多孔材料下二氧化碳临界预混比抑制甲烷爆炸特性研究

    Study on inhibition of methane explosion by critical premixing ratio of carbon dioxide under action of porous materials

    • 摘要: 为探究煤矿瓦斯抽放管道高效爆炸抑制技术,确保煤矿开采过程中瓦斯抽放管输工程的安全。在尺寸为100 cm×10 cm×10 cm的方形管道中,将平均孔径为2.54 mm的多孔材料(泡沫铜)安装在距点火端40 cm处,通过二氧化碳不同预混比(0、4%、8%、12%、16%)下的气固协同作用方式探究了对甲烷燃爆特性的影响。实验结果表明:二氧化碳预混比对多孔材料下的甲烷火焰结构发育的影响较小,但对火焰传播过程起到了有效的抑制作用,火焰临界速度和最大速度随二氧化碳预混比的增加而减小,预混比为16%的二氧化碳对临界速度的抑制比例为73.19%,对火焰最大速度的抑制比例可达81.75%;管内上游和下游爆炸压力随二氧化碳预混比的增加而减小,对上游和下游最大爆炸压力的抑制比例可达87.44%、94.79%;得出了二氧化碳与多孔材料的耦合抑制临界预混比为11%,故在瓦斯抽放管输工程安全防护设施布置中,多孔材料与二氧化碳协同抑制瓦斯爆炸时,二氧化碳临界预混比应控制在11%以上,可实现对瓦斯爆炸的有效抑制,实验结果也可对管输工程中的可燃气体燃爆的高效抑制技术方案提供理论支撑。

       

      Abstract: To explore the efficient explosion suppression technology for coal mine gas drainage pipelines and ensure the safe transportation of gas in such engineering during coal mining, an investigation is conducted on the influence of gas-solid synergistic action modes under different premixing ratios of carbon dioxide (0%, 4%, 8%, 12%, 16%) on the combustion and explosion characteristics of methane. This paper utilizes a square pipe with dimensions of 100 cm × 10 cm × 10 cm, with porous foam copper installed at a distance of 40 cm from the ignition end, having an average pore diameter of 2.54 mm. Experimental results demonstrate that the premixing ratio of carbon dioxide has a relatively small impact on the development of the methane flame structure under porous materials, but it exerts an effective inhibitory effect on the flame propagation process. With an increase in the premixing ratio of carbon dioxide, both the critical velocity and maximum velocity of the flame decrease. The inhibition ratio of carbon dioxide with a premixing ratio of 16% on the critical velocity amounts to 73.19%, while the inhibition ratio on the maximum velocity can reach 81.75%. Furthermore, the explosion pressure decreases in the upstream and downstream sections of the pipeline as the premixing ratio of carbon dioxide increases. The suppression ratio of the maximum explosion pressure in the upstream and downstream sections can reach 87.44% and 94.79%, respectively. Based on these findings, it is concluded that the critical premixing ratio of carbon dioxide and porous foam copper in terms of coupling inhibition is 11%. This study suggests that when designing safety protection facilities for gas drainage pipeline engineering and utilizing porous materials and carbon dioxide to inhibit gas explosions, the critical premixing ratio of carbon dioxide should be maintained above 11%, effectively preventing gas explosions. These experimental results also provide theoretical support for the development of efficient suppression techniques for combustible gas explosions in pipeline engineering.

       

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