Claims
- 1. A radial piston high pressure pump for an internal combustion engine, the engine having a hydraulically-actuated electronically-controlled fuel injection system including a fuel injector valving high pressure fluid in response to commands from an ECM to inject a quantity of fuel into an engine combustion chamber, the fuel injector in fluid communication with the outlet of the high pressure pump and the high pressure pump having an inlet in fluid communication with a low pressure pump and operable within a pump operating range, the high pressure pump comprising:a housing defining a centerline; a plurality of radially extending piston bores angularly spaced about the centerline, each piston bore having a discharge opening in fluid communication with the pump outlet, and each piston bore communicating with the pump inlet via an aperture having a set area; a check valve positioned in each discharge opening; a shaft rotatably received by the housing and substantially aligned with the central axis, the shaft defining a cam surface; and a plurality of pistons each having a first end engaging the cam surface and each reciprocatingly received within a respective piston bore, such that reciprocation of the pistons covers and uncovers the apertures, the pistons being reciprocable to pump fluid through the discharge openings to provide a substantially constant flow of fluid from the pump throughout the pump operating range.
- 2. The high pressure pump of claim 1, wherein the ECM develops signals controlling the operation of the injector for fuel metering without modifying the flow from the pump outlet to the injector.
- 3. The high pressure pump of claim 2, further comprising a pressure controlled throttling valve at the inlet of the high pressure pump, the ECM regulating the inlet flow of fluid through the pressure control valve to reduce the flow of fluid to the high pressure pump when predetermined engine conditions are sensed by the ECM.
- 4. The high pressure pump of claim 3, further comprising an annular discharge chamber in fluid communication with the discharge openings and an outlet port of the pump, whereby high pressure fluid pumped by all pistons is united in the discharge chamber to dissipate pump pulsations.
- 5. The high pressure pump of claim 3, further comprising a rail pressure control valve between the fuel injectors and the high pressure pump outlet under the control of the ECM for varying the flow of pump output fluid to the fluid injectors.
- 6. The high pressure pump of claim 3, wherein the pump outlet port is in direct unaltered fluid communication with the injectors whereby the output flow of the pump transmitted to the fuel injectors is not varied.
- 7. The high pressure pump of claim 1, wherein the set area of the aperture is determined as a function of the relationshipQA·ΔP½·t where“Q” is the quantity of fluid flowed through the aperture for a time, “A” is the area of the aperture, “ΔP” is the pressure drop of the fluid through the aperture, and “t” is the time the aperture is open during the suction stroke.
- 8. The high pressure pump of claim 7, wherein the pressure drop through the aperture is variably controlled after the operating speed of the pump has been reached by variably changing the inlet pressure.
- 9. In a diesel engine equipped with hydraulically actuated electronically controlled unit fuel injectors having a high pressure pump in fluid communication with a high pressure rail connected to the injectors in turn utilizing solenoids actuated by an ECM to control valving of high pressure pump fluid within the injectors to timely and variably actuate the injectors, the improvement comprising:a fixed displacement radial piston pump having a substantially constant flow over its operating range in unaltered fluid communication with said high pressure rail whereby an electronically controlled, pressure regulating valve controlling pump pressure in said high pressure rail is alleviated.
- 10. The improvement of claim 9, further comprising a safety relief valve in fluid communication with the outlet port of the high pressure pump for maintaining the pressure within said high pressure rail below a set value.
- 11. The improvement of claim 10, wherein the radial piston pump has a rotatable shaft having a radially outwardly facing cam surface and a stationary housing having a plurality of radially extending open ended piston bores angularly spaced about said shaft; each piston bore containing a movable piston extending through one end of said bore in contact with said cam surface, a suction slot establishing fluid communication through the slot from pump inlet to piston bore during a portion of piston suction stroke travel while preventing fluid communication between piston bore and pump inlet during the compression piston stroke and a discharge port at the opposite piston bore end in fluid communication with an annular discharge chamber in turn in fluid communication with a pump outlet port.
- 12. The improvement of claim 11, further comprising a ball check valve adjacent and between said discharge port and said discharge chamber.
- 13. The improvement of claim 9, further comprising a low pressure pump supplying fluid at low pressure to the inlet of the high pressure pump; an electronically actuated pressure control throttling valve at the inlet of said high pressure pump and the throttling valve actuated by the ECM to variably retard the flow of inlet fluid to the high pressure pump.
- 14. A constant flow, fixed displacement, radial piston pump comprising:a non-rotatable housing containing a plurality of radially extending piston bores angularly spaced about a centerline of the pump; a rotatable shaft having an eccentric cam surface; a piston movable within each bore having one end extending through a bore end and in sliding contact with the eccentric cam surface while the piston's opposite end is adjacent an outlet check valve at the opposite bore end; the pump having a discharge chamber in fluid communication with all piston check valves and with the pump outlet; and, each piston having a suction slot of set area communicable with the pump inlet, the suction slot transversely positioned at a set distance between the piston ends and sealed and opened by movement of each piston within its bore whereby fluid flow into the piston bore decreases in proportion to increases in shaft rotational speed after the operating speed of the pump has been reached.
- 15. The pump of claim 14, wherein the suction slot is substantially circular.
- 16. The pump of claim 14, wherein each piston is hollow and open at its end adjacent the outlet check valve, the pump further comprising a spring at least partially surrounded by the piston and biasing the piston into engagement with the cam surface.
- 17. The pump of claim 14, wherein the outlet check valve is a ball valve whereby high pressure fluid pumped by all pistons is united in the discharge chamber to dissipate pump pulsations.
- 18. The pump of claim 17, the shaft journalled in the housing; the housing having an annular inlet chamber communicable with the suction openings.
- 19. The pump of claim 18, further comprising a throttling valve at the inlet of the pump.
- 20. The pump of claim 14, wherein the set area of the slot is determined as a function of the relationshipQA·ΔP½·t where“Q” is the quantity of fluid flowed through the slot for a time, “A” is the area of the slot, “ΔP” is the pressure drop of the fluid through the slot, and “t” is the time the slot is open during the suction stroke.
- 21. The pump of claim 20, wherein the pressure drop through the suction slot is variably controlled after the operating speed of the pump has been reached by variably changing the inlet pressure.
- 22. A HEUI fuel injection system comprisinga plurality of hydraulically-actuated fuel injectors, a low pressure pump, and a high pressure pump having an operating range, having an inlet communicating with the low pressure pump and having an outlet communicating with the fuel injectors for actuating the fuel injectors, the high pressure pump including a cam surface, a housing having a centerline and defining a plurality of piston bores extending radially away from the centerline, the piston bores having therein respective pistons biased against the cam surface such that relative rotation of the housing and the cam surface causes reciprocation of the pistons in the piston bores, each of the piston bores communicating with the pump outlet, and each of the piston bores being communicable with the pump inlet via an opening of set area so that the high pressure pump has a generally constant output flow over its operating range.
- 23. The system of claim 22 wherein the housing is stationary and the cam surface is rotatable.
- 24. The system of claim 23 wherein the housing has a central chamber in which a shaft is rotatable about the centerline, and wherein the cam surface rotates with the shaft and is eccentric relative to the shaft.
- 25. The system of claim 24 wherein each piston has a radially inner end biased against the cam surface.
- 26. The system of claim 25 wherein each piston bore has a radially outer end communicating with the pump outlet via a check valve.
- 27. The system of claim 26 wherein each of the pistons has a hollow interior and has therein a respective opening of set area, the opening communicating with the pump inlet when the piston is in a suction position.
- 28. The system of claim 27 wherein the piston moves from the suction position toward the check valve to force fluid out of the piston bore through the check valve.
- 29. The system of claim 26 wherein each piston bore has therein a spring extending between the check valve and the piston to bias the piston against the cam surface.
- 30. The system of claim 22 wherein the openings of set area are in the pistons.
- 31. The system of claim 30 wherein each of the pistons has a hollow interior communicating with the respective opening.
- 32. The system of claim 31 wherein each of the pistons has therein a plurality of openings of set area.
- 33. The system of claim 22 wherein the housing has therein an annular inlet passage communicating the pump inlet and communicable with the piston bores via the openings, and wherein the housing has therein an annular outlet passage communicating with the piston bores via respective check valves and communicating with the pump outlet.
- 34. The system of claim 33 wherein the housing is stationary and has a central chamber in which a shaft is rotatable about the centerline, wherein the cam surface rotates with the shaft and is eccentric relative to the shaft, and wherein the central chamber communicates between the pump inlet and the annular inlet passage.
- 35. A HEUI fuel injection system comprisinga plurality of hydraulically-actuated fuel injectors, a low pressure pump, and a high pressure pump having an operating range, having an inlet communicating with the low pressure pump and having an outlet communicating with the fuel injectors for actuating the fuel injectors, the high pressure pump including a stationary housing having a centerline and defining a central chamber in which a shaft is rotatable about the centerline, the shaft having thereon a cam surface that rotates with the shaft and that is eccentric relative to the shaft, and the housing defining a plurality of piston bores extending radially away from the centerline, each of the piston bores having a radially outer end communicating with the pump outlet via a check valve, the piston bores having therein respective pistons each having a radially inner end biased against the cam surface such that rotation of the cam surface causes reciprocation of the pistons in the piston bores, and each of the pistons having a hollow interior and having therein a respective opening of set area, the opening communicating with the pump inlet when the piston is in a suction position, the piston moving from the suction position toward the check valve to force fluid out of the piston bore through the check valve, so that the high pressure pump has a generally constant output flow over its operating range.
- 36. The system of claim 35 wherein each piston bore has therein a spring extending between the check valve and the piston to bias the piston against the cam surface.
- 37. The system of claim 35 wherein each of the pistons has therein a plurality of openings of set area.
- 38. The system of claim 35 wherein the housing has therein an annular inlet passage communicating with the pump inlet and communicable with the piston bores via the openings, and wherein the housing has therein an annular outlet passage communicating with the piston bores via respective check valves and communicating with the pump outlet.
Parent Case Info
This application is a continuation-in-part of Ser. No. 09/849,636 filed May 4, 2001, entitled “Pilot Operated Throttling Valve for Constant Flow Pump” hereby incorporated herein by reference in its entirety, which is a continuation-in-part of Ser. No. 09/553,285, filed Apr. 20, 2000, now U.S. Pat. No. 6,227,167 (“the '167 patent”) issued on May 8, 2001, also incorporated herein by reference in its entirety.
US Referenced Citations (29)
Foreign Referenced Citations (1)
Number |
Date |
Country |
WO 0192709 |
Dec 2001 |
WO |
Non-Patent Literature Citations (2)
Entry |
Declaration of Brian William Smith, submitted herewith, executed Mar. 21, 2003. |
SAE Technical Paper 2000-01-0687, entitled “Development of a Variable-Displacement, Rail-Pressure Supply Pump for a Dimethyl Ether” by James C. McCandless, Ho Teng and Jeffrey B. Schneyer presented Mar. 6-9, 2000. |
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09/849636 |
May 2001 |
US |
Child |
10/123866 |
|
US |
Parent |
09/553285 |
Apr 2000 |
US |
Child |
09/849636 |
|
US |