Claims
- 1. A microreactor having at least two interconnected and parallel paths micromachined in a substrate of silicon or other micromachinable material,said paths being parallel generally serpentine paths extending from an inlet to an outlet to promote equal residence time of fluids flowing across said parallel paths, and:
a filter for trapping catalyst particles positioned proximate to said outlet of said reactor.
- 2. The microreactor of claim 1 including a finely divided catalyst loaded in said channels.
- 3. The microreactor of claim 1 wherein said micro-machined path with one of a width or depth between 10 to 2000 micrometers.
- 4. A microreactor comprising in combination:
a substrate having micro-machined therein a plurality of separate microchannels, each microchannel communicating with an inlet and outlet of said reactor; a filter proximate an outlet conduit of said reactor to prevent catalyst particles loaded into said microchannels from passing out of said reactor; and means to effect a gas tight seal separately with each of said inlet and said outlet of said reactor.
- 5. A microreactor according to claim 4 wherein each of said microchannels has one of a width or depth between 10 and 2000 micrometers.
- 6. A microreactor according to claim 4 including means to heat said microchannels.
- 7. A microreactor according to claim 4 including a finely divided catalyst loaded into said microchannels.
- 8. A method of catalyst loading of a microreactor fabricated by micro-machining a plurality of channels in a substrate of silicon or other micromachinable material to define a continuous generally serpentine path from an inlet to an outlet with a filter for trapping catalyst particles proximate to said outlet of said reactor comprising the steps of:
a) preparing a fluid-based suspension of catalyst particles of a desired particle size range; b) introducing said suspension into one of said inlet of said reactor or a catalyst introduction port communicating with said channels under pressure while drawing a vacuum at said outlet of said reactor; and c) continuing step (b) until said channels are packed with catalyst.
- 9. A method for producing hydrogen by reaction of methanol and water vapor in the presence of a catalyst comprising the steps of:
a) loading the channels of a microreactor with a low temperature shift/methanol reforming catalyst; b) heating said reactor to a temperature of from 195° C. to 275° C.; c) introducing methanol and water vapor into an inlet of said reactor; and d) withdrawing a hydrogen rich product stream from an outlet of said microreactor.
- 10. A microreactor having a generally circular configuration with a central generally circular inlet communicating with radial flow passage between the inlet and an outlet spaced apart from the inlet at a radial distance greater than the radius of the inlet.
- 11. A method of making the microreactor of claim 10, comprising:
a) etching an annular region in a substrate to form the radial flow reaction chamber; b) forming a filter for trapping catalyst particles near the inner and outer circular boundaries of the reaction chamber, e.g., by etching parallel grooves in the substrate wherein said grooves are of width less than the catalyst particle diameter; and c) flowing a fluid (gas/liquid)-based suspension of catalyst particles through said annular chamber to form a packed bed of the catalyst.
- 12. A method for producing hydrogen by reaction of methanol and water vapor in the presence of a catalyst comprising the steps of:
a) loading the reaction chamber of a radial flow microreactor with a low temperature shift/methanol reforming catalyst; b) heating said radial flow microreactor to a temperature of from 195° C. to 275° C.; c) introducing methanol and water vapor into an inlet of said radial flow microreactor; and d) withdrawing a hydrogen rich product stream from an outlet of said radial flow microreactor.
- 13. A method of manufacturing a microreactor having a plurality of interconnected reaction channels each reaction channel defining a generally serpentine path from an inlet to an outlet of said reactor comprising the steps of:
patterning the first side of a silicon substrate to form said channels and a filter upstream of an exit port for said channels; patterning a second side of said substrate to form trenches for conductive metal heater/sensor lines; bonding a capping wafer having an inlet port and an outlet port to said first side of said substrate to create closed channels, said inlet for said capping water corresponding to said inlet of said channels, said outlet for said capping wafer corresponding to said outlet for said channels; inserting and bonding capillary tubes in said inlet and said outlet ports on said capping wafer; depositing conductive metal lines in said trenches on said second side of said substrate; bonding a second capping wafer having ports to accommodate electrical leads connected to said metal lines, to said second side of said substrate; and introducing a catalyst into said channels of said microreactor.
- 14. A method according to claim 13 including the step of bonding connection pads to said second side of said substrate to enable connecting said heater/sensor lines to a controller.
- 15. A method according to claim 13 including the steps of using one of platinum or platinum containing alloy as said conductive metal.
- 16. A method of bonding a capillary tube made of polytetrafluoroethylene or other suitable thermally deformable material to a passage in a glass wafer comprising the steps of:
treating the surface of the capillary tube to render said surface bondable and wettable by a conventional epoxy resin; inserting a support inside said capillary to prevent inward deformation of said capillary during subsequent fabricating steps; inserting said supported capillary inside said port on said wafer; heating an end of said capillary proximate a bottom portion of said port to effect melting of a portion of said heated end of said capillaries; moving said melted end of said capillary into contact with a wall of said port at a desired location for said capillary in said port, thus forming a temporary seal between said capillary and said wall of said port; and introducing an epoxy around said capillary to bind said capillary to said wafer.
- 17. A method according to claim 16 including the step of treating said capillary fabricated from polytetrafluoroethylene with a sodium/naphthalene complex solution at about 55° C. followed by rinsing in methanol, followed by rinsing in glacial acetic acid solution at 70° C., followed by rinsing in water and drying.
- 18. A method according to claim 16 including the step of binding a reinforcing sleeve to said capillary with epoxy.
- 19. A method for preparing a catalyst bed in a microreactor consisting of a low temperature shift/methanol reforming catalyst in a microreactor to be used to react methanol and water vapor in said catalyst bed to produce hydrogen comprising the steps of:
preheating said catalyst bed to about 150° C.; reacting a methanol water feed mixture in said catalyst bed as the temperature of said bed is raised from about 150° C. to about 175° C.; and continuing said reaction of said mixture until said catalyst is activated.
- 20. A method according to claim 19 including the step of raising the temperature of the catalyst bed to operating temperature after activation of said catalyst bed.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Patent Application Serial No. 60/434,993 filed Dec. 20, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60434993 |
Dec 2002 |
US |