• DocumentCode
    1136803
  • Title

    Removal of Volatile Organic Compounds in Atmospheric Pressure Air by Means of Direct Current Glow Discharges

  • Author

    Jiang, Chunqi ; Mohamed, Abdel-Aleam H. ; Stark, Robert H. ; Yuan, James H. ; Schoenbach, Karl H.

  • Author_Institution
    Center for Bioelectrics, Old Dominion Univ., Norfolk, VA, USA
  • Volume
    33
  • Issue
    4
  • fYear
    2005
  • Firstpage
    1416
  • Lastpage
    1425
  • Abstract
    A nonthermal plasma with an electron density on the order of 10 ^12~\\hbox {cm$^{-3}$} and a gas temperature of 2000 K was generated in atmospheric pressure air, using a microhollow cathode discharge as plasma cathode. The plasma was sustained in a \\sim1~\\hbox {mm$^3$} micro reactor, by a voltage of 470 V between the plasma cathode and a planar anode, and at currents ranging from 12 to 22 mA. This direct current glow discharge has been used to study the remediation of methane and benzene, two of the most stable volatile organic compounds (VOCs). The removal fraction for 300-ppm methane in atmospheric pressure air, flowing through the 0.5-mm thick plasma layer, with a residence time of the gas in the plasma of less than 0.5 ms, was measured at 80% with an energy density of 4 kJ/L. For benzene, the remediation rate is as high as 90%, comparable to results obtained with low pressure glow discharges. The energy efficiency for benzene remediation is 0.9 g/kWh, higher than that obtained for benzene remediation in low pressure glow discharges in noble gases. However, the VOC fraction remaining was found to be limited to values of approximately 0.1 and 0.05 for methane and benzene, respectively. In addition to experimental studies, the VOC dissociation mechanism in a VOC/dry air mixture plasma was modeled using a zero-dimensional plasma chemistry code. The modeling results have shown that atomic oxygen impact reactions are the dominant dissociation reactions for VOC destruction in this kind of glow discharge. Diffusion of atomic oxygen to the dielectric walls of the reactor is assumed to cause the observed limitation in the VOC destruction rate and efficiency.
  • Keywords
    dissociation; glow discharges; organic compounds; plasma applications; plasma chemistry; plasma density; plasma transport processes; plasma-wall interactions; 0.5 mm; 12 to 22 mA; 2000 K; 470 V; atmospheric pressure air; atomic oxygen diffusion; atomic oxygen impact reactions; benzene; dielectric walls; direct current glow discharges; dissociation reactions; electron density; energy efficiency; gas residence time; methane; microhollow cathode discharge; microreactor; nonthermal plasma; planar anode; plasma cathode; plasma chemistry code; remediation rate; volatile organic compound removal; Atmospheric-pressure plasmas; Cathodes; Glow discharges; Inductors; Plasma chemistry; Plasma density; Plasma measurements; Plasma stability; Plasma temperature; Volatile organic compounds; Atmospheric pressure air; chemical decontamination; glow discharge; nonthermal plasma; volatile organic compounds;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2005.851970
  • Filename
    1495591