A new facility has been developed at the Idaho National Laboratory for pressurized testing of solid oxide electrolysis stacks. Pressurized operation is envisioned for large-scale hydrogen production plants, yielding higher overall efficiencies when the hydrogen product is to be delivered at elevated pressure for tank storage or pipelines. Pressurized operation also supports higher mass flow rates of the process gases with smaller components. The test stand can accommodate cell dimensions up to 8.5 cm x 8.5 cm and stacks of up to 25 cells. The pressure boundary for these tests is a water-cooled spool-piece pressure vessel designed for operation up to 5 MPa. The stack is internally manifolded and operates in cross-flow with an inverted-U flow pattern. Feed-throughs for gas inlets/outlets, power, and instrumentation are all located in the bottom flange. The entire spool piece, with the exception of the bottom flange, can be lifted to allow access to the internal furnace and test fixture. Lifting is accomplished with a motorized threaded drive mechanism attached to a rigid structural frame. Stack mechanical compression is accomplished using springs that are located inside of the pressure boundary, but outside of the hot zone. Initial stack heatup and performance characterization occurs at ambientmore » pressure followed by lowering and sealing of the pressure vessel and subsequent pressurization. Pressure equalization between the anode and cathode sides of the cells and the stack surroundings is ensured by combining all of the process gases downstream of the stack. Steady pressure is maintained by means of a backpressure regulator and a digital pressure controller. A full description of the pressurized test apparatus is provided in this paper.« less
[1]
K. R. Schultz,et al.
LARGE-SCALE PRODUCTION OF HYDROGEN BY NUCLEAR ENERGY FOR THE HYDROGEN ECONOMY
,
2003
.
[2]
François Werkoff,et al.
On the production of hydrogen via alkaline electrolysis during off-peak periods
,
2007
.
[3]
A. Steinfeld.
Solar thermochemical production of hydrogen--a review
,
2005
.
[4]
I. Dincer,et al.
Greenhouse gas emissions reduction by use of wind and solar energies for hydrogen and electricity production: Economic factors
,
2007
.
[5]
James E. O'Brien,et al.
Review of the Potential of Nuclear Hydrogen for Addressing Energy Security and Climate Change
,
2012
.
[6]
Charles W. Forsberg,et al.
The hydrogen economy is coming the question is where
,
2005
.
[7]
J. E. O'Brien,et al.
Commercial-Scale Performance Predictions for High-Temperature Electrolysis Plants Coupled to Three Advanced Reactor Types
,
2007
.
[8]
James E. O'Brien,et al.
Thermodynamics and Transport Phenomena in High Temperature Steam Electrolysis Cells
,
2012
.