Multi-basket sheet collecting and conveying mechanism

By using the rotating power component and locking block design of the multi-basket cell collection and conveying mechanism, synchronous conveying of multiple baskets is achieved, solving the problems of high cost and cell slippage caused by individual basket driving in the existing technology, thus improving conveying efficiency and preventing cell damage.

CN224171857UActive Publication Date: 2026-04-28苏州诚拓智能装备有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
苏州诚拓智能装备有限公司
Filing Date
2025-04-27
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

The existing basket collection and conveying mechanism can only drive one basket at a time, resulting in high costs and the batteries being prone to slipping and being damaged.

Method used

A multi-basket cell collection and conveying mechanism is adopted, which synchronously drives multiple conveying components through a rotating power component, and sets a stop block on the synchronous belt to stop the cells, so as to realize the synchronous conveying of multiple baskets and prevent the cells from slipping.

Benefits of technology

It improves conveying efficiency and consistency, prevents solar cells from falling off during transport, simplifies equipment structure, and reduces costs.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224171857U_ABST
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Abstract

The utility model discloses a multi-basket sheet collecting and conveying mechanism which comprises a base, a plurality of conveying assemblies and a rotating power assembly arranged on the base. The conveying assembly comprises a linear driving piece arranged on the base in the Y direction, a driving wheel assembly fixedly arranged on the base and located at the rear end of the linear driving piece correspondingly, a driven wheel assembly fixedly arranged on the base and located at the front end of the linear driving piece, and a tensioning wheel assembly driven by the linear driving piece. The synchronous belt is in transmission connection with the driving wheel assembly, the driven wheel assembly and the tensioning wheel assembly, the tensioning wheel assembly comprises a moving frame driven by the linear driving piece, a plurality of tensioning wheels arranged on the moving frame and a clamping block arranged at the front end of the moving frame, and the top of the clamping block protrudes out of the conveying face of the synchronous belt. The device has the advantages that the driving rotation power assembly is arranged to synchronously drive the multiple conveying assemblies, the conveying efficiency and the conveying consistency can be improved, and the battery pieces can be effectively prevented from falling off in the conveying process of the synchronous belt by arranging the clamping blocks.
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Description

Technical Field

[0001] This utility model relates to the field of battery cell equipment, specifically a multi-basket cell collection and conveying mechanism. Background Technology

[0002] During the production process, solar cells are transported to baskets via conveyor lines for storage. The baskets store cells in a top-to-bottom sequence. Existing conveyor lines are telescopic structures, but each line can only connect to one basket. Different conveyor lines use different drive components, increasing costs and causing structural redundancy. Furthermore, on existing conveyor lines, solar cells easily slip off the front end of the line during transport, leading to damage.

[0003] Therefore, it is necessary to provide a multi-basket receiving and conveying mechanism. Summary of the Invention

[0004] This utility model provides a multi-basket wafer receiving and conveying mechanism, which effectively solves the problems of existing basket wafer receiving and conveying mechanisms that easily cause silicon wafers to slip during conveying and that can only use a single silicon wafer for conveying, resulting in low efficiency.

[0005] The technical solution adopted in this utility model is:

[0006] A multi-basket receiving and conveying mechanism includes a base, and several conveying components arranged along the X direction on the base, and a rotary power component arranged on the base for driving the several conveying components to convey synchronously. The conveying components include a linear drive member arranged along the Y direction on the base, a drive wheel assembly fixedly arranged on the base and located at the rear end of the linear drive member, a driven wheel assembly fixedly arranged on the base and located at the front end of the linear drive member, a tension wheel assembly driven by the linear drive member, and a synchronous belt that is pulverically connected to the drive wheel assembly, the driven wheel assembly, and the tension wheel assembly. The tension wheel assembly includes a movable frame driven by the linear drive member, several tension wheels arranged on the movable frame, and a locking block arranged at the front end of the movable frame, the top of which protrudes from the conveying surface of the synchronous belt.

[0007] Furthermore, the rotary drive assembly includes a motor, a rotating shaft, and a coupling connecting the rotating shaft and the motor output shaft, all mounted on the base. The drive wheel assembly includes a first seat fixedly mounted on the base, a drive wheel mounted on the first seat, and several first tension pulleys. The drive wheel is coaxially and fixedly connected to the rotating shaft.

[0008] Furthermore, the locking block includes a block body bolted to the moving frame, two suspension blocks symmetrically arranged at the front end of the block body, and two protrusions respectively arranged at the front end of the two suspension blocks, with the top of the protrusions protruding from the conveying surface of the synchronous belt.

[0009] Furthermore, the driven wheel assembly includes a second fixed seat on the base and a driven wheel on the second fixed seat. The tensioning wheel includes a first wheel at the front end of the moving frame and a second wheel at the rear end of the moving frame. The installation height of the first wheel is higher than the installation height of the second wheel, and the installation height of the second wheel is higher than the installation height of the driven wheel.

[0010] Furthermore, the linear drive component is a rodless cylinder, and the moving frame is fixedly connected to the output end of the rodless cylinder.

[0011] The beneficial effects of the utility model are as follows: by setting a driving rotation power component to synchronously drive multiple conveying components, the conveying efficiency and consistency can be improved. By setting a locking block, the battery cells can be effectively prevented from falling off during the synchronous belt conveying process. Attached Figure Description

[0012] Figure 1 This is an overall schematic diagram of the multi-basket receiving and conveying mechanism provided in the embodiments of this application.

[0013] Figure 2 This is a perspective view of the conveying component of the multi-basket receiving and conveying mechanism provided in the embodiments of this application.

[0014] Figure 3 A side view of the conveying assembly of the multi-basket receiving conveyor provided in an embodiment of this application.

[0015] Figure 4 This is a schematic diagram of the card block of the conveying component of the multi-basket receiving conveying mechanism provided in the embodiments of this application.

[0016] The components in the diagram are labeled as follows: 1. Base; 2. Conveying assembly; 3. Rotary power assembly; 21. Linear drive component; 22. Drive wheel assembly; 23. Driven wheel assembly; 24. Tensioner assembly; 25. Synchronous belt; 241. Moving frame; 242. Tensioner; 243. Locking block; 31. Motor; 32. Coupling; 2431. Block body; 2432. Suspension block; 2433. Protrusion; 221. Seat No. 1; 222. Tensioner No. 1; 223. Drive wheel; 231. Fixed seat No. 2; 232. Driven wheel; 2421. Wheel No. 1; 2422. Wheel No. 2. Detailed Implementation

[0017] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0018] like Figure 1 , Figure 2 and Figure 3As shown, the multi-basket receiving and conveying mechanism provided in the embodiment of this application includes a base 1, and further includes several conveying components 2 arranged along the X direction on the base 1, and a rotary power component 3 arranged on the base 1 for driving the several conveying components 2 to convey synchronously. The conveying components 2 include a linear drive member 21 arranged along the Y direction on the base 1, a drive wheel assembly 22 fixedly arranged on the base 1 and located at the rear end of the linear drive member 21, a driven wheel assembly 23 fixedly arranged on the base 1 and located at the front end of the linear drive member 21, a tension wheel assembly 24 driven by the linear drive member 21, and a synchronous belt 25 that is pulverizedly connected to the drive wheel assembly 22, the driven wheel assembly 23, and the tension wheel assembly 24. The tension wheel assembly 24 includes a movable frame 241 driven by the linear drive member 21, several tension wheels 242 arranged on the movable frame 241, and a locking block 243 arranged at the front end of the movable frame 241. The top of the locking block 243 protrudes from the conveying surface of the synchronous belt 25.

[0019] In actual use, the drive wheel assembly 22 is driven by the rotation power assembly 3, which in turn drives the synchronous belt 25 to transport the battery cells with the cooperation of the driven wheel assembly 23 and the tension wheel assembly 24. The moving frame 241 is driven to move in the front and back direction by the linear drive component 21. The battery cells are transported on the conveying surface of the synchronous belt 25. The battery cells are stopped by the locking block 243. When the moving frame 241 is driven by the linear drive component 21 to extend into the basket so that the battery cells are inserted into the collection position of the basket, the external drive mechanism drives the basket to lift (the battery cells are collected from top to bottom when the basket is collected). The linear drive component 21 drives the moving frame 241 to exit the basket.

[0020] In the above design, by setting a driving rotation power component 3 to synchronously drive multiple conveying components 2, the conveying efficiency and consistency can be improved. By setting a card block 243, the battery cells can be effectively prevented from falling off during the conveying process of the synchronous belt 25.

[0021] Specifically: such as Figure 1 As shown, the rotary drive assembly includes a motor 31 mounted on the base 1, a rotating shaft (not shown in the figure), and a coupling 32 connecting the rotating shaft and the output shaft of the motor 31. The drive wheel assembly 22 includes a first seat 221 fixedly mounted on the base 1, a drive wheel 223 mounted on the first seat 221, and several first tension pulleys 222. The drive wheel 223 is coaxially and fixedly connected to the rotating shaft.

[0022] In actual use, the motor 31 drives the coupling 32 and the shaft to rotate synchronously, which in turn drives the drive wheel 223 to rotate, thereby providing power to the synchronous belt 25 through the drive wheel 223.

[0023] In the above design, the structural design and specific implementation of the rotary drive component can effectively realize the synchronous drive of the synchronous belt 25 of multiple conveying components 2, improve the conveying efficiency and simplify the equipment structure.

[0024] Specifically: such as Figure 2 and Figure 4 As shown, the locking block 243 includes a block body 2431 bolted to the moving frame 241, two suspension blocks 2432 symmetrically arranged at the front end of the block body 2431, and two protrusions 2433 respectively arranged at the front end of the two suspension blocks 2432. The protrusions 2433 are provided with foam that abuts against the battery cells, and the top of the protrusions 2433 protrudes from the conveying surface of the synchronous belt 25.

[0025] In actual use, the front end of the battery cell abuts against the two protrusions 2433.

[0026] In the above design, the structural design and specific implementation of the card block 243 can effectively stop the battery cells and prevent them from slipping off the synchronous belt 25 along the conveying direction of the synchronous belt 25.

[0027] Specifically: such as Figure 2 and Figure 3 As shown, the driven wheel assembly 23 includes a second fixed base 231 mounted on the base 1 and a driven wheel 232 mounted on the second fixed base 231. The tensioning wheel 242 includes a first wheel 2421 mounted at the front end of the movable frame 241 and a second wheel 2422 mounted at the rear end of the movable frame 241. The installation height of the first wheel 2421 is higher than the installation height of the second wheel 2422, and the installation height of the second wheel 2422 is higher than the installation height of the driven wheel 232. One of the first tensioning pulleys 222 has the same installation height as the first wheel 2421.

[0028] In actual use, the synchronous belt 25 can be extended or retracted to change the transmission distance of the synchronous belt 25 by moving the mobile frame 241 back and forth.

[0029] The above design facilitates the extension and retraction of the conveyor line.

[0030] Specifically: the linear drive 21 is a rodless cylinder, and the moving frame 241 is fixedly connected to the output end of the rodless cylinder.

[0031] In the above design, a rodless cylinder is used as the linear drive component 21, which can effectively ensure the stable and rapid drive of the moving frame 241.

[0032] In further detail, it should be understood that the above description is only a specific embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A multi-basket flower collection and conveying mechanism, comprising a base (1), characterized in that: It also includes several conveying components (2) arranged along the X direction on the base (1), and a rotary power component (3) arranged on the base (1) for driving the several conveying components (2) to convey synchronously. The conveying components (2) include a linear drive (21) arranged along the Y direction on the base (1), a drive wheel assembly (22) fixedly arranged on the base (1) and located at the rear end of the linear drive (21), and a driven wheel assembly (23) fixedly arranged on the base (1) and located at the front end of the linear drive (21). 3) A tensioning pulley assembly (24) driven by a linear drive (21), and a synchronous belt (25) connected to the drive pulley assembly (22), the driven pulley assembly (23), and the tensioning pulley assembly (24). The tensioning pulley assembly (24) includes a movable frame (241) driven by the linear drive (21), a plurality of tensioning pulleys (242) disposed on the movable frame (241), and a locking block (243) disposed at the front end of the movable frame (241). The top of the locking block (243) protrudes from the conveying surface of the synchronous belt (25).

2. The multi-basket receiving and conveying mechanism according to claim 1, characterized in that: The rotating power assembly includes a motor (31) mounted on the base (1), a rotating shaft, and a coupling (32) connecting the rotating shaft and the output shaft of the motor (31). The drive wheel assembly (22) includes a first seat (221) fixedly mounted on the base (1), a drive wheel (223) mounted on the first seat (221), and several first tension pulleys (222). The drive wheel (223) is coaxially and fixedly connected to the rotating shaft.

3. The multi-basket receiving and conveying mechanism according to claim 1, characterized in that: The locking block (243) includes a block body (2431) bolted to the moving frame (241), two suspension blocks (2432) symmetrically arranged at the front end of the block body (2431) along the left and right, and two protrusions (2433) respectively arranged at the front end of the two suspension blocks (2432), the top of the protrusions (2433) protruding from the conveying surface of the synchronous belt (25).

4. The multi-basket receiving and conveying mechanism according to claim 1, characterized in that: The driven wheel assembly (23) includes a second fixed seat (231) on the base (1) and a driven wheel (232) on the second fixed seat (231). The tension wheel (242) includes a first wheel (2421) at the front end of the moving frame (241) and a second wheel (2422) at the rear end of the moving frame (241). The installation height of the first wheel (2421) is higher than the installation height of the second wheel (2422), and the installation height of the second wheel (2422) is higher than the installation height of the driven wheel (232).

5. The multi-basket flower collection and conveying mechanism according to claim 1, characterized in that: The linear drive (21) is a rodless cylinder, and the moving frame (241) is fixedly connected to the output end of the rodless cylinder.