Automotive fuel pump
10006423 ยท 2018-06-26
Assignee
Inventors
Cpc classification
F02M59/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/315
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/466
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/1032
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M63/0054
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/1002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M63/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B11/0016
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/462
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/367
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M59/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An automotive fuel pump having a body with an inlet, an outlet, and an elongated chamber therebetween. A relief valve, relief valve housing, and check valve are respectively disposed in the chamber between the inlet and the outlet. The relief valve housing has a portion which extends across the chamber so that a first axial end of the relief valve housing forms a valve seat for the check valve while the other axial end forms a valve seat for the relief valve. The check valve permits fluid flow from the body chamber to the outlet while the relief valve exhausts excess fluid pressure at the outlet back into the body chamber.
Claims
1. A pump comprising: a body having an inlet, an outlet and a chamber between the inlet and the outlet; a relief valve, a relief valve housing and a check valve respectively disposed in the chamber between the inlet and the outlet, the relief valve housing having a portion extending across the chamber, a first axial side of the relief valve housing portion forming a valve seat for the check valve and a second axial side of the relief valve housing portion forming a valve seat for the relief valve; said check valve movable between an open position to enable fluid flow from the chamber into the outlet and a closed position; a first spring which urges the check valve towards the closed position, the relief valve movable between an open position to enable fluid flow from the outlet into the chamber and a closed position; a second spring which urges the relief valve towards the closed position; a pump member which supplies pressurized fuel from the inlet to the outlet; and a pressure dampener disposed around the pump member within a fluid flow path within the chamber, the pressure dampener having an outer shell sealed to an inner shell forming an annular chamber around the pump member, the pressure dampener being expandable and contractible in at least a radial direction to absorb pressure pulsations within the chamber.
2. The pump as defined in claim 1 wherein the first and second springs respectively urge the check valve and the relief valve in opposite axial directions toward the relief valve housing portion.
3. The pump as defined in claim 1 wherein the relief valve housing portion includes a port which registers with a port in the check valve.
4. The pump as defined in claim 1 wherein the pump member comprises a cylinder and a reciprocating piston within the cylinder.
5. The pump as defined in claim 4 further comprising: an inlet valve movable between an open position to establish fluid communication from a source of fuel to the chamber and a closed position; and a solenoid which actuates the inlet valve between the open and the closed position in synchronism with reciprocation of the piston.
6. The pump as defined in claim 5 wherein: the piston is reciprocally mounted in the cylinder; the cylinder is attached to the body, and an end of the cylinder forms a seat for the inlet valve.
7. The pump as defined in claim 1 wherein the pressure dampener is disposed in an inlet chamber portion of the chamber surrounding a cylinder of the pump member.
8. The pump as defined in claim 1 wherein the annular chamber of the pressure dampener includes an elongated annular chamber filled with a compressible material.
9. The pump as defined in claim 8 wherein: the compressible material comprises a gas; and the outer shell comprises a flexible sheet material.
10. The pump as defined in claim 1 wherein the pressure dampener includes at least one outwardly protruding rib protruding outward from the outer shell sufficiently far into a fluid flow path within the chamber to create turbulence within the fluid flow path.
11. The pump as defined in claim 10 wherein the at least one outwardly protruding rib is arranged in a helical pattern around the outer shell of the dampener.
12. The pump as defined in claim 1 wherein the pressure dampener is annular in shape.
13. The pump as defined in claim 12 wherein: the inlet extends radially with respect to the chamber; and the pressure dampener is aligned with the inlet.
14. The pump as defined in claim 4 wherein the pressure dampener is disposed around and is mounted on the cylinder.
15. A fuel pump comprising: an elongated body having a chamber, an inlet to the chamber, and an outlet from the chamber; a cylinder having an inlet valve seat which extends across the chamber between the inlet and the outlet, the inlet valve seat having at least one through passageway; an inlet valve movable between an open position to permit fluid flow through the through passageway and a closed position to stop fluid flow through the through passageway; a solenoid coil disposed around the housing adjacent the inlet valve which, upon energization, moves the inlet valve from one of the open and closed positions to the other of the open and closed positions; and a pressure dampener disposed around the cylinder within a fluid flow path within the chamber, the pressure dampener having an outer shell forming an annular chamber that extends around the cylinder, the pressure damper being expandable and contractible in at least a radial direction to absorb pressure pulsations within the chamber.
16. The fuel pump as defined in claim 15 further comprising a spring which urges the inlet valve from one of the open and closed positions to the other of the open and closed positions.
17. The fuel pump as defined in claim 15 wherein: the inlet valve is attached to an anchor made of a magnetic material; and the solenoid coil is radially aligned with the anchor.
18. The fuel pump as defined in claim 17 wherein the body comprises a lower body part, an upper body part and a non-magnetic flux separator positioned between the upper and lower body parts, the flux separator positioned in radial alignment with the solenoid coil so that the flux separator directs magnetic flux from the solenoid coil through the anchor.
19. A fuel pump comprising: a pump housing including a chamber with an inlet and an outlet; a cylinder within the chamber; a piston reciprocally movable in the cylinder for pumping fluid from the inlet to the outlet; and a pressure dampener disposed around the cylinder within a fluid flow path within the chamber, the pressure dampener including: an inner cylindrical shell disposed around the cylinder, an outer annular shell sealed to the inner shell and forming a closed annular chamber between the inner shell and the outer shell, and at least one rib protruding outward from the outer shell sufficiently far into a fluid flow path within the chamber to create turbulence within the fluid flow path, wherein the pressure dampener is expandable and contractible in at least a radial direction to absorb pressure pulsations within the chamber.
20. The fuel pump as defined in claim 19 wherein the outer shell is constructed from a flexible sheet having a plurality of the ribs protruding outwardly from the outer shell in a helical configuration.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) A better understanding of the present invention will be had upon reference to the following detailed description when read in conjunction with the accompanying drawing, wherein like reference characters refer to like parts throughout the several views, and in which:
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DETAILED DESCRIPTION OF A PREFERRED EMBODIMENT OF THE INVENTION
(12) With reference first to
(13) Consequently, the fuel system 20 includes a fuel pump 22 with a fuel inlet 24 fluidly connected by a fuel supply line 26 to a fuel source, such as a fuel tank 27. A fuel pump outlet 28 is then fluidly connected to one or more fuel rails 30 which contain pressurized fuel during the operation of the fuel system 20. Fuel injectors 32, such as a direct injection fuel injector, are then fluidly connected to the rails 30.
(14) In order to supply pressurized fuel to the fuel rails 30, the fuel pump 22 includes a plunger 34 which is reciprocally driven by a cam 36 to create the pressurized fuel for the fuel rails 30.
(15) With reference now to
(16) With reference now to
(17) With reference now to
(18) With reference now particularly to
(19) With reference now to
(20) With reference then to
(21) With reference again to
(22) The cylinder 80 includes an axial throughbore 86 in which the elongated plunger 34 is axially slidably mounted. This plunger 34 is then reciprocally axially driven by the cam 36 against the force of a plunger spring 90.
(23) With reference now particularly to
(24) In order to actuate the valve, a solenoid coil 100 is disposed annularly around the pump body 40 and so that the magnetic coil 100 is preferably generally radially aligned with a portion of the valve anchor 96.
(25) The housing 40 preferably includes an upper housing part 102 containing the check valve and relief valve assemblies and a lower housing part 104 which contains the plunger 34 and pump inlet 24. Both housing parts 102 and 104 are constructed of a magnetic material. However, a flux separator 106, constructed of a non-magnetic material, is disposed in between and connects the upper housing part 102 to the lower housing part 104. This flux separator 106, together with housing yokes 108 and 110 on opposite axial ends of the solenoid coil 100, channel the magnetic flux from the solenoid coil 100 around the flux separator 106 and through the valve anchor 96 to effectively and efficiently magnetically couple the solenoid coil 100 to the inlet valve 92.
(26) During the operation of the inlet valve 92, the opening and closure of the inlet valve by the solenoid coil 100 is timed with the reciprocation of the plunger 34 in the cylinder 80. Specifically, as shown in
(27) With reference to
(28) With reference to
(29) The reciprocation of the plunger 34 in the pump body 22 can cause unwanted pressure pulsations within the overall fuel system. These pressure pulsations can, in turn, cause fatigue and unwanted noise, especially at low engine speeds.
(30) With reference then to
(31) At least one of the shells 118 and 120 includes a plurality of helical ribs 124. These helical ribs 124 serve two purposes. First, they permit the shells to expand and contract in both a radial as well as a longitudinal direction to absorb the pressure pulsations in the fuel system. Secondly, the helical ribs 124 create turbulence within the inlet chamber 84 and wash away any contaminates that may have entered the fuel pump.
(32) From the foregoing, it can be seen that the present invention provides a fuel pump which is particularly suitable for a direct injection internal combustion engine which achieves several advantages. First, since the fuel flow through the fuel pump is essentially a straight line from the inlet chamber and to the fuel pump outlet, the possibility of contaminates within the fuel flow system becoming entrapped within the fuel pump is minimized. This, in turn, results in higher reliability and durability for the fuel pump.
(33) Applicant's use of a single relief valve body 52 to form the valve seat for both the check valve 54 as well as the relief valve 50 reduces the number of components for the overall pump thus increasing reliability. Similarly, the provision of the cylinder 80 which forms both the valve seat for the inlet valve 92 as well as the support for the pump plunger also minimizes the number of components within the fuel pump.
(34) Applicant's construction of the inlet valve assembly with the solenoid coil 100 which annularly surrounds the valve and is directly magnetically coupled to the valve also not only simplifies the overall construction of the fuel pump, but also achieves efficient and effective opening and closing of the inlet valve.
(35) The pressure dampener also provides two separate functions, namely the dampening of the pressure pulsations in the pump as well as creating turbulence in the fuel flow to clear out contaminates. This, in turn, reduces pump failures which may otherwise occur through such contaminates in the fuel.
(36) Having described my invention, many modifications thereto will become apparent to those skilled in the art to which it pertains without deviation from the spirit of the invention as defined by the scope of the appended claims.