Browse > Article

Preparation of a Water-Selective Ceramic Membrane on a Porous Stainless Steel Support by Sol-Gel Process and Its Application to Dehydration Membrane Reactor  

Lee, Kew-Ho (Membranes and Separation Research Center, Korea Research Institute of Chemical Technology)
Sea, Bongkuk (Membranes and Separation Research Center, Korea Research Institute of Chemical Technology)
Youn, Min-Young (Membranes and Separation Research Center, Korea Research Institute of Chemical Technology)
Lee, Yoon-Gyu (Membranes and Separation Research Center, Korea Research Institute of Chemical Technology)
Lee, Dong-Wook (Membranes and Separation Research Center, Korea Research Institute of Chemical Technology)
Publication Information
Korean Membrane Journal / v.6, no.1, 2004 , pp. 10-15 More about this Journal
Abstract
We developed a water-selective ceramic composite membrane for use as a dehydration membrane reactor for dimethylether (DME) synthesis from methanol. The membranes were modified on the porous stainless steel support by the sol-gel method accompanied by a suction process. The improved membrane modification process was effective in increasing the vapour permselectivity by removal of defects and pinholes. The optimized alumina/silica composite membrane exhibited a water permeance of 1.14${\times}$10$^{-7}$ mol/$m^2$.sec.Pa and a water/methanol selectivity of 8.4 at permeation temperature of 25$0^{\circ}C$. The catalytic reaction for DME synthesis from methanol using the membrane was performed at 23$0^{\circ}C$, and the reaction conversion was compared with that of the conventional fixed-bed reactor. The reaction conversion of the membrane reactor was much higher than that of the conventional fixed-bed reactor. The reaction conversion of the membrane reactor and the conventional fixed-bed reactor was 82.5 and 68.0%, respectively. This improvement of reaction efficiency can last if the water vapour produced in the reaction zone is removed continuously.
Keywords
membrane reactor; ceramic membrane; water permselectivity; sol-gel process; dimethylether;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Y.-G. Lee, D.-W. Lee, S.-G. Kim, M.-Y. Youn, B. Sea, K.-H. Lee, and K-Y. Lee, Bull. Kor. Chem. Soc., 25, 687 (2004)
2 B. E. Yoldas, Ceramic Bull., 54, 289 (1975)
3 A. W. Verkerk, P. van Male, M. A. G. Vorstman, and J. T. F. Keurentjes, J. Membrane Sci., 193, 227 (2001)
4 M. Xu, J. H. Lunsfold, D. W. Goodman, and A. Bhattacharyya, Appl. Catal. A, 149, 289 (1997)
5 T. Sano, S. Ejiri, K. Yamada, Y. Kawakami, and H. Yanagishita, J. Membrane Sci., 123, 225 (1997)
6 B. Sea and K.-H. Lee, J. Ind. & Eng. Chem., 7, 417 (2001)
7 R. P. W. Struis, S. Stucki, and M. Wiedorn, J. Membrane Sci., 113, 93 (1996)
8 H. P. Hesieh, 'Inorganic Membranes for Separation and Reaction,' Elsevier, Amsterdam (1996)
9 H.-S. Roh, K.-W. Jun, J.-W. Kim, and V. Vishwanathan, Chem. Lett., 33, 598 (2004)
10 D.-W. Lee, Y.-G. Lee, B. Sea, K.-H. Lee, and S.-K. Ihm, J. Membrane Sci., 236, 53 (2004)
11 B. N. Nair, K. Keizer, W. J. Elferink, M. J. Gilde, H. Verweij, and A. J. Burggraaf, J. Membrane Sci., 116, 161 (1996)
12 C.-Y. Tsai, S.-Y. Tam, Y. Lu, and C.J. Brinker, J. Membrane Sci., 169, 255 (2000)
13 D.-W. Lee, B. Sea, K.-H. Lee, and K.-Y. Lee, Ind. Eng. Chem. Res., 41, 3594 (2002)
14 A. M. Rouhi, Chem. Eng. News (May 1995) 29
15 F. Gallucci, L. Paturzo, and A. Basile, Chem. Eng. Processing, 43, 1029 (2004)
16 F. P. Cuperus and R. W. van Gemert, Sep. Purif. Tech., 27, 225 (2002)
17 B. Sea, M. Watanabe, K. Kusakabe, S. Morooka, and S.-S. Kim, Gas Sep. Purif., 10, 187 (1996)
18 B. Sea and K.-H. Lee, Bull. Kor. Chem. Soc., 22, 1400 (2001)
19 R. P. W. Struis, M. Quintilii, and S. Stucki, J. Membrane Sci., 177, 215 (2000)
20 R. W. van Gemert and F. P. Cuperus, J. Membrane Sci., 105, 287 (1995)
21 S. Jiang, Y. Yan, and G. R. Gavalas, J. Membrane Sci., 102, 211 (1995)