DocumentCode
993954
Title
Methane and Ethane Decomposition in an Atmospheric-Pressure Plasma Jet
Author
Sanchez-Gonzalez, Rodrigo ; Kim, Yongho ; Rosocha, Louis A. ; Abbate, Sara
Author_Institution
Los Alamos Nat. Lab., Los Alamos
Volume
35
Issue
6
fYear
2007
Firstpage
1669
Lastpage
1676
Abstract
This paper reports on studies obtained from RF-driven atmospheric-pressure plasma-jet excitation of methane and ethane. Differentiation with other works is achieved in that others have considered hydrocarbon decomposition at either low pressure or high temperature. In our experiments, we can clarify the effect of pure-plasma treatment of hydrocarbons, as opposed to the thermal effect of gas heating that results in pyrolysis. Gas-chromatography analysis was used to detect and quantify the main decomposition products. Kinetic modeling of the pertinent chemistry was performed by dividing the reactive system in two main parts: a plasma region where the electron impact processes leading to decomposition are considered and a postplasma region where recombination of nonstable species occurs. A reasonable qualitative agreement between the experimentally measured by-product concentrations and the calculations was achieved. It is observed that our proposed recombination mechanism correctly predicts ethane and ethylene formation from a discharge and methane, ethylene, propane, and acetylene formation from the discharge. By means of calculations, the main role of radicals in the pertinent hydrocarbon chemistry under nonthermal plasma conditions is confirmed.
Keywords
chromatography; organic compounds; plasma chemistry; plasma jets; pyrolysis; atmospheric-pressure plasma jet; electron impact; ethane decomposition; gas chromatography analysis; gas heating; hydrocarbons; kinetic modeling; methane decomposition; nonstable species recombination; pure-plasma treatment; pyrolysis; thermal effect; Atmospheric-pressure plasmas; Combustion; Electrons; Hydrocarbons; Plasma chemistry; Plasma measurements; Plasma properties; Plasma sources; Plasma temperature; Spontaneous emission; Atmospheric-pressure plasma jet (APPJ); electron-impact process; plasma-assisted combustion; recombination model;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/TPS.2007.910743
Filename
4392555
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