DocumentCode :
3503785
Title :
Production of hydrogen and carbon black by methane decomposition using DC-RF hybrid thermal plasmas
Author :
Kim, K.S. ; Seo, J.H. ; Nam, J.S. ; Ju, W.T. ; Paek, K.H. ; Hong, S.H.
Author_Institution :
Seoul Nat. Univ., South Korea
fYear :
2004
fDate :
1-1 July 2004
Firstpage :
220
Abstract :
Summary form only given. In this experimental work, H/sub 2/ and CB are produced from decomposition of methane (CH/sub 4/) by using DC-RF hybrid thermal plasmas. The DC-RF hybrid plasma offers a larger volume of hot core region and lower velocity of thermal plasma flow compare to DC plasma jets. Consequently, it provides a longer residence time for the reactant gas flowing along the high temperature region with relatively uniform plasma fields across the reaction chamber. In addition, an easy ignition and stable operation of the RF torch at atmospheric pressure condition are possible due to high enthalpy fluxes supplied from the combined DC plasma jet. Plasma temperatures and equilibrium compositions of CH/sub 4//Ar mixture are obtained using thermodynamic data and by Gibbs free energy minimization method, respectively. The temperature and velocity distributions inside the reactor are also computed to get reactor design data and examine the heat balance over the reaction chamber. Lastly, one-dimensional gas phase kinetic simulations on the methane decomposition process are performed to estimate major species and their mole fraction by considering detailed reaction mechanism. The injected methane is converted mostly into H/sub 2/ with a small volume fraction of C/sub 2/H/sub 2/, and the fine carbon particles of 50-200 nm are identified from their TEM images.
Keywords :
carbon; dissociation; enthalpy; free energy; hydrogen; plasma chemistry; plasma flow; plasma jets; plasma materials processing; plasma simulation; plasma temperature; plasma thermodynamics; plasma torches; transmission electron microscopy; 50 to 200 nm; C; DC plasma jet; DC-RF hybrid thermal plasmas; Gibbs free energy; H/sub 2/; RF torch; TEM; carbon black production; carbon particles; enthalpy; hydrogen production; methane decomposition; one-dimensional gas phase kinetic simulations; plasma equilibrium; plasma temperatures; reaction mechanism; thermal plasma flow; thermodynamic data; uniform plasma fields; velocity distributions; Argon; Atmospheric-pressure plasmas; Hydrogen; Ignition; Inductors; Plasma stability; Plasma temperature; Production; Radio frequency; Thermal decomposition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 2004. ICOPS 2004. IEEE Conference Record - Abstracts. The 31st IEEE International Conference on
Conference_Location :
Baltimore, MD, USA
ISSN :
0730-9244
Print_ISBN :
0-7803-8334-6
Type :
conf
DOI :
10.1109/PLASMA.2004.1339821
Filename :
1339821
Link To Document :
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