Non-Oxidative Reforming of Methane in a Mini-Gliding Arc Discharge Reactor: Effects of Feed Methane Concentration, Feed Flow Rate, Electrode Gap Distance, Residence Time, and Catalyst Distance

被引:44
作者
Rueangjitt, Nongnuch [1 ]
Sreethawong, Thammanoon [1 ,2 ]
Chavadej, Sumaeth [1 ,2 ]
Sekiguchi, Hidetoshi [3 ]
机构
[1] Chulalongkorn Univ, Petr & Petrochem Coll, Bangkok 10330, Thailand
[2] Chulalongkorn Univ, Ctr Petr Petrochem & Adv Mat, Bangkok 10330, Thailand
[3] Tokyo Inst Technol, Dept Chem Engn, Meguro Ku, Tokyo 1528552, Japan
关键词
Gliding arc discharge reactor; Methane conversion; Combined plasma-catalysis; DIELECTRIC-BARRIER DISCHARGES; CO2-CONTAINING NATURAL-GAS; PARTIAL OXIDATION; NONTHERMAL PLASMA; PULSED DISCHARGE; CORONA DISCHARGE; HYBRID REACTION; CONVERSION; HYDROGEN; MECHANISM;
D O I
10.1007/s11090-011-9299-y
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In this work, a mini-gliding arc discharge reactor was employed for the reforming of methane under ambient temperature and pressure operation. Acetylene and hydrogen were produced dominantly with high selectivities of similar to 70-90 and similar to 75%, respectively. The results showed that both methane conversion and product selectivities depended strongly on various operating parameters, including feed methane concentration, feed flow rate, electrode gap distance, residence time, and the presence of a reforming catalyst (as a function of catalyst distance). The Ni catalyst-loaded porous alumina-silica plate was used to study the catalytic effect on the process performance at various residence times. A considerable enhancement of methane conversion and product yields was achieved in the combined plasma-catalytic system, particularly at a longer residence time. The catalyst distance, or packing position of catalyst plate, was also found to be an important factor affecting the process performance of the combined plasma-catalytic methane reforming. The closer catalyst distance led to the greater methane conversion because of the greater possibility of adsorption-desorption interactions of excited gaseous species on the catalyst surface to enhance subsequent reactions.
引用
收藏
页码:517 / 534
页数:18
相关论文
共 38 条
[1]   Modeling of hydrogen-rich gas production by plasma reforming of hydrocarbon fuels [J].
Benilov, MS ;
Naidis, GV .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2006, 31 (06) :769-774
[2]   Plasma assisted dry methane reforming using gliding arc gas discharge: Effect of feed gases proportion [J].
Bo, Zheng ;
Yan, Jianhua ;
Li, Xiaodong ;
Chi, Yong ;
Cen, Kefa .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (20) :5545-5553
[3]  
Cullity B. D., 1978, ELEMENTS XRAY DIFFRA
[4]   GLIDING ARC - APPLICATIONS TO ENGINEERING AND ENVIRONMENT CONTROL [J].
CZERNICHOWSKI, A .
PURE AND APPLIED CHEMISTRY, 1994, 66 (06) :1301-1310
[5]   Non-thermal atmospheric pressure discharges [J].
Fridman, A ;
Chirokov, A ;
Gutsol, A .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2005, 38 (02) :R1-R24
[6]  
Hammer T, 2003, ACS SYM SER, V852, P292
[7]   Methane conversion into aromatics in a direct plasma-catalytic process [J].
Heintze, M ;
Magureanu, M .
JOURNAL OF CATALYSIS, 2002, 206 (01) :91-97
[8]   Converting methane by using an RF plasma reactor [J].
Hsieh, LT ;
Lee, WJ ;
Chen, CY ;
Chang, MB ;
Chang, HC .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 1998, 18 (02) :215-239
[9]   Reforming of isooctane over Ni-Al2O3 catalysts for hydrogen production:: Effects of catalyst preparation method and nickel loading [J].
Ibrahim, Hussam H. ;
Kumar, Prashant ;
Idem, Raphael O. .
ENERGY & FUELS, 2007, 21 (02) :570-580
[10]   Kinetic modeling of plasma methane conversion in a dielectric barrier discharge [J].
Indarto, Antonius ;
Coowanitwong, Nowarat ;
Choi, Jae-Wook ;
Lee, Hwaung ;
Song, Hyung Keun .
FUEL PROCESSING TECHNOLOGY, 2008, 89 (02) :214-219