Dual Connector With Spring And Insulation Displacement Connection (IDC) Terminals
20230223711 · 2023-07-13
Assignee
Inventors
- Stanislas Di Maggio (Torino, IT)
- Marcello Farinola (Torino, IT)
- Alessandro Genta (Collegno, IT)
- Dominik Heiss (Bensheim, DE)
Cpc classification
H01R43/01
ELECTRICITY
H01R43/26
ELECTRICITY
H01R13/65914
ELECTRICITY
International classification
Abstract
An electrical connector for grounding a multicore cable having a shield includes a spring terminal engaging the shield and an insulation displacement connection (IDC) terminal terminating a ground wire. The shield is grounded through the electrical connector.
Claims
1. An electrical connector for grounding a multicore cable having a shield, comprising: a spring terminal engaging the shield; and an insulation displacement connection (IDC) terminal terminating a ground wire, the shield is grounded through the electrical connector.
2. The electrical connector of claim 1, wherein the spring terminal is adjacent to the IDC terminal.
3. The electrical connector of claim 2, wherein the spring terminal is connected to the IDC terminal by a connecting portion.
4. The electrical connector of claim 3, wherein the connecting portion is planar.
5. The electrical connector of claim 3, further comprising an insulating case covering the spring terminal, the IDC terminal, and the connecting portion.
6. The electrical connector of claim 5, further comprising a plurality of fixing elements fixing the spring terminal, the IDC terminal, and the connecting portion in the insulating case.
7. The electrical connector of claim 1, wherein the spring terminal and the IDC terminal are aligned.
8. The electrical connector of claim 7, wherein the spring terminal engages the shield and the IDC terminal simultaneously terminates the ground wire.
9. The electrical connector of claim 1, wherein the spring terminal has a semi-circular section matching a diameter of the multicore cable.
10. A connection system, comprising: an electrical connector for grounding a multicore cable having a shield, the electrical connector including a spring terminal engaging the shield and an insulation displacement connection (IDC) terminal terminating a ground wire, the shield is grounded through the electrical connector; and a support element accommodating the multicore cable and the ground wire, the electrical connector is mated to the support element to electrically connect the shield and the ground wire.
11. The connection system of claim 10, wherein the support element includes a guiding element and the electrical connector is movable along the guiding element between a first position and a second position.
12. The connection system of claim 11, wherein the first position corresponds to a partial assembly between the electrical connector and the support element and the second position corresponds to a configuration in which the shield and the ground wire are electrically connected through the electrical connector.
13. The connection system of claim 12, wherein the support element has a first cavity accommodating the multicore cable and a second cavity accommodating the ground wire.
14. The connection system of claim 10, wherein the support element has a locking device blocking a position of the electrical connector in a state in which the shield and the ground wire are electrically connected through the electrical connector.
15. A method for assembling a connection system, comprising: providing the connection system including an electrical connector and a support element, the electrical connector including a spring terminal and an insulation displacement connection (IDC) terminal; accommodating a multicore cable having a shield and a ground wire in the support element; pre-assembling the electrical connector and the support element; and mating the electrical connector and the support element to electrically connect the shield and the ground wire through the electrical connector.
16. The method of claim 15, wherein the pre-assembling step is carried out by moving the electrical connector from a first position corresponding to a pre-assembled configuration to a second position corresponding to an electrical connection of the shield and the ground wire through the electrical connector.
17. The method of claim 15, wherein the pre-assembling step is carried out so that the spring terminal engages the shield and the IDC terminal simultaneously terminates the ground wire.
18. The method of claim 16, further comprising blocking the electrical connector in the second position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The present invention will be described with reference to the attached figures in which the same reference numerals and/or signs indicate the same part and/or similar and/or corresponding parts of the machine. In the figures:
[0009]
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0020] In the following, the present invention is described with reference to particular embodiments as shown in the enclosed drawings. Nevertheless, the present invention is not limited to the particular embodiments described in the following detailed description and shown in the figures, but, instead, the embodiments described simply exemplify several aspects of the present invention, the scope of which is defined by the appended claims.
[0021] Further modifications and variations of the present invention will be clear for the person skilled in the art. Therefore, the present description must be considered as including all the modifications and/or variations of the present invention, the scope of which is defined by the appended claims.
[0022] For simplicity, identical or corresponding components are indicated in the figures with the same reference numbers.
[0023] In the description of embodiments of the invention disclosed herein, any reference to direction or orientation is merely intended for convenience of description and is not intended in any way to limit the scope of the present invention. Relative terms such as “lower”, “upper”, “above”, “below”, “up”, “down”, “top” and “bottom” as well as derivative thereof should be construed to refer to the orientation as then described or as shown in the drawing under discussion. These relative terms are for convenience of description only and do not require that the apparatus be constructed or operated in a particular orientation, unless explicitly indicated as such.
[0024]
[0025] The spring terminal 110 has a substantially semicircular section and is suitable for clamping the outer layer of a multicore cable having a predefined diameter (see for example the multicore cable 200 illustrated in
[0026] The IDC terminal 120 has a slot 121 having a substantially V-shaped section and is suitable for connecting an electrically insulated wire (see for example the ground wire 250 illustrated in
[0027] As can be seen in detail in the exploded view of the electrical connector 100 of
[0028] The insulating component comprises an insulating case 140, for instance made of a plastic material, encapsulating the conductive component 130. The insulating case 140, as shown in
[0029] The insulating case 140 protects and insulates the conductive components 130 of the electrical connector, in order to avoid leakages of current from the electrical connector 100. Moreover, the electrical connector 100 may be handled by an operator without risks. In fact, the operator may grab the portion of the electrical connector 100 corresponding to the connecting portion 135 covered by the insulating case 140.
[0030] In an embodiment, the insulating case 140 is preliminarily assembled with the conductive component 130 prior to use of the electrical connector 100 for grounding the shielded multicore cable 200.
[0031] The conductive component 130 further comprises three fixing elements 131, 132 and 133 for fixing it to the insulating case 140. The fixing elements 131, 132, 133 may comprise protruding tabs to be engaged with corresponding recesses formed in the insulating case 140. In the illustrative embodiment of
[0032] The electrical connector 100 is suitable for grounding a multicore cable 200, such as the one illustrated in
[0033] For example, for a three-phase connection, a multicore cable 200 comprising four single wires 220 and having a diameter of approximately 15.1 mm may be employed. For example, for a one-phase connection, a multicore cable 200 comprising two single wires 220 and having a diameter of approximately 12.8 mm may be employed.
[0034] Before inserting the multicore cable 200 into the electrical connector 100, the multicore cable 200 is prepared in such a way that the outer insulator 215 is partially cut out to expose the shield 210. The spring terminal 110 of the electrical connector 100 then clamps the shield 210 on the multicore cable 200, so as to establish a direct electrical contact. The spring terminal 110 is configured in such a way that, in the rest configuration, the diameter of the semicircular section is smaller than the diameter of the shield 210 and it can be deformed so that, in the clamping configuration, the diameter of the semicircular section equals the diameter of the shield 210. In this way, once the pre-cut multicore cable 200 is inserted into the corresponding opening of the spring terminal 110, direct electrical contact between the spring terminal 110 and the shield 210 is ensured.
[0035] In an embodiment, the diameter of the semi-circular section of the spring terminal 110 in the connection configuration may be equal to the diameter of the shield 210 of the multicore cable 200, i.e. equal to the diameter of the multicore cable 200 once the outer insulating layer 215 has been removed, in order to ensure clamping of same. In an embodiment, the diameter of the semi-circular section of the spring terminal 110 may be adaptable to the predefined diameter of the shield 210 of the multicore cable 200 and/or the predefined diameter of the multicore cable 200. For example, the size of the multicore cable 200 may vary depending on to the required standards and on the applications of the cable.
[0036] The IDC terminal 120 of the electrical connector 100 is used to terminate the ground wire or Protective Earth (PE) wire 250. The ground wire 250 comprises an insulating layer 251 and a conductive wire 252, as shown in
[0037] In an embodiment, the ground wire 250 is a single wire having a section, for instance, of 6 mm.sup.2. The width of the IDC terminal 120 may be configured to be smaller than the diameter of the single ground wire 250 after removal of the insulating layer.
[0038] As can be seen in the schematic illustration of
[0039] The support element 300, as shown in
[0040] The process for assembling the connection system 500, the multicore cable 200 and the ground wire 250 is described in detail with reference to
[0041]
[0042] After insertion of the cables into the corresponding cavities, the pre-cut end portions of the insulating layers 221 and 251 are removed. In this way, the end portions of the single wires 220 and of the ground wire 250 are ready for the successive electrical connections. In various embodiments, the free ends of the single wires of the multi-core cable 200 and of the ground wire 250 may be connected to other electrical devices, for instance by crimping and/or soldering connection.
[0043] As schematically illustrated in
[0044] At a later stage, schematically illustrated in
[0045] As schematically illustrated in
[0046] In an embodiment, the spring terminal 110 and the IDC terminal 120 may be attached to the same side of the connecting portion 135, for instance on the same side of the plate forming the connecting portion 135. The spring terminal 110 and the IDC terminal 120 may be designed so that, when the contact portion of the spring terminal 110 clamps the shield 210 of the multicore cable 200, the contact slot 121 of the IDC terminal 120 reaches the conductive part of the ground wire 250, after cutting the insulating layer 251 of the ground wire 250.
[0047] While displacing the electrical connector 100 from the pre-assembly position to the connection position, the electrical connector 100 slides along corresponding guiding element 310 formed on the support element 300 (which are illustrated in particular
[0048] Due to the particular geometry of the electrical connector 100, wherein the spring terminal 110 is adjacent to the IDC terminal 120, by displacing the electrical connector 100, it is possible to simultaneously engage and connect the shield 210 of the multicore cable 200 and the ground wire 250. In other words, the spring terminal 110 and the IDC terminal 120 are aligned, so that when the electrical connector 100 is pushed towards the wires 220 and 250, accommodated into the positioning guides 610, the spring terminal 110 can clamp the shield 210, and, at the same time, the IDC terminal 120 can terminate the ground wire 250. In this way, the shield 210 of the multicore cable 200 is grounded. This configuration has the advantage that the assembly process and the grounding of the shield 210 of the multicore cable 200 is carried out in a fast and efficient way.
[0049] After displacement of the electrical connector 100 to the connection position, the reciprocal position between the electrical connector 100 and the support element 300 is fixed by the corresponding locking device 340 (see in particular
[0050] The details of the structure of the guiding element 310 formed in the support element 300 are visible in
[0051] The details of the structure of the locking device 340 formed in the support element 300 are described with reference to
[0052] The connection system 500 comprising the electrical connector 100 and the support element 300 is provided to the customer in the pre-assembled configuration, wherein the electrical connector 100 is partially engaged with the support element 300 (see
[0053] According to an illustrative but non-limiting configuration, the support element 300 may form a cover element for a connector housing. Therefore, the connection system 500 with the multicore cable 200 and the ground wire 250 may be used to cover a corresponding housing of a connector.
[0054] According to a further embodiment of the present invention, a method for assembling the connection system as the ones described above is provided, the method comprising the following steps: [0055] a) accommodating the multicore cable 200 and the ground wire 250 into the support element 300; [0056] b) pre-assembling the electrical connector 100 and the support element 300; [0057] c) mating the electrical connector 100 and the support element 300 so as to electrically connect the shield 210 and the ground wire 250 through the electrical connector 100.
[0058] According to a further embodiment of the present invention, a method is provided wherein the step c) is carried out by moving the electrical connector 100 from a first position, corresponding to the configuration of pre-assembly, to a second position, corresponding to a configuration wherein the shield 210 and the ground wire 150 are electrically connected through the electrical connector 100.
[0059] According to a further embodiment of the present invention, a method is provided, wherein the step c) is carried out so that the spring terminal 110 engages the shield 210 and, at the same time, the IDC terminal 120 terminates the ground wire 150.
[0060] According to a further embodiment of the present invention, a method is provided further comprising the following step: [0061] d) blocking the electrical connector 100 in the second position corresponding to a configuration wherein the shield 210 and the ground wire 150 are electrically connected through the electrical connector 100.
[0062] In the electrical connector 100, the electrical connection for grounding a shielded multicore cable 200 is realized in a simple, fast and efficient way and the product quality is improved. Moreover, the electrical connector 100 is compact and easy to handle and the connection between the shield 210 of the multicore cable 200 and the ground wire 250 may be realized at any point along the length of the cables, so that the wire length can be optimized for further connection of the ends of the wires. Furthermore, since the ground wire 250 is connected to the corresponding terminal 120 by the IDC technology, there is no need to preliminarily strip or treat the ground wire 250 before connecting it to the IDC terminal 120 and to the electrical connector 100. Moreover, the spring terminal 110 may easily engage the shield 210 of the multicore cable 200 in order to establish an electrical connection. Thanks to the present solution, the electrical connector 100 firmly connects the shield 210 of the multicore cable 200 to the ground wire 250.
[0063] While the invention has been described with respect to embodiments constructed in accordance therewith, it will be apparent to those skilled in the art that various modifications, variations and improvements of the present invention may be made in the light of the above teachings and within the purview of the appended claims without departing from the spirit and intended scope of the invention.
[0064] In addition, those areas in which it is believed that those of ordinary skill in the art are familiar have not been described herein in order not to unnecessarily obscure the invention described. For example, the spring terminal technology and the IDC technology have not been described in detail, because they are considered to be known to the skilled person.
[0065] Accordingly, it is understood that the invention is not to be limited by the specific illustrative embodiments, but only by the scope of the appended claims.