Asset Details
MbrlCatalogueTitleDetail
Do you wish to reserve the book?
CFD Simulation of a Hybrid Solar/Electric Reactor for Hydrogen and Carbon Production from Methane Cracking
by
Abanades, Stéphane
, Msheik, Malek
, Rodat, Sylvain
in
Alternative energy sources
/ CAD
/ Carbon
/ Carbon dioxide emissions
/ CFD simulation
/ Chemical engineering
/ Chemical Sciences
/ Computational fluid dynamics
/ Computer aided design
/ concentrated solar energy
/ Conversion
/ Decarbonization
/ Decomposition
/ Design
/ Dilution
/ Electric heating
/ Emissions
/ Engineering Sciences
/ Flow rates
/ Flow velocity
/ Fluid dynamics
/ Fluid flow
/ Fluids mechanics
/ Fog
/ Gas flow
/ gas-phase pyrolysis
/ Gases
/ Geometry
/ Greenhouse gases
/ Heat transfer
/ Heating
/ High temperature
/ hybrid reactor
/ Hydrodynamics
/ Hydrogen
/ Hydrogen production
/ Irradiance
/ Mass transfer
/ Mathematical models
/ Mechanics
/ Metals
/ Methane
/ methane cracking
/ Process heat
/ Process parameters
/ Pyrolysis
/ Reactors
/ Simulation
/ Solar energy
2023
Hey, we have placed the reservation for you!
By the way, why not check out events that you can attend while you pick your title.
You are currently in the queue to collect this book. You will be notified once it is your turn to collect the book.
Oops! Something went wrong.
Looks like we were not able to place the reservation. Kindly try again later.
Are you sure you want to remove the book from the shelf?
CFD Simulation of a Hybrid Solar/Electric Reactor for Hydrogen and Carbon Production from Methane Cracking
by
Abanades, Stéphane
, Msheik, Malek
, Rodat, Sylvain
in
Alternative energy sources
/ CAD
/ Carbon
/ Carbon dioxide emissions
/ CFD simulation
/ Chemical engineering
/ Chemical Sciences
/ Computational fluid dynamics
/ Computer aided design
/ concentrated solar energy
/ Conversion
/ Decarbonization
/ Decomposition
/ Design
/ Dilution
/ Electric heating
/ Emissions
/ Engineering Sciences
/ Flow rates
/ Flow velocity
/ Fluid dynamics
/ Fluid flow
/ Fluids mechanics
/ Fog
/ Gas flow
/ gas-phase pyrolysis
/ Gases
/ Geometry
/ Greenhouse gases
/ Heat transfer
/ Heating
/ High temperature
/ hybrid reactor
/ Hydrodynamics
/ Hydrogen
/ Hydrogen production
/ Irradiance
/ Mass transfer
/ Mathematical models
/ Mechanics
/ Metals
/ Methane
/ methane cracking
/ Process heat
/ Process parameters
/ Pyrolysis
/ Reactors
/ Simulation
/ Solar energy
2023
Oops! Something went wrong.
While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
CFD Simulation of a Hybrid Solar/Electric Reactor for Hydrogen and Carbon Production from Methane Cracking
by
Abanades, Stéphane
, Msheik, Malek
, Rodat, Sylvain
in
Alternative energy sources
/ CAD
/ Carbon
/ Carbon dioxide emissions
/ CFD simulation
/ Chemical engineering
/ Chemical Sciences
/ Computational fluid dynamics
/ Computer aided design
/ concentrated solar energy
/ Conversion
/ Decarbonization
/ Decomposition
/ Design
/ Dilution
/ Electric heating
/ Emissions
/ Engineering Sciences
/ Flow rates
/ Flow velocity
/ Fluid dynamics
/ Fluid flow
/ Fluids mechanics
/ Fog
/ Gas flow
/ gas-phase pyrolysis
/ Gases
/ Geometry
/ Greenhouse gases
/ Heat transfer
/ Heating
/ High temperature
/ hybrid reactor
/ Hydrodynamics
/ Hydrogen
/ Hydrogen production
/ Irradiance
/ Mass transfer
/ Mathematical models
/ Mechanics
/ Metals
/ Methane
/ methane cracking
/ Process heat
/ Process parameters
/ Pyrolysis
/ Reactors
/ Simulation
/ Solar energy
2023
Please be aware that the book you have requested cannot be checked out. If you would like to checkout this book, you can reserve another copy
We have requested the book for you!
Your request is successful and it will be processed during the Library working hours. Please check the status of your request in My Requests.
Oops! Something went wrong.
Looks like we were not able to place your request. Kindly try again later.
CFD Simulation of a Hybrid Solar/Electric Reactor for Hydrogen and Carbon Production from Methane Cracking
Journal Article
CFD Simulation of a Hybrid Solar/Electric Reactor for Hydrogen and Carbon Production from Methane Cracking
2023
Request Book From Autostore
and Choose the Collection Method
Overview
Methane pyrolysis is a transitional technology for environmentally benign hydrogen production with zero greenhouse gas emissions, especially when concentrated solar energy is the heating source for supplying high-temperature process heat. This study is focused on solar methane pyrolysis as an attractive decarbonization process to produce both hydrogen gas and solid carbon with zero CO2 emissions. Direct normal irradiance (DNI) variations arising from inherent solar resource variability (clouds, fog, day-night cycle, etc.) generally hinder continuity and stability of the solar process. Therefore, a novel hybrid solar/electric reactor was designed at PROMES-CNRS laboratory to cope with DNI variations. Such a design features electric heating when the DNI is low and can potentially boost the thermochemical performance of the process when coupled solar/electric heating is applied thanks to an enlarged heated zone. Computational fluid dynamics (CFD) simulations through ANSYS Fluent were performed to investigate the performance of this reactor under different operating conditions. More particularly, the influence of various process parameters including temperature, gas residence time, methane dilution, and hybridization on the methane conversion was assessed. The model combined fluid flow hydrodynamics and heat and mass transfer coupled with gas-phase pyrolysis reactions. Increasing the heating temperature was found to boost methane conversion (91% at 1473 K against ~100% at 1573 K for a coupled solar-electric heating). The increase of inlet gas flow rate Q0 lowered methane conversion since it affected the gas space-time (91% at Q0 = 0.42 NL/min vs. 67% at Q0 = 0.84 NL/min). A coupled heating also resulted in significantly better performance than with only electric heating, because it broadened the hot zone (91% vs. 75% methane conversion for coupled heating and only electric heating, respectively). The model was further validated with experimental results of methane pyrolysis. This study demonstrates the potential of the hybrid reactor for solar-driven methane pyrolysis as a promising route toward clean hydrogen and carbon production and further highlights the role of key parameters to improve the process performance.
This website uses cookies to ensure you get the best experience on our website.