Wire holder assembling and conveying mechanism

By designing a terminal assembly and conveying mechanism including a synchronization plate, a material transfer plate and a third drive assembly, the problem of low assembly efficiency in the prior art is solved, and a more efficient and automated assembly process is achieved.

CN222906656UActive Publication Date: 2025-05-27WUXI FEITAIGE ELECTRONIC TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421783228.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-05-27
Estimated Expiration
2034-07-26

AI Technical Summary

Technical Problem

During the assembly process of existing wiring junctions, the flow of the shell usually depends on the robotic arm, resulting in large installation space, complex movement, slow speed and low efficiency.

Method used

A wiring base assembly and conveying mechanism is designed, including a machine, a material transfer mechanism and a conveying track. The material transfer mechanism consists of a synchronization plate, a plurality of material transfer plates, a slide plate, a guide slide rail and a third driving assembly. The third driving assembly drives the synchronization plate to slide, and the slide plate cooperates with the elastic member to achieve efficient movement of the shell on the conveying track.

Benefits of technology

It improves the efficiency of wiring junction assembly, reduces the required installation space, simplifies movement, and improves the action rate, making the assembly process more automated and efficient.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222906656U_ABST
    Figure CN222906656U_ABST
Patent Text Reader

Abstract

The utility model discloses a wire holder assembling and conveying mechanism, which relates to the technical field of wire holder assembling and comprises a machine table, a material moving mechanism and a conveying track are arranged on the machine table, and the conveying track is used for conveying shells; the material moving mechanism comprises a synchronous plate, a plurality of material moving plates and a third driving assembly; the third driving assembly drives the synchronous plate to slide on the conveying track, the side, close to the conveying direction of the conveying track, of the sliding plate is arranged on the side, away from the conveying direction of the conveying track, of the shell, then the third driving assembly drives the synchronous plate to move towards the side, in the conveying direction, of the conveying track, and the shell is moved to the next assembly link. In addition, due to the fact that a plurality of material moving plates are arranged on the synchronous plate, the shells of a plurality of assembly process positions can be synchronously moved to the corresponding next assembly link, the material moving speed is increased, the needed installation space is small, action is simple, the action speed is high, and the assembly efficiency of the wire holders is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of terminal block assembly, in particular to a terminal block assembly conveying mechanism. Background Art

[0002] In automobiles and various electrical appliances, terminal blocks are used more and more frequently. A terminal block usually includes a housing, an installation cavity is opened on the housing, a nut is installed in the installation cavity, a slot is also penetrated through the housing, the slot penetrates through the housing on both sides of the installation cavity, a terminal post is covered on the nut, and the pin of the terminal post penetrates through the slot to the other side of the housing.

[0003] In the prior art, the assembly of the terminal block is generally composed of multiple mechanisms. During the assembly process of the terminal block, the transfer of the outer shell among multiple mechanisms is generally realized by the clamping of a robotic arm. However, the use of a robotic arm for transfer has problems such as a large required installation space, complex movements, and slow movement speed, resulting in low assembly efficiency of the terminal block.

[0004] In view of this, there is an urgent need for a terminal block assembly conveying mechanism. Summary of the Invention

[0005] Aiming at the problems existing in the prior art, the utility model solves these problems with the following technical structures.

[0006] To achieve the above object, the utility model adopts the following technical scheme:

[0007] A terminal block assembly conveying mechanism includes: a machine table, a material transfer mechanism and a conveying track are arranged on the machine table, and the conveying track is used for conveying the outer shell;

[0008] The material transfer mechanism includes a synchronous plate, a plurality of material transfer plates and a third driving component. The synchronous plate is arranged on one side of the conveying track. The plurality of material transfer plates are arranged in parallel on the synchronous plate. A sliding plate is slidably arranged at the suspended end of the material transfer plate. The sliding direction of the sliding plate is perpendicular to the conveying direction of the conveying track. An elastic member is arranged between the sliding plate and the material transfer plate. One side of the suspended end of the sliding plate away from the conveying direction of the conveying track is an inclined surface. When the outer shell abuts against the inclined surface, the sliding plate slides towards the synchronous plate side. The third driving component is used to drive the synchronous plate to move towards or away from the conveying direction of the conveying track.

[0009] Further,

[0010] A limiting groove is opened on the top surface of the conveying track. The limiting groove extends from one end of the conveying track to the other end of the conveying track. The suspended end of the sliding plate extends directly above the limiting groove.

[0011] The material transfer mechanism further includes a guiding slide rail disposed on one side of the conveying track. The extending direction of the guiding slide rail is the same as that of the conveying track, and the synchronization plate is slidably disposed on the guiding slide rail.

[0012] The third driving assembly is a third electric cylinder. The third electric cylinder is disposed on the guiding slide rail, and the synchronization plate is disposed at the output end of the third electric cylinder.

[0013] A sliding hole is formed at the suspended end of the material transfer plate, and the sliding plate is slidably disposed in the sliding hole.

[0014] The elastic member is disposed in the sliding hole.

[0015] The elastic member is a spring.

[0016] The elastic member is a shrapnel.

[0017] There are five material transfer plates.

[0018] The material transfer plate is fixed to the synchronization plate by bolts.

[0019] Adopting the above structure of the present utility model can achieve the following beneficial effects:

[0020] The synchronization plate is driven by the third driving assembly to slide on the conveying track. The side of the sliding plate close to the conveying direction of the conveying track is placed on the side of the housing away from the conveying direction of the conveying track. Then, the third driving assembly drives the synchronization plate to move towards the side of the conveying direction of the conveying track, moving the housing to the next assembly step. And since there are several material transfer plates on the synchronization plate, the housings at multiple assembly processes can be synchronously transferred to the corresponding next assembly step, improving the material transfer speed. Moreover, it requires a small installation space, has simple actions, a fast action rate, and improves the assembly efficiency of the terminal block. Description of the Drawings

[0021] Figure 1 It is a schematic structural diagram of the related technology of this application;

[0022] Figure 2 It is a schematic structural diagram of the related technology of this application;

[0023] Figure 3 It is a schematic structural diagram of this application;

[0024] Figure 4 It is a schematic structural diagram of the related technology of this application;

[0025] Figure 5 It is a schematic structural diagram of the related technology of this application;

[0026] Figure 6 It is a schematic structural diagram of the related technology of this application;

[0027] Figure 7 is a schematic structural diagram of the related technology of this application;

[0028] Figure 8 is a schematic structural diagram of the related technology of this application;

[0029] Figure 9 is a schematic structural diagram of the material transfer plate in this embodiment.

[0030] In the figure: 1, machine table; 2, nut installation mechanism; 21, first mounting frame; 22, nut feeding track; 221, nut groove; 23, nut ejector; 24, first linear module; 241, first slide rail; 242, first electric cylinder; 25, first lifting module; 251, second slide rail; 252, second electric cylinder; 26, first jaw; 261, chuck; 27, first cylinder; 28, mounting plate; 3, terminal installation mechanism; 31, second mounting frame; 32, terminal feeding track; 321, terminal groove; 33, terminal ejector; 34, second linear module; 35, second lifting module; 36, second jaw; 37, second cylinder; 4, pressing mechanism; 41, third mounting frame; 42, pressing head; 43, third cylinder; 44, lever; 45, positioning plate; 451, positioning post; 5, material transfer mechanism; 51, synchronization plate; 52, material transfer plate; 53, slide plate; 54, guiding slide rail; 55, third electric cylinder; 6, conveying track; 61, limiting groove; 62, positioning hole. Detailed implementation manners

[0031] In order to enable those skilled in the art to better understand the solution of this utility model, the technical solutions in the embodiments of this utility model will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of this utility model. Obviously, the described embodiments are only a part of the embodiments of this utility model, rather than all of the embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of this utility model.

[0032] It should be noted that the terms "including" and "having" and any variations thereof in the description and claims of this utility model and the above-mentioned accompanying drawings are intended to cover non-exclusive inclusion. For example, a process, method, device, product or equipment that includes a series of steps or units does not necessarily have to be limited to those steps or units clearly listed, but may include other steps or units not clearly listed or inherent to these processes, methods, products or equipment.

[0033] The following will further describe this application in detail in conjunction with the attached Figure 2-9 drawings.

[0034] Refer to Figure 2-3A terminal block assembly machine shown in the figure includes: a machine table 1, on which a conveying track 6, a nut installation mechanism 2, a terminal post installation mechanism 3, a pressing mechanism 4 and a material transfer mechanism 5 are arranged. The conveying track 6 (the incoming material end of the conveying track 6 is externally connected to a vibrating disk, and the housing is conveyed to the conveying track 6 in the required state through the vibrating disk, or the housing can also be manually placed on the conveying track 6 in sequence) is used to carry the housing. The nut installation mechanism 2, the terminal post installation mechanism 3 and the terminal post pressing mechanism 4 are sequentially arranged on the conveying path of the conveying track 6. The nut installation mechanism 2 is used to install nuts on the housing on the conveying track 6. The terminal post installation mechanism 3 installs the terminal posts on the housing with nuts. The pressing mechanism 4 is used to press the terminal posts on the housing into the housing. The material transfer mechanism 5 is used to move the housing on the conveying track 6. Thus, when assembling the terminal block, the housing is placed on the conveying track 6, and the material transfer mechanism 5 moves the housing on the conveying track 6 so that it sequentially passes through the nut installation mechanism 2, the terminal post installation mechanism 3 and the pressing mechanism 4. The nut installation mechanism 2 places the nuts in the cavity of the housing. The terminal post installation mechanism 3 inserts the terminal posts into the slots of the housing from top to bottom. Finally, the pressing mechanism 4 presses the terminal posts from top to bottom to press the terminal posts into the housing. The assembled terminal block is pushed by the next assembled terminal block to the end of the conveying track 6 until it is pushed out of the conveying track 6 to complete the blanking, thereby completing the assembly of the terminal block. The automation degree is high, and the processing efficiency is improved.

[0035] Reference Figure 2-3 As shown in the figure, in order to limit the position of the housing on the conveying track 6, a limiting groove 61 is opened on the top surface of the conveying track 6. The limiting groove 61 extends from one end of the conveying track 6 to the other end. Thus, during the conveying process of the housing on the conveying track 6, the bottom of the housing is always clamped in the limiting groove 61.

[0036] Reference Figure 4-5As shown in the figure, the nut installation mechanism 2 includes a first mounting frame 21, a nut feeding track 22, a nut top 23, a first linear module 24, a first lifting module 25, a first jaw 26 and a first cylinder 27. The first mounting frame 21, the first cylinder 27 and the nut feeding track 22 are all arranged on the machine table 1. The nut top 23 is arranged at the end of the nut feeding track 22. The first linear module 24 is horizontally arranged on the first mounting frame 21 and extends from directly above the nut top 23 to directly above the conveying track 6. The first lifting module 25 is arranged on the first linear module 24, and the first jaw 26 is arranged on the first lifting module 25. The nut top 23 is used to receive the nuts from the nut feeding track 22, and the first cylinder 27 is used to drive the nut top 23 to move up and down. In this way, the outer shell nut feeding track 22 conveys the nuts to the top of the nut top 23. By driving the nut top 23 to move upward through the first cylinder 27, the top of the nut top 23 is exposed outside at this time. Then the first lifting module 25 slides on the first linear module 24 until the first jaw 26 is suspended directly above the nut top 23. Then the first jaw 26 slides on the first lifting module 25 to clamp the nut on the nut top 23. Then the first jaw 26 moves upward, and the first lifting module 25 moves to directly above the outer shell on the conveying track 6 (the material transfer mechanism 5 moves the outer shell to the nut installation mechanism 2). Then the first jaw 26 moves downward to release the clamping of the nut. At this time, the nut falls into the cavity of the outer shell, completing the installation of the nut. There is no need to install it manually in the installation cavity of the shell, which improves the processing efficiency and will not cause problems such as difficult handling due to the small size of the nut.

[0037] Reference Figure 4-5 As shown in the figure, two parallel nut grooves 221 are opened in the nut feeding track 22. The nut grooves 221 extend from one end of the nut feeding track 22 to the other end. When feeding nuts, the nut feeding track 22 is externally connected to a vibrating disk, and the vibrating disk makes the nuts enter the nut grooves 221 in a specified state and are conveyed to the nut top 23 through the nut grooves 221. Of course, the nuts can also be manually placed in the nut grooves 221. And because there are two nut grooves 221, two parallel nuts can be conveyed to the nut top 23 at the same time.

[0038] Further optimized, reference Figure 4-5As shown, in order to prevent the nut from moving from the nut feeding track 22 to the nut head 23 and to limit the position of the nut on the nut head 23, and also to prevent the nut from directly slipping off the nut head 23, a mounting plate 28 is provided on one side of the first mounting bracket 21. The mounting plate 28 is arranged on the side of the nut head 23 away from the nut feeding track 22. The nut head 23 is slidably arranged on the mounting plate 28. Two card slots corresponding to the nut grooves 221 are provided on the top of the nut head 23. The depth of the card slots is less than the height of the nut. In this way, when the nut slides from the nut feeding track 22 onto the nut head 23, it directly falls onto the two card slots, and the mounting plate 28 acts to block the nut from continuing to move away from the side of the nut feeding track 22.

[0039] Further optimized, referring to Figure 4-5 As shown, since the number of nuts to be installed on most terminal blocks is more than two, in order to improve the installation efficiency of the nuts, the first clamping jaw 26 includes two clamping heads 261 and a driving member for driving the two clamping heads 261 to move towards or away from each other. Two clamping pieces are arranged in parallel at the bottom of the clamping head 261. In this way, by moving the two clamping heads 261 closer to each other, the two clamping pieces can respectively clamp the two nuts on the nut head 23, and the installation of the two nuts can be carried out synchronously, improving the installation efficiency of the nuts.

[0040] Referring to Figure 4-5 As shown, the specific structure of the first linear module 24 includes a first slide rail 241 and a first electric cylinder 242. The first electric cylinder 242 is arranged on the first slide rail 241. The first lifting module 25 is slidably arranged on the first slide rail 241. The first electric cylinder 242 is used to drive the first lifting module 25 to slide on the first slide rail 241. And the specific structure of the first lifting module 25 is a second slide rail 251 and a second electric cylinder 252. The second electric cylinder 252 is arranged on the second slide rail 251. The second slide rail 251 is vertically arranged on the first slide rail 241. The first clamping jaw 26 is arranged on the second slide rail 251. The second electric cylinder 252 is used to drive the first clamping jaw 26 to slide on the second slide rail 251. Of course, the above structure is only an example of the specific structures of the first linear module 24 and the first lifting module 25. During actual production and processing, other structures can also be adopted to achieve the multi-dimensional movement of the first clamping jaw 26.

[0041] Referring to Figure 6As shown in the figure, the terminal installation mechanism 3 (the specific structure and operation process of the terminal installation mechanism 3 are the same as those of the nut installation mechanism 2. Only due to the different specific structural shapes of the nut and the terminal, the relevant structures are adjusted adaptively) includes a second mounting frame 31, a terminal feeding track 32, a terminal top 33, a second linear module 34 (the specific structure and function of the second linear module 34 are the same as those of the first linear module 24), a second lifting module 35 (the specific structure and function of the second lifting module 35 are the same as those of the first lifting module 25), a second jaw 36 (the specific structure and function of the second jaw 36 are the same as those of the first jaw 26 and are used to clamp the terminal), and a second cylinder 37. The second mounting frame 31, the second cylinder 37, and the terminal feeding track 32 are all arranged on the machine table 1. The terminal top 33 is arranged at the end of the terminal feeding track 32. The second linear module 34 is horizontally arranged on the second mounting frame 31 and extends from directly above the terminal top 33 to directly above the conveying track 6. The second lifting module 35 is arranged on the second linear module 34, and the second jaw 36 is arranged on the second lifting module 35. The terminal top 33 is used to receive the terminal from the terminal feeding track 32, and the second cylinder 37 is used to drive the terminal top 33 to move up and down. In this way, the outer shell terminal feeding track 32 conveys the terminal to the top of the terminal top 33. By driving the terminal top 33 to move upward through the second cylinder 37, at this time, the top of the terminal top 33 is exposed outside. Then, the second lifting module 35 slides on the second linear module 34 until the second jaw 36 is suspended directly above the terminal top 33. Then, the second jaw 36 slides on the second lifting module 35 to clamp the terminal on the terminal top 33. Then, the second jaw 36 moves upward, and the second lifting module 35 moves to directly above the outer shell on the conveying track 6 (the transfer mechanism 5 moves the outer shell with the nut installed to the terminal installation mechanism 3). Then, the second jaw 36 moves downward to release the clamping of the terminal. At this time, the bottom end of the terminal falls into the slot of the outer shell, completing the installation of the terminal.

[0042] Reference Figure 6 As shown in the figure, two parallel terminal slots 321 (the specific shape of the terminal slots 321 is adapted to the terminal) are opened in the terminal feeding track 32. The two terminal slots 321 extend from one end of the terminal feeding track 32 to the other end of the terminal feeding track 32. When feeding the nuts, the terminal feeding track 32 is externally connected to a vibrating disk. Through the vibrating disk, the terminals enter the terminal slots 321 in a specified state and are conveyed to the terminal top 33 through the terminal slots 321. Of course, the terminals can also be manually placed in the terminal slots 321. And because two terminal slots 321 are opened, two parallel terminals can be conveyed to the terminal top 33 at the same time.

[0043] ReferenceFigure 7 and 8 As shown in 8 , the pressing mechanism 4 includes a third mounting bracket 41, a pressing head 42, and a first driving component for driving the pressing head 42 to move up and down. The third mounting bracket 41 is arranged on the conveying track 6, and the pressing head 42 is suspended directly above the limiting groove 61. A third sliding rail is arranged on the third mounting bracket 41, and the pressing head 42 is arranged on the third sliding rail. The pressing head 42 includes a fixing plate and a pressing head clamped at the bottom of the fixing plate. The fixing plate is slidably arranged on the third sliding rail. In this way, when the material transferring mechanism 5 moves the housing with the nut and the terminal to directly below the pressing head 42, the first driving component drives the pressing head 42 to move downward, making it abut against the top end of the terminal and pressing the terminal into the housing, avoiding direct pressing by fingers, saving time and effort, and having high pressing efficiency, thus improving the assembly efficiency of the terminal block.

[0044] Refer to Figure 7 and 8 As shown in 8 , the specific structure of the first driving component includes a third air cylinder 43 and a lever 44. The third air cylinder 43 is arranged on the machine table 1. One end of the lever 44 is provided with a waist-shaped groove and is rotatably connected to the top end of the pressing head 42 through the waist-shaped groove (the specific connection structure is by opening a first groove at the top of the pressing head 42, and the end of the lever 44 is rotatably arranged in the first groove). The middle part of the lever 44 is rotatably arranged at the top end of the third mounting bracket 41 (the specific connection structure is by setting a second groove at the top end of the third mounting bracket 41, and the middle part of the lever 44 is rotatably arranged in the second groove). The other end of the lever 44 is rotatably connected to the output end of the third air cylinder 43 (the specific connection structure is by setting a U-shaped mounting seat at the output end of the third air cylinder 43, and the end of the lever 44 is rotatably arranged on the U-shaped mounting seat). In this way, the third air cylinder 43 drives one end of the lever 44 to move up and down, making the pressing head 42 connected to the other end of the lever 44 move up and down, completing the driving of the pressing head 42.

[0045] Refer to Figure 7As shown, to avoid the position deviation of the housing equipped with nuts and terminal posts, which may cause the pressing head 42 unable to press the terminal post when pressing down, the pressing mechanism 4 further includes a positioning assembly. The positioning assembly includes a positioning plate 45 and a second driving assembly (the second driving assembly can adopt a fourth cylinder). One end of the positioning plate 45 is provided with two positioning posts 451. A positioning groove is formed between the two positioning posts 451. Two positioning holes 62 are formed on one side of the conveying track 6. The two positioning holes 62 communicate with the limiting groove 61. The two positioning posts 451 are respectively slidably arranged in the two positioning holes 62. The second driving assembly is used to drive the positioning plate 45 to move towards or away from the side of the conveying track 6. When the ends of the two positioning posts 451 move into the limiting groove 61, the positioning groove is located directly below the pressing head 42. In this way, when the material transfer mechanism 5 transfers the housing equipped with nuts and terminal posts to the pressing mechanism 4, the second driving assembly drives the positioning plate 45 to move towards the side of the conveying track 6, so that the two positioning posts 451 are inserted into the limiting groove 61. The two positioning posts 451 are respectively clamped on both sides of the bottom of the housing to limit the position of the housing. And in order to facilitate the insertion of the two positioning posts 451 on both sides of the housing, a guiding inclined surface is provided on the side where the suspended ends of the two positioning posts 451 are close to each other.

[0046] Reference Figure 3 and Figure 9As shown in the figure, the material transfer mechanism 5 includes a synchronous plate 51, a plurality of material transfer plates 52 (in this embodiment, there are 5 material transfer plates 52), and a third driving assembly. The synchronous plate 51 is arranged on one side of the conveying track 6. The plurality of material transfer plates 52 are arranged in parallel on the synchronous plate 51 (the material transfer plates 52 are fixed to the synchronous plate 51 by bolts). A sliding plate 53 is slidably arranged at the suspended end of the material transfer plate 52 (the specific installation method of the sliding plate 53 is that a sliding hole is provided at the suspended end of the material transfer plate 52, and the sliding plate 53 is slidably arranged in the sliding hole). The sliding direction of the sliding plate 53 is perpendicular to the conveying direction of the conveying track 6. An elastic member (the elastic member can be a spring or a spring sheet) is arranged between the sliding plate 53 and the material transfer plate 52. One side of the suspended end of the sliding plate 53 away from the conveying direction of the conveying track 6 is an inclined surface. When the outer shell abuts against the inclined surface, the sliding plate 53 slides towards the synchronous plate 51 side. The third driving assembly is used to drive the synchronous plate 51 to move towards or away from the conveying direction of the conveying track 6. In this way, when it is necessary to move the outer shell, the synchronous plate 51 is driven by the third driving assembly to slide on the conveying track 6, and the side of the sliding plate 53 close to the conveying direction of the conveying track 6 is placed on the side of the outer shell away from the conveying direction of the conveying track 6 (during the movement, when the inclined surface of the sliding plate 53 abuts against the outer shell, the sliding plate 53 slides towards the synchronous plate 51 side, compressing the elastic member. When passing over the outer shell, the elastic force of the elastic member makes the sliding plate 53 reset). Then, the third driving assembly drives the synchronous plate 51 to move towards the conveying direction side of the conveying track 6, moving the outer shell to the next assembly link. And because there are several material transfer plates 52 on the synchronous plate 51, the outer shells at the incoming material section of the conveying track 6, the nut installation mechanism 2, and the terminal installation mechanism 3 are synchronously moved, and the outer shells at the corresponding assembly processes are transferred to the next assembly link, improving the material transfer speed. And it requires a small installation space, has simple actions, a fast action rate, and improves the assembly efficiency of the terminal block.

[0047] Reference Figure 3 As shown in the figure, in order to guide the movement of the synchronous plate 51, the material transfer mechanism 5 further includes a guiding slide rail 54 arranged on one side of the conveying track 6. The extending direction of the guiding slide rail 54 is the same as the extending direction of the conveying track 6. The synchronous plate 51 is slidably arranged on the guiding slide rail 54. In this way, the movement of the synchronous plate 51 is limited by the guiding slide rail 54, enabling the synchronous plate 51 to move in a specified direction. And the third driving assembly can adopt a third electric cylinder 55. The third electric cylinder 55 is arranged on the guiding slide rail 54, and the synchronous plate 51 is arranged at the output end of the third electric cylinder 55. In this way, the driving of the synchronous plate 51 is completed.

[0048] In summary, when assembling the terminal block, the shell is placed on the conveying track 6, and the shell is moved on the conveying track 6 by the material shifting mechanism 5, so that it passes through the nut installation mechanism 2, the terminal post installation mechanism 3 and the pressing mechanism 4 in sequence, the nut installation mechanism 2 places the nut in the cavity of the shell, the terminal post installation mechanism 3 inserts the terminal post into the slot of the shell from top to bottom, and finally the terminal post is pressed down from top to bottom by the pressing mechanism 4, and the terminal post is pressed into the shell. The pressed terminal block is pushed to the end of the conveying track 6 by the next pressed terminal block until it is pushed out of the conveying track 6, completing the unloading, thereby completing the assembly of the terminal block, with a high degree of automation and improved processing efficiency.

[0049] The above are only preferred embodiments of the present application, and the present invention is not limited to the above embodiments. It is understood that other improvements and changes directly derived or associated by those skilled in the art without departing from the spirit and concept of the present invention should be considered to be included in the protection scope of the present invention.

Claims

1. A wiring socket assembly and conveying mechanism, characterized in that: include: A machine platform (1), wherein the machine platform (1) is provided with a material transfer mechanism (5) and a conveying track (6), wherein the conveying track (6) is used for conveying the shell; The material moving mechanism (5) comprises a synchronous plate (51), a plurality of material moving plates (52) and a third driving component. The synchronous plate (51) is arranged on one side of the conveying track (6). The plurality of material moving plates (52) are arranged parallel to the synchronous plate (51). A sliding plate (53) is slidably arranged at the suspended end of the material moving plate (52). The sliding direction of the sliding plate (53) is perpendicular to the conveying direction of the conveying track (6). An elastic member is arranged between the sliding plate (53) and the material moving plate (52). The side of the suspended end of the sliding plate (53) away from the conveying direction of the conveying track (6) is an inclined surface. When the shell contacts the inclined surface, the sliding plate (53) slides toward the side of the synchronous plate (51). The third driving component is used to drive the synchronous plate (51) to move toward or away from the conveying direction of the conveying track (6).

2. The wire socket assembly and conveying mechanism according to claim 1, characterized in that: A limiting groove (61) is provided on the top surface of the conveying track (6), and the limiting groove (61) extends from one end of the conveying track (6) to the other end of the conveying track (6), and the suspended end of the slide plate (53) extends to directly above the limiting groove (61).

3. The wire socket assembly and conveying mechanism according to claim 1, characterized in that: The material transfer mechanism (5) further comprises a guide rail (54) arranged on one side of the conveying track (6); the extension direction of the guide rail (54) is consistent with the extension direction of the conveying track (6); and the synchronization plate (51) is slidably arranged on the guide rail (54).

4. The wire socket assembly and conveying mechanism according to claim 3, characterized in that: The third driving component is a third electric cylinder (55), the third electric cylinder (55) is arranged on a guide slide rail (54), and the synchronization plate (51) is arranged at the output end of the third electric cylinder (55).

5. The wire socket assembly and conveying mechanism according to claim 1, characterized in that: A sliding hole is provided at the suspended end of the material moving plate (52), and the sliding plate (53) is slidably arranged in the sliding hole.

6. The wire socket assembly and conveying mechanism according to claim 5, characterized in that: The elastic member is arranged in the sliding hole.

7. The wire socket assembly and conveying mechanism according to claim 1, characterized in that: The elastic member is a spring.

8. The wire socket assembly and conveying mechanism according to claim 1, characterized in that: The elastic member is a spring sheet.

9. The wire socket assembly and conveying mechanism according to claim 1, characterized in that: Five material transfer plates (52) are provided.

10. The wire socket assembly and conveying mechanism according to claim 1, characterized in that: The material shifting plate (52) is fixed on the synchronous plate (51) by means of bolts.