Comprehensive parametric investigation of methane reforming and hydrogen separation using a CFD model

2021 ◽  
Vol 249 ◽  
pp. 114838
Author(s):  
Rached Ben-Mansour ◽  
M.D. Azazul Haque ◽  
Aadesh Harale ◽  
Stephen N. Paglieri ◽  
Firas S. Alrashed ◽  
...  
Author(s):  
Anh Tran ◽  
Andres Aguirre ◽  
Helen Durand ◽  
Marquis Crose ◽  
Panagiotis D. Christofides

Entropy ◽  
2019 ◽  
Vol 21 (4) ◽  
pp. 399
Author(s):  
Rahman ◽  
Ahmad ◽  
Kano ◽  
Mustafa

Steam methane reforming (SMR) is a dominant technology for hydrogen production. For the highly energy-efficient operation, robust energy analysis is crucial. In particular, exergy analysis has received the attention of researchers due to its advantage over the conventional energy analysis. In this work, an exergy analysis based on the computational fluid dynamics (CFD)-based method was applied to a monolith microreactor of SMR. Initially, a CFD model of SMR was developed using literature data. Then, the design and operating conditions of the microreactor were optimized based on the developed CFD model to achieve higher conversion efficiency and shorter length. Exergy analysis of the optimized microreactor was performed using the custom field function (CFF) integrated with the CFD environment. The optimized catalytic monolith microreactor of SMR achieved higher conversion efficiency at a smaller consumption of energy, catalyst, and material of construction than the reactor reported in the literature. The exergy analysis algorithm helped in evaluating length-wise profiles of all three types of exergy, namely, physical exergy, chemical exergy, and mixing exergy, in the microreactor.


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