The sulfur-iodine water-splitting cycle is characterized by the following three reactions: 2H/sub 2/O + SO/sub 2/ + I/sub 2/ ..-->.. H/sub 2/SO/sub 4/ + 2HI; H/sub 2/SO/sub 4/ ..-->.. H/sub 2/O + SO/sub 2/ + 1/2 O/sub 2/; and 2HI ..-->.. H/sub 2/ + I/sub 2/. This cycle was developed at General Atomic after several critical features in the above reactions were discovered. These involved phase separations, catalytic reactions, etc. Estimates of the energy efficiency of this economically reasonable advanced state-of-the-art processing unit produced sufficiently high values (to approx.47%) to warrant cycle development effort. The DOE contract was largely directed toward the engineering development of this cycle, including a small demonstration ...
A new thermochemical water-splitting process named \u22Sb-I Process\u22 was proposed on the basis of...
The production of hydrogen via the thermochemical splitting of water is being considered as a primar...
The first technical developments on thermochemical cycles for hydrogen production are based on the u...
Portions of a bench-scale model of a sulfur-iodine thermochemical water-splitting cycle have been op...
A program to investigate thermochemical water splitting has been under way at General Atomic Company...
A summary of the progress of the overall total development effort of the General Atomic (GA) sulfur-...
Graduation date: 2012Thermochemical water splitting cycles have been conceptualized and researched f...
Because of the high demand for hydrogen in the oil industries, new technologies for hydrogen product...
Two Sulfur-based cycles--the Sulfur-Iodine (SI) and the Hybrid Sulfur (HyS)--have emerged as the lea...
The optimization of the Sulfur-Iodine (SI) thermochemical cycle necessitates to reduce the amounts o...
The major accomplishments of the DOE funded part of the GA thermochemical water-splitting program ar...
OAK B188 High Efficiency Generation of Hydrogen Fuels using Nuclear Power for the period May 1, 2002...
This report summarizes the sulfur-iodine (SI) thermochemical water splitting process for the purpose...
The objective of the French CEA, US-DOE INERI project is to perform a lab scale demonstration of the...
OAK B188 High Efficiency Generation of Hydrogen Fuels Using Nuclear Power for the period February 01...
A new thermochemical water-splitting process named \u22Sb-I Process\u22 was proposed on the basis of...
The production of hydrogen via the thermochemical splitting of water is being considered as a primar...
The first technical developments on thermochemical cycles for hydrogen production are based on the u...
Portions of a bench-scale model of a sulfur-iodine thermochemical water-splitting cycle have been op...
A program to investigate thermochemical water splitting has been under way at General Atomic Company...
A summary of the progress of the overall total development effort of the General Atomic (GA) sulfur-...
Graduation date: 2012Thermochemical water splitting cycles have been conceptualized and researched f...
Because of the high demand for hydrogen in the oil industries, new technologies for hydrogen product...
Two Sulfur-based cycles--the Sulfur-Iodine (SI) and the Hybrid Sulfur (HyS)--have emerged as the lea...
The optimization of the Sulfur-Iodine (SI) thermochemical cycle necessitates to reduce the amounts o...
The major accomplishments of the DOE funded part of the GA thermochemical water-splitting program ar...
OAK B188 High Efficiency Generation of Hydrogen Fuels using Nuclear Power for the period May 1, 2002...
This report summarizes the sulfur-iodine (SI) thermochemical water splitting process for the purpose...
The objective of the French CEA, US-DOE INERI project is to perform a lab scale demonstration of the...
OAK B188 High Efficiency Generation of Hydrogen Fuels Using Nuclear Power for the period February 01...
A new thermochemical water-splitting process named \u22Sb-I Process\u22 was proposed on the basis of...
The production of hydrogen via the thermochemical splitting of water is being considered as a primar...
The first technical developments on thermochemical cycles for hydrogen production are based on the u...