POSITIONING FEATURE OF A STATOR ASSEMBLY OF A FUEL INJECTOR
20200018275 ยท 2020-01-16
Inventors
Cpc classification
F02M51/0614
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M51/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M51/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A positioning feature includes a first member so that in an embodiment where the pins of a connector are perpendicular to a main axis, an incorrect angular orientation is prevented by the positioning feature that would contact one of the pins and, a correct angular orientation is assured by the engagement of the first member between the pins.
Claims
1-11. (canceled)
12. A positioning feature adapted to be arranged at an extremity of electrical leads of a stator assembly of a fuel injector, said extremity being provided with two terminals adapted to engage about a main axis in electrical contact with two pins of a connector, the positioning feature preventing incorrect positioning of the two terminals relative to the two pins, the positioning feature comprising: a first member having a transverse front face with a length which is smaller than an inter-pins distance of said two pins so that, during the engagement process with said connector having said two pins extending perpendicular to the main axis, an incorrect angular orientation of the stator assembly is prevented by a preliminary contact between the front face and one of the two pins and, a correct angular orientation is assured by the engagement of the first member between the two pins.
13. A positioning feature as claimed in claim 12, wherein said first member defines two axially extending lateral faces each joining one end of the front face so that, a finer adjustment of the angular orientation of the stator assembly is provided by said two axially extending lateral faces contacting the two pins and therefore preventing further rotation of the stator assembly.
14. A positioning feature as claimed in claim 13 further comprising: a second member arranged around the electrical leads and defining side axial faces so that, during the engagement process with the connector having the two pins extending aligned with the main axis, a correct angular orientation of the stator assembly is assured by the engagement of each of the two pins next to a respective one of said side axial faces.
15. A positioning feature as claimed in claim 14 wherein the second member defines two notches which engage the two pins when being correctly oriented, the side axial faces being faces of the two notches.
16. A positioning feature as claimed in claim 14, wherein the first member and the second member are integrally moulded together.
17. A positioning feature adapted to be arranged at the extremity of electrical leads of a stator assembly of a fuel injector, said extremity being provided with two terminals adapted to engage about a main axis in electrical contact with two pins of a connector, the positioning feature preventing incorrect positioning of the two terminals relative to the two pins, the positioning feature comprising: a member arranged around the electrical leads and defining side axial faces so that, during the engagement process with the connector having the two pins extending aligned with the main axis, a correct angular orientation of the stator assembly is assured by the engagement of each of the two pins next to a respective one of said side axial faces.
18. Positioning feature as claimed in claim 17 wherein the member defines two notches which engage the two pins when being correctly oriented, the side axial faces being faces of the two notches.
19. A stator assembly of a fuel injector, said stator assembly comprising: a solenoid and electrical leads overmoulded so that a cylindrical body is formed, from an end of which extend the electrical leads provided at their extremity with electrical terminals adapted to engage about a main axis in electrical contact with two pins of a connector; and a positioning feature arranged beside the terminals, the positioning feature comprising: a first member having a transverse front face with a length which is smaller than an inter-pins distance of said two pins so that, during the engagement process with said connector having said two pins extending perpendicular to the main axis, an incorrect angular orientation of the stator assembly is prevented by a preliminary contact between the front face and one of the two pins and, a correct angular orientation is assured by the engagement of the first member between the two pins.
20. A stator assembly as claimed in claim 19, wherein said first member defines two axially extending lateral faces each joining one end of the front face so that, a finer adjustment of the angular orientation of the stator assembly is provided by said two axially extending lateral faces contacting the two pins and therefore preventing further rotation of the stator assembly.
21. A stator assembly as claimed in claim 20, wherein said positioning feature further comprises a second member arranged around the electrical leads and defining side axial faces so that, during the engagement process with the connector having the two pins extending aligned with the main axis, a correct angular orientation of the stator assembly is assured by the engagement of each of the two pins next to a respective one of said side axial faces.
22. A stator assembly as claimed in claim 21 wherein the second member defines two notches which engage the two pins when being correctly oriented, the side axial faces being faces of the two notches.
23. A stator assembly as claimed in claim 21, wherein the first member and the second member are integrally moulded together.
24. A stator assembly as claimed in claim 19 wherein the positioning feature is integrally moulded with the stator assembly.
25. A stator assembly as claimed in claim 24 wherein the terminals are sprung blades adapted to resiliently deflect when being forced in contact against the two pins of the connector, an accidental contact between said sprung terminals being prevented by an isolating partition wall overmoulded between the sprung terminals, said isolating partition wall being integral to the cylindrical body.
26. A stator assembly as claimed in claim 25, wherein said first member of the positioning feature is perpendicular to said isolating partition wall.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present invention is now described by way of example with reference to the accompanying drawings in which:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0027] A fuel injector 10 not represented, delivers in use, pressurised fuel via holes provided in a nozzle protruding in a piston of an internal combustion engine. A valve member also often identified as a needle is arranged in the body 12 of the injector 10 and is adapted to alternatively close and open said holes. In an hydraulically piloted injector, such as a diesel fuel injectors, a control valve 14 hydraulically commands the displacements of said needle by enabling fuel pressure to rise or to drop within a control chamber. Said control valve 14 comprises a stator assembly 16 fixed in the body 12 and adapted to cooperate with a movable armature-and-stem assembly, not represented.
[0028] In reference to
[0029] At the very top of the fuel injector is arranged an electrical connector 38, represented in
[0030] During the assembly process, the connector 38 is arranged at the top of the injector body 12, the two pins 40, 42 extending above the opening of a bore provided in said body and then, the stator assembly 16 is upwardly inserted in said bore, the thin body 34 with the terminals 28, 30 and the head end 20 engaging first and being inwardly pushed by the large body 32. When the insertion is almost complete the terminals 28, 30 come in contact with the pins 40, 42 then, further upward displacement of the stator assembly 16 forces the blade terminals 28, 30 to engage between the pins 40, 42 to resiliently deflect and flatten against the partition wall 37 exerting contact forces ensuring electrical contact between said pins and said terminals, thus finally enabling electrical connection from a command unit complementary plugged in said connector 38 to the solenoid.
[0031] In the first embodiment of
[0032] To avoid incorrect positioning of the terminals and the pins, leading to poor and defective electrical contacts, as shown on
[0033] In the exemplary embodiment represented, said positioning feature 44 is integrally moulded with the stator assembly 16. In alternative embodiments, said alignment feature can be a separate feature arranged on the stator assembly.
[0034] More in details, the alignment feature 44 represented in
[0035] The first member 46 is a planar member laterally extensions on both sides of an end the partition wall 37. Said first member 46 defines a peripheral rectangular top face 48 with main length L48 extending along the transverse axis Z1, from the distant edges of which downwardly extend along the main axis X1, two rectangular opposed lateral faces 50, 52 mainly extending along the main axis X1. The length L48 of the front face is just smaller than the inter-pin distance D2 and, as visible on the top view of
[0036]
[0037] In an alternative embodiment not show, the alignment feature could be provided with a second first member arranged at the opposite end of the partition wall, changing the cross-section from a T to a symmetrical shape with upper and lower horizontal bars.
[0038] The alignment feature 44 further comprises the second member 54, particularly used for the aligned assembly of the second embodiment of
[0039] The second member 54 being arranged below the first member 46 does not interfere, and plays no role in the perpendicular first embodiment of
[0040] As it is shown in the aligned second embodiment of
[0041] In the embodiment represented, the positioning feature comprises only one first member 46 and, the second member 54 comprises two opposed halves, one of them being moulded below the first member 46, the other being moulded on the other side of the partition wall where there is no first member. Said second half of the second member therefore defines a semi-circular flat upward face that can be considered similarly to a joining shoulder face 56.
[0042] Furthermore, the positioning feature 44 could only comprise one first member 46 and only one half of the second member, this still accommodating both the perpendicular and the aligned arrangements.
[0043] Because of said two distinct embodiments, perpendicular engagement and aligned engagement, the described positioning feature 44 comprises two distinct members 46, 54 but, should only one embodiment having to be considered, the positioning feature 44 could only comprise only the one relevant member, either a first member 46 or a second member 54.
LIST OF REFERENCES
[0044] X1 main axis [0045] Y1 longitudinal axis [0046] Z1 transverse axis [0047] X2 connector axis [0048] D1 inter-terminal distance [0049] D2 inter-pins distance [0050] L48 length of the front face [0051] 10 fuel injector [0052] 12 body of the injector [0053] 14 control valve [0054] 16 stator assembly [0055] 18 bottom flat face of the stator assembly [0056] 20 head end of the stator assembly [0057] 22 solenoid [0058] 24 electrical leads [0059] 26 electrical leads [0060] 28 terminal [0061] 30 terminal [0062] 32 large cylindrical body [0063] 34 thin cylindrical body [0064] 36 shoulder face [0065] 37 partition wall [0066] 38 connector [0067] 40 pin [0068] 42 pin [0069] 44 alignment featurepoka-yoke [0070] 46 first member [0071] 48 front face of the first member [0072] 50 lateral face of the first member [0073] 52 lateral face of the first member [0074] 54 second member [0075] 56 shoulder face joining first and second members [0076] 58 notch [0077] 60 notch [0078] 62 side face of the notch [0079] 64 groove