Claims
- 1. An integrated reactor, comprising:
a first reaction chamber having a width of 2 mm or less,
wherein there is an open path through the first reaction chamber, wherein the first reaction chamber has an internal volume comprising 5 to 95 vol. % of porous catalyst and 5 to 95 vol. % of open space; and a second reaction chamber having a width of 2 mm or less,
wherein there is an open path through the second reaction chamber, wherein the second reaction chamber has an internal volume comprising a catalyst and at least 5 vol. % of open space; and a reaction chamber wall separating the first chamber and the second chamber; and wherein the intergrated reactor possesses a heat flux characteristic of at least 1 W/cc as measured according to the Heat Flux Measurement Test.
- 2. The reactor of claim 1 wherein the heat flux characteristic is obtained with a pressure drop of less than 12,500 Pa/cm.
- 3. The reactor of claim 1 wherein the second reaction chamber has an internal volume comprising 5 to 95 vol. % of porous catalyst and 5 to 95 vol. % of open space.
- 4. The reactor of claim 1 wherein the second reaction chamber comprises reaction chamber walls and a catalyst wash coated onto at least a portion of said reaction chamber walls.
- 5. An integrated reactor, comprising:
a first reaction chamber having a width of 2 mm or less,
wherein there is an open path through the first reaction chamber, wherein the first reaction chamber has an internal volume comprising 5 to 95 vol. % of porous catalyst and 5 to 95 vol. % of open space; and a second reaction chamber having a width of 2 mm or less,
wherein there is an open path through the second reaction chamber, wherein the second reaction chamber has an internal volume comprising a catalyst and at least 5 vol. % of open space; and a reaction chamber wall separating the first chamber and the second chamber; and wherein the intergrated reactor possesses a NOx output characteristic of less than 100 ppm as measured according to the Standard NOx Test Measurement.
- 6. A method of making an integrated reactor, comprising:
providing a single block of thermally conductive material; forming at least one first microchannel; forming at least one second microchannel; placing at least one catalyst capable of catalyzing an exothermic reaction in the at least one first microchannel; placing at least one catalyst capable of catalyzing an endothermic reaction in the at least one second microchannel; wherein the first microchannel and second microchannel are separated by less than 1 cm.
- 7. A method of conducting an endothermic reaction in an integrated combustion reaction, comprising:
passing an exothermically reacting composition into at least one exothermic reaction chamber,
wherein the exothermic reaction chamber comprises at least one exothermic reaction chamber wall that is adjacent at least one endothermic reaction chamber, wherein the combustion chamber comprises a exothermic reaction catalyst in contact with at least the at least one exothermic reaction chamber wall that is adjacent at least one endothermic reaction chamber, wherein the exothermic reaction catalyst has an exposed surface within the exothermic reaction chamber, and wherein the exposed surface of the exothermic reaction catalyst and a second surface within the exothermic reaction chamber define an open channel within the exothermic reaction chamber, wherein the gap has a thickness, in a direction perpendicular to net flow where the direction of net flow is the direction that gas would travel through the combustion chamber during operation, of 2 mm or less; wherein the exothermic reaction composition reacts in the exothermic reaction chamber and generates heat; and passing an endothermic reaction mixture into the at least one endothermic reaction chamber; and wherein the method has a volumetric heat flux of at least 1 W/cc.
- 8. The method of claim 7 wherein the at least one endothermic reaction chamber has an inlet and an outlet, and the pressure drop between the inlet and the outlet is less than 250,000 Pa per cm of reaction chamber length.
- 9. The method of claim 7 wherein the exothermic reaction composition has a contact time within the exothermic reaction chamber of 50 milliseconds or less.
- 10. A method of conducting an endothermic reaction in an integrated combustion reaction, comprising:
passing an endothermic reaction composition into at least one endothermic reaction chamber, passing an exothermic reaction composition into at least one exothermic reaction chamber, wherein the exothermic reaction chamber comprises at least one exothermic reaction chamber wall that is adjacent at least one endothermic reaction chamber, wherein the endothermic reaction chamber comprises an endothermic reaction catalyst in contact with at least the at least one endothermic reaction chamber wall that is adjacent at least one exothermic reaction chamber, wherein the endothermic reaction catalyst comprises an exposed surface within the endothermic reaction chamber, and wherein the exposed surface of the endothermic reaction catalyst and a second surface within the endothermic reaction chamber define a gap within the endothermic reaction chamber,
wherein the gap has a thickness, in a direction perpendicular to net flow where the direction of net flow is the direction that gas would travel through the endothermic chamber during operation, of 2 mm or less; wherein the method is controlled such that heat flux between the at least one exothermic chamber and the at least one endothermic reaction chamber is 1 W/cc or more.
- 11. The method of claim 10 wherein there is distributed fuel injection in the exothermic reaction chamber.
- 12. The method of claim 10 wherein the endothermic reaction composition comprises an alkane and water.
- 13. The method of claim 12 wherein the exothermic reaction composition comprises air and a fuel.
- 14. The method of claim 13 wherein the exothermic reaction composition is converted to products and the products have less than 50 ppm NOx.
- 15. The method of claim 12 wherein the endothermic reaction composition comprises only one type of alkane.
- 16. The method of claim 15 wherein the endothermic reaction composition is purified before reacting.
- 10. A method of conducting an endothermic reaction in an integrated combustion reaction, comprising:
passing an endothermic reaction composition into at least one endothermic reaction chamber, passing an exothermic reaction composition into at least one exothermic reaction chamber, wherein the exothermic reaction chamber comprises at least one exothermic reaction chamber wall that is adjacent at least one endothermic reaction chamber, wherein the endothermic reaction chamber comprises an endothermic reaction catalyst in contact with at least the at least one endothermic reaction chamber wall that is adjacent at least one exothermic reaction chamber, wherein the endothermic reaction catalyst comprises an exposed surface within the endothermic reaction chamber, and wherein the exposed surface of the endothermic reaction catalyst and a second surface within the endothermic reaction chamber define a gap within the endothermic reaction chamber, wherein the gap has a thickness, in a direction perpendicular to net flow where the direction of net flow is the direction that gas would travel through the endothermic chamber during operation, of 2 mm or less; wherein the exothermic reaction composition comprises air and a fuel; and wherein the exothermic reaction composition is converted to products and the products have less than 100 ppm NOx.
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. patent application Ser. Nos. 09/375,614 and 09/640,930, which are incorporated herein as if reproduced in full below. In accordance with 35 U.S.C. sect. 119(e), this application claims priority to U.S. Provisional Application No. 60/269,628, filed Feb. 16, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60269628 |
Feb 2001 |
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
09375614 |
Aug 1999 |
US |
Child |
10076875 |
Feb 2002 |
US |
Parent |
09640930 |
Aug 2000 |
US |
Child |
10076875 |
Feb 2002 |
US |