Claims
- 1. A sorption pump comprising:
an adsorption layer comprising an adsorption mesochannel containing adsorption media; and a heat exchanger layer adjacent the adsorption layer, the heat exchanger layer comprising a first region comprising a first heat exchange fluid pathway and a second region comprising a second heat exchange fluid pathway; wherein the first fluid pathway has mutually perpendicular dimensions of length, width and height, and wherein the first fluid pathway connects a header and a footer; wherein the second fluid pathway has mutually perpendicular dimensions of length, width and height, and wherein the second fluid pathway connects a header and a footer; wherein length is measured in the direction of net fluid flow through the heat exchanger layer; wherein the first fluid pathway has a shorter average length than the second fluid pathway; and wherein the product of the average width and average height (width×height) of the second fluid pathway is larger than the product of the average width and average height (width×height) of the first fluid pathway.
- 2. The sorption pump of claim 1 wherein first and second pathways share a common header and a common footer.
- 3. The sorption pump of claim 1 further comprising fins extending the entire height of the first and second fluid pathways.
- 4. The sorption pump of claim 1 wherein the first and second fluid regions each comprise heat exchange fluid pathway microchannels.
- 5. The sorption pump of claim 4 wherein the adsorption layer comprises a mesochannel and the second region comprises at least two heat exchange fluid pathway microchannels.
- 6. The sorption pump of claim 1 comprising at least 3 cells disposed about central axis in single unit, wherein each cell comprises:
an adsorption layer comprising an adsorption mesochannel containing adsorption media; and a heat exchanger layer adjacent the adsorption layer, the heat exchanger layer comprising a first region comprising a first heat exchange fluid pathway and a second region comprising a second heat exchange fluid pathway; wherein the first fluid pathway has mutually perpendicular dimensions of length, width and height, and wherein the first fluid pathway connects a header and a footer; wherein the second fluid pathway has mutually perpendicular dimensions of length, width and height, and wherein the second fluid pathway connects a header and a footer; wherein length is measured in the direction of net fluid flow through the heat exchanger layer; wherein the first fluid pathway has a shorter average length than the second fluid pathway; and wherein the product of the average width and average height (width×height) of the second fluid pathway is larger than the product of the average width and average height (width×height) of the first fluid pathway.
- 7. The sorption pump of claim 1 wherein the pump is a laminated apparatus.
- 8. The sorption pump of claim 2 wherein the first and second fluid pathways each have a volume and wherein volume of second fluid pathway is equal to or larger than volume of first fluid pathway.
- 9. The sorption pump of claim 3 comprising at least 4 fins, wherein none of said at least 4 fins have the same width.
- 10. A method of adsorbing and desorbing a gas in the sorption pump of claim 1, comprising:
adsorbing a gas onto an adsorbent in the adsorbent mesochannel to form an adsorbed gas at a first temperature; passing a heat exchange fluid into the first and the second fluid pathways, wherein the heat exchange fluid is at a temperature that is higher than the first temperature; and desorbing at least a portion of the adsorbed gas.
- 11. The method of claim 10 wherein the desorbing step is conducted simultaneously with a step of reducing the partial pressure of a gas species that is adsorbed in the adsorbent.
- 12. An integrated, multicell sorption pump, comprising:
at least 3 cells disposed around a central axis, each cell comprising at least one unit, where each unit comprises a heat exchange layer and an adsorbent layer that is adjacent to the heat exchange layer; wherein the layers are substantially planar with mutually perpendicular dimensions of width, height and length, wherein length is measured in the direction of net fluid flow through each layer and wherein the height of each layer is smaller than its width and smaller than its length and wherein height is substantially parallel to the central axis.
- 13. The integrated, multicell sorption pump of claim 12, comprising at least 2 units that are stacked within each cell.
- 14. The integrated, multicell sorption pump of claim 12, wherein all points within the adsorbent layer are within 1 cm of a heat exchange layer.
- 15. The integrated, multicell sorption pump of claim 12, wherein each cell comprises:
an adsorption layer comprising an adsorption mesochannel containing adsorption media; and a heat exchanger layer adjacent the adsorption layer, the heat exchanger layer comprising a first region comprising a first heat exchange fluid pathway and a second region comprising a second heat exchange fluid pathway; wherein the first fluid pathway has mutually perpendicular dimensions of length, width and height, and wherein the first fluid pathway connects a header and a footer; wherein the second fluid pathway has mutually perpendicular dimensions of length, width and height, and wherein the second fluid pathway connects a header and a footer; wherein length is measured in the direction of net fluid flow through the heat exchanger layer; wherein the first fluid pathway has a shorter average length than the second fluid pathway; and wherein the product of the average width and average height (width×height) of the second fluid pathway is larger than the product of the average width and average height (width×height) of the first fluid pathway.
- 16. A method of starting a fuel cell, comprising:
(a) producing hydrogen from a reformer and adsorbing a portion of the hydrogen produced by the reformer to a hydrogen sorbent that is disposed in a mesochannel within a sorption pump; (b) in the sorption pump, heating the hydrogen sorbent that is disposed in a mesochannel, causing hydrogen to be desorbed; and
passing at least a portion of the desorbed hydrogen into a non-operating fuel cell; and (c) using the desorbed hydrogen to start the fuel cell.
- 17. The method of claim 16 comprising repeating steps (a)-(c) at least 10 times.
- 18. The method of claim 16 wherein the hydrogen sorbent comprises a metal hydride.
- 19. The method of claim 16 wherein heat is supplied to the mesochannel from an adjacent heat exchange channel.
- 20. The method of claim 19 wherein the fuel cell is in an automobile.
- 21. The method of claim 19 wherein the sorption pump comprises the pump of claim 1.
- 22. The method of claim 19 wherein heating is supplied by a compact combustor.
- 23. The method of claim 19 wherein the sorption pump is housed in a separate unit from the fuel cell.
- 24. The method of claim 19 wherein less than 10% of the hydrogen produced by the reformer is adsorbed by the sorption pump.
- 25. The method of claim 19 further comprising a sorption pump that purifies reformer output.
- 26. A method of gas adsorption and desorption, comprising:
in a gas adsorption and desorption apparatus comprising at least one adsorption mesochannel and at least one heat exchanger; adsorbing gas into adsorption media in at least one adsorption mesochannel and, simultaneously, removing heat from the adsorption media into a heat-absorbing heat exchanger; subsequently, adding heat from a heat-supplying heat exchanger to the adsorption media in the at least one adsorption mesochannel and desorbing gas from the adsorption media; wherein the combined steps of adsorbing a gas and desorbing a gas form a complete cycle; and wherein, in a complete cycle, at least 0.1 mol of gas per minute per liter of apparatus is adsorbed and desorbed.
- 27. The method of claim 26 wherein a single heat exchanger performs the functions of both absorbing and supplying heat.
- 28. The method of claim 26 wherein cycle time is less than 2 min and at least 90% of the adsorbent capacity of the adsorbent is utilized in each cycle.
- 29. The method of claim 28 wherein the gas comprises CO2.
- 30. The method of claim 25 wherein the sorption pump is a thermochemical compressor.
- 31. The method of claim 16 wherein step (b) is conducted simultaneously with a step of reducing the partial pressure of a gas species that is adsorbed in the adsorbent.
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/845,776, filed Apr. 30, 2001. In accordance with 35 U.S.C. sect. 119(e), this application claims priority to U.S. Provisional Application No. 60/363,858, filed Mar. 11, 2002.
Government Interests
[0002] This invention was made with Government support under contract DE-AC0676RLO 1830 awarded by the U.S. Department of Energy. The Government has certain rights in this invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60363858 |
Mar 2002 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09845776 |
Apr 2001 |
US |
Child |
10135891 |
Apr 2002 |
US |