Plug connector with locking system

The locking system with a bending bar and support web design in electrical plug connectors addresses the issue of web deformation by absorbing tensile forces, ensuring secure and reliable fastening and easy release, enhancing connection stability.

JP7742495B2Active Publication Date: 2025-09-19ERNI INTERNATIONAL AG
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Patent Information

Application Number
JP2024532275
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-01
Filing Date
2022-11-29
Publication Date
2025-09-19
Estimated Expiration
2042-11-29

AI Technical Summary

Technical Problem

Existing electrical plug connectors suffer from plastic deformation of the web due to unfavorable pulling forces, leading to unreliable fastening and potential unintentional loosening.

Method used

The locking system incorporates a locking lever configured as a bending bar that extends from the housing, forming a continuation in the plug-in direction, connected via a support web, allowing the system to absorb tensile forces directly and distribute them into the housing, with a spring effect to ensure secure fixation and easy release.

Benefits of technology

The design provides a secure and reliable locking mechanism that withstands pulling forces without deformation, ensuring stable connection and easy disconnection without tools, while maintaining high holding force and preventing unintentional loosening.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a plug connector (1) with a locking system (2a), which is arranged in a housing (3) of the plug connector (1). The locking system (2a) comprises an actuating lever (7a) and a locking lever (5) which comprises a latch element. The actuating lever (7a) and the locking lever (5) are connected to one another at one end. Furthermore, the locking lever (5) is designed as a bending bar which exerts a spring force in the direction of the housing (3) and extends at the other end from the housing (3) in the plug-in direction (S). The actuating lever (7a) is connected to the housing (3) via a supporting web (8) and projects beyond the supporting web (8) in the direction opposite to the plug-in direction (S).
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Description

[Technical Field]

[0001] The present invention relates to an electrical plug connector having a locking system, the locking system being arranged on a housing of the plug connector, the locking system having an actuating lever and a locking lever including a latch element, the actuating lever and the locking lever being connected to each other at one end. [Background technology]

[0002] Electrical plug connectors, often including several connectors, are known and are inserted into a connector strip to establish an electrical connection. The plug connector is provided with a locking system that secures the plug connector to the connector strip when plugged in. Such a locking system typically includes a lever connected to the plug connector housing via a web. The lever has a latch element, e.g., a latch lug, at one end that latches into a complementary latch element, e.g., a latch opening, on the connector strip. The other end of the lever typically includes an actuation area. A web is located between the two ends of the lever. When the lever is pressed into the actuation area, it rotates around the web, thereby separating the latch element from the housing. The plug connector can then be removed.

[0003] WO2015 / 055845A1 shows a plug connector with a locking system, in which a lever formed by two legs is connected to the housing simply via a web.

[0004] Such plug connectors have the disadvantage that their locking system is connected to the housing solely via a web. When the plug connector or connector strip is pulled during plugging, the pulling force acts on the web at an unfavorable angle, usually a 90° angle. This can lead to plastic deformation of the web, which can remain even after the lever is actuated. This can have a negative impact on the reliability of the fastening and can lead to unintentional loosening of the plug connector. Summary of the Invention [Problem to be solved by the invention]

[0005] The object of the present invention is to provide a locking system which provides a secure fixation when a pulling force is applied to the plug connector and / or connector strip, and which at the same time can be released in a simple manner. [Means for solving the problem]

[0006] In the plug connector with a locking system according to the present invention, the locking lever is configured as a bending bar that exerts a spring force in the direction of the housing. The locking lever is connected to the housing at an end opposite to the end where the actuating lever and the locking lever are connected to each other and extends from the housing in the plug-in direction of the plug connector. The locking lever therefore forms a continuation of the housing in the plug-in direction. In addition, the actuating lever is connected to the housing via a support web. At the end opposite to the end where the actuating lever and the locking lever are connected to each other, the locking lever protrudes beyond the support web and forms an actuation area there. By manually pressing the actuating lever, the locking system can be opened and the plug connector can be disconnected from or inserted into the connector strip. When the actuating lever is actuated, the support web acts as a pivot or hinge around which the locking system rotates, so that the end to which the actuating lever and the locking lever are connected comes off the housing, thus allowing the locking system to be manufactured in a simple manner.

[0007] The combination of the locking lever, configured as a bending bar and forming a connection with the housing, the actuating lever connected to the locking lever, and the support web, forming a second connection with the housing, forms an elastic region that ideally allows the locking system to return to its original position after actuation. To open the locking system, no tools are required; simply pressing the actuating region with one's hand is sufficient. When the actuating region is no longer pressed, the locking system returns to its original position and locks onto the connector strip when plugged in. This provides a particularly simple locking mechanism.

[0008] As mentioned above, the locking lever extends directly from the housing in the insertion direction. It therefore forms a continuation of the housing in the insertion direction. For this purpose, the housing extends outward in a region perpendicular to the insertion direction, and the locking lever extends from this extended region of the housing. Generally, the outwardly extending region of the housing can be positioned as desired, with a preferred position being as far back as possible in the insertion direction, so that the locking lever configured as a bending bar can have as long a length as possible along which it can create a spring effect in the direction of the housing.

[0009] When plugging, especially when pulling the plug connector, tensile forces acting against the insertion direction and / or when pulling the connector strip act in the same direction as the locking lever extends from the housing. The tensile forces are therefore directly absorbed by the housing via the bending bar. Additionally, when the actuating lever is actuated, the movement is distributed over the long length of the bending bar, so the bending bar does not expand significantly, and elastic deformation occurs, making it reversible. Therefore, while the actuating force acts on the support web, the tensile force acting against the insertion direction is directly distributed into the housing via the bending bar. In this way, the tensile force acting against the insertion direction is decoupled from the actuating force. As a result, the plug connector is securely fastened.

[0010] In principle, various types of latch elements can be provided, which can be positioned essentially anywhere on the locking lever. However, latch lugs are established as the latch elements for this type of plug connector. This provides a high holding force during fastening. The latch elements are preferably configured as latch lugs with undercuts and are located at the end of the locking lever where the actuating lever and the locking lever are connected to each other. The locking lever configured as a bending bar can therefore be as long as possible along its length, along which it can generate a spring effect in the direction of the housing. The latch lugs preferably have as long a lead-in chamfer as possible in the plug-in direction to prevent the locking system from rising up on the collar of the connector strip housing.

[0011] The support web is preferably arranged at the point of the housing where the locking lever extends from the housing, i.e. in the aforementioned outwardly extending region of the housing, so that the elastic region formed by the combination of the locking lever configured as a bending bar, the actuating lever and the support web is self-supporting.

[0012] In addition, the support web is preferably arranged to extend perpendicularly from the housing to the insertion direction of the plug connector, so that when the actuating lever is actuated, the support web acts as a pivot or hinge to optimally absorb forces.

[0013] A travel limiter can be provided at the end opposite to the insertion direction, at a distance from the support web, which limits the deflection of the actuating lever and sets the actuating stroke. In particular, the travel limiter is at least partially arranged on the actuating lever on the other side of the actuation area, thereby preventing the actuating lever from being pushed too far towards the housing during actuation, which would cause irreversible deformation. The travel limiter can be configured as a structure on the end of the actuating lever, in particular a bump or protrusion, and / or as a structure on the housing.

[0014] Embodiments of the invention are illustrated in the drawings and are explained in more detail in the following description. [Brief explanation of the drawings]

[0015] [Figure 1a] 1 is a front view of a plug connector according to the present invention having a locking system, according to an embodiment; [Figure 1b] 1 is a front view of a plug connector according to the present invention having a locking system, according to an embodiment; [Figure 2a] 1 is a front view of a portion of a plug connector according to the present invention having a locking system, according to an embodiment; [Figure 2b] 1 is a front view of a portion of a plug connector according to the present invention having a locking system, according to an embodiment; [Figure 3a] 1 is an isometric view of a portion of a plug connector according to the present invention having a locking system, according to an embodiment; [Figure 3b] 1 is an isometric view of a portion of a plug connector according to the present invention having a locking system, according to an embodiment; [Figure 4a]1 shows a front view of a part of a plug connector according to the invention with a locking system, according to an embodiment, when plugged in; [Figure 4b] 1 shows a front view of a part of a plug connector according to the invention with a locking system, according to an embodiment, when plugged in; DETAILED DESCRIPTION OF THE INVENTION

[0016] 1 to 4 (FIGS. 1(a) to 4(b)) show two embodiments of a plug connector 1 according to the invention, with locking systems 2a, 2b, where FIG. 1(a) shows a first embodiment and FIG. 1(b) shows a second embodiment. FIG. 1a shows a wide plug connector 1 with a first locking system 2a on both sides. FIG. 1b shows a narrow plug connector 1 with a second locking system 2b on both sides. The first locking system 2a is optimized for easy operation by the user, in particular for easy actuation to open the locking system 2a. The second locking system 2b is optimized in terms of width so that it can be used in applications where space is limited. The first locking system 2a may be used with a narrower plug connector. The second locking system 2b may be used with a wider plug connector. Different configurations of the locking systems 2a, 2b can meet different space requirements. The plug connector 1 is inserted so that it contacts a connector strip 13 (not shown here). The contact with the connector strip 13 is shown in Figures 4a and 4b and will be explained below. In Figures 1 to 4, the arrow indicates the insertion direction S of the plug connector 1. The following description is based on the first embodiment, and on this basis the differences of the second embodiment will be explained.

[0017] 2a and 3a show a front view (FIG. 2a) and an isometric view (FIG. 3a) of a first locking system 2a and part of a plug connector 1, in which the first locking system 2a is arranged in a housing 3 of the plug connector 1. The housing 3 of the plug connector 1 has an outwardly expanding region 4, which expands the housing 3 with a step perpendicular to the plug-in direction S. A locking lever 5 extends from this expanded region 4 of the housing 3 in the plug-in direction S and thus forms a continuation of the expanded region 4 of the housing 3 in the plug-in direction S, thereby providing a connection between the first locking system 2a and the housing 3 of the plug connector 1. A latch lug 6 is formed on the end of the locking lever 5 opposite the expanded region 4 of the housing. The latch lug 6 has an undercut in which a chamfer is formed in the plug-in direction S, and protrudes from the locking lever 5 in the direction perpendicular to the plug-in direction S towards the housing 3 and has a face opposite to the plug-in direction S that is perpendicular to the plug-in direction S. The locking lever 5 is configured as a bending bar and generates a spring force perpendicular to the plug-in direction S towards the housing 3, which spring force is sufficient to hold the latch lug 6 fixed even when plugged in.

[0018] The locking lever 5 is connected to an actuating lever 7a of the first locking system 2a at its end opposite the extension area 4 of the housing 3. In addition, the actuating lever 7a is also connected to the extension area 4 of the housing 3 via a support web 8 formed perpendicular to the insertion direction S, thus forming a second connection between the first locking system 2a and the housing 3. The actuating lever 7a has an actuating area 9a on its side opposite the insertion direction S. A structured actuating surface is configured on the actuating area 9a facing outward, which allows a user to open the locking system 2a by manually pressing the actuating area 9a. In the first locking system 2a, the actuating area 9a expands outward so that a user can more easily grasp and press the actuating area 9a. The protruding actuation surface therefore provides even better operability. When pressure is applied to the actuation area 9a of the actuation lever 7a, the actuation lever 7a rotates around the support web 8, which acts as a pivot point, so that the end where the actuation lever 7a and the locking lever 5 are connected to each other and where the latch lug 6 is located moves outward away from the housing 3. The plug connector 2a can then be disconnected from or plugged into the connector strip. The inner ridge 10a of the actuation lever 7a in the actuation area 9a and the complementary structure 11 of the housing 3 together form a travel limiter that limits the deflection of the actuation lever 7a and thereby prevents excessive extension. In this embodiment, the ridge 10a is formed across the entire width of the actuation lever 7a.

[0019] Apart from the above, the locking lever 5 and the actuating lever 7a are spaced apart from each other, creating an elastic region that allows the locking lever 5 configured as a bending bar to return to its original position when the user no longer presses the actuating region 9a of the actuating lever 7a. During actuation, the forces acting during the movement are distributed over the long length of the locking lever 5 configured as a bending bar, resulting in only a small extension of the locking lever 5 and an elastic deformation.

[0020] 4a and 4b show the plug connector 1 in a latched state, inserted into a connector strip 13. Latch pockets 15 are formed on both sides of the housing 14 of the connector strip 13 (only one side is shown here). The latch lugs 6 of the first locking system 2a and the latch pockets 15 are compatible and have complementary shapes. The chamfers of the latch lugs 6, formed by undercuts, are configured in the insertion direction S and facilitate insertion. The chamfers are long enough so that the locking system 2a does not rest on the collar of the housing 14 of the connector strip 13. On the side opposite the insertion direction S, the latch lugs 6 have a surface extending perpendicular to the insertion direction S that engages with a surface of the latch pockets 15, also extending perpendicular to the insertion direction S, providing a high retention force against pulling forces against the insertion direction S. The locking system 2a also has a reinforcement 12 on the outside, i.e. on the actuating lever 7a, at the end where the actuating lever 7a is connected to the locking lever 5, which reinforcement 12 contributes to increasing the overall rigidity of the latch lug 6.

[0021] As shown in Figures 4a and 4b, the actuating lever 5 is bent outward from the extended region 4 of the housing 3 and has two bends. As a result, the actuating lever 5 conforms to the contour of the housing 14 of the connector strip 13 when plugged in. In addition, the width of the extended region 4 of the housing 3 of the plug connector 1 can be selected to be smaller than or at least equal to the width of the housing 14 of the connector strip 13.

[0022] Thus, if, during plugging, tensile forces act on the plug connector 1 against and / or in the plugging direction S into the connector strip 13, these tensile forces are absorbed directly by the expansion area 4 of the housing 3 via the locking lever 5. Only torsional forces, and not bending forces, are exerted on the entire locking system 2a.

[0023] The second locking system 2b differs from the first locking system 2a in that the actuating lever 7b does not expand in the actuating area 9b but extends straight. In addition, the distance between the actuating lever 7b and the locking lever 5 or the housing 3 is smaller. This results in a more compact design, allowing the plug connector 1 to be used in applications where space is limited. The area where the actuating lever 7b and the locking lever 5 are connected to each other is correspondingly larger, resulting in a more direct reaction during actuation. The second locking system 2b also has a structured actuating surface configured on the actuating area 9b facing outward, which allows the user to open the locking system 2b by manually pressing on the actuating area 9b. Additionally, a bump 10b is provided on the inside of the actuating lever 7b in the actuation area 9b, and a complementary structure 11 is provided on the housing 3, which together form a travel limiter that limits the deflection of the actuating lever 7b and thereby prevents overextension. In this embodiment, the bump 10b is formed in the center of the actuating lever 7b, closer to the support web 8 and already in contact with the complementary structure 11. The complementary structure 11 is preferably configured so that it can interact with both variants of the bumps 10a, 10b.

Claims

1. A plug connector (1) having a locking system (2a, 2b), The locking system (2a, 2b) is arranged in the housing (3) of the plug connector (1), The locking system (2a, 2b) comprises an actuating lever (7a, 7b) and a locking lever (5) including a latch element, the actuating lever (7a, 7b) and the locking lever (5) being connected to each other at one end, The locking lever (5) is configured as a bending bar that exerts a spring force in the direction of the housing (3) and extends at its other end from the housing (3) in the insertion direction (S), the actuating levers (7a, 7b) are connected to the housing (3) via a support web (8) and project beyond the support web (8) in the direction opposite to the insertion direction (S); a travel limiter (10a, 10b) is provided at the end of the locking system (2a, 2b) opposite to the insertion direction (S), the travel limiter (10a, 10b) being arranged at a distance from the support web (8); The housing (3) is provided with a complementary structure (11) that protrudes from the housing (3) towards the travel limiters (10a, 10b). A plug connector (1) characterized in that

2. characterised in that the latch element is a latch lug (6) arranged at the end of the locking lever (5) where the actuating lever (7a, 7b) and the locking lever (5) are connected to each other; A plug connector (1) according to claim 1.

3. the support web (8) is arranged at the point of the housing (3) where the locking lever (5) extends from the housing (3), A plug connector (1) according to claim 1 or 2.

4. the support web (8) extends perpendicular to the insertion direction (S) from the housing (3), A plug connector (1) according to claim 1 or 2.

5. the support web (8) extends perpendicular to the insertion direction (S) from the housing (3), A plug connector (1) according to claim 3.

Citation Information

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