Catalysis-spillover-membrane-2 - The rate enhancement of methanol steam reforming reaction in a membrane catalytic reactor

被引:10
作者
Rei, BMH [1 ]
Yeh, GT [1 ]
Pan, CW [1 ]
机构
[1] Chang Gung Univ, Dept Chem & Mat Engn, Tao Yuan 333, Taiwan
关键词
catalytic membrane reactor; spillover; rate enhancement; steam reforming; methanol; n-hexane; hydrogen;
D O I
10.1016/j.cattod.2004.04.058
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Steam reforming reaction of methanol was carried out with commercial G66B catalyst (CuOZnO) and with two modified catalysts, 1 % Pd/G66B and 1% La2O3/G66B at a temperature of 270, 310 and 350 degreesC under a pressure of 0.1, 0.4 and 0.9 MPa absolute pressure. The space velocity ranges from 427 to 460 h(-1) to allow the conversion level small between 3 and 17 mol%. Similar reactions rate studies were carried out with the catalytic reactor inserted with a palladium membrane tube at 310 degreesC and 0.9 MPa absolute pressure. It was found that the reaction rates in the catalytic membrane rector (CMR) were 50-100% faster than the corresponding reaction without the Pd-membrane in the reactor. Likewise, rate enhancement was also observed in the steam reforming reactions of n-hexane at 500 degreesC under an absolute reaction pressure of 0.9 MPa. The rate enhancement by the use of Pd-membrane is attributed to the reverse hydrogen spillover from the catalyst sites to the palladium surface of membrane; this hydrogen spillover enables the hydrogen occupancy on the catalyst sites to be shortened and become more efficient for catalytic turning over. Since the observed rate enhancement takes place in the forward reaction, it is proposed that the general phenomena of higher reaction conversion by the use of catalytic membrane reactor is a result of speed up forward reaction rate not the reduced backward reaction rate as generally proposed in the literature. (C) 2004 Published by Elsevier B.V.
引用
收藏
页码:167 / 172
页数:6
相关论文
共 20 条
[11]  
KUSSNER A, 1962, Z ELEKTROCHEM, V66, P675
[12]   An integrated purification and production of hydrogen with a palladium membrane-catalytic reactor [J].
Lin, YM ;
Lee, GL ;
Rei, MH .
CATALYSIS TODAY, 1998, 44 (1-4) :343-349
[13]   HYDROGEN TEMPERATURE-PROGRAMMED DESORPTION (H-2 TPD) OF SUPPORTED PLATINUM CATALYSTS [J].
MILLER, JT ;
MEYERS, BL ;
MODICA, FS ;
LANE, GS ;
VAARKAMP, M ;
KONINGSBERGER, DC .
JOURNAL OF CATALYSIS, 1993, 143 (02) :395-408
[14]   Methanol-steam reforming on Cu/ZnO/Al2O3 catalysts.: Part 2.: A comprehensive kinetic model [J].
Peppley, BA ;
Amphlett, JC ;
Kearns, LM ;
Mann, RF .
APPLIED CATALYSIS A-GENERAL, 1999, 179 (1-2) :31-49
[15]  
REI MH, 2003, SCI TECHNOLOGY CATAL
[16]   KINETICS OF CATALYTIC STEAM REFORMING OF METHANOL IN A CSTR REACTOR [J].
SANTACESARIA, E ;
CARRA, S .
APPLIED CATALYSIS, 1983, 5 (03) :345-358
[17]   ASYMMETRIC PD-AG STAINLESS-STEEL CATALYTIC MEMBRANES FOR METHANE STEAM REFORMING [J].
SHU, J ;
GRANDJEAN, BPA ;
KALIAGUINE, S .
CATALYSIS TODAY, 1995, 25 (3-4) :327-332
[18]   STEAM REFORMING REACTIONS OF METHANOL OVER NICKEL AND COPPER-CATALYSTS [J].
SU, TB ;
REI, MH .
JOURNAL OF THE CHINESE CHEMICAL SOCIETY, 1991, 38 (06) :535-541
[19]  
TEICHNER SJ, 1993, HIST PROSPECTIVE SPI
[20]  
VANMAO RL, 1990, APPL CATAL, V65, P143