Battery reversing and feeding device
By using the reversing and docking components of the reversing feeding device, the battery is automatically flipped and positioned during the conveying process, solving the problem of battery information deviation and improving battery processing efficiency.
Patent Information
- Application Number
- CN202520155694.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2035-01-23
AI Technical Summary
In existing technologies, the battery cannot be aligned with the transport position during the transport and flipping process, resulting in information deviation, affecting battery processing efficiency, and requiring manual intervention.
The device employs a reversing feeding mechanism, which includes a reversing assembly, a docking assembly, and a transfer unit. The battery is driven to flip from a parallel state to a vertical state by a power unit, and sensors and a top moving block are used to realize the individual delivery and corresponding transfer position of the battery.
This achieves precise correspondence between the battery and its location during transportation, improves battery information tracking efficiency, reduces manual intervention, and increases battery processing efficiency.
Smart Images

Figure CN223659001U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of battery processing technology, and in particular to a battery switching feeding device. Background Technology
[0002] A battery is a device that converts chemical energy into electrical energy. It contains an electrolyte solution and metal electrodes, and is housed in a cup, tank, or other container or composite container that generates an electric current. It has a positive and a negative electrode. With technological advancements, the term "battery" now generally refers to any small device capable of generating electrical energy.
[0003] However, during the implementation of the relevant technical solutions, at least the following technical problems were found: During the battery feeding process, the batteries need to be flipped from parallel to the ground to perpendicular to the ground to facilitate the next operation. However, most existing methods of manually flipping batteries involve conveying multiple groups of batteries together on a conveyor belt to push them forward continuously and flip them. However, this method of continuously flipping batteries together is not only labor-intensive, but also affects the processing efficiency due to the large number of batteries being processed. It also makes it difficult to ensure that the battery position corresponds to the conveyor position, resulting in a mismatch between the scanned information and the battery information, thus causing deviations in the battery information. Therefore, we propose a battery reversing and feeding device. Summary of the Invention
[0004] This application provides a battery reversing and feeding device that solves the problem in the prior art where the battery cannot be aligned with the conveying position during the flipping process, resulting in deviations in battery information and hindering better tracking of battery information. This leads to the need for manual methods, which affects battery processing efficiency. The device enables batteries to be transported individually and aligned with the conveying position, forming a one-to-one correspondence. This facilitates the tracking of battery information, automatic flipping, and adjustment of battery status, thereby improving battery processing efficiency.
[0005] This application provides a battery reversing and feeding device, including a workbench and a first conveyor belt disposed on one side of the workbench, and further including: a second conveyor belt disposed on one side of the first conveyor belt for sequentially conveying and processing batteries; a reversing and feeding unit disposed between the first and second conveyor belts for reversing and transferring batteries; the reversing and feeding unit includes: a reversing component disposed on the workbench and located between the first and second conveyor belts for receiving batteries on the first conveyor belt and flipping them from a parallel state to a vertical state; a docking component disposed on one side of the reversing component for receiving and re-transferring the vertically positioned batteries, and a pushing component on the opposite side of the docking component and the reversing component; and a transfer unit for moving the vertically positioned batteries and re-feeding them onto the second conveyor belt.
[0006] Furthermore, the reversing assembly includes: a guide plate, disposed at one end of the first conveyor belt, for feeding batteries; a fixing frame, disposed on one side of the guide plate and mounted on the workbench; and a reversing plate, rotatably disposed on one side of the guide plate, and the reversing plate is driven by a first power device, wherein the reversing plate has feeding grooves equidistantly opened in the circumferential direction.
[0007] Furthermore, the docking assembly includes: a sensor, which is mounted on one side of the workbench via a connecting plate and the connecting plate is located on the side opposite to the fixed frame; the sensor is used to detect the sensing battery; and the connecting plate has an clearance groove at the position corresponding to the material conveying trough; and a jacking block, which is driven by a second power device to move the jacking block to push the battery to be received by the transfer unit.
[0008] Furthermore, the transfer unit includes: a conveying plate, disposed on one side of the fixed frame, for restricting the vertical movement of the battery; a moving plate, connected to the conveying plate, and a third power device is fixedly connected to one end of the moving plate; and an adsorption block, fixedly connected to the output end of the third power device, and the surface of the adsorption block is provided with an arc surface that matches the arc surface of the battery.
[0009] Furthermore, the actuating block is T-shaped and matches the conveying trough.
[0010] Furthermore, the actuating component includes a actuating block, and one side of the actuating block is driven by a fourth power device.
[0011] The technical solution provided in this application has at least the following technical effects or advantages:
[0012] This application employs a reversing conveyor unit, which, after the battery is conveyed by the first conveyor belt, is rotated and received by the reversing plate, flipping the battery from a parallel state to a vertical state, thus achieving battery reversal. Furthermore, through the cooperation of the jacking block and the sensor, the battery can be moved from a vertical state again. Simultaneously, the adsorption block adsorbs and moves the battery, allowing it to fall onto the second conveyor belt. Therefore, it effectively solves the problem in the prior art where the battery cannot correspond to the conveying position during the conveying and flipping process, leading to deviations in battery information and hindering better tracking. This application achieves individual battery conveying and a one-to-one correspondence with the conveying position, facilitating battery information tracking. It also solves the problem in the prior art where manual battery flipping during conveying affects battery processing efficiency, achieving automated flipping and adjustment of the battery's state during conveying, thereby improving battery processing efficiency. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the overall structure of this application;
[0014] Figure 2 This is a structural schematic diagram of the entire application from another angle;
[0015] Figure 3 This is a partial structural diagram of the feed-up unit in this application;
[0016] Figure 4 This is a schematic diagram of the structure of the explosion of the feed-up unit in this application;
[0017] Figure 5 This is a structural schematic diagram of the explosion at another angle in the feed-up unit section of this application;
[0018] Figure 6 For this application Figure 2 Enlarged structural diagram at point A in the middle.
[0019] In the diagram: 100, workbench; 10, first conveyor belt; 20, second conveyor belt; 1, reversing feeding unit; 11, reversing assembly; 111, guide plate; 112, fixed frame; 113, reversing plate; 114, feeding chute; 12, docking assembly; 121, sensor; 122, connecting plate; 123, clearance groove; 124, jacking block; 2, transfer unit; 21, conveying plate; 22, moving plate; 23, adsorption block; 3, pushing block. Detailed Implementation
[0020] This application discloses a battery reversing feeding device. The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0021] To better understand the above technical solution, the following will provide a detailed explanation of the above technical solution in conjunction with the accompanying drawings and specific implementation methods.
[0022] Reference Figures 1-3 A battery reversing and feeding device includes a workbench 100 and a first conveyor belt 10 disposed on one side of the workbench 100. It also includes a second conveyor belt 20 disposed on one side of the first conveyor belt 10 for sequentially conveying and processing batteries. A reversing and feeding unit 1 for reversing and transferring batteries is provided between the first conveyor belt 10 and the second conveyor belt 20. The reversing and feeding unit 1 includes a reversing component 11 disposed on the workbench 100 and located between the first conveyor belt 10 and the second conveyor belt 20, for receiving batteries on the first conveyor belt 10 and flipping them from a parallel state to a vertical state. A docking component 12 is provided on one side of the reversing component 11 for receiving and re-transferring the vertically positioned batteries. Pushing components are provided on the opposite side of the docking component 12 and the reversing component 11. A transfer unit 2 is provided on one side of the reversing component 11 for moving the vertically positioned batteries and re-feeding them onto the second conveyor belt 20.
[0023] It should be noted that the first conveyor belt 10 is used for cyclic conveying through a gear transmission device, and a limit groove is provided on the conveyor belt to limit and fix the battery.
[0024] The second conveyor belt 20 has a positioning groove at the bottom, which can be used to vertically transport batteries. These are all existing technologies and will not be elaborated on here.
[0025] After being conveyed by the first conveyor belt 10, the battery is first flipped by the reversing component 11, turning it from a parallel state to a vertical state, thus completing the reversing operation. Then, it is conveyed by the docking component 12 and the transfer unit 2 in sequence to be transported onto the second conveyor belt 20, thus automatically completing the reversing of the battery.
[0026] Reference Figures 2-6The reversing assembly 11 includes a guide plate 111 at one end of the first conveyor belt 10 for feeding batteries. A fixed frame 112 is installed on the workbench 100 on one side near the guide plate 111. A reversing plate 113 is rotatably provided on one side of the guide plate 111. The reversing plate 113 is driven by a first power device. The reversing plate 113 has feeding grooves 114 equidistantly opened in the circumferential direction. The first power device is preferably a motor. When the first power device is started, it can drive the reversing plate 113 to rotate 90 degrees in sequence, thereby causing the feeding grooves 114 to drive the batteries to rotate 90 degrees from a parallel state to a vertical state.
[0027] The docking assembly 12 includes a sensor 121 mounted on one side of the workbench 100 via a mounting plate. A connecting plate 122 is provided on the opposite side of the connecting plate 122. The sensor 121 is used to detect the sensing battery. The connecting plate 122 has a clearance groove 123 at the position corresponding to the material conveying trough 114. A push block 124 is mounted on the connecting plate 122. The push block 124 is driven by a second power device, preferably a cylinder. The push block 124 is used to move the push block 124 to push the battery to be received by the transfer unit 2. The push block 124 is T-shaped and matches the conveying trough.
[0028] The transfer unit 2 includes a conveying plate 21 located on one side of the fixed frame 112 for restricting the vertical movement of the battery. The conveying plate 21 is connected to a moving plate 22, and a third power device is fixedly connected to one end of the moving plate 22. The third power device is preferably a cylinder. An adsorption block 23 is fixedly connected to the output end of the third power device. The surface of the adsorption block 23 is provided with an arc surface that matches the arc surface of the battery. The arc surface allows the adsorption block 23 to better fit the battery, thereby improving the adsorption effect.
[0029] The pushing component includes a pushing block 3, and one side of the pushing block 3 is driven by a fourth power device, preferably a cylinder.
[0030] How this application works:
[0031] The batteries are conveyed horizontally on the first conveyor belt 10. After being conveyed to the guide plate 111, they are unloaded by the guide plate 111 and then unloaded into the conveying groove of the reversing plate 113. Then, the pushing block 3 pushes the battery into the conveying groove. At this time, the reversing plate 113 rotates 90 degrees, causing the reversing plate 113 to rotate 90 degrees with the battery, so that the battery can be rotated from the original horizontal state to the vertical state. After rotating to the vertical state, the sensor 121 can detect the battery by the proximity sensor and transmit an electrical signal to the controller, so that the controller controls the second power device to start, thereby driving the push block 124 to move. Since the push block 124 is T-shaped and matches the conveying groove, it can easily contact the battery and push it out of the conveying groove, so as not to affect the rotation of the reversing plate 113, so that it can continue to convey the next battery.
[0032] After the battery is pushed out, it falls into the conveyor plate 21. One side of the conveyor plate 21 can restrict the battery to prevent it from tipping over. In order to prevent the battery from tilting to the other side, another set of push blocks 3 also abuts against the other end of the battery, thereby better restricting the battery. Finally, under the drive of the third power device, the adsorption block 23 makes its arc surface contact the battery, adsorbs and moves the battery until it is moved onto the second conveyor belt 20, thus completing the reversing transport of the battery.
[0033] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.
[0034] The above description is merely a preferred embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present application, based on the technical solution and concept of the present application, should be covered within the scope of protection of the present application.
Claims
1. A battery transfer and feeding device, comprising a workbench (100) and a first conveyor belt (10) disposed on one side of the workbench (100), characterized in that, Also includes: The second conveyor belt (20) is located on one side of the first conveyor belt (10) and is used to sequentially transport and process batteries; The reversing feeding unit (1) is located between the first conveyor belt (10) and the second conveyor belt (20) and is used to reverse and transfer the battery. The switching feeding unit (1) includes: A reversing assembly (11) is provided on the workbench (100) and located between the first conveyor belt (10) and the second conveyor belt (20), for receiving the battery on the first conveyor belt (10) and flipping it from a parallel state to a vertical state; The docking component (12) is located on one side of the reversing component (11) and is used to receive and transport the vertically positioned battery again. The docking component (12) and the reversing component (11) are both provided with a pushing component on the opposite side. The transfer unit (2) is located on one side of the reversing assembly (11) and is used to move the vertically positioned battery and feed it back onto the second conveyor belt (20).
2. The battery switching and feeding device as described in claim 1, characterized in that, The commutation assembly (11) includes: A guide plate (111) is located at one end of the first conveyor belt (10) and is used to feed batteries. A fixed frame (112) is located on one side of the guide plate (111) and installed on the workbench (100); A reversing plate (113) is rotatably disposed on one side of the guide plate (111), and the reversing plate (113) is driven by a first power device. The reversing plate (113) is provided with conveying grooves (114) at equal intervals in the circumferential direction.
3. The battery switching and feeding device as described in claim 1, characterized in that, The docking component (12) includes: The sensor (121) is mounted on one side of the workbench (100) via a mounting plate. A connecting plate (122) is provided on the opposite side of the mounting plate. The sensor (121) is used to detect the sensing battery. The connecting plate (122) has a clearance groove (123) at the position corresponding to the material conveying trough (114). The jacking block (124) is driven by the second power device. The jacking block (124) is mounted on the connecting plate (122) and is used to move the jacking block (124) to push the battery to the transfer unit (2).
4. The battery switching and feeding device as described in claim 1, characterized in that, The transfer unit (2) includes: A conveyor plate (21) is located on one side of the fixed frame (112) to restrict the vertical movement of the battery; A movable plate (22) is connected to a conveyor plate (21), and a third power device is fixedly connected to one end of the movable plate (22); The adsorption block (23) is fixedly connected to the output end of the third power device, and the surface of the adsorption block (23) is provided with an arc surface that matches the arc surface of the battery.
5. The battery switching and feeding device as described in claim 3, characterized in that, The jacking block (124) is T-shaped and matches the conveying trough.
6. The battery switching and feeding device as described in claim 1, characterized in that, The pushing component includes a pushing block (3), and one side of the pushing block (3) is driven by a fourth power device.