Claims
- 1. A heat exchanger, the heat exchanger having a total core volume V, and comprising:
a first microchannel, the first microchannel having a first microchannel inlet thereto and a first microchannel outlet therefrom; a second microchannel, the second microchannel having a second microchannel inlet thereto and a second microchannel outlet therefrom; and at least a third microchannel, the at least third microchannel having an at least third microchannel inlet thereto and an at least third microchannel outlet therefrom, wherein the each microchannel inlet and the each microchannel outlet is distinct from the other microchannel inlets or microchannel outlets, respectively
- 2. The heat exchanger of claim 1, wherein the Reynolds number of a fluid flowing in the first microchannel is less than 4000.
- 3 The heat exchanger of claim 1, wherein a fluid flowing in the first microchannel has a pressure drop of 15 psi.
- 4. The heat exchanger of claim 1, wherein when a first fluid is flowing through the first microchannel, a second fluid is flowing through the second microchannel, and a third fluid is flowing through the third microchannel, the total thermal power density is greater than 1 W/cc.
- 5. The heat exchanger of claim 1, wherein the IPH TAP is greater than 30 percent.
- 6. The heat exchanger of claim 1, wherein the residence time of a first stream flowing in the first microchannel is less than 500 ms.
- 7. A heat exchanger, the heat exchanger having a total core volume V, and comprising:
a first microchannel, the first microchannel having a first microchannel inlet thereto and a first microchannel outlet therefrom; a second microchannel, the second microchannel having a second microchannel inlet thereto and a second microchannel outlet therefrom; and at least a third microchannel, the at least third microchannel having an at least third microchannel inlet thereto and an at least third microchannel outlet therefrom, wherein the each microchannel inlet and the each microchannel outlet is distinct from the other microchannel inlets or microchannel outlets, respectively, and wherein when a first fluid flows through the first microchannel, the interstream planar heat transfer area percent is about 30 or greater.
- 9. A heat exchanger, the heat exchanger having a total core volume V, and comprising:
a first microchannel, the first microchannel having a first microchannel inlet thereto and a first microchannel outlet therefrom; a second microchannel, the second microchannel having a second microchannel inlet thereto and a second microchannel outlet therefrom; and at least a third microchannel, the at least third microchannel having an at least third microchannel inlet thereto and an at least third microchannel outlet therefrom, wherein the each microchannel inlet and the each microchannel outlet is distinct from the other microchannel inlets or microchannel outlets, respectively, and the first microchannel has a hydraulic diameter different from at least the second microchannel.
- 10. The heat exchanger of claim 9, wherein when a first fluid flows through the first microchannel, a second fluid flows through the second microchannel, and an at least third fluid flows through the at least third microchannel, the interstream planar heat transfer area percent is 10 or greater.
- 11. A heat exchanger, the heat exchanger having a total core volume V, and comprising:
a first surface; a second surface, the second surface in a substantially opposing and spaced-apart relation to the first surface; a third surface, the third surface in a substantially orthogonal relation to the first surface and to the second surface; a fourth surface, the fourth surface in a substantially opposing and spaced-apart relation to the third surface; a first microchannel, the first microchannel defining a passageway between the first surface and the second surface; a second microchannel, the second microchannel defining a passageway between the first surface and the second surface; and at least a third microchannel, the at least third microchannel defining a passageway between the third surface and the fourth surface, wherein the first microchannel has a cross-sectional area different from at least the second microchannel or the third microchannel.
- 12. A process for exchanging heat between three streams in a device having a total core volume V, the method comprising:
(a) flowing a first stream, having a first temperature, through a first microchannel formed within the device; (c) flowing a second stream, having a second temperature, through a second microchannel formed within the device; (d) flowing a third stream, having a third temperature, through a third microchannel formed within the device.
- 13. The process of claim 12, wherein the first stream is flowing at a Reynolds number of about 4000 or less.
- 14. The process of claim 12, wherein the residence time of the first stream is about 500 ms or less.
- 15. The process of claim 12, wherein the first stream is a gaseous fluid and flows through the first microchannel at a pressure drop of about 15 psi or less.
- 16. A process for exchanging heat between multiple streams, the method comprising:
(a) flowing a first stream, having a first temperature, through a first microchannel; (b) flowing a second stream, having a second temperature, through a second microchannel; (c) flowing at least a third stream, having an at least third temperature, through an at least third microchannel; and (d) placing the first stream in thermal communication with the second stream and the at least third stream.
- 17. The process of claim 16, wherein when the first stream is a gaseous fluid, and flows through the first microchannel at a pressure drop of about 15 psi or less.
- 18. The process of claim 17, wherein the residence time of the first gaseous fluid is about 500 ms or less.
- 19. The process of claim 16, wherein the interstream planar heat transfer area percent is about 30 or greater.
- 20. A heat exchange process comprising:
(a) flowing a first fluid through a plurality of first microchannels; (b) flowing a second fluid through a plurality of second microchannels; and (c) flowing at least a third fluid through a plurality of at least third microchannels, the set of at least third microchannels being in thermal communication with the set of first microchannels and with the set of second microchannels.
- 21. A heat exchanger, having a total core volume V, and comprising:
a first end and a second end; a first microchannel; a second microchannel; a third microchannel; a fourth microchannel; a fifth microchannel; a sixth microchannel; and a seventh microchannel, each microchannel defining a passageway between the first end and the second end, wherein each microchannel is in thermal communication with at least one of the other microchannels and the first microchannel has a cross-sectional area different from at least the second microchannel.
- 22. The heat exchanger of claim 21, wherein when a first portion of a first gaseous fluid, at a first temperature flows through the first microchannel, a first portion of a second gaseous fluid, at a second temperature flows through the second microchannel, a third gaseous fluid, at a third temperature flows through the third microchannel, a fourth gaseous fluid, at a fourth temperature flows through the fourth microchannel, a fifth gaseous fluid, at a fifth temperature flows through the fifth microchannel, a second portion of the first gaseous fluid, flows through the sixth microchannel, and a second portion of the second gaseous fluid, flows through the seventh microchannel, the total thermal power density (W/V) of the heat exchanger is at least 1 W/cc.
- 23. The heat exchanger of claim 22, wherein the weighted average approach is 150 deg. C.
- 24. A device for carrying out at least a first chemical reaction and at least a second chemical reaction, the device comprising:
a first microchannel; a second microchannel, the second microchannel in thermal communication with the first microchannel; and at least a third microchannel, the at least third microchannel in fluid communication with the second microchannel, wherein when a first stream comprising at least a first reactant is introduced into the first microchannel, a second stream comprising at least a second reactant is introduced into the second microchannel, and an at least third stream comprising at least a third reactant is introduced into the at least third microchannel, the at least first reactant is converted to at least a first product via the at least first chemical reaction, the at least second reactant and the at least third reactant combine to form an at least second product via the at least second chemical reaction, and heat energy is transferred between the first stream and a combined second stream and third stream.
- 25. A device for carrying out an endothermic reaction, the device having a total core volume V and comprising:
a heat exchanger and reactor in combination, the heat exchanger comprising a first, a second, a third, a fourth, and a fifth microchannel, the reactor comprising an endothermic reaction microchannel in fluid communication with the first heat exchanger microchannel and the second heat exchanger microchannel, an exothermic reaction microchannel in fluid communication with the third heat exchanger microchannel and the fifth heat exchanger microchannel, and a perforated microchannel in fluid communication with the fourth heat exchanger microchannel, the perforated microchannel formed to include one or more apertures, the perforated microchannel in fluid communication with the exothermic reaction microchannel through the one or more apertures.
- 26. The device of claim 25, wherein the exothermic reaction microchannel is in thermal communication with the endothermic reaction microchannel.
- 27. A device for carrying out an endothermic reaction, the device having a total core volume V and comprising:
a reaction microchannel; a combustion microchannel in thermal communication with the reaction microchannel; and an oxidizer microchannel in fluid communication with the combustion microchannel.
- 28. A process for carrying out an endothermic reaction, the process comprising:
(a) introducing an endothermic reactants stream into a first microchannel, wherein the endothermic reactants stream is converted into an endothermic products stream; (b) introducing an oxidizer stream into a second microchannel; (c) introducing a fuel stream into a third microchannel, the third microchannel in fluid communication with the second microchannel and the third microchannel in thermal communication with the first microchannel, wherein the fuel stream and the oxidizer stream are converted into an exhaust stream and wherein heat energy is transferred from the third microchannel to the first microchannel; (d) withdrawing the endothermic products stream from the first microchannel; and (e) withdrawing the exhaust stream from the third microchannel.
- 29. A device for converting a reactants feed stream into a products stream via a chemical reaction, the device comprising a heat exchanger and reactor in combination, the heat exchanger having a distal portion and a proximal portion and comprising a first, a second, a third, a fourth, and a fifth microchannel, each microchannel defining a passageway between the distal portion and the proximal portion, the reactor being integral to the heat exchanger proximal portion and comprising a microchannel chemical reaction section, the microchannel chemical reaction section in fluid communication with the first heat exchanger microchannel and the second heat exchanger microchannel, a microchannel second reaction section, the microchannel second reaction section in fluid communication with the third heat exchanger microchannel and the fifth heat exchanger microchannel, and a perforated microchannel section, the perforated microchannel section in fluid communication with the fourth heat exchanger microchannel and formed to define one or more apertures, the perforated microchannel section in fluid communication with the microchannel second reaction section.
- 30. The device of claim 29, wherein when the reactants feed stream is introduced into the second heat exchanger microchannel at the distal portion, a fuel stream is introduced into the third heat exchanger microchannel at the distal portion, an oxygen-containing stream is introduced into the fourth heat exchanger microchannel at the distal portion, the products stream is allowed to discharge through the first heat exchanger microchannel at the distal portion, and an exhaust stream is allowed to discharge through the fifth heat exchanger microchannel at the distal end, within the heat exchanger, the products stream gives up heat to the feed stream and the exhaust stream gives up heat to the oxygen-containing stream, and within the reactor, the oxygen-containing stream and the fuel stream combine in a combustion reaction which provides heat for one or more reactions wherein the reactants feed stream is at least partially converted to the products stream.
- 31. A device for carrying out a chemical reaction, the device having total core volume V and comprising a heat exchanger and a reactor in combination, the heat exchanger comprising a first, a second, a third, a fourth, a fifth, a sixth, a seventh, and an eighth microchannel, the reactor being integral to the heat exchanger and comprising a first exothermic reaction microchannel, the first exothermic reaction microchannel in fluid communication with the fourth heat exchanger microchannel and the sixth heat exchanger microchannel, a second exothermic reaction microchannel in fluid communication with the eighth heat exchanger microchannel and the sixth heat exchanger microchannel, a first perforated microchannel in fluid communication with the fifth heat exchanger microchannel and formed to include one or more first perforated microchannel apertures, the first perforated microchannel in fluid communication with the first exothermic reaction microchannel through the one or more first perforated microchannel apertures, a second perforated microchannel in fluid communication with the seventh heat exchanger microchannel and formed to include one or more second perforated microchannel apertures, the second perforated microchannel in fluid communication with the second exothermic reaction microchannel through the one or more second perforated microchannel apertures, a first reaction microchannel in fluid communication with the first heat exchanger microchannel and the second heat exchanger microchannel, and a second reaction microchannel in fluid communication with the third heat exchanger microchannel and the second heat exchanger microchannel.
- 32. A process for reforming a hydrocarbon feed stream into a synthesis gas products stream, the process comprising:
(a) providing a microchannel device having total core volume V and comprising a heat exchanger and a reformer reactor; (b) introducing the hydrocarbon feed stream into a second heat exchanger microchannel; (c) introducing a fuel stream into a third heat exchanger microchannel; (d) introducing an oxygen-containing stream into a fourth heat exchanger microchannel; (e) at least partially reforming the feed stream into the products stream in a reformer section of the reactor; (f) combusting the fuel stream with the oxygen-containing stream in a combustion section of the reactor to form an exhaust stream; (g) allowing the products stream to discharge through a first heat exchanger microchannel; and (h) allowing the exhaust stream to discharge through a fifth heat exchanger microchannel.
- 33. A microchannel device, having a total core volume V, and comprising:
a first microchannel and a second microchannel, the second microchannel formed to include one or more apertures, the second microchannel in fluid communication with the first microchannel.
- 34. An apparatus for conducting an endothermic chemical reaction, comprising:
a plurality of microchannel devices, each microchannel device having a total core volume V and comprising a heat exchanger and reactor in combination, the heat exchanger comprising at least five microchannels, the reactor being integral to the heat exchanger and comprising a first reaction microchannel in fluid communication with the first heat exchanger microchannel and the second heat exchanger microchannel, a second reaction microchannel in fluid communication with the third heat exchanger microchannel and the fourth heat exchanger microchannel, and a perforated microchannel in fluid communication with the at least fifth heat exchanger microchannel and further in fluid communication with the second reaction microchannel; a first manifold in fluid communication with the first heat exchanger microchannel of each microchannel device; a second manifold in fluid communication with the second heat exchanger microchannel of each microchannel device; a third manifold in fluid communication with the third heat exchanger microchannel of each microchannel device; and a fourth manifold in fluid communication with the fifth heat exchanger microchannel of each microchannel device.
- 35. The apparatus of claim 34, wherein, during operation, a first stream enters the first manifold and is distributed to the first heat exchanger microchannel of each microchannel device, a portion of the first stream then flows through the first heat exchanger microchannel of each microchannel device, through the first reaction microchannel of each microchannel device, through the at least second heat exchanger microchannel of each microchannel device, and enters the second manifold and exits the microchannel apparatus as a second stream, a third stream enters the third manifold and is distributed to the third heat exchanger microchannel of each microchannel device, a portion of the third stream then flows through the third heat exchanger microchannel of each microchannel device, through the second reaction microchannel of each microchannel device, through the fourth heat exchanger microchannel of each microchannel device and exits the apparatus as a fourth stream, an at least fifth stream enters an at least fourth manifold and is distributed to the at least fourth heat exchanger microchannel of each microchannel device, a portion of the at least fifth stream then flows through the second reaction microchannel of each microchannel device, through the fourth heat exchanger microchannel, and exits the microchannel apparatus with the fourth stream.
- 36. A microchannel apparatus for conducting a chemical reaction, the apparatus comprising a plurality of microchannel devices, each device having a total core volume V and comprising:
a plurality of first reactants microchannels, each first reactants microchannel in fluid communication an outside surface of the device; a plurality of first products microchannels, each first products microchannel in fluid communication with a respective first reactants microchannel and in fluid communication with an outside surface of the device; a plurality of second reactants microchannels, each second reactants microchannel in fluid communication with a respective first products microchannel and in fluid communication with an outside surface of the device; a plurality of third reactants microchannels, each third reactants microchannel in fluid communication with an outside surface of the device; a plurality of fifth reactants microchannels, each fifth reactants microchannel in fluid communication with an outside surface of the apparatus and in fluid communication with a respective third reactants microchannel; a plurality of second products microchannels, each second microchannel in fluid communication with a respective third reactants microchannel and in fluid communication with an outside surface of the apparatus; a plurality of fourth reactants microchannels, each fourth reactants microchannel in fluid communication with a respective second products microchannel and in fluid communication with an outside surface of the apparatus; and a plurality of sixth reactants microchannels, each sixth microchannel in fluid communication with a respective fourth reactants microchannel and in fluid communication with an outside surface of the apparatus.
- 37. The apparatus of claim 36, the apparatus further comprising:
a first header in fluid communication with the plurality of first reactants microchannels and in fluid communication with the plurality of second reactants microchannels; a second header in fluid communication with the plurality of first products microchannels; a third header in fluid communication with the plurality of third reactants microchannels and in fluid communication with the plurality of sixth reactants microchannels; a fourth header in fluid communication with the plurality of fifth reactants microchannels and in fluid communication with the plurality of fourth reactants microchannels; and a fifth header in fluid communication with the plurality of second products microchannels.
- 38. A microchannel apparatus for conducting a chemical reaction, the apparatus comprising:
a plurality of microchannel devices, each device having a total core volume V and comprising:
a first reactants manifold; a plurality of first reactants microchannels, each first reactants microchannel in fluid communication with the first reactants manifold; a first products manifold; a plurality of first products microchannels, each first products microchannel in fluid communication with the first products manifold and in fluid communication with a respective first reactants microchannel; a second reactants manifold; a plurality of second reactants microchannels, each second reactants microchannel in fluid communication with the second reactants manifold and in fluid communication with a respective first products microchannel; a third reactants manifold; a plurality of third reactants microchannels, each third reactants microchannel in fluid communication with the third reactants manifold; a plurality of fifth reactants microchannels, each fifth reactants microchannel in fluid communication with an outside surface of the device and in fluid communication with a respective third reactants microchannel; a second products manifold; a plurality of second products microchannels, each second products microchannel in fluid communication with the second products manifold and in fluid communication with a respective third reactants microchannel; a fourth reactants manifold; a plurality of fourth reactants microchannels, each fourth reactants microchannel in fluid communication with the fourth reactants manifold and in fluid communication with a respective second products microchannel; a plurality of sixth reactants microchannels, each sixth reactants microchannel in fluid communication with an outside surface of the device and in fluid communication with a respective fourth reactants micro channel; a first header in fluid communication with the plurality of first and second reactants manifolds; a second header in fluid communication with the plurality of firstproducts manifolds; a third header in fluid communication with the plurality of third and fourth reactants manifolds; a fourth header in fluid communication with the plurality of second products manifolds; and; a fifth header in fluid communication with the plurality of fifth and sixth reactants microchannels.
- 39. A microchannel apparatus for conducting a chemical reaction, the apparatus, the apparatus comprising:
a plurality of microchannel devices, each device having a total core volume V and comprising:
a first reactants manifold; a plurality of first reactants microchannels, each first reactants microchannel in fluid communication with the first reactants manifold; a first products manifold; a plurality of first products microchannels, each first products microchannel in fluid communication with the first products manifold nad in fluid communication with a respective first reactants micro channel; a second reactants manifold; a plurality of second reactants microchannels, each second reactants microchannel in fluid communication with the second reactants manifold; a plurality of third reactants microchannels, each third reactants microchannel in fluid communication with an outside surface of the device and in fluid communication with a respective second reactants microchannel; a second products manifold; a plurality of second products microchannels, each second products microchannel in fluid communication with the second products manifold and in fluid communication with a respective second reactants microchannel; a first header in fluid communication with the plurality of first reactants manifolds; a second header in fluid communication with the plurality of first products manifolds; a third header in fluid communication with the plurality of second reactants manifolds; a fourth header in fluid communication with the plurality of second products manifolds; a fifth header is fluid communication with the plurality of second products microchannels.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is related to the following commonly-assigned applications filed concurrently herewith on Aug. 15, 2002: “Integrated Combustion Reactors and Methods of Conducting Simultaneous Endothermic and Exothermic Reactions”, Attorney Docket No. 02-052 and “Process for Cooling a Product in a Heat Exchanger Employing Microchannels for the Flow of Refrigerant and Product”, Attorney Docket No. 01-002 which applications are incorporated herein by reference.