赵兴国, 秦汝祥, 刘泽功, 戴广龙. 羊场湾易自燃综放工作面CO来源分析[J]. 煤矿安全, 2022, 53(9): 137-143.
    引用本文: 赵兴国, 秦汝祥, 刘泽功, 戴广龙. 羊场湾易自燃综放工作面CO来源分析[J]. 煤矿安全, 2022, 53(9): 137-143.
    ZHAO Xingguo, QIN Ruxiang, LIU Zegong, DAI Guanglong. CO source analysis of easily spontaneous combustion fully mechanized caving face in Yangchangwan Coal Mine[J]. Safety in Coal Mines, 2022, 53(9): 137-143.
    Citation: ZHAO Xingguo, QIN Ruxiang, LIU Zegong, DAI Guanglong. CO source analysis of easily spontaneous combustion fully mechanized caving face in Yangchangwan Coal Mine[J]. Safety in Coal Mines, 2022, 53(9): 137-143.

    羊场湾易自燃综放工作面CO来源分析

    CO source analysis of easily spontaneous combustion fully mechanized caving face in Yangchangwan Coal Mine

    • 摘要: 针对羊场湾煤矿160205工作面CO气体异常及来源类型不清的问题,通过煤体深层钻孔测试、采空区温度与CO分布测试、工作面CO分布测试、煤的破碎实验、程序升温实验以及常温氧化实验综合分析工作面CO的来源。结果表明:羊场湾2#煤原始煤层中不含CO气体;煤在氮气氛围和空气氛围环境中破碎均能生成CO气体,并且随着破碎时间的延长产生的CO气体量呈现上升趋势;采空区遗煤温度低于50 ℃,工作面CO主要来源于采空区遗煤的低温氧化以及架后、工作面煤的常温氧化,其次为采煤过程中煤机切割破煤作业产生的CO气体。

       

      Abstract: Aiming at the problem of abnormal CO gas and unclear source type in 160205 working face of Yangchangwan Coal Mine, the source of CO gas in working face was comprehensively analyzed through borehole test in deep coal body, temperature and CO distribution test in goaf, CO distribution test in working face, coal crushing experiment, temperature programmed experiment and normal temperature oxidation experiment. The results show that there is no CO gas in the original seam of Yangchangwan 2# coal. Coal crushing in nitrogen atmosphere and air atmosphere can generate CO gas, and with the extension of crushing time, the amount of CO gas produced presents a rising trend. When the residual coal temperature in goaf is lower than 50 ℃, CO in working face mainly comes from low temperature oxidation of residual coal in goaf and normal temperature oxidation of coal behind frame and working face, followed by CO gas generated by coal machine cutting and breaking operation in coal mining process.

       

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