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Effects of Propane on the Flammability Limits and Chemical Kinetics of Methane-Air Explosions

机译:丙烷对甲烷 - 空气爆炸易燃局限度和化学动力学的影响

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摘要

ABSTRACT This work presents a comprehensive account of how adding C3H8 impacts the possibility of explosion for CH4–air mixtures. A series of experiments was carried out to determine the upper and lower flammability limits (UFL and LFL, respectively), and the explosive risk value for different mixtures of CH4 and C3H8. The critical oxygen concentration, the concentrations of CH4 and N2 at the point where the LFL and UFL merge, and the CH4 explosive triangle were obtained for nitrogen-diluted mixtures. In addition, we used a detailed mechanism (GRI-Mech3.0) in the CHEMKIN software package to acquire the impacts of adding C3H8 on the chemical kinetics of the explosion of CH4. The flammable limits of CH4 decrease linearly with the addition of C3H8 while the flammable range increases slightly. The explosive risk value for CH4 in air increases greatly upon adding C3H8 following a parabolic relationship. Nitrogen dilution noticeably decreases the UFL and slightly increases the LFL, ultimately resulting in these points merging. The concentration of CH4 and nitrogen at this merging point varies linearly when the C3H8 concentration is varied between 0% and 2.0%. The addition of C3H8 also expands and shifts leftwards and downwards CH4’s explosive triangle. Numerical analysis reveals that the maximum temperature and pressure during the explosion, and the formation rates of CO and NOx, noticeably increase after adding C3H8. Sensitivity coefficients of key dominant reactions show that overall more •H, •O, and •OH are consumed when C3H8 is added. Furthermore, the time between ignition and maximum pressure (the burning time) is evidently shortened by the addition of C3H8, which also shortens the explosion duration.
机译:摘要此工作提供了全面的C3H8如何影响CH4空气混合物爆炸的可能性。进行了一系列实验以确定上下可燃性限制(分别为UFL和LFL),以及CH4和C3H8的不同混合物的爆炸风险值。在LFL和UFL合并的点处的临界氧浓度,CH4和N2的浓度,并获得氮稀释的混合物的CH4爆炸三角形。此外,我们在Chemkin软件包中使用了一个详细的机制(Gri-Mech3.0),以获取添加C38对CH4爆炸的化学动力学的影响。 CH4的易燃局限性随着C3H8的添加而线性降低,而易燃范围略有增加。在抛物线关系之后加入C3H8时,空气中CH4的爆炸风险值会增加。氮稀释显着降低UFL并略微增加LFL,最终导致这些点合并。当C3H8浓度在0%至2.0%之间变化时,该合并点的CH 4和氮的浓度随之而变化。 C3H8的添加也会扩展并向下移动,向下和向下的CH4的爆炸三角形。数值分析表明,爆炸过程中的最高温度和压力,以及CO和NOx的形成速率,在添加C3H8后明显增加。关键优势反应的敏感性系数显示,当加入C3H8时,整体更长•H,•O和•OH被消耗。此外,通过添加C38,显然缩短了点火和最大压力(燃烧时间)之间的时间,这也缩短了爆炸持续时间。

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  • 来源
    《Combustion Science and Technology》 |2020年第9期|1785-1801|共17页
  • 作者单位

    Xi’an University of Science and Technology|Shaanxi Key Laboratory of Prevention and Control of Coal Fire|Shaanxi Engineering Research Center for Industrial Process Safety &

    Emergency Rescue;

    Xi’an University of Science and Technology|Shaanxi Engineering Research Center for Industrial Process Safety &

    Emergency Rescue;

    Xi’an University of Science and Technology;

    Xi’an University of Science and Technology|Shaanxi Key Laboratory of Prevention and Control of Coal Fire|Shaanxi Engineering Research Center for Industrial Process Safety &

    Emergency Rescue;

    Xi’an University of Science and Technology|Shaanxi Key Laboratory of Prevention and Control of Coal Fire|Shaanxi Engineering Research Center for Industrial Process Safety &

    Emergency Rescue;

    Xi’an University of Science and Technology|Shaanxi Key Laboratory of Prevention and Control of Coal Fire|Shaanxi Engineering Research Center for Industrial Process Safety &

    Emergency Rescue;

    Xi’an University of Science and Technology;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Methane explosion; flammable limit; limiting parameters; explosive triangle; reaction kinetics; sensitivity analysis;

    机译:甲烷爆炸;易燃限制;限制参数;爆炸三角;反应动力学;敏感性分析;

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