Hydrogen production by the steam reforming of synthetic biogas in atmospheric-pressure microwave (915 MHz) plasma

被引:0
|
作者
Bartosz Hrycak
J. Mizeraczyk
D. Czylkowski
M. Dors
M. Budnarowska
M. Jasiński
机构
[1] Polish Academy of Sciences,Institute of Fluid Flow Machinery
[2] Gdynia Maritime University,Department of Marine Electronics
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
This paper is a contribution to the development of microwave plasma-based technology aimed at efficient hydrogen (H2) production from a so-called synthetic biogas, considered a mixture of methane (CH4) and carbon dioxide (CO2), which can contain up to 70% CH4. In this work, we tested the performance of a waveguide-supplied metal cylinder-based microwave plasma source (MPS) operating at 915 MHz at atmospheric pressure as a tool for the efficient production of H2 in the steam reforming of the synthetic biogas. The test showed that the steam reforming of the synthetic biogas could be carried out under a wide range of working parameters without soot formation and extinction of the microwave discharge. We found that there is a minimal H2Osteam consumption rate for a given CH4 input volume content, which ensures stable operation of the MPS (no soot). The experiments did not show that increasing the amount of H2Osteam rate above the minimal value for a given CH4 input volume content results in an increase in the H2 production rate, energy yield, CH4 conversion degree, and H2 output concentration. To describe the MPS performance, which also takes into account a factor of the utilization of the CH4 feedstock, we introduced a new parameter, called an energy–CH4 feedstock consumption yield. The best results in terms of the H2 production rate, the energy yield, and the CH4 conversion degree were 239 g[H2]/h 36.8 g[H2]/kWh, and 74.3%, respectively. This shows that the application of the steam reforming, instead of the dry reforming, resulted in a 1.5-fold increase of the H2 production rate and the corresponding energy yield.
引用
收藏
相关论文
共 50 条
  • [21] Atmospheric pressure microwave plasma source for hydrogen production
    Jasinski, M.
    Czylkowski, D.
    Hrycak, B.
    Dors, M.
    Mizeraczyk, J.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (26) : 11473 - 11483
  • [22] PRODUCTION AND APPLICATIONS OF MICROWAVE SURFACE-WAVE PLASMA AT ATMOSPHERIC-PRESSURE
    MOISAN, M
    PANTEL, R
    HUBERT, J
    BLOYET, E
    LEPRINCE, P
    MAREC, J
    RICARD, A
    JOURNAL OF MICROWAVE POWER AND ELECTROMAGNETIC ENERGY, 1979, 14 (01) : 57 - 61
  • [23] Optical Emission Spectroscopy of Microwave (915 MHz) Plasma in Atmospheric Pressure Nitrogen with Addition of Ethanol Vapour
    Miotk, R.
    Jasinski, M.
    Mizeraczyk, J.
    ACTA PHYSICA POLONICA A, 2014, 125 (06) : 1329 - 1331
  • [24] Plasma decomposition of methanol to produce hydrogen with an atmospheric-pressure nitrogen microwave plasma torch
    Niu, Yu-Long
    Li, Shou-Zhe
    Wang, Xing-Chang
    Cao, Shu-Li
    Yang, Dezheng
    Zhang, Jialiang
    JOURNAL OF APPLIED PHYSICS, 2023, 134 (01)
  • [25] STUDY OF THE NO SYNTHESIS IN A MICROWAVE PLASMA AT ATMOSPHERIC-PRESSURE
    TARAS, P
    DUSEK, V
    VYSKOCIL, J
    ACTA PHYSICA SLOVACA, 1985, 35 (02) : 112 - 117
  • [26] Simulation of steam reforming of biogas in an industrial reformer for hydrogen production
    Chouhan, Kantilal
    Sinha, Shishir
    Kumar, Shashi
    Kumar, Surendra
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (53) : 26809 - 26824
  • [27] Droplet Striations Formed in a 900-MHz Microwave Argon Atmospheric-Pressure Plasma Jet
    Kang, Sung Kil
    Mohamed, Abdel-Aleam H.
    Lee, Hyun Wook
    Lee, Jae Koo
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2011, 39 (11) : 2318 - 2319
  • [28] Steam Plasma Methane Reforming for Hydrogen Production
    M. Hrabovsky
    M. Hlina
    V. Kopecky
    A. Maslani
    P. Krenek
    A. Serov
    O. Hurba
    Plasma Chemistry and Plasma Processing, 2018, 38 : 743 - 758
  • [29] Steam Plasma Methane Reforming for Hydrogen Production
    Hrabovsky, M.
    Hlina, M.
    Kopecky, V.
    Maslani, A.
    Krenek, P.
    Serov, A.
    Hurba, O.
    PLASMA CHEMISTRY AND PLASMA PROCESSING, 2018, 38 (04) : 743 - 758
  • [30] Production of hydrogen-rich syngas from methane reforming by steam microwave plasma
    Choi, Dae Hyun
    Chun, Se Min
    Ma, Suk Hwal
    Hong, Yong Cheol
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2016, 34 : 286 - 291