Claims
- 1. A direct injection fuel delivery system for a motor vehicle, comprising:a common rail including an accumulator having a relatively large fuel volume connected in fluid communication with a distributor having a relatively small fuel volume; at least one fuel injector nozzle connected in direct fluid communication with the distributor; a high pressure pump having an inlet and a discharge for delivering fuel to the common rail; flow control means interposed between the pump and the common rail for selectively delivering fuel to one of the accumulator or the distributor and then the other of the accumulator or the distributor; wherein the flow control means controlling both a first flow path between the pump and the distributor and a second flow path between the pump and the accumulator for selectively delivering fuel to one of the distributor and accumulator, respectively; a pressure control valve is situated in a third flow path between the accumulator and the distributor which defines said fluid communication therebetween, said pressure control valve preventing flow from the distributor to the accumulator but permitting flow from the accumulator to the distributor when the pressure in the accumulator exceeds the pressure in the distributor by a predetermine differential; and a supply flow path wherein the pump discharge is selectively connected in fluid communication with the first flow path or the second flow path; and a bypass flow path wherein the pump discharge is selectively connected in fluid communication with the pump inlet, thereby bypassing the common rail.
- 2. The system of claim 1, wherein the flow control means further comprises a control valve for aligning the pump discharge with the first flow path, the pump discharge with the second flow path, and the pump discharge with the bypass flow path.
- 3. The system of claim 2, wherein the control valve comprises:a first operator disposed within the first flow path; a second operator cooperatively engageable with the first operator and disposed within the second flow path; wherein at less than a first predetermined pressure within the control valve the second operator is biased into engagement with the first operator so that the first operator aligns with the pump discharge only with the first flow path, and at greater than the first predetermined pressure, the second operator is urged away from engagement with the first operator thereby aligning the pump discharge with the second flow path.
- 4. The system of claim 3, wherein when a second predetermined pressure is exceeded within the control valve, the second operator moves to a location wherein the pump discharge is aligned with the bypass flow path.
- 5. The system of claim 3, wherein the control valve comprises:a body having an inlet in fluid communication with the pump discharge; a first spring for biasing the first operator against a first seat in the first flow path; and a second spring for biasing the second operator against a second seat in the second flow path.
- 6. The system of claim 5, wherein:the valve body comprises a chamber, a first outlet communicating with the inlet of the valve body and wherein the first outlet is disposed within the supply flow path and a second outlet communicating with the inlet of the valve body and wherein the second outlet is disposed within the supply flow path; the first operator comprises a sphere located within the chamber which is urged by the first spring into contact with the first seat disposed between the inlet and the first outlet of the valve body; and the second operator comprises a cylindrical member slidable within the chamber and an impingement end communicating with the inlet of the body, the impingement end contacting a second seat and being disposed between the inlet and the second outlet of the valve body and the second operator also comprising a extension member extending from the impingement end of the cylindrical member and being configured to engage and urge the sphere at least partially away from the first seat when the impingement end engages the second seat.
- 7. The system of claim 6, wherein:the body comprises a third outlet which communicates with the inlet of the pump and is disposed within the bypass flow path; and the cylindrical member comprises a groove wherepast fuel from the inlet of the body may flow to the third outlet of the body.
- 8. The system of claim 7, wherein:a bore extends between the groove and a second end of the cylindrical member; and a cylindrical cover is disposed over the second spring, the cover comprises an aperture which communicates with the third outlet of the body; wherein the bore has a cross sectional diameter which is substantially larger than that of the aperture and the bore functions to communicate fluid adjacent the cover in order to provide an increased force compressing the second spring for aligning the pump discharge with the bypass flow path.
- 9. The system of claim 7, wherein:the first flow path comprises a first passage disposed between the inlet of the body and the first outlet, the first passage comprising a first check valve and the first passage having the first operator disposed therewithin; the second flow path comprises a second passage communicating with the chamber of the valve body and with the second outlet; and a third passage is provided for aligning the pump discharge with the bypass flow path, the third passage communicating with the inlet, the groove of the cylindrical member, the aperture of the cover and the third outlet, the third passage having a bypass pressure valve disposed therewithin.
- 10. The system of claim 9, wherein the chamber comprises a central bore centrally located within the valve body and wherein the first operator, the second operator, the second spring and the cover are all disposed in axial alignment within the central bore and further comprising a locking support for retaining the second operator, second spring and cover within the valve body.
- 11. The system of claim 1, wherein the pressure control valve comprises a pressure transducer for measuring pressure within the distributor.
- 12. The system of claim 3, wherein the first predetermined pressure is about 30 bar.
- 13. The system of claim 4, wherein the second predetermined pressure is about 80 bar.
- 14. A common rail fuel injector assembly for a motor vehicle including a high pressure fuel pump that has an inlet and a discharge for supplying fuel to a plurality of fuel injector nozzles that are fluidly connected to a fuel distributor, the common rail fuel injector assembly comprising:an accumulator connected in fluid communication with the fuel pump, the accumulator having an accumulator internal volume for containing a reservoir of fuel in fluid communication with the distributor; flow control means interposed between the pump and the accumulator for selectively delivering fuel to the accumulator when a pressure of fuel therein drops below a predetermined value and wherein the flow control means comprises, a supply flow path wherein the pump discharge is selectively aligned with the accumulator; and a bypass flow path wherein the pump discharge is selectively aligned with the puma inlet.
- 15. A common rail fuel injection assembly for a motor vehicle including a high pressure fuel pump that has an inlet and a discharge for delivering fuel to at least one fuel injector nozzle and a common rail including an accumulator connected in fluid communication with a distributor, the injection assembly comprising:a flow control device interposed between the pump and the common rail for selectively delivering fuel to one of the accumulator and the distributor and then the other of the accumulator and the distributor; wherein the flow control device controls both a first flow path between the pump and the distributor and a second flow path between the pump and the accumulator; wherein the flow control device comprises: a supply flow path wherein the pump discharge is selectively connected to the first flow path or the second flow path; a bypass flow path wherein the pump discharge is selectively connected to the pump inlet; and a control valve for selectively aligning the pump discharge with the first flow path, the pump discharge with the second flow path, and the pump discharge with the bypass flow path wherein the control valve comprises: a first operator disposed within the first flow path; a second operator cooperatively engageable with the first operator and being disposed within the second flow path; wherein at less than a first predetermined pressure within the control valve the second operator is biased into engagement with the first operator so that the first operator aligns the pump discharge with the first flow path only, and at greater than the first predetermined pressure, the second operator is urged away from engagement with the first operator thereby aligning the pump discharge with the second flow path and when a second predetermined pressure within the control valve is exceeded, the second operator moves to a location wherein the pump discharge is aligned with the bypass flow path.
- 16. The apparatus of claim 15, wherein the control valve further comprises:a body having an inlet in fluid communication with the pump discharge; a first spring for biasing the first operator against a first seat in the first flow path; and a second spring for biasing the second operator against a second seat in the second flow path.
- 17. The apparatus of claim 16, wherein:the valve body comprises a chamber, a first outlet communicating with the inlet of the valve body and being disposed within the supply flow path and a second outlet communicating with the inlet of the valve body and being disposed within the supply flow path; the first operator comprises a sphere located within the chamber which is urged by the first spring into contact with the first seat disposed between the inlet and the first outlet of the valve body; and the second operator comprises a cylindrical member slidable within the chamber and an impingement end communicating with the inlet of the body, the impingement end contacting a second seat and being disposed between the inlet and the second outlet of the valve body and the second operator also comprising a extension member extending from the impingement end of the cylindrical member and being configured to engage and urge the sphere at least partially away from the first seat when the impingement end engages the second seat.
- 18. The apparatus of claim 17, wherein:the body comprises a third outlet which communicates with the inlet of the pump and is disposed within the bypass flow path; and the cylindrical member comprises a groove wherepast fuel from the inlet of the body may flow to the third outlet of the body.
- 19. The system of claim 18, wherein:a bore extends between the groove and a second end of the cylindrical member; and a cylindrical cover is disposed over the second spring; the cover comprises an aperture which communicates with the third outlet of the body; wherein the bore has a cross sectional diameter which is substantially larger than that of the aperture and the bore functions to communicate fluid adjacent the cover in order to provide an increased force compressing the second spring for aligning the pump discharge with the bypass flow path.
- 20. The apparatus of claim 18, wherein:the first flow path comprises a first passage disposed between the inlet of the body and the first outlet, the first passage comprising a first check valve and the first passage having the first operator disposed therewithin; the second flow path comprises a second passage communicating with the chamber of the valve body and with the second outlet; and a third passage is provided for aligning the pump discharge with the bypass flow path, the third passage communicating with the inlet, the groove of the cylindrical member, the aperture of the cover and the third outlet, the third passage having a bypass pressure valve disposed therewithin.
- 21. The apparatus of claim 20, wherein the chamber comprises a central bore centrally located within the valve body and wherein the first operator, the second operator, the second spring and the cover are all disposed in axial alignment within the central bore and further comprising a locking support for retaining the second operator, second spring and cover within the valve body.
- 22. The apparatus of claim 15, wherein the pressure control valve comprises a pressure transducer for measuring pressure within the distributor.
- 23. The apparatus of claim 15 further comprising an engine and wherein the flow control device delivers fuel to the distributor portion while the engine is cranking and thereafter delivers fuel on demand to the accumulator or bypasses fuel to the pump once the engine has started.
- 24. The apparatus of claim 15, wherein the first predetermined pressure is about 30 bar.
- 25. The apparatus of claim 15, wherein the second predetermined pressure is about 80 bar.
- 26. A fuel supply system for a plurality of fuel injection nozzles in a vehicle engine, comprising:a fuel supply pump having a discharge pressure of at least about 50 bar; a fuel accumulator fluidly connected to the pump discharge such that fuel in the accumulator is maintained at a pressure of at least about 40 bar; a distributor rail that is fluidly connected to the accumulator for receiving high pressure fuel and that is fluidly connected to each of said plurality of fuel injection nozzles; means cooperating with the fluid connection between the accumulator and the distributor rail for maintaining fuel in the distributor rail at a lower pressure than the pressure in the accumulator; and injection control means for selectively opening and closing the fluid connection between each nozzle and the distributor rail, whereby fuel is selectively injected into the engine by each nozzle.
- 27. The system of claim 26, wherein the means for maintaining fuel in the distributor rail at a lower pressure than the pressure in the accumulator includes a pressure control valve situated in the fluid connection between the accumulator and the distributor rail.
- 28. The system of claim 27, wherein the pressure control valve is an adjustable valve having a variable position that is responsive to a control signal generated at least in part from a measurement of the pressure in the distributor rail.
- 29. The system of claim 27, wherein the distributor rail has a volume no greater than about 10 cm3 and the accumulator has a volume greater than about 10 cm3.
- 30. The system of claim 29, wherein the accumulator volume is in the range of about 30-50 cm3.
- 31. The system of claim 27, wherein the accumulator rail has a volume that is at least two times the volume of the distributor rail.
- 32. A method of supplying fuel to a plurality of fuel injection nozzles at a target delivery pressure in a distributor rail having a common distributor volume fluidly connected to each of the nozzles, comprising:maintaining fuel at a pressure higher than the target delivery pressure, in an accumulator having an accumulator volume; maintaining a differential pressure between the higher pressure in the accumulator and the target pressure in the distributor rail, through a fluid connection between the accumulator and the distributor rail; measuring the pressure in the distributor rail; responsive to said measured pressure in the distributor rail and the target pressure in the distributor rail, operating a pressure control valve in the fluid connection between the accumulator and the distributor rail to control said fuel flow into the distributor rail; whereby as the measured pressure in the distributor rail drops as a result of fuel injection, fuel at the higher pressure of the accumulator flows into the distributor rail to maintain the target pressure therein.
- 33. The method of claim 32, wherein the accumulator pressure is maintained above about 40 bar, and said differential pressure is at least about 10 bar.
- 34. The method of claim 32, wherein the accumulator volume is greater than the volume of the distributor rail.
REFERENCE TO RELATED APPLICATION
This is a divisional of U.S. application Ser. No. 09/638,286 filed Aug. 14, 2000 now U.S. Pat. No. 6,494,182, which is a Continuation-In-Part of International Application No. PCT/US00/04096 filed Feb. 17, 2000, designating the United States, which entered the U.S. National Phase as App. No. 09/913,661 and issued as U.S. Pat. No. 6,422,203, and which claimed priority under 35 U.S.C.§119 (e) from U.S. Provisional App. No. 60/120,546 filed Feb. 17, 1999.
US Referenced Citations (4)
Number |
Name |
Date |
Kind |
5676114 |
Tarr et al. |
Oct 1997 |
A |
5937826 |
Olson et al. |
Aug 1999 |
A |
6293251 |
Hemmerlein et al. |
Sep 2001 |
B1 |
6345609 |
Djordjevic |
Feb 2002 |
B1 |
Foreign Referenced Citations (1)
Number |
Date |
Country |
198 22 164 |
Nov 1999 |
DE |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/120546 |
Feb 1999 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
PCT/US00/04096 |
Feb 2000 |
US |
Child |
09/638286 |
|
US |