FUEL INJECTING NOZZLE
20220065198 · 2022-03-03
Inventors
- Daisuke Suzuki (Iwate, JP)
- Takumi Takahashi (Iwate, JP)
- Naoya Wada (Iwate, JP)
- Giovanni Leccese (Iwate, JP)
- Satomi Ochiyasu (Iwate, JP)
- Haruki Kudo (Iwate, JP)
- Toshiyuki Kuyo (Iwate, JP)
Cpc classification
International classification
Abstract
To provide a fuel injection nozzle that not only enables adjustment of a flow rate, but also causes contaminants and gum to pass through to reduce an effect on the flow rate. A fuel injection nozzle having a flat portion on an outer peripheral face of a needle is disclosed. The fuel injection nozzle opens at a predetermined angle, and, by the needle moving in an axial direction in an inner periphery of an injection hole, gaps are formed between the outer peripheral face of the needle and an inner peripheral face of the injection hole of a nozzle body. Adjustment to a desired fuel injection flow rate is possible by setting an outer diameter of the needle, a distance from the seat portion to a starting position of the flat portion on the outer peripheral face of the needle, and an incline angle of the flat portion.
Claims
1. A fuel injection nozzle, comprising: a cylindrical nozzle body that is continuous with an injection hole, made of a cylindrical cavity having a prescribed length at whose distal end is formed a nozzle hole that injects fuel to an air intake passage of a carburetor in an engine, and a seat face of a truncated-cone shape forming a fuel channel on a proximal-end side of the nozzle hole; and a cylindrical needle that has a seat portion of a truncated-cone shape, which opens and closes the fuel channel by sitting away from or against the seat face, and is housed so as to be able to reciprocate in an axial direction in the cylindrical nozzle body, a flat portion being formed, on an outer peripheral face of the cylindrical needle, that opens at a predetermined angle from the seat portion to a distal-end face, and, by the cylindrical needle moving in the axial direction in an inner periphery of the injection hole, a gap amount formed between the outer peripheral face of the cylindrical needle and an inner peripheral face of the injection hole of the cylindrical nozzle body being adjusted so a predetermined quantity of fuel is injected to the air intake passage, or fuel injection being stopped by seating the seat portion of the cylindrical needle on the seat face of the cylindrical nozzle body, wherein adjustment to a desired fuel injection flow rate is possible by setting an outer diameter of the cylindrical needle, a distance from the seat portion to a starting position of the flat portion formed on the outer peripheral face of the cylindrical needle, and an incline angle of the flat portion.
2. The fuel injection nozzle according to claim 1, wherein the flat portion formed on the outer peripheral face of the cylindrical needle starts a predetermined distance away, in a distal-end direction, from the seat portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The foregoing summary, as well as the following detailed description, is better understood when read in conjunction with the accompanying drawings. The accompanying drawings, which are incorporated herein and form part of the specification, illustrate a plurality of embodiments and, together with the description, further serve to explain the principles involved and to enable a person skilled in the relevant art(s) to make and use the disclosed technologies.
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[0023] The figures and the following description describe certain embodiments by way of illustration only. One skilled in the art will readily recognize from the following description that alternative embodiments of the structures and methods illustrated herein may be employed without departing from the principles described herein. Reference will now be made in detail to several embodiments, examples of which are illustrated in the accompanying figures. It is noted that wherever practicable similar or like reference numbers may be used in the figures to indicate similar or like functionality.
DETAILED DESCRIPTION
[0024] An embodiment of a fuel injection nozzle is described below based on the included drawings.
[0025] Note that a mechanism of reciprocating motion of a needle that is used in a fuel injecting nozzle and a method of using the fuel injection nozzle may be like a conventional fuel injection apparatus, and detailed description thereof is omitted.
[0026] Furthermore, components identical or similar to the conventional example illustrated in
[0027]
[0028] Additionally, in an embodiment that is illustrated in
[0029] In the present embodiment that has a structure having such a configuration, the flat portion 11 formed on the outer peripheral surface 8 of the needle 7 starts a prescribed distance away from the seat portion 6 in the distal-end direction. As such, simply inserting the cylindrical base portion of the needle 7 into the cylindrical injection hole 2 easily and reliably forms a concentric state between an axial center of the needle 7 and an axial center of the injection hole 2 of the nozzle body 5. This enables smooth reciprocation of the needle 7 in an axial direction and facilitates assembly such that there may not be concern about damaging the tip of the needle 7 at a time of assembly.
[0030] Furthermore, an example embodiment injects a predetermined quantity of fuel to the air intake passage 10 by adjusting gaps 9, 12 formed relative to an inner peripheral face of the injection hole 2 of the nozzle body 5. This may be done by moving the needle 7 in an opening direction (upward or downward in
[0031] At this time, in the present embodiment, as illustrated in
[0032] Furthermore,
[0033] Furthermore,
[0034] Therefore, the nozzle for fuel injection in the present embodiment may, by changing these parameters, set a fuel injection nozzle adjusted to have predetermined changes in the opening area relative to predetermined feed amounts based on the relationship between the feed amount of the needle 7 relative to the nozzle body 5 and the opening area.
[0035]
[0036] In an example embodiment, the characteristics may be set to approximate the change in opening area, in respect to the amount of movement of a conventional circular conical fuel injecting nozzle, through adjusting the inclination angle of the flat portion 11 depicted in
[0037] Furthermore, machining may be easier compared to the existing conical fuel injection nozzle—cut angles/positions are easily adjusted, measurement is easy, variation is low, and dimensional precision can be achieved. As such, a carburetor that may be inexpensive and performs well may be supplied.
[0038] Note that while the present embodiment was explained for a spray-type carburetor, application is possible in the same way for a fuel injecting valve that uses injection wherein fuel is sprayed into the cylinder of the engine, for.
REFERENCE SYMBOLS
[0039] 1: Spray Hole
[0040] 2: Injecting Hole
[0041] 3: Fuel Flow Path
[0042] 4: Seat Surface
[0043] 5: Nozzle Body
[0044] 6: Seat Portion
[0045] 7: Needle
[0046] 8: Outer Peripheral Surface
[0047] 9: Gap
[0048] 10: Air Intake Passage
[0049] 11: Flat Face Portion
[0050] 12: Gap
[0051] 111: Starting Position.
[0052] The foregoing description of the embodiments of the present invention has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the present invention to the precise form disclosed. Many modifications and variations are possible in light of the above teaching. It is intended that the scope of the present invention be limited not by this detailed description, but rather by the claims of this application. As will be understood by those familiar with the art, the present invention may be embodied in other specific forms without departing from the spirit or essential characteristics thereof. Likewise, the particular naming and division of the modules, routines, features, attributes, methodologies and other aspects are not mandatory or significant, and the mechanisms that implement the present invention or its features may have different names, divisions and/or formats.
[0053] Furthermore, as will be apparent to one of ordinary skill in the relevant art, the modules, routines, features, attributes, methodologies and other aspects of the present invention can be implemented as software, hardware, firmware or any combination of the three. Also, wherever a component, an example of which is a module, of the present invention is implemented as software, the component can be implemented as a standalone program, as part of a larger program, as a plurality of separate programs, as a statically or dynamically linked library, as a kernel loadable module, as a device driver, and/or in every and any other way known now or in the future to those of ordinary skill in the art of computer programming.
[0054] Additionally, the present invention is in no way limited to implementation in any specific programming language, or for any specific operating system or environment. Accordingly, the disclosure of the present invention is intended to be illustrative, but not limiting, of the scope of the present invention, which is set forth in the following claims.