Fuel injection valve
10718304 ยท 2020-07-21
Assignee
Inventors
Cpc classification
B05B1/265
PERFORMING OPERATIONS; TRANSPORTING
F02M61/1833
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/1806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/1886
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M61/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
It is prevented that residual fuel left in the vicinity of an injection nozzle outlet is carbonized to cause adherence of the carbonized fuel as deposit and changing of a spray pattern or an injection flow rate. A fuel injection valve includes a seat portion on which a valve body is seated and a seat portion in which an injection hole for injecting fuel downstream from the seat portion is formed, in which a concave surface denting in a direction opposite to a fuel injecting direction is formed on an outer peripheral side away from the injection hole at an end face located downstream of the seat member, and the concave surface is formed such that a material surface in an outer peripheral region has a larger wettability for the fuel than in an inner peripheral region.
Claims
1. A fuel injection valve, comprising: a valve body; a first seat portion on which the valve body is seated; and a second seat portion in which an injection hole for injecting fuel is formed downstream from the first seat portion, wherein a concave surface denting in a direction opposite to a fuel injecting direction is formed on an outer peripheral side away from the injection hole at an end face located downstream from the first seat portion, and the concave surface has wettability for fuel on a material surface in an outer peripheral region larger than wettability in an inner peripheral region.
2. The fuel injection valve according to claim 1, wherein a dimple is formed on the material surface in the outer peripheral region of the concave surface.
3. The fuel injection valve according to claim 1, wherein an edge portion is formed on the material surface in the outer peripheral region of the concave surface.
4. The fuel injection valve according to claim 3, wherein a dimple is formed on the material surface in the outer peripheral region away from the edge portion and in the outer peripheral region of the concave surface.
5. The fuel injection valve according to claim 1, wherein the material surface in the outer peripheral region of the concave surface is configured to have a surface roughness coarser than a surface roughness in the inner peripheral region.
6. The fuel injection valve according to claim 1, wherein a convex surface projecting in the fuel injecting direction is formed on the outer peripheral side away from the injection hole and on the inner peripheral side of the concave surface at the end face on the downstream side of the first seat portion.
7. The fuel injection valve according to claim 6, wherein an edge portion is formed on the material surface in the outer peripheral region of the concave surface.
8. The fuel injection valve according to claim 1, wherein the end face on the downstream side of the first seat portion is formed in a concave shape denting in the direction opposite to the fuel injecting direction on the inner peripheral side and the outer peripheral side of the injection hole.
9. A fuel injection valve, comprising: a valve body; a first seat portion on which the valve body is seated; and a second seat portion in which an injection hole for injecting fuel is formed downstream from the seat portion, wherein a concave surface denting in a direction opposite to a fuel injecting direction is formed on an outer peripheral side away from the injection hole in an end face located downstream of the first seat portion, and a dimple is formed on a material surface on the outer peripheral side away from the concave surface at an end surface on the downstream side of the first seat portion.
10. The fuel injection valve according to claim 9, wherein the end face on the downstream side of the first seat portion is formed in a concave shape denting in the direction opposite to the fuel injecting direction on the inner peripheral side and the outer peripheral side of the injection hole.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(10) In the following, an embodiment of the present invention will be described by referring to the accompanying drawings.
First Embodiment
(11) A fuel injection valve according to a first embodiment of the present invention is described below by referring to
(12) A basic operation of the fuel injection valve of the present embodiment is described below. In
(13)
(14) In the valve open state, a gap is formed between the valve seat surface 203 and the spherical surface portion 202 of the valve body, and the fuel injection starts. When the fuel injection starts, the energy provided as a fuel pressure is converted into kinetic energy which then reaches a fuel injection nozzle 201 for injection.
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(16) As described above, the electromagnetic fuel injection valve 100 includes the seat member 102 having the valve seat on its inner wall surface, and the valve body 101 that moves away from or is seated on the seat member 102. In addition, a fuel channel is formed between the seat member and the valve body 101. Further, the seat member 102 also includes the injection hole 201 that injects fuel downstream from the seat portion on which the valve body 101 is seated. The electromagnetic fuel injection valve 100 also includes, on the lower end face 207 on the fuel outlet side of the fuel injection hole, i.e., on the end face 207 on the downstream side of the seat member 102, a concave surface 207 denting in a direction opposite to a fuel injecting direction is formed in an outer peripheral region beyond each of the injection hole about a center axis of the electromagnetic fuel injection valve 100.
(17) As illustrated in
(18) At this time, if the fuel is adhered to the concave surface 207, a contact angle between the fuel and the material surface of the concave surface 207 becomes smaller in the outer peripheral region 303 than in the inner peripheral region 304. More specifically, a dimple 208 is formed in the outer peripheral region 303, as illustrated in
(19) Thus, by changing the wettability of the material surface, the liquid films or liquid droplets of the fuel accumulated on the lower end face 207 of the fuel injection valve move toward the outer peripheral side having a better wettability in the direction of an arrow 302 to reduce accumulation of the fuel in the vicinity of the fuel injection hole 201.
(20) In the present embodiment, the concave surface 207 is formed by connecting the outer peripheral region 303 and the inner peripheral region 304, both formed nearly linearly, at a certain angle. When seen in the cross-sectional view, by connecting the regions nearly linearly, the processing can be carried out easily.
Second Embodiment
(21) A fuel injection valve according to a second embodiment of the present invention is described below by referring to
(22) In the present embodiment, the surface 401 is formed in approximately the same direction as an axial direction of an electromagnetic fuel injection valve 100, and the edge portion 402 is formed at an intersection of the surfaces 401 and 207. At this time, a crossing angle between the surfaces 401 and 207 is preferably from 90 degrees to 180 degrees. Further, the edge portion 402 is preferably formed on the outer peripheral side relative to the center of the concave surface.
(23) When touching the edge portion 402, liquid films or liquid droplets of fuel accumulated on the lower end face of the fuel injection valve are trapped in the edge portion 402 due to a surface tension effect. As a result, the liquid films and the liquid droplets are attracted toward an edge side, so that the accumulation of the fuel in the vicinity of a fuel injection hole 201 can be reduced.
Third Embodiment
(24) A fuel injection valve according to a third embodiment of the present invention is described below by referring to
(25) As illustrated in
Fourth Embodiment
(26) A fuel injection valve according to a fourth embodiment of the present invention is described below by referring to
(27) Fuel accumulated on a lower end face of the fuel injection valve is easily accumulated in the concave surface 603. Since an edge 602 is provided in an outer peripheral region of the concave surface 603, liquid droplets or liquid films accumulated on the lower end face of the fuel injection valve are attracted to an edge portion 602 due to the reason mentioned above.
(28) In the present embodiment, the outer peripheral portion 601 is formed approximately in the same direction as an axial direction of an electromagnetic fuel injection valve 100, and the edge portion 602 is formed at an intersection between the outer peripheral portion 601 and the concave surface 603. At this time, a crossing angle between the outer peripheral portion 601 and the concave surface 603 is desirably from 90 degrees to 180 degrees. The edge portion 602 is desirably formed on the outer peripheral side relative to the center of the concave surface 603.
(29) As a result, a surface area of accumulated liquid droplets or liquid films increases and a film thickness of the accumulated fuel decreases, thus accelerating evaporation of the fuel and reducing deposit.
Fifth Embodiment
(30) A fuel injection valve according to a fifth embodiment of the present invention is described below by referring to
Sixth Embodiment
(31) A fuel injection valve according to a sixth embodiment of the present invention is described below by referring to
Seventh Embodiment
(32) A fuel injection valve according to a seventh embodiment of the present invention is described below by referring to
(33) As described above, the wettability for the fuel of the concave shape is changed using the dimples. Alternatively, the similar effect can be obtained by increasing the surface roughness to improve the wettability, for example. Instead of the dimples, a similar effect can be obtained with a thin groove formed concentrically about the center axis of the fuel injection valve.
(34) As described in the embodiments above, by implementing the fuel injection apparatus (electromagnetic fuel injection valve 100) which prevents the generation of the deposit in the vicinity of the outlet of the injection hole 201 and in which the spray pattern or the injection flow rate does not largely change over time, the internal combustion engine with improved exhaust performance and fuel consumption efficiency can be implemented.
REFERENCE SIGNS LIST
(35) 100 electromagnetic fuel injection valve 101 valve body 102 valve seat member (seat member) 103 guide member 104 nozzle body 105 valve body guide 106 movable element 107 magnetic core 108 coil 109 yoke 110 energizing spring 111 connector 112 fuel supply inlet 201 injection nozzle (fuel injection hole) 202 spherical surface of valve body 203 valve seat surface 204 vertical center axis of fuel injection valve 205 step portion 206 counterbore portion 207 lower end concave surface of fuel injection valve 208 dimple on outer peripheral side of concave curved surface 209 convex curved surface 301 liquid droplet or liquid film 302 moving direction of liquid droplet or liquid film 303 outer peripheral region of concave surface 304 inner peripheral region of concave surface 401 outer peripheral region of edge portion 402 edge portion 501 dimple formed on outer peripheral side of edge portion 601 outer peripheral region of edge portion 602 edge portion 603 concave shape formed on outer peripheral side of convex shape 209 701 dimple formed on outer peripheral side of concave curved surface 701 dimple formed on outer peripheral side of edge 602