High-pressure fuel pump and method for producing same
10584668 ยท 2020-03-10
Assignee
Inventors
- Satoshi Usui (Hitachinaka, JP)
- Atsushi HOHKITA (Hitachinaka, JP)
- Masayuki SUGANAMI (Hitachinaka, JP)
- Kenichiro Tokuo (Hitachinaka, JP)
- Minoru Hashida (Hitachinaka, JP)
- Masamichi Yagai (Hitachinaka, JP)
- Yuta Saso (Hitachinaka, JP)
- Kazuaki Tokumaru (Hitachinaka, JP)
- Atsuji Saito (Hitachinaka, JP)
Cpc classification
F02M59/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M37/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M21/0245
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/368
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/466
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/8084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/462
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/485
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M59/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M69/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M37/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Provide is a high-pressure fuel pump capable of improving the degree of freedom of layout of members to be attached to a pump body and a producing method thereof. Therefore, the high-pressure fuel pump includes the suction joint that sucks fuel, the pump body formed with the pressurizing chamber that pressurizes the fuel sucked from the suction joint, and the discharge joint that discharges the fuel pressurized in the pressurizing chamber. The pump body is formed so that at least a part of the side surface portion thereof becomes a cylindrical portion or a polygonal shape portion. At least one of the discharge joint and the suction joint may be fixed on the inner peripheral side with respect to the outermost peripheral portion of the cylindrical portion or the polygonal shape portion of the side surface portion.
Claims
1. A high-pressure fuel pump comprising: a suction joint that sucks fuel; a pump body formed with a pressurizing chamber that pressurizes the fuel sucked from the suction joint; and a discharge joint that is disposed in a discharge joint hole, the discharge joint discharging the fuel pressurized in the pressurizing chamber, wherein the pump body is formed such that at least a part of a side surface portion is a cylindrical portion, the discharge joint hole being formed in a first scraped region of the side surface portion of the pump body, the first scraped region being located radially inward of an outermost peripheral surface of the cylindrical portion in a horizontal sectional view of the pump body as viewed from above, a second scraped region of the side surface portion of the pump body being located opposite to the first scraped region and perpendicular to an axial direction of the discharge joint in a horizontal sectional view of the pump body as viewed from above, and the discharge joint is fitted in the discharge joint hole and welded to the pump body at a welded portion which is formed on an outer surface of the first scraped region of the pump body.
2. The high-pressure fuel pump according to claim 1, further comprising a flange portion in which an attachment hole to an engine is formed, wherein the flange portion is formed integrally with the pump body.
3. The high-pressure fuel pump according to claim 1, further comprising a suction valve hole being formed in the second scraped region of the side surface portion of the pump body, the second scraped region being located radially inward of an outermost peripheral surface of the cylindrical portion in a horizontal sectional view of the pump body as viewed from above, the first scraped region of the side surface portion of the pump body being located opposite to the second scraped region and perpendicular to an axial direction of an electromagnetic suction valve mechanism in a horizontal sectional view of the pump body as viewed from above, and the electromagnetic suction valve mechanism is fitted in the suction valve hole and welded to the pump body at a welded portion, which is formed on an outer surface of the second scraped region of the pump body.
4. The high-pressure fuel pump according to claim 2, wherein the side surface portion of the pump body adjacent to the flange portion is formed to be a flat surface portion perpendicular to the flange portion.
5. The high-pressure fuel pump according to claim 1, wherein the welded portion is located on an inner peripheral side with respect to the outermost peripheral surface of the cylindrical portion.
6. A high-pressure fuel pump comprising: a suction joint that sucks fuel; a pump body formed with a pressurizing chamber that pressurizes the fuel sucked from the suction joint; a discharge joint that discharges the fuel pressurized in the pressurizing chamber; and an electromagnetic suction valve mechanism that is disposed in a suction valve hole, wherein the pump body is formed such that at least a part of a side surface portion is a cylindrical portion, and the pump body includes a scraped part, a first scraped region of the side surface portion of the pump body being located opposite to a second scraped region and perpendicular to an axial direction of the electromagnetic suction valve mechanism in a horizontal sectional view of the pump body as viewed from above, the suction valve hole being formed in the second scraped region of the side surface portion of the pump body, the second scraped region being located radially inward of an outermost peripheral surface of the cylindrical portion in a horizontal sectional view of the pump body as viewed from above, and the electromagnetic suction valve mechanism is fitted in the suction valve hole and welded to the pump body at a welded portion, which is formed on an outer surface of the second scraped region of the pump body.
7. The high-pressure fuel pump according to claim 6, further comprising a flange portion in which an attachment hole to an engine is formed, wherein the flange portion is formed integrally with the pump body.
8. The high-pressure fuel pump according to claim 6, further comprising a flange portion in which an attachment hole to an engine is formed, wherein an outermost peripheral portion of the flange portion is disposed on an outer peripheral side with respect to the outermost peripheral portion of the cylindrical portion.
9. The high-pressure fuel pump according to claim 6, wherein the suction joint and the discharge joint are welded to the pump body on the inner peripheral side with respect to the outermost peripheral portion of the cylindrical portion.
10. A method of producing a high-pressure fuel pump comprising: forming a suction joint that sucks fuel; forming a pump body having a pressurizing chamber that pressurizes the fuel sucked from the suction joint; and forming a discharge joint that is disposed in a discharge joint hole, the discharge joint discharging the fuel pressurized in the pressurizing chamber, wherein the pump body is formed such that at least a part of a side surface portion is a cylindrical portion, the discharge joint hole being formed in a first scraped region of the side surface portion of the pump body, the first scraped region being located radially sectional view of the pump body as viewed from above, a second scraped region of the side surface portion of the pump body being located opposite to the first scraped region and perpendicular to an axial direction of the discharge joint in a horizontal sectional view of the pump body as viewed from above, and the discharge joint is fitted in the discharge joint hole and welded to the pump body at a welded portion which is formed on an outer surface of the first scraped region of the pump body.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DESCRIPTION OF EMBODIMENTS
(10) Hereinafter, with reference to the drawings, the configuration and operational effects of a high-pressure fuel pump (high-pressure fuel supply pump) according to first and second embodiments of the present invention will be described.
(11) (Overall Structure)
(12) First, with reference to
(13) A portion surrounded by a broken line shown in
(14) The fuel in a fuel tank 20 is pumped up by a feed pump 21 based on a signal from an engine control unit 27 (hereinafter referred to as an ECU). This fuel is pressurized to an appropriate feed pressure and sent to a low pressure fuel suction port 10a of the high-pressure fuel pump through a suction pipe 28.
(15) Fuel which has passed through a suction joint 51 (see
(16) The fuel flowing into the electromagnetic suction valve mechanism 300 passes through a suction valve 30 and flows into a pressurizing chamber 11. Power to reciprocate a plunger 2 is given by a cam (cam mechanism) 93 (see
(17) The high-pressure fuel pump discharges a fuel flow rate of a desired supplied fuel by a signal from the ECU 27 to the electromagnetic suction valve mechanism 300.
(18) In
First Embodiment
(19) Next, the configuration of the high-pressure fuel pump according to the first embodiment of the present invention will be described in detail with reference to
(20)
(21) The high-pressure fuel pump of this embodiment comes in close contact with a high-pressure fuel pump attaching portion 90 of an internal combustion engine by using an attaching flange portion 1e (see
(22) As shown in
(23) A cylinder 6 which guides the reciprocating motion of the plunger 2 and forms the pressurizing chamber 11 together with the pump body 1 is attached to the pump body 1. The electromagnetic suction valve mechanism 300 for supplying fuel to the pressurizing chamber 11 and the discharge valve mechanism 8 (see
(24) As shown in
(25) At a lower end of the plunger 2, a tappet 92 that converts a rotational motion of a cam 93 attached to a camshaft of the internal combustion engine into vertical motion and transmitting the vertical motion to the plunger 2 is provided. The plunger 2 is crimped to the tappet 92 by a spring 4 via a retainer 15. As a result, the plunger 2 can reciprocate up and down along with the rotational motion of the cam 93.
(26) A plunger seal 13 held at a lower end portion of the inner circumference of a seal holder 7 is installed in a slidable contact with the outer periphery of the plunger 2 at the lower portion of the cylinder 6 in
(27) The suction joint 51 (see
(28) A suction filter 52 (see
(29) As shown in
(30) As shown in
(31) In a state where there is no fuel pressure difference between the pressurizing chamber 11 and the discharge valve chamber 12a, the discharge valve 8b is pressed against the discharge valve seat 8a by the urging force of the discharge valve spring 8c and is in a closed valve state. The discharge valve 8b opens against the discharge valve spring 8c only when the fuel pressure in the pressurizing chamber 11 becomes larger than a fuel pressure in the discharge valve chamber 12a. The high-pressure fuel in the pressurizing chamber 11 is discharged to the common rail 23 via the discharge valve chamber 12a, a fuel discharge passage 12b, and a fuel discharge port 12.
(32) When the discharge valve 8b opens, the discharge valve 8b comes into contact with the discharge valve stopper 8d, and the stroke is limited. Therefore, the stroke of the discharge valve 8b is appropriately determined by the discharge valve stopper 8d. With this configuration, it is possible to prevent that the closing delay of the discharge valve 8b due to an excessively large stroke causes the fuel discharged at a high pressure into the discharge valve chamber 12a to flow back into the pressurizing chamber 11; therefore, reduction in efficiency of the high-pressure fuel pump can be suppressed. When the discharge valve 8b repeats the valve opening and closing movements, the discharge valve 8b performs guide on the outer peripheral surface of the discharge valve stopper 8d so as to move only in a stroke direction. With the above configuration, the discharge valve mechanism 8 becomes a check valve that restricts a flowing direction of the fuel.
(33) The pressurizing chamber 11 includes the pump body 1 (pump housing), the electromagnetic suction valve mechanism 300, the plunger 2, the cylinder 6, and the discharge valve mechanism 8.
(34) (Operation of High-Pressure Fuel Pump)
(35) When the plunger 2 moves toward the cam 93 by the rotation of the cam 93 (see
(36) After the plunger 2 finishes the suction stroke, the plunger 2 turns into a rising movement and shifts to a compression stroke. Here, an electromagnetic coil 43 is maintained in a non-energized state, and a magnetic biasing force does not act. A rod urging spring 40 is set to have an urging force necessary and sufficient for keeping the suction valve 30 open in a non-energized state. The volume of the pressurizing chamber 11 decreases with the compression movement of the plunger 2; however, in this state, the fuel once drawn into the pressurizing chamber 11 is returned to the suction passage 10d again through the opening 30e of the suction valve 30 in an open valve state, so that the pressure in the pressurizing chamber never rises. This stroke is referred to as a return stroke.
(37) In this state, when a control signal from the ECU 27 is applied to the electromagnetic suction valve mechanism 300, a current flows through a terminal 46 to the electromagnetic coil 43. Then, the magnetic urging force overcomes the urging force of the rod urging spring 40, and the rod 35 moves in a direction away from the suction valve 30. Therefore, the suction valve 30 is closed by the urging force of the suction valve urging spring 33 and the fluid force caused by the fuel flowing into the suction passage 10d. After the valve closes, the fuel pressure in the pressurizing chamber 11 rises together with the rising movement of the plunger 2, and when the pressure exceeds the pressure of the fuel discharge port 12, high-pressure fuel is discharged through the discharge valve mechanism 8 and is supplied to the common rail 23. This stroke is referred to as a discharge strep.
(38) That is, the compression stroke (rising stroke between a lower starting point and an upper starting point) of the plunger 2 includes a return stroke and a discharge stroke. By controlling the energization timing of the electromagnetic coil 43 of the electromagnetic suction valve mechanism 300, it is possible to control the amount of high-pressure fuel to be discharged. If the electromagnetic coil 43 is energized earlier, the rate of the return stroke during the compression stroke is small and the rate of the discharge stroke is large. That is, the amount of fuel returned to the suction passage 10d is small, and the amount of fuel discharged at a high pressure is large. On the other hand, if the energization timing is delayed, the rate of the return stroke during the compression stroke is large and the rate of the discharge stroke is small. That is, the amount of fuel returned to the suction passage 10d is large, and the amount of fuel discharged at a high pressure is small. The energization timing of the electromagnetic coil 43 is controlled by a command from the ECU 27.
(39) By controlling the conduction timing to the electromagnetic coil 43 as described above, it is possible to control the amount of fuel to be discharged at a high pressure to the amount required by the internal combustion engine.
(40) (Pressure Pulsation Reduction Mechanism)
(41) As shown in
(42) The plunger 2 has a large-diameter portion 2a and a small-diameter portion 2b, and the volume of the sub chamber 7a is increased or decreased by the reciprocating motion of the plunger. The sub chamber 7a communicates with the low pressure fuel chamber 10 through a fuel passage 10e (see
(43) As a result, it is possible to reduce the fuel flow rate to the inside and outside of the pump during the suction stroke or return stroke of the pump, and to reduce the pressure pulsation generated inside the high-pressure fuel pump.
(44) (Pump Body)
(45) Next, the configuration around the pump body 1 used in the fuel supply pump of this embodiment will be described in detail.
(46) At the design stage of the high-pressure fuel pump, it is necessary to design the arrangement of each part of the high pressure fuel pump so as to match the engine layout. Specifically, it is necessary to design the arrangement of the suction joint 51, a discharge joint 12j, and the electromagnetic suction valve mechanism 300. According to the conventional structure, it has been impossible to change the position of the suction joint 51, the discharge joint 12j, and the electromagnetic suction valve mechanism 300 without changing the shape of the pump body 1 and changing the position of the boss portion. Therefore, there is a problem that the layout property of these parts is bad. Further, it is necessary to design and produce the pump body 1 for each engine layout, and there is a problem of increase in producing cost and producing management cost.
(47) In the following, a description will be given of a high-pressure fuel pump with an improved layout flexibility of the suction joint 51, the discharge joint 12j, and the electromagnetic suction valve mechanism 300 while suppressing an increase in producing cost.
(48) As shown in
(49) In this embodiment, as shown in
(50) Accordingly, the arrangement of the suction joint 51, the discharge joint 12j, and the electromagnetic suction valve mechanism 300 is not limited, and it is possible to perform layout anywhere as necessary. Alternatively, at least a part of the side surface portion is formed in a polygonal shape portion, for example, a hexagonal shape portion; accordingly, the suction joint 51, the discharge joint 12j, or the electromagnetic suction valve mechanism 300 can be arranged in one of the hexagons, so that it is possible to improve the layout property as compared with providing the boss portion.
(51) Further, as shown in
(52) As shown in
(53) In
(54) (Method for Producing High-Pressure Fuel Pump)
(55) Next, a method for producing the high-pressure fuel pump according to the first embodiment of the present invention will be described with reference to
(56) (1) Forging Molding
(57) By forging, at least a part of the side surface portion of the pump body 1 is formed into the cylindrical portion 1a (S10). Instead of the cylindrical portion 1a, it may be a polygonal shape portion. By forging, the strength of the pump body 1 is improved.
(58) (2) Machining
(59) The inner structure portion of the forged-molded pump body 1 and the like are formed by machining (S20). The internal structure portion includes a press-fitting fitting portion with the pressurizing chamber 11 and the cylinder 6, a fitting portion with the suction joint 51, the discharge joint 12j, the electromagnetic suction valve mechanism 300, and the like.
(60) (3) Fixation
(61) In this embodiment, the discharge joint 12j, the suction joint 51, and the electromagnetic suction valve mechanism 300 are all fixed on an inner peripheral side with respect to the outermost peripheral portion of the cylindrical portion 1a of the side surface portion (S30).
(62) As described above, the method for producing the high-pressure fuel pump according to the present embodiment includes, as shown in
(63) In this producing method, it is preferable to use a producing method in which any or all of these functional parts (51, 12j, and 300) are fixed to the pump body 1 by welding.
(64) As described above, according to the present invention, it is possible to improve the degree of freedom in the layout of a member to be attached to a pump body. That is, it is possible to improve the degree of freedom of layout of the suction joint, the discharge joint, the electromagnetic suction valve mechanism and the like while suppressing an increase in producing cost. Therefore, it is possible to suppress the number of models of the pump body and the management cost.
(65) Here, as shown in
Second Embodiment
(66) Next, a second embodiment will be described.
(67)
(68) The other points are the same as those of the first embodiment, and the effect of improving the layout property of the pump body 1 is the same according to the present embodiment.
(69) It should be noted that the present invention is not limited to the above-described embodiment, but includes various modified examples. For example, the above-described embodiments have been described in detail for easy understanding of the present invention, and are not necessarily limited to those having all the configurations described. In addition, a part of the configuration of one embodiment can be replaced by the configuration of another embodiment, and the configuration of another embodiment can be added to the configuration of one embodiment. Further, it is possible to add, delete, and replace other configurations with respect to part of the configuration of each embodiment.
(70) In the above-described embodiment, the pump body 1 is formed so that at least a part of the side surface portion thereof becomes the cylindrical portion 1a, but may be a polygonal shape portion instead of the cylindrical portion 1a.
(71) Fixing of the discharge joint 12j, the suction joint 51, and the electromagnetic suction valve mechanism 300 to the pump body 1 is not limited to the above embodiment.
(72) For example, at least one of the discharge joint 12j and the suction joint 51 may be fixed on the inner peripheral side with respect to the outermost peripheral portion of the cylindrical portion 1a or the polygonal shape portion of the side surface portion.
(73) Further, at least one of the discharge joint 12j, the suction joint 51, and the electromagnetic suction valve mechanism 300 may be fixed on the inner peripheral side with respect to the outermost peripheral portion of the cylindrical portion or the polygonal shape portion of the side surface portion.
(74) Furthermore, the suction joint 51 and the discharge joint 12j may be fixed to the pump body 1 on the inner peripheral side with respect to the outermost peripheral portion of the cylindrical portion or the polygonal shape portion of the side surface portion. The same is true for the method of producing the high-pressure fuel pump.
(75) Here, as shown in
(76) The same is true for the suction joint 51, and in a suction joint hole, a part of the cylindrical portion 1a of the pump body 1 is scraped to the inner peripheral side, and at this scraped portion, the suction joint 51 is welded to the pump body 1 from the outer peripheral side. More specifically, a welding beam is applied to the suction joint 51 from the outside in the axial direction of the suction joint 51 toward the inner peripheral direction, and a contact portion 51a is welded and fixed. This makes it possible to dispose the suction joint 51 on the inner peripheral side with respect to the outermost peripheral portion of the cylindrical portion 1a of the side surface portion of the pump body 1.
(77) The same is true for the electromagnetic suction valve mechanism 300, and in a suction valve hole, a part of the cylindrical portion 1a of the pump body 1 is scraped to the inner peripheral side, and at this scraped portion, the electromagnetic suction valve mechanism 300 is welded to the pump body 1 from the outer peripheral side. More specifically, a welding beam is applied to the electromagnetic suction valve mechanism 300 from the outside in the axial direction of the electromagnetic suction valve mechanism 300 toward the inner peripheral direction, and a contact portion 300a is welded and fixed. This makes it possible to dispose the electromagnetic suction valve mechanism 300 on the inner peripheral side with respect to the outermost peripheral portion of the cylindrical portion 1a of the side surface portion of the pump body 1.
(78) As described above, at least one of the discharge joint 12j, the suction joint 51, and the electromagnetic suction valve mechanism 300 is welded by applying a welding beam from the respective outer peripheral sides in the axial direction. Accordingly, it is possible to perform welding fixation even if they are arranged close to each other, thereby improving layout performance.
REFERENCE SIGNS LIST
(79) 1 pump body 2 plunger 6 cylinder 7 seal holder 8 discharge valve mechanism 9 pressure pulsation reduction mechanism 10a low pressure fuel suction port 11 pressurizing chamber 12 fuel discharge port 12j discharge joint 13 plunger seal 30 suction valve 40 rod urging spring 43 electromagnetic coil 100 pressure pulsation propagation preventing mechanism 101 valve seat 102 valve 103 spring 104 spring stopper 200 relief valve mechanism 201 relief body 202 relief valve 203 valve holder 204 relief spring 205 spring stopper 300 electromagnetic suction valve mechanism