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Kinetic Study of Nonequilibrium Plasma-Assisted Methane Steam Reforming

机译:非平衡等离子体辅助甲烷蒸汽重整的动力学研究

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To develop a detailed reaction mechanism for plasma-assisted methane steam reforming, a comprehensive numerical and experimental study of effect laws on methane conversion and products yield is performed at different steam to methane molar ratio (S/C), residence time s, and reaction temperatures. A CHEMKIN-PRO software with sensitivity analysis module and path flux analysis module was used for simulations. A set of comparisons show that the developed reaction mechanism can accurately predict methane conversion and the trend of products yield in different operating conditions. Using the developed reaction mechanism in plasma-assisted kinetic model, the reaction path flux analysis was carried out. The result shows that CH3recombination is the limiting reaction for CO production and O is the critical species for CO production. Adding 40 wt.% Ni/SiO2in discharge region has significantly promoted the yield of H2, CO, or CO2in dielectric packed bed (DPB) reactor. Plasma catalytic hybrid reforming experiment verifies the reaction path flux analysis tentatively.
机译:为了建立详细的等离子体辅助甲烷蒸汽重整反应机理,在不同的蒸汽与甲烷摩尔比(S / C),停留时间s和反应条件下,对甲烷转化率和产物收率的影响规律进行了全面的数值和实验研究。温度。使用带有灵敏度分析模块和路径通量分析模块的CHEMKIN-PRO软件进行仿真。一系列比较表明,开发的反应机理可以准确预测甲烷在不同操作条件下的转化率和产物产率的趋势。利用等离子体辅助动力学模型中建立的反应机理,进行了反应路径通量分析。结果表明,CH3重组是CO生成的限制性反应,O是CO生成的关键物质。在放电区域中添加40%(重量)的Ni / SiO2显着提高了介质填充床(DPB)反应器中H2,CO或CO2的产率。等离子体催化混合重整实验初步验证了反应路径通量分析。

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