Fuel feed for motor-driven high pressure fuel pump
12454930 ยท 2025-10-28
Assignee
Inventors
- Srinu Gunturu (Jacksonville, NC, US)
- Michael Hornby (Emerald Isle, NC, US)
- Donald Holder (Hubert, NC, US)
- Clark Klyza (Jacksonville, NC, US)
- James Bennardi (Whitmore Lake, MI, US)
Cpc classification
F02M37/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M51/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2003/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M53/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M63/0001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/442
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M37/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M51/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M53/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M63/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electric GDI pump is configured to allow fuel being pumped to cool the electric motor and associated motor control/drive circuit, and cool and lubricate a drive region of a high-pressure pump before passing through an inlet check valve of the high-pressure pump. The rotational speed of an electric GDI pump is de-coupled from the rotational speed of the internal combustion engine. In such a fuel supply system, the quantity of fuel pressurized can be regulated by changing the rotational speed of the electric GDI pump. According to aspects of the disclosure an electric GDI pump is driven by a variable speed direct current motor having a motor housing with a fuel inlet and a motor drive shaft connected to a rotor. The electric GDI pump may incorporate a low-pressure pump driven by one end of the drive shaft and an eccentric drive driven by an opposite end of the drive shaft.
Claims
1. A high-pressure fuel pump comprising: a variable speed direct current motor having a motor housing (20) with a fuel inlet (38) at a motor housing first end, and a shaft (26) extending from a motor housing second end axially opposite said motor housing first end; a pump drive housing (44) secured to the motor housing (20) second end by a sealed connection and defining a drive chamber (67); an eccentric drive (28) in said drive chamber (67) and coupled to the shaft (26) to convert rotation of the shaft (26) into reciprocating motion; a plunger (30) reciprocated by the eccentric drive (28) in a plunger bore (31) so that a pumping end (63) of the plunger (30) moves into and away from a pumping chamber (33); a pump body (54) secured to the pump drive housing (44) and at least partially defining the pumping chamber (33), said pump body (54) defining an inlet opening (41) between the drive chamber (67) and a pump inlet (40); a pumping sleeve (78) defining the plunger bore (31); a sleeve retainer (81) surrounding said pumping sleeve (78) and secured to said pump body (54) and extending into the drive chamber (67) wherein the sleeve retainer (81) defines at least one fuel flow opening (83) fluidly connecting the drive chamber (67) to the inlet opening (41); a resilient load ring (82) arranged within said sleeve retainer (81) to bias an upper end (77) of the pumping sleeve (78) against a sealing surface (75) on said pump body (54) surrounding the pumping chamber (33); an inlet check valve (47) in the pump inlet (40) and arranged to open as the plunger (30) moves away from the pumping chamber (33) to draw fuel into the pumping chamber (33) and close when the plunger (30) is moving into the pumping chamber (33) to compress fuel in the pumping chamber (33), fuel passing through the inlet check valve (47) passing through the inlet opening (41) from the drive chamber (67); an outlet check valve (50) arranged to close when the plunger (30) moves away from the pumping chamber (33) and open when the plunger (30) moves into the pumping chamber (33) and pressure downstream of the outlet check valve (50) is less than a pressure in the pumping chamber (33); a high-pressure outlet (84) connected to the pump body (54) to receive pressurized fuel passing through said outlet check valve (50), wherein fuel flows into the fuel inlet (38), through the variable speed direct current motor into the pump drive housing (44) and from the pump drive housing (44) through the inlet opening (41) to the pump inlet (40), said fuel cooling the variable speed direct current motor and cooling and lubricating the eccentric drive (28) before entering the pumping chamber (33).
2. The high-pressure fuel pump of claim 1, comprising a filter (88) arranged in said inlet opening (41).
3. The high-pressure fuel pump of claim 1, wherein said sleeve retainer (81) supports a plunger seal (86) at a lower end of the plunger sleeve (78).
4. The high-pressure fuel pump of claim 1, comprising a damper chamber (56) connected to the pump body (54) and fluidly connected to the pump inlet (40), and at least one gas-filled metal damper (58) arranged in said damper chamber (56).
5. The high-pressure fuel pump of claim 1, wherein the quantity of fuel pressurized by the pump (24) is varied by altering a rotational speed of the variable speed direct current motor.
6. The high-pressure fuel pump of claim 1, wherein said variable speed direct current motor is a brushless direct current motor (22).
7. A fuel delivery system for an internal combustion engine, the fuel delivery system (10) comprising: a high-pressure fuel pump (24) of claim 1, and a low-pressure fuel pump (16) connected to draw fuel from a fuel tank (14) and deliver fuel to the pump inlet (40).
8. A high-pressure fuel pump comprising: a variable speed direct current motor (22) having a motor housing (20) with a first end and a second end, with a fuel inlet (38) located at said first end, and a drive shaft (26) at said second end; a pump drive housing (44) having a sealed connection to the motor housing (20), said drive housing (44) defining a drive chamber (67); an eccentric drive (28) in the drive chamber (67) and coupled to the drive shaft (26), the eccentric drive (28) comprising: a drive follower (66) defining a recess including a female thread; a plunger-retaining insert (72) including a male thread that mates with the drive follower (66) female thread, said plunger-retaining insert (72) including a radially inward projecting shoulder having an inner limit; and a thrust washer (74) beneath the inward projecting shoulder and extending radially inward of the inner limit; a pumping plunger (30) with a driven end (62) connected to the eccentric drive (28) to convert rotation of the drive shaft (26) into reciprocating motion of the pumping plunger (30) in a plunger bore (31) that alternately expands and restricts the volume of a pumping chamber (33) by a pumping end (63) of the pumping plunger (30) moving into and away from the pumping chamber (33), the driven end (62) of the pumping plunger (30) includes a radially outward projecting flange (64) permanently secured to the driven end (62) of the pumping plunger (30), said flange (64) retained within the recess defined by the drive follower (66) by the thrust washer (74), which spans a radial gap between the inner limit of the inward projecting shoulder and an outer limit of the radially outward projecting flange (64); a pump body (54) having a sealed connection to the pump drive housing (44) and partially defining the pumping chamber (33); an inlet opening (41) fluidly connecting the drive chamber (67) to a pump inlet (40); an inlet check valve (47) located within the pump inlet (40) that opens as the pumping plunger (30) moves away from the pumping chamber (33) to draw fuel into the pumping chamber (33), and closes as the pumping plunger (30) moves into the pumping chamber (33) to compress fuel in the pumping chamber (33) enabling fuel to pass through the inlet check valve (47) after passing through the inlet opening (41) from the drive chamber (67); an outlet check valve (50) that closes as the pumping plunger (30) moves away from the pumping chamber (33), and opens as the pumping plunger (30) moves into the pumping chamber (33) when fuel pressure in the pumping chamber (33) exceeds fuel pressure in the fuel system downstream of the outlet check valve (50); wherein fuel flows from the fuel inlet (38) through the motor housing (20), the drive chamber (67) and the inlet opening (41) to the pumping chamber (33).
9. The high-pressure fuel pump of claim 8, comprising a filter (88) arranged between the drive chamber (67) and the pump inlet (40).
10. The high-pressure fuel pump of claim 9, further comprising the filter (88) arranged within said inlet opening (41).
11. The high-pressure fuel pump of claim 8, comprising a plunger sleeve (78) defining the plunger bore (31), a sleeve retainer (81) surrounding said plunger sleeve (78), secured to said pump body (54) and extending into the drive chamber (67), a resilient load ring (82) arranged within said sleeve retainer (81) to bias an upper end (77) of the plunger sleeve (78) against a sealing surface (75) on said pump body (54) surrounding the pumping chamber (33).
12. The high-pressure fuel pump of claim 11, wherein the sleeve retainer (81) defines at least one fuel flow opening (83) fluidly connecting the drive chamber (67) to the inlet opening (41).
13. The high-pressure fuel pump of claim 11, wherein said sleeve retainer (81) supports a plunger seal (86) at a lower end (79) of the plunger sleeve (78).
14. The high-pressure fuel pump of claim 8, comprising a damper chamber (56) connected to the pump body (54) and fluidly connected to the pump inlet (40), and at least one gas-filled metal damper (58) arranged in said damper chamber (56).
15. The high-pressure fuel pump of claim 8, wherein the quantity of fuel pressurized by the pump (24) is varied by altering a rotational speed of the variable speed direct current motor.
16. The high-pressure fuel pump of claim 8, wherein said variable speed direct current motor is a brushless direct current motor (22).
17. The high-pressure fuel pump of claim 8, wherein the plunger-retaining insert (72) includes an axially extending rim (76) that defines an installed position of the insert (72) relative to the drive follower (66) and determines the axial position of the thrust washer (74) within the drive follower (66), said thrust washer (74) biases the driven end (62) of the plunger (30) against the drive follower (66).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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(9) One example of an electric motor 22 suitable for driving a high-pressure fuel pump is a brushless direct current (BLDC) motor. The BLDC motor-driven high pressure fuel pump may be configured to operate in a 48 volt, direct current (DC) vehicle electrical system, but other electrical systems may be used. BLDC motors are very durable and can be controlled with a high degree of precision in terms of torque and rotational speed. BLDC motors have a stator composed of groups of coils and a rotor with permanent magnets of alternating polarity. A control circuit 37 applies electrical power to groups of stator coils to generate a rotating magnetic field that acts on the permanent magnets on them rotor to generate torque, as is known in the art. The control circuit 37 is configured to detect the rotational position and speed of the rotor, which allows precise control of the rotational speed and torque of the motor. The control circuit 37 of the BLDC motor is typically incorporated into the BLDC motor where electrical power enters the motor housing 20. The control circuit 37 of the BLDC motor cooperates with an engine control unit (ECU) 36 to coordinate production of pressurized fuel with demand from the associated internal combustion engine. A pressure sensor 34 may be arranged to detect fuel pressure in a common rail 32 of a DI system and this fuel pressure may be one variable employed by the ECU 36 to control the BLDC motor 22. Use of an electric motor 22 to drive a high-pressure fuel pump 24 de-couples the rotational speed of the pump relative to the rotational speed of an associated internal combustion engine. Rotational speed of the electric motor 22 can be used to regulate the quantity of fuel pressurized by the high-pressure fuel pump 24, eliminating the need for complicated solenoid-operated inlet (quantity) control valves. Disclosed embodiments of a high-pressure fuel pump 24 use passive inlet and outlet check valves 47, 50 to control movement of fuel through the pump 24, with the inlet check valve 47 opening during a charging stroke of the pump where the plunger 30 is withdrawn from a pumping chamber 33 and the outlet check valve 50 opening during a pumping stroke where the plunger 30 is advanced toward the pumping chamber 33. An electric motor driven high-pressure fuel pump according to aspects of the disclosure may also eliminate the need to incorporate a pressure relief valve into the pump by permitting greater control over the quantity of fuel pressurized by the high-pressure fuel pump 24, regardless of engine operating conditions (rotational speed, load, etc.).
(10) Many forms of eccentric drive are compatible with the disclosed electric motor driven high-pressure fuel pump 12. In one embodiment, a cam is mounted to a drive shaft of the motor, where the cam has one or more lobes eccentric to the axis of rotation of the drive shaft, and a cam follower 66 is arranged to be moved by the cam in a reciprocating linear motion. A pumping plunger 30 connected to the cam follower 66 reciprocates in a plunger bore 31 to increase and decrease the volume of a pumping chamber 33 at one end of the pumping bore 31. One eccentric drive mechanism for an electric motor driven high pressure fuel pump is disclosed in commonly owned U.S. Pat. No. 10,975,816, entitled Roller Drive Mechanism for GDI Pump. Eccentric drive mechanisms for most known high-pressure fuel pumps are configured to be driven by an engine shaft, and so may be configured to operate at relatively low rotational speeds. According to aspects of the disclosure, an electric motor driven high-pressure fuel pump will operate at rotational speeds potentially much higher than the engine rotational speed and so may need to be modified to work efficiently and quietly at higher rotational speeds.
(11) Heat is generated by power components of the BLDC control circuit 37 and by electrical power applied to stator coils of the motor 22. Fuel is circulated through the motor housing 20 and past the control circuit 37 to absorb heat and cool the motor 22 and control circuit 37. Friction in the eccentric drive 28 and between plunger 30 and bore 31 of the high-pressure pump 24 also generate heat, so fuel is circulated through the drive housing 44 and around components of the high-pressure fuel pump 24 for cooling and lubrication.
(12) According to aspects of the disclosure, embodiments of a disclosed electric motor driven high-pressure fuel pump (hereafter, electric GDI pump) 12 include a sealed motor housing 20 which includes a fuel inlet 38 arranged so that fuel being pumped is circulated around and/or through the electric motor 22 to cool the motor control/drive circuit 37. In the electric GDI pump 12 embodiment of
(13) Embodiments of an electric GDI pump 12 may incorporate a low-pressure pump 46 driven by the same electric motor that rotates the eccentric drive mechanism 28. In this arrangement, the low-pressure pump 46 may be a gear pump arranged to draw fuel from a fuel tank 14 and pressurize the fuel to a pressure of 3-6 bar and feed fuel at low-pressure to the pump inlet 40 of the high-pressure pump 24. A pump including both the low-pressure and high-pressure fuel pumps 46, 24 may be mounted below the fuel tank so that fuel is fed to the inlet 38 of the low-pressure pump 46 by gravity.
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(16) The driven end 62 of the pumping plunger 30 includes a radially projecting flange 64 permanently secured to the plunger 30 by a press-fit or other known connection. A pumping end 63 of the pumping plunger 30 projects into the pumping chamber 33. As shown in
(17) The high-pressure fuel pump 24 shown in
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(19) Fuel flow through the drive housing 44 and high-pressure pump 24 is shown in
(20) In the electric GDI pump of