catalytic membrane reactor
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2021 ◽  
pp. 134310
Author(s):  
Jose L. Cerrillo ◽  
Natalia Morlanés ◽  
Shekhar R. Kulkarni ◽  
Natalia Realpe ◽  
Adrian Ramírez ◽  
...  

Membranes ◽  
2021 ◽  
Vol 11 (10) ◽  
pp. 790
Author(s):  
Nikita Eremeev ◽  
Alexey Krasnov ◽  
Yuliya Bespalko ◽  
Ludmilla Bobrova ◽  
Oleg Smorygo ◽  
...  

The present study deals with the combination of ethanol steam reforming over a monolithic catalyst and hydrogen separation by membrane in a lab-scale catalytic membrane reactor (CMR). The catalyst was comprised of honeycomb thin-walled Fechralloy substrate loaded with Ni + Ru/Pr0.35Ce0.35Zr0.35O2 active component. The asymmetric supported membrane consisted of a thin Ni-Cu alloy–Nd tungstate nanocomposite dense permselective layer deposited on a hierarchically structured asymmetric support. It has been shown that the monolithic catalyst-assisted CMR is capable of increasing the driving potential for hydrogen permeation through the same membrane as compared with that of the packed bed catalyst by increasing the retentate hydrogen concentration. Important operating parameters responsible for the low carbon deposition rate as well as the amount of hydrogen produced from 1 mol of ethanol, such as the temperature range of 700–900 °C, the water/ethanol molar ratio of 4 in the feed, have been determined. Regarding the choice of the reagent concentration (ethanol and steam in Ar), its magnitude may directly interfere with the effectiveness of the reaction-separation process in the CMR.


Hydrogen ◽  
2021 ◽  
Vol 2 (3) ◽  
pp. 362-376
Author(s):  
Ekaterina V. Shelepova ◽  
Aleksey A. Vedyagin

The hydrogen economy is expected to dominate in the nearest future. Therefore, the most hydrogen-containing compounds are considered as potential pure hydrogen sources in order to achieve climate neutrality. On the other hand, alkanes are widely used to produce industrially important monomers via various routes, including dehydrogenation processes. Hydrogen is being produced as a by-product of these processes, so the application of efficient separation of hydrogen from the reaction mixture can give double benefits. Implementation of the dehydrogenation processes in the catalytic membrane reactor is that case. Since the use of dense metal membranes, which possess the highest perm-selectivity towards hydrogen, is complicated in practice, the present research is aimed at the optimization of the porous membrane characteristics. By means of a mathematical modeling approach, the effects of pore diameter on the hydrogen productivity and purity for the cases of ethane and propane dehydrogenation processes were analyzed. The pore size value of 0.45 nm was found to be crucial as far as the diffusion of both the alkane and alkene molecules through the membrane takes place.


2021 ◽  
Author(s):  
Wenzhe Yue ◽  
Yanhong Li ◽  
Wan Wei ◽  
Jianwen Jiang ◽  
Jürgen Caro ◽  
...  

2021 ◽  
Vol 216 ◽  
pp. 106772
Author(s):  
Valentina Cechetto ◽  
Luca Di Felice ◽  
Jose A. Medrano ◽  
Camel Makhloufi ◽  
Jon Zuniga ◽  
...  

Energy ◽  
2021 ◽  
Vol 220 ◽  
pp. 119737
Author(s):  
Wei-Hsin Chen ◽  
Shu-Cheng Li ◽  
Steven Lim ◽  
Zih-Yu Chen ◽  
Joon Ching Juan

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