邓军, 马晓峰, 商铁林, 赵勇. 多元可燃气体爆炸压力峰值的数值模拟[J]. 煤矿安全, 2014, 45(4): 13-16,20.
    引用本文: 邓军, 马晓峰, 商铁林, 赵勇. 多元可燃气体爆炸压力峰值的数值模拟[J]. 煤矿安全, 2014, 45(4): 13-16,20.
    DENG Jun, MA Xiaofeng, SHANG Tielin, ZHAO Yong. Numerical Simulation of Peak Pressure for Multiple Combustible Gase[J]. Safety in Coal Mines, 2014, 45(4): 13-16,20.
    Citation: DENG Jun, MA Xiaofeng, SHANG Tielin, ZHAO Yong. Numerical Simulation of Peak Pressure for Multiple Combustible Gase[J]. Safety in Coal Mines, 2014, 45(4): 13-16,20.

    多元可燃气体爆炸压力峰值的数值模拟

    Numerical Simulation of Peak Pressure for Multiple Combustible Gase

    • 摘要: 基于Fluent数值模拟软件,模拟了多元可燃气体在不同气氛(气体浓度、点火能量、初始压力)条件下CH4的爆炸压力峰值的变化规律。结果表明:加入CO气体后,浓度6%的CH4爆炸压力峰值增加22%,浓度12%的CH4压力峰值降低25%;加入C2H6,浓度6%的CH4爆炸压力峰值增加55%,浓度12%的CH4爆炸压力峰值降低64%;加入H2,浓度6%的CH4爆炸压力峰值增加22%,浓度12%的CH4爆炸压力峰值下降5%。当点火能量从1 J增加到10 J时,浓度9%的CH4爆炸压力峰值增加31%;当压力从101 325 Pa增加到1.5×101 325 Pa,浓度9.5%的CH4压力峰值增加24%。

       

      Abstract: This paper simulates variation laws of CH4 explosion peak pressure in different atmospheres (gas concentration, the ignition energy and initial pressure) based on the fluent software. The results show that the maximum explosion peak pressure enhances 22% in 6% methane concentration and drops 25% in 12% methane concentration with the adding of CO; it increases 55% in 6% methane concentration and reduces 64% in 12% methane concentration with the mixing of C2H6; it increases 22% in 6% methane concentration and drops 5% in 12% methane concentration with the joining of H2, it enhances 31% in 9% methane concentration when the ignition energy adds from 1 J to 10 J, and it improves 24% in 9.5% methane concentration when the environment pressure rises from 101 325 to 1.5×101 325 Pa.

       

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