Conductive connection structure assembly and functional module

By combining insulating supports and conductive busbars, and using fastener connections instead of welding, the problems of low efficiency and high cost caused by conductive busbar welding are solved, achieving efficient and economical circuit board design and reliable connections.

CN223527426UActive Publication Date: 2025-11-07ZHANGZHOU KEHUA ELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202422397629.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-11-07
Estimated Expiration
2034-09-30

AI Technical Summary

Technical Problem

The existing welding connection method of conductive busbars results in low operation efficiency, high production costs, and the distribution can easily affect the arrangement of components on the circuit board.

Method used

The system employs a combination of an insulating bracket and a conductive busbar, with conductive connections achieved through fasteners, avoiding welding. The insulating bracket provides insulation protection and reduces the safety distance between components and the conductive busbar.

Benefits of technology

It improves assembly efficiency, saves production costs, optimizes circuit board design, enhances structural compactness and reliability, and improves circuit board appearance and connection reliability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a conductive connection structure assembly and a function module. The conductive connection structure assembly comprises an insulation support and a first conductive bar. In the insulating bracket, a wiring space is formed between two adjacent partition plates; in the first conducting bar, the plate surface of a first rear connecting plate is vertical to the vertical direction, and the middle part is attached to the upper surface of the positioning table; the first front connecting plate is connected to the front edge of the first rear connecting plate and extends downwards, the front edge of the partition plate forwards protrudes out of the first front connecting plate, and the lower edge of the partition plate downwards protrudes out of the first front connecting plate; a first circuit board lap joint hole is formed in the rear portion of the first rear connecting plate, a first terminal wiring hole is formed in the front portion of the first rear connecting plate, a second terminal wiring hole is formed in the first front connecting plate, and the first circuit board lap joint hole is fixed to a binding post on a circuit board in a lap joint mode through a fastener. According to the utility model, the problems of long circuit board assembly period and influence on operation efficiency caused by welding fixation are avoided, the design of the circuit board can be optimized, and the structural compactness and the use reliability of the functional module are improved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the technical field of electric connection device, concretely relates to a conductive connection structure assembly and functional module. BACKGROUND

[0002] The electric connection component is an important component of the power distribution system, wherein the component for realizing high-voltage electric connection is mainly a conductive row, the conductive row can be connected with the component such as the battery cell module, the high-voltage device and the connector, constitutes the series and parallel connection of the high-voltage system, and realizes current transmission.

[0003] The existing conductive row is generally directly welded at one end on the circuit board, and the other end is connected with another circuit board in a welded mode or is connected with the power connection end of other units through a threaded fastener.This connection mode takes a long time when assembling, needs a long wire, and has high production cost; meanwhile, considering the safety problem, the conductive row needs to be arranged relatively dispersedly with the peripheral components, which greatly influences the distribution of various components on the circuit board. SUMMARY

[0004] The utility model embodiment provides a conductive connection structure assembly and functional module, and aims at solving the problems of low operation efficiency, high production cost and adverse influence of the distribution of the conductive row on the distribution of components on the circuit board in the prior art.

[0005] To achieve the above object, the utility model adopts the technical scheme of:

[0006] Firstly, the utility model embodiment provides a conductive connection structure assembly, which comprises:

[0007] The insulating support comprises a positioning table and a plurality of partition plates connected to the positioning table in the left-right direction, and a wiring space is formed between two adjacent partition plates.

[0008] The first conductive row has a first rear connecting plate, the plate surface of the first rear connecting plate is perpendicular to the up-down direction, and the middle part is connected with the upper surface of the positioning table.

[0009] The rear part of the first rear connecting plate forms a first circuit board lap joint hole, and the front part forms a first terminal wiring hole, and the first circuit board lap joint hole is lap jointed and fixed with the wiring column on the circuit board through a fastener.

[0010] In combination with the first aspect, in a possible implementation manner, the first conductive row further has a first front connecting plate, and a second terminal connection hole is formed in the first front connecting plate; the first front connecting plate is connected to the front edge of the first rear connecting plate and extends downward, and the front edge of the partition plate protrudes forward from the first front connecting plate, and the lower edge of the partition plate protrudes downward from the first front connecting plate.

[0011] In combination with the first aspect, in a possible implementation manner, the first rear connecting plate is detachably connected to the positioning table, the partition plate includes a main plate body connected to the positioning table, and a front detachable plate body arranged on the front side of the main plate body, and the front detachable plate body is detachably connected to the main plate body.

[0012] The conductive connection structure assembly further includes a second conductive row, the second conductive row has a plurality of second rear connecting plates and a second front connecting plate, and the front edges of the plurality of second rear connecting plates are respectively connected to the second front connecting plate in the left-right direction; the plate surface of the second rear connecting plate is perpendicular to the up-down direction, and each second rear connecting plate is arranged in a different connection space and is detachably connected to the upper surface of the positioning table in the corresponding connection space.

[0013] The rear part of the second rear connecting plate forms a second circuit board lapping hole, and a third terminal connection hole is formed in the second front connecting plate.

[0014] In combination with the first aspect, in a possible implementation manner, a first foolproof support is arranged in the connection space, the first foolproof support is located above the first rear connecting plate, the first terminal connection hole is located in front of the first foolproof support, and the first foolproof support can abut against the rear side of the wire connecting section in the terminal to limit the installation posture of the terminal.

[0015] In combination with the first aspect, in a possible implementation manner, a second foolproof support is arranged in the connection space, the first foolproof support is located in front of the first front connecting plate, the second terminal connection hole is located above the second foolproof support, and the second foolproof support can abut against the lower side of the wire connecting section in the terminal to limit the installation posture of the terminal.

[0016] In combination with the first aspect, in a possible implementation manner, a stepped boss is arranged on the lower side of the front part of the partition plate, and the lower edge of the stepped boss protrudes downward from the first front connecting plate.

[0017] Alternatively, a closure is arranged on the lower part of each two adjacent partition plates, the rear edge of the closure extends to the positioning table, and the closure is located below the first front connecting plate.

[0018] In a possible implementation manner of the first aspect, the first circuit board lapping hole is located at the rear of the wiring space, and the electrically-conductive connection structure assembly further comprises a third electrically-conductive row, a front end of the third electrically-conductive row is lapped and fixed to the first circuit board lapping hole, and a rear end of the third electrically-conductive row is lapped and fixed to the circuit board.

[0019] In a possible implementation manner of the first aspect, the partition plate comprises an upper plate member and a lower plate member, the positioning table is connected to the lower plate member, a clamping support is arranged between two adjacent upper plate members, and the upper plate member is detachably connected to the lower plate member, the clamping support and the positioning table cooperate to clampingly fix the first rear connecting plate.

[0020] In a possible implementation manner of the first aspect, the positioning table comprises a plurality of first positioning segments, the partition plate comprises a first side plate member and a second side plate member, one end of the first positioning segment is connected to the first side plate, and the other end of the first positioning segment is connected to the second side plate, and the first side plate member and the second side plate member are spliced and adapted along the left-right direction.

[0021] In some embodiments, the insulating support further comprises a splicing support arranged between two adjacent partition plates, the splicing support comprises a first support body and a second support body, the first support body and the second support body are respectively connected to the partition plates on the corresponding sides, and the first support body and the second support body are spliced along the left-right direction; the positioning table comprises a plurality of second positioning segments, a middle part of each second positioning segment is connected to a partition plate, and end parts of two adjacent second positioning segments are spliced.

[0022] Compared with the prior art, the scheme shown in the embodiments of the present application, before being connected to the circuit board, each first electrically-conductive row is placed into the corresponding wiring space, the first rear connecting plate is connected and fixed to the positioning table, then the first electrically-conductive row and the insulating support form an integral structure, the integral structure is placed on the circuit board or at a designated position around the circuit board, the first electrically-conductive row is lapped and fixed to the wiring post on the circuit board through the fastener passing through the first circuit board lapping hole, and the wiring terminal is connected and fixed to the first terminal wiring hole through the fastener, and finally the electrically-conductive connection assembly is realized. Based on this structure design, the first electrically-conductive row is lapped and fixed to the wiring post on the circuit board through the fastener, avoiding the problem of long assembly period and affecting work efficiency caused by welding fixation, and at the same time, it is not necessary to consider reserving a welding operation section on the electrically-conductive row, and the length of the electrically-conductive row does not need to be set too long, so that the material consumption of the electrically-conductive row can be saved, and the production cost can be saved; in addition, the insulating support forms an insulating protection on the side of the first electrically-conductive row, directly forming an insulating isolation between the first electrically-conductive row and the surrounding components, and the safety distance between the surrounding components and the first electrically-conductive row can be set smaller, so that the area of the circuit board can be directly reduced, or more components can be arranged on the circuit board, playing a role in optimizing the design of the circuit board.

[0023] Secondly, this utility model embodiment also provides a functional module, including a circuit board and the above-mentioned conductive connection structure assembly. A terminal block is fixed on the circuit board, and the rear part of the first rear connecting plate is connected and fixed to the terminal block by a fastener that passes through the overlapping hole of the first circuit board.

[0024] Compared with the prior art, the solution shown in this application avoids the problem of long assembly cycles and reduced work efficiency caused by welding and fixing of the circuit board by adopting the above-mentioned functional modules. The overall assembly cycle of the functional modules can be shortened, improving the overall assembly efficiency. Moreover, by saving the amount of conductive busbar material, the overall production cost of the functional modules is reduced. In addition, based on the insulating protection function of the insulating bracket, the safety distance between the components arranged around the first conductive busbar on the circuit board and the first conductive busbar is smaller, which can directly reduce the area of ​​the circuit board or set more components on the circuit board, thereby optimizing the circuit board design and improving the structural compactness and reliability of the functional module itself. Attached Figure Description

[0025] Figure 1 A partial schematic diagram of the functional modules provided in Embodiment 1 of this utility model;

[0026] Figure 2 This is a schematic diagram of the structure of the first type of wiring terminal used in Embodiment 1 of this utility model;

[0027] Figure 3 This is a schematic diagram of the structure of the second type of wiring terminal used in Embodiment 1 of this utility model;

[0028] Figure 4 This is a diagram showing the adaptation of the conductive connection structure assembly provided in Embodiment 1 of this utility model to the circuit board and terminals;

[0029] Figure 5 This is a diagram showing the adaptation of the insulating support, the first conductive busbar, and the second conductive busbar used in Embodiment 1 of this utility model.

[0030] Figure 6 The explosive decomposition of the insulating support, the first conductive busbar, and the second conductive busbar used in Embodiment 1 of this utility model. Figure 1 ;

[0031] Figure 7 The explosive decomposition of the insulating support, the first conductive busbar, and the second conductive busbar used in Embodiment 1 of this utility model. Figure 2 ;

[0032] Figure 8 This is a perspective view of the insulating bracket used in Embodiment 1 of this utility model;

[0033] Figure 9The assembly diagram of the insulating support and the label for the embodiment one of the utility model, the straight line arrow in the drawing is the insertion direction of the label;

[0034] Figure 10 The adaptation diagram of the conductive connection structure assembly, the wiring terminal and the mounting support for the embodiment two of the utility model;

[0035] Figure 11 The adaptation diagram of the conductive connection structure assembly, the wiring terminal and the mounting support for the embodiment two of the utility model;

[0036] Figure 12 The exploded view of the insulating support for the embodiment two of the utility model;

[0037] Figure 13 The perspective view of the conductive connection structure assembly for the embodiment three of the utility model;

[0038] Figure 14 The exploded view of the insulating support for the embodiment three of the utility model;

[0039] Figure 15 The perspective view of the conductive connection structure assembly for the embodiment four of the utility model;

[0040] Figure 16 The perspective view of the insulating support for the embodiment four of the utility model;

[0041] Figure 17 The exploded view of one unit in the insulating support for the embodiment four of the utility model;

[0042] Mark explanation:

[0043] 100, electrically conductive connection structure assembly; 1, insulating support; 101, positioning table; 1011, first positioning section; 1013, table hole; 1014, limiting table; 1015, avoiding hole; 102, partition; 1021, main plate body; 1022, front detachable plate body; 1023, rear detachable plate body; 1024, easy-to-break groove; 1025, stepped boss; 1026, upper plate piece; 1027, lower plate piece; 1028, first side plate piece; 1029, second side plate piece; 103, closing piece; 104, splicing support; 1041, first support body; 1042, second support body; 2, first electrically conductive row; 201, first rear connecting plate; 2011, plate piece via hole; 202, first front connecting plate; 203, first circuit board lapping hole; 204, first terminal wiring hole; 205, second terminal wiring hole; 3, wiring space; 4, second electrically conductive row; 401, second rear connecting plate; 402, second front connecting plate; 403, second circuit board lapping hole; 404, third terminal wiring hole; 5, label slot; 6, first fool-proof support; 7, second fool-proof support; 8, third electrically conductive row; 9, clamping support; 10, positioning column; 11, auxiliary connecting row; 1101, auxiliary connecting plate; 200, circuit board; 300, wiring column; 400, module shell; 500, wiring terminal; 510, wiring connecting plate; 511, terminal via hole; 520, wire connecting section; 600, label; 700, mounting support; 710, mounting lug; 800, wire. DETAILED DESCRIPTION

[0044] In order to make the technical problems, technical solutions and beneficial effects of the utility model to be solved clearer and more apparent, the utility model will be further described in detail below in combination with the drawings and examples. It should be understood that the specific examples described herein are only used to explain the utility model and are not used to limit the utility model.

[0045] In the claims, specification and above drawings of the utility model, unless otherwise explicitly limited, the terms such as “first”, “second” or “third” are used only to distinguish different objects, and are not used to describe a specific order.

[0046] In the claims, the specification, and the drawings of the present application, terms such as "center", "transverse", "longitudinal", "horizontal", "vertical", "top", "bottom", "inner", "outer", "upper", "lower", "front", "rear", "left", "right", "clockwise", "counterclockwise", "high", "low", etc. indicate directions or positional relationships based on the directions and positions shown in the drawings, and are only used for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation or be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the specific protection scope of the present application.

[0047] In the claims, the specification, and the drawings of the present application, unless otherwise explicitly limited, the term "fixedly connected" or "fixedly connected" should be broadly understood, that is, any connection mode without displacement relationship and relative rotation relationship between the two, that is, it includes non-detachable fixed connection, detachable fixed connection, integration and fixed connection through other devices or elements.

[0048] In the claims, the specification, and the drawings of the present application, the terms "include", "have" and their variants are intended to mean "include but not limited to".

[0049] Please refer to Figures 1 to 17 , the conductive connection structure assembly 100 provided by the utility model will be described. The conductive connection structure assembly 100 includes an insulating support 1 and a first conductive row 2; the insulating support 1 includes a positioning table 101 and a plurality of partition plates 102 connected to the positioning table 101 in the left-right direction, a wiring space 3 is formed between adjacent two partition plates 102, and the upper side and the front side of the wiring space 3 are respectively left empty to form wiring openings; the first conductive row 2 has a first rear connecting plate 201 and a first front connecting plate 202, the plate surface of the first rear connecting plate 201 is perpendicular to the up-down direction, and the middle part is connected to the upper surface of the positioning table 101; the first front connecting plate 202 is connected to the front edge of the first rear connecting plate 201 and extends downward, the front edge of the partition plate 102 protrudes forward from the first front connecting plate 202, and the lower edge of the partition plate 102 protrudes downward from the first front connecting plate 202; the rear part of the first rear connecting plate 201 forms a first circuit board lap joint hole 203, the front part forms a first terminal wiring hole 204, the first front connecting plate 202 forms a second terminal wiring hole 205, and the first circuit board lap joint hole 203 is lap jointed and fixed with the wiring column 300 on the circuit board 200 through a fastener.

[0050] In this embodiment, the wiring terminal 500 includes a wiring connecting plate 510 and a wire 800 connecting segment 520, the wiring connecting plate 510 is provided with a terminal via hole 511, the terminal via hole 511 can be connected with the first terminal wiring hole 204 or the second terminal wiring hole 205 through a fastener. Among them, the wire 800 connecting segment 520 is mostly cylindrical, so as to be fixed with the end of the wire 800 through the cladding fastening mode, based on this, the wiring terminal 500 is divided into two categories: the first category, the plate surface of the wiring connecting plate 510 is parallel to the central axis of the wire 800 connecting segment 520 (as shown in Figure 2 ), the wiring terminal 500 of this category is vertically connected with the first conductive row 2, that is, the wiring connecting plate 510 is attached to the upper plate surface of the first rear connecting plate 201, and the first terminal wiring hole 204 is connected with the terminal via hole 511 correspondingly; the second category, the plate surface of the wiring connecting plate 510 is arranged at an angle (for example, an angle of 80°, 85°, 90°) with the central axis of the wire 800 connecting segment 520, as shown in Figure 3 , the wiring terminal 500 of this category is front-back connected with the first conductive row 2, that is, the wiring connecting plate 510 is attached to the front plate surface of the first front connecting plate 202, and the second terminal wiring hole 205 is connected with the terminal via hole 511 correspondingly. In this way, the connection mode of the wiring terminal 500 and the first conductive row 2 can better adapt to the extension direction of the wire 800, avoiding the conductive bending. It should be noted that, in order to better realize wiring, the angle between the first front connecting plate 202 and the first rear connecting plate 201 is the same as the angle between the wiring connecting plate 510 and the central axis of the wire 800 connecting segment 520, and the embodiment in which both angles are 90° is exemplarily shown in the figure.

[0051] In this embodiment, the first front connecting plate 202 is located in front of the positioning table 101, and there is a certain spacing between the first front connecting plate 202 and the positioning table 101, so as to avoid the fastener between the wiring terminal 500 and the first front connecting plate 202 (as shown in the leftmost wiring space 3 in Figure 8 ); Specifically, in order to realize the front-back limiting between the positioning table 101 and the first front connecting plate 202, a limiting table 1014 is further protruded forward at the lower front side of the positioning table 101, the limiting table 1014 can abut against and limit the rear plate surface of the first front connecting plate 202, thereby limiting the displacement of the first conductive row 2 in the front-back direction. Alternatively, the first front connecting plate 202 is located in front of the positioning table 101, and the first front connecting plate 202 and the positioning table 101 are attached to each other, in order to realize the connection between the first front connecting plate 202 and the wiring terminal 500, it is only necessary to set an avoiding hole 1015 corresponding to the second terminal wiring hole 205 at the front side of the positioning table 101 (as shown in Figure 15 and Figure 16 ).

[0052] In this embodiment, in order to effectively position in the left-right direction, the difference between the left-right width of the upper area of the wiring space 3 and the left-right width of the first rear connecting plate 201 is 0.5mm-1mm, and the difference between the left-right width of the front area of the wiring space 3 and the left-right width of the first front connecting plate 202 is 0.5mm-1mm, so as to meet the needs of the first conductive row 2 and realize left-right positioning. In specific implementation, the left-right width of the first rear connecting plate 201 and the left-right width of the first front connecting plate 202 can be the same (as shown in Figures 1 to 17

[0053] In this embodiment, the implementation mode of the bonding connection of the positioning table 101 and the first rear connecting plate 201 includes but is not limited to bonding and adhesion, and then connecting through threaded fasteners. Figure 1 Figure 5 Figure 6 The implementation mode of connecting through threaded fasteners is exemplified in the above and the specific implementation is that the middle part of the first rear connecting plate 201 is provided with a plate through hole 2011, and the upper surface of the positioning table 101 is correspondingly provided with a table surface hole 1013, and the plate through hole 2011 and the table surface hole 1013 are connected through fasteners.

[0054] In this embodiment, the material of the insulating support 1 can be glass fiber reinforced plastic, high-density polyethylene, high-strength epoxy resin composite material, etc., which is not limited here, and the positioning table 101 and the partition plate 102 can be formed by integral injection molding. In addition, the implementation mode of the first conductive row 2 includes but is not limited to copper row.

[0055] The conductive connection structure assembly 100 provided in this embodiment, compared with the prior art, before being connected with the circuit board 200, each first conductive row 2 is placed into the corresponding wiring space 3, the first rear connecting plate 201 is connected and fixed with the positioning table 101, then the first conductive row 2 forms an integral structure with the insulating support 1, the integral structure is placed on the circuit board 200 or at the specified position around the circuit board 200, the first conductive row 2 is lap-jointed and fixed with the wiring post 300 on the circuit board 200 through the fastener passing through the first circuit board lap joint hole 203, the wiring terminal 500 is connected and fixed with the first terminal wiring hole 204 through the fastener (the opening on the upper side of the wiring terminal 500 forms an operation opening), or the second terminal wiring hole 205 is connected and fixed (the opening on the front side of the wiring terminal 500 forms an operation opening), and finally the conductive connection assembly is realized.

[0056] ​​​Based on the structure design, the first conductive row 2 is fixed by the fastener and the terminal post 300 on the circuit board 200, avoiding the problem of long assembly period and affecting the work efficiency caused by welding fixation, at the same time, it is also not necessary to consider reserving the welding operation section on the conductive row, and the length of the conductive row does not need to be set too long, which can save the material amount of the conductive row and save the production cost; in addition, the insulating support 1 forms insulation protection on the side of the first conductive row 2, directly forms insulation isolation between the first conductive row 2 and the surrounding components, and the safety distance of the surrounding components and the first conductive row 2 can be set smaller, which can directly reduce the area of the circuit board 200, or set more components on the circuit board 200, which plays a role in optimizing the design of the circuit board 200.

[0057] It also needs to be explained that the conductive connection structure assembly 100 of the embodiment can also produce the following beneficial effects:

[0058] 1) The traditional welding connection method occupies a larger area on the circuit board 200, which also affects the distribution of the surrounding electrical components of the conductive row, and the solder surrounding the conductive row also directly affects the appearance of the circuit board 200, which is easy to have a negative impact on product quality. The embodiment avoids the traditional form of directly welding the conductive row on the circuit board 200, and the terminal post 300 is pre-set on the circuit board 200, the terminal post 300 itself occupies a small space on the circuit board 200, has a small impact on the surrounding component arrangement, and the connection of the terminal post 300 and the circuit board 200 has a small impact on the appearance of the circuit board 200, and the overall appearance of the circuit board 200 is more beautiful.

[0059] 2) Because the welding area of the conductive row and the circuit board 200 is large, the connection strength of the welding is not easy to control, which makes it difficult to control the connection reliability of the circuit board 200 and the conductive row. If the circuit board 200 vibrates, it may cause the connection failure of the conductive row and the circuit board 200, or when the threaded fastener is connected to other units at the other end of the conductive row, the force generated during the screwing process of the threaded fastener may also cause the welding area of the conductive row and the circuit board 200 to crack. The embodiment avoids the traditional welding method, and the connection effect of the terminal post 300 and the circuit board 200 is more controllable, even if the first conductive row 2 is connected through the fastener, the terminal post 300 is not easy to appear the problem of connection failure with the circuit board 200, and can well resist the adverse effects of vibration and other working conditions.

[0060] 3) Assembly errors in welding assembly are difficult to control. Large assembly errors can adversely affect the actual assembly of each unit within the functional module. After assembly, stress can easily be generated in weak areas between the units, leading to connection failure. The welding between the conductive busbar and the circuit board 200 is a particularly serious area where failures occur. This embodiment avoids large-area welding assembly, minimizing the assembly error between the conductive busbar and the circuit board 200, and mitigating the impact of assembly stress.

[0061] 4) In the traditional method of soldering conductive busbars to the circuit board 200, when multiple conductive busbars are used, the spacing between adjacent conductive busbars needs to be relatively large to meet safety requirements, which directly affects the compactness of the overall structure of the circuit board 200. However, in this embodiment, the insulating bracket 1 can form multiple wiring spaces 3, which can accommodate the simultaneous assembly of multiple conductive busbars. The partition 102 provides insulation between adjacent conductive busbars, and the spacing between adjacent first conductive busbars 2 can be set smaller, which can meet the requirement of setting the first conductive busbars 2 on the same side. The wiring structure is more compact, and the circuit design on the circuit board 200 can be more regular and simple, which is conducive to further optimizing the overall design of the circuit board 200.

[0062] In some embodiments, see Figures 1 to 17 The first rear connecting plate 201 is detachably connected to the positioning platform 101. The partition 102 includes a main body 1021 connected to the positioning platform 101 and a front detachable plate 1022 located on the front side of the main body 1021. The front detachable plate 1022 is detachably connected to the main body 1021. The conductive connection structure assembly 100 also includes a second conductive busbar 4. The second conductive busbar 4 has multiple second rear connecting plates 401 and a second front connecting plate 402. The front edges of the multiple second rear connecting plates 401 are respectively connected to the second front connecting plate 402 at intervals along the left and right directions. The plate surface of the second rear connecting plate 401 is perpendicular to the up and down direction. Each second rear connecting plate 401 is placed in a different wiring space 3 and is detachably attached to the upper surface of the positioning platform 101 in the corresponding wiring space 3. A second circuit board overlap hole 403 is formed at the rear of the second rear connecting plate 401, and a third terminal wiring hole 404 is formed on the second front connecting plate 402. The detachable connection between the first rear connecting plate 201 and the positioning table 101 can be achieved in ways including but not limited to threaded fastener connection, snap-fit, and plug-in connection, and is not limited to one method here.

[0063] The arrangement of the second rear connecting plate 401 and the second front connecting plate 402 is illustrated in the following example: 1) Both the second front connecting plate 402 and the second rear connecting plate 401 are perpendicular to the vertical direction, and the second front connecting plate 402 and the second rear connecting plate 401 can be flush with each other (e.g., Figures 5 to 7The second front connecting plate 402 is arranged in a staggered manner, and only one third terminal connecting hole 404 is arranged on the second front connecting plate 402, which is adapted to be connected to the wiring terminal 500 in the front-rear direction.

[0064] More specifically, the left and right widths of the second front connecting plate 402 gradually increase in the direction close to the second rear connecting plate 401, and the side edges of the two second rear connecting plates 401 at both ends are flush with the corresponding side edges of the second front connecting plate 402.

[0065] More specifically, in order to improve the universality of the parts, the structure of the second conductive row 4 can be formed on the basis of the first conductive row 2, for example, an auxiliary connecting row 11 is arranged, the front side of the auxiliary connecting row 11 forms a second front connecting plate 402, and the rear side forms a plurality of auxiliary connecting plates 1101 extending downward, each auxiliary connecting plate 1101 is respectively connected (specifically connected through the second terminal connecting hole 205) with a different first front connecting plate 202. At this time, the first rear connecting plate 201 is the second rear connecting plate 401.

[0066] The detachable connection between the main plate body 1021 and the front detachable plate body 1022 is as follows: 1) The main plate body 1021 and the front detachable plate body 1022 are integrally connected through a plastic transition belt. Since the hardness of the plastic transition belt is relatively low, the front detachable plate body 1022 can be cut off by tooling; wherein the materials of the main plate body 1021, the front detachable plate body 1022 and the plastic transition belt can be the same or different, and the materials of the main plate body 1021 and the front detachable plate body 1022 can be the same or different. 2) A weakening belt is formed between the main plate body 1021 and the front detachable plate body 1022. Since the strength of the weakening belt is low, the front detachable plate body 1022 can be separated from the main plate body 1021 by directly applying force to break it. The specific implementation of the weakening zone includes but is not limited to an easy-to-break groove 1024 (as shown) extending in the up-down direction, a plurality of through holes distributed in the up-down direction, etc. 3) The main plate body 1021 and the front detachable plate body 1022 are bonded by a glue layer. The glue layer can be damaged by directly pulling the front detachable plate body 1022, and then the front detachable plate body 1022 is detached. 4) One of the main plate body 1021 and the front detachable plate body 1022 is provided with a buckle, and the other is provided with a corresponding buckle. The buckle and the buckle are respectively located on the butt joint side of the main plate body 1021 and the front detachable plate body 1022 (as shown), and the front and rear buckling connection is used to realize the assembly and disassembly. Figures 1 to 9 Figures 10 to 14 ​5) One of the main plate body 1021 and the front detachable plate body 1022 is provided with a front-rear extending plug-in column, and the other of the main plate body 1021 and the front detachable plate body 1022 is provided with a plug-in hole in correspondence, and the two are detachably connected through front-rear plug-in, wherein the plug-in column and the plug-in hole are respectively located at the butt joint side of the main plate body 1021 and the front detachable plate body 1022.

[0067] On the basis of the above-mentioned embodiments, as shown in Figure 13 and Figure 14 The partition plate 102 further comprises a rear detachable plate body 1023, the front edge of the rear detachable plate body 1023 is detachably connected with the rear edge of the main plate body 1021, and in the mounted state, the rear edge of the rear detachable plate body 1023 protrudes backward from the first rear connecting plate 201 or the second rear connecting plate 401; after the rear detachable plate body 1023 is detached from the main plate body 1021, the first circuit board lap joint hole 203 or the second circuit board lap joint hole 403 protrudes backward from the rear edge on the main plate body 1021. The connection mode of the rear detachable plate body 1023 and the main plate body 1021 can refer to the connection mode of the front detachable plate body 1022 and the main plate body 1021, which will not be described here.

[0068] In some embodiments, referring to Figure 1 Figures 7 to 9 The lower part of the partition plate 102 is provided with a left-right through label insertion slot 5, the front side of the label insertion slot 5 is a visible area, and the label 600 is slidably inserted into the label insertion slot 5, and the information on the label 600 is displayed through the visible area, so as to facilitate identification of the wiring information of the first conductive row 2. More specifically, the label insertion slot 5 penetrates the bottom of each partition plate 102 along the left-right direction, and the partition plate 102 can segment the information on the label 600, so that each wiring space 3 corresponds to a segment of the label 600 information, facilitating the workers to check from left to right. The implementation mode of the visible area of the label insertion slot 5 is that the front side of the label insertion slot 5 is left empty, or the front side of the label insertion slot 5 is provided with a transparent window, and the material of the transparent window can be acrylic, glass, etc.

[0069] In order to avoid damage caused by bending during the lead-out of the lead wire 800, the lead-out direction of the lead wire 800 is forward, so as to avoid the problem of bending of the lead wire 800. In the first embodiment, referring to Figure 10The first foolproof support 6 is arranged in the wiring space 3, is located above the first rear connecting plate 201, and the first terminal wiring hole 204 is located in front of the first foolproof support 6. The first foolproof support 6 can abut against the rear side of the lead wire 800 connecting section 520 of the wiring terminal 500, so as to limit the installation posture of the wiring terminal 500. The embodiment is mainly used for the installation of the first type of wiring terminal 500. The wiring terminal 500 is connected with the first terminal wiring hole 204, the lead wire 800 can be led out forward without being bent, and the second type of wiring terminal 500 is avoided from being connected with the first terminal wiring hole 204 through the first foolproof support 6.

[0070] In order to avoid the problem of bending of the lead wire 800, in a second embodiment, referring to Figure 10 The second foolproof support 7 is arranged in the wiring space 3, the first foolproof support 6 is located in front of the first front connecting plate 202, and the second terminal wiring hole 205 is located above the second foolproof support 7. The second foolproof support 7 can abut against the lower side of the lead wire 800 connecting section 520 of the wiring terminal 500, so as to limit the installation posture of the wiring terminal 500. The embodiment is mainly used for the installation of the second type of wiring terminal 500. The wiring terminal 500 is connected with the second terminal wiring hole 205, the lead wire 800 can be led out forward without being bent, and the first type of wiring terminal 500 is avoided from being connected with the second terminal wiring hole 205 through the second foolproof support 7.

[0071] It should be noted that the first embodiment and the second embodiment can be used alone or in combination. The embodiment exemplarily shows the combined use.

[0072] In order to facilitate the connection with the wiring terminal 500, the front part of the conductive connection structure assembly 100 is exposed outside the main body of the functional module. According to the wiring condition, the lower part of the conductive connection structure assembly 100 needs to meet a certain safety distance to avoid contact with the surrounding module or other conductive connection structure assemblies 100. Therefore, in some embodiments, referring to Figures 10 to 12 , Figures 15 to 17 The lower side of the front part of the partition plate 102 is protruded with a stepped boss 1025, the lower edge of the stepped boss 1025 is protruded downward from the first front connecting plate 202, the first front connecting plate 202 is within the protection range of the stepped boss 1025, meets the safety requirement of the lower part of the conductive connection structure assembly 100, and at the same time, avoids the whole conductive connection structure assembly 100 from protruding upward from the circuit board 200 too much, which affects the compactness of the structure in the up-down direction.

[0073] In some other embodiments meeting the safety requirement, referring to Figure 2The lower part of two adjacent partitions 102 is provided with a closure 103 (for example, a closure plate), the rear edge of the closure 103 extends to the positioning table 101, the closure 103 is located below the first front connecting plate 202, and a closed design is formed below the first front connecting plate 202, thereby playing a role in isolation and protection.

[0074] In some embodiments, referring to Figure 8 , Figure 12 and Figure 14 , the first circuit board lap joint hole 203 is located at the rear of the wiring space 3, and the conductive connection structure assembly 100 further comprises a third conductive row 8, the front end of the third conductive row 8 is lap jointed and fixed to the first circuit board lap joint hole 203, and the rear end is lap jointed and fixed to the circuit board 200. In this embodiment, the front and rear lengths of the insulating support 1 are shortened, so that the rear end of the first conductive row 2 is exposed. During installation, there is no direct lap joint relationship between the insulating support 1 and the circuit board 200. The insulating support 1 is fixed to other areas inside the functional module, and the first circuit board 200 is connected to the terminal post 300 on the circuit board 200 through the third conductive row 8. In this way, since the shape and installation posture of the third conductive row 8 are relatively free, the position between the first rear connecting plate 201 and the terminal post 300 can not be front and rear opposite. On the one hand, the position of the terminal post 300 on the circuit board 200 can be set more flexibly, and is more suitable for the layout of other components on the circuit board 200. On the other hand, by flexibly selecting the third conductive row 8, the same model of conductive connection structure assembly 100 can adapt to the installation of different models of circuit board 200, and the use cost can be reduced. On the other hand, due to the shortening of the front and rear dimensions of the insulating support 1, the overall peripheral space occupied by the conductive connection structure assembly 100 on the circuit board 200 can be reduced, which is beneficial to the compact design of the circuit board 200 and the conductive connection structure assembly 100. It should be understood that if the first conductive row 2 and the insulating support 1 are detachably connected and can be replaced by the second conductive row 4, the second conductive row 4 can also be connected to the terminal post 300 on the circuit board 200 through the third conductive row 8. The specific adaptation principle is not described here.

[0075] In specific implementation, taking the first conductive row 2 as an example, the first circuit board lap joint hole 203 of the first conductive row 2 is fastened and connected with the lap joint hole at the front end of the third conductive row 8 through a fastener (for example, a threaded fastener), and the lap joint hole at the rear end of the third conductive row 8 is fastened and connected with the terminal post 300 on the circuit board 200 through a fastener (for example, a threaded fastener).

[0076] It should be noted that when the front and rear length of the partition plate 102 is relatively long (for example, when the rear edge of the partition plate 102 protrudes backward beyond the rear end of the first rear connecting plate 201), the rear side of the partition plate 102 can shield the rear end of the first conductive row 2 or the rear end of the second conductive row 4, and the lower edge of the rear part of the partition plate 102 can be directly lapped on the circuit board 200. When the front and rear length of the partition plate 102 is relatively short (for example, when the first circuit board lapping hole 203 is located behind the wiring space 3), the rear end of the first conductive row 2 or the rear end of the second conductive row 4 is exposed to the wiring space 3, and the partition plate 102 is not lapped on the circuit board 200. At this time, the lower part of the rear side of the insulating support 1 can be connected through the air duct insulating paper.

[0077] In some embodiments, referring to Figures 10 to 14 , the partition plate 102 includes an upper plate member 1026 and a lower plate member 1027, the positioning table 101 is connected with the lower plate member 1027, a clamping support 9 is arranged between adjacent two upper plate members 1026, the upper plate member 1026 is detachably connected with the lower plate member 1027, and the clamping support 9 is clamped and fixed with the positioning table 101. In this embodiment, the insulating support 1 is integrally split into upper and lower parts, the upper plate member 1026 and the clamping support 9 form an integral whole, and the lower plate member 1027 and the positioning table 101 form an integral whole. When installing, the first rear connecting plate 201 is placed on the specified position on the positioning table 101, and then the lower clamping support 9 and the upper plate member 1026 are clamped and fixed. In reverse, the first conductive row 2 can be replaced, the installation and positioning of the first conductive row 2 are simpler, and the installation and removal efficiency is effectively improved. It should be noted that if the second conductive row 4 is also compatible, the installation and removal method of the second conductive row 4 and the insulating support 1 of this embodiment is similar to the installation and removal method of the first conductive row 2 as described above, which will not be described here.

[0078] In specific implementation, the implementation mode of the detachable connection between the upper plate member 1026 and the lower plate member 1027 is as follows: 1) the lower edge of the upper plate member 1026 is provided with an adhesive layer, and the upper plate member 1026 is adhesively connected with the lower plate member 1027, and the disassembly is realized by tearing; 2) the lower edge of the upper plate member 1026 is provided with a plug-in column, the upper edge of the lower plate member 1027 is provided with a plug-in hole, and the plug-in hole and the plug-in column are inserted and connected in an upper and lower interference fit; 3) the lower edge of the upper plate member 1026 is provided with a front and rear through guide groove, and the upper edge of the lower plate member 1027 is provided with a guide rail which is slidably inserted and connected with the front and rear guide groove.

[0079] In some specific embodiments, referring to Figures 10 to 14, based on the cooperation between the clamping support 9 and the positioning table 101, the first rear connecting plate 201 is clamped and fixed in the up-down direction, in order to realize the limiting of the first rear connecting plate 201 in the direction perpendicular to the up-down direction, one of the first rear connecting plate 201 and the upper surface of the positioning table 101 is provided with a positioning column 10, and the other is provided with a positioning hole, and the limiting in the direction perpendicular to the up-down direction is realized through the insertion cooperation of the positioning column 10 and the positioning hole. In combination with the clamping and limiting described above, the first rear connecting plate 201 can be locked on the insulating support 1. In specific implementation, if the left and right widths of the wiring space 3 are relatively large, a plurality of positioning holes and a plurality of positioning columns 10 need to be arranged to prevent the first rear connecting plate 201 from rotating, or the positioning column 10 is arranged as an elliptical column or a polygonal prism, and the positioning hole is arranged in the same shape, which can also prevent rotation; if the left and right widths of the wiring space 3 are relatively small, the first rear connecting plate 201 can be prevented from rotating and limited, and then one positioning hole and one positioning column 10 can be arranged.

[0080] It should be understood that when the second conductive row 4 is replaced, similar positioning structures can also be arranged on the second rear connecting plate 401 to achieve similar locking effects, which will not be described here.

[0081] More specifically, on the basis that the partition plate 102 includes the upper plate piece 1026 and the lower plate piece 1027, in order to realize the replaceable effect of the first conductive row 2 and the second conductive row 4, the upper plate piece 1026 and the lower plate piece 1027 each include a main plate body 1021 and a front detachable plate body 1022. In specific implementation, the front detachable plate body 1022 of the upper plate piece 1026 and the front detachable plate body 1022 of the lower plate piece 1027 are separately arranged and can be respectively detached, and the detachment manner can refer to the cooperation between the upper plate piece 1026 and the lower plate piece 1027, which will not be enumerated one by one here; or the front detachable plate body 1022 of the upper plate piece 1026 and the front detachable plate body 1022 of the lower plate piece 1027 are integrally arranged and can be completely detached in one action.

[0082] In some embodiments, referring to Figures 15 to 17The positioning table 101 includes a plurality of first positioning sections 1011, the partition plate 102 includes a first side plate member 1028 and a second side plate member 1029, one end of the first positioning section 1011 is connected to the first side plate, the other end is connected to the second side plate, the first side plate member 1028 and the second side plate member 1029 are spliced and adapted along the left-right direction, and each positioning section and the first side plate and the second side plate on both sides form a wiring space 3. In this way, the number of wiring spaces 3 can be selectively set according to actual assembly requirements, thereby adapting to the installation requirements of different first conductive rows 2 or second conductive rows 4, and use is more flexible. It should be understood that the middle part of the first positioning section 1011 can also be provided with at least one partition plate 102, that is, at least one partition plate 102 is arranged between the first side plate and the second side plate at both ends, the partition plate 102 is not divided into parts, and one first positioning section 1011 corresponds to at least two wiring spaces 3, as shown in Figure 10 ; or, the middle part of the first positioning section 1011 is not additionally provided with a partition plate 102, and one first positioning section 1011 corresponds to one wiring space 3, as shown in Figure 16 and Figure 17 .

[0083] In some specific embodiments, the splicing manner of the first side plate member 1028 and the second side plate member 1029 is as follows:

[0084] 1) The splicing structure between the two is a magic tape, one side of the first side plate facing the second side plate is provided with one of LOOP or HOOK, and the other side of the second side plate facing the first side plate is provided with the other one of LOOP or HOOK. 2) The splicing structure between the two is an adhesive structure, which includes an adhesive layer, one of the first side plate and the second side plate is provided with the adhesive layer; wherein the implementation manner of the adhesive layer includes but is not limited to a silica gel layer. 3) The splicing structure between the two is a clamping structure, one of the first side plate and the second side plate is provided with a straight insertion type buckle, and the other one of the first side plate and the second side plate is correspondingly provided with a clamping hole.

[0085] More specifically, in order to realize effective pre-positioning of the first side plate and the second side plate, improve the splicing qualified rate under the premise of ensuring the splicing efficiency, a first pre-positioning structure is arranged between the first side plate and the second side plate.

[0086] The first type of first positioning structure is implemented as follows: the first positioning structure comprises at least two tapered guide columns arranged on one of the first side plate and the second side plate, and at least two guide holes arranged on the other of the first side plate and the second side plate. The large end of the tapered guide column is connected to the corresponding first side plate or second side plate, and the plurality of tapered guide columns are diagonally distributed on the first side plate or the second side plate. The guide hole corresponds to the tapered guide column one by one, and the inner diameter of the guide hole is the same as the outer diameter of the large end of the tapered guide column. During splicing alignment, the small end of the tapered guide column is inserted into the guide hole, and the tapered surface of the tapered guide column guides the guide hole. During the process of gradually approaching the first side plate and the second side plate, the center line of the tapered guide column and the guide hole coincide, and the splicing structure is spliced.

[0087] The second type of first positioning structure is implemented as follows: the first positioning structure comprises at least three positioning claws arranged on one of the first side plate and the second side plate. The at least three positioning claws are uniformly arranged on the edge region of the splicing surface of the first side plate or the second side plate along the circumferential direction of the first side plate or the second side plate. Each positioning claw is inclined and divergently arranged away from the central axis of the corresponding splicing surface, and the inclination angles of the positioning claws are the same. The edge of the splicing surface of the other of the first side plate and the second side plate is provided with a positioning protrusion along the circumferential direction thereof, and the positioning protrusion is provided with a bend at a position corresponding to the positioning claw. During splicing alignment, the free end of each positioning claw first abuts against the splicing surface inside the positioning protrusion ring and is a certain distance away from the positioning protrusion ring. As the distance between the first side plate and the second side plate decreases, the positioning claw is elastically deformed under pressure to have a larger inclination angle, and the free end of the positioning claw gradually approaches the tip of the corresponding bend. When each positioning claw abuts against the tip of the corresponding bend, the first side plate and the second side plate are directly opposite, the first side plate and the second side plate cannot rotate relative to each other, and the splicing structure is spliced. If the first side plate is not directly opposite the second side plate during assembly, the first side plate and the second side plate cannot approach each other, and the positioning claws are different in pressure, which causes the first side plate and the second side plate to tilt relative to each other. At this time, the first side plate or the second side plate is appropriately rotated until the pressure of each positioning claw is the same, and then the assembly can continue. This implementation is more suitable for the splicing mode of the splicing structure as a clamping structure.

[0088] The third implementation manner of the first predetermined positioning structure is: the first predetermined positioning structure comprises a first bent plate, a second bent plate and two pressure sensors; the first bent plate is connected to the corner of the lower rear part of the first side plate and extends towards the second side plate, and the cross section of the first bent plate is in the same L shape as the bending trend of the corner of the lower rear part of the first side plate; the second bent plate is connected to the corner of the lower rear part of the second side plate and extends towards the first side plate, and the cross section of the second bent plate is in the same L shape as the bending trend of the corner of the lower rear part of the second side plate; the two pressure sensing patches are respectively connected to the adjacent two side surfaces of the first bent plate towards the first side plate. When assembling, the adjacent two side surfaces of the second bent plate away from the second side plate are respectively in contact with the adjacent two side surfaces of the first bent plate towards the first side plate, and as the first side plate and the second side plate approach each other, the second bent plate slides on the first bent plate, at this time, the second bent plate needs to be in full contact with the first bent plate at all times to ensure that the first side plate is directly opposite the second side plate; whether the second bent plate is in full contact with the first bent plate at all times is detected by the two pressure sensors, if both pressure sensing patches are pressed, it is judged that the second bent plate is in full contact with the first bent plate, if one of the pressure sensing patches does not detect a pressure value, it indicates that the corresponding side of the second bent plate is not in contact with the first bent plate, and the attitude of the first bent plate and the second bent plate can be adjusted accordingly.

[0089] In some embodiments, referring to Figures 15 to 17 , the insulating support 1 further comprises a splicing support 104, the splicing support 104 is arranged between the adjacent two partition plates 102, the splicing support 104 comprises a first support body 1041 and a second support body 1042, the first support body 1041 and the second support body 1042 are respectively connected to the corresponding side partition plate 102, and the first support body 1041 and the second support body 1042 are spliced along the left-right direction; the positioning table 101 comprises a plurality of second positioning sections, the middle part of each second positioning section is connected to a partition plate 102, and the end parts of the adjacent two second positioning sections are spliced. After the adjacent two second positioning sections are spliced, a wiring space 3 is formed between the adjacent two partition plates 102, and the splicing can be performed according to the number of the first conductive row 2 and the number of the second rear connecting plate 401 of the second conductive row 4, the number of the wiring space 3 can be flexibly set, and the use is more flexible.

[0090] It should be noted that the scheme of arranging the splicing support 104 and the scheme of arranging the first side plate and the second side plate can be used alone or in combination. If used in combination, the first positioning section 1011 also needs to be split into two sections to adapt to the splicing scheme of the splicing support 104. In addition, the splicing implementation manner of the first support body 1041 and the second support body 1042 of the splicing support 104 is similar to the splicing manner of the first side plate member 1028 and the second side plate member 1029, which will not be listed one by one here.

[0091] In some embodiments, referring to Figures 15 to 17, based on the cooperation of the clamping support 9 and the positioning table 101, in order to simplify the structure and save space, the clamping support 9 and the splicing support 104 can be integrated, and the clamping support 9 in the figure is also the splicing support 104, and the clamping and splicing functions are realized through the same support structure.

[0092] In some embodiments, the clamping support 9 and the first foolproof support 6 can be integrated (as shown in Figures 10 to 14 ), and the clamping support 9 in the figure is also the first foolproof support 6, and the clamping and foolproof functions are realized through the same support structure.

[0093] In some embodiments, the clamping support 9, the splicing support 104 and the first foolproof support 6 can be integrated, and the clamping, splicing and foolproof functions are realized through the same support structure.

[0094] Based on the same inventive concept, the embodiment of the present application also provides a functional module, referring to Figure 1 , the functional module comprises a circuit board 200 and the conductive connection structure assembly 100 described above, the circuit board 200 is fixed with a terminal post 300, and the rear part of the first rear connecting plate 201 is lap-jointed and fixed with the terminal post 300 through a fastener penetrating the first circuit board lap joint hole 203.

[0095] Compared with the prior art, the functional module provided by the embodiment avoids the problem of long assembly period of the circuit board 200 caused by welding fixation, which affects the work efficiency, the overall assembly period of the functional module can be shortened, the overall assembly efficiency is improved, and the production cost of the functional module as a whole is saved by saving the material amount of the conductive row. In addition, based on the insulation protection effect of the insulating support 1, the safety distance of the components and elements arranged around the first conductive row 2 on the circuit board 200 and the first conductive row 2 is smaller, the area of the circuit board 200 can be directly reduced, or more components and elements are arranged on the circuit board 200, which plays an important role in optimizing the design of the circuit board 200, and improves the compactness and reliability of the functional module itself.

[0096] In some embodiments, referring to Figure 10 and Figure 11The functional module further comprises a mounting bracket 700, which is a U-shaped bracket, and both sides of the mounting bracket 700 are provided with mounting ears 710; the bottom of the mounting bracket 700 can support the lower surface of the insulating bracket 1, and the two side walls of the mounting bracket 700 can clasp and fix the insulating bracket 1 in the left-right direction; finally, the mounting ears 710 are connected with the module shell 400 of the functional module and other structures to realize the assembly of the whole conductive connection structure assembly 100 and the main body of the functional module.

[0097] The above merely describes the preferred embodiments of the present application and is not intended to limit the present application, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. An electrically conductive connection structure assembly, characterized by The application relates to an insulating support (1) comprising a positioning table (101) and a plurality of partition plates (102) connected to the positioning table (101) in the left-right direction, a wiring space (3) being formed between two adjacent partition plates (102); a first conductive row (2) having a first rear connecting plate (201), the plate surface of the first rear connecting plate (201) being perpendicular to the up-down direction, and the middle part being connected to the upper surface of the positioning table (101); the rear part of the first rear connecting plate (201) forms a first circuit board lap joint hole (203), and the front part forms a first terminal wiring hole (204); the first circuit board lap joint hole (203) is lap jointed and fixed with a wiring column (300) on a circuit board (200) through a fastener. The first conductive row (2) further has a first front connecting plate (202), the first front connecting plate (202) is connected to the front edge of the first rear connecting plate (201) and extends downward, the front edge of the partition plate (102) protrudes forward from the first front connecting plate (202), and the lower edge of the partition plate (102) protrudes downward from the first front connecting plate (202). The first rear connecting plate (201) is detachably connected with the positioning table (101), the partition plate (102) comprises a main plate body (1021) connected with the positioning table (101) and a front detachable plate body (1022) arranged on the front side of the main plate body (1021), and the front detachable plate body (1022) is detachably connected with the main plate body (1021). The conductive connecting structure assembly further comprises a second conductive row (4), the second conductive row (4) has a plurality of second rear connecting plates (401) and a second front connecting plate (402), the front edges of the plurality of second rear connecting plates (401) are respectively connected to the second front connecting plate (402) in the left-right direction, the plate surface of the second rear connecting plate (401) is perpendicular to the up-down direction, each second rear connecting plate (401) is arranged in a different wiring space (3) and is detachably connected with the upper surface of the positioning table (101) in the corresponding wiring space (3).

2. The electrically conductive connection structure assembly of claim 1, wherein, The rear part of the second rear connecting plate (401) forms a second circuit board lap joint hole (403), and the second front connecting plate (402) is provided with a third terminal wiring hole (404).

3. The electrically conductive connection structure assembly of claim 2, wherein, A first foolproof support (6) is arranged in the wiring space (3), the first foolproof support (6) is located above the first rear connecting plate (201), the first terminal wiring hole (204) is located in front of the first foolproof support (6), and the first foolproof support (6) can abut against the rear side of the wire (800) connecting section (520) of a wiring terminal (500) to limit the installation posture of the wiring terminal (500). ​ ​ 4. The electrically conductive connection structure assembly of claim 2, wherein, ​ And / or, the wiring space (3) is provided with a second fool-proof support (7), the first fool-proof support (6) is located in front of the first front connecting plate (202), the second terminal wiring hole (205) is located above the second fool-proof support (7), and the second fool-proof support (7) can abut with the lower side of the lead (800) connection section (520) of the wiring terminal (500) to limit the installation posture of the wiring terminal (500).

5. The electrically conductive connection structure assembly of claim 2, wherein, The lower side of the front part of the partition plate (102) is provided with a stepped boss (1025), and the lower edge of the stepped boss (1025) protrudes downward from the first front connecting plate (202); Alternatively, the lower part of the two adjacent partition plates (102) is provided with a closure (103), the rear edge of the closure (103) extends to the positioning table (101), and the closure (103) is located below the first front connecting plate (202).

6. The electrically conductive connection structure assembly of claim 2, wherein, The first circuit board lap joint hole (203) is located at the rear of the wiring space (3), and the conductive connection structure assembly further includes a third conductive row (8), the front end of the third conductive row (8) is lap jointed and fixed to the first circuit board lap joint hole (203), and the rear end is lap jointed and fixed to the circuit board (200).

7. The electrically conductive connection structure assembly of claim 2, wherein, The partition plate (102) comprises an upper plate (1026) and a lower plate (1027), the positioning table (101) is connected with the lower plate (1027), a clamping support (9) is arranged between the two adjacent upper plates (1026), the upper plate (1026) is detachably connected with the lower plate (1027), and the clamping support (9) is clamped and fixed with the first rear connecting plate (201) in cooperation with the positioning table (101).

8. The electrically conductive connection structure assembly of claim 2, wherein, The positioning table (101) comprises a plurality of first positioning sections (1011), the partition plate (102) comprises a first side plate (1028) and a second side plate (1029), one end of the first positioning section (1011) is connected with the first side plate, the other end is connected with the second side plate, and the first side plate (1028) and the second side plate (1029) are spliced and adapted in the left-right direction.

9. The electrically conductive connection structure assembly of claim 2 or 8, wherein, The insulating support (1) further comprises a splicing support (104), the splicing support (104) is arranged between the two adjacent partition plates (102), the splicing support (104) comprises a first support body (1041) and a second support body (1042), the first support body (1041) and the second support body (1042) are connected to the corresponding partition plate (102) on the side, and the first support body (1041) and the second support body (1042) are spliced in the left-right direction; the positioning table (101) comprises a plurality of second positioning sections, the middle part of each second positioning section is connected with a partition plate (102), and the end parts of the two adjacent second positioning sections are spliced.

10. A functional module, characterized in that The conductive connection structure assembly as claimed in any one of claims 1-9, and a circuit board (200) having a terminal post (300) fixed thereon, and the rear part of the first rear connecting plate (201) is fixedly connected with the terminal post (300) through a fastener penetrating the first circuit board lapping hole (203).