Chemical Kinetics of Methane Pyrolysis in Microwave Plasma at Atmospheric Pressure

被引:57
作者
Dors, Miroslaw [1 ]
Nowakowska, Helena [1 ]
Jasinski, Mariusz [1 ]
Mizeraczyk, Jerzy [1 ,2 ]
机构
[1] Polish Acad Sci, Inst Fluid Flow Machinery, Ctr Plasma & Laser Engn, PL-80231 Gdansk, Poland
[2] Gdynia Maritime Univ, Dept Marine Elect, PL-81225 Gdansk, Poland
关键词
Pyrolysis; Modeling; Methane; Microwave plasma; RATE CONSTANTS; OXIDATION; CHEMISTRY; SOOT; HYDROCARBONS; MECHANISM; HYDROGEN; TORCH;
D O I
10.1007/s11090-013-9510-4
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Results of chemical kinetics modeling in methane subjected to the microwave plasma at atmospheric pressure are presented in this paper. The reaction mechanism is based on the methane oxidation model without reactions involving nitrogen and oxygen. For the numerical calculations 0D and 1D models were created. 0D model uses Calorimetric Bomb Reactor whereas 1D model is constructed either as Plug Flow Reactor or as a chain of Plug Flow Reactor and Calorimetric Bomb Reactor. Both models explain experimental results and show the most important reactions responsible for the methane conversion and production of H-2, C2H2, C2H4 and C2H6 detected in the experiment. Main conclusion is that the chemical reactions in our experiment proceed by a thermal process and the products can be defined by considering thermodynamic equilibrium. Temperature characterizing the methane pyrolysis is 1,500-2,000 K, but plasma temperature is in the range of 4,000-5,700 K, which means that methane pyrolysis process is occurring outside the plasma region in the swirl gas flowing around the plasma.
引用
收藏
页码:313 / 326
页数:14
相关论文
共 27 条
[1]   EVALUATED KINETIC DATA FOR COMBUSTION MODELING SUPPLEMENT-I [J].
BAULCH, DL ;
COBOS, CJ ;
COX, RA ;
FRANK, P ;
HAYMAN, G ;
JUST, T ;
KERR, JA ;
MURRELLS, T ;
PILLING, MJ ;
TROE, J ;
WALKER, RW ;
WARNATZ, J .
JOURNAL OF PHYSICAL AND CHEMICAL REFERENCE DATA, 1994, 23 (06) :847-1033
[2]   RATE CONSTANTS FOR CH(X2PI) REACTIONS AT LOW TOTAL PRESSURES [J].
BECKER, KH ;
ENGELHARDT, B ;
WIESEN, P ;
BAYES, KD .
CHEMICAL PHYSICS LETTERS, 1989, 154 (04) :342-348
[3]  
BOHLAND T, 1985, BER BUNSEN PHYS CHEM, V89, P1110
[4]   HIGH-TEMPERATURE REACTIONS OF TRIPLET METHYLENE AND KETENE WITH RADICALS [J].
FRANK, P ;
BHASKARAN, KA ;
JUST, T .
JOURNAL OF PHYSICAL CHEMISTRY, 1986, 90 (10) :2226-2231
[5]   KINETIC MODELING AND SENSITIVITY ANALYSIS OF NITROGEN-OXIDE FORMATION IN WELL-STIRRED REACTORS [J].
GLARBORG, P ;
MILLER, JA ;
KEE, RJ .
COMBUSTION AND FLAME, 1986, 65 (02) :177-202
[6]   Development and testing of a comprehensive chemical mechanism for the oxidation of methane [J].
Hughes, KJ ;
Turányi, T ;
Clague, AR ;
Pilling, MJ .
INTERNATIONAL JOURNAL OF CHEMICAL KINETICS, 2001, 33 (09) :513-538
[7]   Atmospheric pressure microwave plasma source for hydrogen production [J].
Jasinski, M. ;
Czylkowski, D. ;
Hrycak, B. ;
Dors, M. ;
Mizeraczyk, J. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (26) :11473-11483
[8]   Production of hydrogen via methane reforming using atmospheric pressure microwave plasma [J].
Jasinski, Mariusz ;
Dors, Miroslaw ;
Mizeraczyk, Jerzy .
JOURNAL OF POWER SOURCES, 2008, 181 (01) :41-45
[9]  
Jasinski M, 2008, CHEM LISTY, V102, pS1332
[10]   Destruction of Freon HFC-134a Using a Nozzleless Microwave Plasma Source [J].
Jasinski, Mariusz ;
Dors, Miroslaw ;
Mizeraczyk, Jerzy .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 2009, 29 (05) :363-372