Vehicle charging input electrical connector

The vehicle charging input electrical connector addresses maintenance challenges by using a screwable design with protected screw-nut connections, allowing quick terminal replacement and enhancing safety and efficiency.

JP7846153B2Active Publication Date: 2026-04-14TYCO ELECTRONICS FRANCE
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
TYCO ELECTRONICS FRANCE
Filing Date
2024-03-11
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing charging input electrical connectors for vehicles face challenges in maintenance due to complex and lengthy conductor paths, making mounting, inspection, and replacement difficult, particularly with rigid single conductors secured by welding or riveting.

Method used

A vehicle charging input electrical connector design featuring a connector casing with a cavity and screwable electrical terminals, allowing for quick replacement by unscrewing and screwing operations from the outside of the vehicle chassis, and incorporating a screw-nut connection protected by thread arrangement.

Benefits of technology

Facilitates faster and simpler maintenance of electrical terminals by enabling quick replacement and reducing mechanical stress, while improving electrical safety and reducing assembly costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a charging input electrical connector, in particular enabling quicker and simpler maintenance operations.SOLUTION: The invention relates to a charging input electrical connector (1) for a vehicle. The electrical connector is configured to receive, in a coupling direction (A), a movable homologous connector of a charging station, and includes a connector casing (100), a connector (200) for a rigid monoconductor, and an electrical terminal (300), in particular an electrical terminal configured for electrical currents of at least 100A. The connector is characterized in that the electrical terminal is screwed with a rigid monoconductor terminal (209) of the connector for rigid monoconductor, so as to clamp at least one part of the connector casing between the electrical terminal and the connector for rigid monoconductor. The invention moreover relates to an electrical terminal for such a vehicle charging input electrical connector, and a method for assembling such a vehicle charging input electrical connector.SELECTED DRAWING: Figure 3
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Description

Technical Field

[0001] The present invention relates to a charging input electrical connector for a vehicle. The present invention also relates to electrical terminals for such a connector, particularly configured for currents of at least 100 A, and a method of assembling such a connector.

Background Art

[0002] It is known in the art to provide various types of electric vehicles and hybrid vehicles with a charging input electrical connector for charging the battery of the vehicle. Generally, such an electrical connector comprises a connector casing arranged on the vehicle chassis and at least one electrical terminal. In particular, the connector is arranged such that a first face faces the outside of the chassis and a second face faces the inside of the chassis.

[0003] The electrical connector is configured on the first face to receive a corresponding movable connector, for example a charging gun belonging to a charging station, and to couple the electrical terminals to corresponding electrical terminals of the corresponding movable connector. On the second face, the electrical connector can be electrically connected to the battery by a set of rigid single conductors, also called "busbars". The rigid single conductors are used, in particular, for "rapid" battery charging by direct current (DC) having a high current strength, for example above 100 A.

[0004] To comply with electrical safety and size constraints, the path of the set of rigid single conductors through the inside of the vehicle chassis is becoming increasingly complex and long. This makes mounting, inspection, and maintenance difficult.

[0005] Furthermore, it is common practice to secure a set of rigid single conductors to an electrical connector by welding or riveting the ends of the rigid single conductors to the respective electrical terminals of the electrical connector. Therefore, maintenance difficulties extend to the charging input electrical connector. In particular, replacing a part of the electrical connector may require removing the entire set of rigid single conductors. [Overview of the Initiative] [Problems that the invention aims to solve]

[0006] Taking the above into consideration, the present invention aims to provide an improved charging input electrical connector that enables faster and simpler maintenance operations. [Means for solving the problem]

[0007] The object of the present invention is realized by the vehicle charging input electrical connector according to the present disclosure. The electrical connector is configured to receive a corresponding movable connector of a charging station in a coupling direction and comprises a connector casing, a connector for rigid monoconductors, and electrical terminals, in particular electrical terminals configured for a current of at least 100A.

[0008] The connector casing has a first surface and a second surface opposite to the first surface, and is configured to be positioned on the chassis of a vehicle such that the second surface faces inward into the chassis, the first surface includes a first coupling structure configured to couple the connector casing to a corresponding connector, and the second surface includes a second coupling structure configured to couple the connector casing to a rigid single-conductor connector. The connector casing includes a cavity extending in the coupling direction from the first coupling structure to the second coupling structure, and electrical terminals are located in the cavity. The rigid single-conductor connector includes rigid single-conductor terminals.

[0009] The electrical connector is characterized in that the electrical terminals are screwed to rigid single-conductor terminals, and at least one portion of the connector casing is clamped between the electrical terminals and the rigid single-conductor connector.

[0010] According to this configuration of the electrical connector of the present invention, the fixing of the electrical terminals to the rigid single conductor and the connector casing is achieved by screwing. In particular, since the electrical terminals are located in the cavity, they can be screwed through the connector casing to the terminals of the rigid single conductor localized on the second surface of the inner casing of the chassis, on the first surface of the outer casing of the chassis. Thus, the electrical terminals can be replaced quickly and effectively by unscrewing and screwing operations performed from the outside of the vehicle chassis.

[0011] Electrical terminals are subjected to significant mechanical, thermal, and electrical stresses during battery charging, leading to more frequent terminal degradation and sometimes requiring replacement. This invention improves the maintenance of charging input connectors by facilitating the replacement of electrical terminals.

[0012] According to one embodiment of the electrical connector, the rigid single-conductor terminal includes a screw, the electrical terminal includes a nut configured to receive the screw, and the electrical terminal is screwed to the rigid single-conductor terminal by tightening the nut onto the screw.

[0013] By arranging electrical terminals with nuts and rigid single-conductor terminals with threads, the threads of the screw-nut connection are further protected. In fact, replaceable electrical terminals screwed to the outer casing are more susceptible to shock or other dangerous mechanical forces. Therefore, the tapping or female threads of the nut are associated with the electrical terminal, while the more vulnerable male threads are provided to the rigid single-conductor terminals housed inside the chassis on the second face of the casing.

[0014] The present invention also relates to an electrical terminal for a connector according to one of the embodiments described below. The electrical terminal is configured in particular for a current of at least 100A. The electrical terminal comprises a nut, a first part, and a second part, the first part having a first end of the electrical terminal, and the second part having a second end of the electrical terminal, the second end being opposite to the first end, the first part of the electrical terminal being configured to contact the corresponding electrical terminal of the corresponding electrical connector, and the nut being located at the second end. This electrical terminal makes it possible to implement the vehicle charging input electrical connector according to the present invention, and thus obtain the advantages described.

[0015] Insofar as the scope of the present invention as described above is taken into consideration, the optional technical features and related advantages described below can be freely combined one by one or adapted to specific embodiments. In particular, optional features of the electrical terminals of the present invention can also be applied to the electrical terminals of a charging input electrical connector according to the present invention.

[0016] According to an aspect of the present invention, the electrical terminal may comprise a first portion having a first end of the electrical terminal and a second portion having a second end of the electrical terminal, the second end being opposite to the first end, the first portion of the electrical terminal being configured to contact a corresponding electrical terminal of a corresponding electrical connector, and a nut being positioned at the second end.

[0017] In this configuration, electrical terminals can be screwed through the connector casing. In particular, screwing at the first outer end of the chassis provides screwing to a rigid single-conductor terminal at the second inner end of the chassis.

[0018] According to an aspect of the present invention, the electrical terminal is a male electrical terminal configured to be coupled to a female electrical terminal of a corresponding movable connector. Since the male electrical terminal is thinner and lighter than the female terminal, the placement of the electrical terminal in a vehicle, particularly maintenance, can be facilitated.

[0019] According to an aspect of the present invention, the electrical terminal may be provided with an insulating tip located at the first end. The insulating tip can reduce the risk of electric shock to vehicle assemblers and users of the vehicle at the charging input electrical connector.

[0020] According to aspects of the present invention, the screws of the bus terminal may include an insulating socket, particularly located at the end of the screw. The socket can reduce the risk of electric shock during the installation of a rigid single conductor and improve the workability of the connector for rigid single conductors.

[0021] According to aspects of the present invention, an electrical connector includes a plurality, particularly two, of the electrical terminals, and a connector for a rigid single conductor may include several rigid single conductor terminals corresponding to the number of electrical terminals. Two electrical terminals can close a DC electrical circuit. Multiple electrical terminals can increase the power that can be transmitted and increase the battery charging speed.

[0022] According to an aspect of the present invention, the minimum outer diameter of the second portion is larger than the maximum outer diameter of the first portion, particularly by 20% to 200%. Therefore, the second portion can be wide enough to receive a nut. In particular, since the second portion is responsible for securing the electrical terminal by screw fastening, the mechanical forces and torsions applied to the interface can be large, and the larger diameter can enhance mechanical stability.

[0023] According to an aspect of the present invention, the second portion may include a protruding portion having a diameter larger than the minimum outer diameter of the second portion. The protruding portion forms a contact portion with the second portion, which enables shape mating with the connector casing during screw-fastened assembly of the electrical terminal and the rigid single-conductor connector.

[0024] According to an aspect of the present invention, the protruding portion can project in a stepped shape, particularly perpendicularly, from the second portion, at least on the side facing the second end. When the protruding portion projects in a stepped shape, the contact portion is better identified, thereby increasing the mechanical stability of the shape fit.

[0025] According to an aspect of the present invention, at least one part of the clamped casing can include a shape complementary to a stepped shape, and the complementary shape projects into the cavity to establish a connection by shape fitting with an electrical terminal. In particular, the connection by shape fitting is configured to prevent the movement of the electrical terminal in the coupling direction.

[0026] Therefore, the electrical terminal can abut against the connector casing during screwing. In particular, when the electrical terminal is inserted into the cavity and screwed to the rigid single-conductor terminal, the protruding portion can abut against the complementary shape of the connector casing to establish a connection by shape fitting. By screwing the electrical terminal closer to the rigid single-conductor terminal, at least one part of the connector casing can be clamped between the electrical terminal and the connector for the rigid single conductor.

[0027] According to an aspect of the present invention, the protruding portion can be arranged in a region connecting the second part and the first part. Therefore, the protruding portion is away from the nuts at the second end and the first end, and there is little risk of interfering with the coupling with the rigid single-conductor terminal and / or the coupling with the corresponding connector.

[0028] According to an aspect of the present invention, the electrical terminal can include a seal arranged on the protruding portion, particularly an O-ring arranged along the periphery of the electrical terminal of the protruding portion. The seal can improve the sealing of the cavity, and thus form a seal between the inside and the outside of the vehicle.

[0029] According to an aspect of the present invention, the first part includes a clamping element, particularly a shaped element, configured to couple with a clamping tool having a complementary shape. In particular, the clamping element may be a triangular, pentagonal, heptagonal, or octagonal element located at the center of the axis of the electrical terminal. By means of the clamping element, the screwing and unscrewing of the electrical terminal and the rigid single-conductor terminal can be limited to an operator having a tool complementary to the clamping element. Thus, the clamping element can function to facilitate the clamping of the electrical terminal and at the same time provide a foolproof measure against unintentional handling.

[0030] The present invention further is based on a method of assembling a charging input electrical connector for a vehicle according to one of the above aspects. The assembling method includes: a) a step of assembling a connector casing; b) a step of attaching the connector casing to a vehicle chassis such that a second face faces the inside of the chassis; c) a step of coupling a connector for a rigid single conductor to a second coupling structure; and d) a step of screwing an electrical terminal to a rigid single-conductor terminal and clamping at least one part of the connector casing between the electrical terminal and the connector for the rigid single conductor. As described above, this is a method that is faster, more comfortable, and less expensive than the prior art assembling methods.

[0031] The objects, features, and advantages of the present invention as described above will be more thoroughly understood and recognized by considering the following more detailed description of embodiments of the present invention using the accompanying drawings.

Brief Description of the Drawings

[0032] [Figure 1] It is a diagram showing a connector casing of a charging input electrical connector for a vehicle and a connector for a rigid single conductor according to an embodiment of the present invention. [Figure 2] It is a diagram showing an electrical terminal according to an embodiment of the present invention. [Figure 3] It is a diagram showing a charging input electrical connector for a vehicle according to an embodiment of the present invention. [Figure 4]This figure schematically shows the steps of the assembly method according to an embodiment of the present invention. [Modes for carrying out the invention]

[0033] In the following, reference symbols for the same figure are used to indicate elements of the same properties.

[0034] The following describes an electrical connector according to a first embodiment of the present invention with reference to Figures 1 to 3. The electrical connector 1 described and shown in Figures 1 to 3 is a charging input connector for an electric vehicle. In this embodiment, the electrical connector 1 is a connector called a Combined Charging System (CCS) type, more specifically a "CCS Combo 2" or "FF" type connector as defined by the standard IEC 62196. Thus, the electrical connector 1 comprises a slow recharge terminal, specifically called "Type 2," and two electrical terminals for fast DC charging. In alternative embodiments of the present invention, the electrical connector may be of the "EE" (or "CCS Combo 1"), "AA," "BB," or "ChaoJi" type, or any other type that may conform to the provisions of the present invention described above and comprises at least one electrical terminal, in particular an electrical terminal configured for a current of at least 100A.

[0035] Figure 1 is a perspective view of the electrical connector 1 during assembly. The electrical connector 1 comprises a connector casing 100, a rigid single-conductor connector 200, and two electrical terminals 300. The electrical terminals 300 are not shown in Figure 1 and will be described with reference to Figures 2 and 3. The electrical connector 1 is configured to receive the corresponding connector of the charging station, namely the "FF" or CCS Combo 2 type charging gun, in a coupling direction A parallel to the Cartesian direction x.

[0036] The connector casing 100 has a first surface 101, which is hidden in Figure 1, and a second surface 103, which is visible in Figure 1 and is opposite to the first surface 101 in the coupling direction A. The surface 105 of the first surface 101 faces away from the coupling direction A, and the surface 107 of the second surface 103 faces the coupling direction A.

[0037] On the first surface 101, the connector casing 100 includes a mounting frame 109, the mounting frame 109 includes a plurality of mounting holes 109a, particularly four, for securing the connector casing 100 to the chassis of an electric vehicle. The connector casing 100 is configured to be positioned on the chassis such that the second surface 103, particularly surface 107, faces inward, i.e., towards the interior space of the vehicle. Correspondingly, the connector casing 100 is configured to be positioned on the chassis such that the first surface 101, particularly surface 105, faces outward, i.e., towards the surrounding environment in which the vehicle is positioned.

[0038] On the surface 107 of the second surface 103, an internal coupling zone 111 for the aforementioned slow-charging terminal and a second coupling structure 113 are formed. The second coupling structure 113 is configured to facilitate coupling between the connector casing 100 and the rigid single-conductor connector 200, thereby establishing an electrical connection with the battery and enabling "rapid" charging. In particular, the second coupling structure 113 includes a first partition 115 and a second partition 117 surrounding the first partition 115. The first partition 115 and the second partition 117 protrude from the surface 107 of the second surface 103 in the coupling direction A. The gap space 119 between the first partition 115 and the second partition 117 is configured to receive the front end 207 of the rigid single-conductor connector 200 on which the rigid single-conductor terminal 209 is located (see Figure 3).

[0039] Inside the surface defined by the first partition 115, two openings 121 are located. Each of the openings 121 provides access to its respective cavity 123. The cavities 123 extend through the connector casing from the first surface 101 to the second surface 103, along the coupling direction A. Each cavity 123 is configured to receive electrical terminals 300 in the coupling direction A, which will be more fully explained with reference to Figure 3. The connector casing 100 further includes a fixing input 125 for an actuator, e.g., a locking system with the corresponding connector, and an electronic interface structure 127 for signal transmission connections.

[0040] The rigid single-conductor connector 200 includes a rigid single-conductor connector casing 201 that covers the ends of a set of rigid single conductors. In this embodiment, the set of rigid single conductors includes two rigid single conductors 400a, 400b, which have a circular cross-section and are provided with an insulating jacket. In a modified form, the rigid single conductors may not be insulated and / or may have a rectangular cross-section.

[0041] The rigid single-conductor connector casing 201 is substantially L-shaped or has a 90° angle. Therefore, the connector casing includes an open rear end 203 that receives the rigid single-conductors 400a and 400b and has a cap 205. Complementarily, the rigid single-conductor connector casing 201 includes an open front end 207 where the respective terminals 209 of the rigid single-conductors 400a and 400b are located (see Figure 3).

[0042] Figure 2 shows an electrical terminal 300 for an electrical connector 1 of the first embodiment. The electrical terminal 300 is also, in itself, an electrical terminal according to a second embodiment of the present invention. The electrical terminal 300 is an electrical terminal for a fast-charging terminal of an "FF" or "Combined Combo 2" type connector and is configured for a current of at least 100A, i.e., the material selected to manufacture the electrical terminal 300 is configured to withstand the thermal stress, mechanical stress, and electrical stress caused by the flow of a current of at least 100A.

[0043] The electrical terminal 300 is a single metal component mainly having a cylindrical extension shape. In particular, the electrical terminal 300 comprises a first portion 301 and a second portion 303 in the coupling direction A. The first portion 301 and the second portion 303 are concentrically arranged and connected by a connection region 305. The first portion 301 has a first diameter D1, and the second portion 303 has a second diameter D2. The second diameter D2 is 20% to 200%, preferably 50% to 70%, larger than the first diameter D1.

[0044] The first portion 301 includes the first end 307 of the electrical terminal 300. The second portion 303 includes the second end 309 of the electrical terminal, opposite to the first end 307. For workability and electrical safety, the electrical terminal 300 includes an insulating tip 311 attached to the first portion 301 at the first end 307.

[0045] The electrical terminal 300 is provided with a nut 313 at the second end 309. The nut 313 is located in a cavity 315 formed coaxially with the second portion 303. The nut 313 includes a tapping screw 317, which allows the electrical terminal 300 to be screwed to a screw, bolt, or other device having male threads complementary to the tapping screw 317.

[0046] The first portion 301 includes a clamping element 319 in the connection region 305. In this embodiment, the clamping element 319 is a local deformation of the circular cross-section of the first portion 301 and can support the clamping torque. In this embodiment, the circular cross-section of the first portion 301 is deformed into an enlarged pentagonal cross-section P. The clamping element 319 functions to facilitate screwing and unscrewing of the electrical terminal 300 with a dedicated clamping tool. For example, a dedicated clamping tool can be passed over the first portion 301 in the coupling direction A, and the pentagonal shape of the clamping element 319 can be engaged with the complementary pentagonal shape of the tool.

[0047] The second portion 303 of the electrical terminal 301 includes a cylindrical projection 321 positioned in the connection region 305 and projecting from the second portion 303. The projection 321 projects perpendicular to the coupling direction A. Thus, the projection 321 forms a stepped shape 323. The projection 321 has a diameter D3 that is larger than the diameter D2 of the second portion 303, particularly a diameter D3 that is 2% to 10% larger. An O-ring 325 is positioned around the cylindrical outer surface 327 of the projection 321.

[0048] Figure 3 is a cross-sectional view of the electrical connector 1 in its final assembled state. The cross-sectional view in Figure 3 corresponds to a cross-sectional view along the cross-sectional line C shown in Figure 1, after the rigid single-conductor connector 200 has been coupled to the second coupling structure 113. In particular, the rigid single-conductor connector 200 is brought closer to the second surface 103 of the connector casing 100 in direction B, opposite to the coupling direction A, until its front end 207 is coupled to the second coupling structure 113.

[0049] The cross-sectional view in Figure 3 shows that the front end portion 207 includes a coupling seal 211, which can seal the coupling when the front end portion 207 is inserted into the gap space 119 between the partitions 115 and 117 of the second coupling structure 113. The rear seal 213 can seal the opening of the rear end portion 203, which is closed by the cap 205.

[0050] Figure 3 shows that the rigid single-conductor connector casing 201 covers the internal casing 215 which houses the rigid single-conductor terminals 209 of the respective rigid single-conductors 400a and 400b. The two terminals 209 of the rigid single-conductors 400a and 400b are identical, and only one of them will be described below.

[0051] Terminal 209 corresponds to a flat end 401b (and / or 401a) of a rigid single conductor 400b (or 400a), with a hole 217 formed in this end 401b, the hole 217 passing through the end 401b in coupling direction A. Terminal 209 includes a screw 219, which is inserted into the hole 217 in direction B opposite to coupling direction A and welded to the end 401b of the rigid single conductor 400b at the contact interface I1. The screw 219 includes a threaded portion 221 configured to connect to a tapping 317 of a nut 313. The screw 219 also includes an insulated socket 223 to improve the workability and electrical safety of the rigid single conductor connector 200.

[0052] The cross-sectional view in Figure 3 shows that the cavity 123 extends through the connector casing 100 along the coupling direction. In particular, the cavity 123 extends from a first coupling structure 129 located on the first surface 101 to a second coupling structure 113. The first coupling structure 129 includes, on the first surface, a first partition 131 and a second partition 133 surrounding the first partition 131, corresponding to the second coupling structure 113. The gap space 135 between the two partitions 131, 133 is configured to receive complementary elements of the corresponding movable connector. Furthermore, Figure 3 shows that the first surface 131 includes an outer coupling zone 137 for the slow recharge terminal, corresponding to the second surface 103.

[0053] In the final state shown in Figure 3, the electrical terminals 300 are positioned in their respective cavities 123. Specifically, the electrical terminals 300 are inserted in coupling direction A and then secured by their respective screws 219 on the rigid single-conductor terminals 209. In particular, the electrical terminals 300 are screwed in in the direction of rotation R, gradually approaching the electrical terminals 300 in coupling direction A and gradually approaching the rigid single-conductor connector 200 in direction B opposite to coupling direction A.

[0054] Movement of the electrical terminal 300 in the coupling direction A is prevented by a projection 139 that protrudes into the cavity 123. The projection 139 protrudes into the cavity 123 by a step shape 141 that is complementary to the step shape 323 of the protruding portion 321 of the electrical terminal 300. Thus, the step shape 141 of the projection 139 of the casing 100 and the step shape 323 of the protruding portion 321 of the electrical terminal 300 abut at the interface surface I2 during screw fastening of the electrical terminal 300 to the rigid single-conductor terminal 209, forming a connection by a shape fit that prevents the electrical terminal 300 from moving in the coupling direction A in the cavity 123.

[0055] Therefore, a continuous screwing motion in the direction of rotation R moves the rigid single-conductor connector 200 closer to direction B until the second end 309 of the electrical terminal 300 contacts the end 401a (or 401b) of the rigid single-conductor 400a (or 400b) I3. Thus, the screwing of the electrical terminal 300 and the rigid single-conductor terminal 209 clamps the connector casing 100 between the electrical terminal 300 and the rigid single-conductor connector 200. In particular, the screwing of the electrical terminal 300 and the rigid single-conductor terminal 209 clamps a portion P of the connector casing 100 between the interface I2 and the interface I4 between the rigid single-conductor connector 200 and the surface 107.

[0056] The O-ring 325 ensures sealing of the electrical terminal 300 and the connector casing 100, particularly between the outside and inside of the chassis. Due to the stepped shape 323, 141, the electrical terminal 300 and the connector casing 100 are in contact or very close to each other. Therefore, these areas are suitable for placing elements for monitoring or measuring the electrical terminal 300, such as a temperature sensor for the electrical terminal 300, within the connector casing 100.

[0057] The electrical terminal 300 is screwed from the first surface 101 of the outer casing 100 of the chassis through the connector casing 100 to the rigid single-conductor terminal 209 localized on the second surface of the inner casing 203 of the chassis. Thus, the electrical terminal 300 can be replaced quickly and effectively by unscrewing and screwing operations performed on the outside of the vehicle chassis. In particular, there is no need to open, replace, or handle the connector casing 100, and especially no need to access the rigid single-conductor terminal 209 inside the chassis or handle the rigid single conductors 400a, 400b.

[0058] The electrical connector 1 according to the present invention further has higher electrical performance than conventional solutions such as ultrasonic welding or riveting of electrical terminals to a rigid single conductor. In fact, welding and riveting generally require the interposition of a metal square or another intermediate conductive component between the electrical terminal and the rigid single conductor terminal. The interposition of the intermediate component creates a contact interface that increases the electrical resistance of the circuit, resulting in heat loss. At the same time, omitting the intermediate component makes assembly faster and cheaper.

[0059] The ability to separate the electrical terminals 300 from the rigid single conductors 400a and 400b and the connector casing 100 also enhances the flexibility of vehicle assembly. Generally, the particularly heavy connector casing 100 and the rigid single conductors 400a and 400b can be assembled and mounted independently to the vehicle chassis in a selected order.

[0060] Figure 4 schematically shows the steps of an assembly method according to a third embodiment of the present invention. The method in Figure 4 shows the steps of assembling the aforementioned vehicle charging input electrical connector 1, which comprises a charging casing 100, a rigid single-conductor connector 200, and electrical terminals 300.

[0061] As shown in Figure 4, the assembly method begins with step i) assembling the connector casing 100. Step i) assembles the connector casing 100 so that it has coupling structures 113, 129 for surfaces 103, 101 and a cavity 123 connecting surfaces 101, 103, as described with reference to Figures 1 to 3. This step separates the connector 100 from the rigid single-conductor connector 200 and the electrical terminals 300.

[0062] In the second step ii), the connector casing 100 is mounted to the vehicle chassis such that the second surface 103 faces inward and the surface 105 faces in the coupling direction. For example, the connector casing 100 can be mounted to the chassis by a mounting frame 109, fixing holes 109a, and fixing studs 127. This prepares the connector casing 100 for coupling to the rigid single-conductor connector 200.

[0063] Therefore, in the third step iii), the rigid single-conductor connector 200 is coupled to the connector casing 100 by bringing it closer in direction B, opposite to coupling direction A. The rigid single-conductor connector 200 is brought closer to the second coupling structure 113 until the coupling seal 211 of the rigid single-conductor connector 200 is securely accommodated in the gap space 119 of the second coupling structure 113.

[0064] The method of the third embodiment includes a fourth feature step iv), which involves screwing the electrical terminal 300 onto the rigid single-conductor terminal 209 to clamp at least one portion of the connector casing 100 between the electrical terminal 300 and the rigid single-conductor connector 200. Specifically, the electrical terminal is inserted into the cavity 123 of the first surface 101 in coupling direction A, and the insulating socket 223 is housed in a nut so that the respective threads 221, 317 engage. Screwing involves rotation around the axis of the electrical terminal 300, first bringing the electrical terminal 300 closer to the contact portion I2 in coupling direction A, and then bringing the rigid single-conductor connector 200 closer to the contact portion I1 in direction B. This method allows for particularly rapid and flexible assembly of the vehicle's charging input electrical connector, bringing about the advantages obtained particularly by the implementation of the connector 1, and especially by the ease of maintenance provided by the replaceable electrical terminal 300. [Explanation of symbols]

[0065] 1. Vehicle charging input electrical connector 100 Connector Casing 101 First side 103 Second side 105 Surface of the first face 107 Surface of the second face 109 Mounting frame 109a Fixing hole 111 Inner coupling zone of slow recharge terminal 113 Second bonding structure 115. First partition (second structure) 117. Second partition (second structure) 119 Gap space between partitions (second structure) 121 Cavity opening 123 Cavity 125 Actuator fixed input section 127 Electronic Interface Structure 129 First bonding structure 131 First partition (first structure) 133 Second partition (first structure) 135 Gap space between partitions (first structure) 137 Outer coupling zone of slow recharging terminal 139 Protrusions into the cavity 141 Step shape 200 Rigid Single Conductor Connector 201 Rigid Single Conductor Connector Casing 203 Rear end 205 Cap 207 Front end 209 Rigid single conductor terminal 211 Bonding seal 213 Rear seal 215 Internal casing 217 Terminal holes 219 Terminal screws 221 Threaded portion of a screw 300 electrical terminals 301 Part 1 303 Part 2 305 Connection Area 307 First end 309 Second end 311 Insulated tip 313 Nut 315 Cavity for housing nuts 317 Tapping nuts 319 Clamping element 321 Protruding part 323 Step shape 325 seals 327 Outer surface of the protruding portion 400a, 400b rigid single conductor A Bonding direction D1 Outer diameter of the first part D2 Outer diameter of the second part D3 Diameter of the protruding part P Pentagonal cross section I1 Weld interface between the end of a rigid single conductor and a thread I2 Contact area between electrical terminal and connector casing I3 Contact area between electrical terminal and rigid single-conductor connector I4 Interface between rigid single-conductor connector and connector casing P clamped portion R: Direction of rotation for screwing in x, y, z Cartesian directions

Claims

1. The vehicle's charging input electrical connector (1), The electrical connector (1) is configured to receive the corresponding movable connector of the charging station in the coupling direction (A), The aforementioned electrical connector (1) comprises a connector casing (100), a rigid single-conductor connector (200), and electrical terminals (300). The connector casing (100) has a first surface (101) and a second surface (103) opposite to the first surface (101), and the connector casing (100) is configured to be placed on the chassis of the vehicle such that the second surface (103) faces inward towards the chassis of the vehicle. The first surface (101) includes a first coupling structure (129) configured to couple the connector casing (100) to the corresponding movable connector, and the second surface (103) includes a second coupling structure (113) configured to couple the connector casing (100) to the rigid single-conductor connector (200), The connector casing (100) includes a cavity (123) extending in the coupling direction (A) from the first coupling structure (129) to the second coupling structure (113), and the electrical terminals (300) are arranged in the cavity (123). The rigid single-conductor connector (200) includes a rigid single-conductor terminal (209), The electrical terminal (300) is screwed to the rigid single-conductor terminal (209) and clamps at least one portion of the connector casing (100) between the electrical terminal (300) and the rigid single-conductor connector (200). The electrical terminal (300) includes a first portion (301) having a first end (307) of the electrical terminal (300) and a second portion (303) having a second end (309) of the electrical terminal (300), wherein the second end (309) is on the opposite side of the first end (307). The first portion (301) of the electrical terminal (300) is configured to contact the corresponding electrical terminal of the corresponding movable connector, The first portion (301) includes a clamping element (319) configured to be coupled to a clamping tool for screwing and unscrewing the electrical terminal (300) and the rigid single-conductor terminal (209), The electrical terminal (300) includes a protruding portion (321) having a third diameter (D3) larger than the second diameter (D2) of the second portion (303), the protruding portion (321) is provided on the side of the second end (309) that is closer to the clamping element (319), and the protruding portion (321) has a first surface facing the coupling direction (A). The electrical terminal (300) is screwed to the rigid single-conductor terminal (209), and the first surface of the protruding portion (321) and the second surface of at least one portion of the connector casing (100) facing the opposite direction (B) to the coupling direction (A) are in contact, and the second end (309) and the rigid single conductors (400a, 400b) of the rigid single-conductor connector (200) are in contact, thereby clamping at least one portion of the connector casing (100) between the electrical terminal (300) and the rigid single-conductor connector (200), in the electrical connector (1).

2. The electrical connector (1) according to claim 1, wherein the rigid single-conductor terminal (209) includes a screw (219), the electrical terminal (300) includes a nut (313) configured to receive the screw (219), and the electrical terminal (300) is screwed to the rigid single-conductor terminal (209) by tightening the nut (313) onto the screw (219).

3. The electrical connector (1) according to claim 2, wherein the nut (313) is located on the second end (309).

4. The electrical connector (1) according to claim 3, wherein the minimum outer diameter (D2), which is the second diameter (D2) of the second portion (303), is greater than the maximum outer diameter (D1) of the first portion (301).

5. The electrical connector (1) according to claim 4, wherein the minimum outer diameter (D2) of the second portion (303) is 20% to 200% larger than the maximum outer diameter (D1) of the first portion (301).

6. The electrical connector (1) according to claim 4, wherein the second portion (303) includes the protruding portion (321), and the protruding portion (321) has a third diameter (D3) that is larger than the minimum outer diameter (D2) of the second portion (303).

7. The electrical connector (1) according to claim 6, wherein the protruding portion (321) has a third diameter (D3) that is 2% to 10% larger than the minimum outer diameter (D2) of the second portion (303).

8. The electrical connector (1) according to claim 6, wherein the protruding portion (321) protrudes in a stepped shape (323) from the second portion (303) at least on the side facing the second end (309).

9. The electrical connector (1) according to claim 8, wherein the protruding portion (321) protrudes perpendicular to the coupling direction (A).

10. The electrical connector (1) according to claim 8, wherein at least one portion of the clamped connector casing (100) includes a shape (141) complementary to the stepped shape (323), the complementary shape (141) protruding into the cavity (123) to establish a shape-match connection with the electrical terminal (300).

11. The electrical connector (1) according to claim 10, wherein the connection by shape fitting prevents the movement of the electrical terminal (300) in the coupling direction (A).

12. The electrical connector (1) according to claim 6, wherein the protruding portion (321) is located in the region (305) connecting the second portion (303) and the first portion (301).

13. The electrical connector (1) according to claim 1, wherein the electrical terminal (300) is configured for a current of at least 100A.

14. An electrical terminal for a vehicle charging input electrical connector (1) according to any one of claims 1 to 13, configured for a current of at least 100 A, wherein the electrical terminal (300) comprises a nut (313), the first portion (301), and the second portion (303), The first portion (301) has the first end (307) of the electrical terminal (300), and the second portion (303) has the second end (309) of the electrical terminal (300), the second end (309) being on the opposite side of the first end (307). The first portion (301) of the electrical terminal (300) is configured to contact the corresponding electrical terminal of the corresponding movable connector, The nut (313) is an electrical terminal located at the second end (209).

15. A method for assembling a vehicle charging input electrical connector (1) according to any one of claims 1 to 13, a) The step of assembling the connector casing (100), b) The step of attaching the connector casing (100) to the chassis of the vehicle such that the second surface (103) faces inward towards the chassis, c) The step of connecting the rigid single-conductor connector (200) to the second coupling structure (113), d) The step of screwing the electrical terminal (300) to the rigid single-conductor terminal (209) and clamping at least one portion of the connector casing (100) between the electrical terminal (300) and the rigid single-conductor connector (200). Methods that include...

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