Ammonia synthesis using atmospheric pressure fluidized bed plasma

被引:7
作者
Zen, Shungo [1 ]
Takeuchi, Nozomi [1 ]
Teramoto, Yoshiyuki [2 ]
机构
[1] Tokyo Inst Technol, Dept Elect & Elect Engn, 2-12-1 Ookayama,Meguro Ku, Tokyo 1528552, Japan
[2] Natl Inst Adv Ind Sci andTechnol, Environm Management Res Inst, 16-1 Onogawa, Tsukuba, Ibaraki 3058569, Japan
关键词
fluidized bed; dielectric barrier discharge; ammonia synthesis; plasma catalysis; surface reaction; HYDROGEN-STORAGE; MAGNESIUM NITRIDE; NONTHERMAL PLASMA; NANOPARTICLES;
D O I
10.1088/1361-6463/ad144b
中图分类号
O59 [应用物理学];
学科分类号
摘要
In recent years, extensive research has been conducted on ammonia synthesis using catalysts under mild conditions and by combining plasma with the catalysts. Increasing the contact area between the catalyst surface and atmospheric pressure dielectric barrier discharge (DBD) is crucial for improving the ammonia synthesis efficiency. In this study, we present a fluidized bed dielectric barrier discharge (FB-DBD) method that can be used to form FB-DBD plasma through the electrohydrodynamics of DBD discharge without a feed gas. We performed ammonia synthesis experiments using our FB-DBD reactor. The results indicate that the FB-DBD plasma can achieve an energy yield of 5.9 g-NH3/kWh, which is about twice higher than that of conventional DBD plasma. Consequently, it can be implemented in various applications as a new reaction field between solids and gases where surface reactions are predominant.
引用
收藏
页数:7
相关论文
共 26 条
  • [1] Adrianto D., 2020, INT J PLASMA ENV SCI, V14, DOI 10.34343/ijpest.2020.14.e01003
  • [2] Process Intensification in Ammonia Synthesis Using Novel Coassembled Supported Microporous Catalysts Promoted by Nonthermal Plasma
    Akay, Galip
    Zhang, Kui
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2017, 56 (02) : 457 - 468
  • [3] CH4 dry reforming in fluidized-bed plasma reactor enabling enhanced plasma-catalyst coupling
    Chen, Xiaozhong
    Sheng, Zunrong
    Murata, Sho
    Zen, Shungo
    Kim, Hyun-Ha
    Nozaki, Tomohiro
    [J]. JOURNAL OF CO2 UTILIZATION, 2021, 54
  • [4] Plasma catalytic ammonia synthesis on Ni nanoparticles: The size effect
    Gorky, Fnu
    Best, Anthony
    Jasinski, Jacek
    Allen, Bryan J.
    Alba-Rubio, Ana C.
    Carreon, Maria L.
    [J]. JOURNAL OF CATALYSIS, 2021, 393 (393) : 369 - 380
  • [5] Efficient and Stable Ammonia Synthesis by Self-Organized Flat Ru Nanoparticles on Calcium Amide
    Inoue, Yasunori
    Kitano, Masaaki
    Kishida, Kazuhisa
    Abe, Hitoshi
    Niwa, Yasuhiro
    Sasase, Masato
    Fujita, Yusuke
    Ishikawa, Hiroki
    Yokoyama, Toshiharu
    Hara, Michikazu
    Hosono, Hideo
    [J]. ACS CATALYSIS, 2016, 6 (11): : 7577 - 7584
  • [6] Atmospheric-pressure nonthermal plasma synthesis of ammonia over ruthenium catalysts
    Kim, Hyun-Ha
    Teramoto, Yoshiyuki
    Ogata, Atsushi
    Takagi, Hideyuki
    Nanba, Tetsuya
    [J]. PLASMA PROCESSES AND POLYMERS, 2017, 14 (06)
  • [7] Kim Hyun-Ha., 2021, INT J PLASMA ENV SCI, V15, pe01004, DOI [10.34343/ijpest.2021.15. e01004, DOI 10.34343/IJPEST.2021.15.E01004]
  • [8] Investigating the operation parameters for ammonia synthesis in dielectric barrier discharge reactors
    Li, S.
    van Raak, T.
    Gallucci, F.
    [J]. JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2020, 53 (01)
  • [9] Potential of binary lithium magnesium nitride for hydrogen storage applications
    Lu, Jun
    Fang, Zhigang Zak
    Choi, Young Joon
    Sohn, Hong Yong
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2007, 111 (32) : 12129 - 12134
  • [10] Catalytic effects of metal-loaded membrane-like alumina tubes on ammonia synthesis in atmospheric pressure plasma by dielectric barrier discharge
    Mizushima, Takanori
    Matsumoto, Kazumi
    Ohkita, Hironobu
    Kakuta, Noriyoshi
    [J]. PLASMA CHEMISTRY AND PLASMA PROCESSING, 2007, 27 (01) : 1 - 11