Advanced Search+
Gui LI (李桂), Muyang QIAN (钱沐杨), Sanqiu LIU (刘三秋), Huaying CHEN (陈华英), Chunsheng REN (任春生), Dezhen WANG (王德真). A numerical simulation study on active species production in dense methane-air plasma discharge[J]. Plasma Science and Technology, 2018, 20(1): 14004-014004. DOI: 10.1088/2058-6272/aa8f3c
Citation: Gui LI (李桂), Muyang QIAN (钱沐杨), Sanqiu LIU (刘三秋), Huaying CHEN (陈华英), Chunsheng REN (任春生), Dezhen WANG (王德真). A numerical simulation study on active species production in dense methane-air plasma discharge[J]. Plasma Science and Technology, 2018, 20(1): 14004-014004. DOI: 10.1088/2058-6272/aa8f3c

A numerical simulation study on active species production in dense methane-air plasma discharge

Funds: This work was in part financially supported by National Natural Science Foundation of China (Grant Nos. 11465013 and 11705080), and the Natural Science Foundation of Jiangxi Province (Grant Nos. 20171ACB21019, 20161BAB201013, 20171BCD40005, and 20142BAB212008).
More Information
  • Recently, low-temperature atmospheric pressure plasmas have been proposed as a potential type of ‘reaction carrier’ for the conversion of methane into value-added chemicals. In this paper, the multi-physics field coupling software of COMSOL is used to simulate the detailed discharge characteristics of atmospheric pressure methane-air plasma. A two-dimensional axisymmetric fluid model is constructed, in which 77 plasma chemical reactions and 32 different species are taken into account. The spatial density distributions of dominant charged ions and reactive radical species, such as CH4+, CH3+, N2+, O2+, H, O, CH3, and CH2, are presented, which is due to plasma chemical reactions of methane/air dissociation (or ionization) and reforming of small fragment radical species. The physicochemical mechanisms of methane dissociation and radical species recombination are also discussed and analyzed.
  • Related Articles

    [1]B I MIN, D K DINH, D H LEE, T H KIM, S CHOI. Numerical modelling of a low power non-transferred arc plasma reactor for methane conversion[J]. Plasma Science and Technology, 2019, 21(6): 64005-064005. DOI: 10.1088/2058-6272/ab00ce
    [2]Jun DENG (邓俊), Liming HE (何立明), Xingjian LIU (刘兴建), Yi CHEN (陈一). Numerical simulation of plasma-assisted combustion of methane-air mixtures in combustion chamber[J]. Plasma Science and Technology, 2018, 20(12): 125502. DOI: 10.1088/2058-6272/aacdef
    [3]Hualei ZHANG (张华磊), Liming HE (何立明), Jinlu YU (于锦禄), Wentao QI (祁文涛), Gaocheng CHEN (陈高成). Investigation of flame structure in plasma-assisted turbulent premixed methane-air flame[J]. Plasma Science and Technology, 2018, 20(2): 24001-024001. DOI: 10.1088/2058-6272/aa9850
    [4]N C ROY, M R TALUKDER, A N CHOWDHURY. OH and O radicals production in atmospheric pressure air/Ar/H2O gliding arc discharge plasma jet[J]. Plasma Science and Technology, 2017, 19(12): 125402. DOI: 10.1088/2058-6272/aa86a7
    [5]N KHADIR, K KHODJA, A BELASRI. Methane conversion using a dielectric barrier discharge reactor at atmospheric pressure for hydrogen production[J]. Plasma Science and Technology, 2017, 19(9): 95502-095502. DOI: 10.1088/2058-6272/aa6d6d
    [6]R. KHOSHKHOO, A. JAHANGIRIAN. Numerical Simulation of Stall Flow Control Using a DBD Plasma Actuator in Pulse Mode[J]. Plasma Science and Technology, 2016, 18(9): 933-942. DOI: 10.1088/1009-0630/18/9/10
    [7]CHEN Qi (陈琪), YAN Limin (闫丽敏), ZHANG Hao (张浩), LI Guoxiu (李国岫). Electrical Characteristics, Electrode Sheath and Contamination Layer Behavior of a Meso-Scale Premixed Methane-Air Flame Under AC/DC Electric Fields[J]. Plasma Science and Technology, 2016, 18(5): 569-576. DOI: 10.1088/1009-0630/18/5/21
    [8]ZHUANG Juan (庄娟), SUN Jizhong (孙继忠), SANG Chaofeng (桑超峰), WANG Dezhen (王德真). Numerical Simulation of VHF E®ects on Densities of Important Species for Silicon Film Deposition at Atmospheric Pressure[J]. Plasma Science and Technology, 2012, 14(12): 1106-1109. DOI: 10.1088/1009-0630/14/12/13
    [9]ZHANG Ling(张玲), WANG Lijun (王立军), JIA Shenli(贾申利), YANG Dingge(杨鼎革), SHI Zongqian(史宗谦). Numerical simulation of high-current vacuum arc with consideration of anode vapor[J]. Plasma Science and Technology, 2012, 14(4): 285-292. DOI: 10.1088/1009-0630/14/4/04
    [10]SUN Yanpeng (孙艳朋), NIE Yong (聂勇), WU Angshan (吴昂山), JI Dengxiang(姬登祥), YU Fengwen (于凤文), JI Jianbing (计建炳. Carbon Dioxide Reforming of Methane to Syngas by Thermal Plasma[J]. Plasma Science and Technology, 2012, 14(3): 252-256. DOI: 10.1088/1009-0630/14/3/12

Catalog

    Article views (359) PDF downloads (697) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return