Claims
- 1. A spray nozzle comprising:
a mixing chamber; a means for guiding a primary fluid to the mixing chamber, wherein the means for guiding a primary fluid to the mixing chamber causes a plurality of streams of primary fluid to enter the mixing chamber; a means for guiding a secondary fluid to the mixing chamber, wherein the secondary fluid enters the mixing chamber with a direction of travel which causes the secondary fluid to interact with the primary fluid, wherein the interaction of the secondary fluid with the primary fluid causes destabilization of the primary and/or the secondary fluid; and a discharge port, wherein a combined flow of the primary fluid and the secondary fluid exit the mixing chamber through the discharge port, wherein the combined flow of the primary fluid and the secondary fluid is atomized upon exiting the discharge port.
- 2. The spray nozzle according to claim 1, wherein the primary fluid comprises a liquid.
- 3. The spray nozzle according to claim 1, wherein the primary fluid is a liquid.
- 4. The spray nozzle according to claim 3, wherein the secondary fluid is a gas.
- 5. The spray nozzle according to claim 1, wherein the primary fluid is a mixture of a gas and a liquid.
- 6. The spray nozzle according to claim 1, wherein the secondary fluid is a mixture of a gas and a liquid.
- 7. The spray nozzle according to claim 1, wherein the plurality of streams of primary fluid are axially symmetric.
- 8. The spray nozzle according to claim 1, wherein the combined flow of the primary fluid and the secondary fluid has an axis of atomization around which the combined flow is centered upon exiting the discharge port, wherein the plurality of streams of primary fluid are not parallel with the axis of atomization.
- 9. The spray nozzle according to claim 8,
wherein the plurality of streams enter the mixing chamber at an angle of between about 0° and about 15° with respect to the axis of atomization.
- 10. The spray nozzle according to claim 1, wherein the primary fluid enters the mixing chamber with a direction of travel substantially toward the discharge port.
- 11. The spray nozzle according to claim 1, wherein the secondary fluid comprises a gas.
- 12. The spray nozzle according to claim 1, wherein the secondary fluid comprises a liquid.
- 13. The spray nozzle according to claim 1, wherein the plurality of streams are sufficiently spaced apart such that each of the plurality of streams acts as an independent stream.
- 14. The spray nozzle according to claim 7, wherein each of the plurality of streams of primary fluid are each approximately equidistance from each of the other streams.
- 15. The spray nozzle according to claim 14, wherein the means for guiding a primary fluid to the mixing chamber causes three streams of primary fluid to enter the mixing chamber.
- 16. The spray nozzle according to claim 14, wherein the distance from the center of each of the plurality of streams to the center of each adjacent stream is between about d and about 2d, where d is the diameter of each stream.
- 17. The spray nozzle, according to claim 14, wherein the distance from the center of each of the plurality of streams to the center of each adjacent stream is at least about 3d/2 where d is the diameter of each stream.
- 18. The spray nozzle according to claim 1, wherein the combined flow of the primary fluid and the secondary fluid has an axis of atomization around which the combined flow is centered upon exiting the discharge port, wherein the secondary fluid enters the mixing chamber at an angle to the axis of atomization so as to generate a swirl effect in the mixing chamber.
- 19. The spray nozzle according to claim 18, wherein the secondary fluid enters the mixing chamber at an angle between about 0° and about 90° with respect to the axis of atomization.
- 20. The spray nozzle according to claim 18, wherein the secondary fluid enters the mixing chamber of an angle between about 45° and about 75° with respect to the axis of atomization.
- 21. The spray nozzle according to claim 1, wherein the plurality of streams of primary fluid enters the mixing chamber at an angle between about 0° and about 15° with respect to the axis of atomization.
- 22. The spray nozzle according to claim 1, wherein the velocity of the combined flow of the primary fluid and the secondary fluid which is atomized upon exiting the discharge port is between approximately 5 meters per second and approximately 50 meters per second.
- 23. The spray nozzle according to claim 1, wherein the combined flow of the primary fluid and the secondary fluid which is atomized upon exiting the discharge port comprises droplets having mean diameters in a range from about 10 microns to about 200 microns.
- 24. The spray nozzle according to claim 1, wherein the means for guiding a primary fluid to the mixing chamber comprises at least one channel.
- 25. The spray nozzle according to claim 24, wherein the means for guiding a secondary fluid to the mixing chamber comprises at least one secondary fluid channel.
- 26. The spray nozzle according to claim 25, further comprising:
an inner portion, wherein the at least one primary fluid channel allows primary fluid to flow through the inner nozzle portion; and an outer nozzle portion, wherein an outer surface of the inner nozzle portion has at least one groove cut into the outer surface, wherein the inner nozzle portion is inserted into a cavity of the outer nozzle portion such that an inner surface of the outer nozzle covers a portion of each groove cut into the outer surface of the inner nozzle portion to form one of the at least one secondary fluid channel, wherein a portion of the cavity of the outer nozzle portion remaining after insertion of the inner nozzle portion into the outer nozzle portion, surrounded by the inner surface of the outer nozzle portion and the outer surface of the inner nozzle portion, forms the mixing chamber.
- 27. The spray nozzle according to claim 1, further comprising:
an interface plate, the interface plate comprising a first surface and a second surface, wherein the second surface is located in thermal contact with a heat source, wherein the combined flow of the primary fluid and the secondary fluid exiting the mixing chamber through the discharge port sprays onto the first surface, wherein the combined flow sprayed onto the first surface absorbs heat from the first surface and carries the absorbed heat away as the combined flow leaves the first surface.
- 28. The spray nozzle according to claim 27, wherein the first surface comprises surface enhancements which increases the heat transfer between the combined flow sprayed onto the first surface and the first surface.
- 29. The spray nozzle according to claim 28, wherein the first surface comprises surface enhancements which increase the surface area of the first surface by a factor between about 1 and about 5.
- 30. The spray nozzle according to claim 29, wherein the surface enhancements increase the surface area of the first surface by a factor between about 1.1 and about 2.
- 31. The spray nozzle according to claim 27, wherein primary fluid is inputted into the means for guiding a primary fluid to the mixing chamber via a primary fluid inlet port, wherein secondary fluid is inputted into the means for guiding a secondary fluid to the mixing chamber via a secondary fluid inlet port, wherein the combined flow leaves the first surface and is outputted from the spray nozzle via a heated fluid discharge port.
- 32. The spray nozzle according to claim 1, further comprising:
at least one additional mixing chamber; a corresponding at least one additional means for guiding a primary fluid to each of the at least one additional mixing chamber, wherein the corresponding at least one additional means for guiding a primary fluid to each of the at least one additional mixing chamber each causes a plurality of streams of primary fluid to enter the corresponding mixing chamber; a corresponding at least one additional means for guiding a secondary fluid to each of the at least one additional mixing chamber, wherein the secondary fluid enters each of the at least one additional mixing chamber with a direction of travel which causes the secondary fluid to interact with the primary fluid, wherein the interaction of the secondary fluid with the primary fluid causes atomization of the primary and/or the secondary fluids and a corresponding at least one additional discharge port, wherein a combined flow of the primary fluid and the secondary fluid exit each of the at least one additional mixing chamber through the corresponding discharge port, wherein the combined flow of the primary fluid and the secondary fluid is atomized upon exiting each of the corresponding at least one additional discharge port.
- 33. A spray nozzle array, comprising:
a plurality of spray nozzles, each of the plurality of spray nozzles comprising: a mixing chamber; a means for guiding a primary fluid to the mixing chamber; a means for guiding a secondary fluid to the mixing chamber, wherein the secondary fluid enters the mixing chamber with a direction of travel which causes the secondary fluid to interact with the primary fluid, wherein the interaction of the secondary fluid with the primary fluid causes destabilization of the primary and/or the secondary fluid; and a discharge port, wherein a combined flow of the primary fluid and the secondary fluid exit the mixing chamber through the discharge port, wherein the combined flow of the primary fluid and the secondary fluid exit the mixing chamber through the discharge port, wherein the combined flow of the primary fluid and the secondary fluid is atomized upon exiting the discharge port.
- 34. The spray nozzle array according to claim 33, wherein the means for guiding a primary fluid to the mixing chamber causes a plurality of streams of primary fluid to enter the mixing chamber.
- 35. The spray nozzle array according to claim 33,
wherein each discharge port is at a distal end of the corresponding spray nozzle, wherein primary fluid enters a primary fluid inlet port at a proximal end of each spray nozzle and is inputted into the means for guiding a primary fluid to the mixing chamber.
- 36. The spray nozzle array according to claim 35,
wherein secondary fluid enters a secondary fluid inlet port at the proximal end of each spray nozzle and is inputted into the means for guiding a secondary fluid to the mixing chamber.
- 37. The spray nozzle array according to claim 33, wherein the plurality of spray nozzles are positioned such that the distance between discharge ports of adjacent spray nozzles is between about 3 mm and about 30 mm.
- 38. The spray nozzle array according to claim 33, wherein the plurality of spray nozzles are positioned such that the distance between discharge ports of adjacent spray nozzles is between about 5 mm and about 15 mm.
- 39. The spray nozzle array according to claim 33, wherein the plurality of spray nozzles are positioned such that the distance between discharge ports of adjacent spray nozzles is about 10 mm.
- 40. The spray nozzle array according to claim 33,
wherein the means for guiding a primary fluid to the mixing chamber is a primary fluid channel.
- 41. The spray nozzle array according to claim 40,
wherein the means for guiding a secondary fluid to the mixing chamber is a secondary fluid channel.
- 42. The spray nozzle array according to claim 41, further comprising:
a primary fluid collection chamber, wherein primary fluid from the primary fluid collection chamber supplies primary fluid to the primary fluid channel of each of the plurality of spray nozzles; and a secondary fluid cavity, wherein secondary fluid from the secondary fluid cavity supplies secondary fluid to the secondary fluid channel of each of the plurality of spray nozzles.
- 43. The spray nozzle array according to claim 33, further comprising:
an interface plate, the interface plate comprising a first surface and second surface, wherein the second surface is located in thermal contact with a heat source, wherein the combined flow of the primary fluid and the secondary fluid exiting the mixing chamber through the discharge port of each of the plurality of spray nozzle sprays onto the first surface, wherein the combined flow sprayed onto the first surface absorbs heat from the first surface and carries the absorbed heat away as the combined flow leaves the first surface.
- 44. The spray nozzle array according to claim 43, wherein the first surface comprises surface enhancements which increases the heat transfer between the combined flow sprayed onto the first surface and the first surface.
- 45. The spray nozzle array according to claim 44, wherein the surface enhancements increase the surface area of the first surface by a factor between about 1 and about 5.
- 46. The spray nozzle array according to 45, wherein the surface enhancements increase the surface area of the first surface by a factor between about 1.1 and about 2.
- 47. The spray nozzle array according to claim 43, wherein the combined flow leaves the first surface and is outputted from the spray nozzle array via a heated fluid discharge port.
- 48. The spray nozzle array according to claim 43, wherein the first surface comprises a plurality of subsections wherein each subsection shares a partition wall with at least one adjacent subsection, wherein each of the plurality of spray nozzles sprays into one or more of the plurality of subsections, wherein the partition wall shared by a subsection with an adjacent subsection reduces the flow of the combined flow of the primary fluid and the secondary fluid sprayed onto the subsection from the subsection to the adjacent subsection and the flow of the combined flow sprayed onto the adjacent subsection from the adjacent subsection to the subsection.
- 49. The spray nozzle according to claim 48, wherein each of the plurality of spray nozzles sprays into a corresponding one of the plurality of subsections.
- 50. The spray nozzle according to claim 49, wherein the partition wall shared by a subsection with an adjacent subsection substantially eliminates the flow of the combined flow sprayed into the subsection from the subsection to the adjacent subsection and the flow of the combined flow sprayed into the adjacent subsection from the adjacent subsection and the subsection.
- 51. The spray nozzle array according to claim 50, wherein the plurality of subsections each share a partition wall with each adjacent subsection.
- 52. The spray nozzle array according to claim 51, wherein the partition walls are interconnected so as to enclose at least a portion of the plurality of subsections with interconnected partition walls.
- 53. The spray nozzle array according to claim 52, wherein the first surface comprises surface enhancements which increases the heat transfer between the combined flow sprayed onto the first surface and the first surface.
- 54. The spray nozzle array according to claim 53, wherein the surface enhancements increase the surface area of the first surface by a factor between about 1 and about 5.
- 55. The spray nozzle array according to claim 54, wherein the surface enhancements increase the surface area of the first surface by a factor between about 1.1 and about 2.
- 56. The spray nozzle array according to claim 33, wherein each means for guiding a primary fluid to the mixing chamber comprises a means for destabilizing a primary fluid, wherein the destabilized primary fluid is inputted to the mixing chamber.
- 57. The spray nozzle array according to claim 56,
wherein each means for destabilizing a primary fluid comprises a pressure atomizer.
- 58. The spray nozzle array according to claim 56,
where each means for destabilizing a primary fluid comprises: a second mixing chamber; a means for guiding a first portion of a primary fluid to the second mixing chamber; wherein interaction of the first portion of the primary fluid and the second portion of the primary fluid destabilizes the first portion of the primary fluid and/or the second portion of the primary fluid; and a second discharge port, wherein a combined flow of the first portion of the primary fluid the second portion of the primary fluid exit the second mixing chamber through the second discharge port, wherein the combined flow of the first portion of the primary fluid and the second portion of the primary fluid is destabilized upon exiting the second discharge port, wherein the combined flow exiting the second discharge port is inputted to the mixing chamber.
- 59. The spray nozzle array according to claim 58, wherein the means for destabilizing a primary fluid receives a primary fluid and splits the primary fluid into a first portion of primary fluid and a second portion of primary fluid, wherein the first portion of primary fluid is inputted to the means for guiding a first portion of a primary fluid to the second mixing chamber and the second portion of primary fluid is inputted to the means for guiding a second portion of a primary fluid to the second mixing chamber,
wherein the means for guiding a first portion of primary fluid to the second mixing chamber comprises a channel, wherein the means for guiding a second portion of primary fluid to the second mixing chamber comprises a plurality of channels which cause the second portion of primary fluid to enter the second mixing chamber so as to generate a swirl effect in the second mixing chamber.
- 60. A spray nozzle, comprising:
a mixing chamber; a means for destabilizing a primary fluid, wherein the destabilized primary fluid is inputted to the mixing chamber; a means for guiding a secondary fluid to the mixing chamber, wherein the secondary fluid enters the mixing chamber with a direction of travel which causes the secondary fluid to interact with the primary fluid, wherein the interaction of the secondary fluid with the primary fluid causes further destabilization of the primary and/or the secondary fluid; and a discharge port, wherein a combined flow of the primary fluid and the secondary fluid exit the mixing chamber through the discharge port, wherein the combined flow of the primary fluid and the secondary fluid is atomized upon exiting the discharge port.
- 61. The spray nozzle according to claim 60, wherein the means for destabilizing a primary fluid causes a plurality of streams of primary fluid to enter the mixing chamber.
- 62. The spray nozzle according to claim 60,
wherein the means for destabilizing a primary fluid comprises a pressure atomizer.
- 63. The spray nozzle according to claim 60,
wherein the means for destabilizing a primary fluid comprises: a second mixing chamber; a means for guiding a first portion of a primary fluid to the second mixing chamber; wherein interaction of the first portion of the primary fluid and the second portion of the primary fluid destabilizes the first portion of the primary fluid and/or the second portion of the primary fluid; and a second discharge port, wherein a combined flow of the first portion of the primary fluid the second portion of the primary fluid exit the second mixing chamber through the second discharge port, wherein the combined flow of the first portion of the primary fluid and the second portion of the primary fluid is destabilized upon exiting the second discharge port, wherein the combined flow exiting the second discharge port is inputted to the mixing chamber.
- 64. The spray nozzle according to claim 63,
wherein the means for destabilizing a primary fluid receives a primary fluid and splits the primary fluid into a first portion of primary fluid and a second portion of primary fluid, wherein the first portion of primary fluid is inputted to the means for guiding a first portion of a primary fluid to a second mixing chamber and the second portion of primary fluid is inputted to the means for guiding a second portion of a primary fluid to the second mixing chamber, wherein the means for guiding a first portion of primary fluid to the second mixing chamber comprises a channel, wherein the means for guiding a second portion of primary fluid to the second mixing chamber comprises a plurality of channels which cause the second portion of primary fluid to enter the second mixing chamber so as to generate a swirl effect in the second mixing chamber.
CROSS-REFERENCE TO A RELATED APPLICATION
[0001] This application claims priority from U.S. provisional patent application Ser. No. 60/353,291, filed Feb. 1, 2002 and U.S. provisional patent application Ser. No. 60/390,244, filed Jul. 24, 2002, which are hereby incorporated by reference in their entirety.
Provisional Applications (2)
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Number |
Date |
Country |
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60353291 |
Feb 2002 |
US |
|
60390244 |
Jun 2002 |
US |