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Experimental And Detailed Kinetic Modeling Of The Oxidation Of Methane And Methane/ Syngas Mixtures And Effect Of Carbon Dioxide Addition

机译:甲烷和甲烷/合成气混合物氧化的实验和详细动力学模型以及二氧化碳添加的影响

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The oxidation of methane-based fuels was studied experimentally in a fused silica jet-stirred reactor (JSR) operating at 1-10 atm, over the temperature range 900-1450 K, from fuel-lean to fuel-rich conditions. Similar experiments were performed in the presence of hydrogen, carbon dioxide, hydrogen and carbon dioxide, and syngas (COH_2). A recently proposed kinetic reaction mechanism (Le Cong et al., 2007) for modeling the oxidation of hydrogen, CO, methane, methanol, formaldehyde, and natural gas over a wide range of conditions including JSR, flame, shock tube, and plug flow reactor was used. The chemical kinetic modeling of the present experiments was successfully performed; the computations were also in good agreement with literature laminar burning velocities, flame structures, plug-flow reactors concentration profiles, and ignition delays. Reaction paths analyses were used to delineate the important reactions influencing the kinetic of oxidation of the fuel mixtures studied here. The kinetic reaction scheme proposed helps understanding the effect of the additives, namely syngas and carbon dioxide, on the oxidation of methane.
机译:在熔融石英喷射搅拌反应器(JSR)中,从稀燃料到富燃料条件,在900-1450 K的温度范围内,于1-10 atm的温度下对甲烷基燃料的氧化进行了实验研究。在氢气,二氧化碳,氢气和二氧化碳以及合成气(COH_2)的存在下进行了类似的实验。最近提出的动力学反应机理(Le Cong等,2007),用于模拟包括JSR,火焰,冲击管和活塞流在内的各种条件下的氢,CO,甲烷,甲醇,甲醛和天然气的氧化使用了反应器。本实验的化学动力学建模已成功完成;计算结果还与文献中的层流燃烧速度,火焰结构,活塞流反应堆浓度曲线和点火延迟高度吻合。反应路径分析用于描述影响此处研究的燃料混合物氧化动力学的重要反应。提出的动力学反应方案有助于理解添加剂(即合成气和二氧化碳)对甲烷氧化的影响。

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