Claims
- 1. An electrolytic cell for producing chlorine and alkaline peroxide, the electrolytic cell comprising:
an anode partition having an anode configured to electrolyze an alkali chloride to produce chlorine and alkali ions; a cathode partition comprising a catholyte compartment and a gas plenum separated by a cathode, wherein the cathode is configured to reduce oxygen received from the gas plenum through the cathode in the catholyte compartment; and a membrane separating the anode partition from the cathode partition, wherein the membrane is configured to allow the alkali ions to pass from the anode partition to the cathode partition to form alkaline peroxide in the cathode partition.
- 2. The electrolytic cell of claim 1 wherein the cathode is a gas diffusion cathode.
- 3. The electrolytic cell of claim 1 wherein the membrane is a cation exchange membrane.
- 4. The electrolytic cell of claim 1 wherein the anode partition comprises an inlet configured to receive an aqueous solution of the alkali chloride and an outlet configured to provide the chlorine.
- 5. The electrolytic cell of claim 4 wherein the catholyte compartment comprises a cathode inlet configured to receive water and a cathode outlet configured to provide alkaline peroxide.
- 6. The electrolytic cell of claim 5 wherein the gas plenum comprises a plenum inlet and a plenum outlet configured to recycle oxygen gas.
- 7. An electrolytic cell for producing chlorine and alkaline peroxide for a chemical oxygen iodine laser, the electrolytic cell comprising:
an anode partition having an inlet configured to receive an aqueous solution of alkali chloride, an anode configured to electrolyze the alkali chloride to produce chlorine and alkali ions, and an output configured to provide the chlorine; a cathode partition comprising a catholyte compartment and a gas plenum separated by a gas diffusion cathode, wherein the cathode is configured to reduce oxygen received from the gas plenum through the cathode in the catholyte compartment, and wherein the gas plenum is configured to re-circulate oxygen; and a cation exchange membrane separating the anode partition from the cathode partition, wherein the membrane is configured to allow the alkali ions to pass from the anode partition to the cathode partition to form alkaline peroxide in the cathode partition.
- 8. The electrolytic cell of claim 7 wherein the anode is a dimensionally stable anode.
- 9. The electrolytic cell of claim 8 wherein the anode comprises titanium and a ruthenium oxide coating.
- 10. The electrolytic cell of claim 9 wherein the cathode comprises a hydrophobic carbon-based material.
- 11. A laser system comprising:
a chemical laser configured to consume chlorine and basic hydrogen peroxide and to produce an alkali salt; a chlor alkaline peroxide (CAP) cell comprising an anode chamber and a cathode chamber, wherein the CAP cell is configured to electrolyze the alkali salt to produce chlorine and alkali ions in the anode chamber, to allow the alkali ions to pass through a membrane separating the anode chamber and the cathode chamber, and to reduce oxygen in the cathode chamber in the presence of the alkali ions to produce alkaline peroxide.
- 12. The laser system of claim 11 wherein the cathode chamber comprises a catholyte compartment and a gas plenum separated by a gas diffusion cathode.
- 13. The laser system of claim 12 wherein the gas plenum is configured to recirculate oxygen and to provide oxygen through the cathode to the catholyte compartment.
- 14. The laser system of claim 1I further comprising a salt pre-treatment chamber configured to receive the alkali salt from the laser, to treat the alkali salt with chlorine, and to provide treated alkali salt to the chlor alkaline peroxide cell.
- 15. The laser system of claim 14 further comprising a dryer configured to receive a chlorine solution from the CAP cell, to remove water vapor from the chlorine solution, to provide the water vapor to the salt pre-treatment chamber, and to provide the chlorine to the laser.
- 16. A fuel regeneration system for a chemical oxygen iodine laser, the fuel regeneration system comprising a chlor alkaline peroxide (CAP) cell, the cell comprising:
an anode partition having an anode configured to electrolyze an alkali chloride to produce chlorine and alkali ions; a cathode partition comprising a catholyte compartment and a gas plenum separated by a cathode, wherein the cathode is configured to reduce oxygen received from the gas plenum through the cathode in the catholyte compartment; and a membrane separating the anode partition from the cathode partition, wherein the membrane is configured to allow the alkali ions to pass from the anode partition to the cathode partition to form alkaline peroxide in the cathode partition.
- 17. An electrolytic cell for producing chlorine and alkaline peroxide, the electrolytic cell comprising:
means for electrolyzing an alkali chloride to produce chlorine and alkali ions; means for reducing oxygen in a catholyte compartment of a cathode partition, wherein the reducing means receives oxygen from a gas plenum through a gas diffusion cathode separating the catholyte compartment and the gas plenum; and means for separating the anode partition from the cathode partition while allowing the alkali ions to pass from the anode partition to the cathode partition to form basic hydrogen peroxide in the cathode partition.
- 18. A method of producing chlorine and alkaline peroxide in an electrolytic cell, the method comprising the steps of:
electrolyzing an alkali chloride in an anode chamber of the electrolytic cell to produce chlorine and alkali ions; reducing oxygen in a catholyte compartment of the electrolytic cell; and separating the anode partition from the catholyte compartment while allowing the alkali ions to pass from the anode partition to the catholyte compartment to form alkaline peroxide in the catholyte compartment.
- 19. The method of claim 18 further comprising the step of passing oxygen from a gas plenum to the catholyte compartment through a gas diffusion cathode.
- 20. The method of claim 19 further comprising the step of providing the chlorine and alkaline peroxide from the electrolytic cell to a chemical laser.
- 21. An electrolytic cell comprising:
an anode partition comprising an anode, an inlet configured to receive an aqueous solution, and a gas outlet; a cathode partition comprising a catholyte compartment and a gas plenum separated by a gas diffusion cathode; and a cation exchange membrane separating the anode partition from the cathode partition.
- 22. The electrolytic cell of claim 21 wherein the aqueous solution is an alkali chloride and wherein the anode is configured to electrolyze the alkali chloride to produce chlorine and alkali ions.
- 23. The electrolytic cell of claim 22 wherein the cathode is configured to reduce oxygen in the catholyte compartment using oxygen received from the gas plenum through the cathode.
- 24. The electrolytic cell of claim 23 wherein the membrane is configured to allow the alkali ions to pass from the anode partition to the cathode partition to form basic hydrogen peroxide in the cathode partition.
- 25. The electrolytic cell of claim 24 wherein the chlorine is provided at the gas outlet.
- 26. The electrolytic cell of claim 25 wherein the alkaline peroxide is provided at an output of the catholyte compartment.
U.S. GOVERNMENT RIGHTS
[0001] This invention was made with Government support under contract number DASG60-00-C-0079 awarded by the U.S. Army. The Government has certain rights in this invention.