Process conditions for the direct solar decomposition of sulfur trioxide have been investigated and optimized by using a receiver–reactor in a solar furnace. This decomposition reaction is a key step to couple concentrated solar radiation or solar high-temperature heat into promising sulfur-based thermochemical cycles for solar production of hydrogen from water. After proof-of-principle a modified design of the reactor was applied. A separated chamber for the evaporation of the sulfuric acid, which is the precursor of sulfur trioxide in the mentioned thermochemical cycles, a higher mass flow of reactants, an independent control and optimization of the decomposition reactor were possible. Higher mass flows of the reactants improve the ...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
Process conditions for the direct solar decomposition of sulfur trioxide have been investigated and ...
A basic concept for a receiver-reactor for solar sulfuric acid decomposition as the key step of ther...
A critical step of sulfur based thermochemical cycles for hydrogen production from water is the endo...
Fossil energy carriers may be replaced in the future by hydrogen to save fossil resources and to avo...
Fossil energy carriers may be replaced in the future by hydrogen to save fossil resources and to avo...
Decomposition of sulphuric acid is a key step of sulphur based thermochemical cycles for hydrogen pr...
Solar energy underlies significant diurnal and seasonal fluctuations and hence requires qualified st...
The sulfuric acid dissociation reaction, via which the production of SO2 and O2 is achieved, is the ...
Sulfuric acid splitting is a key step of the hybrid sulfur cycle (HyS) for solar thermochemical hyd...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
Solar thermal hydrogen production with sulphur based thermochemical cycles can reach significantly h...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
Process conditions for the direct solar decomposition of sulfur trioxide have been investigated and ...
A basic concept for a receiver-reactor for solar sulfuric acid decomposition as the key step of ther...
A critical step of sulfur based thermochemical cycles for hydrogen production from water is the endo...
Fossil energy carriers may be replaced in the future by hydrogen to save fossil resources and to avo...
Fossil energy carriers may be replaced in the future by hydrogen to save fossil resources and to avo...
Decomposition of sulphuric acid is a key step of sulphur based thermochemical cycles for hydrogen pr...
Solar energy underlies significant diurnal and seasonal fluctuations and hence requires qualified st...
The sulfuric acid dissociation reaction, via which the production of SO2 and O2 is achieved, is the ...
Sulfuric acid splitting is a key step of the hybrid sulfur cycle (HyS) for solar thermochemical hyd...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
Solar thermal hydrogen production with sulphur based thermochemical cycles can reach significantly h...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...