Claims
- 1. A flow channel, comprising:
a plurality of connected channel regions, each of said channel regions comprising a longitudinal axis, a top surface substantially parallel to a bottom surface, and first and second side walls each aligned substantially parallel to said longitudinal axis; adjacent first and second channel regions intersecting at a first intersection plane, wherein said first and second side walls of said respective first and second channel regions meet at said first intersection plane, and wherein a normal to said first intersection plane is oriented at an angle, θ11, with respect to said longitudinal axis of said first channel region, and oriented at an angle, θ12, with respect to the longitudinal axis of said second channel region; and means for establishing a first channel permeability, σa1, in said first channel region, wherein 0.75σ1<σa1<1.25σ1, and means for establishing a second channel permeability, σa2, in said second channel region, wherein 0.75σ2<σa2<1.25σ2, where σ1 and σ2 are first and second predetermined design permeabilities related by a compatibility condition comprising 12tan θ11σ1=tan θ12σ2,wherein a fluid flowing from said first channel region into said second channel region and comprising a flux that is substantially uniform in said first channel region remains substantially uniform in said second channel region.
- 2. The flow channel of claim 1, wherein said fluid is turned through a first turning angle, θT1, wherein θT1=θ11−θ12.
- 3. The flow channel of claim 1, wherein a flow velocity and time-of-flight of said fluid is changed.
- 4. The flow channel of claim 1, further including providing first and second channel widths w1 and w2, wherein
- 5. The flow channel of claim 1, wherein said fluid flow is represented by a series of fluid material lines, and wherein said material lines are rotated and deformed as said fluid moves through said first intersection plane.
- 6. The flow channel of claim 1, wherein said means for establishing said first and second channel permeabilities comprises providing a secondary structure within either or both of said first and second channel regions.
- 7. The flow channel of claim 6, wherein said secondary structure is selected from the list of structures consisting of a reduced channel depth, a patterned array of posts, an array of channel aligned vanes, a porous medium, and combinations thereof.
- 8. The flow channel of claim 2, wherein said θT1 has a value less than a critical turn angle, θC1, wherein
- 9. The flow channel of claim 2, wherein θT1=θC1.
- 10. The flow channel of claim 1, wherein one of said first or said second side walls of either or both of said first and second channel regions is reduced to a zero length to provide a generally triangular channel region.
- 11. The flow channel of claim 1, further comprising:
a third channel region intersecting said second channel regions at a second intersection plane, wherein said first and second side walls of said respective second and third channel regions meet at said second intersection plane, and wherein a normal to said second intersection plane is oriented at an angle, θ21, with respect to said longitudinal axis of said second channel region, and oriented at an angle, θ22, with respect to the longitudinal axis of said third channel region; and means for establishing a third channel permeability, θa3, in said third channel region, wherein 0.75σ3<σa3<1.25σ3, where σ3, is a third predetermined design permeability related to said second predetermined design permeability by a compatibility condition comprising 15tan θ21σ2=tan θ22σ3,wherein a fluid flowing from said second channel region into said third channel region and comprising a flux that is substantially uniform in said second channel region remains substantially uniform in said third channel region.
- 12. The flow channel of claim 11, wherein said fluid is turned through a second turning angle, θT2, wherein θT2=θ21−θ22.
- 13. The flow channel of claim 11, wherein a flow velocity and time-of-flight of said fluid is changed.
- 14. The flow channel of claim 11, further including providing a third channel width, w3, wherein
- 15. The flow channel of claim 11, wherein said fluid flow is represented by a series of fluid material lines, and wherein said material lines are rotated and deformed as said fluid moves through said second intersection plane.
- 16. The flow channel of claim 11, wherein said means for establishing said third channel permeability comprises providing a secondary structure within said third channel region.
- 17. The flow channel of claim 16, wherein said secondary structure is selected from the list of structures consisting of a reduced channel depth, a patterned array of posts, an array of channel aligned vanes, a porous medium, and combinations thereof.
- 18. The flow channel of claim 12, wherein said θT2 has a value less than a critical turn angle, θC2, wherein
- 19. The flow channel of claim 12, wherein θT2=θC2.
- 20. The flow channel of claim 11, wherein one of said first or said second side walls of either or both of said second and third channel regions is reduced to a zero length to provide a generally triangular channel region.
- 21. The flow channel 1, further comprising:
an (n+1)th channel region intersecting an nth channel region at an nth intersection plane, wherein said first and second side walls of said respective nth and (n+1)th channel regions meet at said nth intersection plane, and wherein a normal to said nth intersection plane is oriented at an angle θn1 with respect to said longitudinal axis of said nth channel region, and oriented at an angle θn2 with respect to the longitudinal axis of said (n+1)th channel region; and means for establishing an nth channel permeability, σan,in said nth channel region, wherein 0.75σn<σan<1.25σn, and means for establishing an (n+1)th channel permeability, σa(n+1), in said (n+1)th channel region, wherein 0.75σn+1<σa(n+1)<1.25σn+1, where σn and σn+1, are respective nth and (n+1)th predetermined design permeabilities related by a compatibility condition comprising 18tan θn1σn=tan θn2σn+1,wherein a fluid flowing from said nth channel region into said (n+1)th channel region and comprising a flux that is substantially uniform in said nth channel regions remains substantially uniform in said (n+1)th channel region.
- 22. The flow channel of claim 21, wherein said fluid is turned through an nth turning angle, θTn, wherein θTn=θn1−θn2.
- 23. The flow channel of claim 21, wherein a flow velocity and time-of-flight of said fluid is changed.
- 24. The flow channel of claim 22, further including providing an (n+1)th channel width, wherein
- 25. The flow channel of claim 21, wherein said fluid flow is represented by a series of fluid material lines, and wherein said material lines are rotated and deformed as said fluid moves through said nth intersection plane.
- 26. The flow channel of claim 21, wherein said means for establishing said (n+1)th channel permeability further comprises providing a secondary structure within said (n+1)th channel region.
- 27. The flow channel of claim 26, wherein said secondary structure is selected from the list of structures consisting of a reduced channel depth, a patterned array of posts, an array of channel aligned vanes, a porous medium, and combinations thereof.
- 28. The flow channel of claim 22, wherein said nth turning angle is an angle less than an nth critical turn angle, θCn, wherein
- 29. The flow channel of claim 22, wherein θTn=θCn.
- 30. The flow channel of claim 21, wherein one of said first or said second side walls of either or both of said second and third channel regions is reduced to a length of near to provide a generally triangular channel region.
- 31. A skew compensated flow channel comprising the flow channel of claim 9, wherein said angles θ11 and θ22 sum to 90°, said skew compensated flow channel turning said fluid through a skew compensated turn angle, θSCT, wherein,
- 32. A skew compensated flow channel comprising the flow channel of claim 20, wherein said angles θn1 and θ(n+1)2 sum to 90°, said skew compensated flow channel turning said fluid through a skew compensated turn angle, θSCTn, wherein,
- 33. A flow channel for conducting a moving fluid having a flow velocity, comprising:
a plurality of flow channel regions each having a substantially rectangular cross section; at least adjacent first and second channel regions; means for establishing respective first and second predetermined permeabilities, σ1 and σ2 in said respective first and second channel regions; and a first planar interface separating said first and second channel regions, wherein said regions are arranged to change the direction of flow of said moving fluid across said first planar interface, wherein a compatibility condition requiring 23tan θ11σ1=tan θ12σ2is maintained, wherein θ11 and θ12 are, respectively, acute angles incident to and exiting from said first interface, said angles formed between a normal to said first planar interface and respective flow directions in said first channel region and said second channel region.
- 34. The flow channel of claim 33, wherein said fluid is turned through a first turning angle, θT1, wherein θT1=θ11−θ12.
- 35. The flow channel of claim 33, wherein a flow velocity and time-of-flight of said fluid is changed.
- 36. The flow channel of claim 33, further providing first and second channel widths w1 and w2, wherein
- 37. The flow channel of claim 33, wherein said fluid flow is represented by a series of fluid material lines, and wherein said material lines are rotated and deformed as said fluid moves across said first planar interface.
- 38. The flow channel of claim 33, wherein said means for establishing respective first and second predetermined permeabilities comprises providing a secondary structure within either or both of said first and second channel regions.
- 39. The flow channel of claim 38, wherein said secondary structure is selected from the list of structures consisting of a reduced channel depth, a patterned array of posts, an array of channel aligned vanes, a porous medium, and combinations thereof.
- 40. The flow channel of claim 34, wherein said first turning angle θT1 does not exceed a first critical turn angle θCT1, wherein
- 41. The flow channel of claim 34, wherein said first turning angle θT1 is equal to said first critical turn angle θCT1.
- 42. The flow channel of claim 33, comprising:
a third channel region adjacent to said second channel region; means for establishing a third permeability, σ3, in said third channel region; and a second planar interface separating said second and third channel regions, wherein said regions are arranged to change the direction of flow of said fluid moving across said second interface, wherein a compatibility condition requiring 26tan θ21σ2=tan θ22σ3is maintained, where θ21 and θ22, are, respectively, acute angles incident to and exiting from said second interface, said angles formed between a normal to said interface and respective flow directions in said second and said third channel regions.
- 43. The flow channel of claim 42, wherein said fluid is turned through a second turning angle, θT2, wherein θT2=θ21−θ22.
- 44. The flow channel of claim 42, wherein a flow velocity and time-of-flight of said fluid is changed.
- 45. The flow channel of claim 42, further including providing a third channel width, w3, wherein
- 46. The flow channel of claim 42, wherein said fluid flow is represented by a series of fluid material lines, and wherein said material lines are rotated and deformed as said fluid moves across said second planar interface.
- 47. The flow channel of claim 42, wherein said means for establishing said third predetermined permeability comprises providing a secondary structure in said third channel region.
- 48. The flow channel of claim 47, wherein said secondary structure is selected from the list of structures consisting of a reduced channel depth, a patterned array of posts, an array of channel aligned vanes, a porous medium, and combinations thereof.
- 49. The flow channel of claim 42, wherein said second turning angle θT2 does not exceed a second critical turn angle θCT2, wherein
- 50. The flow channel of claim 49, wherein said second turning angle θT2 is equal to said second critical turn angle θCT2.
- 51. A method for providing a flow channel, comprising:
providing a plurality of connected channel regions, wherein each of said channel regions comprises a longitudinal axis, a top surface substantially parallel to a bottom surface, and first and second side walls each aligned substantially parallel to said longitudinal axis; providing at least adjacent first and second channel regions, said first and second channel regions intersecting at a first intersection plane, wherein said first and second side walls of said respective first and second channel regions meet at said first intersection plane, and wherein a normal to said first intersection plane is oriented at an angle, θ11, with respect to said longitudinal axis of said first channel region, and oriented at an angle, θ12, with respect to the longitudinal axis of said second channel region; and establishing a first channel permeability, σa1, in said first channel region, wherein 0.75σ1<σa1<1.25σ1, and means for establishing a second channel permeability, σa2, in said second channel region, wherein 0.75σ2<σa2<1.25σ2, where σ1 and σ2 are first and second predetermined design permeabilities related by a compatibility condition comprising 29tan θ11σ1=tan θ12σ2,wherein a fluid flowing from said first channel region into said second channel region and comprising a flux that is substantially uniform in said first channel region remains substantially uniform in said second channel region.
- 52. The method of claim 51, further including turning said fluid by a first turning angle, θT1, wherein θT1=θ11−θ12.
- 53. The method of claim 51, wherein a flow velocity and time-of-flight of said fluid is changed.
- 54. The method of claim 51, further including providing first and second channel widths w1 and w2, wherein
- 55. The method of claim 51, wherein said fluid flow is represented by a series of fluid material lines, and wherein said material lines are rotated and deformed as said fluid moves through said first intersection plane.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to, prior co-pending provisional U.S. Patent Application Serial No. 60/387,684 originally filed Jun. 10, 2002 entitled “METHOD FOR PROVIDING CONDUCTION-LIKE FLOW CHANNELS AND APPLICATION THEREFOR” from which benefit is claimed.
STATEMENT OF GOVERNMENT INTEREST
[0002] This invention was made with Government support under government contract no. DE-AC04-94AL85000 awarded by the U.S. Department of Energy to Sandia Corporation. The Government has certain rights in the invention, including a paid-up license and the right, in limited circumstances, to require the owner of any patent issuing in this invention to license others on reasonable terms.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60387684 |
Jun 2002 |
US |