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Thermal Methane Cracking on Molten Metal: Kinetics Modeling for Pilot Reactor Design
by
Cosentino, Vittoria
, Palo, Emma
, Busillo, Emmanuel
, Iaquaniello, Gaetano
, Piemonte, Vincenzo
in
Analysis
/ Carbon black
/ Carbon dioxide
/ Catalytic cracking
/ Chemical engineering
/ Clean energy
/ Clean technology
/ Coal gasification
/ Conversion
/ Electrolysis
/ Heat
/ Hydrogen
/ Hydrogen production
/ Kinetics
/ Liquid metals
/ Metals
/ Methane
/ Natural gas
/ Opening hours
/ Production methods
/ Reactor design
/ Reactors
/ Reforming
/ Renewable energy
/ Temperature
/ Tin
/ Water splitting
2023
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Thermal Methane Cracking on Molten Metal: Kinetics Modeling for Pilot Reactor Design
by
Cosentino, Vittoria
, Palo, Emma
, Busillo, Emmanuel
, Iaquaniello, Gaetano
, Piemonte, Vincenzo
in
Analysis
/ Carbon black
/ Carbon dioxide
/ Catalytic cracking
/ Chemical engineering
/ Clean energy
/ Clean technology
/ Coal gasification
/ Conversion
/ Electrolysis
/ Heat
/ Hydrogen
/ Hydrogen production
/ Kinetics
/ Liquid metals
/ Metals
/ Methane
/ Natural gas
/ Opening hours
/ Production methods
/ Reactor design
/ Reactors
/ Reforming
/ Renewable energy
/ Temperature
/ Tin
/ Water splitting
2023
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Do you wish to request the book?
Thermal Methane Cracking on Molten Metal: Kinetics Modeling for Pilot Reactor Design
by
Cosentino, Vittoria
, Palo, Emma
, Busillo, Emmanuel
, Iaquaniello, Gaetano
, Piemonte, Vincenzo
in
Analysis
/ Carbon black
/ Carbon dioxide
/ Catalytic cracking
/ Chemical engineering
/ Clean energy
/ Clean technology
/ Coal gasification
/ Conversion
/ Electrolysis
/ Heat
/ Hydrogen
/ Hydrogen production
/ Kinetics
/ Liquid metals
/ Metals
/ Methane
/ Natural gas
/ Opening hours
/ Production methods
/ Reactor design
/ Reactors
/ Reforming
/ Renewable energy
/ Temperature
/ Tin
/ Water splitting
2023
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Thermal Methane Cracking on Molten Metal: Kinetics Modeling for Pilot Reactor Design
Journal Article
Thermal Methane Cracking on Molten Metal: Kinetics Modeling for Pilot Reactor Design
2023
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Overview
Up to 80% of hydrogen production is currently carried out through CO2 emission-intensive natural gas reforming and coal gasification. Water-splitting electrolysis using renewable energy (green H2) is the only process that does not emit greenhouses gases, but it is a quite energy-demanding process. To significantly contribute to the clean energy transition, it is critical that low-carbon hydrogen production routes that can replace current production methods and can expand production capacity to meet new demands are developed. A new path, alternative to steam reforming coupled with CCS (blue H2) that is based on methane cracking, in which H2 production is associated with solid carbon instead of CO2 (turquoise H2), has received increasing attention recent years. The reaction takes place inside the liquid bath, a molten metal reactor. The aim of this article is to model the main kinetic mechanisms involved in the methane cracking reaction with molten metals. The model developed was validated using experimental data produced by the University of La Sapienza. Finally, such a model was used to scale up the reactor architecture.
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