Claims
- 1. A method for obtaining an enhanced production rate per reaction chamber volume of a reaction chamber having an inlet and an outlet for a thermal chemical reaction, the method comprising the steps of;
(a) placing a porous insert within said reaction chamber volume, wherein a reactant flow substantially completely passes through said porous insert wherein said reaction chamber volume with said porous insert has a mean porosity less than 1 and a transport distance no greater than 3 mm; (b) sizing said reaction chamber volume with a length parallel to a bulk reactant flow, said length less than or equal to 6 inches, and with a height less than or equal to 2 inches, thereby transferring reaction heat at an enhanced heat transfer rate through said porous insert; and (c) providing a heat transfer chamber in thermal contact with the reaction chamber volume, said heat transfer chamber transferring heat at said enhanced heat transfer rate across a wall between the heat transfer chamber and the reaction chamber, thereby obtaining the enhanced production rate per reaction chamber volume for the thermal chemical reaction wherein a ratio of said enhanced production rate per reaction chamber volume to a conventional production rate per conventional reaction chamber volume for the thermal chemical reaction is at least 2.
- 2. The method as recited in claim 1, wherein said thermal chemical reaction is a catalytic chemical reaction.
- 3. The method as recited in claim 2, wherein a catalyst is on the porous insert.
- 4. The method as recited in claim 3, wherein said porous insert has a solution deposited interfacial layer thereon, and a catalyst metal on the interfacial layer.
- 5. The method as recited in claim 4, wherein said porous insert has a buffer layer between the porous support and the solution deposited interfacial layer.
- 6. The method as recited in claim 5, wherein said buffer layer is a metal oxide.
- 7. The method as recited in claim 6, wherein said metal oxide is selected from the group consisting of Al2O3, TiO2 and combinations thereof.
- 8. The method as recited in claim 7, wherein said Al2O3 is selected from the group consisting of (α-Al2O3, γ-Al2O3 and combinations thereof.
- 9. A method of obtaining an enhanced production rate per reaction chamber volume of a reaction chamber having an inlet and an outlet for a steam reforming thermal chemical reaction, the method comprising the steps of;
(a) placing a porous insert within said reaction chamber volume, wherein a reactant flow substantially completely passes through said porous insert wherein said reaction chamber volume with said porous insert has a mean porosity less than 1 and a transport distance no greater than 3 mm, said porous insert comprising a porous support with a catalyst material thereon; (b) sizing said reaction chamber volume with a length parallel to a bulk reactant flow, said length less than or equal to 6 inches, and with a height less than or equal to 2 inches, thereby transferring reaction heat at an enhanced heat transfer rate through said porous insert; and (c) providing a heat transfer chamber in thermal contact with the reaction chamber volume, said heat transfer chamber transferring heat at said enhanced heat transfer rate across a wall between the heat transfer chamber and the reaction chamber, thereby obtaining the enhanced production rate per reaction chamber volume for the thermal chemical reaction wherein a ratio of said enhanced production rate per reaction chamber volume to a conventional production rate per conventional reaction chamber volume for the thermal chemical reaction is at least 2.
- 10. The method as recited in claim 9, wherein said porous insert further has an interfacial layer between said porous support and said catalyst material.
- 11. The method as recited in claim 10, wherein said porous insert further has a buffer layer between said interfacial layer and said porous support.
- 12. A method of obtaining an enhanced production rate per reaction chamber volume of a reaction chamber having an inlet and an outlet for a water gas shift thermal chemical reaction, the method comprising the steps of;
(a) placing a porous insert within said reaction chamber volume, wherein a reactant flow substantially completely passes through said porous insert wherein said reaction chamber volume with said porous insert has a mean porosity less than 1 and a transport distance no greater than 3 mm, said porous insert comprising a porous support with a catalyst material thereon; (b) sizing said reaction chamber volume with a length parallel to a bulk reactant flow, said length less than or equal to 6 inches, and with a height less than or equal to 2 inches, thereby transferring reaction heat at an enhanced heat transfer rate through said porous insert; and (c) providing a heat transfer chamber in thermal contact with the reaction chamber volume, said heat transfer chamber transferring heat at said enhanced heat transfer rate across a wall between the heat transfer chamber and the reaction chamber, thereby obtaining the enhanced production rate per reaction chamber volume for the thermal chemical reaction wherein a ratio of said enhanced production rate per reaction chamber volume to a conventional production rate per conventional reaction chamber volume for the thermal chemical reaction is at least 2.
- 13. A vessel for obtaining an enhanced production rate per reaction chamber volume of a reaction chamber having an inlet and an outlet for a thermal chemical reaction, the vessel comprising;
(a) a porous insert within said reaction chamber volume, wherein a reactant flow substantially completely passes through said porous insert wherein said reaction chamber volume with said porous insert has a mean porosity less than 1 and a transport distance no greater than 3 mm; (b) said reaction chamber volume having a length parallel to a bulk reactant flow, said length less than or equal to 6 inches, and with a height less than or equal to 2 inches, thereby transferring reaction heat at an enhanced heat transfer rate through said porous insert; and (c) a heat transfer chamber in thermal contact with the reaction chamber volume, said heat transfer chamber transferring heat at said enhanced heat transfer rate across a wall between the heat transfer chamber and the reaction chamber, thereby obtaining the enhanced production rate per reaction chamber volume for the thermal chemical reaction wherein a ratio of said enhanced production rate per reaction chamber volume to a conventional production rate per conventional reaction chamber volume for the thermal chemical reaction is at least 2.
- 14. The vessel as recited in claim 13, wherein said thermal chemical reaction is a catalytic chemical reaction.
- 15. The vessel as recited in claim 14, wherein a catalyst material is on the porous insert.
- 16. The vessel as recited in claim 14, wherein said porous insert has a solution deposited interfacial layer between a porous support and the catalyst material.
- 17. The vessel as recited in claim 16, wherein said porous insert has a solution deposited interfacial layer between said porous support and said catalyst material.
- 18. The vessel as recited in claim 17, wherein said porous insert has a buffer layer between the porous support and the solution deposited interfacial layer.
- 19. The vessel as recited in claim 18, wherein said buffer layer is a metal oxide.
- 20. The vessel as recited in claim 19, wherein said metal oxide is selected from the group consisting of Al2O3, TiO2 and combinations thereof.
- 21. The vessel as recited in claim 19, wherein said Al2O3 is selected from the group consisting of α-Al2O3, γ-Al2O3 and combinations thereof.
- 22. The vessel as recited in claim 16, wherein said porous support is a metal foam.
- 23. The vessel as recited in claim 16, wherein said porous support is a porous ceramic.
- 24. The vessel as recited in claim 17, wherein said interfacial layer is a solution deposited metal oxide.
- 25. The vessel as recited in claim 24, wherein said solution deposited metal oxide is selected from the group consisting of γAl2O3, SiO2, ZrO2, TiO2 and combinations thereof.
- 26. The vessel as recited in claim 15, wherein said catalyst material is a metal selected from the group of noble metal, transition metal and combinations thereof.
- 27. The vessel as recited in claim 13, wherein said buffer layer is a vapor deposited metal oxide.
- 28. The vessel as recited in claim 27, wherein said vapor deposited metal oxide is selected from the group of Al2O3, TiO2 and combinations thereof.
- 29. The vessel as recited in claim 27, wherein said Al2O3 is selected from the group consisting of α-Al2O3, γ-Al2O3 and combinations thereof.
- 30. The vessel as recited in claim 13 wherein said buffer layer comprises a plurality of sublayers.
Government Interests
[0001] This invention was made with Government support under Contract DE-AC0676RLO1830 awarded by the U.S. Department of Energy. The Government has certain rights in the invention.