IP Library › Granted Patent US 11,213,785
Granted Patent B2
US 11,213,785 · App. 16/254,391 · Granted Jan 4, 2022

Carbon dioxide environmental control system

Inventors: Bamdad Bahar (Georgetown, DE); Jacob Zerby (Harbeson, DE)
Assignee: Xergy Inc.
B01D53/326B01D69/12B01D69/125B01D71/28B01D71/72B01D71/80C25B9/23C25B11/081C25B13/08F25B9/00B01D67/009B01D67/0083B01D67/0093B01D69/02B01D2257/504B01D2259/4508B01D2259/4575B01D2313/345B01D2325/16B01D2325/26B01D2325/42C08G61/02C08G61/10C08G2261/143C08G2261/312C08G2261/3424C08G2261/516H02K9/10
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Quick Facts
Patent No.
US 11,213,785
App. No.
16/254,391
Granted
Jan 4, 2022
Kind
B2
Abstract

An electrochemical system utilizes an anion conducting layer disposed between an anode and a cathode for transporting a working fluid. The working fluid may include carbon dioxide that is dissolved in water and is partially converted to carbonic acid that is equilibrium with bicarbonate anion. An electrical potential across the anode and cathode creates a pH gradient that drives the bicarbonate anion across the anion conducting layer to the cathode, wherein it is reformed into carbon dioxide. Therefore, carbon dioxide is pumped across the anion conducting layer.

Claims (30)

1. An environmental control system that is coupled with an enclosure and comprises:

a) an electrochemical system comprising a membrane electrode assembly comprising:

i) an anode;

ii) a cathode,

iii) an anion conducting layer configured between and in contact with the anode and the cathode and comprising an anion conducting polymer;

b) a working fluid;

c) a power supply coupled electrically with the anode and the cathode to produce a voltage potential across the anode and the cathode;

wherein the membrane electrode assembly is in fluid communication with said enclosure; wherein the voltage potential at the anode produces hydroxyl ions and wherein the voltage potential at the cathode consumes hydroxyl ions to create a pH gradient to transfer the working fluid from the anode to the cathode.

2. The environmental control system of claim 1 , further comprising a membrane electrode assembly air moving device that produces a flow of the working fluid onto the anode.

3. The environmental control system of claim 1 , wherein the working fluid comprises carbon dioxide and one of either oxygen or air.

4. The environmental control system of claim 2 , wherein the carbon dioxide is in equilibrium with bicarbonate ions and wherein the bicarbonate ions are transported through the anion conducting layer from the anode to the cathode and reformed into carbon dioxide at the cathode.

5. The environmental control system of claim 1 , wherein the anion conducting polymer comprises quaternary ammonium functional groups.

6. The environmental control system of claim 1 , wherein the anion conducting polymer comprises pyridinium functional groups.

7. The environmental control system of claim 1 , wherein the anion conducting polymer comprises alkyl or a piperidine side chain configured between a functional group and a backbone of the anion conducting polymer.

8. The environmental control system of claim 1 , wherein the anion conducting polymer comprises a backbone selected from the group consisting of: poly(arylene), poly(phenylene), poly(phenylene oxide), poly(sulfone), and poly(styrene-b-ethylene-b-butadiene-b-styrene) copolymers.

9. The environmental control system of claim 1 , wherein the anion conducting polymer comprises:

a) quaternary ammonium or pyridinium functional groups;

b) a backbone selected from the group consisting of: poly(arylene), poly(phenylene), poly(phenylene oxide), poly(sulfone), and poly(styrene-b-ethylene-b-butadiene-b-styrene) copolymers; and

c) an alkyl or piperidine side chain configured between a functional group and a backbone of the anion conducting polymer.

10. The environmental control system of claim 1 , wherein the anion conducting layer is a composite anion conducting layer comprising a support material attached to the anion conducting polymer.

11. The environmental control system of claim 1 , wherein the anion conducting layer has a thickness between 5 and 50 microns.

12. The environmental control system of claim 1 , wherein the anode comprises an electrode comprising an anion exchange ionomer and a catalyst.

13. The environmental control system of claim 12 , wherein the catalyst of the anode is selected from the group consisting of: iridium, iridium oxides, platinum, ruthenium, ruthenium oxides, manganese oxides, nickel-cobalt oxides, and perovskites.

14. The environmental control system of claim 1 , wherein the cathode comprises an electrode comprising an anion exchange ionomer and a catalyst.

15. The environmental control system of claim 14 , wherein the catalyst of the cathode is selected from the group consisting of: platinum, platinum supported on carbon, silver, silver supported on carbon, manganese oxides, or perovskites.

16. The environmental control system of any of claim 1 , wherein the enclosure is a vehicle.

17. The environmental control system of claim 1 , wherein the enclosure is an aircraft.

18. The environmental control system of claim 1 , wherein the enclosure is submarine.

19. The environmental control system of claim 1 , wherein the enclosure is greenhouse.

20. The environmental control system of claim 1 , wherein the electrochemical system further comprises a wick coupled with the anion conducting layer to hydrate the anion conducting layer.

Continuity (7)
Continuation In Part 15800259 · Nov 1, 2017
Continuation In Part 15448734 · Mar 3, 2017
Provisional Application 62416141 · Nov 1, 2016
Provisional Application 62430833 · Dec 6, 2016
Provisional Application 62303294 · Mar 3, 2016
Provisional Application 62619771 · Jan 20, 2018
Related Publication 20190151796A1 · May 23, 2019