Claims
- 1. A valve for controlling a flow of a fluid between a first environment to a second environment, said valve comprising:
a frame adapted to fit within a perimeter of an aperture in a divider separating the first environment from the second environment; and a first gate movable within the frame to control a flow of the fluid through the aperture between the first environment and the second environment, the first gate comprising:
a substantially aerodynamically clean surface substantially free from protrusions disrupting the flow of the fluid over the first gate surface, thereby reducing coherent vortex shedding of the fluid; a rounded leading edge to further reduce vortex shedding; and a trailing edge adapted to reduce edge tones.
- 2. The valve of claim 1, wherein the valve controls the flow of air between the first environment and the second environment.
- 3. The valve of claim 1, wherein an outer surface of the trailing edge of the first gate is adapted to have a flush relationship with an outer surface of the frame when the gate is positioned to have a small opening angle, thereby reducing edge tones.
- 4. The valve of claim 1, wherein the trailing edge comprises a baffle adapted to cover an aft edge of the frame when the first gate is positioned to have a small opening angle, thereby reducing edge tones.
- 5. The valve of claim 4, wherein the baffle comprises a plurality of 3-dimensional (3-D) notches for further reducing edge tones.
- 6. The valve of claim 5, wherein the notches comprise one of a 3-D V-shape, a 3-D semi-circular shape, a 3-D square shape and a 3-D rectangular shape.
- 7. The valve of claim 5, wherein each notch includes a tapered run-out that begins at a vertex of each notch and obliquely runs out to the trailing edge.
- 8. The valve of claim 1, wherein the first gate has an outer side having a substantially convex shape adapted to reduce vortex shedding of the fluid as the fluid passes over the outer side of the first gate.
- 9. The valve of claim 1, wherein the valve further comprises a second gate movable within the frame.
- 10. The valve of claim 9, wherein the second gate has a substantially aerodynamically clean surface substantially free from protrusions disrupting the flow of the fluid over the second gate surface.
- 11. The valve of claim 9, wherein the valve is adapted to maintain a substantially constant or slightly convergent nozzle throat section between the first gate and the second gate, thereby reducing at least one of edge tones and throat tones created as the fluid flows between the first environment and the second environment.
- 12. The valve of claim 9, wherein a front side of the second gate has a general ‘S’ contour adapted to increase adherence to the second gate front side of the fluid flowing over the front side.
- 13. The valve of claim 9, wherein a trailing edge of the second gate comprises a plurality of 3-D notches adapted to reduce vortex shedding.
- 14. The valve of claim 13, wherein the notches comprise one of a 3-D V-shape, a 3-D semi-circular shape, a 3-D square shape and a 3-D rectangular shape.
- 15. The valve of claim 13, wherein each notch includes a tapered run-out that begins at a vertex of each notch and obliquely runs out to the trailing edge.
- 16. The valve of claim 9, wherein a back side of the second gate includes a seal adapted to reduce leak tones when the valve is in a closed state.
- 17. The valve of claim 16, wherein, when the valve is in an open state, the seal is further adapted to cause a fluid flow attached to the back side to separate upstream from an exit nozzle throat section of the valve, thereby enabling the fluid to exit the valve more efficiently.
- 18. The valve of claim 9, wherein a front side of the first gate and a front side of the second gate both have a 3-D contour that substantially matches a contour of an outer surface of the divider.
- 19. A method for controlling the flow of a fluid from a first environment to a second environment, the method comprising:
providing a valve to be installed in a divider separating the first environment and the second environment, the valve having a frame and a first gate movable within the frame for controlling the flow of fluid from the first environment to the second environment, reducing vortex shedding as the fluid flows through the valve by providing the first gate with a rounded leading edge and a substantially aerodynamically clean surface substantially free from protrusions that disrupt the flow of fluid over the first gate surface; and reducing edge tones as the fluid flows through the valve by providing the first gate with a trailing edge adapted to reduce disruptions in the fluid flowing across a trailing edge of the first gate and an aft edge of the frame.
- 20. The method of claim 19, wherein reducing edge tones comprises providing the first gate such that the trailing edge of the first gate has a flush relationship with an outer surface of the frame when the first gate is positioned to have a small opening.
- 21. The method of claim 19, wherein reducing edge tones comprises providing the first gate such that the trailing edge of the first gate includes a baffle adapted to cover an aft edge of the frame when the first gate is positioned to have a small opening angle.
- 22. The method of claim 21, wherein reducing edge tones further comprises providing a plurality of 3-D notches in the baffle.
- 23. The method of claim 22, wherein providing the plurality of notches comprises providing the plurality of notches having one of a 3-D V-shape, a 3-D semi-circular shape, a 3-D square shape and a 3-D rectangular shape.
- 24. The method of claim 22, wherein providing the plurality of notches comprises providing a tapered run-out within each notch that begins at a vertex of each notch and obliquely runs out to the trailing edge.
- 25. The method of claim 19, wherein reducing vortex shedding comprises providing the first gate with an outer side having a substantially convex shape.
- 26. The method of claim 19, wherein providing the valve comprises providing a second gate movable within the frame.
- 27. The method of claim 26, wherein reducing vortex shedding comprises providing the second gate with a substantially aerodynamically clean surface substantially free from protrusions that disrupt the flow of fluid over the second gate surface
- 28. The method of claim 26, wherein reducing vortex shedding comprises aligning the first and second gates within the frame such that a substantially constant or slightly convergent nozzle throat section is maintained between the first gate the second gate during operation of the valve.
- 29. The method of claim 26, wherein reducing vortex shedding comprises increasing adherence to the front side of the second gate of the fluid flowing over the front side by contouring an outer side of the second gate in a general ‘S’ shape.
- 30. The method of claim 26, wherein reducing vortex shedding comprises providing a plurality of 3-D notches in a trailing edge of the second gate.
- 31. The method of claim 22, wherein providing the plurality of notches comprises providing the plurality of notches having one of a 3-D V-shape, a 3-D semi-circular shape, a 3-D square shape and a 3-D rectangular shape.
- 32. The method of claim 30, wherein providing the plurality of notches comprises providing a tapered run-out within each notch that begins at a vertex of each notch and obliquely runs out to the trailing edge.
- 33. The method of claim 26, wherein the method further includes reducing leak tones when the valve is in a closed state by providing a seal in a back side of the second gate.
- 34. The method of claim 33, wherein reducing vortex shedding comprises separating a fluid flow from the back side of the second gate upstream from an exit nozzle throat section of the valve utilizing the seal.
- 35. The method of claim 19, wherein reducing edge tones comprises matching a 3-D contour of each of a front side of the first gate and a front side of the second gate with a 3-D contour of an outer surface of the divider.
- 36. A mobile platform comprising:
a body comprising an outer shell having an aperture therethrough, and a valve adapted to fit within the aperture for controlling the flow of air between an environment inside the mobile platform and an environment outside of the mobile platform, wherein the valve comprises:
a frame adapted to fit with a perimeter of the aperture; and a first gate movable within the frame to control a flow of the air through the aperture, the first gate comprising:
a substantially aerodynamically clean surface substantially free from protrusions disrupting the flow of the air over the first gate surface, thereby reducing coherent vortex shedding of the air; a rounded leading edge to further reduce vortex shedding; and a trailing edge adapted to reduce edge tones by reducing disruptions in the air flowing across the trailing edge and an aft edge of the frame.
- 37. The mobile platform of claim 36, wherein an outer surface of a trailing edge of the first gate is adapted to have a flush relationship with an outer surface of the frame when the first gate is positioned to have a small opening angle, thereby reducing edge tones.
- 38. The mobile platform of claim 36, wherein the trailing edge comprises a baffle adapted to cover the aft edge of the frame when the first gate is positioned to have a small opening angle, thereby reducing edge tones.
- 39. The mobile platform of claim 38, wherein the baffle comprises a plurality of 3-D notches for further reducing edge tones.
- 40. The mobile platform of claim 39, wherein the notches comprise one of a 3-D V-shape, a 3-D semi-circular shape, a 3-D square shape and a 3-D rectangular shape.
- 41. The mobile platform of claim 39, wherein each notch includes a tapered run-out that begins at a vertex of each notch and obliquely runs out to the trailing edge.
- 42. The mobile platform of claim 36, wherein the first gate has an outer side having a substantially convex shape adapted to reduce vortex shedding of the air as the air passes over the outer side of the first gate.
- 43. The mobile platform of claim 36, wherein the valve further comprises a second gate adapted to have a substantially aerodynamically clean surface such that the second gate is substantially free from protrusions impeding the flow of the air over the second gate surface.
- 44. The mobile platform of claim 43, wherein the valve is adapted to maintain a substantially constant or slightly convergent nozzle throat section between the first gate and the second gate, thereby reducing at least one of edge tones and throat tones created as the air flows between the first environment and the second environment.
- 45. The mobile platform of claim 43, wherein a front side of the second gate has a general ‘S’ contour adapted to increase the adherence of the air flowing over the front side.
- 46. The mobile platform of claim 43, wherein a trailing edge of the second gate comprises a plurality of 3-D notches adapted to reduce vortex shedding.
- 47. The mobile platform of claim 46, wherein the notches comprise one of a 3-D V-shape, a 3-D semi-circular shape, a 3-D square shape and a 3-D rectangular shape.
- 48. The mobile platform of claim 46, wherein each notch includes a tapered run-out that begins at a vertex of each notch and obliquely runs out to the trailing edge.
- 49. The mobile platform of claim 43, wherein a back side of the second gate includes a seal adapted to reduce leak tones when the valve is in a closed state.
- 50. The mobile platform of claim 49, wherein, when the valve is in an open state, the seal is further adapted to cause an air flow attached to the back side to separate upstream from an exit nozzle throat section of the valve, thereby enabling the air to exit the valve more efficiently.
- 51. The mobile platform of claim 43, wherein a front side of the first gate and a front side of the second gate both have a 3-dimensional contour that substantially matches a contour of the outer shell of the body.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a Continuation-In-Part of U.S. patent application Ser. No. 10/301,378 filed on Nov. 21, 2002. The disclosure of the above application is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10301378 |
Nov 2002 |
US |
Child |
10651152 |
Aug 2003 |
US |