Electrical High Current Connector

The high-current connector addresses shield hole issues with an insulating and shielded design, offering robust, efficient, and safe connections for battery modules and other power architecture points.

JP7740844B2Active Publication Date: 2025-09-17TE CONNECTIVITY GERMANY GMBH
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Patent Information

Application Number
JP2023131756
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-08-17
Filing Date
2023-08-14
Publication Date
2025-09-17
Estimated Expiration
2043-08-14

AI Technical Summary

Technical Problem

Existing high-current connectors face issues with shield holes in structural layers, leading to cumbersome and costly threaded engagements, and require improvements for efficient, cost-effective, and safe connections in harsh environments.

Method used

The design incorporates an electrically insulating connector housing with an electromagnetically shielded contact device and a clamping screw, featuring a protective cap that can electromagnetically close shield holes, ensuring secure and efficient electrical connections.

Benefits of technology

The solution provides a robust, easily separable, and safe high-current connector suitable for various applications, including battery modules, with enhanced vibration resistance and temperature tolerance, while maintaining electrical integrity and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

To specify an improved high-current connector.SOLUTION: The invention relates to an electrical high-current connector (10) for a high-current line (20) comprising copper or aluminum, in particular for an automotive sector. The electrical high-current connector (10) includes: an electrically insulating connector housing (100); at least one electromagnetically shielded (136) contact device (130); and at least one clamping screw (120) for mechanically bracing electrical contact means of the contact device (130). An electrically insulating protective cap (1000) of the high-current connector (10) can be provided or is provided on the connector housing (100), and at least one shielding hole (135) in an electromagnetic shield (136) of the contact device (130) can be closed and / or is closed electromagnetically by means of the protective cap (1000).SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an electrical high-current connector for high-current lines made of copper or aluminum, in particular for the automotive sector. The present invention also relates to a pre-assembled electrical high-current connection and a high-power entity, in particular for the automotive sector in each case. [Background technology]

[0002] In the more advanced electrical fields of land-based power engineering and related fields (electrical science, electrical engineering, power engineering, etc.), numerous electrical high-current connectors are known that serve the purpose of transmitting currents and voltages in the medium or high current and / or medium or high voltage ranges. In this case, for example, high-current connectors for the supply and / or distribution of electrical energy for short periods and / or permanently in warm, possibly hot, polluted, humid, and / or chemically harsh environments must ensure problem-free transmission of electrical energy. Due to the wide range of applications, numerous such high-current connectors are known in the non-automotive and automotive fields.

[0003] Such high-current connectors may be installed, for example, in electrical entities, such as rechargeable batteries or rechargeable battery modules, (traction) batteries or (traction) battery modules, inverters, switchgear assemblies, etc. Efforts to reduce environmental impact and high fuel costs, for example in the automotive field, necessitate hybrid or electric vehicles. One aspect of these vehicles is that they handle high charging and operating currents and / or voltages, and the relevant components of the vehicle need to be designed accordingly. This concerns, for example, the high-current / high-voltage lines (e.g., stranded wires, conductor bars, bus bars, etc. made of copper or preferably aluminum) and contact means (e.g., connecting parts, flat contacts, bus bars, etc. made of aluminum or preferably copper) of the high-current connector.

[0004] To establish electrical contact with an entity by a high-current connector, an electromechanical screw contact connection that meets stringent requirements can be used. Such a high-current screw contact connection allows for functional separation of the mechanical path from the electrical path. The mechanical path functions to transmit the mechanical tensile stress of the threaded fit, especially a steel-to-steel threaded fit, while the electrical path is used as a low-resistance electrical contact connection, especially a copper-to-copper connection, of the high-current screw contact connection by the high-current connector. Summary of the Invention [Problem to be solved by the invention]

[0005] The result is an electrical high-current connection that is robust and easily handled in a typical manufacturing environment. In addition, such a high-current connection is easily separable (for diagnosis, repair, and recycling) while simultaneously being safe to touch. Such a high-current connection can be used in a variety of ways and flexibly to make contact with battery modules and for other connection points in various connection panels of a power architecture. Efforts are continually being made to improve electrical high-current connectors, particularly to design them more efficiently and, in the process, to increase their cost-effectiveness. Accordingly, it is an object of the present invention to provide an improved high-current connector. [Means for solving the problem]

[0006] The object of the invention is achieved by an electrical high-current connector for high-current lines made of copper or aluminum, in particular for the automotive sector, as well as by a pre-assembled electrical high-current connection and a power-electrical entity, in each case for the automotive sector, according to the independent claims. Advantageous developments, further features and / or advantages of the invention can be taken from the dependent claims and the following description.

[0007] Within the scope of the present invention, it has been found that "shield holes" caused by screwable connections in the structural layers of an electrical high-current connector can be problematic in some applications. The high-current connector according to the present invention comprises an electrically insulating connector housing, at least one electromagnetically shielded contact device, and at least one clamping screw for mechanically fastening the electrical contact means of the contact device, wherein an electrically insulating protective cap of the high-current connector can be or is provided on the connector housing, and at least one shield hole in the electromagnetic shield of the contact device can and / or is electromagnetically closed by the protective cap.

[0008] The contact device may be designed for a single contact portion of a single high-current line (see drawing) or for multiple contact portions of multiple high-current lines, in particular for exactly two contact portions of two high-current lines (not shown). Furthermore, depending on the number of contact portions of high-current lines that can be accommodated in the contact device, the contact device may or may not comprise at least one contact means, i.e. the contact means may be coupled to the high-current line rather than to the high-current connector.

[0009] In this case, the shielding hole is arranged in the contact device, in particular because otherwise the threaded engagement of the contact means of the high-current connector to the mating contact means of the mating high-current connector cannot be established or can only be established in a cumbersome and therefore cost-intensive manner by means of at least one clamping screw. In addition, the high-current line may be in the form of, for example, a stranded wire, a conductor, a solid material wire, a flat conductor, a conductor bar, a bus bar, etc. The shielding hole in the electromagnetic shielding of the contact device may be and / or may be electromagnetically closeable by the protective cap itself and / or by the shielding means of the protective cap.

[0010] On the one hand, at least one contact device of the high-current connector may be receivable or may be housed in the connector housing. For this purpose, the associated contact device is preferably translatable forward into the connector housing and is preferably guided inside the connector housing. Furthermore, the contact device and the connector housing may be designed in such a way that the contact device can be held, restrained (shoulder) and / or fixed (latching connection) in the connector housing.

[0011] On the other hand, the contact means of the contact device may be securable by means of a clamping screw to the mating contact means of the high-current mating connector in order to establish electrical contact with each other, and consequently the high-current connector may also be securable to the high-current mating connector. In this case, the high-current mating connector may be a component of an electrical entity which is naturally different from the entity described below, since the entity described below comprises the high-current connector. Under certain circumstances, the high-current mating connector may also be a component of an assembled electrical high-current connection which is different from the high-current connection also described below.

[0012] The protective cap may be in the form of a protective cap that is provided separately from the connector housing, or in the form of a protective cap that is provided on the connector housing. Furthermore, the protective cap may be in the form of a protective cap that can be inserted into the connector housing and pulled out again, or that can be rotated towards the connector housing and rotated away again. Furthermore, the protective cap and the connector housing may be designed relative to one another in such a way that the protective cap can be latched to the connector housing, and this latching connection is preferably also securable. In addition, the protective cap may be fixed to the front of the connector housing in addition to the latching connection, for example by additional fixing means, for example by a slide.

[0013] The shielding hole in the electromagnetic shield of the contact device and the protective cap or shielding means in the associated area may be in the form of a recess in the electromagnetic shield and a protrusion may be provided on the protective cap. Furthermore, they, i.e. the shielding hole and the protective cap or shielding means in the associated area, may be in the form of components of the shield of the high-current connector that are partially complementary to one another. In this case, the shielding means of the protective cap can be placed in the shielding hole of the shield, for example by form-fitting.

[0014] Furthermore, the protective cap or shielding means in the shielding hole and the associated area may each have an elliptical or polygonal cross section. An elliptical cross section is particularly preferably a substantially circular cross section, and a polygonal cross section is particularly preferably a substantially rectangular or square cross section. The shielding means may be designed or provided to protrude from the inner surface of the protective cap. The shielding hole may be located on the outer surface of the contact device and the electromagnetic shield. The shielding hole may be surrounded by spring lugs of the electromagnetic shield that connect inwardly to the electromagnetic shield.

[0015] The shielding means of the protective cap may be in the form of a shielding plug. The protective cap and the shielding plug may be made separately from each other. In this case, the shielding plug may be used as an insert part of the protective cap, which may be made by an injection molding method. The shielding plug may be held in the protective cap by a form fit, a friction fit and / or a force fit.

[0016] The shielding plug may be held in the protective cap by a latching connection, clipping, and / or undercut. The latching connection can be realized, for example, by corresponding latching devices on the protective cap (latch protrusions) and on the shielding plug (shaping). In the case of undercuts, the protective cap is preferably designed as an insert part for the injection molding process, so that the injection molding compound can flow, for example, through cutouts or cutouts in the protective cap. Furthermore, the shielding plug may be held inside the protective cap by a third component.

[0017] The shielding plug may be substantially in the form of a cylinder, preferably hollow, at least in part. In this case, a straight cylinder is preferred, and the bottom area of ​​the cylinder may basically be any desired area, although a circular bottom area is preferred. In this case, the cylinder or the side wall is preferably substantially closed. Furthermore, the shielding plug may be substantially closed at at least one end wall. That is, the shielding plug may be in the form of a sleeve, the end faces of which are closed on one or both sides.

[0018] The relevant walls of the shielding plug must be at least closed or electromagnetically tight so that the shielding plug performs its electromagnetic shielding function during use in the intended application of the high-current connector. That is, in some cases, a through-cutout may be arranged in the shielding plug, for example, for mounting / retention to a protective cap. In this case, the side walls are parallel to the axial extension of the clamping screw (definition). In addition, the end faces are substantially perpendicular to the axial extension of the clamping screw (definition).

[0019] Additionally, the shielding plug may have an insertion chamfer at its free end for centering in the shielding hole, preferably arranged at least partially around the circumference of the shielding plug in the circumferential direction of the shielding plug, and may have a circumferential bead at its attached end for mounting on the protective cap.

[0020] The protective cap may be substantially closed at its upper end face, which forms a cover for subsequent threaded engagement of the high-current connector with a mating high-current connector. Furthermore, the protective cap may be substantially open at its lower end face. Furthermore, the protective cap may be substantially closed at its front side wall. In addition, the protective cap may be substantially open at its rear side wall. The mechanical connection of the protective cap to the connector housing may be configured at the rear side wall, for example as part of a swivel joint or hinge. Furthermore, the protective cap may be substantially closed at two diametrically opposite lateral side walls.

[0021] The protective caps may be movable from an open position in contact with / away from the connector housing to a closed position in contact with the connector housing. During closing of the respective shield holes, the insertion chamfer of the associated shield plug may center the shield plug in the respective shield hole. In the closed position, the spring lugs of the electromagnetic shield in the respective shield hole may resiliently rest on the outer periphery of the associated shield plug. In the closed position, the associated end wall of the shield plug may substantially completely close (at least in the sense of being sufficiently electromagnetically tight) the respective shield hole.

[0022] The high-current connector may be in the form of a 90° high-current connector or a 180° high-current connector. The shielding means or shielding plug may comprise metal. In this case, the shielding plug may be made of metal or a metal alloy, or may comprise, for example, a metallization of a plastic object (the actual shielding plug). The gap between the protective cap and the connector housing may be sealable or may be sealed by a seal. This naturally applies to the closed position of the protective cap on the connector housing, where the seal may initially preferably be connected to the protective cap, but may also optionally be connected to the connector housing.

[0023] The high-current connector may be designed for a constant current of at least about 100 A, 200 A, 300 A, 400 A, 500 A, 750 A, 1 kA, or 1.25 kA. Additionally, the high-current connector may be designed for a voltage of at least about 200 V, 300 V, 400 V, 500 V, 600 V, 750 V, 1 kV, 1.25 kV, 1.5 kV, 1.75 kV, or 2 kV. In this case, the high-current connector may also be configured to withstand significantly higher short-term currents and / or voltages in any case (e.g., dynamic drive modes, possibly about +175%, +200%, +250%, +300%, +350%, +400%, +500%, in any case).

[0024] The high-current connectors may meet vibration requirements according to class or degree of severity 2, 3, and / or 4, preferably according to LV214 or the like. In particular, vibration requirements according to class or degree of severity 3 are met by the high-current connectors. In addition, it may be possible for the high-current connectors not to meet vibration requirements according to class or degree of severity 4 and / or higher, for example according to LV214 or the like. The high-current connectors are preferably designed for an operating temperature of about 40°C to about 80°C, 100°C, 120°C, 140°C, 150°C, 160°C, 170°C, or 180°C.

[0025] The assembled electrical high-current connection according to the invention comprises an electrical high-current line and at least one electrical high-current connector according to the invention. In this case, one or both longitudinal ends of the high-current line may have a high-current connector according to the invention. Additionally, in the first case, the second longitudinal end may comprise another high-current connector, such as a socket for an inlet. The high-current connector or high-current connection is a flexibly usable, compact, robust and / or touch-safe solution for making contact with and connecting battery modules and further high-current connection points apart from the battery.

[0026] In this case, the contact means may comprise the electrical high-current conductor of the electrical high-current line at its electrical connection portion. The electromechanical connection between the connection portion and the high-current conductor may be in the form of a two-part connection (such as a plug-in connection, a mating joint or a compression joint), a one-part connection, a physically one-part connection or an integral connection. In the latter case, the contact means is preferably formed by the high-current conductor itself (a continuation of the high-current conductor without an additional interface, preferably with reshaping of the longitudinal ends of the high-current conductor).

[0027] Furthermore, in this case, the electromagnetic shield particularly shields the connection area of ​​the contact means with the high-current conductor. The high-current connection may have exactly one or exactly two high-current connectors, in which case more than two high-current connectors may also be used. The high-current conductor may be embedded in an electromagnetically shielded high-current line. The electromagnetic shield may be in conductive contact with the electromagnetic shield of the high-current line. An outer protective layer of the high-current line may be sealed against the connector housing. Additionally, the high-current line may be fixed to the connector housing by at least one latching means.

[0028] An entity according to the invention comprises an electrical high-current connector according to the invention and / or an assembled electrical high-current connection according to the invention, where the entity may for example be in the form of a device, means, module, apparatus, installation, system, rechargeable battery or battery module, e.g. a rechargeable battery or battery, inverter (for front-wheel drive and / or rear-wheel drive), switchgear assembly, etc. In this case the high-current connection may for example be arranged between two such entities.

[0029] The present invention will be described in more detail below on the basis of exemplary embodiments with reference to the accompanying schematic drawings, which are not to scale. Parts, elements, components, units, elements and / or figures having the same, unique or similar configuration and / or function are identified by the same reference signs in the description of the drawings (see below), the description of the symbols, the claims and in each of the figures of the drawings. Possible alternatives not described in the description of the invention (see above), not shown in the drawings and / or indefinite, static and / or kinematic inversions, combinations etc. of the exemplary embodiments of the invention or their components, figures, units, components, elements or parts can further be gleaned from the description of the symbols and / or the description of the drawings.

[0030] In the case of the present invention, a feature (part, element, component, unit, constituent element, function, variable, etc.) may be of an expressly defined configuration, i.e., may be present, or may be of an unexpressed configuration, i.e., may not be present. In this specification (description (description of the invention (see above), description of the drawings (see below)), explanation of symbols, claims, drawings), an unexpressed feature is not explicitly described as a feature if its absence according to the present invention is not significant. In other words, the invention, as actually implemented and not constituted by the prior art, stands with the omission of said feature.

[0031] Features of this specification may be used not only in the manner and / or method specified, but also in other manners and / or methods (separately, in combination, permutation, addition, alone, omitted, etc.). In particular, in the description, the explanation of the signs, the claims and / or the drawings, features in the claims and / or the description may be substituted, added or omitted based on the reference signs and the features assigned thereto, or vice versa. Furthermore, as a result, features in the claims may be construed and / or specified in more detail.

[0032] The described features may be interpreted as optional features (in light of the (initially largely unknown) prior art), i.e., each feature may be considered an optional, optional, or preferred feature, i.e., a non-essential feature. Accordingly, features, possibly including their outer edges, may be separated from the exemplary embodiments, in which case said features may be transformed into generalized inventive concepts. The absence of a feature in an exemplary embodiment (a feature not explicitly stated) indicates that the feature is optional with respect to the present invention. Additionally, in the case of a term relating to a type of feature, a general term relating to that feature may also be implicitly understood (possibly further hierarchically classified into subdivisions, etc.), thereby allowing for generalization of the feature, e.g., in consideration of equivalent effects and / or equivalences.

[0033] Purely exemplary drawings are as follows: [Brief explanation of the drawings]

[0034] [Figure 1] 1 is a perspective exploded view of an electrical high current connector including a high current line according to the present invention; [Figure 2] 1 is a perspective exploded view of a connector housing for a high current connector according to the present invention; [Figure 3] 1 is a central cutaway perspective view of an assembled electrical high-current connection having a high-current connector according to the present invention with the protective cap in a partially open position; FIG. [Figure 4]1 is a center cutaway side view of the front portion with the rear portion removed of a high current connector (including high current lines) according to the present invention with the protective cap in the closed position. FIG. [Figure 5] 1 is an uncut perspective view of the exterior of an assembled electrical high-current connection according to the present invention, with the protective cap of the high-current connector shown in a partially open position. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0035] Traction batteries are an essential component of the electrification of hybrid or electric vehicle drivetrains. Such batteries consist of many individual cells that are each combined to form a battery module. All of the electrical energy during charging, driving, and recovery modes of operation must be able to safely flow into or be removed from the battery through the high-current connections of these battery modules. Therefore, such high current connections and their high current contact connections must be able to conduct, under physical space constraints, constant currents of up to 600 A, and potentially even more, for several minutes during high power charging cycles, while dynamic drive modes require significantly higher currents (at least +175% and possibly even more than +500%) for several seconds.

[0036] Additionally, such high-current contact connections of the battery modules provide a physical layer for battery protection (overheat protection), battery management (state of charge), cell balancing (charge balancing between battery modules), mechanical protection, etc. For this purpose, contact connections of each individual battery module that have good fatigue strength but are preferably removable are required. Such contact connections not only need to be configured as an integrated system over the life of the vehicle, but also need to be robust so that vibration and temperature effects do not affect the mechanical and electrical properties of the contact connections to an unacceptable extent over the life of the contact connections. Additionally, the contact connections need to be safe to contact in order to avoid risks due to high currents and / or high voltages in high-voltage systems such as those of electric vehicles.

[0037] The invention will be explained in more detail below on the basis of exemplary embodiments of a high-current connector 10 according to the invention and three embodiments (Embodiment 1: FIG. 1, Embodiment 2: FIGS. 2 and 4, Embodiment 3: FIGS. 3 and 5) of variants of an assembled electrical high-current connection 1 according to the invention, where the assembled high-current connection 1 can be in the form of a pre-assembled, partially assembled or completely assembled high-current connection 1.

[0038] The present invention will be further explained and illustrated in more detail using preferred exemplary embodiments, but the present invention is not limited to the disclosed exemplary embodiments, which are of a more fundamental nature. Other variations can be derived from them and / or from the above (description of the invention) without departing from the scope of protection of the present invention. The present invention can be used in the case of entities (see above) and generally in the electrical field, with one exception being ground-based power engineering and the like (ultra-high to maximum currents and voltages).

[0039] The drawings show only the physical parts of the subject matter of the invention that are necessary for understanding it. Designations such as connector and mating connector, contact means and mating contact means, etc. should be interpreted synonymously, i.e., possibly interchangeable in each case. The description of the invention with reference to the drawings will refer below to the respective axial directions Ar (axis), respective radial directions Rr (radius) and respective circumferential directions Ur (tangential) of the clamping screws 120, contact means 110, shielding means 1100 or shielding plug 1100, etc., as well as to the longitudinal direction Lr of the associated high-current line 20, which is preferably arranged at an angle, in particular at right angles, to the associated axial direction Ar, i.e., the longitudinal direction Ar of the clamping screw 120.

[0040] 3 to 5 show an assembled high-current connection 1 (10, 20, ..., 10, 20, 10) according to the invention, which has at least one high-current connector 10 according to the invention and at least one electrical high-current line 20 for making contact with an electrical entity 0. For this purpose, the entity 0 has a partially complementary high-current mating connector (not shown), which can be arranged on the outside of the entity 0, for example as a plug socket. Furthermore, FIG. 1 shows the high-current connection 1 during assembly, with a clamping screw 120 (see below) either coupled or not coupled to the assembled high-current connection 1.

[0041] The high-current line 20 (see in particular FIG. 3 ) preferably comprises, in this case from the inside to the outside, an electrical high-current conductor 27, an electrical inner insulator, an electromagnetic shield 28 and an outer protective layer 29 (possibly in the form of an electrical outer insulator 29). In this case, the electromagnetic shield 28 completely surrounds the high-current conductor 27 in the longitudinal direction Lr. At its free longitudinal ends, the high-current line 20 or high-current conductor 27 are in the form of electromechanical contact portions 21 or contact longitudinal ends 21.

[0042] The contact portion 21 of the high current line 20 has electrical contact means 110, which may (as in this example) be coupled to the high current conductor 27 or to the high current line 20 or to the high current connector 10 (not shown). In this example (see in particular Figures 3 and 4), the contact means 110 has its electrical connection portion 112 integrated into the contact portion 21 of the high current conductor 27 and is preferably welded thereto (friction welding, laser welding or ultrasonic welding). It is of course also possible to use another electromechanical connection between the connection portion 112 and the high current conductor 27 (see above).

[0043] The contact means 110 also has an electrical contact portion 116 having a contact-making area for a mating contact device of a mating high current connector or a mating contact-making area of ​​an electrical mating contact means of an electrical mating contact device. The contact means 110 also has a through cutout 114 through which a mechanical clamping screw 120 extends when making electrical contact between the high current connector 10 and the mating high current connector.

[0044] The high-current connector 10 may be screwed onto a mating high-current connector, for example via a threaded sleeve of the mating high-current connector, by means of a clamping screw 120 which presses the contact-making area and the mating contact-making area together, thereby establishing a conductive connection between the high-current connector 10 and the mating high-current connector. To electrically insulate the clamping screw 120, the clamping screw 120 also preferably has only one electrical insulator 122 at its head and, opposite this in the axial direction Ar, an electrically insulating touch protection 124 at the free end of its screw shank.

[0045] The contact means 110 of the high current line 20 or the contact means 110 for the high current line 20 and the contact portion 21 of the high current line 20 may be or are arranged in the contact device 130 of the high current connector 10 (see Figures 1, 3 and 4).

[0046] The contact portions 21 including the contact means 110 (see in particular Figures 3 and 4) are housed in an insulating body 132 of the contact device 130, which insulating body 132 is preferably configured for each individual contact portion 21. It is of course also possible to configure the insulating body 132 for several, in particular two, contact portions of the high-current line. In the present example, the insulating body 132 has two insulating parts 133, 134, for example an upper insulating part 133 and a lower insulating part 134, which are pluggable or interleaved with each other. It is of course also possible to use a different configuration of the insulating body 132.

[0047] The insulating body 132 is surrounded by an electromagnetic shield 136. In this example, the electromagnetic shield 136 has two shield parts 137, 138 or shield plates 137, 138 that are pluggable or interleaved with one another, e.g., an upper shield plate 137 and a lower shield plate 138. It is of course possible to use different configurations of the electromagnetic shield 136. The contact device 130, and thus both the insulating body 132 (upper insulating part 133) and the electromagnetic shield 136 (upper shield plate 137), have openings (through cutouts) so that the clamping screws 120 can be placed in the contact device 130.

[0048] As a result, a necessary but undesirable shield hole 135 is formed in the electromagnetic shield 136, particularly in its upper shield plate 137. In this case, the shield hole 135 in the electromagnetic shield 136 that connects to the insulating body 132 is surrounded by an inwardly extending spring lug 139 of the electromagnetic shield 136. In this case, the spring lug 139 preferably connects to an opening in the insulating body 132, particularly a cutout or through-cutout in the upper insulating part 133.

[0049] At least one such shielded contact device 130 can be or is housed in the electrically insulating connector housing 100 of the high-current connector 10 (see also above). In this example, there are two such contact devices 130. In this case, in addition to the connector housing 100 and the at least one shielded contact device 130, the high-current connector 10 preferably comprises at least one clamping screw 120 for mechanically fastening the high-current connector 10 (or its contact means 110) to a mating high-current connector (or its mating contact means). Preferably, as many clamping screws 120 are used as there are electrical contact connections that need to be established for the high-current connector 10.

[0050] The connector housing 100 of the high-current connector 10 has an electrically insulating protective cap 1000 associated therewith, in particular by means of a swivel joint or hinge, such that it can be rotated thereon. However, it is also possible for the protective cap 1000 to be in the form of a protective cap 1000 (not shown) that is provided separately from the connector housing 100. In a first exemplary embodiment, the protective cap 1000 is in the form of a protective cap 1000 that can be rotated towards the connector housing 100 and away from it again, and in a second exemplary embodiment, it is in the form of a protective cap 1000 that can be inserted into the connector housing 100 and extracted again.

[0051] In this case, the protective cap 1000 is movable from an open position O against the connector housing 100 (one-piece exemplary embodiment) or away from the connector housing 100 (two-piece exemplary embodiment) to a closed position G against the connector housing 100. In the closed position G, the protective cap 1000 is preferably capable of latching to the connector housing 100, and this latching connection may be fixable. According to the present invention, at least one shield hole 135 is at least electromagnetically closeable by the protective cap 1000.

[0052] This can be done by the protective cap 1000 itself (not shown) or by the shielding means 1100 of the protective cap 1000. In this case, each shielding hole 135 in the electromagnetic shield 136 of the contact device can be closed (open position O) or is closed (closed position G) by the protective cap 1000 itself and / or by the associated shielding means 1100 of the protective cap 1000. If present, the shielding means 1100 preferably protrudes from the inner surface 1002 of the protective cap 1000.

[0053] In particular, the associated shielding means 1100 of the protective cap 1000 is in the form of a shielding plug 1100 that is separate from the protective cap 1000. The shielding plug 1100 is preferably made of a metal or a metal alloy or may be in the form of a metallized body, in particular a metallized plastic body. The shielding plug 1100 is configured to at least electromagnetically close the associated shielding hole 135 in the closed position G of the protective cap 1000 on the connector housing 100.

[0054] 1 to 4, in this example, the shielding plug 1100, preferably made of metal, is in the form of a cylinder that is shorter than its diameter or radius, preferably hollow, and substantially closed at its end wall (a sleeve closed at one end). The shielding plug 1100 preferably has a circumferential bead at its attached end for attachment to the protective cap 1000. In addition, the shielding plug 1100 preferably has an insertion chamfer 1102 at its free end that faces inward in the radial direction Rr.

[0055] To accommodate the shielding means 1100 or the shielding plug 1100, the protective cap 1000 has on its inner surface 1002 a receiving portion for the shielding means 1100 or the shielding plug 1100. In this case, the receiving portion may be formed in such a way that the shielding means 1100 or the shielding plug 1100 can be latched and / or clipped onto the receiving portion. Other configurations of the receiving portion and methods for fixing the shielding means 1100 or the shielding plug 1100 to the receptacle can of course also be used (see above).

[0056] The protective cap 1000 may be in the form of a trough or partial trough (see above), the inner surface 1002 of which is at least partially freely accessible (i.e., in the case of the protective cap 1000 alone). In this case, it is preferred that the protective cap 1000 has a seal 1200 at its inner edge extending substantially in the axial direction Ar. This seal can be used to seal the protective cap 1000 to the connector housing 100.

[0057] An assembled high-current connection 1 is shown in particular in Figures 3 to 5, in which at least one electrical high-current line 20 is connected to at least one electrical high-current connector 10 (see above). In this example, two high-current lines 20 are connected to a single high-current connector 10, with an electromagnetic shield 136 shielding the connection area of ​​the contact means 110 with the high-current conductor 27. In this case, the electromagnetic shield 136 of the high-current connector 10 is in conductive contact with the electromagnetic shield 28 of the high-current line 20 (see Figure 3). This contact preferably extends around the entire periphery of the high-current line 20 at the contact portion 21. [Explanation of symbols]

[0058] 0 Electrical Entities 1 pre-assembled (electrical) high current connection 10 (Electrical) High Current Connector 20 (Electrical) High Current Line 21 (electromechanical) contact (longitudinal end) portion of high current line 20 27 (Electrical) High current conductor 28 (Electromagnetic) Shielding 29 (electrically insulating) outer protective layer 100 (electrically insulating) connector housing 1000 (Electrical Insulation) Protective Cap 1002 Inner surface of protective cap 1000 1100 (Electromagnetic) shielding means, especially shielding plugs 1102 Insert chamfer 1200 stickers 110 (Electrical) Contact Means 112 (Electrical) Connection Part 114 Through cutout 116 (Electrical) Contact Part 120 (mechanical) fastening screw 122 Head electrical insulator 124 (Electrical insulation) Touch protection part 130 contact device with / without contact means 110, possibly with / without contact portion 21 132 Insulating objects 133 Insulating parts, e.g. upper insulating parts 134 Insulating parts, e.g. lower insulating parts 135 Shield hole 136 (Electromagnetic) Shielding 137 Shielding parts / plates, e.g. upper shielding plate 138 Shielding parts / plates, e.g. lower shielding plate 139 Spring Lug G Protective cap 1000 in closed position O Protective cap 1000 in open position Lr Longitudinal direction of the high current line 20 Ar Axial direction of the clamping screw 120 etc. Rr Radial direction of clamping screw 120 etc. Ur Circumferential direction of fastening screw 120 etc.

Claims

1. An electrical high-current connector (10) for high-current lines (20) made of copper or aluminum for the automotive sector, comprising: The high current connector (10) an electrically insulating connector housing (100); at least one electromagnetically shielded contact device (130) comprising an electromagnetic shield (136) and electrical contact means (110); at least one clamping screw (120) for mechanically fastening said electrical contact means (110) of said contact device (130); an electrically insulating protective cap (1000); The protective cap (1000) can be or is provided on the connector housing (100), at least one shield hole (135) in the electromagnetic shield (136) of the contact device (130) can be and / or is electromagnetically closed by the protective cap (1000); At least one of the contact devices (130) of the high current connector (10) is housed in the connector housing (100); The contact means (110) of the contact device (130) can be secured to the mating contact means of a high-current mating connector by the clamping screws (120) to form electrical contact with each other, and the high-current connector (10) can also be secured to the high-current mating connector. An electrical high current connector (10).

2. 2. The electrical high-current connector (10) of claim 1, wherein the shielding hole (135) in the electromagnetic shield (136) of the contact device (130) can be and / or is electromagnetically closed by the protective cap (1000) itself or by a shielding means (1100) of the protective cap (1000).

3. the electromagnetic shield (136) includes at least a first shield plate (137, 138) and a second shield plate (137, 138), and the at least one shield hole (135) is provided in either one of the first shield plate (137, 138) or the second shield plate (137, 138), and the other of the first shield plate (137, 138) or the second shield plate (137, 138) includes a portion that is spaced apart in an axial direction (Ar) of the at least one fastening screw (120) from either one of the first shield plate (137, 138) or the second shield plate (137, 138) in which the at least one shield hole (135) is provided; 2. The electrical high current connector (10) of claim 1.

4. The electromagnetic shield (136) includes an upper shield plate (137) and a lower shield plate (138), and the upper shield plate (137) is provided with the at least one shield hole (135).

2. The electrical high current connector (10) of claim 1.

5. The at least one fastening screw (120) and / or having an electrical insulator (122) at its head; having an electrically insulating touch protection (124) at its free end; 2. The electrical high current connector (10) of claim 1.

6. The protective cap (1000) is in the form of a protective cap (1000) provided separately from the connector housing (100), The protective cap (1000) can be inserted into the connector housing (100) and pulled out again; and The protective cap (1000) and the connector housing (100) are designed to be mutually compatible such that the protective cap (1000) can be latched to the connector housing (100) and the latched connection is also fixable.

2. The electrical high current connector (10) of claim 1.

7. The protective cap (1000) is in the form of a protective cap (1000) provided on the connector housing (100), The protective cap (1000) is capable of rotating towards the connector housing (100) and then rotating away from it again; The protective cap (1000) and the connector housing (100) are designed to be mutually compatible such that the protective cap (1000) can be latched to the connector housing (100) and the latched connection is also fixable.

2. The electrical high current connector (10) of claim 1.

8. the shielding holes (135) in the electromagnetic shield (136) of the contact device (130) are partially complementary to the protective cap (1000) or to the shielding means (1100) of the protective cap (1000) in the relevant areas, the shield hole (135) in the electromagnetic shield (136) of the contact device (130) has an elliptical or polygonal cross section; The protective cap (1000) or the shielding means (1100) of the protective cap (1000) in the relevant area has an elliptical or polygonal cross section.

2. The electrical high current connector (10) of claim 1.

9. the shielding means (1100) of said protective cap (1000) is designed or provided to protrude from the inner surface (1002) of said protective cap (1000); The shield holes (135) are disposed on the outer surfaces of the contact device (130) and the electromagnetic shield (136).

2. The electrical high current connector (10) of claim 1.

10. The shield hole (135) is surrounded by a spring lug (139) of the electromagnetic shield (136) that connects inward to the electromagnetic shield (136).

10. An electrical high current connector (10) according to claim 9.

11. the shielding means (1100) of said protective cap (1000) is in the form of a shielding plug (1100); The protective cap (1000) and the shielding plug (1100) are fabricated separately from each other; The shielding plug (1100) is held in the protective cap (1000) by a form fit, a friction fit, or a force fit.

2. The electrical high current connector (10) of claim 1.

12. The shielding means (1100) of the protective cap (1000) is in the form of a shielding plug (1100), The protective cap (1000) and the shielding plug (1100) are fabricated separately from each other; The shielding plug (1100) is held in the protective cap (1000) by a latch connection, clipping or undercut.

2. The electrical high current connector (10) of claim 1.

13. the shielding means (1100) of said protective cap (1000) has the form of a shielding plug (1100); The shield plug (1100) in the form of an at least partially hollow cylinder; Closed at least at one end wall 2. The electrical high current connector (10) of claim 1.

14. The shielding means (1100) of the protective cap (1000) has the form of a shielding plug (1100), The shield plug (1100) At its free end, it has an insertion chamfer (1102) for centering in said shield hole (135); and At its attached end, it has a circumferential bead for attachment to the protective cap (1000).

2. The electrical high current connector (10) of claim 1.

15. The protective cap (1000) It is closed at the top surface, It is open at the bottom end face, It is closed at the front wall, open at the rear wall; and Closed at two diametrically opposed lateral walls 2. The electrical high current connector (10) of claim 1.

16. The protective cap (1000) is movable from an open position (O) in contact with / away from the connector housing (100) to a closed position (G) in contact with the connector housing (100); During the closing of each said shielding hole (135), an insertion chamfer (1102) of a shielding plug (1100) of the associated said protective cap (1000) centers said shielding plug (1100) in the respective said shielding hole (135); In the closed position (G), the spring lugs (139) of the electromagnetic shield (136) in each of the shield holes (135) resiliently rest on the outer periphery of the associated shield plug (1100), and In the closed position (G), the associated end wall of the shield plug (1100) closes the respective shield hole (135).

2. The electrical high current connector (10) of claim 1.

17. A pre-assembled electrical high current connection (1) for the automotive sector, comprising: The high current connection (1) comprises an electrical high current line (20) and at least one electrical high current connector (10) according to claim 1.

1. A pre-assembled electrical high current connection (1).

18. the contact means (110) has an electrical high current conductor (27) of the electrical high current line (20) at its electrical connection portion (112); said electromagnetic shield (136) shields the connection area of ​​said contact means (110) with said high current conductor (27); and The high current connection (1) has exactly one or exactly two high current connectors (10).

18. A pre-assembled electrical high-current connection (1) according to claim 17, characterized in that

19. The high current conductor (27) is embedded in an electromagnetically shielded high current line (20), the electromagnetic shield (136) is in conductive contact with the electromagnetic shield (28) of the high current line (20); The outer protective layer (29) of the high current line (20) is sealed to the connector housing (100), and The high current line (20) is secured to the connector housing (100) by at least one latch means.

19. The assembled electrical high-current connection (1) according to claim 18, characterized in that

20. A high-power entity for the automotive sector, comprising: The entity comprises an electrical high current connector (10) according to any one of claims 1 to 16 and / or a pre-assembled electrical high current connection (1) according to any one of claims 17 to 19. A high-power entity characterized by:

Citation Information

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