Claims
- 1. A fluid circuit useful for consolidating or mixing fluids, said fluid circuit comprising a first microchannel and a second microchannel joining at an intersection to form a common downstream microchannel, wherein said first microchannel comprises a passive stopping means immediately upstream from said intersection; wherein said passive stopping means is adapted to block the flow of a first fluid in said first channel prior to wetting of the downstream side of said passive stopping means, and to permit flow of said first fluid through said passive stopping means upon wetting of the downstream side of said passive stopping means by a second fluid entering said intersection from said second microchannel.
- 2. The fluid circuit of claim 1, wherein said first fluid and said second fluid have substantially the same surface energies.
- 3. The fluid circuit of claim 1, wherein said passive stopping means is created by an abrupt change in the capillary force experienced by fluid flowing in said first microchannel.
- 4. The fluid circuit of claim 1, wherein said passive stopping means is created by a change in at least one of the contact angle between said first fluid and said first microchannel and the diameter of said first microchannel.
- 5. The fluid circuit of claim 1, wherein said passive stopping means is selected from the group consisting of a hydrophobic short channel narrowing, a hydrophilic short channel narrowing, a hydrophilic channel widening, a hydrophobic patch, and a surface tension patch.
- 6. The fluid circuit of claim 5, wherein at least a portion of the interior of said fluid circuit comprises a hydrophobic material.
- 7. The fluid circuit of claim 6, wherein said hydrophobic material is selected from the group consisting of polytetrafluoroethylene, fluorinated ethylenepropylene, perfluoralkoxy alkane, and polyvinylidene fluoride.
- 8. The fluid circuit of claim 5, wherein at least a portion of the interior of said fluid circuit comprises a hydrophilic material.
- 9. The fluid circuit of claim 8, wherein said hydrophilic material is elastophilic™.
- 10. The fluid circuit of claim 1 wherein at least one of said first microchannel and said second microchannel comprises an air escape duct upstream of said intersection.
- 11. The fluid circuit of claim 1 wherein at least one of said first microchannel and said second microchannel comprises a vent upstream of said intersection.
- 12. The fluid circuit of claim 11 wherein said vent allows the passage of gaseous materials but not fluids.
- 13. A fluid circuit operable at an operating pressure, said fluid circuit comprising a first microchannel and a second microchannel joining at an intersection to form a common downstream microchannel, wherein said downstream microchannel is adapted to receive simultaneous combined fluid flow from said first microchannel and said second microchannel, wherein at least one of said first microchannel and second microchannel comprises an air escape duct adjacent said intersection, and wherein said air escape duct allows the passage of gaseous materials but not fluids at said operating pressure.
- 14. The fluid circuit of claim 13 wherein said air escape duct is selected from the group consisting of a hydrophobic patch, a surface tension patch, a hydrophobic short channel narrowing, and a hydrophilic short channel narrowing.
- 15. A fluid circuit comprising:
a parent microchannel having an upstream end and a downstream end; at least two daughter microchannels branching from said downstream end of said parent microchannel, each said daughter microchannel having an upstream end and a downstream end; a first pressure barrier resisting flow of fluid from said parent microchannel to one said daughter microchannel; and a second pressure barrier resisting flow of fluid out of one said daughter microchannel in a downstream direction; wherein said second pressure barrier provides a greater resistance to fluid flow than said first pressure barrier.
- 16. The fluid circuit of claim 15, wherein said first pressure barrier is created by an abrupt change in the capillary force experienced by fluid at said first pressure barrier, and said second pressure barrier is created by an abrupt change in the capillary force experienced by fluid at said second pressure barrier.
- 17. The fluid circuit of claim 15, wherein said first pressure barrier is created by an abrupt change microchannel diameter at the junction said parent microchannel and said one daughter microchannel.
- 18. The fluid circuit of claim 15, wherein at least one of said first pressure barrier and said second pressure barrier is selected from the group consisting of a hydrophobic short channel narrowing, a hydrophilic short channel narrowing, a hydrophilic channel widening, a hydrophobic patch, and a surface tension patch.
- 19. A fluid circuit comprising:
a parent microchannel having an upstream end and a downstream end; at least two first generation daughter microchannels branching from said downstream end of said parent microchannel, each said first generation daughter microchannel having an upstream end and a downstream end; at least two second generation daughter microchannels branching from the downstream end of at least one said first generation daughter microchannel; at least a first pressure barrier resisting flow of fluid out of one said first generation daughter microchannels in a downstream direction; and at least a second pressure barrier resisting flow of fluid out of one said second generation daughter microchannels in a downstream direction; wherein said second generation pressure barrier provides a greater resistance to fluid flow than said first generation pressure barrier.
- 20. The fluid circuit of claim 19, further comprising at least one well or chamber connected downstream of at least one said second generation daughter microchannel.
- 21. The fluid circuit of claim 19, wherein said first pressure barrier is created by an abrupt change in the capillary force experienced by fluid at said first pressure barrier, and said second pressure barrier is created by an abrupt change in the capillary force experienced by fluid at said second pressure barrier.
- 22. The fluid circuit of claim 19 wherein said first pressure barrier is created by an abrupt change in microchannel diameter at the junction said one first generation daughter channel and one said second generation daughter microchannel.
- 23. The fluid circuit of claim 19, wherein at least one of said first pressure barrier and said second pressure barrier is selected from the group consisting of a hydrophobic short channel narrowing, a hydrophilic short channel narrowing, a hydrophilic channel widening, a hydrophobic patch, and a surface tension patch.
- 24. A non-wetted fluid circuit having an hydrophobic inner surface and comprising a plurality of connected microchannels, wherein at least one said microchannel comprises a short microchannel narrowing, said microchannel narrowing having an inlet, an outlet, and a cross-sectional configuration relative to the microchannel that creates a passive pressure barrier causing fluid that is advancing through said fluid circuit preferably to flow in an adjoining microchannel connected upstream of said narrowing rather than to flow past said narrowing.
- 25. The fluid circuit of claim 24, wherein said fluid circuit is formed in a hydrophobic material.
- 26. The fluid circuit of claim 24, wherein the inner surface of said fluid circuit comprises a hydrophobic coating.
- 27. The fluid circuit of claim 25, wherein said hydrophobic material comprises one or more materials selected from the group consisting of polytetrafluoroethylene, fluorinated ethylenepropylene, perfluoralkoxy alkane, and polyvinylidene fluoride.
- 28. The fluid circuit of claim 26, wherein said hydrophobic coating comprises one or more materials selected from the group consisting of polytetrafluoroethylene, fluorinated ethylenepropylene, perfluoralkoxy alkane, and polyvinylidene fluoride.
- 29. A non-wetted fluid circuit having an hydrophilic inner surface and comprising a plurality of connected micro channels, wherein at least one said micro channel comprises a short microchannel narrowing, said microchannel narrowing having an inlet, an outlet, and a cross-sectional configuration relative to the microchannel that creates a passive pressure barrier causing fluid that is advancing through said fluid circuit preferably to flow in an adjoining microchannel connected upstream of said narrowing rather than to flow past said narrowing.
- 30. The fluid circuit of claim 29, wherein said fluid circuit is formed in a hydrophilic material.
- 31. The fluid circuit of claim 30, wherein said hydrophilic material comprises one or more materials selected from the group consisting of metal, glass, PMMA, polycarbonate, nylon 6/12 and PVC.
- 32. The fluid circuit of claim 29, wherein the inner surface of said fluid circuit comprises a hydrophilic coating.
- 33. The fluid circuit of claim 32, wherein said hydrophilic coating is elastophilic™.
- 34. A non-wetted fluid circuit comprising a plurality of connected microchannels, wherein at least one said microchannel comprises a passive pressure barrier causing fluid that is advancing through said fluid circuit preferably to flow in an adjoining microchannel connected upstream of said passive pressure barrier rather than flowing through said passive pressure barrier.
- 35. The fluid circuit of claim 34, further comprising a coating on at least a portion of said fluid circuit.
- 36. The fluid circuit of claim 35, wherein said coating comprises a hydrophobic material.
- 37. The fluid circuit of claim 36, wherein said hydrophobic material is selected from the group consisting of polytetrafluoroethylene, fluorinated ethylenepropylene, perfluoralkoxy alkane, and polyvinylidene fluoride.
- 38. The fluid circuit of claim 35, wherein said coating comprises a hydrophilic material.
- 39. The fluid circuit of claim 38, wherein said hydrophilic material is elastophilicTM .
- 40. A fluid circuit comprising at least a first microchannel and a second microchannel, said second microchannel joining said first microchannel at an intersection, said first microchannel comprising a passive stopping means downstream of said intersection, said passive stopping means causing fluid which is advancing through said fluid circuit preferably to flow in said second microchannel rather than to flow past said passive stopping means.
- 41. The fluid circuit of claim 40, wherein said passive stopping means is created by an abrupt change in the capillary force experienced by fluid advancing in said first micro channel.
- 42. The fluid circuit of claim 40, wherein said passive stopping means is created by a change in at least one of the contact angle between said fluid and said first microchannel and the diameter of said first microchannel.
- 43. The fluid circuit of claim 40, wherein said passive stopping means is selected from the group consisting of a hydrophobic short channel narrowing, a hydrophilic short channel narrowing, a hydrophilic channel widening, a hydrophobic patch, and a surface tension patch.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is related to U.S. provisional patent application Ser. No. 60/103,970, filed Oct. 13, 1998, and to U.S. provisional application Ser. No. 60/138,092, filed Jun. 8, 1999, and U.S. utility application Ser. No. 09/417,691, filed Oct. 13, 1999, both of which are incorporated herein by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60103970 |
Oct 1998 |
US |
|
60138092 |
Jun 1999 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09417691 |
Oct 1999 |
US |
Child |
09967402 |
Sep 2001 |
US |