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Hydrogen production from the thermochemical conversion of biomass: issues and challenges
Hydrogen production from thermochemical conversion has been considered the most
promising technology for the use of biomass, and some novel methods are also being …
promising technology for the use of biomass, and some novel methods are also being …
A review of CO2 sorbents for promoting hydrogen production in the sorption-enhanced steam reforming process
Abstract Sorption-enhanced-steam-reforming (SESR) is a thermochemical conversion
technology that produces a high-purity hydrogen stream by utilizing in-situ removal of CO 2 …
technology that produces a high-purity hydrogen stream by utilizing in-situ removal of CO 2 …
[HTML][HTML] A Study on CO2 Methanation and Steam Methane Reforming over Commercial Ni/Calcium Aluminate Catalysts
G Garbarino, F Pugliese, T Cavattoni, G Busca… - Energies, 2020 - mdpi.com
Three Ni-based natural gas steam reforming catalysts, ie, commercial JM25-4Q and JM57-
4Q, and a laboratory-made catalyst (26% Ni on a 5% SiO2–95% Al2O3), are tested in a …
4Q, and a laboratory-made catalyst (26% Ni on a 5% SiO2–95% Al2O3), are tested in a …
Sorption-enhanced chemical loo** steam reforming of glycerol with CO2 in-situ capture and utilization
B Dou, K Wu, H Zhang, B Chen, H Chen… - Chemical Engineering …, 2023 - Elsevier
Hydrogen production from chemical loo** steam reforming using an oxygen transport
catalyst is definitely enhanced by CO 2 in-situ capture, which shifts the chemical equilibrium …
catalyst is definitely enhanced by CO 2 in-situ capture, which shifts the chemical equilibrium …
Chemical‐loo** conversion of methane: a review
D Li, R Xu, Z Gu, X Zhu, S Qing, K Li - Energy Technology, 2020 - Wiley Online Library
Chemical‐loo** technology provides a versatile platform to convert methane in a clean
and efficient manner, achieving CO2 capture and generation of syngas/pure H2 without …
and efficient manner, achieving CO2 capture and generation of syngas/pure H2 without …
Green hydrogen production from biomass–A thermodynamic assessment of the potential of conventional and advanced bio-oil steam reforming processes
Steam reforming of bio-oil derived from biomass pyrolysis is one of the most promising
methods for the production of green hydrogen with minimal carbon footprint. In this context …
methods for the production of green hydrogen with minimal carbon footprint. In this context …
Comparative study of conventional steam-methane-reforming (SMR) and auto-thermal-reforming (ATR) with their hybrid sorption enhanced (SE-SMR & SE-ATR) and …
The paper presents a comparison of steam methane reforming (SMR), sorption enhanced
steam methane reforming (SE-SMR), auto-thermal reforming (ATR), and sorption enhanced …
steam methane reforming (SE-SMR), auto-thermal reforming (ATR), and sorption enhanced …
Hydrogen production by sorption-enhanced chemical loo** steam reforming of ethanol in an alternating fixed-bed reactor: Sorbent to catalyst ratio dependencies
In this study, the effects of sorbent addition for in-situ CO 2 removal on hydrogen production
by sorption-enhanced chemical loo** steam reforming (SE-CLSR) of ethanol have been …
by sorption-enhanced chemical loo** steam reforming (SE-CLSR) of ethanol have been …
Nickel-iron modified natural ore oxygen carriers for chemical loo** steam methane reforming to produce hydrogen
Z Hu, Z Miao, J Wu, E Jiang - International Journal of Hydrogen Energy, 2021 - Elsevier
Chemical loo** steam methane reforming (CL-SMR) is a promising and efficient method
to produce hydrogen and syngas. However, oxygen carrier (OC) prepared by synthesis are …
to produce hydrogen and syngas. However, oxygen carrier (OC) prepared by synthesis are …
A novel composite perovskite-based material for chemical-loo** steam methane reforming to hydrogen and syngas
Chemical loo** steam methane reforming (CL-SMR) is a novel process that uses oxygen
carriers to produce synthesis gas and pure hydrogen with low energy consumption. To …
carriers to produce synthesis gas and pure hydrogen with low energy consumption. To …