Battery conveying device with rotating mechanism
By designing a battery conveying device with a rotating mechanism, the problem of inconsistent states of the electrode groups during conveyor switching was solved, achieving stable conveying of the electrode groups on two conveyors, improving efficiency and reducing friction noise, and meeting the requirements of the tank loading process.
Patent Information
- Application Number
- CN202520222340.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-12
- Publication Date
- 2026-05-29
- Estimated Expiration
- 2035-02-12
AI Technical Summary
During battery production, when the electrode group is transferred from one vertical conveyor to another, the conveying state changes, causing the electrode group to be inconsistent in the longitudinal or lateral direction on the two conveyors, which affects the requirements of the loading process.
Design a battery conveying device with a rotating mechanism. Through a lifting support assembly and a lifting rotating assembly, the electrode group is pushed from the first conveyor to the lifting rotating assembly, rotated 90 degrees and then falls onto the chain of the second conveyor. This ensures that the electrode group is conveyed longitudinally or laterally on both conveyors, meeting the requirements of the tank loading process.
This achieves consistency in the state of the pole group on the two conveyors, improves conveying efficiency, avoids interference and friction in the conveying state, reduces noise, and meets the requirements of the tank entry process.
Smart Images

Figure CN224298251U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of battery electrode group transportation technology, and in particular to a battery transportation device with a rotating mechanism. Background Technology
[0002] The battery electrode assembly is an important component of a storage battery. It consists of multiple positive and negative plates and separators. The active material on the positive plate is lead dioxide, and the active material on the negative plate is pure lead. These plates are separated by separators to prevent short circuits and allow the electrolyte to flow freely between the plates.
[0003] Battery electrode groups are widely used in various types of batteries, including batteries for electric vehicles and batteries for energy storage systems. Therefore, the assembly and transportation of electrode groups are very important in the battery production process.
[0004] When changing the conveying direction of the electrode group, it is generally necessary to transfer the electrode group from one conveyor to another. This step can be achieved by a pushing component (such as a cylinder, push rod, etc.). However, this method has a problem: when the two conveyors are perpendicular, the electrode group is conveyed laterally on one conveyor, but when pushed to the other conveyor, it becomes conveyed longitudinally. This results in different electrode group conveying states before and after changing the conveyor. To address this issue, we propose a battery conveying device with a rotating mechanism. Utility Model Content
[0005] The main objective of this invention is to provide a battery conveying device with a rotating mechanism. The pushing component can push the electrode group on the first conveyor to the lifting and rotating component through the lifting and supporting component. The lifting and rotating component can rotate the electrode group to the required angle, and after rotation, the electrode group will fall onto the chain of the second conveyor for conveying, thereby completing the turning and conveying operation of the electrode group. It can also ensure that the electrode group is conveyed longitudinally or laterally on both conveyors, meeting the requirements of the tank loading process.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] A battery conveying device with a rotating mechanism includes a first conveyor and a second conveyor. The second conveyor has at least two sets of chains. A lifting support assembly and a lifting rotation assembly are provided at the ends of the second conveyor adjacent to the first conveyor. The lifting support assembly and the lifting rotation assembly are both located between the two sets of chains. The device also includes a pushing assembly. The pushing assembly is used to push the electrode group on the first conveyor to the lifting rotation assembly through the lifting support assembly. The lifting rotation assembly is used to rotate the electrode group and, after rotation, drop the electrode group onto the chain of the second conveyor for conveying.
[0008] Furthermore, the lifting and rotating assembly includes a first lifting device, a rotating drive device is fixed to the top output end of the first lifting device, and a support plate is fixed to the drive end of the rotating drive device.
[0009] Furthermore, the lifting support assembly includes a second lifting device, and a support plate is fixed at the top output end of the second lifting device.
[0010] Furthermore, a through groove is provided on the top of the support plate, and several rollers are rotatably connected to the top two sides of the support plate along the sliding direction of the pole group through reserved grooves.
[0011] Furthermore, the pushing component includes a linear drive device, and the drive end of the linear drive device is provided with a push plate.
[0012] Furthermore, a third lifting device is fixed on the push plate, and the drive end of the linear drive device is connected to the push plate through the third lifting device.
[0013] Furthermore, the push plate is L-shaped, and the vertical part of the push plate moves into the through groove.
[0014] Furthermore, limiting plates are provided on both sides of the support plate to restrict the movement path of the pole group.
[0015] Furthermore, the first conveyor is a chain plate conveyor, and the first conveyor is provided with vertical plates at equal intervals, the vertical plates being used to support the pole group.
[0016] Furthermore, the device also includes a frame, and the limiting plate, the first lifting device, the second lifting device and the linear drive device are all fixedly connected to the frame. The first lifting device, the second lifting device and the linear drive device are all cylinders, and the rotary drive device is a rotary cylinder or a servo motor.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] The pushing component of this invention can push the electrode group on the first conveyor to the lifting and rotating component through the lifting and supporting component. The lifting and rotating component can rotate the electrode group to the required angle, and after rotation, the electrode group will fall onto the chain of the second conveyor for conveying, so as to complete the turning and conveying operation of the electrode group. It can also ensure that the electrode group is conveyed longitudinally or laterally on both conveyors, which meets the requirements of the troughing process.
[0019] When the first lifting device of this utility model is in the extended state, the height of the bearing plate is higher than the height of the chain, so that when the rotary drive device drives the pole group to rotate, the pole group will not be interfered with by the chain. When the pole group has completed its rotation, the first lifting device drives the bearing plate to descend. At this time, the height of the bearing plate is lower than the height of the chain, so that the pole group falls on the chain. Therefore, when the chain drives, the pole group can be transported.
[0020] When the second lifting device of this utility model is in the extended state, the height of the support plate is higher than the height of the chain and the same as the height of the bearing plate. Therefore, the pole group can move onto the bearing plate through the support plate. When the pole group needs to rotate, the second lifting device drives the support plate to descend, so that the support plate no longer contacts the pole group, thus avoiding the support plate affecting the rotation of the pole group.
[0021] The third lifting device of this utility model can drive the push plate to rise and fall. After the push plate moves the electrode group on the first conveyor to the bearing plate, the third lifting device drives the push plate to rise, and then resets it under the action of the linear drive device. During this process, the height of the push plate is higher than the height of the electrode group on the first conveyor. Therefore, the push plate will not contact the electrode group during the reset process. That is to say, the first conveyor can transport the electrode group during the reset process of the push plate without waiting for the push plate to reset to the correct position, thereby improving efficiency. Attached Figure Description
[0022] Figure 1 This is a top view of a battery conveying device with a rotating mechanism according to the present invention.
[0023] Figure 2 This is a front view structural diagram of a battery conveying device with a rotating mechanism according to the present invention.
[0024] Figure 3 This is a schematic diagram of the lifting and rotating assembly structure of a battery conveying device with a rotating mechanism according to the present invention.
[0025] Figure 4 This is a schematic diagram showing the positions of the first conveyor, the upright plate, and the pusher plate of a battery conveying device with a rotating mechanism according to this utility model.
[0026] Figure 5 This is a schematic diagram showing the position and structure of the pushing component and support plate of a battery conveying device with a rotating mechanism according to this utility model.
[0027] In the diagram: 1. Second conveyor; 101. Chain; 2. Frame; 3. Lifting and rotating assembly; 301. Bearing plate; 302. Rotation drive device; 303. First lifting device; 4. Lifting support assembly; 401. Support plate; 402. Through groove; 403. Second lifting device; 5. Limiting plate; 6. First conveyor; 7. Vertical plate; 8. Pushing assembly; 801. Linear drive device; 802. Push plate; 8022. Vertical part; 803. Third lifting device; 9. Roller. Detailed Implementation
[0028] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0029] like Figure 1-5 As shown, a battery conveying device with a rotating mechanism includes a first conveyor 6 and a second conveyor 1. The second conveyor 1 is a chain conveyor with at least two sets of chains 101, which is prior art and will not be described in detail here. The end of the second conveyor 1 adjacent to the first conveyor 6 is provided with a lifting support assembly 4 and a lifting rotation assembly 3. The lifting support assembly 4 is closer to the first conveyor 6. Both the lifting support assembly 4 and the lifting rotation assembly 3 are located between the two sets of chains 101. The device also includes a pushing assembly 8, which is used to push the electrode group on the first conveyor 6 to the lifting rotation assembly 3 through the lifting support assembly 4. The lifting rotation assembly 3 is used to rotate the electrode group and, after rotation, drop the electrode group onto the chain 101 of the second conveyor 1 for conveying.
[0030] In this embodiment, such as Figure 1 As shown, the electrode group moves on the first conveyor 6. When the electrode group moves to the position of the pushing component 8, the pushing component 8 works to push the electrode group onto the lifting and rotating component 3 via the lifting support component 4. During this process, both the lifting support component 4 and the lifting and rotating component 3 are in the raised state, so the electrode group will not contact the chain 101. When the electrode group is on the lifting and rotating component 3, the lifting support component 4 becomes the lowered state, so that the electrode group no longer contacts the lifting support component 4. At this time, the lifting and rotating component 3 drives the electrode group to rotate 90 degrees, and then the lifting and rotating component 3 descends again, so that the rotated electrode group contacts the chain 101, and then the rotated electrode group is conveyed by the second conveyor 1.
[0031] Among them, such as Figure 3As shown, the lifting and rotating assembly 3 includes a first lifting device 303. A rotating drive device 302 is fixed to the top output end of the first lifting device 303. A support plate 301 is fixed to the drive end of the rotating drive device 302. The first lifting device 303 can drive the rotating drive device 302 and the support plate 301 to perform lifting and lowering movements. When the first lifting device 303 is in the extended state, the height of the support plate 301 is higher than the height of the chain 101. Therefore, when the rotating drive device 302 drives the pole group to rotate, the pole group will not be interfered with by the chain 101. After the pole group has rotated to the desired angle, the first lifting device 303 drives the support plate 301 to descend. At this time, the height of the support plate 301 is lower than the height of the chain 101, so that the pole group falls on the chain 101. Therefore, when the chain 101 is driven, the pole group can be transported.
[0032] Among them, such as Figure 2 As shown, the lifting support assembly 4 includes a second lifting device 403. A support plate 401 is fixed to the top output end of the second lifting device 403. The second lifting device 403 can drive the support plate 401 to perform lifting operations. In the initial state, the second lifting device 403 is in the extended state. At this time, the height of the support plate 401 is higher than the height of the chain 101 and the same as the height of the bearing plate 301. Therefore, the pole group can move onto the bearing plate 301 through the support plate 401. When the pole group needs to rotate, the second lifting device 403 drives the support plate 401 to descend, so that the support plate 401 no longer contacts the pole group, thus avoiding the support plate 401 from affecting the rotation of the pole group.
[0033] like Figure 2 As shown, several rollers 9 are rotatably connected to the top two sides of the support plate 401 along the sliding direction of the pole group through reserved slots. The pole group slides on the support plate 401 through the rollers 9, which can reduce the resistance when the pole group moves. The height relationship between the rollers 9 and the bearing plate 301 is the same as the height relationship between the support plate 401 and the bearing plate 301.
[0034] like Figure 5 As shown, the pushing component 8 includes a linear drive device 801, and a push plate 802 is provided at the driving end of the linear drive device 801. In this embodiment, the linear drive device 801 can drive the push plate 802 to move, thereby pushing the pole group on the first conveyor 6 onto the support plate 401 through the push plate 802. When the push plate 802 pushes the pole group, the first conveyor 6 stops working. After the pole group is pushed, the push plate 802 is reset under the action of the linear drive device 801. At this time, the first conveyor 6 starts to convey the pole group again, waiting for the subsequent pole group on the first conveyor 6 to reach the side of the push plate 802 so as to push the pole group again.
[0035] like Figure 5As shown, a third lifting device 803 is fixed on the push plate 802. The drive end of the linear drive device 801 is connected to the push plate 802 through the third lifting device 803. The third lifting device 803 can drive the push plate 802 to rise and fall. After the push plate 802 pushes the pole group on the first conveyor 6 onto the bearing plate 301, the third lifting device 803 can drive the push plate 802 to rise, and then reset it under the action of the linear drive device 801. During this process, the height of the push plate 802 is higher than the height of the pole group on the first conveyor 6. Therefore, the push plate 802 will not contact the pole group during the reset process. That is to say, the first conveyor 6 can transport the pole group during the reset process of the push plate 802 without waiting for the push plate 802 to reset to the correct position, thereby improving efficiency.
[0036] Among them, such as Figure 4 As shown, the first conveyor 6 is a chain plate conveyor. The first conveyor 6 has multiple vertical plates 7 arranged at equal intervals. Two vertical plates 7 form a group, and the pole group is placed on the top of the vertical plates 7 in the same group. Therefore, the pole group does not directly contact the conveyor belt of the first conveyor 6. When the push plate 802 pushes the pole group on the first conveyor 6, the push plate 802 does not need to contact the conveyor belt of the first conveyor 6. The push plate 802 is L-shaped, and the top of the support plate 401 has a through groove 402. The vertical part 8022 of the push plate 802 can enter the through groove 402 without contacting the support plate 401, thus eliminating friction and reducing noise.
[0037] Among them, the support plate 401 is provided with limit plates 5 on both sides. The limit plates 5 are used to restrict the movement path of the pole group and ensure that the pole group can be accurately displaced onto the support plate 301.
[0038] The device also includes a frame 2, a limiting plate 5, a first lifting device 303, a second lifting device 403 and a linear drive device 801, all of which are fixedly connected to the frame 2. The first lifting device 303, the second lifting device 403 and the linear drive device 801 are all cylinders, and the rotary drive device 302 is a rotary cylinder or a servo motor.
[0039] The working principle is as follows: First, the electrode group moves on the first conveyor 6. When the electrode group moves to the position of the pushing component 8, the linear drive device 801 drives the push plate 802 to move, thereby pushing the electrode group on the first conveyor 6 onto the support plate 401 through the push plate 802. During this process, the lifting support component 4 and the lifting rotation component 3 are both in the raised state, so the electrode group will not contact the chain 101. When the electrode group is on the bearing plate 301, the lifting support component 4 becomes lowered, so that the electrode group no longer contacts the lifting support plate 401. At this time, the rotation drive device 302 drives the electrode group to rotate 90 degrees, and then the lifting rotation component 3 descends again, so that the rotated electrode group contacts the chain 101, and then the rotated electrode group is transported by the second conveyor 1 to complete the reversing conveying operation of the electrode group.
[0040] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A battery conveying device with a rotating mechanism, comprising a first conveyor (6) and a second conveyor (1), the second conveyor (1) having at least two sets of chains (101), characterized in that: The second conveyor (1) is provided with a lifting support assembly (4) and a lifting rotation assembly (3) at the end adjacent to the first conveyor (6). The lifting support assembly (4) and the lifting rotation assembly (3) are both located between the two sets of chains (101). It also includes a pushing assembly (8). The pushing assembly (8) is used to push the pole group on the first conveyor (6) to the lifting rotation assembly (3) through the lifting support assembly (4). The lifting rotation assembly (3) is used to rotate the pole group and then drop the pole group onto the chain (101) of the second conveyor (1) for conveying.
2. The battery conveying device with a rotating mechanism according to claim 1, characterized in that: The lifting and rotating assembly (3) includes a first lifting device (303), a rotating drive device (302) is fixed at the top output end of the first lifting device (303), and a bearing plate (301) is fixed at the drive end of the rotating drive device (302).
3. A battery conveying device with a rotating mechanism according to claim 2, characterized in that: The lifting support assembly (4) includes a second lifting device (403), and the top output end of the second lifting device (403) is fixed with a support plate (401).
4. A battery conveying device with a rotating mechanism according to claim 3, characterized in that: The top of the support plate (401) is provided with a through groove (402), and several rollers (9) are rotatably connected to the top two sides of the support plate (401) along the sliding direction of the pole group through the reserved groove.
5. A battery conveying device with a rotating mechanism according to claim 4, characterized in that: The pushing component (8) includes a linear drive device (801), and the driving end of the linear drive device (801) is provided with a push plate (802).
6. A battery conveying device with a rotating mechanism according to claim 5, characterized in that: A third lifting device (803) is fixed on the push plate (802), and the driving end of the linear drive device (801) is connected to the push plate (802) through the third lifting device (803).
7. A battery conveying device with a rotating mechanism according to claim 5, characterized in that: The push plate (802) is L-shaped, and the vertical part (8022) of the push plate (802) moves into the through groove (402).
8. A battery conveying device with a rotating mechanism according to claim 6, characterized in that: The support plate (401) is provided with limiting plates (5) on both sides to restrict the movement path of the pole group.
9. A battery conveying device with a rotating mechanism according to claim 1, characterized in that: The first conveyor (6) is a chain plate conveyor, and the first conveyor (6) is provided with vertical plates (7) at equal intervals. The vertical plates (7) are used to support the pole group.
10. A battery conveying device with a rotating mechanism according to claim 8, characterized in that: It also includes a frame (2), wherein the limiting plate (5), the first lifting device (303), the second lifting device (403) and the linear drive device (801) are all fixedly connected to the frame (2), the first lifting device (303), the second lifting device (403) and the linear drive device (801) are all cylinders, and the rotary drive device (302) is a rotary cylinder or a servo motor.