High current module connector and module connector system having high current module connector
The high-current modular connector system addresses assembly complexity and stability issues by using a single-piece housing with a latching device and compensating sleeve, ensuring easy and secure installation with tolerance compensation for electric vehicle battery modules.
Patent Information
- Application Number
- JP2024043074
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-03-23
- Filing Date
- 2024-03-19
- Publication Date
- 2025-09-29
- Estimated Expiration
- 2044-03-19
AI Technical Summary
Existing high-current modular connectors for electric vehicles face challenges in assembly complexity, unintentional disconnection, and the need for additional housing parts, which complicates manufacturing and installation.
A high-current modular connector design featuring a single-piece non-conductive housing with a latching device and a threaded socket, allowing quick assembly and secure retention, along with a touch protection sleeve and compensating sleeve for tolerance compensation, ensuring stable connection and easy installation.
The design facilitates simple, secure, and cost-effective assembly of high-current connectors with enhanced tolerance compensation, providing reliable electrical contact and finger protection, suitable for battery modules in electric vehicles.
Smart Images

Figure 0007745681000001 
Figure 0007745681000002 
Figure 0007745681000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a high-current module connector as claimed in claim 1, a module connector system as claimed in claim 8, and a method for installing a high-current module connector as claimed in claim 11. [Background technology]
[0002] WO2022 / 242980A1 discloses a touch-protective screw connection device, in which the female screw connector has a housing with a two-part design. Summary of the Invention [Problem to be solved by the invention]
[0003] SUMMARY OF THE INVENTION It is an object of the present invention to provide an improved high current modular connector and an improved modular connector system. [Means for solving the problem]
[0004] This object is achieved by a high-current modular connector according to claim 1, a modular connector system according to claim 8 and a method for installing a high-current modular connector according to claim 11. Advantageous embodiments are described in the dependent claims.
[0005] It has been determined that an improved high-current modular connector for electric vehicles can be provided by a high-current modular connector having at least one electrical connector having a first connector portion, a threaded socket, and a housing. The housing is designed as a hollow body and encloses a housing interior. The housing has a latching device, a first insertion opening disposed at an end, and a feed opening in the housing portion extending circumferentially around an installation axis. The connector traverses the first feed opening so that the first connector portion and the threaded socket disposed in the first connector portion are disposed inside the housing. A latching device is disposed in the dispensing opening, the latching device retaining the first connector portion and the threaded socket within the housing with the threaded socket bearing against the latching device.
[0006] This configuration has the advantage that the connector part and the threaded socket together can be assembled particularly quickly inside the housing by means of the insertion opening and the latching device arranged in the insertion opening, without any further housing parts having to be installed in the housing. Furthermore, it is possible to prevent the connector part from unintentionally slipping out of the housing interior without the mating high-current modular connector being arranged in the high-current modular connector.
[0007] The connector has a through opening in the first connector part extending along the installation axis, and the threaded socket has a socket part extending along the installation axis and a carrier part adjacent to the socket part and projecting radially beyond the socket part relative to the installation axis. The socket part passes through the through opening of the connector along the installation axis, and the carrier part abuts the first connector part on a side facing away from the first insertion opening. The latching device has a support surface on a side facing the interior of the housing. A second outer peripheral surface of the carrier part abuts against the support surface. This configuration has the advantage that, as the carrier part abuts the connector part, a step is formed on a side of the first connector part opposite the insertion opening, and the step, together with the latching device, is used to stably secure the locked arrangement consisting of the first connector part and the threaded socket inside the housing. As a result, the housing can have a particularly simple design, whereby the mold for producing the housing, for example by an injection molding process, can be made particularly simply.
[0008] It is particularly advantageous here if the housing is manufactured as a single part from a single material, i.e., a non-conductive first material, as a result of which an additional installation step, for example for installing a two-part housing, can be omitted in the manufacture of the high-current modular connector, making installation of the high-current modular connector particularly simple and involving particularly few installation steps.
[0009] In a further embodiment, the housing has a base defining a housing interior, positioned opposite the first insertion opening. The housing has a spring element connected to the base. The spring element has a first engagement element at a second free end thereof that extends toward the first insertion opening. The first engagement element engages with the threaded socket on the side facing away from the first insertion opening. This configuration has the advantage that the connector and threaded socket assembly is better held within the housing interior, and the threaded socket remains centered within the housing interior. As a result, it is easier to thread the threads of the mating high-current module connector into the threaded socket.
[0010] In a further embodiment, the threaded socket has a first region facing the first insertion opening that protrudes beyond the first connector part. The supply opening has at least one first subregion and a second subregion circumferentially adjacent to the first subregion, the second subregion being designed to be wider along the installation axis than the first subregion. The first region of the threaded socket can be passed through the second subregion. This configuration has the advantage that the threaded socket can be designed to be particularly long along the installation axis, thereby providing sufficient screw-in depth for the thread of the mating high-current modular connector.
[0011] In a further embodiment, the first sub-region of the supply opening is formed along the installation axis to correspond to the extent of the first connector part along the installation axis, which has the advantage that undesirable play in the arrangement of the connector and the threaded socket in the disassembled state in the axial direction relative to the installation axis is avoided.
[0012] In a further embodiment, the high-current modular connector has a touch protection sleeve. The touch protection sleeve is arranged inside the housing on the side of the first connector part of the threaded socket facing the first insertion opening, so as to be spaced apart from the housing. The touch protection sleeve is preferably made of a non-conductive material. The touch protection sleeve, together with the inner peripheral surface of the housing on the side facing the first insertion opening in the direction of the first connector, ensures finger protection. This is particularly important when the high-current modular connector is part of a battery module, in particular a battery module for a battery-powered electric vehicle, for example.
[0013] The modular connector system includes a connecting plate and a first high-current modular connector. The first high-current modular connector is designed as described above. The connecting plate is arranged to be axially offset with respect to the housing relative to the installation axis. The connecting plate has a plate portion, a second insertion opening arranged in the plate portion, and a connecting sleeve. The connecting sleeve extends along the installation axis toward the first high-current modular connector and is arranged in the second insertion opening in the plate portion. The connecting sleeve engages with the first insertion opening of the first high-current modular connector. This configuration has the advantage that the first high-current modular connector and the connecting plate are oriented in a defined manner relative to each other in a radial direction relative to the installation axis.
[0014] In a further embodiment, the modular connector system includes a second high-current modular connector offset relative to the first high-current modular connector and a compensation sleeve. The plate portion includes a third insertion opening, the third insertion opening being offset relative to the second insertion opening on the plate portion. The compensation sleeve extends along an installation axis of the second high-current modular connector toward the second high-current modular connector. The compensation sleeve passes through the first and third insertion openings of the second high-current modular connector. The compensation sleeve is connected to the connecting plate so as to be radially displaceable relative to the installation axis of the second high-current modular connector. This configuration has the advantage that the second high-current module connector can be radially offset relative to the first high-current module connector with a large tolerance. The radial displacement of the second high-current module connector relative to the installation axis compensates for the tolerance of the plate portion in the compensating sleeve. As a result, a defined orientation of the first and second high-current module connectors, which is subject to slight tolerances, is not necessarily required. In particular, the connector of the second high-current module connector can be manufactured, for example, by a stamping and bending process.
[0015] The bayonet connection allows for a particularly simple connection of the compensating sleeve to the connection plate, as a result of which it is ensured already during the pre-installation phase that there is a stable connection between the compensating sleeve and the connection plate, so that when the connection plate is inserted together with the compensating sleeve, they are assembled as a common unit in the first and second high-current module connectors.
[0016] The high-current modular connector described above is particularly easy to assemble as it comprises an electrical connector, a threaded socket and a housing, the threaded socket being guided by the first connector part, the electrical connector together with the threaded socket being guided through the supply opening at an angle to the installation axis, and the latching device being latchedly connected to the threaded socket, the threaded socket abutting against the latching device thereby holding the first connector part together with the threaded socket inside the housing.
[0017] The invention is explained in more detail below with reference to the drawings. [Brief explanation of the drawings]
[0018] [Figure 1] FIG. 1 is a perspective view of a modular connector system. [Figure 2] FIG. 2 is a perspective view of the high current module connector shown in FIG. [Figure 3] FIG. 3 is a perspective view of a housing of the first high current modular connector shown in FIGS. 1 and 2. [Figure 4] 4 is a perspective view of the housing shown in FIG. 3 of the first high current modular connector. [Figure 5] FIG. 10 is a perspective view of the connector of the first high current module connector. [Figure 6] FIG. 3 is a cross-sectional view taken along the cutting plane AA shown in FIG. [Figure 7] 2 is a cross-sectional view through the modular connector system shown in FIG. 1 along section plane BB shown in FIG. 1. [Figure 8] 2 is a cross-sectional view through the modular connector system shown in FIG. 1 along section plane CC shown in FIG. 1. [Figure 9] 9 is a view from below of the connecting plate of the modular connector system shown in FIGS. 1 and 8. FIG. [Figure 10] FIG. 9 is a view of the compensation sleeve shown in FIG. 8. [Figure 11] 2 is a cross-sectional view through the modular connector system taken along section plane DD shown in FIG. 1. [Figure 12] 2 is a cross-sectional view through the modular connector system taken along section plane EE shown in FIG. 1. DETAILED DESCRIPTION OF THE INVENTION
[0019] For ease of understanding, the following figures refer to a coordinate system having an x-axis (longitudinal), a y-axis (lateral), and a z-axis (vertical), where the coordinate system is illustratively in the form of a right-handed system.
[0020] FIG. 1 shows a perspective view of a modular connector system 10.
[0021] The module connector system 10 includes a first high-current module connector 15 and a second high-current module connector 20. The module connector system 10 may include only one of the two high-current module connectors 15, 20, or multiple high-current module connectors 15, 20. The module connector system 10 is designed to provide connectability, for example, in battery modules of a battery electric vehicle. Thus, the module connector system 10 allows the battery module to be in electrical contact with additional battery modules, for example, using an additional module connector system 300 (shown in FIG. 12 ).
[0022] In addition to the first high-current modular connector 15 and the second high-current modular connector 20, the modular connector system 10 includes a connecting plate 25 and a compensating sleeve 30. The first high-current modular connector 15 and the second high-current modular connector 20 each extend along an installation axis 35, which may be arranged to extend parallel to the z-axis.
[0023] FIG. 2 shows a perspective view of the high current modular connector 15 shown in FIG.
[0024] The first high current module connector 15 and the second high current module connector 20 have substantially identical designs. The geometric configuration of the first high current module connector 15 is described in further detail below by way of example.
[0025] The first high-current modular connector 15 includes a housing 40, an electrical connector 45, a threaded socket 50, and a touch-protective sleeve 55. In this embodiment, the first high-current modular connector 15 is designed, for example, as a socket contact connector and is designed to transmit a high current of 50 A to 2000 A, particularly 100 A to 500 A, at a voltage of 40 V to 1000 V.
[0026] Here, the electrical connector 45 may be designed as a bus bar, for example. The electrical connector 45 is electrically conductive and may comprise a first connector part 60 and a second connector part 65 adjacent to and connected to the first connector part 60. The electrical connector 45 may have a rectangular cross section at the second connector part 65. The electrical connector 45 may be electrically connected, for example, to a battery cell array of a storage battery, in particular a traction battery of an electric vehicle, in particular a battery electric vehicle (BEV).
[0027] The first connector part 60 may, for example, be designed annularly and adjoin the second connector part 65. Here, the first connector part 60 may protrude laterally beyond the second connector part 65. The first connector part 60 has a contact surface 70, shown in the top view in FIG. 2. The contact surface 70 may, for example, be designed annularly and surrounds a through-opening 75 that is arranged in the first connector part 60 and extends along the installation axis 35. The through-opening 75 extends along the installation axis 35 completely through the first connector part 60. The through-opening 75 may have a circular cross-section.
[0028] FIG. 3 is a perspective view of the housing 40 of the first high current modular connector 15 shown in FIGS.
[0029] The housing 40 comprises a first material that is electrically non-conductive, where the housing 40 is manufactured from the first material as a single piece of a single material, for example, in an injection molding process.
[0030] The housing 40 has a housing portion 80 that surrounds a housing interior 95 and extends as a hollow cylinder around the installation axis 35, and a base portion 85. The base portion 85 is disposed at the end of the housing portion 80 and closes the housing interior 95 at the end. The base portion 85 and the housing portion 80 are designed as a single piece of a single material.
[0031] The housing 40 has a first insertion opening 90 on a side axially opposite to the base 85 with respect to the installation axis 35. The first insertion opening 90 opens into a housing interior 95 of the housing 40, which is surrounded in the circumferential direction by the housing portion 80. The housing 40 further has a supply opening 100 in the housing portion 80. The supply opening 100 is defined on one side in the axial direction by the base 85. The supply opening 100 is further arranged spaced apart from the first insertion opening 90 on a side facing the first insertion opening 90. The supply opening 100 extends between a first outer peripheral surface 105 of the housing portion 80 and an inner peripheral surface 110 of the housing portion 80, and opens into the housing interior 95. The supply opening 100 subtends an angle with respect to the installation axis 35 that may be between 160° and 190°.
[0032] The housing 40 preferably has a latch device 115 on the base 85. The latch device 115 may have a latch lug 120 fixed to the base 85 at a first fixed end 125. A first free end 130 of the latch lug 120 protrudes into the feed opening 100. The latch device 115 is designed to be narrower in the circumferential direction than the extent of the feed opening 100, for example. An inclined surface of the latch lug 125 relative to the installation axis 35 is arranged radially outward of the latch lug 125 on the side facing away from the housing interior 95.
[0033] The latch lug 120 has a support surface 135 radially inward on the side facing the housing interior 95. The support surface 135 is configured, for example, in an axial direction parallel to the installation axis 35 and has, for example, a part-annular form extending in a circular path around the installation axis 35.
[0034] The housing 40 has, for example, a spring element 140 in the base 85, which is arranged axially opposite the first insertion opening 90 with respect to the installation axis 35. The spring element 140 may be formed, for example, as a beam spring. The spring element 140 has a first engagement element 150 at or near a second free end 145, which extends axially from the spring element 140 toward the first insertion opening 90 along the installation axis 35. The first engagement element 150 may be formed, for example, as a frustum. The first engagement element 150 is arranged, for example, to be disposed at the center of the installation axis 35.
[0035] FIG. 4 shows a further perspective view of the housing 40 shown in FIG.
[0036] The spring element 140 is connected to the base part 85 at a second fixed end 155. The spring element 140 may be designed as a single piece with and from the same material as the base part 85 and the housing part 80. The second fixed end 155 is advantageously arranged, for example, on the side located opposite the dispensing opening 100.
[0037] The feed opening 100 is directly adjacent to the base 85 and is divided into at least one first subregion 160 and at least one second subregion 165. In addition, the feed opening 100 may have a third subregion 170. The second subregion 165 is adjacent to the first subregion 160 in the circumferential direction. The third subregion 170 is adjacent to the second subregion 165 on the side opposite to the first subregion 160. In the first subregion 160, the feed opening 100 has a first height h1 in the z-direction. The first height h1 refers to the maximum distance between a bottom surface 175 of the base 85 and a contour 180 of the feed opening 100 in the first subregion 160, the contour 180 being located on the side opposite the bottom surface 175. Here, the bottom surface 175 is adjacent to the housing interior 95 and defines the housing interior 95 at its ends. The outer frame portion 180 is arranged in the first sub-region 160 so as to extend parallel to the bottom surface 175. The dispensing opening 100 thus has a constant first height h1 in the first sub-region 160.
[0038] The supply opening 100 is wider in the second sub-region 165. The outer frame 180 is designed as a bulge-like or groove-like widening of the supply opening 100 in the second sub-region 165 compared to the first sub-region 160 and / or the third sub-region 170. In the second sub-region 165, the supply opening 100 has a second height h2 relative to the bottom surface 175. Here, the outer frame 180 in the second sub-region 165 is also designed to extend parallel to the bottom surface 175. The second sub-region 165 extends over a first width b1 in the circumferential direction. The latch device 115 is arranged in the second sub-region 165 on the opposite side of the outer frame 180 in the z-direction. The latch device 115 has a second width b2 in the circumferential direction, which may substantially correspond to the first width b1 of the outer frame portion 180 in the second sub-region 165.
[0039] The third sub-region 170 is preferably designed identically to the first sub-region 160. In the third sub-region 170, the supply opening 100 has a third height h3 between the outer frame 180 and the bottom surface 175. The third height h3 may, for example, correspond to the first height h1. The third sub-region 170 may have substantially the same width in the circumferential direction as the first sub-region 160. As a result, the supply opening 100 is designed substantially symmetrically when, for example, looking at the second sub-region 165.
[0040] FIG. 5 shows a perspective view of the connector 45 shown in FIG.
[0041] The annular form of the first connector portion 60 can be clearly seen in Figure 5, where the first connector portion 60 is designed to be thinner in the z-direction than the second sub-region 165. In the first sub-region 160, the first connector portion 60 has a fourth height h4, which may substantially correspond to the first height h1 and the third height h3.
[0042] FIG. 6 shows a cross-sectional view taken along the cutting plane AA shown in FIG.
[0043] The threaded socket 50 has a socket part 185 extending along the installation axis 35. The socket part 185 is open on both sides and has, for example, an internal thread 190 on the inside. A carrier part 195 is arranged at one end of the socket part 185 and adjoins the socket part 185 on the radially outside. The carrier part 195 may, for example, be designed annular. The carrier part 195 and the socket part 185 are preferably made from a second electrically conductive material, for example as a single piece of material. The carrier part 195 abuts the first connector part 60 on the side facing away from the contact surface 70. The socket part 185 passes axially along the installation axis 35 through the through-opening 75. Here, the socket part 185 has a first region 200 that projects beyond the contact surface 70 along the installation axis 35. A second region 205 is located in the through opening 75 and preferably abuts it radially outward, so that the threaded socket 50 is centered in the through opening 75.
[0044] The touch protection sleeve 55 is made of a non-conductive third material, which may in particular be the same as the first material of the housing 40. The touch protection sleeve 55 is preferably fixed, in particular plugged, in the first region 200 of the socket part 185, for example abutting against the underside of the contact surface 70. The contact surface 70 is accessible between the touch protection sleeve 55 and the inner circumferential surface 110 on the side facing the first insertion opening 90.
[0045] In the assembled state of the first high-current modular connector 15, the first engaging element 150 engages the threaded socket 50 in the socket portion 185 axially opposite the first insertion opening 90 and radially holds the threaded socket 50 in the housing interior 95. Here, the spring element 140 is preferably pretensioned and provides a clamping force FS acting along the installation axis 35, urging the threaded socket 50 axially toward the first insertion opening 90. Alternatively, in the assembled state, the tension on the spring element 140 can be relaxed, but the engagement of the first engaging element 150 in the socket portion 185 can be ensured.
[0046] FIG. 7 shows a cross-sectional view through the modular connector system 10 shown in FIG. 1 along section plane BB shown in FIG.
[0047] The radial position of the connector 45 , and in particular the first connector portion 60 , within the housing interior 95 is further fixed by the second outer peripheral surface 210 of the carrier portion 195 abutting the support surface 135 of the latch lug 120 .
[0048] Furthermore, one axial end of the socket portion 185 arranged on the side facing the first insertion opening 90 is arranged at substantially the same height as the outer frame portion 180 in the second sub-region 165.
[0049] It can further be seen that engagement of the first engagement element 150 in the socket portion 185 of the threaded socket 50 positions the carrier portion 195 away from the bottom surface 175, resulting in the contact surface 70 abutting against the outer frame portion 180 in the first sub-region 160 and the third sub-region 170 of the supply opening 100, thereby ensuring its axial position relative to the installation axis.
[0050] The connecting plate 25 has a plate portion 215. The plate portion 215 is designed substantially plate-shaped and extends, for example, in the xy plane and thus substantially perpendicular to the installation axis 35. The plate portion 215 may be circumferentially reinforced by a collar.
[0051] Additionally, the connecting plate 25 has a connecting sleeve 220. The connecting sleeve 220 is, for example, substantially tubular in design and extends circumferentially around the installation axis 35. The connecting sleeve 220 is connected at one end to the plate part 215. In particular, the connecting sleeve 220 and the plate part 215 may be made as a single piece of material from an electrically insulating fourth material. The connecting sleeve 220 axially adjoins the second insertion opening 225 of the plate part 215 and extends toward the first high-current modular connector 15. On its side facing away from the plate part 215, the connecting sleeve 220 is tapered and engages with the housing interior 95 of the housing 40 of the first high-current modular connector 15 via the first insertion opening 90. Thus, a portion of the connecting sleeve 220 is arranged between the inner circumferential surface 110 and the touch protection sleeve 55.
[0052] In order to maximize the surface area of the contact surface 70, the housing 40 may be widened in the housing portion 80 between the connector 45 and the first insertion opening 90, so that engagement of the connection sleeve 220 in the housing interior 95 between the first insertion opening 90 and the connector 45 does not substantially result in any significant loss of surface area in the contact surface 70, and the contact surface 70 is covered by the connection sleeve 220 in the direction of the first insertion opening 90 and the second insertion opening 225.
[0053] For tolerance compensation purposes, a first radial gap 230 may be arranged between the connection sleeve 220 and the inner circumferential surface 110. The first radial gap 230 can compensate for a first radial offset between the first high-current module connector 15 and the connection sleeve 220. Furthermore, the first radial gap 230 facilitates insertion of the connection sleeve 220 into the housing interior 95 through the first insertion opening 90.
[0054] FIG. 8 shows a cross-sectional view through the modular connector system 10 shown in FIG. 1 along section plane CC shown in FIG.
[0055] A third insertion opening 235 is further disposed in the plate portion 215 such that it is offset relative to the second insertion opening 225. The third insertion opening 235 may have a substantially circular configuration, where the third insertion opening 235 is disposed substantially above the second high-current module connector 20.
[0056] As already mentioned above, the second high-current modular connector 20 is designed substantially identically to the first high-current modular connector 15. However, in contrast, the connector 45 of the second high-current modular connector 20 is guided out of the housing 40 of the second high-current modular connector 20 on the opposite side in the lateral direction to the connector 45 of the first high-current modular connector 15. Furthermore, the arrangement of the connecting sleeve 220 between the plate part 215 and the second high-current modular connector 20 is omitted. Instead, a compensation sleeve 30 is provided in the third insertion opening 235. The compensation sleeve 30 can be designed stepped, for example in the z-direction, so that its inner cross section tapers from the installation axis 35 to the first insertion opening 90 of the second high-current modular connector 20.
[0057] The compensation sleeve 30 passes through the third insertion opening 235 on one side, engages with the first insertion opening 90 of the second high current module connector 20 on the side opposite the third insertion opening 235 in the z-direction, and terminates above the first connector portion 60, preferably spaced apart from the first connector portion 60.
[0058] In the x- and y-directions, the compensation sleeve 30 is connected to the connecting plate 25 so as to be displaceable relative to the plate part 215 and thus relative to the connecting plate 25. For this purpose, in the present embodiment, a bayonet connection 245 is provided by way of example, which is arranged on the radially outer side on the compensation sleeve 30 on the one hand and on the plate part 215 on the other hand.
[0059] FIG. 9 shows a view from below of the connecting plate 25 of the modular connector system 10 shown in FIGS.
[0060] A first bayonet fitting 255 and a second bayonet fitting 260 of the bayonet connection portion 245, which are arranged to be offset from each other in the circumferential direction on a lower surface 250 of the plate portion 215 facing the first high-current module connector 15 and the second high-current module connector 20, are preferably arranged in the third insertion opening 235. In addition, a third bayonet fitting 241 and / or a fourth bayonet fitting 242 of the bayonet connection portion 245 may be arranged on the lower surface 250 of the plate portion 215, with the third bayonet fitting 241 and the fourth bayonet fitting 242 being arranged between the first bayonet fitting 255 and the second bayonet fitting 260, respectively.
[0061] The bayonet fittings 255, 260, 241, 242 each have a support surface 261 that is arranged axially relative to the installation axis 35 and spaced apart from the lower surface 250, where the support surface 261 of the third bayonet fitting 241 and / or the fourth bayonet fitting 242 is arranged closer to the lower surface 250 than the support surface 261 of the first bayonet fitting 255 and the second bayonet fitting 260. The third bayonet fitting 241 and the fourth bayonet fitting 242 are further formed to be open on the side facing away from the lower surface 250, whereas the first bayonet fitting and the second bayonet fitting are formed to be at least partially closed.
[0062] FIG. 10 shows a view of the compensation sleeve 30 shown in FIG.
[0063] The compensation sleeve 30 has a second engagement element 270 on the third outer peripheral surface 265, which extends radially outward from the third outer peripheral surface 265. The second engagement element 270 is preferably designed to be partially annular and protrudes beyond the third outer peripheral surface 265. In the radial direction, the second engagement element 270 is designed to be thinner than the radial depth of the first bayonet fitting 255 and the second bayonet fitting 260.
[0064] FIG. 11 shows a cross-sectional view through the modular connector system 10 along section plane DD shown in FIG.
[0065] In the assembled state, the second engaging element 270 engages with the corresponding first bayonet fitting 255 or second bayonet fitting 260. Here, a second radial gap 275 between the fourth outer peripheral surface 280 of the second engaging element 270 and the bayonet fitting 255, 260 is provided by the expanded depth of the corresponding bayonet fitting 255, 260. The second radial gap 275 ensures that the compensation sleeve 30 is displaceable in the radial direction (x and y directions) relative to the third insertion opening 235, thereby providing tolerance compensation between the second high-current module connector 20 and the connecting plate 25. In particular, here, tolerances of up to 2 mm can be compensated in the x and y directions between the second high-current module connector 20 and the connecting plate 25 and between the first high-current module connector 15 and the second high-current module connector 20. As a result, the possibility of stable installation of the connection plates 25 in both the first high current module connector 15 and the second high current module connector 20 is realized. In particular, considering that each connector 45 is designed as a busbar and may subsequently be bent once or more than once, the arrangement of each high current module connector 15, 20 is subject to relatively large tolerances or large tolerance chains, and therefore tolerance compensation may be necessary.
[0066] Furthermore, the compensation sleeve 30, together with the touch protection sleeve 55, ensures reliable touch protection in the second high-current modular connector 20. Furthermore, by selecting the radial distance between the connecting sleeve 220 and the touch protection sleeve 55, reliable touch protection, in particular finger protection, is also reliably ensured in the first high-current modular connector 15.
[0067] To assemble the first high current modular connector 15 and / or the second high current modular connector 20, in a first method step the connector 45, the threaded socket 50, the touch protection sleeve 55 and the housing 40 are provided, where the touch protection sleeve 55 and the housing 40 may be manufactured, for example, from plastic, for example, in separate injection molding steps.
[0068] In a second method step, the threaded socket 50 is inserted with the socket part 185 through the through-opening 75. To prevent twisting of the threaded socket 50 relative to the first connector part 60, a twist protection, for example an external toothing, may be arranged, for example, on the circumference of the socket part 185. The socket part 185 is inserted through the through-opening 75 so that the carrier part 195 abuts the first connector part 60 on its underside facing away from the first insertion opening 90. The socket part 185 has a first sub-region 160 that projects beyond the top of the contact surface 70.
[0069] In a third method step, the connector 45 together with the threaded socket 50 is inserted perpendicular to the installation axis 35 through the feed opening 100 into the housing interior 95. The spring element 140 is now deflected in a direction opposite to the first insertion opening 90. Furthermore, the first region 200 of the threaded socket 50 may be guided through the second sub-region 165 of the feed opening 100.
[0070] When the first connector part 60 and the threaded socket 50 reach their final positions in the housing interior 95, the carrier part 195 is latched to the latch device 115, and the latch device 115 secures the first connector part 60 and the threaded socket 50 against unintentional withdrawal from the housing interior 95 by abutting the second outer peripheral surface 210 against the support surface 135 of the latch lug 120. Furthermore, in the final position, the first engaging element 150 engages with the socket part 185 that opens on the side facing away from the first insertion opening 90, further holding the first connector part 60 together with the threaded socket 50 in their final positions in the housing interior 95.
[0071] In a fourth method step, the touch protection sleeve 55 is inserted via the first insertion opening 90 into the first sub-region 160 that protrudes beyond the contact surface 70. The touch protection sleeve 55 may now be latched into the first sub-region 160.
[0072] After the fourth method step, the installation of the first high-current modular connector 15 is completed. The second high-current modular connector 20 is assembled in exactly the same way. A few method steps can be performed fully automatically, which allows the high-current modular connectors 15, 20 to be assembled in a production line with high cycle times and fully automatically.
[0073] To complete the assembly of the battery module and assemble the module connector system 10, after the high current module connectors 15, 20 have been installed on the battery module, in a fifth method step the compensation sleeve 30 is assembled to the connection plate 25 via the bayonet connection 245.
[0074] In a sixth method step, the compensation sleeve 30 is connected to the connecting plate 25 by a plugging and rotating action, such that the engagement elements 270 engage with the third bayonet fitting 241 and the fourth bayonet fitting 242. The compensation sleeve 30 is then pivoted about the installation axis 35 until the engagement elements 270 engage with the first bayonet fitting 255 and the second bayonet fitting 260, respectively.
[0075] The connecting plate 25 together with the compensating sleeve 30 is assembled to the first high-current modular connector 15 and the second high-current modular connector 20 such that the connecting plate 25 together with the connecting sleeve 220 is oriented so as to be aligned with the first high-current modular connector 15 in the x- and y-directions (radial directions relative to the installation axis 35), and the connecting sleeve 220 is inserted along the installation axis 35 through the first insertion opening 90 into the housing interior 95 of the first high-current modular connector 15. At the same time, the compensating sleeve 30 is also inserted through the first insertion opening 90 of the second high-current modular connector 20 into the housing interior 95 of the second high-current modular connector 20, and the second radial gap 275 automatically centers the compensating sleeve 30 relative to the housing 40 of the second high-current modular connector 20. Additionally, the wide configuration of the first bayonet fitting 255 and the second bayonet fitting 260 can provide compensation for tolerances in the direction of the installation axis.
[0076] FIG. 12 shows a cross-sectional view through the modular connector system 10 along section plane EE shown in FIG.
[0077] A further modular connector system 300 is assembled to the modular connector system 10. Here, the further modular connector system 300 comprises a first mating high-current modular connector 305 and a second mating high-current modular connector 310. The first mating high-current modular connector 305 and the second mating high-current modular connector 310 are each designed as a plug by way of example, and each of the first mating high-current modular connector 305 and the second mating high-current modular connector 310 has a thread 315 that is screwed along an installation axis 35 into a thread portion 320 in the socket portion 185 of the corresponding first high-current modular connector 15 and second high-current modular connector 20, respectively.
[0078] By configuring the socket portion 185 of the threaded socket 50 to be open on both sides, a sufficiently long screw-in depth of the threaded portion 320 of the screw 315 is ensured, thereby ensuring that the contact elements 325 of the first and second mating high-current module connectors 305 and 310 are stably pressed against the contact surfaces 70 of the corresponding first and second high-current module connectors 15 and 20. As a result, stable current transmission is ensured between the first and first mating high-current module connectors 305 and between the second and second mating high-current module connectors 20 and 310.
[0079] Furthermore, the risk of screwing, particularly the collision of the screws 315 when the first mating high current module connector 305 and / or the second mating high current module connector 310 are screwed into the corresponding socket portions 185 of the first high current module connector 15 and the second high current module connector 20, respectively, is avoided, thereby also allowing for easy and quick installation of further module connector systems 300 to the module connector system 10.
[0080] Furthermore, it is avoided that the screw ends hit the closed socket parts, and it is ensured that the first high-current modular connector 305 can be well-centered in the first high-current modular connector 15 by the connecting sleeve 220, and that the second high-current modular connector 310 can be well-centered in the second high-current modular connector 20 by the compensating sleeve 30.
[0081] Furthermore, constructing the housing 40 as a single piece of a single material allows the housing 40 to be made particularly cost-effectively in a single injection molding procedure.
Claims
1. A high current modular connector (15, 20) for an electric vehicle, comprising: - the high current modular connector (15, 20) has at least one electrical connector (45) having a first connector portion (60), a threaded socket (50) and a housing (40); - said housing (40) is designed as a hollow body and at least partially encloses a housing interior (95); - the housing (40) has a latching device (115), a first insertion opening (90) arranged at an end thereof, and a first feed opening (100) in a housing part (80) extending circumferentially around the installation axis (35); - the electrical connector (45) is disposed in the first supply opening (100) such that the first connector portion (60) of the electrical connector (45) and the threaded socket (50) disposed in the first connector portion (60) are disposed in the housing interior (95) of the housing (40); - said latching device (115) is arranged in said first feed opening (100); - the latching device (115) holds the first connector part (60) and the threaded socket (50) within the housing interior (95) by the threaded socket (50) abutting against the latching device (115); - said threaded socket (50) has a socket portion (185) extending along said installation axis (35); The socket portion (185) is open on both sides in the longitudinal direction of the socket portion (185), The socket portion (185) has an internal thread (190) inside the threaded socket (50). High current module connectors (15, 20).
2. - the electrical connector (45) has a through opening (75) extending along the installation axis (35) in the first connector part (60); - the threaded socket (50) has the socket portion (185) extending along the installation axis (35) and a carrier portion (195) adjacent to the socket portion (185) and projecting radially relative to the installation axis (35) beyond the socket portion (185); - the socket part (185) passes through the through opening (75) of the electrical connector (45) along the installation axis (35), and the carrier part (195) abuts the first connector part (60) on the side facing away from the first insertion opening (90); - said latching device (115) has a support surface (135) on the side facing the housing interior (95); - a second outer peripheral surface (210) of said carrier part (195) abuts said support surface (135); 2. The high current modular connector (15, 20) of claim 1.
3. the housing (40) is manufactured as a single piece from a single material, namely a non-conductive first material; 2. The high current modular connector (15, 20) of claim 1.
4. - the housing (40) has a base (85) located opposite the first insertion opening (90) and partially defining the housing interior (95); - said housing (40) has a spring element (140) at said base (85) connected to said base (85); - the spring element (140) has a first engagement element (150) at its second free end (145) extending in the direction of the first insertion opening (90); - the first engagement element (150) engages with the threaded socket (50) on the side facing away from the first insertion opening (90); 2. The high current modular connector (15, 20) of claim 1.
5. - the threaded socket (50) has a first region (200) on the side facing the first insertion opening (90) that projects beyond the first connector part (60); - said first feed opening (100) has at least one first sub-region (160) and at least one second sub-region (165) adjacent to said first sub-region (160) in said circumferential direction, - said second sub-region (165) is designed to be wider than said first sub-region (160) along said installation axis (35); - said first region (200) of said threaded socket (50) is capable of passing through said second sub-region (165); 2. The high current modular connector (15, 20) of claim 1.
6. the first sub-region (160) of the first supply opening (100) is formed along the installation axis (35) to correspond to the extent of the first connector portion (60) along the installation axis (35); A high current modular connector (15, 20) according to claim 5.
7. - has a touch protection sleeve (55), the touch protection sleeve (55) is fixed to the socket part (185) of the threaded socket (50) so as to surround the free end side area (200) of the socket part (185); 2. The high current modular connector (15, 20) of claim 1.
8. - a connecting plate (25) and a first high current module connector (15), - the first high current module connector (15) is designed according to claim 1, - said connecting plate (25) is arranged so as to be axially offset with respect to said housing (40) with respect to said installation axis (35); the connecting plate (25) comprises a plate portion (215), a second insertion opening (225) arranged in the plate portion (215), and a connecting sleeve (220); - the connecting sleeve (220) extends along the installation axis (35) in the direction of the first high-current module connector (15) and is arranged in the second insertion opening (225) in the plate part (215); - the connecting sleeve (220) engages with the first insertion opening (90) of the first high-current modular connector (15); A modular connector system (10).
9. - a second high current module connector (20) arranged offset relative to the first high current module connector (15) and a compensation sleeve (30); - said plate portion (215) has a third insertion opening (235); - the third insertion opening (235) is arranged offset relative to the second insertion opening (225) in the plate portion (215); - the compensation sleeve (30) extends along the installation axis (35) of the second high current modular connector (20) in the direction of the second high current modular connector (20); - the compensation sleeve (30) passes through the first insertion opening (90) and the third insertion opening (235) of the second high-current modular connector (20); the compensation sleeve (30) is connected to the connection plate (25) so as to be radially displaceable relative to the installation axis (35) of the second high-current modular connector (20); The modular connector system (10) of claim 8.
10. the compensation sleeve (30) is connected to the connecting plate (25) by a bayonet connection (245); The modular connector system (10) of claim 9.
11. A method for installing a high current modular connector (15, 20) according to any one of claims 1 to 7, comprising the steps of: - said electrical connector (45), said threaded socket (50) and said housing (40) are provided; - said threaded socket (50) is guided through said first connector part (60); - said electrical connector (45) together with said threaded socket (50) is guided through said supply opening at an angle to said installation axis (35); - the latching device (115) latches into the threaded socket (50) and the threaded socket (50) abuts against the latching device (115), thereby securing the first connector part (60) together with the threaded socket (50) to the housing interior (95); method.
12. A spring element (140) is formed in the base (85) of the housing (40), the spring element (140) has a first engagement element (150) extending from the spring element (140) along the installation axis (35) in a direction toward the first insertion opening (90); the first engaging element (150) of the spring element (140) is engaged with the socket portion (185) of the threaded socket (50) through the opening of the socket portion (185); 2. The high current modular connector (15, 20) of claim 1.
Citation Information
Patent Citations
Contact-forming unit, its attachment method, and screwing tool for carrying out the method
JP2009127866A
Module connector
JP2022013789A
Module connector with at least one displaceable contact assembly
JP2022111089A
Electrical Connection Assembly
JP3223783U
Contact-protected screw-connection device
WO2022242980A1