Multiparameter-based product- energy and exergy optimizations for biomass gasification
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Date
2021
Authors
Basar Caglar
Duygu Tavsanci
Emrah Biyik
Journal Title
Journal ISSN
Volume Title
Publisher
ELSEVIER SCI LTD
Open Access Color
Green Open Access
No
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Publicly Funded
No
Abstract
The thermodynamic modelling of biomass gasification was studied by using Gibbs free energy minimization approach. Different from the studies using the same approach the simultaneous presence of all gasifying agents (air H2O and CO2) was considered and a multiparameter optimization was applied to determine the synergetic effect of gasifying agents for hydrogen syngas with a specific H2/CO ratio and methane production. The performance of gasification was assessed by using technical and environmental performance indicators such as product yields cold gas efficiency exergy efficiency CO2 emission and the heat requirement of the gasifier. The results show that the simultaneous presence of gasifying agents does not create considerable changes in syngas yield H2 yield methane yield CGE and exergy efficiency while it allows to tune the H2/CO ratio and the heat requirement of the gasifier. The highest syngas yield is observed at T > 1100 K and 1 bar and when SBR > 0.5 and/or CBR > 0.8 with the absence of air at which CGE changes between 114% and 122% while exergy efficiency is between 77% and 86%. The results prove that CO2 offers several advantages as a gasifying agent and suggests that CO2 recycling from gasifier outlet is a useful option for the biomass gasification.
Description
Keywords
Biomass gasification, Gibbs free energy minimization, Exergy Efficiency, Optimization, CO(2 )conversion, THERMODYNAMIC ANALYSIS, DOWNDRAFT GASIFIER, EQUILIBRIUM-MODEL, PERFORMANCE, HYDROGEN, SIMULATION
Fields of Science
0211 other engineering and technologies, 0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology
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OpenCitations Citation Count
22
Source
Fuel
Volume
303
Issue
Start Page
121208
End Page
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Citations
CrossRef : 21
Scopus : 23
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Mendeley Readers : 40
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