EN
Heat energy transport characteristics of microchannel reactors for hydrogen production by steam-methanol reforming on copper-based catalysts
Abstract
Numerical simulations are carried out to understand the heat energy transport characteristics of microchannel reactors for hydrogen production by steam-methanol reforming on copper-based catalysts. Enthalpy analysis is performed and the evolution of energy in the oxidation and reforming processes is discussed in terms of reaction heat flux. The effects of solid thermal conductivity, gas velocity, and flow arrangement on the thermal behavior of the reactor is evaluated in order to fully describe the thermal energy change in the reactor. The results indicate that the thermal behavior of the reactor depends upon the thermal properties of the walls. The change in enthalpy is of particular importance in exothermic and endothermic reactions. The net enthalpy change for oxidation and reforming is negative and positive, but the net sensible enthalpy change is always positive in the reactor. The wall
heat conduction effect accompanying temperature changes is important to the autothermal design and self-sustaining operation of the reactor. The solid thermal conductivity is of great importance in determining the operation and efficiency of the reactor. The reaction proceeds rapidly and efficiently only at high solid thermal conductivity. The reaction heat flux for oxidation and reforming is positive and negative. The change in flow arrangement significantly affects the reaction heat flux in the reactor. The parallel flow design is advantageous for purposes of enhancing heat transfer and avoiding localized hot spots.
Keywords
References
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Details
Primary Language
English
Subjects
Chemical Engineering
Journal Section
Research Article
Authors
Early Pub Date
June 22, 2023
Publication Date
June 30, 2023
Submission Date
January 20, 2022
Acceptance Date
November 8, 2022
Published in Issue
Year 2023 Volume: 7 Number: 1
APA
Chen, J. (2023). Heat energy transport characteristics of microchannel reactors for hydrogen production by steam-methanol reforming on copper-based catalysts. International Journal of Chemistry and Technology, 7(1), 57-66. https://doi.org/10.32571/ijct.1060520
AMA
1.Chen J. Heat energy transport characteristics of microchannel reactors for hydrogen production by steam-methanol reforming on copper-based catalysts. Int. J. Chem. Technol. 2023;7(1):57-66. doi:10.32571/ijct.1060520
Chicago
Chen, Junjie. 2023. “Heat Energy Transport Characteristics of Microchannel Reactors for Hydrogen Production by Steam-Methanol Reforming on Copper-Based Catalysts”. International Journal of Chemistry and Technology 7 (1): 57-66. https://doi.org/10.32571/ijct.1060520.
EndNote
Chen J (June 1, 2023) Heat energy transport characteristics of microchannel reactors for hydrogen production by steam-methanol reforming on copper-based catalysts. International Journal of Chemistry and Technology 7 1 57–66.
IEEE
[1]J. Chen, “Heat energy transport characteristics of microchannel reactors for hydrogen production by steam-methanol reforming on copper-based catalysts”, Int. J. Chem. Technol., vol. 7, no. 1, pp. 57–66, June 2023, doi: 10.32571/ijct.1060520.
ISNAD
Chen, Junjie. “Heat Energy Transport Characteristics of Microchannel Reactors for Hydrogen Production by Steam-Methanol Reforming on Copper-Based Catalysts”. International Journal of Chemistry and Technology 7/1 (June 1, 2023): 57-66. https://doi.org/10.32571/ijct.1060520.
JAMA
1.Chen J. Heat energy transport characteristics of microchannel reactors for hydrogen production by steam-methanol reforming on copper-based catalysts. Int. J. Chem. Technol. 2023;7:57–66.
MLA
Chen, Junjie. “Heat Energy Transport Characteristics of Microchannel Reactors for Hydrogen Production by Steam-Methanol Reforming on Copper-Based Catalysts”. International Journal of Chemistry and Technology, vol. 7, no. 1, June 2023, pp. 57-66, doi:10.32571/ijct.1060520.
Vancouver
1.Junjie Chen. Heat energy transport characteristics of microchannel reactors for hydrogen production by steam-methanol reforming on copper-based catalysts. Int. J. Chem. Technol. 2023 Jun. 1;7(1):57-66. doi:10.32571/ijct.1060520
