”型圈和“环形裂隙体”理论,在分析厚煤层综放开采双重卸压采动覆岩破坏特征的基础上;采用相似模拟和数值模拟研究了双重卸压工作面开采采空区覆岩裂隙演化模型,确定了裂隙场和应力场演化反馈机制,依据裂隙密度,将覆岩裂隙场划分为贯通渗透区、纵向渗透区和水平渗透区;结合Fluent模拟瓦斯流场运移机理,将双重卸压采空区覆岩裂隙场+应力场+瓦斯渗流场相互耦合,进一步补充了采空区瓦斯流场规律:低位低浓度瓦斯流动带和高位高浓度瓦斯流动圈;提出了双重卸压采空区卸压瓦斯治理方式为复合采空区高位定向钻孔瓦斯抽采方案,并进行了工程应用。结果表明:确定卸压瓦斯抽采富集区域范围为回风侧偏向工作面宽度40 m,距离煤层顶板60.8 m以上150 m以下范围内;通过在复合采空区将高位定向钻孔瓦斯抽采方案的实施,上隅角瓦斯浓度低于0.8%,工作面及回风巷瓦斯浓度低于0.3%。

       

      Abstract: Aiming at the safety problem of high gas emission caused by double unloading in the mining process of 222 fully mechanized caving face of Xiashijie Coal Mine, which leads to excessive gas emission, combined with the theory of mining fissure “O” circle and “annular fissure body”, the analysis based on the failure characteristics of the overlying rock caused by double unloading in fully mechanized caving mining in thick coal seams, physical similarity simulation and FLAC3D numerical simulation are used to study the evolution model of overlying rock cracks in the goaf of double unloading working face, and the fissure field and the stress field evolution feedback mechanism, according to the crack density, divides the overlying rock fissure field into a permeable area, a longitudinal permeable area and a horizontal permeable area. Combining the Fluent simulation of the gas flow field migration mechanism, the double unloaded goaf overlying rock fissure field + stress field + gas seepage field are coupled with each other to further supplement the gas flow field law in the goaf: low-level low-concentration gas flow zone and high-level high concentration gas flow circle. The dual unloaded goaf gas control method is proposed, which is a high-position directional boreholegas drainage scheme in the compound goaf, and has been applied in engineering. The results show that the range of the compressed gas extraction and enrichment area is determined to be that: the width of the working face on the return side is 40 m, and the distance from the roof of the coal seam is 60.8 m to 150 m. Through the implementation of the high-position directional borehole gas drainage program in the compound goaf, the gas concentration in the upper corner is lower than 0.8%, and the gas concentration in the working face and return airway is lower than 0.3%.

       

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