Decomposition of formaldehyde in strong ionization non-thermal plasma at atmospheric pressure

被引:14
|
作者
Asilevi, P. J. [1 ]
Yi, C. W. [1 ]
Li, J. [1 ]
Nawaz, M. I. [1 ]
Wang, H. J. [1 ]
Yin, L. [1 ]
Junli, Z. [1 ]
机构
[1] Jiangsu Univ, Sch Environm, Safety Engn, Zhenjiang, Peoples R China
关键词
Strong ionization; DBD; Formaldehyde; Decomposition mechanism; Maxwell equation; VOLATILE ORGANIC-COMPOUNDS; REMOVAL; DESTRUCTION; AIR; OPTIMIZATION; BENZENE; REACTOR; VOCS;
D O I
10.1007/s13762-019-02476-3
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Atmospheric emissions of volatile organic compounds possess a major threat to the environment, and controlling them is a key task for air pollution prevention and control. This paper presents a comprehensive discussion on the degradation mechanism and pathways for the efficient removal of formaldehyde (HCHO) in a synthetic polluted air stream by strong ionization dielectric barrier discharge (DBD) plasma at atmospheric pressure. The effect of specific input energy, oxygen concentration, relative humidity (RH), gas residence time, and initial HCHO concentration was studied. Findings reveal that higher voltage caused an increase in discharge power, while the current density dropped from 180.53 to 55.10 mA and 71.06 to 51.99 mA when oxygen concentration and RH increased from 2.4 to 20.6% and 18.9 to 84.1%, respectively. The key degradation active species were O-center dot and (OH)-O-center dot generated from the electrical breakdown of oxygen molecules and water vapour. Also, the removal efficiency reached 95.12% for the lowest initial concentration of 100 ppm at ambient temperature. Destruction of HCHO molecules can be achieved via direct electron attack or indirect gas-phase radical reaction. The strong ionization DBD is a promising technology to remove low concentration formaldehyde from polluted air streams.
引用
收藏
页码:765 / 776
页数:12
相关论文
共 50 条
  • [21] Plasma Thorns: Atmospheric Pressure Non-Thermal Plasma Source for Dentistry Applications
    Liang, Yongdong
    Li, Yinglong
    Sun, Ke
    Zhang, Qian
    Li, Wei
    Zhu, Weidong
    Zhang, Jue
    Fang, Jing
    PLASMA PROCESSES AND POLYMERS, 2015, 12 (10) : 1069 - 1074
  • [22] Spectroscopic investigation of non-thermal plasma generated in atmospheric pressure 'Plasma Pencil'
    Anjum, Zakia
    Rehman, N. U.
    Younus, Maria
    Sarwar, Sajjad
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2020, 34 (11):
  • [23] Non-thermal atmospheric pressure discharges
    Fridman, A
    Chirokov, A
    Gutsol, A
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2005, 38 (02) : R1 - R24
  • [24] Decomposition of chlorofluorocarbon by non-thermal plasma
    Kang, HC
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2002, 8 (05) : 488 - 492
  • [25] Measurement of electrical characteristics of atmospheric pressure non-thermal He plasma
    Anghel, S. D.
    Simon, A.
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2007, 18 (08) : 2642 - 2648
  • [26] A novel approach to the pacemaker infection with non-thermal atmospheric pressure plasma
    Yuchen Zhang
    Yu Li
    Yinglong Li
    Shuang Yu
    Haiyan Li
    Jue Zhang
    The European Physical Journal Special Topics, 2017, 226 : 2901 - 2910
  • [27] Characterization of the Operational Modes of a Non-thermal Atmospheric Pressure Plasma Jet
    Demetillo, Mary Angelique
    Lopez, Jose L.
    2017 IEEE INTERNATIONAL CONFERENCE ON PLASMA SCIENCE (ICOPS), 2017,
  • [28] Influence of Atmospheric Pressure Non-thermal Plasma on Inactivation of Biofilm Cells
    Tomasz Czapka
    Irena Maliszewska
    Joanna Olesiak-Bańska
    Plasma Chemistry and Plasma Processing, 2018, 38 : 1181 - 1197
  • [29] Oxidation of elemental mercury using atmospheric pressure non-thermal plasma
    Byun, Youngchul
    Ko, Kyung Bo
    Cho, Moohyun
    Namkung, Won
    Shin, Dong Nam
    Lee, Jin Wook
    Koh, Dong Jun
    Kim, Kyoung Tae
    CHEMOSPHERE, 2008, 72 (04) : 652 - 658
  • [30] Influence of Atmospheric Pressure Non-thermal Plasma on Inactivation of Biofilm Cells
    Czapka, Tomasz
    Maliszewska, Irena
    Olesiak-Banska, Joanna
    PLASMA CHEMISTRY AND PLASMA PROCESSING, 2018, 38 (06) : 1181 - 1197