Claims
- 1. A method of oscillating a jet of liquid comprising:a) providing an oscillation chamber having central axis and an outlet; b) projecting at least a pair of power liquid jets into said oscillation chamber at selected angles relative to said central axis and induce a system of pulsating vortices in said oscillation chamber; and c) issuing one or more pulsating jets of liquid from said oscillation chamber.
- 2. The method defined in claim 1 wherein said one of said pair of power liquid jets is caused to have a different flow characteristic than the other of said power liquid jets and cause said pulsating liquid jet to yaw in a selected direction as it issues from said oscillation chamber.
- 3. The method defined in claim 1 including orienting said power liquid jets in a direction away from said outlets to produce low frequency pulsations in said one or more jets of liquid from said oscillation chamber.
- 4. A fluidic oscillator comprising:a housing having an oscillation inducing chamber, at least one source of fluid under pressure, at least a pair of power nozzles connected to said at least one said source of fluid under pressure for projecting at least a pair of fluid jets into said oscillation chamber, and at least one outlet from said oscillation chamber for issuing a oxcillating jet of fluid to a point of utilization.
- 5. The fluidic oscillator defined in claim 4 wherein said at least one source of fluid under pressure includes a common fluid manifold connected to said at least a pair of power nozzles.
- 6. The fluidic oscillator defined in claim 4 wherein said oscillation inducing chamber has a central axis, and wherein said at least one outlet has a throat region leading from said oscillation chamber and said outlet throat is to one side relative to said axis.
- 7. The fluidic oscillator defined in claim 6 wherein said at least a pair of power nozzles are oriented at different angles relative to said axis, respectively.
- 8. The fluidic oscillator defined in claim 4 wherein said oscillation inducing chamber has a central axis and wherein said at least a pair of power nozzles are oriented at different angles relative to said axis, respectively.
- 9. The fluidic oscillator defined in claim 8 wherein said at least one outlet has an outlet throat region and said throat region leading from said oscillation chamber and said outlet throat is offset relative to said central axis.
- 10. The fluidic oscillator defined in claim 4 wherein said oscillation chamber has a central axis and one of said power nozzles is offset along said central axis relative to the other of said pair of power nozzles.
- 11. The fluidic oscillator defined in claim 10 wherein said outlet throat region is bounded by oscillation chamber walls which are offset along said central axis.
- 12. The fluidic oscillator nozzle defined in claim 4 wherein one of said at least a pair of power nozzles has a larger width than the other of said pair of power nozzles.
- 13. The fluidic oscillator defined in claim 1 wherein said pair of power nozzles are oriented in a direction such as to generally head away from said outlet in the oscillation inducing chamber to produce low frequency oscillations in said output jet.
- 14. A fluidic oscillator of the type that is free of control passages comprising:(a) an oscillation chamber having an outlet, (b) a pair of nozzles adapted to form a pair of fluid jets which are oriented at an angle in said chamber to each other such that they generate a plurality of vortices in said chamber, and said plurality of vortices causing said pair of fluid jets to cyclically change their directions and combine to produce a sweeping jet of fluid at said outlet.
- 15. The invention defined in claim 14 wherein said oscillation chamber has a dome shaped surface.
- 16. The invention defined in claim 14 wherein said oscillation chamber has a dome shaped surface and said pair of fluid jets are directed toward said outlet from the direction of said dome shaped surface.
- 17. The invention defined in claim 14 wherein said oscillation chamber is defined by a dome shaped wall, a straight wall, and said pair of fluid jets have axes which intersect in said chamber opposite said dome shaped wall.
- 18. The invention defined in claim 14 wherein said pair of jets have axes with orientation angles which intersect within said oscillation chamber.
- 19. The invention defined in claim 14 wherein said pair of jets have axes with orientation angles which intersect outside said oscillation chamber.
- 20. The invention defined in claim 14 wherein aid fluid is a liquid including a common source of said liquid under pressure and means connecting said source of liquid to said pair of nozzles.
- 21. The invention defined in claim 14 wherein said chamber is oval shaped.
- 22. The invention defined in claim 14 wherein the angles of said pair of nozzles are oriented away from said outlet and deflectors on the wall of said chamber direct fluid from said nozzles towards said outlet.
- 23. A fluidic oscillator having an oscillation inducing chamber and a pair of power nozzles connectable to a said source of fluid under pressure for projecting a pair of fluid jets into said oscillation inducing chamber and an outlet coupled to said oscillation inducing chamber for issuing a pulsating jet of fluid to a point of utilization.
- 24. The fluidic oscillator defined in claim 23 wherein said source of fluid under pressure includes a common fluidic manifold connected to said pair of power nozzles.
- 25. The fluidic oscillator defined in claim 23 wherein said oscillation chamber has a dome shape and said pair of power nozzles issue fluid jets which are located and angled towards said dome shape of said oscillation inducing chamber.
REFERENCE TO RELATED APPLICATIONS
This application is the subject of provisional application Ser. No. 60/104,511 filed Oct. 16, 1998 and entitled FEEDBACK-FREE FLUIDIC OSCILLATOR.
US Referenced Citations (12)
Foreign Referenced Citations (1)
Number |
Date |
Country |
1550510 |
Mar 1970 |
DE |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/104511 |
Oct 1998 |
US |