FUEL INJECTOR
20230060646 · 2023-03-02
Inventors
Cpc classification
F02M61/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/8084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M61/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An injector comprises a tubular nozzle body having a nozzle side, receiving a needle valve member, and an actuator side, receiving a tubular magnetic armature and receiving an armature side of a tubular pole piece above the magnetic armature, wherein the nozzle body and the pole piece are welded together through a seam weld line between an inner tubular surface of the actuator side of the tubular nozzle body and an outer tubular surface of the armature side of the pole piece. The actuator side of the tubular nozzle body comprises a constricted area while the outer surface of the armature side of the pole piece comprises a recessed area, the constricted area and the recessed area contacting each other at a level of the seam weld line and providing a friction area transmitting hydraulic load away from the seam weld line.
Claims
1. An injector comprising a tubular nozzle body having a nozzle side, receiving a needle valve member, and an actuator side, receiving a tubular magnetic armature and receiving an armature side of a tubular pole piece above the magnetic armature, wherein the nozzle body and the pole piece are welded together through a seam weld line between an inner tubular surface of the actuator side of the tubular nozzle body and an outer tubular surface of the armature side of the pole piece, wherein the actuator side of the tubular nozzle body comprises a constricted area while the outer surface of the armature side of the pole piece comprises a recessed area, the constricted area and the recessed area contacting each other at a level of the seam weld line and providing a friction area reducing hydraulic load on the seam weld line.
2. The injector according to claim 1, wherein the recessed area is formed through a chamfer of the outer surface in an nozzle to inlet axial direction of the tubular pole piece, the tubular pole piece having a diameter decreasing in the nozzle to inlet axial direction.
3. The injector according to claim 1, wherein in an nozzle to inlet axial direction the armature side of the pole piece comprises a first diameter providing a contact surface with an inner diameter of the tubular nozzle actuator side and a second diameter above the first diameter, the second diameter being smaller than the first diameter and forming the recessed area.
4. The injector according to claim 1, wherein the constricted area, provided at the upper end of the actuator side of the tubular nozzle body, reduces the diameter of the nozzle body towards and up to a top of the actuator side of the nozzle body.
5. The injector according to claim 4, wherein the constricted area and the recessed area extend around the seam weld line.
6. The injector according to claim 4, wherein the seam weld line is provided at the upper end of the actuator side of the tubular nozzle body and ends the constricted area.
7. The injector according to claim 1 wherein the seam weld line is a continuous annular weld line.
8. A process for manufacturing the injector according to claim 1, the method comprising applying pressure on the top end of the nozzle body with a tool adapted to apply a preload on the upper end of the actuator side of the nozzle body while laser welding the nozzle body with the pole piece, the tool pressing the upper end of the actuator side of the nozzle body to deform the top end of the nozzle body in a centripetal direction into the constricted area until the constricted area contacts the recessed area of the pole piece during laser welding of the nozzle body and the pole piece.
9. The process for manufacturing an injector according to claim wherein the tool has a tubular wall provided with an internally conical end pressing the upper end of the actuator side of the nozzle body and wherein the tool, the nozzle body and the pole piece are rotated around a common axis during the laser welding while the beam of the laser is fixed to provide the annular seam weld line and the constricted area contacting the recessed area.
10. The process for manufacturing an injector according to claim wherein the tool comprises at least one roller pressing the upper end of the actuator side of the nozzle body while the nozzle body and the pole piece are rotated around a common axis during the laser welding and the beam of the laser is fixed thus providing the annular seam weld line and the constricted area contacting the recessed area.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] A detailed description of exemplary embodiments of the invention will be discussed hereunder in reference to the attached drawings where:
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0031] The present invention concerns an electromagnetic injector, particularly an injector for a gasoline engine where the injection pressure is within the 200-400 bar range. Such an injector as depicted in the longitudinal cut view of
[0032] The bottom part of the needle valve member is received in a tubular nozzle body 1. The tubular nozzle body has an enlarged upper part or actuator side 1a which houses the tubular magnetic armature 3 and a bottom part 4b of the pole piece 4. The bottom part of the pole piece houses a head 2a of the needle valve member, its core spring 14 and a calibration sleeve 21.
[0033] In the described design, the actuator side 1a of the nozzle body 1 is surrounded by a solenoid assembly 11. The pole piece 4 comprises an upper part that extends above said intermediate part and provides an inlet for gasoline in the injector. This upper part or inlet side 4a of the pole piece is introduced in a distribution tube not represented and receives a sealing gasket 17 to provide a leak-proof fluid connection.
[0034] The injector comprises also a sleeve 23 provided with an electrical connector retained by a weld. Another configuration of the pole piece is possible depending on the type of gasoline distribution system.
[0035] The inlet side 4a of the pole piece 4 may also comprise attachment means to a gasoline distributor circuit such as bores 12.
[0036] On the nozzle side 1b of the nozzle body, a ball 19 and nozzle 20 are provided under the needle valve member 2.
[0037] Such an injector must be leak proof at internal gasoline pressures from 200 bar to around 400 bars. With reference to
[0038] Assembly of the injector may comprise positioning the tubular magnetic armature 3, the nozzle 20 with the ball 19, the needle valve member 2 in the tubular nozzle body, positioning the pole piece with the needle valve member core spring 14 and calibration sleeve 21 in the pole piece and assembling the equipped pole piece and tubular nozzle body.
[0039] Assembling the nozzle body and the pole piece is done at an armature side 4b of the pole piece and the actuator side 1a of the nozzle body. Such assembly of the actuator side 1a of the tubular nozzle body 1 and the armature side 4b of the pole piece 4 is done by welding these parts together as schematically represented on
[0040]
[0041] According to the disclosure, the upper end, or actuator side 1a, of the tubular nozzle body comprises a constricted area 8 while said outer surface of the bottom part, or armature side 4b, of the pole piece comprises a recessed area.
[0042] By constricted area is meant a part of the tubular body having outer and internal reduced diameters. In the examples of
[0043] By recessed area is meant a part of the outer surface of the pole piece with a locally decreasing diameter or a diameter at least locally reduced.
[0044]
[0045] In
[0046] On the tubular nozzle body side, the upper end of the actuator side 1a of the nozzle body is straight before welding in
[0047] With this configuration, the allowable pressure may be increased above 350 bars while a similar injector without such a friction area is usually limited to around 250 bars.
[0048] In the following paragraph, the injector is viewed as in
[0049] Back to
[0050] Back to
[0051] With this design, the constricted area 8 provided at the upper end of the actuator side 1a of the tubular nozzle body reduces the diameter of the nozzle body towards and up to said upper end.
[0052] This design is particularly interesting when the injector is “hanging” from the gasoline distribution system which means that the injector is fixed to the gasoline distribution system and that the nozzle side 1b of the nozzle body is inserted in a bore of the cylinder head without axial locking. In such a case, the internal pressure in the injector is not counterbalanced by such an axial locking.
[0053] In order to provide the constricted area, a method used in the present disclosure comprises applying a preload P on the upper end of the actuator side 1a of the nozzle body with a tool 13.
[0054] In a first embodiment of the present disclosure, as described in
[0055] he internal conical end pressing said upper end of the nozzle body in a centripetal direction during laser welding W of said nozzle body and said pole piece. This deforms the top end of the nozzle body into said constricted area contacting said recessed area of the pole piece.
[0056] As the parts are rotated in front of the welding laser 22 around axis A, the tool 13 is rotated together with the welded parts to avoid friction with the nozzle body. The preload is preferably maintained until the weld line is finished. Such pressure together with the laser welding heat creates the constricted area of the end of the tubular nozzle body.
[0057] With such process, a nozzle body end having a relatively thick wall, e.g. a wall having a thickness between 0.45 mm and 1.0 mm depending on the material strength may be constricted without deteriorating the weld line between the nozzle body and the pole piece.
[0058] In another embodiment as per
[0059] The gaps separating the rollers permit to direct the laser beam towards the upper end of actuator side 1a of the tubular nozzle body. This allows welding the pole piece and nozzle body at the upper end of the nozzle body as shown in
[0060] In this embodiment, the laser is fixed and the injector parts turn which cause the rollers 25 to apply pressure on the heated seam weld line 5a while rolling on the edge of the upper end of the tubular nozzle body. Such pressure combined with the welding heat causes the upper end of the tubular nozzle body to deform and create the constricted area.
[0061] The rollers are made of a hard material such as steel or a material such as ceramics to limit heat losses at the contact point with the edge of the nozzle body upper end.
[0062] The invention is not limited to the above described examples and in particular the configuration of the solenoid 11, its housing and/or the sleeve 23 may depart from the example shown. In particular while the description refers to laser welding, the welding process may use an electron beam welding process which also permits to weld parts positioned side by side.
LIST OF REFERENCES
[0063] 1—Tubular nozzle body [0064] 1a—Actuator side of tubular nozzle body [0065] 1b—Nozzle side of tubular nozzle body [0066] 2—Needle valve member [0067] 2a—Head of the needle valve member [0068] 3—Tubular magnetic armature [0069] 4—Pole piece [0070] 4a—Inlet side of the pole piece [0071] 4b—Armature side of the pole piece [0072] 5—Seam weld line [0073] 5a—End seam weld line [0074] 6—Inner tubular surface of the tubular nozzle body [0075] 7—Outer tubular surface of said bottom part [0076] 8, 8a—Constricted area [0077] 9, 10—Recessed areas [0078] 11—Solenoid [0079] 12—bores [0080] 13—Tool [0081] 14—Needle valve member core spring [0082] 15—Actuator body [0083] 16—Axial bore [0084] 17—Sealing gasket [0085] 18—Spring clip [0086] 19—Ball [0087] 20—Nozzle [0088] 21—Calibration sleeve [0089] 22—Welding laser [0090] 22a—Laser beam [0091] 23—Sleeve [0092] 24a—First diameter [0093] 24b—Second diameter [0094] 25—Roller [0095] A—Common axis [0096] P—Preload [0097] R—Rotation [0098] W—Welding