Membrane reactor performances in H2 recovery under conditions relevant for the HCPB tritium extraction system

2021 ◽  
Vol 166 ◽  
pp. 112317
Author(s):  
Gessica Cortese ◽  
Alessia Santucci ◽  
Claudio Rizzello ◽  
Silvano Tosti
2016 ◽  
Vol 109-111 ◽  
pp. 642-646 ◽  
Author(s):  
Alessia Santucci ◽  
Marco Incelli ◽  
Mirko Sansovini ◽  
Silvano Tosti

2021 ◽  
Vol 172 ◽  
pp. 112905
Author(s):  
Haodong Wu ◽  
Ziqiang Li ◽  
Xiaoxi Chen ◽  
Kashif Khan ◽  
Bin Lin ◽  
...  

2018 ◽  
Vol 2 (4) ◽  
pp. 48 ◽  
Author(s):  
Alessio Caravella ◽  
Adele Brunetti ◽  
Monia Grandinetti ◽  
Giuseppe Barbieri

The present work is a study of CO2 Reforming of Methane (DRM) carried out in a catalytic Pd-based membrane reactor. A detailed thermodynamic analysis is carried out, calculating the chemical equilibrium parameters in two different cases: (a) DRM along with the Reverse Water Gas Shift (RWGS) reaction and (b) DRM along with both RWGS and the Boudouard Reaction (BR). The performance of membrane reactor is then experimentally analyzed in terms of methane conversion, hydrogen recovery and H2/CO reaction selectivity by varying feed pressure and CO2/CH4 feed molar ratio and 500 °C and GHSV = 100 h−1. Among the obtained results, a CH4 conversion of about 26% and a H2 recovery of 47% are achieved at low feed pressures, exceeding the traditional reactor equilibrium conversion. This effect can be attributed to the favorable thermodynamics coupled to the hydrogen permeation through the membrane. This study further demonstrates the general effectiveness of membrane-integrated reaction processes, which makes the production of syngas more efficient and performing, providing important environmental benefits.


2012 ◽  
Vol 87 (5-6) ◽  
pp. 620-624 ◽  
Author(s):  
A. Ciampichetti ◽  
F.S. Nitti ◽  
A. Aiello ◽  
I. Ricapito ◽  
K. Liger ◽  
...  

2011 ◽  
Vol 6 (1) ◽  
Author(s):  
Byron Smith R.J. ◽  
Muruganandam Loganathan ◽  
Murthy Shekhar Shantha

Membrane reactor is a process intensified equipment that carries out both the reaction and separation in a single vessel. The equilibrium limited water gas shift reaction is an ideal reaction to be carried out in a membrane reactor as it improves the conversion of the reaction and reduces the space requirement for the reactor. Computational fluid dynamics offers a virtual prototyping of the reactor and helps in design, optimization, and scale-up of the reactor. To obtain pure hydrogen from the membrane reactor, the pressure of the reactor needs to be optimized. Hence the water gas shift membrane reactor is subjected to computational fluid dynamic analysis to understand the role played by pressure on the performance of the reactor using three different gas mixtures. The CO conversion and H2 recovery for the different operating pressures are simulated and the effects of pressure are discussed in this paper.


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