Double-synchronous-cell core feeding mechanism
By using a dual synchronous belt cell feeding mechanism, the problem of high cost of feeding cells of different sizes is solved, achieving efficient and low-cost cell feeding and improving production efficiency.
Patent Information
- Application Number
- CN202423027203.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2034-12-06
AI Technical Summary
Existing cell loading mechanisms require the preparation of multiple carriers for cells of different sizes, resulting in high costs and reduced production efficiency.
The device employs a dual synchronous belt cell feeding mechanism, which forms a cell stacking compartment through the first and second synchronous belts. The width of the compartment is adjustable. Combined with the alignment component and positioning slot, it can accommodate the feeding and positioning of cells of different sizes.
It improves the efficiency of battery cell loading, adapts to different sized battery cells, reduces carrier costs, and enhances production efficiency.
Smart Images

Figure CN223521622U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of mechanical automation production of electric core, and specifically relates to a double synchronous belt electric core feeding mechanism. BACKGROUND
[0002] With the continuous development of society and the continuous progress of science and technology, mechanical automation production has become a development trend and gradually replaces traditional manual labor, injecting new power sources for the sustainable development of enterprises. Therefore, battery production and manufacturing enterprises also need to keep pace with the times, actively promote technological transformation, and vigorously develop mechanical automation production, so as to improve the "intelligent manufacturing" level of enterprises and realize the sustainable development of enterprises.
[0003] Before OCV testing, the electric core needs to be loaded, positioned, and then transferred to the OCV testing station. The existing feeding mechanism for loading the electric core is mostly a belt type flow line or a chain transmission structure. The electric core is transported on the conveying line, and some carriers are usually needed to place the electric core in a stacked manner, thereby improving the production efficiency. However, for electric cores of different sizes, several types of carriers need to be prepared, which is not conducive to improving the production efficiency of the manufacturer due to the high cost of the carriers. UTILITY MODEL CONTENT
[0004] The utility model aims at overcoming the defects of the prior art and providing a double synchronous belt electric core feeding mechanism that can adapt to electric cores of different sizes.
[0005] The technical scheme of the utility model is as follows:
[0006] A double synchronous belt electric core feeding mechanism includes a driving motor, a driving wheel, a driven wheel, a first synchronous belt, a second synchronous belt, a first jig, and a second jig. The first synchronous belt and the second synchronous belt are connected in transmission between the driving wheel and the driven wheel. The motor shaft of the driving motor is connected to the driving wheel through a transmission assembly. A plurality of first jigs are equidistantly arranged along the length direction of the synchronous belt on the first synchronous belt. A plurality of second jigs are equidistantly arranged along the length direction of the synchronous belt on the second synchronous belt. An electric core stacking bin is formed between the first jigs and the second jigs. The width of the electric core stacking bin can be adjusted by pulling the first synchronous belt and the second synchronous belt in reverse to correspond to the width of the electric core.
[0007] Further, the double synchronous belt electric core feeding mechanism further includes a push alignment assembly. The first synchronous belt and the second synchronous belt are divided into a feeding section and a positioning section in front and back along the electric core transportation direction. The push alignment assembly is arranged on one side of the feeding section and is used to push the stacked electric cores in the electric core stacking bin.
[0008] Further, the pushing assembly comprises a pushing cylinder, a pushing plate and pushing blocks, the cylinder shaft of the pushing cylinder is connected with the pushing plate, and a plurality of pushing blocks are equidistantly arranged on the pushing plate to correspond to a plurality of cell stacking bins.
[0009] Further, a limiting block is arranged on the top of the pushing block.
[0010] Further, the double synchronous belt cell feeding mechanism further comprises a first positioning assembly and a second positioning assembly, the first positioning assembly and the second positioning assembly are oppositely arranged on the two sides of the positioning section, a positioning groove adapted to the length of the cell is formed between the first positioning assembly and the second positioning assembly, and the positioning groove can simultaneously position a plurality of stacked cells.
[0011] Further, the width of the positioning groove can be adjusted by the first positioning assembly and the second positioning assembly according to the length of different cells.
[0012] Compared with the prior art, the utility model has the advantages that the utility model discloses two synchronous belts are oppositely arranged, a plurality of first jigs are equidistantly arranged on the first synchronous belt along the length direction of the synchronous belt, a plurality of second jigs are equidistantly arranged on the second synchronous belt along the length direction of the synchronous belt, a cell stacking bin is formed between the first jig and the second jig, cells are placed in the cell stacking bin in a stacking mode to improve work efficiency, the width of the cell stacking bin can be adjusted by reversely pulling the first synchronous belt and the second synchronous belt to correspond to the width of the cell to adapt to cells of different sizes, and the adaptation range is wide. BRIEF DESCRIPTION OF DRAWINGS
[0013] In order to more clearly illustrate the technical scheme in the embodiments of the utility model, the following will briefly introduce the drawings needed to be used in the embodiments or prior art description, and obviously, the drawings in the following description are only some embodiments of the utility model, and for those skilled in the art, other drawings can be obtained according to these drawings without paying creative labor.
[0014] Figure 1 It is a structural schematic diagram of the double synchronous belt cell feeding mechanism provided by the utility model. DETAILED DESCRIPTION
[0015] In order to make the purpose, technical scheme and advantages of the utility model clearer and more apparent, the utility model will be further described in detail below in combination with the drawings and examples.
[0016] In order to illustrate the technical scheme of the utility model, the following will be described through specific examples.
[0017] Embodiment
[0018] Please refer to Figure 1 The embodiment provides a double synchronous belt electric core feeding mechanism, which comprises a driving motor 1, a driving wheel 2, a driven wheel 3, a first synchronous belt 4, a second synchronous belt 5, a first jig 6, a second jig 7, a push alignment assembly 8, a first positioning assembly 9 and a second positioning assembly 10.
[0019] The first synchronous belt 4 and the second synchronous belt 5 are symmetrically and transmissionally connected between the driving wheel 2 and the driven wheel 3, the motor shaft of the driving motor 1 is connected with the driving wheel 2 through a transmission assembly, and the driving motor 1 drives the first synchronous belt 4 and the second synchronous belt 5 to synchronously rotate through the driving wheel 2.
[0020] A plurality of first jigs 6 are equidistantly arranged on the first synchronous belt 4 along the length direction of the synchronous belt, a plurality of second jigs 7 are equidistantly arranged on the second synchronous belt 5 along the length direction of the synchronous belt, and the first jigs 6 and the second jigs 7 form an electric core stacking bin, the electric core is placed in the electric core stacking bin in a stacking mode, a plurality of stacked electric cores can be fed at one time, the working efficiency is improved, and the width of the electric core stacking bin can be adjusted by reversely pulling the first synchronous belt 4 and the second synchronous belt 5 to correspond to the width of the electric core, the width of the electric core stacking bin can be adjusted to adapt to electric cores of different sizes, and the adaptation range is wide.
[0021] The first synchronous belt 4 and the second synchronous belt 5 are divided into a feeding section and a positioning section in front and back along the electric core conveying direction.
[0022] The push alignment assembly 8 is arranged on one side of the feeding section and is used for pushing and aligning the stacked electric cores in the electric core stacking bin, and comprises a push cylinder, a push plate 81, a push block 82 and a limiting block 83, the cylinder shaft of the push cylinder is connected with the push plate 81, a plurality of push blocks 82 are equidistantly arranged on the push plate 81 to correspond to a plurality of electric core stacking bins, the top of the push block 82 extends to the limiting block 83, the push cylinder drives the plurality of push blocks 82 to push and align the stacked electric cores in the plurality of electric core stacking bins through the push plate 81, and the height is limited through the limiting block 83 on the top.
[0023] The first positioning assembly 9 and the second positioning assembly 10 are arranged on the two sides of the positioning section in a left-right opposite manner, a positioning groove adapted to the length of the battery cell is formed between the first positioning assembly 9 and the second positioning assembly 10, the positioning groove can simultaneously position a plurality of stacked battery cells, and the working efficiency is further improved, and after positioning, the battery cell is waited for being sucked by the battery cell sucking mechanism, and the width of the positioning groove can be adjusted by the first positioning assembly 9 and the second positioning assembly 10 according to the length of different battery cells.
[0024] The above are only the preferred embodiments of the present application and are not used to limit the present application, and any modification, equivalent replacement and improvement within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A dual synchronous belt electric core feed mechanism characterized by: The application relates to a double-synchronous-belt battery cell feeding mechanism, which comprises a driving motor, a driving wheel, a driven wheel, a first synchronous belt, a second synchronous belt, a first jig and a second jig, the first synchronous belt and the second synchronous belt are connected in transmission between the driving wheel and the driven wheel, the motor shaft of the driving motor is connected with the driving wheel through a transmission assembly, a plurality of first jigs are equidistantly arranged on the first synchronous belt along the length direction of the synchronous belt, a plurality of second jigs are equidistantly arranged on the second synchronous belt along the length direction of the synchronous belt, an electric cell stacking bin is formed between the first jigs and the second jigs, and the width of the electric cell stacking bin can be adjusted by reversely pulling the first synchronous belt and the second synchronous belt to correspond to the width of the electric cell.
2. A dual synchronous belt electric core feed mechanism according to claim 1, characterized in that: The double-synchronous-belt battery cell feeding mechanism further comprises a pushing assembly, the first synchronous belt and the second synchronous belt are divided into a feeding section and a positioning section from front to back along the electric cell conveying direction, the pushing assembly is arranged on one side of the feeding section and is used for pushing the stacked electric cells in the electric cell stacking bin.
3. A dual synchronous belt electric core feed mechanism according to claim 2, characterized in that: The pushing assembly comprises a pushing cylinder, a pushing plate and pushing blocks, the cylinder shaft of the pushing cylinder is connected with the pushing plate, and a plurality of pushing blocks are equidistantly arranged on the pushing plate to correspond to a plurality of electric cell stacking bins.
4. A dual synchronous belt electric core feed mechanism according to claim 3, characterized in that: The top of the pushing block is provided with a limiting block.
5. A dual synchronous belt electric core feed mechanism according to claim 2, characterized in that: The double-synchronous-belt battery cell feeding mechanism further comprises a first positioning assembly and a second positioning assembly, the first positioning assembly and the second positioning assembly are arranged on the two sides of the positioning section in left and right opposition, a positioning groove which is adapted to the length of the electric cell is formed between the first positioning assembly and the second positioning assembly, and the positioning groove can simultaneously position a plurality of stacked electric cells.
6. A dual synchronous belt electric core feed mechanism according to claim 5, characterized in that: The width of the positioning groove can be adjusted according to the length of different electric cells through the first positioning assembly and the second positioning assembly.