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Quantitative behavior of vibrational excitation in AC plasma assisted dry reforming of methane

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Quantitative behavior of non-equilibrium excitation by direct electron impact in low-temperature dry reforming of methane was investigated by integrated studies of experimental validation and kinetic modeling.A plasma chemistry kinetic mechanism incorporating the reactions involving vibrational excitation of CH4,CO2,H2 and CO molecules as well as the low temperature He/CH4/CO2 conversion pathways was developed and validated.The calculation results showed that at lower E/N values(<150 Td)large population of energized electrons generated in a He/CH4/CO2 discharge resulted in an intensification of vibrational excitation.Despite the large generation of vibration,the vibrationally excited molecules in a 0.5/0.25/0.25 of He/CH4/CO2 discharge mixture were easy to relax,due to the strong coupling of the vibration of different molecules in a gas mixture.The results showed that the moderate levels of the vibrational excitation,such as CO2(v10,11,...,18)and CO(v9,10),presented most efficient in the stimulation of species generation including CO,CH2 O,CH3 OH,C2 H4 and C2 H6.Specifically,under conditions of E/N of 108 Td,14.9%of CO formation was estimated from the recombination of CO2(v)with CH3 and H,CO2(v)+CH3→CH3 O+CO,CO2(v)+H→CO+OH.Also,4.8%of C2 H4 formation was from the recombination reaction CH4(v)+CH→C2 H4+H.These results highlight the strong roles of vibrational states in a complex plasma chemistry system.

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  • 来源
    《天然气化学(英文版)》 |2020年第7期|133-143|共11页
  • 作者单位

    School of Mechanical Electronic and Control Engineering Beijing Jiaotong University Beijing 100044 China;

    School of Mechanical Electronic and Control Engineering Beijing Jiaotong University Beijing 100044 China;

    School of Mechanical Electronic and Control Engineering Beijing Jiaotong University Beijing 100044 China;

    School of Mechanical Electronic and Control Engineering Beijing Jiaotong University Beijing 100044 China;

    School of Mechanical Electronic and Control Engineering Beijing Jiaotong University Beijing 100044 China;

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