Claims
- 1. An electronically controllable, high pressure fuel pump assembly for supplying fuel at a predetermined pressure through plural fuel injection lines to the corresponding cylinders of a multi-cylinder internal combustion engine, comprising
- (a) a unitized assembly adapted to be mounted on the engine, said unitized assembly including
- i. pump means for pressurizing fuel above the predetermined pressure, said pump means including a pump housing having mounting means for mounting said unitized assembly on the engine,
- ii. an accumulator means for accumulating and temporarily storing fuel at high pressure received from said pump means, said accumulator means including an accumulator housing containing at least one accumulator chamber, said accumulator housing being mounted on said pump housing, and
- iii. a fuel distributor means for enabling sequential periodic fluidic communication between said accumulator chamber and the engine cylinders, said distributor means including a distributor housing being mounted on said pump housing;
- (b) a first solenoid operated pump control valve for controlling said pump means to maintain a desired pressure of fuel in said accumulator chamber, said first solenoid operated pump control valve by being mounted on said unitized assembly; and
- (c) a first solenoid operated injection control valve for controlling the timing and quantity of fuel injected into each engine cylinder in response to engine operating conditions, said first solenoid operated injection control valve being mounted on said unitized assembly.
- 2. The electronically controlled, high pressure fuel pump assembly of claim 1, further including a second solenoid operated pump control valve for controlling said pump means to maintain the desired pressure of fuel in said accumulator chamber even if said first solenoid operated pump control valve becomes disabled.
- 3. The electronically controlled, high pressure fuel pump assembly of claim 1, further including a second solenoid operated injection control valve for controlling the timing and quantity of injection into each engine cylinder even if said first solenoid operated injection control valve becomes disabled.
- 4. The fuel pump assembly of claim 1, wherein said pump means includes plural pump chambers, plural pump plungers mounted for reciprocal motion within said pump chambers, and wherein said assembly further includes plural solenoid operated pump control valves corresponding in number to said pump chambers, said solenoid operated pump control valves being connected with said pump chambers, respectively, for controlling the effective displacement of each said associated pump plunger.
- 5. The fuel pump assembly of claim 4, further including means for generating a pressure signal representative of the pressure of the fuel in said accumulator means and control means for controlling said solenoid operated pump control valves to adjust the effective displacement of said pump plungers in response to said pressure signal to cause the pressure of fuel in said accumulator means to equal said predetermined pressure.
- 6. An electronically controllable, fail safe, high pressure fuel pump assembly for supplying fuel at a predetermined pressure through plural fuel injection lines to the corresponding cylinders of a multi-cylinder internal combustion engine, comprising
- (a) pump means for pressurizing fuel above the predetermined pressure, said pump means including plural positive displacement pump elements having variable displacement capability,
- (b) an accumulator means for accumulating and temporarily storing fuel at high pressure received from said pump means, said accumulator including at least one accumulator chamber arranged to receive fuel from all said positive displacement pump elements,
- (c) a fuel distributor means for enabling sequential periodic fluidic communication between said accumulator chamber and the engine cylinders,
- (d) at least a pair of associated solenoid operated pump control valves for controlling the effective displacement of said pump elements to cause said pump elements to share the pumping load necessary to maintain a desired pressure of fuel in said accumulator chamber,
- (e) a first solenoid operated injection control valve for normally controlling the timing of one portion of the quantity of fuel injected into each engine cylinder during each injection event, and
- (f) electronic control means for controlling the operation of said pump control valves to allow substantially normal engine operation should one of said pump control valves become disabled by causing the associated pump control valve to take over the function of the disabled pump control valve.
- 7. The fuel pump assembly of claim 6, further including a second solenoid operated injection control valve associated with said first solenoid operated injection control valve for normally controlling the timing of another quantity of fuel injected into each engine cylinder during each injection event wherein said electronic control means operates to control said injection control valves to allow at least "imp-home" operation of said engine should one of said injection control valves become disabled by causing the associated injection control valve to take over the function of the disabled injection control valve.
- 8. A compact, high pressure fuel pump assembly for supplying fuel to a multi-cylinder internal combustion engine, comprising
- a pump housing having minimal extent in mutually perpendicular lateral, radial and axial directions, said pump housing containing at least one pump cavity having a first pump axis extending in the radial direction and a drive shaft cavity adjacent one end of said pump cavity having a drive axis extending in the axial direction;
- a drive shaft mounted within said drive shaft cavity for rotation about said drive axis;
- a pump plunger mounted within said pump cavity for reciprocatory motion along said first pump axis in response to rotational movement of said drive shaft; and
- an accumulator housing containing at least one elongated accumulator chamber for accumulating and temporarily storing fuel at high pressure, said accumulator housing being mounted on said pump housing adjacent the other end of said pump cavity with the central axis of said elongated accumulator chamber being arranged parallel to said drive axis.
- 9. The fuel pump assembly of claim 8, wherein said accumulator housing has an axial extent which is substantially greater than the axial extent of said pump housing thereby creating an axial overhang of said accumulator housing relative to said pump housing.
- 10. The fuel pump assembly of claim 9, wherein said pump housing contains at least one additional pump cavity having a second pump axis parallel to said first pump axis and perpendicular to said drive axis and further including a second pump plunger mounted for reciprocatory motion along said second pump axis in response to rotational movement of said drive shaft.
- 11. The fuel pump assembly of claim 10, further including a fuel distributor means for providing sequential periodic fluidic communication between said accumulator chamber and the engine cylinders, said fuel distributor means including a distributor housing mounted on said pump housing adjacent said drive shaft cavity in spaced apart generally parallel relationship with said axial overhang of said accumulator housing.
- 12. The fuel pump assembly of claim 11, wherein said distributor housing contains a rotor bore and said distributor means further includes a distributor rotor mounted for rotation within said rotor bore, said rotor being rotationally driven by said drive shaft, said rotor containing an axial supply passage fluidically connected to receive fuel from said accumulator chamber, said rotor also containing a first radial supply passage fluidically connected to said axial supply passage, said distributor housing containing a set of receiving ports adapted to communicate with corresponding engine cylinders through corresponding fuel injection lines, said receiving ports being circumferentially spaced around said rotor, said set of receiving ports being arranged in positions to register successively with said first radial supply passage as said rotor is rotated to define separate distinct periods during each rotation of said rotor in which said corresponding engine cylinders may be fluidically connected to said accumulator chamber.
- 13. The fuel pump assembly of claim 12, wherein the rotational axis of said rotor is co-axial with the rotational axis of said drive shaft.
- 14. The fuel pump assembly of claim 12, wherein the rotational axis of said rotor is perpendicular to the rotational axis of said drive shaft.
- 15. The fuel pump assembly of claim 12, further including a fuel feed line for fluidically connecting said axial supply passage to said accumulator chamber, said feed line including a feed port for supplying fuel from said accumulator to said rotor bore, said feed port being located in a supply plane which is perpendicular to the rotational axis of said rotor and is axially spaced from said set of receiving ports, said rotor containing a radial receiving passage axially positioned within said supply plane.
- 16. The fuel pump assembly of claim 15, wherein said distributor housing contains a distributor housing drain port located at one end of said rotor bore for communication with a low pressure fuel drain, said rotor contains a first axial drain passage fluidically connected to said distributor housing drain port.
- 17. The fuel pump assembly of claim 16, wherein said rotor further contains a first radial drain passage communicating with an axial drain passage and to a first drain groove formed in one of said rotor and said rotor bore located axially between said first radial supply passage and said radial receiving passage to receive any fuel which leaks through the close fitting clearance between said rotor and rotor cavity extending between said radial supply passage and said radial receiving passage.
- 18. The fuel pump assembly of claim 16, further including a boost pump means located between said distributor means and said pump housing for receiving fuel from a fuel source and for supplying fuel to said pump cavity at a pressure sufficient to provide an adequate amount of fuel to said pump cavity throughout the operating range of the engine.
- 19. The fuel assembly of claim 18, wherein said boost pump means includes a shaft extension coupled to said drive shaft of said fuel pump at one end and to said rotor distributor rotor at the other end, said distributor housing having a seal recess surrounding the end of said distributor rotor adjacent said shaft extension.
- 20. The fuel pump assembly of claim 12, wherein said rotor contains a pressure equalizing groove extending a sufficient circumferential distance around said rotor at an axial location to connect fluidically all said receiving ports except for the receiving port which is in fluidic communication with said first radial supply passage.
- 21. The fuel pump assembly of claim 20, wherein said receiving ports are circumferentially spaced equal angularly around said rotor to maximize the space between said receiving ports.
- 22. The fuel pump assembly of claim 21, wherein said distributor means includes a supply groove contained in one of said rotor and said rotor bore, said supply groove being positioned to communicate at all times with said radial receiving passage of said rotor and said fuel feed line.
- 23. The fuel pump assembly of claim 15, wherein said distributor means includes an injection control means for controlling the timing and quantity of fuel injected into each engine cylinder in response to engine operating conditions, said injection control means including a first solenoid injection control valve mounted on said distributor housing and arranged to control the flow of fuel through said fuel feed line, said first solenoid injection control valve being a three way valve operable when energized to connect said axial supply passage of said rotor with said accumulator and operable when de-energized to connect said axial supply passage of said rotor bore with a low pressure drain wherein said distributor housing includes an elongated first valve cavity for receiving said first solenoid injection control valve.
- 24. The fuel pump assembly of claim 23, wherein said injection control means includes a second solenoid injection control valve mounted on said distributor housing and arranged to control the flow of fuel through said fuel feed line in parallel with said first solenoid injection control valve, said second solenoid injection control valve being a three way valve operable when energized to connect said axial supply passage of said rotor with said accumulator and operable when de-energized to connect said axial supply passage of said rotor with a low pressure fuel drain, said distributor housing containing a second valve cavity having a central axis parallel to a central axis of said first valve cavity, said central axes residing within said supply plane containing said radial supply passage supplying fuel to said axial supply passage of said rotor, said first and second cavities being positioned on opposite sides of said rotor.
- 25. The fuel pump assembly of claim 24, wherein said first and second valve cavities interconnected by a rotor feed bore having a central axis located in said supply plane, said feed port for said rotor cavity being fluidically connected with said rotor feed bore, said distributor means including a two way check valve located within said rotor feed bore to prevent fuel supplied from one said valve cavity to flow into the other said valve cavity.
- 26. An ultra high pressure fuel pump assembly for supplying fuel through plural fuel injection lines to the corresponding cylinders of a multi-cylinder internal combustion engine having a predetermined operating range and having reciprocating pistons associated with the respective cylinders, comprising:
- pump means for supplying fuel at a pressure above a predetermined operating pressure;
- a high pressure accumulator means fluidically connected with said pump means for accumulating a predetermined volume of fuel at said predetermined operating pressure;
- a fuel distribution means for providing sequential periodic fluidic communication between said accumulator means and the engine cylinders through the fuel injection lines associated with the corresponding engine cylinders for causing periodic injection of fuel into the corresponding engine cylinder in timed synchronism with the movement of the piston in the corresponding engine cylinder;
- wherein said high pressure accumulator means includes a high strength, compact accumulator housing containing a fluidically interconnected labyrinth of accumulator chambers having a total volume sufficient to allow controlled quantities of fuel at the said operating pressure to be delivered to each engine cylinder at appropriate times throughout the entire operating range of the engine as determined by said fuel distribution means.
- 27. The fuel pump assembly of claim 26, wherein said pump means includes at least one pump unit for responding to a control signal to vary the amount of fuel pumped, and further including pressure sensing means for determining the pressure within said accumulator chambers and a pump control means for generating said pump control signal to maintain the pressure of fuel in said accumulator chambers at the predetermined operating pressure.
- 28. The fuel pump assembly of claim 26, wherein said accumulator chambers are elongated and cylindrical in shape and are connected by connecting passages.
- 29. The fuel pump assembly of claim 28, wherein said accumulator chambers are positioned adjacent, and oriented in generally parallel relationship, to each other.
- 30. The fuel pump assembly of claim 28, wherein said accumulator chambers are positioned to intersect a vertical plane through said accumulator housing in a two dimensional array.
- 31. The fuel pump assembly to claim 30, wherein said two dimensional array includes an upper row of four accumulator chambers and a lower row of three accumulator chambers.
- 32. The fuel pump assembly of claim 28, wherein said accumulator housing is formed from an integral one piece block and wherein said accumulator means includes a plurality of plugs located at the ends of respective accumulator chambers to seal fluidically the ends of said accumulator chambers.
- 33. The fuel pump assembly of claim 32, wherein said pump means includes a pump housing containing plural pump cavities and said accumulator housing is mounted on said pump housing and includes plural pump unit recesses aligned with and communicating with said pump cavities, respectively, and wherein said pump means includes plural pump units, each said pump unit being mounted within a corresponding pump cavity and associated pump unit recess.
- 34. The fuel pump assembly of claim 33, wherein each said pump unit includes a pump barrel containing a pump chamber and a pump plunger mounted for reciprocal movement in said pump chamber.
- 35. The fuel pump assembly of claim 34, wherein said pump means includes a camshaft rotationally mounted within said pump housing, said camshaft includes plural cams for causing said plungers, respectively, to reciprocate as said camshaft is rotated.
- 36. The fuel pump assembly of claim 35, wherein said pump means includes a plurality of tappet assemblies associated with said pump units, respectively, each said tappet assembly being mounted for reciprocal movement within the pump cavity in which said corresponding pump unit is mounted and being connected with the pump plunger of the corresponding pump unit, and wherein said pump means includes a tappet bias spring for biasing said tappet assembly into engagement with a corresponding cam on said camshaft to cause said tappet assembly and the connected pump plunger to reciprocate as said camshaft is rotated.
- 37. The fuel pump assembly of claim 35, wherein each said cam has at least one lobe for causing an associated pump plunger to undergo one advancing stroke and one return stroke for each revolution of said camshaft, the total number of lobes on all said cams being selected to cause one advancing stroke for each of said periodic injections into each of the engine cylinder.
- 38. The fuel pump assembly of claim 34, wherein each said pump unit includes a pump retainer surrounding said barrel, for supportively mounting the pump unit within the corresponding pump unit recess of said accumulator housing, each said pump unit extending into the corresponding pump cavity without directly contacting said pump housing.
- 39. The fuel pump assembly of claim 38, wherein each said pump unit contains a pump unit inlet communicating with a source of fuel for feeding fuel into said pump chamber and a pump unit outlet communicating with said labyrinth of accumulator chambers and wherein each said pump unit includes a pump unit check valve for permitting only one way flow of fuel from the pump chamber through said pump unit outlet into said accumulator chambers.
- 40. The fuel pump assembly of claim 39, wherein each said pump unit check valve includes a check valve recess contained in said accumulator housing to form a fluid communication path between a corresponding disk outlet passage and said accumulator chambers, each said pump unit check valve further including a check valve element adapted to be biased into a closed position by the pressure of fuel within said accumulator chambers until the pressure of fuel within the corresponding pump chamber exceeds the pressure within said accumulator chambers at which time said check valve element is caused to open to allow fuel to flow from the corresponding pump chamber and through said check valve recess into said accumulator chambers.
- 41. The fuel pump assembly of claim 39, wherein each said pump unit includes a disk positioned within said retainer at one end of said barrel to close off the corresponding pump chamber, said pump unit disk containing said pump unit inlet and said pump unit outlet and wherein said retainer is threadedly received within the corresponding pump unit recess of said accumulator housing to bias said barrel and said disk in axially stacked relationship against said accumulator housing, said pump unit outlet including a disk outlet passage positioned centrally in said disk, said pump unit inlet including an annular disk groove positioned concentrically on one side of said disk and at least one axial disk inlet passage extending from said pump chamber to said annular disk groove.
- 42. The fuel pump assembly of claim 41, wherein said accumulator housing contains at least one common fuel feed passage for supplying fuel to all of said pump units and a plurality of fuel feed branches extending between said common fuel feed passage and said pump unit recesses respectively, each said fuel feed branch communicating at one end with said annular disk groove contained in the corresponding pump unit recess and communicating at the other end with said common fuel feed passage.
- 43. The fuel pump assembly of claim 42, further including a plurality of pump unit control valves associated with said fuel feed branches, respectively, to control the flow of fuel through the corresponding fuel feed branches in response to a pump unit control signal to control the amount of fuel pumped into said accumulator chambers by the corresponding pump unit during each reciprocal cycle of the corresponding pump plunger.
- 44. The fuel pump assembly of claim 43, further including pressure sensing means for determining the pressure within said accumulator chambers and a pump unit valve control means for generating said pump unit control signal for each said pump unit control valve to maintain the pressure of fuel in said accumulator chambers at the predetermined operating pressure.
- 45. The fuel pump assembly of claim 44, wherein said accumulator housing contains an accumulator drain passage communicating with each said pump unit recess and with said common fuel feed passage, each said pump unit includes a pump unit drain means for directing fuel leaked from said pump unit into said accumulator drain passage, each said pump unit drain means further including a recess clearance formed between the corresponding retainer and the corresponding pump unit recess, each said recess clearance communicating with the corresponding accumulator drain passage.
- 46. The fuel pump assembly of claim 45, wherein each said drain means further includes a pump unit clearance between the corresponding barrel and retainer, a drain groove located on the surface of the corresponding pump plunger and a retainer drain passage communicating at all times with said pump unit clearance and communicating intermittently with said drain groove during reciprocal movement of the corresponding pump plunger, whereby fuel leaked from the corresponding pump chamber between the corresponding barrel and pump plunger will collect in said drain groove for intermittent drainage through the corresponding drain passage.
- 47. The fuel pump assembly of claim 46, wherein each said pump unit clearance is fluidically connected to receive fuel leaked from the area of contact between the corresponding disk and retainer and wherein each said recess clearance is fluidically connected to receive fuel leaked from the area of contact between the corresponding disk and accumulator housing to allow fuel leaked from said contact areas to be returned to said common fuel feed passage.
- 48. The fuel pump assembly of claim 46, wherein each said pump unit check valve includes a check valve recess contained in said accumulator housing to form a fluid communication path between a corresponding disk outlet passage and said accumulator chambers, each said pump unit check valve further including a check valve element adapted to be biased into a closed position by the pressure of fuel within said accumulator chambers until the pressure of fuel within the corresponding pump chamber exceeds the pressure within said accumulator chambers at which time said check valve element is caused to open to allow fuel to flow from the corresponding pump chamber through said corresponding disk outlet passage and said check valve recess into said accumulator chambers.
- 49. A fuel pump assembly for supplying fuel to a multi-cylinder internal combustion engine above a predetermined high pressure, comprising
- a compact pump housing having minimal dimensions in mutually perpendicular lateral, radial and axial directions, said pump housing containing at least one pump cavity having a first pump axis extending in the radial direction;
- pumping means mounted within said pump cavity for pressurizing fuel above the predetermined high pressure;
- an accumulator housing containing at least one accumulator chamber for accumulating and temporarily storing fuel at high pressure, said accumulator housing being mounted on said pump housing adjacent one end of said pump chamber, at least one of said axial extent and said lateral extent of said accumulator housing being greater than the corresponding extent of said pump housing thereby creating a cantilevered overhang of said accumulator housing relative to said pump housing; and
- pump control valve means connected with said overhang of said accumulator housing adjacent said pump housing for controlling the amount of fuel pumped into said accumulator chamber.
- 50. The fuel pump assembly of claim 49, wherein said pump housing includes plural pump cavities, said pumping means includes means for pressurizing fuel in all said pumping cavities for delivery to said accumulator chamber.
- 51. The fuel pump assembly of claim 50, wherein said accumulator housing contains at least one common fuel feed passage for supplying fuel to all of said pump cavities and a plurality of fuel feed branches extending between said common fuel feed passage and said pump cavities, respectively, each said fuel feed branch communicating at one end with a corresponding said pump cavity and communicating at the other end with said common fuel feed passage.
- 52. The fuel pump assembly of claim 51, wherein said pump control valve means includes a plurality of pump control valves associated with said fuel feed branches, respectively, to control the flow of fuel through the corresponding fuel feed branches in response to a pump control signal to control the amount of fuel pumped into said accumulator chambers by said pump means, said pump control valves being mounted on said cantilevered overhang of said accumulator.
- 53. The fuel pump assembly of claim 52, wherein said pump control valves are mounted in said cantilevered overhang in a position immediately adjacent said pump housing.
- 54. The fuel pump assembly of claim 53, wherein cantilevered overhang extends in the lateral direction and said pump control valves are positioned along the lateral side of said pump housing.
- 55. The fuel pump assembly of claim 54, further including pressure sensing means for determining the pressure within said accumulator chamber and wherein said cantilevered overhang of said accumulator also extends in the axial direction, said pressure sensing means being mounted in said axial portion of said cantilevered overhang.
- 56. The fuel pump assembly of claim 55, wherein said pressure sensing means is mounted on the same side of said accumulator housing as said pump housing.
- 57. A high pressure fuel pump assembly for supplying fuel to an internal combustion engine, comprising:
- pump means for supplying fuel above approximately 5,000 psi, said pump means including a pump housing containing at least one pump cavity opening into a head engaging surface; and
- a high pressure accumulator means fluidically connected with said pump means for accumulating a predetermined volume of fuel at a predetermined operating pressure above approximately 5,000 psi, said high pressure accumulator means includes a high strength, compact accumulator housing containing at least one accumulator chamber and mounted in contact with said head engaging surface of said pump housing to form an end wall for said pump cavity, wherein said accumulator housing includes a fluidically interconnected labyrinth of accumulator chambers having a total volume sufficient to allow controlled quantities of fuel at the operating pressure to be delivered to the internal combustion engine at appropriate times throughout the entire operating range of the engine.
- 58. A high pressure fuel pump assembly as defined in claim 57, wherein said pump means is adapted to supply fuel at a pressure above approximately 16,000 psi and said accumulator means is adapted to contain fuel at a pressure above approximately 16,000 psi.
- 59. A high pressure fuel pump assembly as defined in claim 57, wherein said pump means is adapted to supply fuel at a pressure above approximately 20,000 psi and said accumulator means is adapted to contain fuel at a pressure above approximately 20,000 psi.
- 60. A high pressure fuel pump assembly as defined in claim 57, wherein said accumulator housing is formed from material selected from the group consisting of SAE 4340 or Aermet 100.
- 61. A high pressure fuel pump assembly as defined in claim 57, wherein said accumulator housing is formed of an integral one piece block containing said labyrinth of accumulator chambers shaped and positioned to form surrounding walls sufficiently strong to withstand the forces generated when said accumulator chambers are filled with fuel at the predetermined operating pressure.
- 62. A high pressure fuel pump assembly as defined in claim 61, wherein said accumulator chambers are formed by boring said one piece block, and wherein said accumulator includes a plurality of separate plugs for sealing said accumulator chambers respectively.
- 63. A high pressure fuel pump assembly as defined in claim 62, wherein the aggregate volume of said accumulator chambers is sufficient to limit the drop in fuel pressure within said accumulator throughout the entire operating range of the engine to no more than approximately 5%-10% of said predetermined operating pressure.
- 64. A high pressure fuel pump assembly as defined in claim 63, wherein said accumulator block walls are sufficiently strong to allow said accumulator chambers to hold fuel at a predetermined pressure above 5,000 psi.
- 65. A high pressure fuel pump assembly as defined in claim 64, wherein said accumulator block walls are sufficiently strong to allow said accumulator chambers to hold fuel at a predetermined pressure above 20,000 psi.
- 66. A high pressure fuel pump assembly as defined in claim 65, wherein said accumulator chambers are elongated and cylindrical in shape and are connected by connecting passages.
- 67. A high pressure fuel pump assembly as defined in claim 66, wherein said accumulator chambers are positioned adjacent, and oriented in generally parallel relationship, to each other.
- 68. A high pressure fuel pump assembly as defined in claim 67, wherein said accumulator chambers are positioned to intersect a vertical plane through said accumulator housing in a two dimensional array.
- 69. A high pressure fuel pump assembly as defined in claim 68, wherein said accumulator chambers are fluidically interconnected by a first cross passage which intersects an upper row of accumulator chambers and a second cross passage which intersects a lower row of accumulator chambers.
- 70. A high pressure fuel pump assembly as defined in claim 69, wherein said two dimensional array includes an upper row of four accumulator chambers and a lower row of three accumulator chambers.
- 71. A high pressure fuel pump assembly as defined in claim 70, wherein accumulator means includes a plurality of plugs located at the ends of respective accumulator chambers to seal fluidically the ends of said accumulator chambers.
- 72. A high pressure fuel pump assembly for periodic injection of fuel through plural fuel injection lines into corresponding engine cylinders of a plural cylinder internal combustion engine having a predetermined operating range and a plurality of reciprocating pistons associated with the corresponding cylinders, comprising:
- a compact pump housing having minimal dimensions in mutually perpendicular lateral, radial and axial directions, said pump housing containing at least one pump cavity having a first central axis extending in the radial direction;
- a pump plunger mounted within said pump cavity for reciprocatory motion along said first central axis;
- an accumulator housing containing at least one accumulator chamber for accumulating and temporarily storing fuel at high pressure, said accumulator housing being mounted on said pump housing adjacent one end of said pump chamber, at least one of said axial extent and said lateral extent of said accumulator housing being greater than the corresponding extent of said pump housing thereby creating a cantilevered overhang of said accumulator housing relative to said pump housing; and
- a fuel distributor means for providing sequential periodic fluidic communication between said accumulator means and the engine cylinders through the corresponding fuel injection lines associated with the corresponding engine cylinders for causing periodic injection of fuel into the corresponding engine cylinder in timed synchronism with the movement of the pistons in the corresponding cylinders, said fuel distribution means including a distributor body cantilever mounted on said pump housing in parallel, generally spaced apart relationship with respect to said overhang of said accumulator housing.
- 73. A high pressure fuel pump assembly as defined in claim 72, wherein said distributor means includes an injection control means for controlling the timing and quantity of fuel injected into each engine cylinder in response to engine operating conditions, said first control means including a first solenoid injection control valve mounted on said distributor housing and arranged to control the flow of fuel in said fuel injection lines, said first solenoid injection control valve being mounted on said distributor housing in the space between said distributor housing and said cantilevered overhang of said accumulator housing.
- 74. A high pressure fuel pump assembly as defined in claim 73, wherein said injection control means includes a second solenoid injection control valve for controlling the flow of fuel from said accumulator to said respective engine cylinders, said second solenoid injection control valve being mounted on said distributor housing adjacent said first solenoid injection control valve in the space between said distributor housing and said cantilevered overhang of said accumulator housing.
- 75. A high pressure fuel pump assembly as defined in claim 74, wherein said first and second solenoid injection control valves are three way valves operable when energized to connect one of the fuel injection lines with said accumulator and operable when de-energized to connect one of the fuel injection lines with a low pressure fuel drain.
- 76. A high pressure fuel pump assembly as defined in claim 73, wherein said first solenoid injection control valve is a three way valve operable when energized to connect one of the fuel injection lines with said accumulator and operable when de-energized to connect one of the fuel injection lines with a low pressure fuel drain.
- 77. A fuel pump assembly for supplying fuel at pressures above a predetermined high pressure to an internal combustion engine having an irregular transverse profile, comprising
- a compact pump housing having minimal dimensions in mutually perpendicular lateral and radial directions, said pump housing containing at least one pump cavity having a first pump axis extending in the radial direction;
- pumping means mounted within said pump cavity for pressurizing fuel above the predetermined high pressure;
- an accumulator housing containing at least one accumulator chamber for accumulating and temporarily storing fuel at high pressure, said accumulator housing being mounted on said pump housing adjacent one end of said pump cavity, said lateral extent of said accumulator housing being greater than the lateral extent of said pump housing thereby a cantilevered lateral overhang of said accumulator housing relative to said pump housing to form an offset transverse profile which allows the fuel pump assembly to be mounted on the internal combustion engine at a location wherein the transverse profile of the fuel pump assembly complements the irregular transverse profile of the internal combustion engine.
- 78. The fuel pump assembly of claim 77, further including pump control valve means connected with said lateral overhang of said accumulator housing adjacent said pump housing for controlling the amount of fuel pumped into said accumulator chamber in response to a pump control signal.
- 79. The fuel pump assembly of claim 78, wherein said pump housing includes plural pump cavities, said pumping means includes plural pump units corresponding to the number of said pump cavities and located in said pump cavities, respectively, each said pump unit operating to pressurize fuel for delivery to said accumulator chamber.
- 80. The fuel pump assembly of claim 79, wherein said accumulator housing contains at least one common fuel feed passage for supplying fuel to all of said pump cavities and a plurality of fuel feed branches extending between said common fuel feed passage and said pump cavities, respectively, each said fuel feed branch communicating at one end with a corresponding said pump cavity and communicating at the other end with said common fuel feed passage.
- 81. The fuel pump assembly of claim 80, wherein said pump control valve means includes a plurality of pump control valves associated with said fuel feed branches, respectively, to control the flow of fuel through the corresponding fuel feed branches in response to a pump control signal to control the amount of fuel pumped into said accumulator chambers by said pump means, said pump control valves being mounted on said lateral overhang of said accumulator.
- 82. A fuel pump assembly, comprising
- a pump housing containing an outwardly opening pump cavity,
- a drive shaft rotatably mounted in the pump housing,
- a pump head mountable on the pump housing to close the outwardly opening pump cavity, said pump head containing a pump unit recess positioned to communicate with the pump cavity, and
- a replaceable pump unit including a pump barrel containing a pump chamber and a pump plunger adapted to be mounted for reciprocal movement within said pump chamber in response to rotation of said drive shaft, said replaceable pump unit including retaining means for mounting said pump unit within said pump unit recess of said pump head in a position to extend at least partially into said pump cavity in spaced apart non-contacting relationship with said pump housing.
- 83. The fuel pump assembly of claim 82, wherein said pump housing includes a plurality of said outwardly opening pump cavities, said pump head containing a plurality of said pump unit recesses positioned to communicate with said pump cavities, respectively, and further including a plurality of said replaceable pump units, each said pump unit including a pump barrel containing a pump chamber, a pump plunger mounted for reciprocation within said pump chamber when said drive shaft rotates and a retaining means for mounting said pump unit within a corresponding said pump unit recess of said pump head in a position to extend at least partially into said pump cavity in spaced apart non-contacting relationship with said pump housing.
- 84. The fuel pump assembly of claim 83, wherein said drive shaft includes a plurality of cams for causing said pump plungers to reciprocate, and further including a plurality of tappet assemblies associated with said pump units, respectively, each said tappet assembly being mounted for reciprocal movement within a corresponding pump cavity and being connected with a corresponding pump plunger, and a plurality of tappet bias springs for biasing said tappet assemblies into engagement with said cams, respectively, to cause said tappet assemblies and the connected pump plungers to reciprocate as said drive shaft is rotated.
- 85. The fuel pump assembly of claim 84, wherein said pump housing is an integral single piece structure including a head engaging surface for precisely positioning said pump head and tappet guiding surfaces within said pump cavities for guiding said tappets, respectively, said pump housing further including a radially enclosed drive shaft cavity having substantial radial openings only through said pump cavities, said pump housing including drive shaft support surfaces for precisely supporting said drive shaft, said pump housing requiring close tolerance machining of only said head engaging surface, said tappet guiding surfaces and said drive shaft support surfaces to provide suitable alignment of said pump chambers with respect to said tappets and said drive shaft.
- 86. The fuel pump assembly of claim 85, wherein said pump housing is formed by metal casting procedures.
- 87. An accumulator for use in a high pressure fuel system for temporarily storing fuel at a predetermined operating pressure to supply fuel for periodic injection into the corresponding engine cylinder of a plural cylinder internal combustion engine having a predetermined operating range and a plurality of engine pistons mounted for reciprocal movement within the engine cylinders, comprising
- a high strength, compact accumulator housing containing a fluidically interconnected labyrinth of accumulator chambers whose aggregate volume is sufficient to allow a controlled quantity of fuel at the predetermined operating pressure to be delivered to each engine cylinder at appropriate times throughout the entire operating range of the engine, said accumulator housing being formed of an integral one piece block containing said labyrinth of accumulator chambers shaped and positioned to form surrounding walls sufficiently strong to withstand the forces generated when said accumulator chambers are filled with fuel at the predetermined operating pressure, said accumulator chambers being positioned to intersect a vertical plane through said accumulator housing in at least a two dimensional array.
- 88. The accumulator as defined in claim 87, wherein said accumulator chambers are formed by boring said one piece block, and wherein said accumulator includes a plurality of separate plugs for sealing said accumulator chambers respectively.
- 89. The accumulator as defined by claim 88, wherein the aggregate volume of said accumulator chambers is sufficient to limit the drop in fuel pressure within said accumulator throughout the entire operating range of the engine to no more than approximately 5%-10% of said predetermined operating pressure.
- 90. The accumulator of claim 87, wherein said accumulator block walls are sufficiently strong to allow said accumulator chambers to hold fuel at a predetermined pressure above 5,000 psi.
- 91. The accumulator of claim 90, wherein said accumulator block walls are sufficiently strong to allow said accumulator chambers to hold fuel at a predetermined pressure above 20,000 psi.
- 92. The accumulator of claim 90, wherein said accumulator chambers are elongated and cylindrical in shape and are connected by connecting passages.
- 93. The accumulator of claim 92, wherein said accumulator chambers are positioned adjacent, and oriented in generally parallel relationship, to each other.
- 94. The accumulator of claim 93, wherein said two dimensional array includes an upper row of a plurality of said accumulator chambers and a lower row of a plurality of said accumulator chambers.
- 95. The accumulator of claim 94, wherein said accumulator chambers are fluidically interconnected by a first cross passage which intersects an upper row of accumulator chambers and a second cross passage which intersects a lower row of accumulator chambers.
- 96. The accumulator of claim 95, wherein said upper row includes four accumulator chambers and said lower row includes three accumulator chambers.
- 97. The accumulator of claim 96, wherein accumulator means includes a plurality of plugs located at the ends of respective accumulator chambers to seal fluidically the ends of said accumulator chambers.
- 98. The accumulator of claim 104, adapted to be mounted on a pump housing of a fuel pump which is adapted to supply fuel above said predetermined operating pressure, wherein said accumulator housing includes plural pump recesses, said accumulator further including plural pump units received in said pump recesses, respectively, and supported by said accumulator housing, each said pump unit recess being fluidically connected with said accumulator chambers.
- 99. The accumulator of claim 98, wherein said accumulator housing contains at least one common fuel feed passage for supplying fuel to all of said pump units and a plurality of fuel feed branches extending between said common fuel feed passage and said pump unit recesses, respectively, each said fuel feed branch communicating at one end with said corresponding pump unit recess and communicating at the other end with said common fuel feed passage.
- 100. The accumulator of claim 99, further including a plurality of pump unit control valves associated with said fuel feed branches, respectively, to control the flow of fuel through the corresponding fuel feed branches in response to a pump unit control signal to control the amount of fuel pumped into said accumulator means by the corresponding pump unit.
- 101. The accumulator of claim 98, further including pressure sensing means for determining the pressure within said accumulator chambers and a pump unit valve control means for generating said pump unit control signal for each said pump unit control valve to maintain the pressure of fuel in said accumulator chambers at the predetermined operating pressure.
- 102. The accumulator of claim 100, wherein said accumulator housing contains an accumulator drain passage communicating with each said pump unit recess and with said common fuel feed passage, each said pump unit includes a pump unit drain means for directing fuel leaked from said pump unit into said accumulator drain passage, each said pump unit drain means further including a recess clearance formed between the corresponding said pump unit and the corresponding pump unit recess, each said recess clearance communicating with the corresponding accumulator drain passage.
- 103. The accumulator of claim 101, wherein each said pump unit includes a check valve to permit only one way flow of fuel from said pump unit into said accumulator chambers, each said pump unit check valve further including a check valve element adapted to be biased into a closed position by the pressure of fuel within said accumulator chambers until the pressure of fuel within the corresponding pump chamber exceeds the pressure within said accumulator chambers at which time said check valve element is caused to open to allow fuel to flow from the corresponding pump chamber into said accumulator chambers.
- 104. The accumulator of claim 98, wherein said accumulator housing further contains a plurality of check valve recesses associated with said pump unit recesses, respectively, for forming a fluidic passage between said pump unit recesses and said accumulator chambers, each said check valve recess being adapted to receive a check valve for permitting only one way flow of fuel from the corresponding pump unit into said accumulator chambers.
- 105. The accumulator of claim 100, wherein said accumulator housing further includes a plurality of control valve recesses within which the pump unit control valves are adapted to be mounted.
- 106. The accumulator of claim 105, wherein the central axis of said pump control valve recesses are parallel and are oriented to intersect an extension of the central axis of one of said accumulator chambers.
- 107. The accumulator of claim 105, wherein said upper row of accumulator chambers extend along substantially the entire length of said accumulator housing and said lower row of accumulator chambers are substantially shorter than the entire length of said accumulator, said pump unit recesses being positioned in alignment with an extension of the central axis of one of said accumulator chambers forming said lower row.
- 108. The accumulator of claim 107, further including pressure sensing means for determining the pressure within said accumulator chambers and a pump unit valve control means for generating said pump unit control signal for each said pump unit control valve to maintain the pressure of fuel in said accumulator chambers at the predetermined operating pressure.
- 109. The accumulator of claim 108, wherein said accumulator housing contains an accumulator drain passage communicating with each said pump unit recess and with said common fuel feed passage to receive fuel leaked from the pump unit into said pump unit recess for return back to said common fuel feed passage.
- 110. An accumulator for use in a high pressure fuel system for temporarily storing fuel at a predetermined operating pressure to supply fuel for periodic injection into the corresponding engine cylinder of a plural cylinder internal combustion engine having a predetermined operating range and a plurality of engine pistons mounted for reciprocal movement within the engine cylinders, comprising
- a high strength, compact accumulator housing containing a fluidically interconnected labyrinth of accumulator chambers whose aggregate volume is sufficient to allow a controlled quantity of fuel at the predetermined operating pressure to be delivered to each engine cylinder at appropriate times throughout the entire operating range of the engine, said accumulator housing being formed of an integral one piece block containing said labyrinth of accumulator chambers shaped and positioned to form surrounding walls sufficiently strong to withstand the forces generated when said accumulator chambers are filled with fuel at the predetermined operating pressure
- wherein said accumulator is formed from SAE 4340 or Aermet 100.
- 111. A unitized fuel pump assembly for sequential periodic injection of fuel through plural fuel injection lines into corresponding engine cylinders of a plural cylinder internal combustion engine having a predetermined operating range and a plurality of reciprocating pistons associated with the corresponding cylinders, comprising:
- pump means for pressurizing fuel, said pump means including a pump housing and a drive shaft mounted within said housing for rotation about a rotational axis, said pump housing containing a plurality of pump cavities positioned along said rotational axis, said pump cavities being aligned along said rotational axis in a single radial direction;
- accumulator means for accumulating and temporarily storing fuel under pressure received from said pump means, said accumulator means including an accumulator housing mounted on said pump housing in a position which is separated from said drive shaft cavity by said pump cavities;
- a fuel distributor means for providing sequential periodic fluidic communication between said accumulator means and each of the engine cylinders through the corresponding fuel injection lines associated with the corresponding engine cylinders for causing periodic injection of fuel into the corresponding engine cylinder, said fuel distribution means including a distributor housing mounted on said pump housing adjacent one end of said drive shaft cavity, and
- injection control valve means for controlling the timing and quantity of fuel injected into each cylinder in response to engine operating conditions, said injection control valve means including a solenoid operator mounted on said distributor housing oriented generally in the same radial direction as said pump cavities relative to said rotational axis of said drive shaft.
- 112. The fuel pump assembly of claim 111, wherein said distributor housing includes a rotor bore and a set of receiving ports adapted to communicate with a corresponding set of fuel injection lines, respectively, said set of receiving ports opening into said rotor bore at circumferentially spaced apart locations within a distribution plane perpendicular to the central axis of said rotor bore, and wherein said distributor means includes a rotor adapted to be mounted for rotation within said rotor bore, said rotor containing an axial supply passage fluidically connected to receive fuel from said accumulator means, said rotor also containing a radial supply passage located within said distribution plane and rotor drive connection means for connecting said rotor to said pump drive shaft in a manner to cause said radial supply passage to align sequentially and successively with said receiving ports to supply fuel periodically to the corresponding engine cylinders as necessary for engine operation.
- 113. The fuel pump assembly of claim 112, further including a fuel feed line for fluidically connecting said axial supply passage to said accumulator means, said distributor housing containing a feed port for supplying fuel from said accumulator to said rotor bore, said feed port being located in a supply plane which is perpendicular to the rotational axis of said rotor and is axially spaced from said distributor plane, said rotor containing a radial receiving passage axially positioned within said supply plane and connected with said axial supply passage in said rotor.
- 114. The fuel pump assembly of claim 113, wherein said distributor housing contains a distributor housing drain port located at one end of said rotor bore for communication with a low pressure fuel drain, said rotor contains a first axial drain passage fluidically connected to said distributor housing drain port, said rotor further containing a first radial drain passage communicating with said axial drain passage.
- 115. The fuel pump assembly of claim 114, wherein said rotor is coupled to said drive shaft at the end of said rotor opposite said distributor housing drain port, said distributor housing having a seal recess surrounding the end of said rotor adjacent the drive shaft coupling, and wherein said distributor means further includes a fuel seal located within said seal recess.
- 116. The fuel pump assembly of claim 115, wherein said receiving ports are circumferentially spaced equal angularly around said rotor to maximize the space between said receiving ports.
- 117. The fuel pump assembly of claim 116, further including a supply groove contained in one of said rotor and said rotor bore, said supply groove being positioned in said supply plane to communicate at all times with said radial receiving passage of said rotor and said fuel feed line.
- 118. The fuel pump assembly of claim 113, wherein said injection control valve means is arranged to control the flow of fuel through said fuel feed line, said first solenoid injection control valve being a three way valve operable when energized to connect said axial supply passage of said rotor with said accumulator means and operable when de-energized to connect said axial supply passage of said rotor with a low pressure drain, wherein said distributor housing includes an elongated first valve cavity for receiving said first injection control valve.
- 119. The fuel pump assembly of claim 118, wherein said injection control valve means includes a second injection control valve mounted on said distributor housing and arranged to control the flow of fuel through the fuel feed line in parallel with said first injection control valve, said second solenoid injection control valve being a three way valve operable when energized to connect said axial supply passage of said rotor with said accumulator means and operable when de-energized to connect said axial supply passage of said rotor with a low pressure fuel drain, said distributor housing contains a second valve cavity having a central axis parallel to the central axis of said first valve cavity, said central axes residing within said supply plane containing said radial supply passage supplying fuel to said axial supply passage of said rotor, said first and second valve cavities being positioned on opposite sides of said rotor.
- 120. The fuel pump assembly of claim 119, wherein said first and second valve cavities are interconnected by a rotor feed bore having a central axis located in said supply plane, said feed port for said rotor cavity being fluidically connected with said rotor feed bore, said distributor means including a two way check valve located within said rotor feed bore to prevent fuel supplied from one said three way valve into said rotor feed bore to flow into the drain groove of the other three way valve.
- 121. A unitized, single piece fuel pump housing for a fuel pump assembly having a rotatable camshaft for causing a plurality of pump plungers to reciprocate in response to the reciprocating movement of a plurality of camshaft engaging tappets, comprising
- a pump housing containing a plurality of outwardly opening pump cavities and a radially enclosed cam shaft cavity communicating with said pump cavities, said cam shaft cavity adapted to receive a rotatable cam shaft,
- a pump head engaging surface formed on said pump body for precisely positioning a pump head to allow the outwardly opening pump cavities to be closed when a pump head is mounted on said pump body, and
- a plurality of tappet guiding surfaces within said pump cavities for guiding the tappets, said head engaging surface and said tappet guiding surfaces being machined to closer tolerances than the remainder of said pump cavities.
- 122. The fuel pump housing of claim 121, wherein said pump body is formed by metal casting procedures.
- 123. A high pressure fuel system for supplying fuel at a predetermined pressure through plural fuel injection lines to the corresponding cylinders of a multi-cylinder internal combustion engine, comprising:
- a fuel supply means for supplying fuel for delivery to the internal combustion engine, said fuel supply means including a fuel transfer circuit;
- a pump means for pressurizing fuel above the predetermined pressure;
- an accumulator means for accumulating and temporarily storing fuel at high pressure received from said pump means;
- a fuel distributor means fluidically connected with said accumulator means through said fuel transfer circuit for enabling sequential periodic fluidic communication with the engine cylinders through the corresponding fuel injection lines;
- a solenoid operated injection control valve positioned within said fuel transfer circuit between said accumulator means and said fuel distributor means for controlling the fuel injected into each engine cylinder during each of the sequential periods of communication enabled by said fuel distributor means to thereby define sequential injection events, said solenoid operated injection control valve movable between an open position permitting fuel flow from said accumulator means to said fuel distributor means and a closed position blocking fuel flow from said accumulator means to said fuel distributor means; and
- a rate shaping control means positioned within said fuel transfer circuit between said accumulator means and said fuel distributor means for producing a predetermined time varying change in the pressure of fuel during each injection event occurring sequentially at each engine cylinder to effect injection.
- 124. The high pressure fuel system of claim 123, wherein said rate shaping control means includes a flow limiting means positioned within said fuel transfer circuit between said accumulator means and said fuel distributor means for limiting the flow of fuel from said accumulator to said fuel distributor means during only a portion of each of said sequential injection events.
- 125. The high pressure fuel system of claim 124, wherein said rate shaping control means further includes a by-pass passage for directing fuel flow around said flow limiting means and a rate shaping by-pass valve positioned within said by-pass passage, said rate shaping by-pass valve movable into a closed position blocking fuel flow through said by-pass passage and an open position permitting flow through said by-pass passage.
- 126. The high pressure fuel system of claim 125, wherein said flow limiting means includes a fixed orifice having a constant cross-sectional flow area for restricting fuel flow through said fuel transfer circuit.
- 127. The high pressure fuel system of claim 125, wherein said flow limiting means includes a variable flow control valve movable between a first position permitting fuel to flow through said fuel transfer circuit at a first flow rate and a second position permitting fuel to flow through said fuel transfer circuit at a second flow rate.
- 128. The high pressure fuel system of claim 127, wherein said first flow rate occurs during a first portion of each said injection event and said second flow rate occurs during a second portion of each said injection event following said first portion, said first flow rate being greater than said second flow rate.
- 129. The high pressure fuel system of claim 128, wherein movement of said rate shaping by-pass valve to said open position permits fuel to flow through said fuel transfer circuit at a third flow rate, said third flow rate being greater than said second flow rate, said third flow rate occurring during a third portion of each injection event following said second portion.
- 130. The high pressure fuel system of claim 128, wherein said variable flow control valve includes a slidable piston having first and second ends, a central bore having an inner end and an outer end, said outer end opening to said first end of said slidable piston, said slidable piston including a plurality of orifices extending from said inner end of said central bore through said second end.
- 131. The high pressure fuel system of claim 130, wherein said variable flow control valve includes a biasing spring operatively connected to said slidable piston for biasing said slidable piston towards said first position.
- 132. The high pressure fuel system of claim 131, wherein said slidable piston is mounted within a cavity arranged to cause said slidable piston to move towards said second position whenever the upstream pressure exceeds the downstream pressure by a predetermined amount.
- 133. The high pressure fuel system of claim 123, wherein said rate shaping control means permits fuel pressure in a respective fuel injection line adjacent the respective engine cylinder to increase prior and during each said injection event at a first high rate followed by a low rate less than said first high rate followed by a second high rate.
- 134. The high pressure fuel system of claim 123, wherein said rate shaping control means includes a variable flow control valve movable between a first position effecting said first high pressure rate and a second position effecting said low pressure rate.
- 135. The high pressure fuel system of claim 123, wherein fuel from said accumulator means is capable of reaching a maximum unrestricted flow rate corresponding to a maximum pressure in each of said fuel injection lines adjacent the respective engine cylinder during said injection event, said fuel transfer circuit including a first passage extending between said accumulator means and said injection control valve, said injection rate control means including said first passage, said first passage having a predetermined length sufficient to cause a predetermined time delay between the movement of said solenoid operated injection control valve to the open position and the attainment of said maximum pressure.
- 136. The high pressure fuel system of claim 135, wherein movement of said solenoid operated injection control valve to said open position creates a pressure wave in said fuel transfer circuit, the pressure wave traveling from said solenoid operated injection control valve to an engine cylinder to define a wave traveling time period, wherein said predetermined length of said first passage is selected to provide a desired wave traveling time period.
- 137. The high pressure fuel system of claim 135, wherein said injection rate control means further includes a second passage positioned in parallel to said first passage for directing flow from said accumulator means to said injection control valve, and an orifice positioned in said second passage.
- 138. The high pressure fuel system of claim 137, wherein said rate shaping control means permits fuel pressure in one of said fuel injection lines adjacent a respective engine cylinder to increase during each said injection event at a first high rate followed by a low rate less than said first high rate followed by a second high rate, said orifice having an effective cross sectional flow area for slowing said first high rate and said low rate to desired levels.
- 139. The high pressure fuel system of claim 123, wherein said rate shaping control means is positioned with said fuel transfer circuit between said accumulator means and said solenoid operated injection control valve, further including a cavitation control means for minimizing cavitation in said fuel transfer circuit between said cavitation control means and the cylinders, said cavitation control means including a reverse flow restrictor valve positioned within said fuel transfer circuit between said injection control valve and said fuel distributor means for allowing for at least a predetermined time period substantially unimpeded forward flow of fuel toward each engine cylinder while substantially restricting reverse flow.
- 140. The high pressure fuel system of claim 123, further including a cavitation control means for minimizing cavitation in said fuel transfer circuit and the fuel injection lines between said injection control valve and the engine cylinders, said cavitation control means operable to maintain fuel in said fuel transfer circuit downstream of said fuel distributor means, said cavitation control means including an auxiliary fuel supply connected to said drain passage for supplying pressurized fuel at an auxiliary supply pressure to said fuel transfer circuit downstream of said injection control valve when said injection control valve is in said closed position, wherein said auxiliary supply pressure is high enough to minimize the effects of cavitation while low enough to cause no fuel injection.
- 141. The high pressure fuel system of claim 123, further including a drain passage for connection to said fuel transfer circuit, said injection control valve being operable to connect said fuel transfer circuit to said drain passage to define a draining event, further including a cavitation control means for minimizing cavitation in said fuel transfer circuit and the fuel injection lines between said injection control valve and the engine cylinders, said cavitation control means including a pressure regulating means positioned in said drain passage for maintaining fuel in said fuel transfer circuit downstream of said injection control valve and in the fuel injection lines at a regulated pressure during said draining event.
- 142. A high pressure fuel system for supplying fuel at a predetermined pressure through plural fuel injection lines to the corresponding cylinders of a multi-cylinder internal combustion engine, comprising:
- a fuel supply means for supplying fuel for delivery to the internal combustion engine, said fuel supply means including a fuel transfer circuit;
- a pump means for pressurizing fuel above the predetermined pressure, said pump means including plural pump chambers and plural pump plungers mounted for reciprocal movement in said pump chambers;
- a constant volume high pressure accumulator means for accumulating and temporarily storing fuel at high pressure received from said pump means;
- a fuel distributor means fluidically connected with said constant volume high pressure accumulator means through said fuel transfer circuit for enabling sequential periodic fluidic communication with the engine cylinders through the corresponding fuel injection lines;
- an injection control valve means for controlling the fuel injected into each engine cylinder during each of the sequential periods of communication enabled by said fuel distributor means to thereby define sequential injection events; and
- a rate shaping control means positioned within said fuel transfer circuit between said constant volume high pressure accumulator means and said fuel distributor means for producing a predetermined time varying change in the rate of fuel injected into each engine cylinder during said sequential injection events.
- 143. A high pressure fuel system for supplying fuel at a predetermined pressure through plural fuel injection lines to the corresponding cylinders of a multi-cylinder internal combustion engine, comprising:
- a fuel supply means for supplying fuel for delivery to the internal combustion engine, said fuel supply means including a fuel transfer circuit;
- a pump means for pressurizing fuel from said fuel supply means above the predetermined pressure;
- a fuel distributor means fluidically connected with said pump means through said fuel transfer circuit for enabling sequential periodic fluidic communication with the engine cylinders through the corresponding fuel injection lines;
- an injection control means for controlling the fuel injected into each engine cylinder during each of the sequential periods of communication enabled by said fuel distributor means to thereby define sequential injection events; and
- a rate shaping control means positioned within said fuel transfer circuit between said pump means and said fuel distributor means for producing a predetermined time varying change in the rate of fuel injected into each engine cylinder during said sequential injection events, wherein said rate shaping control means includes a flow limiting means positioned within said fuel transfer circuit between said pump means and said fuel distributor means for limiting the flow of fuel from said pump means to said fuel distributor means during each of said sequential injection events, a by-pass passage for directing fuel flow around said flow limiting means and a rate shaping by-pass valve positioned within said by-pass passage.
- 144. The high pressure fuel system of claim 143, wherein said rate shaping by-pass valve is movable into a closed position blocking fuel flow through said by-pass passage and an open position permitting flow through said by-pass passage.
- 145. The high pressure fuel system of claim 144, wherein said flow limiting means includes a fixed orifice having a constant cross-sectional flow area for restricting fuel flow through said fuel transfer circuit.
- 146. The high pressure fuel system of claim 144, wherein said flow limiting means includes a variable flow control valve movable between a first position permitting fuel to flow through said fuel transfer circuit at a first flow rate and a second position permitting fuel to flow through said fuel transfer circuit at a second flow rate.
- 147. The high pressure fuel system of claim 144, further including an accumulator means positioned along said fuel transfer circuit between said pump means and said injection control means for accumulating and temporarily storing fuel at high pressure received from said pump means.
- 148. The high pressure fuel system of claim 144, wherein said injection control means includes a three-way solenoid operated valve positioned along said fuel transfer circuit between said pump means and said distributor means, said rate shaping control means being positioned within said fuel transfer circuit between said three-way solenoid operated valve and said fuel distributor means.
- 149. A high pressure fuel system for supplying fuel at a predetermined pressure through plural fuel injection lines to the corresponding cylinders of a multi-cylinder internal combustion engine, comprising:
- a fuel supply means for supplying fuel for delivery to the internal combustion engine, said fuel supply means including a fuel transfer circuit;
- a pump means for pressurizing fuel above the predetermined pressure;
- an accumulator means for accumulating and temporarily storing fuel at high pressure received from said pump means;
- a fuel distributor means fluidically connected with said accumulator means through said fuel transfer circuit for enabling sequential periodic fluidic communication with the engine cylinders through the corresponding fuel injection lines;
- an solenoid operated injection control valve positioned within said fuel transfer circuit between said accumulator means and said fuel distributor means for controlling the fuel injected into each engine cylinder during each sequential periods of communication enabled by said fuel distributor means;
- a cavitation control means for minimizing cavitation in said fuel transfer circuit between said cavitation control means and the cylinders, said cavitation control means including a reverse flow restrictor valve positioned within said fuel transfer circuit between said injection control valve and said fuel distributor means for allowing substantially unimpeded forward flow of fuel toward each engine cylinder while substantially restricting reverse flow.
- 150. The high pressure fuel system of claim 149, further including a drain passage for connection to said fuel transfer circuit, wherein said solenoid operated injection control valve is movable between an open position allowing fuel flow from said accumulator means to said fuel distributor means and a closed position blocking flow from said accumulator means while fluidically connecting said drain passage to said fuel transfer circuit downstream of said solenoid operated injection control valve, said reverse flow restrictor valve being operable to permit substantially unrestricted fuel flow from said solenoid operated injection control valve to said fuel distributor when said solenoid operated injection control valve is in said open position and to restrict fuel flowing from said fuel distributor toward said solenoid operated injection control valve when said solenoid operated injection control valve is in said closed position.
- 151. The high pressure fuel system of claim 150, wherein said fuel distributor means includes a distributor housing and further including a injection control valve housing for housing said solenoid operated injection control valve, said injection control valve housing mounted in abutment with said distributor housing to form a cavity for receiving said reverse flow restrictor valve.
- 152. A high pressure fuel system for supplying fuel at a predetermined pressure through plural fuel injection lines to the corresponding cylinders of a multi-cylinder internal combustion engine, comprising:
- a fuel supply means for supplying fuel for delivery to the internal combustion engine, said fuel supply means including a fuel transfer circuit;
- a drain passage for connection to said fuel transfer circuit;
- a high pressure pump means for pressurizing fuel above the predetermined pressure;
- a fuel distributor means fluidically connected with said high pressure pump means through said fuel transfer circuit for enabling sequential periodic fluidic communication with the engine cylinders through the corresponding fuel injection lines;
- an injection control valve positioned within said fuel transfer circuit between said high pressure pump means and said fuel distributor means for controlling the fuel injected into each engine cylinder during each of the sequential periods of communication enabled by said fuel distributor means to thereby define sequential injection events, said injection control valve is movable between an open position allowing fuel flow from said high pressure pump means to said fuel distributor means and a closed position blocking flow from said high pressure pump means while fluidically connecting said drain passage to said fuel transfer circuit downstream of said injection control valve;
- a cavitation control means for minimizing cavitation in said fuel transfer circuit and the fuel injection lines between said injection control valve and the engine cylinders, said cavitation control means operable to maintain fuel in said fuel transfer circuit downstream of said fuel distributor means, said cavitation control means including an auxiliary fuel supply connected to said drain passage for supplying pressurized fuel at an auxiliary supply pressure to said fuel transfer circuit downstream of said injection control valve when said injection control valve is in said closed position, wherein said auxiliary supply pressure is high enough to minimize the effects of cavitation while low enough to cause no fuel injection.
- 153. The high pressure fuel system of claim 152, further including an accumulator means positioned along said fuel transfer circuit between said high pressure pump means and said injection control valve for accumulating and temporarily storing fuel at high pressure received from said high pressure pump means.
- 154. The high pressure fuel system of claim 149, wherein said fuel distributor means includes a distributor housing containing a rotor bore and a distributor rotor mounted for rotation in said rotor bore, said cavitation control means including a refill means for refilling the plural injection lines, said refill means including a boost pump means for supplying fuel at a boost pressure to said pump means, a boost pump outlet passage fluidically connecting said boost pump means to said pump means, and a refill port formed in said distributor rotor and continuously fluidically connected to said boost pump outlet passage, rotation of said distributor rotor causing said refill port to periodically fluidically connect said boost pump outlet passage to each of the plural injection lines so as to maintain fuel in the plural injection lines at boost pressure.
- 155. A high pressure fuel system for supplying fuel at a predetermined pressure through plural fuel injection lines to the corresponding cylinders of a multi-cylinder internal combustion engine, comprising:
- a fuel supply means for supplying fuel for delivery to the internal combustion engine, said fuel supply means including a fuel transfer circuit;
- a drain passage for connection to said fuel transfer circuit;
- a high pressure pump means for pressurizing fuel above the predetermined pressure;
- a fuel distributor means fluidically connected with said high pressure pump means through said fuel transfer circuit for enabling sequential periodic fluidic communication with the engine cylinders through the corresponding fuel injection lines;
- an injection control valve positioned within said fuel transfer circuit between said high pressure pump means and said fuel distributor means for controlling the fuel injected into each engine cylinder during each of the sequential periods of communication enabled by said fuel distributor means, wherein said injection control valve is movable between an open position allowing fuel flow to said fuel distributor means and a closed position blocking flow from said accumulator means while fluidically connecting said drain passage to said fuel transfer circuit downstream of said injection control valve, wherein movement of said injection control valve from said open position to said closed position and from said closed position to said open position defines a draining event and movement of said injection control valve from said closed position to said open position and from said open position to said closed position defines an injection event;
- a cavitation control means for minimizing cavitation in said fuel transfer circuit and the fuel injection lines between said injection control valve and the engine cylinders, said cavitation control means including a pressure regulating means positioned in said drain passage for maintaining fuel in said fuel transfer circuit downstream of said injection control valve and in the fuel injection lines at a regulated pressure during said draining event.
- 156. The high pressure fuel system of claim 155, further including an accumulator means positioned along said fuel transfer circuit between said high pressure pump means and said injection control valve for accumulating and temporarily storing fuel at high pressure received from said high pressure pump means.
- 157. The high pressure fuel system of claim 156, further including a refill passage fluidically connected at one end to said drain passage between said injection control valve and said pressure regulating means and at an opposite end to said fuel distributor means, wherein said fuel distributor means further functions to periodically fluidically connect said refill passage to the plural injection lines so as to maintain fuel in the plural injection lines at said regulated pressure.
- 158. The high pressure fuel system of claim 157, wherein said pressure regulating means includes a cylinder including a first end and a second end, a piston slidably mounted in said cylinder and a biasing means for biasing said piston toward said first end to force fuel into said refill passage.
- 159. The high pressure fuel system of claim 158, wherein said biasing means includes a coil spring positioned in abutment with said piston adjacent said second end of said cylinder.
- 160. The high pressure fuel system of claim 158, wherein said biasing means includes a supply of pressurized biasing fluid.
- 161. The high pressure fuel system of claim 160, wherein said supply of pressurized biasing fluid is accumulator fuel.
- 162. The high pressure fuel pump assembly of claim 1, wherein said fuel distributor means includes a plurality of injection line valves for controlling the flow of fuel to corresponding cylinders through corresponding fuel injection lines, each of said injection line valves including a slide valve element reciprocally mounted in said distributor housing.
- 163. The high pressure fuel pump assembly of claim 162, wherein said fuel distributor means further includes a distributor camshaft rotationally mounted in said distributor housing, said distributor camshaft including at least one cam for causing said distributor slide valve elements to reciprocate as said distributor camshaft is rotated, wherein said slide valves are mounted for reciprocal movement along axial lines, respectively, that are parallel to the rotational axis of said distributor camshaft.
- 164. The high pressure fuel pump assembly of claim 163, wherein each of said plurality of slide valve elements is movable into an open position to define a respective fuel injection period during which high pressure fuel may flow to the respective engine cylinder via the respective fuel injection line and a closed position blocking fuel flow through said respective fuel injection line, each of said plurality of injection line valves being of the spool-type including a land formed on said slide valve element for blocking fuel flow when said respective injection line valve is in said closed position.
- 165. The high pressure fuel pump assembly of claim 164, wherein said slide valve element includes a cylindrical portion having a first end and a second end, an annular groove formed in said cylindrical portion adjacent said land for permitting fuel to flow to the engine cylinders when said respective injection line valve is in said open position, further including a biasing means positioned adjacent said first end for biasing said second end into abutment with said at least one cam.
- 166. The high pressure fuel pump assembly of claim 11, further including a distributor housing mounted on said pump housing, said fuel distributor means including a plurality of injection line valves for controlling the flow of fuel to corresponding cylinders through corresponding fuel injection lines, each of said injection line valves including a slide valve element reciprocally mounted in said distributor housing.
- 167. The high pressure fuel pump assembly of claim 166, wherein said fuel distributor means further includes a distributor camshaft rotationally mounted in said distributor housing, said distributor camshaft including at least one cam for causing said distributor slide valve elements to reciprocate as said distributor camshaft is rotated.
- 168. The high pressure fuel pump assembly of claim 167, wherein each of said plurality of slide valve elements is movable into an open position to define a respective fuel injection period during which high pressure fuel may flow to the respective engine cylinder via the respective fuel injection line and a closed position blocking fuel flow through said respective fuel injection line, each of said plurality of injection line valves being of the spool-type including a land formed on said slide valve element for blocking fuel flow when said respective injection line valve is in said closed position.
- 169. The high pressure fuel pump assembly of claim 168, wherein said slide valve element includes a cylindrical portion having a first end and a second end, an annular groove formed in said cylindrical portion adjacent said land for permitting fuel to flow to the engine cylinders when said respective injection line valve is in said open position, further including a biasing means positioned adjacent said first end for biasing said second end into abutment with said at least one cam.
- 170. The fuel pump assembly of claim 82, wherein said pump head forms at least a partial end wall for said pump chamber, said pump chamber being positioned immediately adjacent said pump head.
- 171. The fuel pump assembly of claim 82, wherein said pump barrel is a one piece structure including an inner end positioned in abutment with said pump head.
- 172. The fuel pump assembly of claim 171, wherein said pump barrel includes a pump inlet passage adapted to communicate with a source of fuel for feeding fuel into said pump chamber and a pump outlet passage through which fuel may be discharged from said pump chamber and wherein said pump unit includes a pump unit check valve mounted at least partially within said pump outlet passage for permitting only one way flow of fuel from said pump chamber through said pump outlet passage, said pump unit check valve including a check valve seat formed on said pump barrel.
- 173. The fuel pump assembly of claim 170, wherein said pump head includes a pump inlet passage adapted to communicate with a source of fuel for feeding fuel into said pump chamber and a pump outlet passage through which fuel may be discharged from said pump chamber and further including a pump unit check valve mounted within said pump outlet passage for permitting only one way flow of fuel from said pump chamber through said pump unit outlet passage, said pump unit check valve including a check valve seat formed on said pump head.
- 174. The fuel pump assembly of claim 82, wherein said pump head includes a delivery passage for receiving high pressure fuel from said pumping chamber, said pump barrel including an inner end positioned in abutment with said pump head to form a high pressure joint exposed to high pressure fuel delivered from said pump chamber to said delivery passage, said high pressure joint being the only joint positioned between said pumping chamber and said delivery passage exposed to high pressure fuel.
- 175. The fuel pump assembly of claim 83, further including a plurality of pump unit control valves associated with said pump chambers, respectively, for controlling the amount of high pressure fuel pumped out of the corresponding pump chamber by a corresponding pump plunger, and a valve cavity formed in each of said pump barrels, each of said plurality of pump unit control valves including a control valve element mounted for reciprocal movement in a respective valve cavity.
- 176. The fuel pump assembly of claim 175, wherein each of said plurality of pump unit control valves includes an annular valve seat formed on the corresponding pump barrel in said valve cavity.
- 177. The fuel pump assembly of claim 176, wherein each said pump chamber extends through the corresponding pump barrel along a radial pump axis and opens into the corresponding valve cavity, said valve cavity extending diametrically through said pump barrel substantially perpendicular to said radial pump axis.
- 178. The fuel pump assembly of claim 177, wherein each said replaceable pump unit includes a pump unit inlet communicating with a source of fuel for feeding fuel into said pump chamber and a pump unit outlet, wherein said pump unit includes a pump unit check valve for permitting only one way flow of fuel from the pump chamber through said pump unit outlet, said control valve element positioned along said radial pump axis between said pump chamber and said pump unit check valve.
- 179. The fuel pump assembly of claim 178, wherein said control valve element is movable between an open position permitting fuel flow from the corresponding pump chamber and a closed position blocking fuel flow from said pump chamber through said pump unit outlet, said control valve element being pressure balanced in the closed position.
- 180. The fuel pump assembly of claim 82, further including an accumulator means containing at least one accumulator chamber for accumulating and temporarily storing fuel at high pressure received from said pump chamber, wherein said accumulator means includes an accumulator housing and at least one accumulator chamber formed in said accumulator housing, said accumulator housing being positioned a spaced distance from said pump head.
- 181. A fuel pump assembly, comprising
- a pump housing containing an outwardly opening pump cavity,
- a pump head mountable on the pump housing to close the outwardly opening pump cavity, said pump head containing a pump unit recess positioned to communicate with the pump cavity,
- a pump unit mounted within said pump unit recess, said pump unit including a pump barrel containing a pump chamber and a pump plunger adapted to be mounted for reciprocal movement within said pump chamber, said pump barrel containing a valve cavity, and
- a variable displacement pump control valve means mounted in said valve cavity for varying the effective displacement of said pump unit in response to a variable displacement control signal.
- 182. The fuel pump assembly of claim 181, wherein said pump housing includes a plurality of said outwardly opening pump cavities, said pump head containing a plurality of said pump unit recesses positioned to communicate with said pump cavities, respectively, and further including a plurality of said pump units, each said pump unit including a pump barrel containing a pump chamber, a pump plunger mounted for reciprocation within said pump chamber when said drive shaft rotates and a retaining means for mounting said pump unit within a corresponding said pump unit recess of said pump head in a position to extend at least partially into said pump cavity in spaced apart non-contacting relationship with said pump housing.
- 183. The fuel pump assembly of claim 182, wherein said drive shaft includes a plurality of cams for causing said pump plungers to reciprocate, and further including a plurality of tappet assemblies associated with said pump units, respectively, each said tappet assembly being mounted for reciprocal movement within a corresponding pump cavity and being connected with a corresponding pump plunger, and a plurality of tappet bias springs for biasing said tappet assemblies into engagement with said cams, respectively, to cause said tappet assemblies and the connected pump plungers to reciprocate as said drive shaft is rotated.
- 184. The fuel pump assembly of claim 183, wherein said pump housing is an integral single piece structure including a head engaging surface for precisely positioning said pump head and tappet guiding surfaces within said pump cavities for guiding said tappets, respectively, said pump housing further including a radially enclosed drive shaft cavity having substantial radial openings only through said pump cavities, said pump housing including drive shaft support surfaces for precisely supporting said drive shaft, said pump housing requiring close tolerance machining of only said head engaging surface, said tappet guiding surfaces and said drive shaft support surfaces to provide suitable alignment of said pump chambers with respect to said tappets and said drive shaft.
- 185. A fuel pump assembly, comprising
- a pump housing containing an outwardly opening pump cavity,
- a pump head mountable on the pump housing to close the outwardly opening pump cavity, said pump head containing a pump unit recess positioned to communicate with the pump cavity and a valve cavity having a central axis aligned with a central axis of said pump unit recess,
- a pump unit mounted within said pump unit recess, said pump unit including a pump barrel containing a pump chamber and a pump plunger adapted to be mounted for reciprocal movement within said pump chamber, and
- a variable displacement control valve means mounted in said valve cavity for varying the effective displacement of said pump unit in response to a variable displacement control signal.
- 186. The fuel pump assembly of claim 83, further including a plurality of pump unit control valves associated with said pump chambers, respectively, for controlling the effective displacement of each said associated pump plunger, said pump head including a first side for engaging said pump housing and a second side formed opposite said first side, said plurality of pump unit control valves mounted on said second side of said pump head directly opposite corresponding pump unit recesses.
- 187. A fuel pump assembly for supplying fuel to a multi-cylinder engine above a predetermined high pressure, comprising:
- a pump housing containing an outwardly opening pump cavity,
- a drive shaft rotatably mounted in the pump housing,
- a single piece, integral pump head mountable on said pump housing to close said outwardly opening pump cavity, said integral pump head containing a pump chamber and at least one accumulator chamber for temporarily storing fuel under pressure received from said pump chamber;
- a pump plunger adapted to be mounted for reciprocal movement within said pump chamber in response to rotation of said drive shaft; and
- distributor means for sequentially distributing fuel to said engine cylinders from said at least one accumulator chamber.
- 188. The fuel pump assembly of claim 187, wherein said pump head includes an integral pump barrel surrounding said pump chamber and extending into said outwardly opening pump cavity.
- 189. The fuel pump assembly of claim 188, wherein said pump housing includes a plurality of said outwardly opening pump cavities, said pump head containing a plurality of said integrally formed pump barrels, each of said integrally formed pump barrels containing a pump chamber, and further including a plurality of pump plungers mounted for reciprocation within said pump chambers, respectively, when said drive shaft rotates.
- 190. The fuel pump assembly of claim 189, wherein said drive shaft includes a plurality of cams for causing said pump plungers to reciprocate.
- 191. The fuel pump assembly of claim 190, further including a plurality of tappet assemblies associated with said pump units, respectively, each said tappet assembly being mounted for reciprocal movement within a corresponding pump cavity and being connected with a corresponding pump plunger, and a plurality of tappet bias springs for biasing said tappet assemblies into engagement with said cams, respectively, to cause said tappet assemblies and the connected pump plungers to reciprocate as said drive shaft is rotated.
- 192. The fuel pump assembly of claim 191, wherein said pump head includes a plurality of annular spring recesses formed around said integrally formed pump barrels for receiving a corresponding tappet bias spring.
Parent Case Info
This application is a continuation-in-part application of the following U.S. patent applications: Ser. No. 057,489 filed May 6, 1993, now abandoned; and Ser. No. 117,697, filed Sep. 8, 1993, now U.S. Pat. No. 5,353,766.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
102e Date |
371c Date |
PCT/US94/05108 |
5/6/1994 |
|
|
6/16/1995 |
6/16/1995 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO94/27041 |
11/24/1994 |
|
|
US Referenced Citations (78)
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JPX |
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JPX |
Non-Patent Literature Citations (4)
Entry |
SAE Technical Paper Series No. 911819 Entitled Electronically Controlled High Pressure Unit Injector System for Diesel Engines, Pierre Lauvin, Alf Loffler, Alfred Schmitt, Werner Zimmerman and Walter Fuchs. |
SAE Technical Paper No. 910252 Entitled Development of New Electronically Controlled Fuel Injection System ECD-U2 for Diesel Engines, Masahiko Miyaki, Hideya Fujisawa, Yoshihisa Yamamoto. |
PLD Fuel System by Bosch, (single sheet) Fig. 41, attachment 2. |
Patent Abstracts of Japan, vol. 7, No. 9, Japanese Publication No. JP57168051, Oct. 16, 1982. |
Related Publications (1)
|
Number |
Date |
Country |
|
117697 |
Sep 1993 |
|
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
057489 |
May 1993 |
|