Syngas Production via High-Temperature Coelectrolysis of Steam and Carbon Dioxide

Author:

Stoots Carl M.1,O’Brien James E.1,Herring J. Stephen1,Hartvigsen Joseph J.2

Affiliation:

1. Idaho National Laboratory, Idaho Falls, ID 83415-3890

2. Ceramatec, Inc., Salt Lake City, UT 84119

Abstract

This paper presents results of recent experiments on simultaneous high-temperature electrolysis (coelectrolysis) of steam and carbon dioxide using solid-oxide electrolysis cells. Coelectrolysis is complicated by the fact that the reverse shift reaction occurs concurrently with the electrolytic reduction reactions. All reactions must be properly accounted for when evaluating results. Electrochemical performance of the button cells and stacks was evaluated over a range of temperatures, compositions, and flow rates. The apparatus used for these tests is heavily instrumented, with precision mass-flow controllers, online dewpoint and CO2 sensors, and numerous pressure and temperature measurement stations. It also includes a gas chromatograph for analyzing outlet gas compositions. Comparisons of measured compositions to predictions obtained from a chemical equilibrium coelectrolysis model are presented, along with corresponding polarization curves. Results indicate excellent agreement between predicted and measured outlet compositions. Cell area-specific resistance values were found to be similar for steam electrolysis and coelectrolysis. Coelectrolysis significantly increases the yield of syngas over the reverse water gas shift-reaction equilibrium composition. The process appears to be a promising technique for large-scale syngas production.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electronic, Optical and Magnetic Materials

Reference8 articles.

1. The Hydrogen Economy is Coming. The Question is Where?;Forsberg;Chem. Eng. Prog.

2. High Temperature Co-Electrolysis of H2O and CO2 for Syngas Production;Stoots

3. Three Dimensional CFD Model of a Planar Solid Oxide Electrolysis Cell for Co-Electrolysis of Steam and Carbon-Dioxide;Hawkes

4. High Temperature Electrolysis of Steam and Carbon Dioxide;Jensen

5. Perspectives of High Temperature Electrolysis Using SOEC;Jensen

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