Conveying and correcting mechanism for battery piece production

Through the design of the transmission correction mechanism and the use of servo motors and limit mechanisms, the problems of directional deviation and jamming of battery cells caused by shaking during transportation are solved, thus achieving stable transportation and efficient production of battery cells.

CN223414058UActive Publication Date: 2025-10-03RUNMA GUANGNENG TECH (JINHUA) CO LTD
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Patent Information

Application Number
CN202422583989.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-25
Publication Date
2025-10-03
Estimated Expiration
2034-10-25

AI Technical Summary

Technical Problem

When existing battery cells are transported on an automated loader, the increased weight of the conveyor belt causes vibration, which can cause the battery cells to shift in direction and become stuck, affecting the loading process and resulting in lower production capacity.

Method used

A transmission correction mechanism is adopted, and the transmission shaft and active roller driven by the servo motor drive the conveyor belt to rotate. Combined with the connecting column and limit bar of the limit mechanism, the positioning and limitation of the battery cells are realized, ensuring transportation stability and adapting to battery cells of different sizes.

Benefits of technology

The stability of the battery cells during transportation is improved, the directional deviation and jamming of the battery cells due to shaking are reduced, the adaptability of the transportation device is enhanced, and the production efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of battery piece manufacturing, in particular to a conveying and correcting mechanism for battery piece production, which comprises a conveying device, a guide plate is fixedly mounted in the conveying device, and a conveying mechanism is fixedly mounted at one end of the conveying device and is rotatably connected to the inner wall of the conveying device. The top end of the conveying device is slidably connected with a limiting mechanism, penetrates through the conveying device to one end of the guide plate and is located above the conveying mechanism. According to the battery piece conveying device, the battery pieces can be conveyed and positioned on the conveying device through mutual cooperation of internal parts of the conveying mechanism, so that the stability of the battery pieces in the conveying process is improved, limiting operation of the battery pieces of different sizes can be completed through mutual cooperation of internal parts of the limiting mechanism, and the working efficiency is improved. The transport device can transport battery pieces of different sizes conveniently, and damage to the surfaces of the battery pieces caused by direct contact between the battery pieces and the guide plates due to shaking is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of battery slice manufacturing, in particular to a transmission and correction mechanism for battery slice production. Background Art

[0002] Solar photovoltaic modules, composed of multiple solar cells connected in series, are the core component of solar power generation systems. With evolving market demands, the development and improvement of photovoltaic technology, and rising land costs, the development of high-efficiency cells to increase power generation per unit area has become a major focus and demand in this field. However, the processing and manufacturing of cells requires extensive transport and handling, necessitating the use of transportation mechanisms.

[0003] When existing battery cells are loaded on an automatic loading machine, they are placed on a conveyor belt and transported along the conveyor belt. When the battery cells are placed on the conveyor belt, the weight on the conveyor belt increases, causing the conveyor belt to vibrate due to elasticity, resulting in the battery cells being deviated in direction during transportation. As a result, the battery cells are stuck with the edge of the transport device, which affects the loading work and results in low production capacity.

[0004] Therefore, it is necessary to propose a transmission correction mechanism for battery production to solve the above problems. Utility Model Content

[0005] The purpose of the present utility model is to provide a conveying and correction mechanism for battery cell production, which can complete the transportation positioning of the battery cell on the transportation device through the mutual cooperation between the internal parts of the transportation mechanism, thereby improving the stability of the battery cell during transportation; and can complete the limiting operation of battery cells of different sizes through the mutual cooperation between the internal parts of the limiting mechanism, so that the transportation device can meet the transportation operation of battery cells of different sizes, improve the practicality of the transportation device, and solve the problem in the prior art that the weight on the conveyor belt increases, causing the conveyor belt to shake due to elasticity, thereby causing the battery cell to deviate in direction during transportation, thereby causing the battery cell to be stuck with the edge of the transportation device, thereby affecting the loading work and causing the problem of low production capacity.

[0006] In order to achieve the above-mentioned purpose, the utility model provides the following technical solutions: a conveying and correction mechanism for battery cell production, comprising a transport device, a guide plate installed and fixed inside the transport device, a transport mechanism installed and fixed at one end of the transport device, and rotatably connected to the inner wall of the transport device, the top end of the transport device is slidably connected to a limiting mechanism, and passes through the transport device to one end of the guide plate, and is located above the transport mechanism.

[0007] Preferably, the transport mechanism includes a servo motor, which is installed and fixed on one side of one end of the transport device. One end of the servo motor is rotatably connected to a transmission shaft and extends into the interior of the transport device. The end of the transmission shaft away from the servo motor is rotatably connected to an active roller and is located inside the transport device. The inner wall of the transport device is rotatably connected to an auxiliary roller on a side away from the active roller. The outer walls of the auxiliary roller and the active roller are sleeved with a transport belt and are located on the inner wall of the transport device and below the guide plate. The guide plate is connected to multiple guide shafts for one rotation.

[0008] Preferably, the limiting mechanism includes a connecting column, and there are multiple connecting columns, and the multiple connecting columns are slidably connected to the top of the transport device and pass through the interior of the transport device. Both ends of the connecting column are slidably connected to C-shaped blocks and pass through the connecting column to the interior of the transport device. The interior of the connecting column is connected and fixed with a contraction spring and is located at one end of the C-shaped block. One end of the connecting column is rotatably connected to a support column and is located inside the transport device. The side of the support column away from the connecting column is connected to a sliding block and is slidably connected to the interior of the transport device. One end of the sliding block is connected and fixed with a telescopic column, and the outer wall of the telescopic column is sleeved with a telescopic spring and is located at one end of the sliding block. The outer wall of the telescopic spring is connected and fixed to a limiting strip and passes through the transport device to the outer wall of the guide plate.

[0009] Preferably, a movable groove matching the conveyor belt is provided inside the conveyor device, a guide groove matching the battery sheet is provided on the outer wall of the conveyor belt, and the guide shaft is rotatably connected to the guide plate through a bearing.

[0010] Preferably, a movable groove matching the connecting column is provided at the top of the transport device, a plurality of fixed grooves matching the C-shaped blocks are provided inside the transport device, and a scale located at one end of the connecting column is provided at the top of the transport device.

[0011] Preferably, both ends of the support column are rotatably connected to the connecting column and the sliding block through a rotating shaft, a limiting sliding groove matching the sliding block is provided inside the transport device, and the limiting strip is made of elastic soft rubber.

[0012] In the above technical solution, the technical effects and advantages provided by the utility model are:

[0013] 1. By starting the servo motor, the servo motor drives the transmission shaft to rotate, and the rotation of the transmission shaft drives the active roller to rotate. The active roller drives the auxiliary roller to rotate through the conveyor belt, so that the active roller and the auxiliary roller drive the conveyor belt to rotate on the inner wall of the conveyor. At the same time, after the battery cell is placed on the conveyor belt, the tilted battery cell contacts the guide shaft, causing the guide shaft to rotate and drive the battery cell to rotate. After the battery cell rotates, the guide strip on the surface of the battery cell fits into the guide groove on the surface of the conveyor belt, which can improve the stability of the battery cell on the conveyor belt and reduce the tilt of the battery cell due to the vibration of the conveyor belt.

[0014] 2. By pressing the C-shaped block on the connecting column, the C-shaped block squeezes the contraction spring to move, so that the C-shaped block is removed from the inside of the transport device, and the fixation of the connecting column is released. Then, the connecting column is pushed to slide on the transport device, so that the connecting column moves and drives the support column to move, so that the support column rotates through the bearing to push the sliding block to slide from the inside of the transport device, so that the sliding block drives the telescopic column to move, and the telescopic column drives the limit bar to move out from the inside of the guide plate, so that the limit bar limits the battery cells of different sizes, so that when battery cells of different sizes are transported and moved on the conveyor belt, they are blocked and limited by the limit bar, and the telescopic spring is squeezed and contracted by the telescopic column to absorb energy, thereby reducing the surface damage of the battery cells caused by direct contact with the guide plate due to shaking of battery cells of different sizes, thereby improving the stability of the battery cells during transportation and enabling the transport device to meet the transportation requirements of battery cells of different sizes. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments described in the present invention. For ordinary technicians in this field, other drawings can also be obtained based on these drawings.

[0016] Figure 1 It is a schematic diagram of the overall structure of the utility model;

[0017] Figure 2 This is a schematic cross-sectional view of the transport device of the present invention;

[0018] Figure 3 This is a schematic cross-sectional structural diagram of the guide plate of the present utility model;

[0019] Figure 4 For the utility model Figure 3 A in the middle is an enlarged structural diagram;

[0020] Figure 5 For the utility model Figure 3 Enlarged structural diagram at point B in the middle.

[0021] Description of reference numerals:

[0022] 1. Transport device; 101. Guide plate; 2. Transport mechanism; 201. Servo motor; 202. Drive shaft; 203. Active roller; 204. Auxiliary roller; 205. Transport belt; 206. Guide shaft; 3. Limiting mechanism; 301. Connecting column; 302. C-shaped block; 303. Contraction spring; 304. Support column; 305. Sliding block; 306. Telescopic column; 307. Telescopic spring; 308. Limiting bar. DETAILED DESCRIPTION

[0023] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.

[0024] The utility model provides Figure 1-5 The shown conveying and correction mechanism for battery cell production includes a transport device 1, a guide plate 101 is fixedly installed inside the transport device 1, a transport mechanism 2 is fixedly installed at one end of the transport device 1, and is rotatably connected to the inner wall of the transport device 1, and the top of the transport device 1 is slidably connected to the limiting mechanism 3, which passes through the transport device 1 to one end of the guide plate 101 and is located above the transport mechanism 2. Through the mutual cooperation between the internal parts of the transport mechanism 2, the transport positioning of the battery cell on the transport device 1 can be completed, thereby improving the stability of the battery cell during transportation. Through the mutual cooperation between the internal parts of the limiting mechanism 3, the limiting operation of battery cells of different sizes can be completed, which makes it convenient for the transport device 1 to meet the transportation operation of battery cells of different sizes, thereby improving the practicality of the transport device 1.

[0025] Refer to the instruction manual Figure 1-5 The transport mechanism 2 includes a servo motor 201, which is installed and fixed on one side of one end of the transport device 1. One end of the servo motor 201 is rotatably connected to a transmission shaft 202 and passes through the interior of the transport device 1. The transmission shaft 202 is rotatably connected to an active roller 203 at one end away from the servo motor 201 and is located inside the transport device 1. An auxiliary roller 204 is rotatably connected to the side of the inner wall of the transport device 1 away from the active roller 203. The outer walls of the auxiliary roller 204 and the active roller 203 are sleeved with a transport belt 205, which is located on the inner wall of the transport device 1 and below the guide plate 101. A plurality of guide shafts 206 are connected to each rotation of the guide plate 101. Through the mutual cooperation between the internal parts of the transport mechanism 2, the transport positioning of the battery cell on the transport device 1 can be completed, thereby improving the stability of the battery cell during transportation.

[0026] Refer to the instruction manual Figure 1-5The limiting mechanism 3 includes a connecting column 301, and there are multiple connecting columns 301. The multiple connecting columns 301 are slidably connected to the top of the transport device 1 and pass through the interior of the transport device 1. The two ends of the connecting column 301 are slidably connected to the C-shaped block 302, and pass through the connecting column 301 to the interior of the transport device 1. The internal connection of the connecting column 301 is fixed with a contraction spring 303, and is located at one end of the C-shaped block 302. One end of the connecting column 301 is rotatably connected to the support column 304 and is located inside the transport device 1. The support column 304 is connected to the side away from the connecting column 301. There is a sliding block 305, which is slidably connected to the inside of the transport device 1. One end of the sliding block 305 is connected and fixed with a telescopic column 306. The outer wall of the telescopic column 306 is sleeved with a telescopic spring 307 and is located at one end of the sliding block 305. The outer wall of the telescopic spring 307 is connected and fixed to a limiting strip 308, and passes through the transport device 1 to the outer wall of the guide plate 101. Through the mutual cooperation between the internal parts of the limiting mechanism 3, the limiting operation of battery cells of different sizes can be completed, which makes it convenient for the transport device 1 to meet the transportation operation of battery cells of different sizes, thereby improving the practicality of the transport device 1.

[0027] Refer to the instruction manual Figure 1-5 The interior of the transport device 1 is provided with a movable groove that matches the transport belt 205, the outer wall of the transport belt 205 is provided with a guide groove that matches the battery cell, and the guide shaft 206 is rotatably connected to the guide plate 101 through a bearing. The outer wall of the transport belt 205 is provided with a guide groove that matches the battery cell, which facilitates the fit between the guide strip on the surface of the battery cell and the guide groove on the surface of the transport belt 205, thereby improving the stability of the battery cell on the transport belt 205.

[0028] Refer to the instruction manual Figure 1-5 The top of the transport device 1 is provided with a movable groove that matches the connecting column 301, and the inside of the transport device 1 is provided with multiple fixed grooves that match the C-shaped block 302. The top of the transport device 1 is provided with a scale located at one end of the connecting column 301. The top of the transport device 1 is provided with a scale located at one end of the connecting column 301, which facilitates the adjustment of the connecting column 301. The scale can ensure the stability of multiple connecting columns 301 during adjustment.

[0029] Refer to the instruction manual Figure 1-5 The two ends of the support column 304 are rotatably connected to the connecting column 301 and the sliding block 305 through a rotating shaft. A limiting slide groove matching the sliding block 305 is opened inside the transport device 1. The material of the limiting strip 308 is elastic soft rubber. The material of the limiting strip 308 is elastic soft rubber, so that when the guide plate 101 contacts the battery cell, it will not cause the battery cell to be broken around and cause the battery cell to be unqualified.

[0030] This utility works as follows:

[0031] Refer to the instruction manual Figure 1-5 By starting the servo motor 201, the servo motor 201 drives the transmission shaft 202 to rotate, and the rotation of the transmission shaft 202 drives the active roller 203 to rotate. The active roller 203 drives the auxiliary roller 204 to rotate through the conveyor belt 205, so that the active roller 203 and the auxiliary roller 204 drive the conveyor belt 205 to rotate on the inner wall of the conveyor device 1. At the same time, after the battery cell is placed on the conveyor belt 205, the tilted battery cell contacts the guide shaft 206, so that the guide shaft 206 rotates and drives the battery cell to rotate, so that the guide strip on the surface of the battery cell after rotation fits into the guide groove on the surface of the conveyor belt 205, which can improve the stability of the battery cell on the conveyor belt 205 and reduce the tilt of the battery cell due to the vibration of the conveyor belt 205;

[0032] Refer to the instruction manual Figure 1-5 By pressing the C-shaped block 302 on the connecting column 301, the C-shaped block 302 squeezes the contraction spring 303 to contract and move, so that the C-shaped block 302 is removed from the inside of the transport device 1, and the fixation of the connecting column 301 is released. Then, the connecting column 301 is pushed to slide on the transport device 1, so that the connecting column 301 moves and drives the support column 304 to move, so that the support column 304 rotates through the bearing to push the sliding block 305 to slide from the inside of the transport device 1, so that the sliding block 305 drives the telescopic column 306 to move, so that the telescopic column 306 drives The limit bar 308 is moved out from the inside of the guide plate 101, so that the limit bar 308 can limit the battery cells of different sizes. When the battery cells of different sizes are transported and moved on the conveyor belt 205, they are blocked and limited by the limit bar 308, and the telescopic spring 307 is squeezed by the telescopic column 306 to absorb energy, thereby reducing the surface damage of the battery cells caused by direct contact between the battery cells of different sizes and the guide plate 101 due to shaking, thereby improving the stability of the battery cells during transportation and enabling the transport device 1 to meet the transportation of battery cells of different sizes.

[0033] The above description is merely illustrative of certain exemplary embodiments of the present invention. It goes without saying that those skilled in the art will be able to modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and description are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A conveying and correction mechanism for producing battery cells, comprising a transport device (1), characterized in that: A guide plate (101) is fixedly installed inside the transport device (1), a transport mechanism (2) is fixedly installed at one end of the transport device (1) and is rotatably connected to the inner wall of the transport device (1), and the top end of the transport device (1) is slidably connected to a limiting mechanism (3), which passes through the transport device (1) to one end of the guide plate (101) and is located above the transport mechanism (2).

2. The conveying and correction mechanism for battery cell production according to claim 1, characterized in that: The transport mechanism (2) includes a servo motor (201), the servo motor (201) is fixedly mounted on one side of one end of the transport device (1), one end of the servo motor (201) is rotatably connected to a transmission shaft (202) and extends into the interior of the transport device (1), the end of the transmission shaft (202) away from the servo motor (201) is rotatably connected to a driving roller (203) and is located inside the transport device (1), the side of the inner wall of the transport device (1) away from the driving roller (203) is rotatably connected to an auxiliary roller (204), the outer walls of the auxiliary roller (204) and the driving roller (203) are sleeved with a transport belt (205), and are located on the inner wall of the transport device (1) and below the guide plate (101), and each rotation of the guide plate (101) is connected to a plurality of guide shafts (206).

3. The conveying and correction mechanism for battery cell production according to claim 1, characterized in that: The limiting mechanism (3) includes a connecting column (301), and there are multiple connecting columns (301). The multiple connecting columns (301) are slidably connected to the top of the transport device (1) and pass through the interior of the transport device (1). Both ends of the connecting column (301) are slidably connected to C-shaped blocks (302), which pass through the connecting column (301) to the interior of the transport device (1). A contraction spring (303) is fixed to the interior of the connecting column (301) and is located at one end of the C-shaped block (302). One end of the connecting column (301) is rotatably connected to a support The support column (304) is located inside the transport device (1); a sliding block (305) is connected to the side of the support column (304) away from the connecting column (301) and is slidably connected to the inside of the transport device (1); one end of the sliding block (305) is connected and fixed with a telescopic column (306); the outer wall of the telescopic column (306) is sleeved with a telescopic spring (307) and is located at one end of the sliding block (305); the outer wall of the telescopic spring (307) is connected and fixed with a limit strip (308) and passes through the transport device (1) to the outer wall of the guide plate (101).

4. The conveying and correction mechanism for battery cell production according to claim 2, characterized in that: The interior of the transport device (1) is provided with a movable groove matching the transport belt (205), the outer wall of the transport belt (205) is provided with a guide groove matching the battery sheet, and the guide shaft (206) is rotatably connected to the guide plate (101) via a bearing.

5. The conveying and correction mechanism for battery cell production according to claim 3, characterized in that: The top of the transport device (1) is provided with a movable groove matching the connecting column (301), the interior of the transport device (1) is provided with a plurality of fixed grooves matching the C-shaped blocks (302), and the top of the transport device (1) is provided with a scale located at one end of the connecting column (301).

6. The conveying and correction mechanism for battery cell production according to claim 3, characterized in that: The two ends of the support column (304) are rotatably connected to the connecting column (301) and the sliding block (305) through a rotating shaft. A limiting sliding groove matching the sliding block (305) is provided inside the transport device (1), and the material of the limiting strip (308) is elastic soft rubber.