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Design of experiment for hydrogen production from ethanol reforming: A state-of-the-art review.

Authors :
Chen, Wei-Hsin
Biswas, Partha Pratim
Ubando, Aristotle T.
Park, Young-Kwon
Ashokkumar, Veeramuthu
Chang, Jo-Shu
Source :
Fuel. Jun2023, Vol. 342, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

[Display omitted] • The Taguchi and response surface methodologies for ethanol reformation are reviewed. • The optimum temperatures for ethanol steam reforming are higher than 500 °C. • The optimum temperatures for ethanol autothermal reforming are higher than 700 °C. • A steam-to-carbon ratio of 5 mol.mol−1 is optimum for hydrogen production. • Ethanol steam reforming is more efficient than ethanol autothermal reforming. Hydrogen production from bioethanol has garnered significant research attention due to its renewability, sustainability, and net zero emission. This research aims to review two statistical optimization techniques, response surface methodology (RSM) and the Taguchi method, for hydrogen production from ethanol thermochemical conversion. The RSM model demonstrated that temperature increases hydrogen production, which peaked between 500 °C and 600 °C for ethanol steam reformation (ESR) and >700 °C for ethanol autothermal reforming (ATR) processes. Maximum hydrogen synthesis occurs at steam-to-ethanol (S/E) ratios of 3–5 mol.mol−1 for both ethanol steam and autothermal reforming. Adding oxygen, a characteristic parameter of autothermal reforming, reduces hydrogen production. Ethanol autothermal reforming may be less efficient than ethanol steam reforming for hydrogen production. The impacting parameters for ethanol reforming identified by Taguchi techniques are steam-to-carbon ratio, ethanol steam reforming temperature, and water–gas shift reaction temperature, where steam-to-carbon ratio and ethanol steam reforming regulate hydrogen production substantially. The Taguchi approach reveals that an ethanol flow rate of 2 cm3.min−1, a steam-to-carbon ratio of 5, and an ethanol steam reforming temperature of 500 °C are optimal reaction conditions. Optimization strategies improve biohydrogen production and make the following reaction more precise. For example, only optimization approaches can determine if a parameter should be reinforced or lowered. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00162361
Volume :
342
Database :
Academic Search Index
Journal :
Fuel
Publication Type :
Academic Journal
Accession number :
162504046
Full Text :
https://doi.org/10.1016/j.fuel.2023.127871