High-current connection system
Patent Information
- Application Number
- EP2024735186
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-06-19
- Filing Date
- 2024-06-18
- Publication Date
- 2025-05-07
AI Technical Summary
Existing high-current connection systems for high-current rails, such as those used in battery-operated vehicles, often face issues with optimal electrical connections due to tolerances and assembly challenges, leading to insecure or non-optimal connections.
A high-current connection system featuring a conductive bridging part with spherically inwardly curved connecting surfaces and matching outwardly curved compensating elements, along with fastening means, allows for secure and adjustable connections between spaced-apart high-current rails, enabling reliable high-current conduction while accommodating installation tolerances.
The system ensures a secure, easy-to-assemble, and adaptable high-current connection that can compensate for positional and dimensional tolerances, ensuring reliable electrical conductivity between high-current rails, even in tight spaces and allowing for easy replacement of components.
Smart Images

Figure EP2024066914_26122024_PF_FP_ABST
Abstract
Description
[0001] High-current connection system
[0002] The present invention relates to a high-current connection system with which at least two high-current rails spaced apart from one another can be connected to one another in a high-current-conducting manner, a compensating element, a bridging part and an arrangement comprising the high-current connection system and at least two high-current rails.
[0003] Especially for battery-powered vehicles (but also for other applications), high-current busbars made of conductive materials such as copper or similar are used to conduct the high currents required to operate such vehicles from the power source, i.e., the battery pack, to the loads (electric motor, etc.). Such high-current busbars have comparatively large material cross-sections for this purpose.
[0004] For the purposes of the application, components that can conduct currents of at least 40 amperes, preferably at least 400 amperes, are understood to be in the high-current range or suitable for the high-current range.
[0005] When high-current rails are spaced apart from each other, it may be necessary to connect them at certain contact points to conduct high currents. For this purpose, lamella connectors are known, for example, which must be screwed to the ends of the rails to be connected.
[0006] Depending on local or other conditions, it may happen that the individual components of known high-current connection systems cannot be connected to the high-current rails or cannot be connected optimally - for example due to tolerances - so that no or no optimal electrical connection can be established.
[0007] The object of the present invention is to further develop the high-current connection system mentioned above. In particular, the object of the invention is to provide a high-current connection system that is convenient and easy to install. In particular, the object of the invention is to provide a high-current connection system that enables a secure electrical connection.
[0008] This object is achieved according to the invention by a high-current connection system for the high-current connection of at least two spaced-apart high-current rails, comprising
[0009] - a high-current-conducting bridging part which can be attached to each of the high-current rails, with which the distance between the high-current rails can be bridged in a current-conducting manner and to which at least two spaced-apart, spherically curved connecting surfaces are assigned,
[0010] - for each high-current rail, a high-current conducting compensating element which can be assigned to it and which can be arranged between the bridging part and the respective high-current rail and which has a spherically outwardly curved compensating surface which, when the bridging part is fastened, faces one of the spherically inwardly curved connecting surfaces and is electrically connected thereto, and
[0011] - for each high-current rail, at least one fastening means assignable to it, with which the bridging part and the respective compensating element can be fastened to the respective high-current rail and secured against movement relative to the respective high-current rail.
[0012] Furthermore, the object is achieved according to the invention by means of a bridging part of the high-current connection system according to the invention, wherein the bridging part is designed to conduct high currents, can be fastened to each of the high-current rails, the distance between the high-current rails of the same can be bridged in a current-conducting manner and has at least two spaced-apart, spherically inwardly curved connecting surfaces.
[0013] Furthermore, the object is achieved according to the invention by means of a compensating element of the high-current connection system according to the invention, wherein the compensating element is designed to conduct high currents, can be arranged between the bridging part and the respective high-current rail, has a spherically outwardly curved compensating surface which, in the fastened state of the bridging part, can be turned towards one of the spherically inwardly curved connecting surfaces with an electrically conductive connection therewith.
[0014] Furthermore, this object is achieved according to the invention by means of an arrangement of at least two high-current rails and a high-current connection system according to the invention, wherein the two high-current rails are connected to one another in a high-current-conducting manner by means of the high-current connection system.
[0015] Preferably, the high-current connection system comprises a detachable connection of at least two high-current rails spaced apart from one another, wherein for each high-current rail the fastening means is designed such that the bridging part and the respective compensating element can be detachably fastened to the respective high-current rail and secured against movements relative to the respective high-current rail.
[0016] Preferably, when using the high-current connection system, the bridging part is connected to each of the two high-current rails in a high-current-conducting manner, for example in the region of two opposite ends of the bridging part, for example in a respective contact region of the respective high-current rail.
[0017] Preferably, the bridging part is detachably attached or connected to the respective high-current busbar in the contact areas using a compensating element and a fastening device, so that in an installation situation where the position of the high-current busbars is already fixed and possibly only a small installation space is available, subsequent installation of the high-current connection system is also possible. This would also make it easy to replace individual components of the high-current connection system in the event of wear.
[0018] In order to be able to adapt the high-current connection system with regard to possible installation tolerances and / or possible component tolerances, etc., the compensating elements each have the spherically outwardly curved compensating surface, and the bridging part is correspondingly assigned the spherically inwardly curved connecting surfaces.
[0019] When the bridging part is attached, the high-current rails can then be connected to one another in a high-current-conducting manner via the electrically conductive bridging part and the respective electrically conductive compensating element(s), so that electrical current can flow through these components from one high-current rail to the other. In the simplest case, for this purpose, each (metallic) compensating element can, on the one hand, be in direct electrically conductive contact with the respective contact area of the high-current rail assigned to it, and, on the other hand, be directly electrically conductive with the respective connecting surface that is connected to the bridging part using the same material. Naturally, however, it is also conceivable to use electrically conductive connecting pastes, etc., as intermediate layers. In a preferred embodiment, connecting pastes are arranged between each two adjacent components.The bonding pastes comprise pastes, lubricants, or other known materials that are electrically conductive and suitable as an intermediate layer between two adjacent, high-current-conducting components. Bonding pastes are preferably used between the compensating element and the bridging part, preferably between their compensating surface and the bonding surface. The use of bonding pastes between other two adjacent components, such as a washer and the bridging part, is also conceivable.
[0020] The respective compensating surface and the respective connecting surface preferably each form an articulated connection (with corresponding degrees of freedom) in the manner of a ball joint. Within the meaning of the present application, an articulated connection provides a movable connection between two components arranged in contact. Preferably, the bridging part and the compensating element are arranged in contact. Preferably, the bridging part and the compensating element are designed such that a movable connection is provided between the bridging part and the compensating element. Further preferably, the compensating surface of the respective compensating element and the respective connecting surface of the bridging part are designed such that a movable connection is provided between the connecting surface of the bridging part and the compensating surface of the compensating element.
[0021] In the simplest case, the connecting surfaces can, for example, be a uniform component of the bridging part. They can be molded into the bridging part, for example, if the bridging part is a cast part, or incorporated into it through suitable material processing. However, it is also theoretically conceivable for additional connecting elements to be assigned to the bridging part, which can, for example, be welded or soldered to the bridging part and which then comprise the connecting surfaces. As the person skilled in the art will recognize, a wide variety of possibilities are conceivable here.
[0022] Preferably, the compensating elements can each have a central through-hole, in particular designed as an elongated hole, through which one of the particularly elongated fastening means passes relative to or in the attached state of the bridging part. The use of such an elongated hole enables adjustment of the respective position of the compensating elements relative to the respective high-current rail or the respective contact area thereof.
[0023] Furthermore, the compensating elements can have a flat side on their side opposite the compensating surface, which, when the bridging part is fastened, then faces the respective high-current rail, in particular - in the simplest case - in electrically conductive contact with the respective high-current rail, if necessary using an electrically conductive intermediate layer or intermediate layer.
[0024] Further preferably, for a similar purpose, the bridging part can also have at least two through holes, each designed in particular as an elongated hole, wherein each of these through holes is penetrated by one of the particularly elongated fastening means when the bridging part is fastened.
[0025] Further preferably, in the attached state of the bridging part, each through-hole of the bridging part can be aligned with a through-hole of one of the compensating elements along a common axis (one above the other), and the respective fastening means can pass through these two through-holes in this state. Further preferably, a through-hole of the bridging part is aligned with the through-hole of a compensating element, so that the respective fastening means can pass through both through-holes.
[0026] In one embodiment, the high-current connection system comprises at least one fastening means for each high-current busbar, with which the bridging part and the respective compensating element can be releasably fastened to the respective high-current busbar. It can be provided that the respective fastening means, in particular a screw, penetrates into a through-hole in the respective high-current busbar when the bridging part is fastened or passes through it and is connected in a force-locking and / or form-locking manner, in particular screwed, to a matching securing part of the high-current connection system, which is supported on the high-current busbar and preferably has a matching thread. This is preferably done with a threaded sleeve or a nut.Alternatively, the respective fastening element, designed as a screw, can also be screwed to a thread in the high-current rail when the bridging element is attached. Another design of the fastening element is also conceivable, which is suitable for making the bridging element and the compensating element attachable and secure to the high-current rail.
[0027] As far as the specific design of the bridging part is concerned, this can, for example, be wave-shaped in a longitudinal section. For the purposes of the invention, the term wave-shaped is defined to the effect that the bridging part has a design with a first section and a second section and this is formed over the entire length of the bridging part, wherein the first section is a recurring section with elevations. The second section is arranged between two successive first sections and represents a connection between the first section and further first sections. This connection can be in the form of a depression or a flat connection. In the following, the first section is also referred to as the wave crest, the second section as the wave trough.In the fastened state of the bridging part, a wave trough of the bridging part can be arranged between the high-current rails and / or each of the connecting surfaces assigned to the bridging part can be arranged in the region of a wave crest of the bridging part, in particular on an underside of the respective wave crest.
[0028] In the fastened state of the bridging part, a head part of the respective fastening means, in particular designed as a screw, can rest force-locking and / or form-locking under tension directly on the bridging part or on a washer arranged between the head part and the bridging part in order to secure the bridging part against the relative movements relative to the respective high-current rail.
[0029] It can be provided that the washer has, on its side facing the bridging part, a spherically inwardly curved compensating surface which faces a spherically outwardly curved connecting surface of the bridging part, in particular with a positive, preferably detachable connection, particularly preferably bearing against the respective connecting surface. Preferably, the bridging part and the washer are designed such that a movable connection is provided between the bridging part and the washer. Further preferably, the compensating surface of the respective washer and the respective connecting surface of the bridging part are designed such that a movable connection is provided between the connecting surface of the bridging part and the compensating surface of the compensating element.
[0030] The high-current connection system can further comprise a holding part for each compensating element, which can be fastened to the element in a force-fitting and / or form-fitting manner, preferably designed as a plastic component, with which the respective compensating element can be releasably fastened to the bridging part with its outer side facing the respective connecting surface of the bridging part, preferably with the components releasably clamped against one another, in particular to form a pre-assembled assembly. With such a holding part, the aforementioned components of the high-current connection system and, if necessary, additional components, such as the aforementioned washer(s), can first be pre-assembled to form a unit or pre-assembled assembly and then connected to the respective high-current rail in this pre-assembled state.The holding part can also have at least one locking means designed for fastening to the respective compensating element, in particular at least one elastic locking arm (preferably at least two elastic locking arms), which then engages in a suitable fastening recess in the compensating element when fastened.
[0031] The holding part can furthermore have a particularly round through-hole into which the head part of the respective fastening means is at least partially immersed when the bridging part is fastened.
[0032] Further features of the present invention emerge from the appended patent claims, the following description of preferred embodiments and the appended drawings.
[0033] It shows:
[0034] Fig. 1 is an oblique view of an embodiment of an arrangement comprising two high-current rails and a high-current connection system connecting them in a high-current-conducting manner, in an exploded view,
[0035] Fig. 2 the arrangement from Fig.l in a pre-assembled state in exploded view,
[0036] Fig. 3 the arrangement from Fig. 1 in plan view,
[0037] Fig. 4 shows a section through the arrangement of Fig. 1 along the section line B - B in Fig. 3,
[0038] Fig. 5 shows a section through the arrangement of Fig. 1 along the section line A - A in Fig. 3.
[0039] With a high-current connection system 10 according to the invention, shown in the drawings, two spatially spaced-apart high-current busbars 11 are connected to one another in a high-current-conducting manner. The metallic (rigid) high-current busbars 11, for example made of copper or another electrically conductive metal or another electrically conductive metal alloy, are each L-shaped at their ends, with an end section angled at 90° to the main longitudinal extent of the respective high-current busbar 11, which simultaneously serves as a contact area 12 in which the high-current connection system 10 contacts the high-current busbars 11.
[0040] In order to be able to compensate for possible tolerances etc. in the position of the two high-current rails 11 relative to one another and / or dimensional and / or angular tolerances of the high-current rails 11, the high-current connection system 10 is designed in a special way.
[0041] For this purpose, it comprises a wave-shaped, solid metallic bridging part 13, which in the present case is electrically conductively or high-current-conductingly connected to the respective contact area 12 of the respective high-current busbar 11 by contact areas 16 arranged at opposite ends of the bridging part 13, which are located in the area of wave crests 14a and 14b of the bridging part 13 formed there. This electrical connection between the contact areas 12 of the respective high-current busbar 11 and the contact areas 16 of the bridging part 13 is detachable in this case, so that it could also be subsequently established for high-current busbars 11 already permanently installed on site.
[0042] When the bridging part 13 is fastened to the high-current rails 11, it is secured to the high-current rails 11 and secured against relative movement by means of elongated fastening means 17, in this case designed as a screw. For this purpose, the fastening means 17 are screwed into threaded sleeves 18, which are each inserted into through holes 11a of the end sections of the high-current rails 11. It is understood that other fastening means could also be used.
[0043] The bridging part 13 does not bear directly against each high-current rail 11, but rather rests on a respective special compensating element 19, designed in the manner of a washer, which in turn bears with a flat underside against the respective upper side of the respective end section of the respective high-current rail 11. Each compensating element 19 has a spherically curved, outwardly curved compensating surface 20, which, in the fastened state of the bridging part 13, faces the bridging part 13, more precisely its underside facing the end section of the high-current rail 11.
[0044] In the present case, on this underside of the bridging part 13, in the area of the wave crests 14 a and 14 b, two spaced-apart connecting surfaces 21 or counter-surfaces for the compensation surfaces 20 are formed, which are spherically curved inwards and which fit the respective compensation surface 20 or whose dimensions are matched to the respective compensation surface 20.
[0045] When the bridging part 13 is in the attached state, the compensating surface 20 of each compensating element 19 rests against one of the two connecting surfaces 21 of the bridging part 13, in this case directly, so that a direct metallic, current-conducting contact is established. Above all, however, the respective compensating surface 20 forms a type of ball joint with the respective counter-surface or connecting surface 21, which allows for corresponding compensating movements of the high-current connection system 10 during assembly to compensate for tolerances in three spatial directions.
[0046] With the side opposite the compensating surface 20 of the respective compensating element 19, which in the present case is flat as already mentioned, the compensating element 19 lies directly against a corresponding contact surface of the contact area 12 of the high-current rails 11, also forming a corresponding electrically conductive connection.
[0047] It is understood that intermediate layers or intermediate layers made of electrically conductive material can also be arranged between the opposing surfaces of the respective components.
[0048] On the upper side of each wave crest 14 a or 14 b of the bridging part 13 or on the side of the bridging part 13 facing away from the end region of the high-current rails 11, a washer 24 can also be seen, which is arranged between a head part 28 (screw head) of the fastening means 17 and the bridging part 13 and whose respective underside is spherically curved inwards or whose underside has a spherically curved inwards compensating surface 22 and, due to the clamping force of the fastening means 17, rests against the bridging part 13 in a force-fitting and / or form-fitting manner and under tension.
[0049] The compensating surface 22 of the respective washer 24 faces one of two correspondingly matching, spherically curved, outwardly curved connecting surfaces 23 of the bridging part 13, each of which is arranged on the upper sides of the wave crests 14a and 14b (and correspondingly spaced from one another) or formed by them, and in this case rests against each other, forming a type of ball joint. Accordingly, the aforementioned elements or components also allow compensating movements in three spatial directions.
[0050] As already indicated, the high-current rails 11 in this case each have a through-hole 11a into which the respective threaded sleeves 18 are inserted from below. Furthermore, the bridging part 13 also has two through-holes 13a (each designed as an elongated hole), the center axes of which are each aligned with the respective center axis of the respective through-hole 11a of the respective high-current rail 11 or which are each aligned along the same center axis as the respective through-hole 11a.
[0051] A (central) through-hole 19 a of the respective compensating element 19 or a (central) through-hole 24 a of the respective washer 24 is then aligned along the same axis, so that the respective fastening means 17 can or does reach through all of these components or all of the through-holes 11 a, 19 a, 13 a and 24 a from top to bottom and is then screwed into the respective threaded sleeve 18 supported on the underside of the respective high-current rail 11.
[0052] As can also be seen, the high-current connection system 10 has for each compensating element 19 a holding part 25 which can be fastened to the latter in a force-fitting and / or form-fitting manner, with which the respective compensating element 19 is releasably fastened to the bridging part 13 with its outer side facing the respective connecting surface of the bridging part 13, preferably with releasably clamping the components against one another, in particular to form a pre-assembly group 26 which simplifies the final assembly of the high-current connection system 10, cf. Fig. 1, which in the present case comprises, in addition to the bridging part 13, the two compensating elements 19, the two holding parts 25, the two washers 24 and the two fastening means 17.
[0053] Each holding part 25 has two elastic locking or holding arms 27 for fastening to the respective compensating element 19, which each engage in a respective fastening recess 29 of the respective compensating element 19.
[0054] The holding part 25 further comprises a particularly round through-hole 25a into which the head part 28 of the respective fastening means 17 is at least partially immersed.
[0055] It is understood that the features explained in connection with the drawings are to be understood only as examples and do not limit the subject matter of the present application.
[0056] 10 High-current connection system
[0057] 11 High-current rail
[0058] 11 a Through hole
[0059] 12 Contact area high-current rail
[0060] 13 Bridging part
[0061] 13 a Through hole
[0062] 14 a, b Wave crests bridging part
[0063] 15 Wave trough bridging part
[0064] 16 Contact area bridging part
[0065] 17 Fasteners
[0066] 18 threaded sleeve
[0067] 19 compensation elements
[0068] 19 a Through hole
[0069] 20 Compensation surfaces 21 Connecting surface bridging part
[0070] 22 Compensating surface washer
[0071] 23 Connecting surface bridging part
[0072] 24 Washer 24 a Through hole
[0073] 25 Holding part
[0074] 25 a through hole
[0075] 26 Pre-assembly assembly
[0076] 27 Locking arms 28 Head part
[0077] 29 recesses compensation element
Claims
Claims 1. High-current connection system (10) for the high-current connection of at least two spaced-apart high-current rails (11), comprising - a high-current-conducting bridging part (13) which can be fastened to each of the high-current rails (11), with which the distance between the high-current rails (11) can be bridged in a current-conducting manner and to which at least two spaced-apart, spherically inwardly curved connecting surfaces (21) are assigned, - for each high-current rail (11), a respective high-current conducting compensating element (19) which can be assigned to it and which can be arranged between the bridging part (13) and the respective high-current rail (11) and which has a spherically outwardly curved compensating surface (20) which, in the fastened state of the bridging part (13), faces one of the spherically inwardly curved connecting surfaces (21) and is electrically conductively connected thereto, and - for each high-current rail (11) at least one fastening means (17) which can be assigned to it and with which the bridging part (13) and the respective compensating element (19) can be fastened to the respective high-current rail (11) and secured against movement relative to the respective high-current rail (11).
2. High-current connection system (10) according to claim 1, characterized in that the high-current connection system (10) comprises a detachable connection of at least two high-current rails (11) spaced apart from one another, wherein for each high-current rail (11) the fastening means (17) is designed such that the bridging part (13) and the respective compensating element (19) can be detachably fastened to the respective high-current rail (11) and secured against movements relative to the respective high-current rail (11).
3. High-current connection system (10) according to one or more of the preceding claims, characterized in that each compensating element (19) has a central through-hole (19a) through which one of the fastening means (17) passes when the bridging part (13) is fastened.
4. High-current connection system (10) according to one or more of the preceding claims, characterized in that the bridging part (13) has at least two through-holes (13a), each of these through-holes (13a) being penetrated by one of the fastening means (17) in the fastened state of the bridging part (13).
5. High-current connection system (10) according to one or more of the preceding claims, characterized in that in the fastened state of the bridging part (13), each through-hole (13a) of the bridging part (13) is aligned one above the other with a through-hole (19a) of one of the compensating elements (19) along a common axis, and in that the respective fastening means (17) in this state passes through these two through-holes.
6. High-current connection system (10) according to one or more of the preceding claims, characterized in that the respective fastening means (17) in the fastened state of the bridging part (13) dips into a through-hole (11a) of the respective high-current rail (11) or passes through this and is connected in a force-locking and / or form-locking manner to a matching securing part of the high-current connection system (10) which is supported on the high-current rail (11).
7. High-current connection system (10) according to claim 6, characterized in that the respective fastening means (17) is a screw, in the fastened state of the bridging part (13) penetrates into a through-hole (11a) of the respective high-current rail (11) or passes through this and is screwed in a force-locking and / or form-locking manner to a matching securing part of the high-current connection system (10) which is supported on the high-current rail (11) and has a matching thread, wherein the securing part has a threaded sleeve or a nut, or in that the respective fastening means (17) designed as a screw is screwed to a thread introduced into the high-current rail (11) in the fastened state of the bridging part (13).
8. High-current connection system (10) according to one or more of the preceding claims, characterized in that the respective compensating element (19) has a flat side on the side opposite its compensating surface (20), which, in the fastened state of the bridging part (13), faces the respective high-current rail (11).
9. High-current connection system (10) according to one or more of the preceding claims, characterized in that the high-current rails (11) are connected to one another in a high-current-conducting manner via the electrically conductive bridging part (13) and the respective electrically conductive compensating element (19) in the fastened state of the bridging part (13), so that electrical current can flow through these components from one high-current rail (11) to the other high-current rail (11).
10. High-current connection system (10) according to one or more of the preceding claims, characterized in that the bridging part (13) is wave-shaped in a longitudinal section, and in that, in the fastened state of the bridging part (13), a wave trough (15) of the bridging part (13) is arranged between the high-current rails (11), and / or in that, in the fastened state of the bridging part (13), each of the connecting surfaces (21) assigned to the bridging part (13) is arranged in the region of a wave crest (14a, 14b) of the bridging part (13).
11. High-current connection system (10) according to one or more of the preceding claims, characterized in that in the fastened state of the bridging part (13), a head part (28) of the respective fastening means (17) for securing the bridging part (13) against relative movements relative to the respective high-current rail (11) rests force-fitting and / or form-fitting under tension directly on the bridging part (13) or on a respective washer (24) arranged between the respective head part (28) and the bridging part (13).
12. High-current connection system (10) according to one or more of the preceding claims, characterized in that the high-current connection system (10) has for each compensating element (19) a force-fitting and / or form-fitting fastening element that can be fastened to the latter. res holding part (25) with which the respective compensating element (19) can be releasably fastened to the bridging part (13) with its outer side facing the respective connecting surface (21) of the bridging part (13).
13. High-current connection system (10) according to claim 12, characterized in that the holding part (25) has at least one locking means for fastening to the respective compensating element (19), wherein the locking means comprises at least one elastic locking arm (27) which, in the fastened state, engages in a fastening recess (29) of the compensating element (19).
14. High-current connection system (10) according to claim 12 or 13, characterized in that the holding part (25) has a through-hole (25a) into which the head part (28) of the respective fastening means (17) is at least partially immersed in the fastened state of the bridging part (13).
15. High-current connection system (10) according to one or more of the preceding claims, characterized in that each washer (24) has, on its side facing the bridging part (13), a spherically inwardly curved compensating surface which faces a spherically outwardly curved connecting surface of the bridging part (13).
16. Bridging part (13) for a high-current connection system (10) according to one or more of the preceding claims 1 to 15, wherein the bridging part (13) is designed to conduct high currents, can be fastened to each of the high-current rails (11), the distance between the high-current rails (11) thereof can be bridged in a current-conducting manner and has at least two spaced-apart, spherically inwardly curved connecting surfaces (21).
17. Compensating element (19) for a high-current connection system (10) according to one or more of the preceding claims 1 to 15, wherein the compensating element (19) is designed to conduct high currents, can be arranged between the bridging part (13) and the respective high-current rail (11), has a spherically outwardly curved compensating surface (20) which, in the fastened state of the bridging part (13), in each case one of the spherically inwardly curved connecting surfaces (21) under electrically conductive connection with it.
18. Arrangement comprising at least two high-current rails (11) and a high-current connection system (10) according to one or more of the preceding claims, wherein the two high-current rails (11) are connected to one another in a high-current-conducting manner by means of the high-current connection system (10).
Citation Information
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