CA2444887C

Method and apparatus for thermal swing adsorption and thermally-enhanced pressure swing adsorption

Abstract

The present invention provides compact adsorption systems that are capable of rapid temperature swings and rapid cycling. Novel methods of thermal swing adsorption and thermally-enhanced pressure swing adsorption are also described. In some aspects of the invention, a gas is passed through the adsorbent thus allowing heat exchangers to be very close to all portions of the adsorbent and utilize less space. In another aspect, the adsorption media is selectively heated, thus reducing energy costs. Methods and systems for gas adsorption/desorption having improved energy efficiency with capability of short cycle times are also described. In another aspect, the apparatus or methods utilize heat exchange channels of varying lengths that have volumes controlled to provide equal heat fluxes. Methods of fuel cell startup are also described. Advantages of the invention include the ability to use (typically) 30-100 times less adsorbent compared to conventional systems.

CA2444887C, drawing sheet 1
Sheet 1 of 24

Term

Term ended

Expired 30 April 2022, 4.4 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

54 claims: 13 independent, 41 dependent

  1. 1
    CA 02444887 2009-10-06 28283-94 CLAIMS:1. A sorption pump comprising: an adsorption layer comprising an adsorption mesochannel containing adsorption media;and a heat exchanger in thermal contact with the adsorption layer;wherein the heat exchanger comprises at least one microchannel;and wherein the adsorption layer has a gas inlet such that gas directly contacts the adsorption media without first passing through a contactor.
  2. 4
    The sorption pump according to any one of claims 1 to 3, further comprising a gas outlet separate from the inlet;wherein the outlet is disposed such that a gas stream can flow through the inlet, through the adsorption media and out the outlet.
  3. 7
    Gas adsorption and desorption apparatus comprising:at least one adsorption layer comprising an adsorption mesochannel containing adsorption media;and at least one heat exchanger in thermal contact with the adsorption layer;wherein the adsorption mesochannel has dimensions of length, width and -49CA 02444887 2009-10-06 28283-94 height;wherein the height is at least 1.2 mm;and wherein the apparatus possesses capability such that, If the adsorption media is replaced with an equal volume of 13x zeolite, with a bulk density of 0.67 grams per cubic centimeter, and then saturated with carbon dioxide at 760 mm Hg and 5°C and then heated to no more than 90°C, at 760 mm Hg, then at least 0.015 g CO 2 per mL of apparatus is desorbed within 1 minute of the onset of heating.
  4. 10
    A method of gas adsorption and desorption, comprising:passing a gas Into an adsorption layer where at least a portion of the gas is adsorbed onto adsorption media to form an adsorbed gas and removing heat from the adsorption layer through a distance of 2 mm or less into a heat exchanger layer;wherein the gas directly contacts the adsorption media without first passing through a contactor material;wherein said distance is measured from the center line of the adsorption layer to the center line of the heat exchanger layer;subsequently, heating the adsorption media through a distance of 2 mm or less from a heat exchanger, and desorbing gas;wherein said distance is measured from the center line of the adsorption layer to the center line of the heat exchanger layer.
  5. 13
    The method according to any one of claims 10 to 12, comprising selectively heating and selectively cooling the adsorption layer.
  6. 14
    A method of gas adsorption and desorption, comprising;a first step of passing a gas into a first adsorption layer containing a first adsorption media where at least a portion of the gas is adsorbed onto the first adsorption media and exchanging heat with the first adsorption layer through a distance of 1 cm or less into a first heat exchanger;wherein said distance is measured from the center line of the first adsorption layer to the center line of the first heat exchanger;subsequently, in a second step, the first adsorption media exchanges heat through a distance of 1 cm or less from the first heat exchanger, and gas is desorbed;wherein said distance is measured from the center line of the first adsorption layer to the center line of the first heat exchanger;simultaneous with the first step, a heat exchange fluid flows through the first heat exchanger and exchanges heat with the first adsorption layer, and the heat exchange fluid then flows into a second heat exchanger which exchanges heat with a second adsorption layer and cools a second adsorption layer containing a second adsorption media.
  7. 18
    A method of gas adsorption and desorption, comprising:passing a gas into an adsorption layer where at least a portion of the gas is adsorbed onto adsorption media to form an adsorbed gas and selectively removing heat from the adsorption layer through a distance of 1 cm or less into a heat exchanger;-51 PAGE 15/35 ’ RCVD AT 10/6/2009 5:04:39 PM [Eastern Daylight Tme] * SVR:F00003/16 * DNS:3905 * CSID:613 232 9440’DURATION (imfrSS):04-21 CA 02444887 2010-08-11 28283-94 subsequently, selectively heating the adsorption media through a distance of 1 cm or less from a heat exchanger, and desorbing gas;wherein the adsorption layer has a serpentine configuration.
  8. 23
    The method according to any one of claims 18 to 22, wherein the gas comprises air respired from a person that comprises water and carbon dioxide;wherein at least a portion of the gas passes into a first sorption cell, where a portion of the water is adsorbed onto a first adsorbent while heat is selectively removed through a distance of 1 cm or less into a heat exchanger, while, simultaneously, in a second sorption cell, heat is added to a second adsorbent and water is desorbed from the second adsorbent;and wherein at least a portion of the gas passes into a third sorption cell, where a portion of the carbon dioxide is adsorbed onto a third adsorbent while heat is selectively removed through a distance of 1 cm or less into a heat exchanger, while, simultaneously, in a fourth sorption cell, heat is added to a fourth adsorbent and carbon dioxide is desorbed from the second adsorbent.
  9. 24
    A sorption pump, comprising:an adsorption layer comprising an adsorption channel containing adsorption media;and a mesochannel heat exchanger in thermal contact with the adsorption layer;wherein the mesochannel heat exchanger has a fluid flowing therethrough that has a high thermal diffusivity, such that the characteristic heat transport time of the fluid in combination with the mesochannel heat exchanger is a value no greater than 10 seconds. -52CA 02444887 2010-08-11 28283-94
  10. 26
    A multi-cell sorption pump, comprising:at least six sorption cells;wherein each sorption cell comprises at least one adsorption layer, and at least one heat exchanger layer;thermal connections connecting each sorption cell to at least two other sorption cells and to a heat source and to a heat sink, adapted such that each sorption cell can cycle thermally from adsorption to desorption and back to adsorption by sequentially receiving heat from said at least two other sorption cells prior to receiving heat from the heat source, and then sequentially giving up heat to at least two other sorption cells prior to giving up heat to the heat sink, such that thermal recuperation is provided.
  11. 30
    The multi-cell sorption pump according to any one of claims 26 to 29, wherein the sorption pump incorporates mesochannel sorption channels, and wherein the sorption pump incorporates mesochannel heat exchange channels.
  12. 31
    A method of adsorbing and desorbing a gas, comprising:a first step of transferring heat from a heat source into at least two first cells;and desorbing gas from each of said two first cells;transferring heat from at least two second cells to at least two third cells;a second step of transferring heat from said at least two second cells to a heat sink;and adsorbing gas into said at least two second cells;transferring heat from said at least two first cells to said at least two third cells;a third step of transferring heat from a heat source into the said at least two third cells;and desorbing gas from each of said at least two third cells;transferring heat from said at least two first cells to said at least two second cells;a fourth step -53CA 02444887 2010-08-11 28283-94 of transferring heat from said at least two first cells to a heat sink;and adsorbing gas into said at least two first cells;transferring heat from said at least two third cells to said at least two second cells;wherein each cell comprises at least one sorbent, and at least one heat exchanger.
  13. 34
    The method according to any one of claims 31 to 33, further comprising:a fifth step comprising transferring heat from a heat source into the said at least two second cells;and desorbing gas from each of said at least two second cells, and transferring heat from said at least two third cells to said at least two first cells;and a sixth step comprising transferring heat from said at least two third cells to a heat sink;and adsorbing gas into said at least two third cells;and transferring heat from said at least two second cells to said at least two first cells;thereby attaining thermal recuperation.
  14. 35
    An air treatment system comprising the sorption pump as defined in any one of claims 1 to 6, comprising:an oxygen source;a first sorption cell comprising the sorption pump as defined in any one of claims 1 to 6, wherein the adsorption media comprises a water adsorbent;a second sorption cell comprising the sorption cell as defined in any one of claims 1 to 6, wherein the adsorption media comprises a water adsorbent;a third sorption cell comprising the sorption cell as defined in any one of claims 1 to 6, wherein the adsorption media comprises a CO 2 adsorbent;and a fourth sorption cell comprising the sorption cell as defined in any one of claims 1 to 6, wherein the adsorption media comprises a CO 2 adsorbent.
  15. 36
    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 -54CA 02444887 2010-08-11 28283-94 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 x height) of the second fluid pathway is larger than the product of the average width and average height (width x height) of the first fluid pathway.
  16. 39
    The sorption pump according to any one of claims 36 to 38, wherein the first and second fluid regions each comprise heat exchange fluid pathway microchannels.
  17. 41
    The sorption pump according to any one of claims 36 to 40, 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 -55CA 02444887 2010-08-11 28283-94 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 x height) of the second fluid pathway is larger than the product of the average width and average height (width x height) of the first fluid pathway.
  18. 42
    The sorption pump according to any one of claims 36 to 41, wherein the adsorption layer is bonded to the heat exchanger layer to form a laminated apparatus.
  19. 45
    A method of adsorbing and desorbing a gas in the sorption pump as defined in any one of claims 36 to 44, 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.
  20. 47
    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 -56CA 02444887 2010-08-11 28283-94 layer is smaller than its width and smaller than its length and wherein height is substantially parallel to the central axis.
  21. 50
    The integrated, multicell sorption pump according to any one of claims 47 to 49, 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 x height) of the second fluid pathway is larger than the product of the average width and average height (width x height) of the first fluid pathway.
  22. 51
    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. -57CA 02444887 2010-08-11 28283-94
  23. 54
    The method according to any one of claims 51 to 53, wherein the 5 sorption pump is a thermochemical compressor.
Independent claims23