WOS: 000415394200048Recent studies show that thermochemical cycles has a great potential for green hydrogen generation. In this study, the thermodynamic performance assessment of a solar based Sulfur-Iodine (S-I) thermochemical cycle for hydrogen generation is performed focusing on the energy and exergy methods. Moreover, we investigated that various reference environment and reaction temperatures effects on energy and exergy efficiencies of S-I cycle steps. The results of thermodynamic analyses indicated that energy and exergy efficiency of S-I cycle are found to be 43.85% and 62.39%, respectively. In addition, the overall energy and exergy efficiencies of cycle are computed as, 32.76% and 34.56%, respectively. It was concluded that the S-...
Thermochemical cycles for water splitting are considered as a promising example of emission-free rou...
The dissociation of gaseous hydrogen sulphide (H2S) into its components is an energy intensive proce...
Solar-powered thermochemical water splitting cycles (TWSC) can potentially reach overall efficiencie...
Hydrogen energy systems are being developed to replace fossil fuels–based systems for transportation...
In the presented paper, energy and exergy analysis is performed for thermochemical hydrogen (H2) pro...
The sulfur-iodine (S-I) thermochemical water splitting cycle is one of the most studied cycles for h...
Thesis (M.Ing. (Chemical Engineering))--North-West University, Potchefstroom Campus, 2012.The demand...
Hydrogen, being an environmentally friendly energy carrier is considered a future solution of the cu...
Sulfur–iodine and copper–chlorine water splitting cycles are promising methods of thermochemical hyd...
WOS: 000347017200092The present study develops a new solar energy system integrated with a Mg-Cl the...
The present study aims at investigating and simulating the hydrogen cycle production at low temperat...
The sulfur-iodine thermochemical cycle is considered to be one of the most promising routes for mass...
OAK-B135 A hydrogen economy will need significant new sources of hydrogen. Unless large-scale carbon...
The sulfur-ammonia thermochemical water-splitting cycle for hydrogen production driven by solar ther...
WOS: 000395842000059This study deals with a thermodynamic assessment of hydrogen production step of ...
Thermochemical cycles for water splitting are considered as a promising example of emission-free rou...
The dissociation of gaseous hydrogen sulphide (H2S) into its components is an energy intensive proce...
Solar-powered thermochemical water splitting cycles (TWSC) can potentially reach overall efficiencie...
Hydrogen energy systems are being developed to replace fossil fuels–based systems for transportation...
In the presented paper, energy and exergy analysis is performed for thermochemical hydrogen (H2) pro...
The sulfur-iodine (S-I) thermochemical water splitting cycle is one of the most studied cycles for h...
Thesis (M.Ing. (Chemical Engineering))--North-West University, Potchefstroom Campus, 2012.The demand...
Hydrogen, being an environmentally friendly energy carrier is considered a future solution of the cu...
Sulfur–iodine and copper–chlorine water splitting cycles are promising methods of thermochemical hyd...
WOS: 000347017200092The present study develops a new solar energy system integrated with a Mg-Cl the...
The present study aims at investigating and simulating the hydrogen cycle production at low temperat...
The sulfur-iodine thermochemical cycle is considered to be one of the most promising routes for mass...
OAK-B135 A hydrogen economy will need significant new sources of hydrogen. Unless large-scale carbon...
The sulfur-ammonia thermochemical water-splitting cycle for hydrogen production driven by solar ther...
WOS: 000395842000059This study deals with a thermodynamic assessment of hydrogen production step of ...
Thermochemical cycles for water splitting are considered as a promising example of emission-free rou...
The dissociation of gaseous hydrogen sulphide (H2S) into its components is an energy intensive proce...
Solar-powered thermochemical water splitting cycles (TWSC) can potentially reach overall efficiencie...