Stacking mechanism for lithium battery X-ray detection

By designing a stacking mechanism for X-ray detection of lithium batteries, the automatic collection of lithium batteries is solved by using conveyor belts and driving components, and the problem of time-consuming and labor-intensive manual collection is solved and the work efficiency is improved.

CN222922491UActive Publication Date: 2025-05-30SUZHOU PINET TECH CO LTD
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Patent Information

Application Number
CN202421979325.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-05-30
Estimated Expiration
2034-08-15

AI Technical Summary

Technical Problem

In the production of lithium batteries, manual collection of lithium batteries is time-consuming and labor-intensive, resulting in inefficient work.

Method used

A stacking mechanism for X-ray detection of lithium batteries is designed, including a operating table, a conveyor belt, a housing, a stacking assembly and a drive assembly. The tray is driven into the housing through the conveyor belt, and the detected battery body is stacked into the storage box for storage using the drive assembly.

Benefits of technology

Through the automated stacking mechanism, the efficiency of lithium battery collection is significantly improved, the time and labor intensity of manual operation are reduced, and the work efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a stacking mechanism for lithium battery X-ray detection, which relates to the technical field of lithium battery production, and comprises an operation table, a conveyor belt is rotatably mounted on the operation table, a shell is fixedly mounted on the operation table, a stacking component is detachably mounted in the shell, and the stacking component comprises a storage box. The storage box is slidably inserted into the shell, handles are fixedly mounted on the two sides of the top end of the storage box, a plurality of rotating shafts which are evenly distributed are rotatably mounted on the two sides of the interior of the storage box, fixing blocks are fixedly mounted at the two ends of each rotating shaft, and a plurality of trays which are evenly distributed are placed in the storage box and on the conveying belt. The battery bodies are placed in the multiple trays, the driving assembly is installed on the operation table, the stacking assembly and the driving assembly are arranged, the driving assembly is used for stacking the detected battery bodies into the storage box for storage, time and labor are saved, and the efficiency is high.
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Description

Technical Field

[0001] The utility model relates to the technical field of lithium battery production, in particular to a stacking mechanism for X-ray detection of lithium batteries. Background Technique

[0002] A lithium battery is a primary battery with a lithium metal or lithium alloy as the negative electrode material and a non-aqueous electrolyte solution. It is different from rechargeable lithium-ion batteries and lithium-ion polymer batteries. The inventor of the lithium battery is Edison. Due to the very active chemical properties of lithium metal, the processing, storage, and use of lithium metal have very high requirements for the environment. Therefore, lithium batteries have not been applied for a long time. With the development of microelectronics technology at the end of the 20th century, the number of miniaturized devices has increased day by day, posing high requirements for power sources. As a result, lithium batteries have entered the large-scale practical stage.

[0003] In the production of lithium batteries, X-ray detection of lithium batteries is required. After the detection is completed, most lithium batteries are collected manually, which is not only time-consuming and laborious but also results in low work efficiency. In view of the above problems, the inventor proposes a stacking mechanism for X-ray detection of lithium batteries to solve the above problems. Content of the Utility Model

[0004] In order to solve the problem that manually collecting lithium batteries is not only time-consuming and laborious but also results in low work efficiency; the purpose of the utility model is to provide a stacking mechanism for X-ray detection of lithium batteries.

[0005] To solve the above technical problems, the utility model adopts the following technical scheme: A stacking mechanism for X-ray detection of lithium batteries, including an operating table, a conveyor belt is rotatably installed on the operating table, a housing is fixedly installed on the operating table, a stacking component is detachably installed in the housing, the stacking component includes a storage box, and the storage box is slidably inserted into the housing. Handles are fixedly installed on both sides of the top of the storage box. A plurality of rotating shafts are evenly distributed and rotatably installed on both sides inside the storage box. Fixed blocks are fixedly installed at both ends of the plurality of rotating shafts. A plurality of trays are evenly distributed and placed in both the storage box and on the conveyor belt. Battery bodies are placed in the plurality of trays. A driving component is installed on the operating table.

[0006] Preferably, a driving motor is fixedly installed on one side of the operating table, and the output end of the driving motor is fixedly connected to one end of a driving roller inside the conveyor belt. The driving assembly includes a cylinder, and the cylinder is fixedly installed on the lower surface of the operating table. The output end of the cylinder is fixedly installed with a push plate, and the upper surface of the push plate can be in contact with the lower surface of the corresponding tray. A limiting block is fixedly installed on one side of each of the plurality of rotating shafts. On both sides inside the storage box, a plurality of equally spaced blocks are fixedly installed, and the lower surface of the block is in contact with the upper surface of the corresponding limiting block.

[0007] Preferably, a plurality of reset components are installed on both sides inside the storage box at equal intervals. Each of the plurality of reset components includes a dial, and the dial is fixedly installed at one end of the corresponding rotating shaft. A plurality of equally spaced arc-shaped grooves are formed on both sides inside the storage box, and an arc-shaped rod is fixedly installed in each of the plurality of arc-shaped grooves.

[0008] Preferably, a slider is slidably clamped in each of the plurality of arc-shaped grooves, and the arc-shaped rod passes through the corresponding slider. The lower surface of the slider is in contact with the upper surface of the corresponding dial. A spring is sleeved on each of the plurality of arc-shaped rods, and the bottom end of the spring is fixedly connected to the upper surface of the corresponding slider.

[0009] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0010] 1. In the present utility model, by setting the stacking assembly and the driving assembly, the battery body after detection is stacked into the storage box for storage by using the driving assembly, which is time-saving, labor-saving and has high efficiency;

[0011] 2. In the present utility model, by setting the reset assembly, the purpose of driving the rotating shaft to reset by using the reset assembly is realized, so that the tray containing the battery body is clamped in the storage box. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained according to these drawings without creative efforts.

[0013] Figure 1 It is a schematic front view of the overall structure of the present utility model;

[0014] Figure 2 It is a schematic rear view of the overall structure of the present utility model;

[0015] Figure 3 For the present utility model Figure 2 The enlarged schematic view of the structure at A;

[0016] Figure 4 This is a schematic diagram of the overall sectional structure of the present utility model;

[0017] Figure 5 For the present utility model Figure 4 Schematic enlarged view of the structure at position A in the figure.

[0018] In the figure: 1, operating table; 2, conveyor belt; 21, driving motor; 3, tray; 4, battery body; 5, outer shell; 6, stacking assembly; 61, storage box; 611, stop block; 62, handle; 63, rotating shaft; 631, paddle; 632, limit block; 64, fixing block; 7, driving assembly; 71, cylinder; 72, push plate; 8, reset assembly; 81, arc groove; 82, arc rod; 83, spring; 84, slider. Specific embodiments

[0019] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present utility model.

[0020] Embodiment: As Figures 1-5 shown, the present utility model provides a stacking mechanism for X-ray detection of lithium batteries, including an operating table 1, a conveyor belt 2 rotatably installed on the operating table 1, an outer shell 5 fixedly installed on the operating table 1, a stacking assembly 6 detachably installed in the outer shell 5, the stacking assembly 6 includes a storage box 61, and the storage box 61 is slidably inserted into the outer shell 5. Handles 62 are fixedly installed on both sides of the top end of the storage box 61. A plurality of equally distributed rotating shafts 63 are rotatably installed on both sides inside the storage box 61. Fixing blocks 64 are fixedly installed at both ends of the plurality of rotating shafts 63. A plurality of evenly distributed trays 3 are placed both inside the storage box 61 and on the conveyor belt 2. Battery bodies 4 are placed in each of the plurality of trays 3. A driving assembly 7 is installed on the operating table 1. The conveyor belt 2 is used to drive the tray 3 containing the battery body 4 into the outer shell 5. Then, the driving assembly 7 is used to drive the tray 3 to rise. This tray 3 pushes the tray 3 on its upper surface to rise. The tray 3 pushes the fixing block 64 to rotate around the rotating shaft 63. After the tray 3 enters the storage box 61, it descends, so that the tray 3 is clamped on the upper surface of the fixing block 64, thereby stacking the tray 3 containing the battery body 4 in the storage box 61. After the storage box 61 is full, the storage box 61 is taken out of the outer shell 5 by using the handle 62, and an empty storage box 61 is placed.

[0021] On one side of the operating table 1, a driving motor 21 is fixedly installed, and the output end of the driving motor 21 is fixedly connected to one end of the driving roller inside the conveyor belt 2.

[0022] By adopting the above technical solution, the driving motor 21 is used to drive the conveyor belt 2 to rotate.

[0023] The driving assembly 7 includes a cylinder 71, and the cylinder 71 is fixedly installed on the lower surface of the operating table 1. The output end of the cylinder 71 is fixedly installed with a push plate 72, and the upper surface of the push plate 72 can be in contact with the lower surface of the corresponding tray 3.

[0024] By adopting the above technical solution, the cylinder 71 is used to drive the push plate 72 to lift.

[0025] On one side of each of the plurality of rotating shafts 63, a limiting block 632 is fixedly installed. On both sides inside the storage box 61, a plurality of blocking blocks 611 are fixedly installed at equal intervals, and the lower surface of the blocking block 611 is in contact with the upper surface of the corresponding limiting block 632.

[0026] By adopting the above technical solution, the blocking block 611 blocks the limiting block 632 on the rotating shaft 63, thereby limiting the rotating shaft 63.

[0027] On both sides inside the storage box 61, a plurality of reset components 8 are installed at equal intervals. Each of the plurality of reset components 8 includes a dial 631, and the dial 631 is fixedly installed at one end of the corresponding rotating shaft 63.

[0028] By adopting the above technical solution, the rotating shaft 63 drives the dial 631 to rotate.

[0029] On both sides inside the storage box 61, a plurality of arc-shaped grooves 81 are evenly distributed. Inside each of the plurality of arc-shaped grooves 81, an arc-shaped rod 82 is fixedly installed.

[0030] By adopting the above technical solution, the slider 84 slides along the arc-shaped rod 82 inside the arc-shaped groove 81.

[0031] Inside each of the plurality of arc-shaped grooves 81, a slider 84 is slidably clamped, and the arc-shaped rod 82 penetrates through the corresponding slider 84, and the lower surface of the slider 84 is in contact with the upper surface of the corresponding dial 631.

[0032] By adopting the above technical solution, the slider 84 slides along the arc-shaped rod 82 inside the arc-shaped groove 81.

[0033] On each of the plurality of arc-shaped rods 82, a spring 83 is sleeved, and the bottom end of the spring 83 is fixedly connected to the upper surface of the corresponding slider 84.

[0034] By adopting the above technical solution, the rotating shaft 63 is rotated and reset by the resilience of the spring 83.

[0035] Working principle: When the utility model is in use, the driving motor 21 drives the conveyor belt 2 to rotate. The conveyor belt 2 drives the tray 3 loaded with the detected battery body 4 into the housing 5. The air cylinder 71 drives the push plate 72 to rise, and the push plate 72 drives the tray 3 to rise. This tray 3 pushes the tray 3 on its upper surface to rise. The tray 3 pushes the fixed block 64 to rotate around the rotating shaft 63. At this time, the rotating shaft 63 drives the dial 631 to rotate. The dial 631 drives the slider 84 to slide along the arc-shaped rod 82 in the arc-shaped groove 81 and compresses the spring 83. After the tray 3 enters the storage box 61, the air cylinder 71 drives the push plate 72 to descend, and the tray 3 follows and descends. At this time, the resilience of the spring 83 is used to make the rotating shaft 63 rotate and reset. The stopper 611 blocks the limit block 632 on the rotating shaft 63, thereby limiting the rotating shaft 63, so that the tray 3 is clamped on the upper surface of the fixed block 64, and the tray 3 loaded with the battery body 4 is stacked in the storage box 61. After the storage box 61 is full, the storage box 61 is taken out of the housing 5 by using the handle 62, and an empty storage box 61 is placed.

[0036] Obviously, those skilled in the art can make various changes and modifications to the present utility model without departing from the spirit and scope of the present utility model. Thus, if these modifications and variations of the present utility model fall within the scope of the claims of the present utility model and their equivalent technologies, the present utility model also intends to include these changes and modifications.

Claims

1. A stacking mechanism for lithium battery X-ray inspection, comprising an operating table (1), characterized in that: A conveyor belt (2) is rotatably mounted on the operating table (1), a housing (5) is fixedly mounted on the operating table (1), a stacking assembly (6) is detachably mounted in the housing (5), the stacking assembly (6) comprises a storage box (61), and the storage box (61) is slidably inserted in the housing (5), handles (62) are fixedly mounted on both sides of the top of the storage box (61), a plurality of equally distributed rotating shafts (63) are rotatably mounted on both sides of the storage box (61), and fixed blocks (64) are fixedly mounted at both ends of the plurality of rotating shafts (63), a plurality of evenly distributed trays (3) are placed in the storage box (61) and on the conveyor belt (2), a battery body (4) is placed in each of the plurality of trays (3), and a driving assembly (7) is mounted on the operating table (1).

2. A stacking mechanism for lithium battery X-ray detection as claimed in claim 1, characterized in that: A drive motor (21) is fixedly mounted on one side of the operating table (1), and an output end of the drive motor (21) is fixedly connected to one end of a drive roller in the conveyor belt (2).

3. A stacking mechanism for lithium battery X-ray detection as claimed in claim 1, characterized in that: The driving assembly (7) comprises a cylinder (71), and the cylinder (71) is fixedly mounted on the lower surface of the operating table (1), and a push plate (72) is fixedly mounted on the output end of the cylinder (71), and the upper surface of the push plate (72) can contact the lower surface of the corresponding tray (3).

4. A stacking mechanism for lithium battery X-ray detection as claimed in claim 1, characterized in that: A limit block (632) is fixedly mounted on one side of the plurality of rotating shafts (63), and a plurality of stop blocks (611) distributed equidistantly are fixedly mounted on both sides of the interior of the storage box (61), and the lower surface of the stop block (611) contacts the upper surface of the corresponding limit block (632).

5. A stacking mechanism for lithium battery X-ray detection as claimed in claim 1, characterized in that: Multiple reset assemblies (8) are installed at equal intervals on both sides of the storage box (61), and each of the multiple reset assemblies (8) comprises a paddle (631), and the paddle (631) is fixedly installed on one end of the corresponding rotating shaft (63).

6. A stacking mechanism for lithium battery X-ray detection as claimed in claim 1, characterized in that: A plurality of equally distributed arc-shaped grooves (81) are provided on both sides of the interior of the storage box (61), and arc-shaped rods (82) are fixedly installed in the plurality of arc-shaped grooves (81).

7. A stacking mechanism for lithium battery X-ray detection as claimed in claim 6, characterized in that: A slider (84) is slidably mounted in each of the plurality of arc-shaped grooves (81), and the arc-shaped rod (82) passes through the corresponding slider (84), and the lower surface of the slider (84) contacts the upper surface of the corresponding paddle (631).

8. A stacking mechanism for lithium battery X-ray detection as claimed in claim 6, characterized in that: A spring (83) is sleeved on each of the plurality of arc-shaped rods (82), and the bottom end of the spring (83) is fixedly connected to the upper surface of the corresponding slider (84).