The present invention relates to a shielding spring shell and, more particularly, to a shielding spring shell for a high current plug-in connection.
Shielding is essential to ensure electromagnetic compatibility of a system. The shielding is used to keep electrical and/or magnetic fields away from the system or to protect the environment from the fields emanating from the system. In order to ensure the shielding in plug-in systems during operation, continuous contact of the shielding of the connector to the mating connector, in particular for shielding the mating connector, is important. The continuous contact, however, proves to be difficult because high stresses in use, for example vibrations, can lead to interruptions of the contact.
A shielding spring shell has a contact tab with a pair of spring sections adjoining a fillet. One of the spring sections is an at least radially resilient radial spring and another of the spring sections is an at least axially resilient axial spring.
The invention will now be described by way of example with reference to the accompanying Figures, of which:
In the following, the invention will be described in more detail using embodiments with reference to the appended figures. Elements in the figures that correspond to one another in terms of structure and/or function are provided with the same reference symbols. The combinations of features shown and described in the individual embodiments are for explanatory purposes only. A feature of an embodiment may be dispensed with if its technical effect is of no significance in a particular application. Conversely, a further feature may be added in an embodiment should its technical effect be advantageous or necessary for a particular application.
A shielding spring shell 1 according to an embodiment is shown in
At least radially resilient or at least axially resilient within the meaning of the application means that the radial spring 8 can be mainly radially resilient, i.e. that a spring strength of the radial spring 8 can be the lowest in the radial direction, or that the axial spring 10 can be configured to be mainly axially resilient, i.e., a spring strength of the axial spring 10 is the lowest in the axial direction. Of course, the radial spring 8 can also be axially resilient or the axial spring 10 can also be radially resilient, for example, the respective springs can be deflected resiliently in the axial direction or in the radial direction, respectively, due to static friction at a pressing surface arranged on a mating connector.
The shielding spring shell 1, as shown in
In the exemplary embodiment shown in
The arrangement of contact tabs 2 at the respective ends 18 is independent of the arrangement of contact tabs 2 at oppositely disposed end 18. The position, number, and/or shape of contact tabs 2 at the respective ends may differ. In the figures, two embodiments of a contact tab 2 according to the invention on a shielding spring shell 1 are shown by way of example which shall be described below as the first embodiment of contact tab 3 and the second embodiment of contact tab 5.
As is shown by way of example in
In the exemplary embodiment shown in
In order to simplify the bending over of contact tabs 3, contact tabs 3 may extend away from edge 20 at a radially outwardly inclined angle along longitudinal axis L prior to bending. As a result, an opening 24 described by shielding spring shell 1 may widen conically in the direction toward a free end 26 of contact tabs 3. At free end 26 of contact tabs 3, which is formed by axial spring 10 after bending, contact tab 3 may have a bulge 28 that bulges radially inward at least prior to bending. A contact surface 30 may be formed on bulge 28 for contacting a pressing surface of a mating connector to preload the axial spring 10 in a direction toward the pressing surface of the mating connector.
The first embodiment of contact tab 3 is shown in
Contact tab 3 according to the first embodiment may be bent back radially outwardly in the direction toward edge 20 from which respective contact tab 3 extends away by a first arc 32, wherein radial spring 8 extends away from the first arc 32. Radial spring 8 may extend away from first arc 32 at an angle inclined radially outwardly from longitudinal axis L, i.e. radial spring 8 may be preloaded radially outwardly over first arc 32. At its end facing away from first arc 32, radial spring 8 flows into a second arc 34 by which fillet 4 is formed and from which the axial spring 10 extends away substantially in the radial direction. An angle 36 of the fillet 4 between radial spring 8 and axial spring 10, in an embodiment, is at most about 90°, and may be between 45° and 90°. Axial spring 10 extends substantially in the radial direction away from fillet 4, wherein contact surface 30 is formed on bulge 28 which is pronounced in the direction away from oppositely disposed end 18, at least after bending.
The second embodiment of contact tab 5 in
Contact tab 5 according to the second embodiment is bent back radially outwardly by a first arc 32 in the direction toward end 18 from which contact tab 5 extends away. In order to increase the spring rigidity of contact tab 5, contact tab 5 may taper in circumferential direction U in the direction away from edge 20. Contact tab 5 may taper up to fillet 4, in particular in spring section 6 forming radial spring 8, and axial spring 10 may extend substantially radially outwardly away from fillet 4 at a uniform width in circumferential direction U. Compared to the first embodiment, angle 36 of the fillet is more acute in the second embodiment, which results in a greater preload of axial spring 10 in the axial direction away from opposite end 18 of shell body 12.
The free end 26 of axial spring 10 in the second embodiment of contact tab 5 shown in
Both embodiments of contact tab 2, in an embodiment, have a radial spring 8 having a yielding contact surface 30 pointing in the radial direction and an axial spring 10 having a yielding contact surface 30 pointing in the axial direction. As a result, relative motions of the mating connector and the connector in the axial direction and in the radial direction may be compensated for more reliably.
Shielding spring shell 1 may be formed integrally as a monolithic component 40, whereby shielding currents may be conducted through the shielding spring shell 1 without additional contact resistances. The shielding spring shell 1 may be shaped, for example, as a punched and bent member which enables inexpensive and fast production, in particular in large numbers.
If the spring force of the radial spring 8 is to be further increased, then the radial spring 8 may be provided with a spring tab extending in the direction toward the jacket surface of the shell body 12 and supportable on the jacket surface. As a result, the radial spring 8 is not only determined in the radial direction by the arc between the radial spring 8 and the edge of the shell body 12, but also improved by the spring tab.
An exemplary embodiment of a connector 42 shall now be explained in more detail below with reference to
Connector 42, as shown in
Contact tab 3 according to the first embodiment may be bent around a wall 48 of receptacle 46 (see
Base body 44, as shown in
In order to fasten collar 50 to base body 44, ribs 58 may be provided and extend from base body 44 to collar 50, as shown in
For stabilization, collar 50 may be provided with shoulders 62 extending along longitudinal axis L, as shown in
On the opposite side, as shown in
For the most inexpensive production of connector 42, base body 44 and collar 50 may be formed integrally as a monolithic housing 68 by molding the collar 50 onto the base body 44. In an embodiment, monolithic housing 68 may be electrically insulating. For example, housing 68 may be formed as an injection-molded member from insulating plastic material. In another embodiment, the housing 68 may be formed from a metallic material.
At least one notch 70 extending in the radial direction may be provided on flat side 69 of collar 50 facing ribs 58, as shown in
As can be seen in
Second mating connector 76 may be a shielded cable connector with a connector shielding 82 comprising a receiving opening 84 into which the second plug-in section 54 is inserted at least in part, so that at least first arc 32 of at least one contact tab 5 is arranged in the interior of connector shielding 82, as shown in
Motions between the mating connector 74, 76 and the connector 42 may be compensated for in both the radial and the axial direction with shielding spring shell 1 according to the invention. The mating connector 74, 76 may be contacted at two points by the contact tab 5, wherein the shielding is not impaired even when one contact disengages.
The contact tabs 2 of first and second embodiment 3, 5 may achieve different tasks. First mating connector 74 may represent a holding frame on which connector 42 is mounted, for example, by screwing or locking connector 42 to first mating connector 74. As a result, the relative motion between connector 42 and first mating connector 74 may be minimized. Since separating connector 42 and first mating connector 74 is only possible with increased effort, especially with a screw connection, contact tab 3 according to the first embodiment may contact mating connector 74 both radially and axially. As a result, two contacts to the mating connector 74 may be established for every contact tab 3 of the first embodiment.
Second mating connector 76 may be, for example, a plug connector. In an embodiment, only axial spring 10 contacts second mating connector 76 in a plugged-in initial state. In a first instance, axial spring 10 may follow a relative motion, for example, a vibration motion, of second mating connector 76 toward connector 42. Only when the spring force of axial spring 10 decreases or is too low may radial spring 8 contact second mating connector 76 in the radial direction. Radial spring 8 of contact tab 5 of the second embodiment serves not only to compensate for a relative motion between second mating connector 76 and connector 42 in the radial direction, but also as a lock that contacts second mating connector 76 in an extreme case, whereby impairment of the shielding due to the contact being dropped can be prevented.
Number | Date | Country | Kind |
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10 2020 200 976.7 | Jan 2020 | DE | national |
This application claims the benefit of the filing date under 35 U.S.C. § 119(a)-(d) of German Patent Application No. 102020200976.7, filed on Jan. 28, 2020.