Claims
- 1. A mechanical oscillator for attenuating pressure waves formed in an actuating fluid rail having first and second ends and a volume of fluid in a fluid passageway therein, comprising a rigid enclosed fluid cavity having a selected volume, the volume communicating with the rail actuating fluid passageway though an orifice having a select volume for containing actuating fluid, the orifice having an aperture in fluid communication with the actuating fluid selected such that when an pressure wave impinges on the aperture of the orifice, the motion of the actuating fluid in the volume of the orifice is set to vibrating, the vibrating acting to excite the actuating fluid within the enclosed volume, a resulting amplified motion of the actuating fluid in the orifice, due to phase cancellation between the actuating fluid in the volume of the orifice and the actuating fluid volume in the enclosed cavity, causing energy absorption of the pressure wave due to frictional drag in and around the orifice.
- 2. The mechanical oscillator of claim 1, the fluid cavity being disposed between the first and second ends of said rail thereby dividing the fluid passageway into a first portion and a second portion, the center fluid cavity having first and second orifices, the first orifice orifice effecting fluid communication between the fluid cavity and the fluid passageway first portion, the second orifice effecting fluid communication between the fluid cavity and the fluid passageway second portion.
- 3. The mechanical oscillator of claim 1, the fluid cavity defining at least a portion of a sphere.
- 4. The mechanical oscillator of claim 3, the fluid cavity defining a belted sphere.
- 5. The mechanical oscillator of claim 3, the fluid cavity defining a sphere.
- 6. The mechanical oscillator of claim 1, the orifice including an aperture, the aperture facing the fluid passageway and being beveled to define a dimensionally decreasing entrance to the orifice as the orifice is approached from the fluid passageway.
- 7. The mechanical oscillator of claim 1, the cavity being defined in part in an attenuator body, the attenuator body being in fluid communication with the rail fluid passageway.
- 8. The mechanical oscillator of claim 7, the attenuator body being disposable in an aperture defined in a rail wall to intersect the rail fluid passageway.
- 9. The mechanical oscillator of claim 7, the attenuator body being threadedly installed in the rail fluid passageway.
- 10. An actuator rail assembly for conveying an actuating fluid under pressure to at least one fuel injector, comprising:
an elongate fluid passageway being defined in a rail and having first and second ends; a fluid inlet port being in fluid communication with the fluid passageway, the inlet port being fluidly couplable to a source of actuating fluid under pressure; a respective fluid outlet port being associated with each respective fuel injector and being fluidly couplable thereto for conveying actuating fluid to the respective fuel injector; and at least one fluid cavity having at least one orifice, the orifice effecting fluid communication between the fluid cavity and the fluid passageway.
- 11. The actuator rail assembly of claim 10, a fluid cavity being disposed between the first and second ends and dividing the fluid passageway into a first portion and a second portion, the fluid cavity having a first and a second orifice, the first orifice effecting fluid communication between the fluid cavity and the fluid passageway first portion, the second orifice effecting fluid communication between the fluid cavity and the fluid passageway second portion.
- 12. The actuator rail assembly of claim 10, the fluid cavity defining at least a portion of a sphere.
- 13. The actuator rail assembly of claim 10, the fluid cavity defining a belted sphere.
- 14. The actuator rail assembly of claim 10, the fluid cavity defining a sphere.
- 15. The actuator rail assembly of claim 10, the orifice including an aperture, the aperture facing the fluid passageway and being beveled to define a dimensionally decreasing entrance to the orifice as the orifice is approached from the fluid passageway.
- 16. The mechanical oscillator of claim 10, the cavity being defined in part in an attenuator body, the attenuator body being in fluid communication with the rail fluid passageway.
- 17. The mechanical oscillator of claim 16, the attenuator body being disposable in an aperture defined in a rail wall to intersect the rail fluid passageway.
- 18. An actuator rail assembly for conveying an actuating fluid under pressure to at least one fuel injector, comprising:
an elongate fluid passageway defined in a rail; and at least one fluid cavity having at least one throttling orifice, the orifice effecting fluid communication between the fluid cavity and the fluid passageway, the cavity having a volume filled with actuating fluid, an pressure wave in the fluid passageway exciting the volume of actuating fluid in the cavity, the excited volume of actuating fluid amplifying motion of the actuating fluid in the orifice to absorb the pressure wave above a certain frequency range.
- 19. The actuator rail assembly of claim 18, the certain frequency range being 800-2000 HZ.
- 20. The actuator rail assembly of claim 18, the amplified motion of the actuating fluid in the orifice effecting pressure wave phase cancellation between a plug of actuating fluid disposed in the orifice and the volume of actuating fluid in the cavity.
- 21. The actuator rail assembly of claim 20, the pressure wave phase cancellation causing energy absorption due to frictional drag in and proximate the orifice.
- 22. A method of attenuating pressure waves in an actuating fluid conveying rail having an elongate fluid passageway defined in the rail, comprising:
defining a rigid enclosed fluid cavity having a selected volume; communicating the volume with the rail actuating fluid though an orifice having a select volume for containing actuating fluid; forming an aperture orifice, the aperture being in fluid communication with the actuating fluid and being selected such that when an pressure wave impinges on the aperture of the orifice, the motion of the actuating fluid in the volume of the orifice is set to vibrating; exciting the actuating fluid within the enclosed volume by means of the vibrating actuating fluid in the orifice; and a resulting amplified motion of the actuating fluid in the orifice, due to phase cancellation between the actuating fluid in the volume of the orifice and the actuating fluid volume in the enclosed cavity, causing energy absorption of the pressure wave due to frictional drag in and around the orifice.
- 23. The method of claim 22, including substantially absorbing the pressure wave over the certain frequency range of 800-2000 HZ.
- 24. The method of claim 22, effecting pressure wave phase cancellation between a plug of actuating fluid disposed in the orifice and the volume of actuating fluid in the cavity by means of the amplifying motion of the actuating fluid in the orifice.
- 25. The method of claim 24, including effecting frictional drag in and proximate the orifice and causing the pressure wave phase energy absorption by means of the frictional drag.
- 26. The method of claim 22, including disposing the fluid cavity between first and second fluid passageway ends thereby dividing the fluid passageway into a first portion and a second portion and, fluidly communicating the fluid cavity with the first and second fluid passageway portions.
- 27. The method of claim 26 including defining the fluid cavity in part in an attenuator body and disposing the attenuator body in an aperture defined in a rail wall to intersect the fluid passageway.
- 28. An pressure wave attenuator for use with an actuator rail assembly, the actuator rail assembly for conveying an actuating fluid under pressure to at least one fuel injector, comprising:
an attenuator body having at least a portion of a resonating fluid cavity defined therein, the cavity having two orifices, a first orifice effecting fluid communication between the fluid cavity and a first portion of the fluid passageway and a second orifice effecting fluid communication between the fluid cavity and a second portion of the fluid passageway.
- 29. The pressure wave attenuator of claim 28 being designed to resonate at a known frequency of an pressure wave occurring in the fluid passageway.
- 30. The pressure wave attenuator of claim 29 wherein a frequency of resonance of the cavity is related to the velocity of sound in the actuating fluid, to the area and length dimensions of the two orifices, and to the volume dimension of the cavity.
- 31. The pressure wave attenuator of claim 30, the cavity being substantially spherical.
- 32. The pressure wave attenuator of claim 31, the cavity being formed in cooperation with a hemispherical portion of the fluid passageway.
- 33. The pressure wave attenuator of claim 32 defining a substantially fluid-tight interface with the fluid passageway proximate a periphery of the hemispherical portion of the fluid passageway.
- 34. The pressure wave attenuator of claim 28 and the attenuator body being threadedly disposed in the fluid passageway.
- 35. The pressure wave attenuator of claim 34 and the attenuator body having more than two orifices disposed to ensure that at least two orifices will open respectively to the first and second portions of the fluid passageway.
- 36. The pressure wave attenuator of claim 35 and the attenuator body having five orifices.
- 37. The pressure wave attenuator of claim 35 and the attenuator body orifices being uniformly spaced about the periphery of the attenuator body.
- 38. The pressure wave attenuator of claim 37 and the attenuator body having five orifices.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application is related to U.S. patent application Ser. No. D5238, filed Jun. ______, 2002 and assigned to the assignee hereof.