Claims
- 1. A method of conducting simultaneous exothermic and endothermic reactions, comprising:
flowing a fuel into a microchannel combustion chamber; adding an oxidant to the combustion chamber such that the oxidant oxidizes the fuel and temperature in the combustion chamber increases from the front of the combustion chamber to the back; providing an endothermic reaction composition in an endothermic reaction chamber that is disposed adjacent to the combustion chamber, wherein the endothermic reaction chamber and the combustion chamber are separated by a thermally conductive wall; wherein the endothermic reaction composition endothermically reacts to form products.
- 2. The method of claim 1 wherein and temperature in the combustion chamber increases substantially monotonically from the front of the combustion chamber to the back.
- 3. The method of claim 1 wherein the oxidant comprises air and the combustion results in less than 10 ppm NOx.
- 4. The method of claim 1 wherein the endothermic reaction comprises steam reforming.
- 5. The method of claim 4 further comprising a step of prereforming a mixture of hydrocarbons to form methane and using the resulting methane in the endothermic reaction composition.
- 6. The method of claim 1 wherein the method is conducted in an integrated combustion reactor (ICR) that has one free end and a non-free end; wherein the non-free end of the ICR contains connections for fuel, oxidant and exhaust.
- 7. The method of claim 1 further comprising the step of partially oxidizing a fuel prior to passage into the combustion chamber.
- 8. An integrated reactor, comprising:
a exothermic microchannel comprising an exothermic reaction catalyst; an endothermic reaction microchannel adjacent the exothermic microchannel and comprising an endothermic reaction catalyst, the endothermic reaction catalyst having a length, in the direction of flow, of at least 10 cm; and a wall separating the exothermic reaction catalyst and the endothermic reaction catalyst.
- 9. The integrated reactor of claim 8 wherein the endothermic reaction microchannel has a height (the dimension perpendicular to flow and defining the shortest distance from the center of the endothermic reaction microchannel to the combustion microchannel) of 0.5 mm or less.
- 10. The integrated reactor of claim 8 wherein at least one wall defining the combustion microchannel contains apertures connecting gas flow between the combustion microchannel and an adjacent air channel.
- 11. The integrated reactor of claim 8 wherein a gap of at least 0.2 mm exists between a wall of the endothermic reaction microchannel and a surface of the endothermic reaction catalyst.
- 12. The integrated reactor of claim 8 wherein the exothermic reaction catalyst is a combustion catalyst.
- 13. An integrated reactor, comprising:
a stack of at least two microchannels wherein at least one of the at least two microchannels comprises a removable catalyst insert and a catalyst door.
- 14. 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 a fuel and an oxidant into at least one exothermic reaction chamber wherein the fuel and oxidant each have a contact time in the combustion chamber of 20 milliseconds or less, 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, transferring heat from the at least one exothermic reaction chamber into the at least one endothermic reaction chamber at a rate of at least 5 W/cm2 as based on the internal area of the endothermic reaction chamber.
OTHER APPLICATIONS
[0001] The invention may be further understood by reference to U.S. patent applications Ser. Nos. ______ (Title: Multistream Microchannel Device; Attorney Docket No. 02-001), ______ (Title: Process for Cooling a Product in a Heat Exchanger Employing Microchannels for the Flow of Refrigerant and Product, Attorney Docket No. 01-002), and ______ (Title Process for Conducting an Equilibrium Limited Chemical Reaction in a Single Stage Process Channel; Attorney Docket No. 02-051), all of which were filed on Aug. 15, 2002, all of which are incorporated herein by reference.