Fuel injection valve
09726131 · 2017-08-08
Assignee
Inventors
Cpc classification
F02M61/1866
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M51/0678
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/188
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/1873
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/1813
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/1853
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M61/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fuel injection valve in which a valve element is formed at a distal end thereof with a flat portion 13c which is substantially parallel with an injection hole plate 11, injection hole entrances 12a are arranged inside an imaginary envelop 15 along an intersection between an extension 10b of a downstream inner wall of a seat portion of a valve seat and an upstream plane 11c of the injection hole plate and outside the flat plane at the distal end of the valve element, and the relation between the vertical distance h between the flat plane at the distal end of the valve element and the upstream plane of the injection hole plate with the valve opened and the diameter d of the injection hole entrance is h<d, and the injection hole 12 is formed to be inclined by a predetermined angle with respect to the direction of the thickness of the injection hole plate.
Claims
1. A fuel injection valve comprising a valve element for opening and closing a valve seat, the valve element being driven upon reception of an operation signal from a control unit and causing fuel to be injected from a plurality of injection holes formed on an injection hole plate having a projection formed thereon, the injection hole plate mounted on a downstream side of the valve seat, wherein said projection which projects away from the downstream side of the valve seat so as to extend substantially in parallel with a distal end of the valve element is formed at a center of the injection hole plate, and a flat portion is formed outside of the projection, wherein the relation between the minimum distance r from the distal end of the valve element to the center of the projection of the injection hole plate with the valve opened and the diameter d of an injection hole entrance is r<d, wherein the injection hole entrance of each of the injection holes are arranged on the flat portion of the injection hole plate and inside a minimum inner diameter of the valve seat, and wherein a periphery of the projection creates a virtual circle on the injection hole plate and the injection hole entrance of each of the injection holes is provided on the injection hole plate outside of the virtual circle; wherein the plurality of injection holes are located along the injection hole plate in a width direction, and wherein an inner wall of a seat portion of the valve seat had a linear angled edge which is angled from an upstream point to a downstream point with respect to a thickness direction of the flat portion of the injection hole plate such that the linear angled edge extends in an oblique direction with respect to the thickness direction of the flat portion of the injection hole plate and the width direction of the injection hole plate, and the downstream point of the linear angled edge is joined to the injection plate at a connection location, and wherein the connection location is located exterior to the plurality of injection holes in the width direction of the injection hole plate.
2. The fuel injection valve according to claim 1, wherein a tapered plane having an angle β across the valve element is provided on a downstream side of a seat surface of a seat portion of the valve seat, and when an angle of the seat portion of the valve seat across the valve element is represented by α, a relation of α>β is established, the tapered plane having a greater incline than the seat surface.
3. The fuel injection valve according to claim 2, wherein a plurality of dimples are provided on the tapered plane.
4. The fuel injection valve according to claim 2, wherein a plurality of annular grooves are formed on the tapered plane.
5. The fuel injection valve according to claim 1, wherein, starting from a downstream position and extending to an upstream position, the linear angled edge is angled away from the plurality on injection holes in the width direction of the injection hole plate.
6. The fuel injection valve according to claim 1, wherein no portion of the linear angled edge is located interior to the plurality of injection holes in the width direction of the injection hole plate.
7. The fuel injection valve according to claim 1, wherein the thickness direction of the flat portion of the injection hole is perpendicular to the width direction of the injection hole plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
BEST MODE FOR CARRYING OUT THE INVENTION
(9) First Embodiment
(10)
(11) In
(12) The valve body 9 is press-fitted into an outer diameter portion of the core 4 and is welded thereto. The armature 6 is press-fitted into the valve element 8, and is welded thereto. An injection hole plate 11 is joined to the downstream side of the valve seat 10 at a welding portion 11a, and then inserted into the valve element 9 and joined thereto by a welded portion 11b. The injection hole plate 11 is formed with a plurality of injection holes 12 therethrough in the direction of the thickness as shown in
(13) Subsequently, opening and closing movement of the fuel injection valve will be described.
(14) When an operation signal is sent to a drive circuit of the fuel injection valve in
(15) Subsequently, when an operation stop signal is sent to the drive circuit of the fuel injection valve from the engine control unit, distribution of the electric current in the coil 5 is stopped, and the magnetic flux in the magnetic circuit is reduced. Then, the clearance between the valve element 8 and the seat portion 10a of the valve seat is brought into a closed state by a compression spring 14 which urges the valve element 8 to the closing direction, whereby the fuel injection is terminated.
(16) The valve element 8 slides with the side surface 6a of the armature and a guide 13b on the guide portion of the valve body 9, and with the valve opened, an upper surface 6b of the armature comes into abutment with the lower surface of the core 4. The guide 13b serves to regulate radial non-coaxiality (deflection) of the valve element 8 with respect to the valve seat plane, and hence it is preferable to set the clearance as small as possible. In the first embodiment, in order to keep the durable abrasion of the valve element within an allowable limit, the clearance is set to 10 μm or smaller (5 μm or smaller clearance on one side).
(17) Referring now to
(18) As shown in
(19) The relation between the vertical distance h between the flat portion 13c at the distal end of the valve element and the upstream plane of the injection hole plate with the valve opened and the diameter d of the injection hole entrance is h<d, and the injection hole 12 is formed to be inclined by a predetermined angle with respect to the direction of the thickness of the injection hole plate.
(20)
(21) In the fuel injection valve according to the first embodiment configured as described above, as shown in
(22) Therefore, as shown in
(23) Since one surface of the flow path immediately above the injection holes in the cavity 17 is configured by a ball, the dimensional variation is smaller than the flat portion 13c at the distal end of the valve element, and occurrence of uneven height of the cavity due to inclination of the valve element when the valve is opened may be prevented. Therefore, variation in flow rate in the cavity immediately above the injection holes is small, and variation in flow rate characteristic (static flow rate) and spray characteristics (spray shape, diameter of spray particle) are also small.
(24) According to the fuel injection valve in the first embodiment, since the dead volume on the downstream of the seat portion of the valve seat is small, the amount of injection of initial spray injected without being accelerated at the beginning of injection and hence having a large particle diameter of the spray is small, and the amount of evaporation of fuel in the dead volume under high-temperature negative-pressure is also small. Therefore, change in flow rate characteristics (static flow rate, dynamic flow rate) and spray characteristics (shape of splay, particle diameter of the spray) in association with the change of atmosphere may be restrained.
(25) As described thus far, according to the first embodiment of the present invention, with the spray characteristics such as good directivity of spray for aiming the induction valve and good mixing ability with air, a fuel injection valve which can provide the fuel spray with reduced exhaust emission and fuel consumption can be obtained.
(26) Second Embodiment
(27)
(28) As shown in
(29) According to the second embodiment as well, as in the first embodiment, atomization is accelerated while restraining excessive diffusion of the fuel spray and the same effect as the first embodiment can be obtained.
(30) Third Embodiment
(31)
(32) As shown in
(33) Other configurations are the same as those in the first embodiment and description will be omitted.
(34) According to the third embodiment, the main flow 16a of fuel flow toward the injection hole plate 11 is guided toward, and caused to collide with, the outer periphery with respect to the injection hole entrances 12a, so that the flow 16a can be converted to a flow 16c along the injection plate, and the entrance angle γ into the injection hole entrances 12a is increased. Therefore, separation of flow at the injection hole entrances is further enhanced, and the thickness of the liquid films is reduced, so that atomization of fuel spray is effectively accelerated.
(35) The third embodiment is also applicable to the fuel injection valve in the second embodiment as well as the first embodiment, as a matter of course.
(36) Fourth Embodiment
(37)
(38) As shown in
(39) Other configurations are the same as those in the first embodiment, and description is omitted.
(40) According to the fourth embodiment, since a small eddy current 20 is generated on the tapered plane 18, and the fuel flow passed through the seat surface 10c of the valve seat by the eddy current can hardly be separated on the tapered plane 18, the main flow 16a of the fuel flow can be further guided toward the taper surface. Consequently, collision with the injection hole plate 11 can be guided further to the side of the outer periphery with respect to the injection hole entrances 12a, and the fuel flow which flows into the injection hole entrances 12a is converted into a flow which is parallel to the injection hole plate 11, whereby the entrance angle γ to the injection hole entrances 12a may be further increased, so that atomization of fuel spray is enhanced.
(41) The fourth embodiment is also applicable to the fuel injection valve in the second embodiment as well as the first embodiment, as a matter of course.
(42) Fifth Embodiment
(43)
(44) As shown in