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首页> 外文期刊>Chemical engineering journal >Plasma activation of methane for hydrogen production in a N-2 rotating gliding arc warm plasma: A chemical kinetics study
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Plasma activation of methane for hydrogen production in a N-2 rotating gliding arc warm plasma: A chemical kinetics study

机译:N-2旋转滑动弧温热等离子体中氢产生甲烷的等离子体活化:化学动力学研究

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摘要

In this work, a chemical kinetics study on methane activation for hydrogen production in a warm plasma, i.e., N-2 rotating gliding arc (RGA), was performed for the first time to get new insights into the underlying reaction mechanisms and pathways. A zero-dimensional chemical kinetics model was developed, which showed a good agreement with the experimental results in terms of the conversion of CH4 and product selectivities, allowing us to get a better understanding of the relative significance of various important species and their related reactions to the formation and loss of CH4, H-2, and C2H2 etc. An overall reaction scheme was obtained to provide a realistic picture of the plasma chemistry. The results reveal that the electrons and excited nitrogen species (mainly N-2(A)) play a dominant role in the initial dissociation of CH4. However, the H atom induced reaction CH4+ H - CH3+ H-2, which has an enhanced reaction rate due to the high gas temperature (over 1200 K), is the major contributor to both the conversion of CH4 and H-2 production, with its relative contributions of 90% and 85%, respectively, when only considering the forward reactions. The coexistence and interaction of thermochemical and plasma chemical processes in the rotating gliding arc warm plasma significantly enhance the process performance. The formation of C-2 hydrocarbons follows a nearly one-way path of C2H6 - C2H4 - C2H2, explaining why the selectivities of C-2 products decreased in the order of C2H2 C2H4 C2H6.
机译:在这项工作中,首次进行温热等离子体中甲烷活化的化学动力学研究,即N-2旋转滑动弧(RGA),以使新的洞察潜在的反应机制和途径。开发了一种零维化学动力学模型,表明了与CH4和产品选择性转化的实验结果吻合良好,使我们能够更好地了解各种重要物种及其相关反应的相对意义及其相关反应CH4,H-2和C2H2等的形成和丧失。获得了整体反应方案,以提供血浆化学的现实图像。结果表明,电子和兴奋的氮物质(主要是N-2(a))在CH4的初始解离中发挥显着作用。但是,H原子诱导反应CH 4 + H-& CH3 + H-2由于高气体温度(超过1200 k)而具有增强的反应速率,是CH4和H-2生产转化的主要贡献者,其相对贡献> 90%和分别为85%,仅考虑前向反应。热化学和等离子化学过程在旋转滑动电弧温暖等离子体中的共存和相互作用显着提高了工艺性能。 C-2烃的形成遵循C2H6 - &GT的几乎单向路径。 C2H4 - & C2H2,解释为什么C-2产物的选择性按C 2 H 2&GT的顺序降低; c2h4& C2H6。

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  • 来源
    《Chemical engineering journal》 |2018年第2018期|共12页
  • 作者单位

    Zhejiang Univ Inst Thermal Power Engn State Key Lab Clean Energy Utilizat Hangzhou 310027 Zhejiang Peoples R China;

    Univ Antwerp Dept Chem Res Grp PLASMANT B-2610 Antwerp Belgium;

    Zhejiang Univ Inst Thermal Power Engn State Key Lab Clean Energy Utilizat Hangzhou 310027 Zhejiang Peoples R China;

    Zhejiang Univ Technol Inst Energy &

    Power Engn Hangzhou 310014 Zhejiang Peoples R China;

    Zhejiang Univ Technol Inst Energy &

    Power Engn Hangzhou 310014 Zhejiang Peoples R China;

    Zhejiang Univ Technol Inst Energy &

    Power Engn Hangzhou 310014 Zhejiang Peoples R China;

    Univ Liverpool Dept Elect Engn &

    Elect Liverpool L69 3GJ Merseyside England;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    Rotating gliding arc; Warm plasma; Methane decomposition; Chemical kinetics model; Plasma chemistry;

    机译:旋转滑动弧;温热等离子体;甲烷分解;化学动力学模型;等离子体化学;

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