ELECTRONICALLY CONTROLLED FUEL INJECTION DEVICE
20220412295 ยท 2022-12-29
Inventors
Cpc classification
F02M69/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M51/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M55/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M69/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M57/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M51/0682
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M55/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electronically controlled fuel injection device that achieves reduced component count, simplified construction, and cost reduction while promoting discharge of vapor that is generated in a pressurizing chamber. With a fuel passage from a fuel intake pipe into a pressurizing chamber and a return passage that is a discharge passage for vapor generated in the pressurizing chamber, and a plunger with a prescribed reciprocating operation having a standby position set as a position enabling fuel supply and vapor discharge, the electronically controlled fuel injection device eliminates the need for an inlet check valve and promotes the discharge of vapor that is generated when fuel is supplied from the fuel intake pipe to the pressurizing chamber.
Claims
1. An electronically controlled fuel injection device that causes a plunger, which is positioned at a prescribed standby position by a return spring, to be reciprocally inserted, in conjunction with an armature, into a cylindrical pressurizing chamber through excitation of an electromagnetic coil of electric wire wound on a peripheral surface of a bobbin arranged on an outer periphery of the pressurizing chamber, and wherein fuel being guided from a fuel tank through a fuel intake pipe into the pressurizing chamber, and wherein pressurized fuel from the pressurizing chamber being injected into an engine from an injection nozzle provided downstream of the pressurizing chamber, wherein the electronically controlled fuel injection device comprising a supply port for capturing fuel from the fuel intake pipe and a discharge port for discharging vapor generated in the pressurizing chamber, the supply port and the discharge part being provided in the pressurizing chamber at a position where the supply and discharge ports are open when the plunger is at the prescribed standby position, wherein the fuel intake pipe and the pressurizing chamber are connected via the supply port and the pressurizing chamber and a return passage are connected via the discharge port when the reciprocally operating plunger is in the prescribed standby position to capture fuel from the intake pipe into the pressurizing chamber and discharge vapor from the pressurizing chamber into the return passage, and wherein vapor is dischargeable while the supply port and discharge port are open as the plunger transitions to the descent stroke, fuel is pressurized and pressure-fed to the injection nozzle downstream from the pressurizing chamber while the plunger blocks the supply port and the discharge port.
2. An electronically controlled fuel injection device that causes a plunger, which is positioned at a prescribed standby position by a return spring, to be reciprocally inserted, in conjunction with an armature, into a cylindrical pressurizing chamber through excitation of an electromagnetic coil of electric wire wound on a peripheral surface of a bobbin arranged on an outer periphery of the pressurizing chamber, and wherein fuel being guided from a fuel tank through a fuel intake pipe into the pressurizing chamber, and wherein pressurized fuel from the pressurizing chamber being injected into an engine from an injection nozzle provided downstream of the pressurizing chamber, wherein the electronically controlled fuel injection device comprising a supply passage and a supply port for supplying fuel from the fuel intake pipe to the pressurizing chamber, and a discharge passage and a discharge port for discharging the vapor generated in the pressurizing chamber to a return pipe, the supply port and the discharge port being formed in a prescribed position on an outer periphery of a passage in the axial direction of the reciprocating plunger and opened to a tip end surface of the plunger to connect to the supply port and discharge port when the plunger is at the standby position, wherein fuel supply and vapor being dischargable while the plunger is in the prescribed standby position, and wherein fuel being pressurized from the point the plunger enters a descent operation and blocks the supply port and the discharge port, and pressure-fed to an injection nozzle that is downstream from the pressurizing chamber.
3. The electronically controlled fuel injection device according to claim 1, wherein at least the discharge port is provided at a descent position that is a prescribed distance below the lower surface position of the plunger when the plunger is at the prescribed standby position, and wherein from the start of a descent stroke of the plunger until the discharge port or the supply port is blocked by the plunger, fuel that is accumulated in the pressurizing chamber is pressurized by a prescribed pressure forcing discharge of vapor from the discharge port or the supply port.
4. The electronically controlled fuel injection device according to claim 2, wherein at least the discharge port is provided at a descent position that is a prescribed distance below the lower surface position of the plunger when the plunger is at the prescribed standby position, and wherein from the start of a descent stroke of the plunger until the discharge port or the supply port is blocked by the plunger, fuel that is accumulated in the pressurizing chamber is pressurized by a prescribed pressure forcing discharge of vapor from the discharge port or the supply port.
5. The electronically controlled fuel injection device according to claim 1, wherein fuel is guided from the fuel tank by gravity and is supplied through the fuel intake pipe into the pressurizing chamber installed at a position lower than the fuel tank.
6. The electronically controlled fuel injection device according to claim 2, wherein fuel is guided from the fuel tank by gravity and is supplied through the fuel intake pipe into the pressurizing chamber installed at a position lower than the fuel tank.
7. The electronically controlled fuel injection device according to claim 3, wherein fuel is guided from the fuel tank by gravity and is supplied through the fuel intake pipe into the pressurizing chamber installed at a position lower than the fuel tank.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] The accompanying drawings, which are included as part of the present specification, illustrate the presently example embodiments and, together with the general description given above and the detailed description of the example embodiments given below, serve to explain and teach the principles of the present invention.
[0015]
[0016]
[0017]
[0018]
DESCRIPTION OF THE EXAMPLE EMBODIMENTS
[0019] Before the present subject matter is described in detail, it is to be understood that this disclosure is not limited to the particular embodiments described, as such may, of course, vary. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to be limiting, since the scope of the present disclosure will be limited only by the appended claims.
[0020] Representative examples of the embodiments described herein, which examples utilize many of these additional features and teachings both separately and in combination, will now be described in further detail with reference to the attached drawings. This detailed description is merely intended to teach a person of skill in the art further details for practicing preferred aspects of the present teachings and is not intended to limit the scope of the invention. Therefore, combinations of features and steps disclosed in the following detail description may not be necessary to practice the invention in the broadest sense, and are instead taught merely to particularly describe representative examples of the present teachings.
[0021] Moreover, the various features of the representative examples and the dependent claims may be combined in ways that are not specifically and explicitly enumerated in order to provide additional useful embodiments of the present teachings. In addition, it is expressly noted that all features disclosed in the description and/or the claims are intended to be disclosed separately and independently from each other for the purpose of original disclosure, as well as for the purpose of restricting the claimed subject matter independent of the compositions of the features in the embodiments and/or the claims. It is also expressly noted that all value ranges or indications of groups of entities disclose every possible intermediate value or intermediate entity for the purpose of original disclosure, as well as for the purpose of restricting the claimed subject matter. An example embodiment of an electronically controlled fuel injection device of the present invention will be described in detail below based on the drawings.
[0022]
[0023] In addition, in the present example embodiment, a supply port 13 for supplying fuel at a position at the same height as the pressurizing chamber 5 from the fuel intake pipe 4 to the pressurizing chamber 5 and a discharge port 14 for discharging fuel supplied to the pressurizing chamber 5 into the return passage 9 are arranged at the same height.
[0024] In particular, with the present example embodiment, when the plunger 2 is in the standby position due to a return spring 15, the tip thereof is positioned at the supply port 13 and discharge port 14. Here, fuel from a fuel tank (not shown) is supplied through the fuel intake pipe 4 and the supply port 13 into the pressurizing chamber 5. At this time, with the present example embodiment, vapor that is inside the pressurizing chamber 5 is discharged from the fuel intake pipe 4 via the supply port 13 and the return passage 9 via the discharge port 14 through the fuel return pipe 10.
[0025] In this manner, with the present example embodiment, discharge of vapor that is in the pressurizing chamber 5 is discharged through two vapor discharge paths that include the fuel intake pipe 4 and the fuel return pipe 10. A normally closed type inlet check valve for the plunger standby position is not used as is in a conventional electronically controlled fuel injection device. This ensures a long vapor discharge time and promotes vapor discharge. Furthermore, with the present example embodiment, the plunger 2 that operates in conjunction with the armature 1 moves against the biasing force of the return spring 15 in the tip (injection nozzle 6) direction through excitation of the electromagnetic coil 3 based on a signal from an electronic control device (not shown). The supply port 13 and discharge port 14 are closed by the plunger 2 and fuel in the pressurizing chamber 5 pressurized by the pressurizing chamber 5 is injected from the injection nozzle 6 provided downstream into the air intake port (not shown) of an engine.
[0026] Furthermore, when excitation of the electromagnetic coil 3 is stopped by the signal from the electronic control device (not shown), the plunger 2 is driven upwards by the return spring 15 to the standby position opening the supply port 13 and discharge port 14 that had been closed by the plunger 2 and fuel is supplied from the fuel intake pipe 4 to the pressurizing chamber 5.
[0027] As has been described, the present example embodiment differs from a conventional example electronically controlled fuel injection device where discharge of vapor in fuel is only performed while the plunger is being driven. Here, vapor is discharged at times when the plunger is not being driven including while the pressurizing chamber 5 is being filled with fuel and thus discharge tends to be sufficient. In addition, unlike the conventional example electronically controlled fuel injection device, the inlet check valve in the fuel intake pipe 4 and spill valve in the return passage 9 that lead to the pressurizing chamber 5 do not need to be provided. Thus, in the present example embodiment, the structure is not complex, component count can be low, and manufacturing cost is inexpensive.
[0028] In addition, the present example embodiment has a structure where fuel is guided from a fuel tank (not shown) provided at a high position through the fuel intake pipe 4 and is supplied into the pressurizing chamber 5. Thus, a fuel pump and fuel regulator are not required and there is a benefit that an even lower cost can be achieved. However, it goes without saying that fuel can be supplied from a fuel intake pipe into a pressurizing chamber using a general fuel supply means with a fuel pump and pressure regulator (not shown).
[0029]
[0030] Furthermore, the plunger 2, that operates in conjunction with the armature 1, moves against the biasing force of the return spring 15 in the tip (injection nozzle 6) direction through excitation of the electromagnetic coil 3 based on a signal from an electronic control device (not shown). The supply port 13 and discharge port 14 formed in a cylinder 17 are closed by the plunger 2 and fuel in the pressurizing chamber 5 that is pressurized by the pressurizing chamber 5 is injected from the injection nozzle 6, provided downstream, into the air intake port (not shown) of an engine.
[0031] In addition, when excitation of the electromagnetic coil 3 is stopped by the signal from the electronic control device (not shown), the plunger 2 is driven upwards by the return spring 15 to the standby position opening the supply port 13 and discharge port 14 and fuel is supplied from the fuel intake pipe 4 to the pressurizing chamber 5.
[0032] Similar to the example embodiment illustrated in
[0033]
DESCRIPTION OF REFERENTIAL NUMERALS
[0034] 1. Armature [0035] 2. Plunger [0036] 3. Electromagnetic coil [0037] 4. Fuel intake pipe [0038] 5. Pressurizing chamber [0039] 6. Injection nozzle [0040] 7. Inner yoke [0041] 8. Bobbin [0042] 9. Return passage [0043] 10. Fuel return pipe [0044] 11. Inlet check valve [0045] 12. Spill valve [0046] 13. Supply port [0047] 14. Discharge port [0048] 15. Return spring [0049] 16. Passage [0050] 17. Cylinder [0051] 71. Outer surface [0052] 81. Inner wall surface