Claims
- 1. A fuel cell unit comprising:
an extruded monolith having a plurality of channels of which every second channel establishes a fuel channel and every other second channel establishes an oxygen channel; the plurality of channels being configured so that the fuel channels are displaced laterally in relation to the oxygen channels so that the fuel channels protrude a certain distance from end points of the oxygen channels; and the oxygen channels protrude a certain distance from end points of the fuel channels that is less than a length of respective channels.
- 2. The fuel cell as recited in claim 1, further comprising:
protruding end parts of the fuel channels are exposed during along a predetermined distance; and also since another edge part (24) has been cut off in the level of an end part (40) belonging to the oxygen channels (14b), in such a way that protruding end parts of the oxygen channels are exposed during along a predetermined distance.
- 3. The fuel cell as recited in claim 1, further comprising:
the fuel channels being coated with a first electrically conductive material and the oxygen channels being coated with a second electrically conductive material.
- 4. The fuel cell as recited in claim 1, further comprising:
the plurality of channels consist of an oxygen ion conductive material.
- 5. A fuel cell device comprising:
a plurality of fuel cell units according to any one of the claims 1-4 formed as an extruded monolith comprising a plurality of channels of which every second channel constitutes a fuel channel and every other second channel constitutes an oxygen channel; the plurality of channels is designed in such a manner that the fuel channels are displaced laterally in relation to the oxygen channels in such a way that the fuel channels protrude a certain distance from end points of the oxygen channels and the oxygen channels protrude a certain distance from end points of the fuel channels; the distance of protrusion is less than a length of the channels and protruding end parts of the fuel channels are exposed along a predetermined distance and protruding end parts of the oxygen channels are exposed along a predetermined distance; and the fuel cell units are mounted so that the fuel channels in a first fuel cell unit are in direct connection with the fuel channels in a second fuel cell unit and so that the oxygen channels in the first fuel cell unit are in direct connection with the oxygen channels in an adjacent fuel cell unit.
- 6. The fuel cell device as recited in claim 5, further comprising:
the plurality of fuel cell units are mounted in a first row with a first side of the first fuel cell unit placed towards a first side of a second fuel cell unit; exposed end parts of the fuel channels and the space that is constituted by the removed first edge parts (22) of the fuel channels (14a) forms first fuel conduit channels and second fuel conduit channels; and a second side of the second fuel cell unit is oriented towards a second side of a third fuel cell unit and arranged so that the exposed protruding end parts of the oxygen channels forms first oxygen conduit channels and second oxygen conduit channels.
- 7. The fuel cell device as recited in claim 6, further comprising:
the plurality of fuel cell units being established by a three-dimensional packing of fuel cell units that includes a repeating of the packing pattern in a first row in further rows with further fuel cell units.
- 8. The fuel cell device as recited in claim 7, further comprising:
the plurality of fuel cell units being established by a packing of fuel cell units having a repeating pattern from a lower layer in a new layer, where the new layer is put on the lower layer in such a way that the fuel conduit channels and the oxygen conduit channels, respectively, are matched together vertically.
- 9. A multi-unit fuel cell device comprised of a plurality of fuel cell units according to any one of the claims 1-4, each fuel cell unit comprising:
an extruded monolithic body comprising a plurality of lamellar channels formed within the body and arranged so that every other channel defines a fuel channel and channels positioned therebetween define oxygen channels; the plurality of lamellar channels being configured so that end parts of the fuel channels are located closer to side of the monolithic body of the unit than end parts of the oxygen channels; and a recess extending from an exterior surface of the side of the monolithic body to a sufficient depth that the end parts of the fuel channels are intersected thereby establishing open ends of the fuel channels, the recess configured so that when the monolithic body is positioned adjacent to a similarly configured monolithic body the fuel channels of the adjacent monolithic bodies are placed in fluid communication.
- 10. A multi-unit fuel cell device comprised of a plurality of fuel cell units according to any one of the claims 1-4, the device comprising:
a plurality of fuel cell units, each unit being formed from an extruded monolithic body comprising a plurality of channels formed within the body and arranged so that every other channel defines a fuel channel, and channels positioned therebetween define oxygen channels; the plurality of channels within each monolithic body being configured so that end parts of those fuel channels are located closer to a side of the monolithic body than end parts of the oxygen channels; each monolithic body having a recess extending from an exterior surface of the side of that body sufficiently deep that the end parts of the fuel channels of that body are intersected thereby establishing open ends of the fuel channels; and the plurality of fuel cell units packed together so that recess exposed end parts of one fuel cell unit are placed in fluid communication with the recess exposed end parts of an adjacent fuel cell unit thereby establishing the multi-unit fuel cell device.
- 11. The multi-unit fuel cell device as recited in claim 10, further comprising:
the plurality of channels each being of lamellar configuration.
- 12. The multi-unit fuel cell device as recited in claim 10, further comprising:
each fuel channel being of lamellar configuration.
- 13. The multi-unit fuel cell device as recited in claim 10, further comprising:
each oxygen channel being of lamellar configuration.
- 14. The multi-unit fuel cell device as recited in claim 10, further comprising:
the plurality of fuel cell units packed into a plurality of stacked layers so that fuel recesses align between the layers forming cross-layer fluid paths between fuel channels of adjacent units on different layers.
- 15. The multi-unit fuel cell device as recited in claim 10, further comprising:
the plurality of channels within each monolithic body being configured so that end parts of the oxygen channels are located closer to a second side of the monolithic body than end parts of the fuel channels; each monolithic body having a recess extending from an exterior surface of the second side of that body sufficiently deep that the end parts of the oxygen channels of that body are intersected thereby establishing open ends of the oxygen channels; and the plurality of fuel cell units packed into a plurality of stacked layers so that oxygen recesses align between the layers forming cross-layer fluid paths between oxygen channels of adjacent units on different layers.
Priority Claims (1)
Number |
Date |
Country |
Kind |
0003325-8 |
Sep 2000 |
SE |
|
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation patent application of International Application No. PCT/SE01/01940 filed Sep. 12, 2001 which was published in English pursuant to Article 21(2) of the Patent Cooperation Treaty, and which claims priority to Swedish Application No. 0003325-8 filed Sep. 19, 2000. Both applications are expressly incorporated herein by reference in their entireties.
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/SE01/01940 |
Sep 2001 |
US |
Child |
10249162 |
Mar 2003 |
US |