Electrode plate conveying and detecting device
The electric plate detection device facilitates continuous and automated inspection of both sides of the electric plate, addressing inefficiencies in existing systems by using dual conveyor belts and a flipping mechanism for enhanced detection efficiency.
Patent Information
- Application Number
- CN202422051936.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-08-23
AI Technical Summary
The existing electrode plate detection device cannot achieve continuous detection. It is necessary to remove the previous detected electrode plate and then place the next one. The detection efficiency is inefficient and it is impossible to detect the top and bottom surfaces of the electrode plate at one time.
The electrode plate conveying and detection device including a base, side plate, clamping cylinder, detector and driving mechanism is adopted. The clamping cylinder and flip mechanism are used to realize the automatic flip and continuous conveying of the electrode plate, and combined with the use of the first conveyor belt and the second conveyor belt, the automatic detection of the electrode plate is realized.
Continuous detection of electrode plates is realized, detection efficiency is improved, and the top and bottom surfaces of electrode plates can be detected at one time, simplifying the operation process and improving the degree of automation.
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Figure CN223101902U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of electrode plate production, in particular to an electrode plate conveying and detecting device. Background Art
[0002] An electrode plate generally refers to an electrode used in an electrochemical reaction. It can be a flat or sheet-like structure made of various materials, which is used to transfer electrons or ions in an electrolyte solution and promote the occurrence of an electrochemical reaction. Electrode plates are widely used in the field of electrochemistry, such as in batteries, electrolytic cells, electrolytic deposition, electrolysis of water, etc.
[0003] After the electrode plate is produced, it needs to be subjected to quality inspection to ensure its performance and reliability. Among them, appearance inspection is an important step in quality inspection. Check the appearance of the electrode plate to ensure that there are no obvious defects, damages or contaminations. However, the existing electrode plate detection devices cannot achieve continuous detection. It is necessary to remove the previously detected electrode plate and then place the next one, resulting in low detection efficiency. Moreover, the existing electrode plate detection devices cannot detect the top and bottom surfaces of the electrode plate at one time, making the detection rather troublesome. Summary of the Utility Model
[0004] The purpose of the utility model is to solve the deficiencies existing in the prior art and propose an electrode plate conveying and detecting device.
[0005] In order to achieve the above purpose, the utility model adopts the following technical scheme:
[0006] An electrode plate conveying and detecting device, comprising: a base, on both sides of the top of the base are welded side plates, and at both ends between the two side plates are horizontally installed a first conveyor belt and a second conveyor belt respectively;
[0007] A clamping cylinder, a rotating shaft is rotatably connected in the middle between the two side plates, a sleeve block is welded in the middle of the rotating shaft, the clamping cylinder is fixedly installed on one side of the sleeve block, and clamping plates are fixedly installed at both output ends of the clamping cylinder;
[0008] A first detector and a second detector, at both ends on one side of the top of the base are welded L-shaped mounting brackets, and the first detector and the second detector are respectively fixedly installed at the bottoms of the two L-shaped mounting brackets;
[0009] A driving mechanism, which is used to drive the first conveyor belt and the second conveyor belt and drive the rotating shaft to rotate reciprocally.
[0010] When the first detector and the second detector are detecting the surface of the electrode plate, the first conveyor belt and the second conveyor belt stop conveying. At this time, the clamping cylinder is started to drive the two clamping plates to move towards each other to clamp the electrode plate conveyed to the discharge end of the first conveyor belt. When the electrode plate is flipped to the top of the second conveyor belt, the clamping cylinder is started to drive the two clamping plates to move in the opposite direction to release the electrode plate.
[0011] As a further technical solution of the present utility model, support legs are vertically welded to the four corners of the bottom of the base, and a controller is fixedly installed on one side of the top of the base.
[0012] As a further technical solution of the present utility model, the first detector and the second detector are respectively aligned above the feeding end of the first conveyor belt and above the discharge end of the second conveyor belt.
[0013] As a further technical solution of the present utility model, the driving mechanism includes a rotating motor. A support plate is welded to the top of the base. The rotating motor is horizontally fixedly installed on one side of the support plate. One side of the driving rollers of the second conveyor belt and the first conveyor belt are respectively horizontally welded with a driving shaft and a driven shaft. The driving shaft and the driven shaft both penetrate through a side plate and are rotatably connected to the side plate. A linkage shaft is horizontally rotatably connected to one side of the support plate. The same first belt is connected between the driving shaft and the linkage shaft, and the same second belt is connected between the driven shaft and the linkage shaft.
[0014] During the detection process, the rotating motor is started to drive the driving shaft to rotate. The driving shaft drives the linkage shaft to rotate through the first belt. The linkage shaft drives the driven shaft to rotate through the second belt. The driving shaft and the driven shaft respectively drive the driving rollers of the second conveyor belt and the first conveyor belt to rotate, so as to cooperate with the driven rollers to drive the second conveyor belt and the first conveyor belt to start conveying, and convey the electrode plates on the tops of the second conveyor belt and the first conveyor belt forward, which can realize continuous detection without removing the previously detected electrode plate and then placing the next one, improving the detection efficiency.
[0015] As a further technical solution of the present utility model, a large disc is welded to the other end of the linkage shaft. A circular groove is formed on one side of the large disc. A small disc is welded at the center of the circular groove. Some inner walls of the circular groove are welded with inner convex teeth. Some outer peripheries of the small disc are welded with outer convex teeth. A gear is arranged between the inner convex teeth and the outer convex teeth. The gear is meshed with a plurality of inner convex teeth and a plurality of outer convex teeth in sequence. One end of the rotating shaft penetrates through one of the side plates and is welded to the center of the gear.
[0016] When the linkage shaft rotates, it drives the large disc to rotate. The large disc drives the small disc to rotate together. Multiple inner convex teeth on the inner wall of the circular groove first engage with the gear and drive the gear to rotate 180° in the conveying direction. The gear drives the rotating shaft to rotate 180°. The rotating shaft drives the clamping cylinder to rotate 180° through the sleeve block, so that the electrode plate clamped between the two clamping plates 16 is flipped 180° from the first conveyor belt to the second conveyor belt. When the engagement of the inner convex teeth is completed, multiple outer convex teeth on the outer periphery of the small disc then engage with the gear and drive the gear to rotate in the reverse direction back to its original position, waiting for the flipping of the next electrode plate. It is possible to flip the electrode plate after the top surface has been detected, and then detect its bottom surface, so that the top and bottom surfaces of the electrode plate can be detected at one time. The detection is simple, time-saving and labor-saving, and there is no need for manual operation and the degree of automation is high.
[0017] The beneficial effects of the present utility model are as follows: The electrode plate can be conveyed forward for continuous detection, without removing the previously detected electrode plate and then placing the next one, which improves the detection efficiency; it is possible to flip the electrode plate after the top surface has been detected, and then detect its bottom surface, so that the top and bottom surfaces of the electrode plate can be detected at one time. The detection is simple, time-saving and labor-saving, and there is no need for manual operation and the degree of automation is high. Description of the Drawings
[0018] Figure 1 It is a schematic structural diagram of an electrode plate conveying and detecting device proposed by the present utility model;
[0019] Figure 2 It is a schematic side view structural diagram of an electrode plate conveying and detecting device proposed by the present utility model;
[0020] Figure 3 It is a schematic bottom view structural diagram of an electrode plate conveying and detecting device proposed by the present utility model;
[0021] Figure 4 It is a schematic partial structural diagram of an electrode plate conveying and detecting device proposed by the present utility model.
[0022] In the figure: 1, driving shaft; 2, first belt; 3, support plate; 4, linkage shaft; 5, second belt; 6, driven shaft; 7, controller; 8, base; 9, support leg; 10, first conveyor belt; 11, L-shaped mounting frame; 12, rotating shaft; 13, large disc; 14, second conveyor belt; 15, side plate; 16, clamping plate; 17, clamping cylinder; 18, sleeve block; 19, first detector; 20, second detector; 21, small disc; 22, outer convex tooth; 23, circular groove; 24, gear; 25, inner convex tooth; 26, rotating motor. Detailed Embodiment
[0023] To make the technical means, creative features, achieved purposes and effects realized by the present utility model easy to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0024] Please refer to the attached Figure 1 -attached Figure 4 , an electrode plate conveying and detecting device, comprising: a base 8, both sides of the top of the base 8 are welded with side plates 15, and a first conveyor belt 10 and a second conveyor belt 14 are horizontally installed at both ends between the two side plates 15 respectively;
[0025] A clamping cylinder 17, a rotating shaft 12 is rotatably connected in the middle between the two side plates 15, a sleeve block 18 is welded in the middle of the rotating shaft 12, the clamping cylinder 17 is fixedly installed on one side of the sleeve block 18, and clamping plates 16 are fixedly installed at both output ends of the clamping cylinder 17;
[0026] A first detector 19 and a second detector 20, L-shaped mounting brackets 11 are welded at both ends of one side of the top of the base 8, and the first detector 19 and the second detector 20 are respectively fixedly installed at the bottoms of the two L-shaped mounting brackets 11;
[0027] A driving mechanism, which is used to drive the first conveyor belt 10 and the second conveyor belt 14 and drive the rotating shaft 12 to rotate reciprocally.
[0028] When the first detector 19 and the second detector 20 detect the surface of the electrode plate, the first conveyor belt 10 and the second conveyor belt 14 stop conveying. At this time, the clamping cylinder 17 is started to drive the two clamping plates 16 to move towards each other to clamp the electrode plate conveyed to the discharge end of the first conveyor belt 10. When the electrode plate is flipped to the top of the second conveyor belt 14, the clamping cylinder 17 is started to drive the two clamping plates 16 to move in opposite directions to release the electrode plate.
[0029] Please refer to the attached Figure 1 , in a preferred embodiment, support legs 9 are vertically welded at the four corners of the bottom of the base 8, and a controller 7 is fixedly installed on one side of the top of the base 8. The controller 7 controls the opening and closing of all electrical equipment.
[0030] Please refer to the attached Figure 2 and 3 , in a preferred embodiment, the first detector 19 and the second detector 20 are respectively aligned above the feeding end of the first conveyor belt 10 and above the discharging end of the second conveyor belt 14.
[0031] Please refer to the attached Figure 1 , 2And 4, in a preferred embodiment, the driving mechanism includes a rotating motor 26. A support plate 3 is welded to the top of the base 8. The rotating motor 26 is horizontally and fixedly installed on one side of the support plate 3. One side of the driving rollers of the second conveyor belt 14 and the first conveyor belt 10 is horizontally welded with a driving shaft 1 and a driven shaft 6 respectively. The support plate 3 supports the rotating motor 26 and the linkage shaft 4.
[0032] Please refer to the attached Figure 1 、 2 And 4, in a preferred embodiment, both the driving shaft 1 and the driven shaft 6 penetrate through a side plate 15 and are rotatably connected to the side plate 15. A linkage shaft 4 is horizontally and rotatably connected to one side of the support plate 3. The same first belt 2 is connected between the driving shaft 1 and the linkage shaft 4, and the same second belt 5 is connected between the driven shaft 6 and the linkage shaft 4.
[0033] During the detection process, the rotating motor 26 is started to drive the driving shaft 1 to rotate. The driving shaft 1 drives the linkage shaft 4 to rotate through the first belt 2. The linkage shaft 4 drives the driven shaft 6 to rotate through the second belt 5. The driving shaft 1 and the driven shaft 6 respectively drive the driving rollers of the second conveyor belt 14 and the first conveyor belt 10 to rotate, so as to cooperate with the driven rollers to drive the second conveyor belt 14 and the first conveyor belt 10 to start conveying, and convey the electrode plates on the tops of the second conveyor belt 14 and the first conveyor belt 10 forward, which can realize continuous detection without removing the previously detected electrode plate and then placing the next one, improving the detection efficiency.
[0034] Please refer to the attached Figure 1 、 2 And 4, in a preferred embodiment, a large disc 13 is welded to the other end of the linkage shaft 4. A circular groove 23 is formed on one side of the large disc 13. A small disc 21 is welded at the center of the circular groove 23. Part of the inner wall of the circular groove 23 is welded with inner convex teeth 25, and part of the outer circumference of the small disc 21 is welded with outer convex teeth 22.
[0035] Please refer to the attached Figure 1 、 2 And 4, in a preferred embodiment, a gear 24 is provided between the inner convex teeth 25 and the outer convex teeth 22. The gear 24 meshes with a plurality of inner convex teeth 25 and a plurality of outer convex teeth 22 in sequence. One end of the rotating shaft 12 penetrates through one of the side plates 15 and is welded to the center of the gear 24.
[0036] When the linkage shaft 4 rotates, it drives the large disc 13 to rotate. The large disc 13 drives the small disc 21 to rotate together. Multiple inner convex teeth 25 on the inner wall of the circular groove 23 first engage with the gear 24 and drive the gear 24 to rotate 180° in the conveying direction. The gear 24 drives the rotating shaft 12 to rotate 180°. The rotating shaft 12 drives the clamping cylinder 17 to rotate 180° through the sleeve block 18, so as to drive the electrode plate clamped between the two clamping plates 16 to be flipped 180° from the first conveyor belt 10 to the second conveyor belt 14. When the engagement of the inner convex teeth 25 is completed, multiple outer convex teeth 22 on the outer circumference of the small disc 21 then engage with the gear 24 and drive the gear 24 to rotate in the reverse direction and return to the original position, waiting for the flipping of the next electrode plate. It is possible to flip the electrode plate after the top surface is detected, and then detect its bottom surface, so that the top surface and the bottom surface of the electrode plate can be detected at one time. The detection is simple, time-saving and labor-saving, and there is no need for manual operation and the automation degree is high.
[0037] From the above description, it can be seen that the above embodiments of the present utility model achieve the following technical effects: Place the electrode plate on the top of the first conveyor belt 10, start the rotating motor 26 to drive the driving shaft 1 to rotate. The driving shaft 1 drives the linkage shaft 4 to rotate through the first belt 2. The linkage shaft 4 drives the driven shaft 6 to rotate through the second belt 5. The driving shaft 1 and the driven shaft 6 respectively drive the driving rollers of the second conveyor belt 14 and the first conveyor belt 10 to rotate, so as to cooperate with the driven rollers to drive the second conveyor belt 14 and the first conveyor belt 10 to start conveying, and convey the electrode plates on the tops of the second conveyor belt 14 and the first conveyor belt 10 forward, which can realize continuous detection without removing the previously detected electrode plate and then placing the next one, thus improving the detection efficiency.
[0038] During the detection process, start the first detector 19 and the second detector 20 to detect the top surface and the bottom surface of the electrode plates on the tops of the first conveyor belt 10 and the second conveyor belt 14 respectively. When the first detector 19 and the second detector 20 are detecting the surface of the electrode plate, the first conveyor belt 10 and the second conveyor belt 14 stop conveying. At this time, start the clamping cylinder 17 to drive the two clamping plates 16 to move towards each other to clamp the electrode plate conveyed to the discharge end of the first conveyor belt 10.
[0039] After the detection is completed, the first conveyor belt 10 and the second conveyor belt 14 continue to convey. At this time, when the linkage shaft 4 rotates, it drives the large disc 13 to rotate. The large disc 13 drives the small disc 21 to rotate together. Multiple inner convex teeth 25 on the inner wall of the circular groove 23 first engage with the gear 24 and drive the gear 24 to rotate 180° in the conveying direction. The gear 24 drives the rotating shaft 12 to rotate 180°. The rotating shaft 12 drives the clamping cylinder 17 to rotate 180° through the sleeve block 18. Then, the electrode plate clamped between the two clamping plates 16 is flipped 180° from the first conveyor belt 10 to the second conveyor belt 14. When the electrode plate is flipped to the top of the second conveyor belt 14, the clamping cylinder 17 is started to drive the two clamping plates 16 to move in opposite directions to release the electrode plate. After the inner convex teeth 25 are disengaged, multiple outer convex teeth 22 on the outer periphery of the small disc 21 engage with the gear 24 again and drive the gear 24 to rotate in the reverse direction back to its original position, waiting for the flipping of the next electrode plate. It is possible to flip the electrode plate after the top surface of the electrode plate is detected, and then detect its bottom surface, so that the top surface and the bottom surface of the electrode plate can be detected at one time. The detection is simple, time-saving and labor-saving, and there is no need for manual operation and the automation degree is high.
[0040] Those of ordinary skill in the art should understand that the discussion of any embodiment above is only exemplary, and is not intended to imply that the scope of the present invention (including the claims) is limited to these examples; under the idea of the present invention, the technical features in the above embodiments or different embodiments can also be combined, and the steps can be implemented in any order, and there are many other variations in different aspects of the present invention as described above. For the sake of brevity, they are not provided in detail.
[0041] The present invention is intended to cover all such substitutions, modifications and variations that fall within the broad scope of the claims. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. An electrode plate conveying and detecting device, characterized in that, Including: A base (8), on both sides of the top of the base (8), side plates (15) are welded, and at both ends between the two side plates (15), a first conveyor belt (10) and a second conveyor belt (14) are horizontally installed respectively; A clamping cylinder (17), in the middle between the two side plates (15), a rotating shaft (12) is rotatably connected, in the middle of the rotating shaft (12), a sleeve block (18) is welded, the clamping cylinder (17) is fixedly installed on one side of the sleeve block (18), and clamping plates (16) are fixedly installed at both output ends of the clamping cylinder (17); A first detector (19) and a second detector (20), at both ends on one side of the top of the base (8), L-shaped mounting brackets (11) are welded, and the first detector (19) and the second detector (20) are respectively fixedly installed at the bottoms of the two L-shaped mounting brackets (11); A driving mechanism, which is used to drive the first conveyor belt (10) and the second conveyor belt (14) and drive the rotating shaft (12) to rotate reciprocally.
2. The electrode plate conveying and detecting device according to claim 1, wherein At the four corners of the bottom of the base (8), support legs (9) are vertically welded, and on one side of the top of the base (8), a controller (7) is fixedly installed.
3. The electrode plate conveying and detecting device according to claim 1, characterized in that, The first detector (19) and the second detector (20) are respectively aligned above the feeding end of the first conveyor belt (10) and above the discharging end of the second conveyor belt (14).
4. The electrode plate conveying and detecting device according to claim 1, characterized in that, The driving mechanism includes a rotating motor (26), on the top of the base (8), a support plate (3) is welded, the rotating motor (26) is horizontally fixedly installed on one side of the support plate (3), and on one side of the driving rollers of the second conveyor belt (14) and the first conveyor belt (10), a driving shaft (1) and a driven shaft (6) are horizontally welded respectively.
5. An electrode plate conveying and detecting device according to claim 4, characterized in that, The driving shaft (1) and the driven shaft (6) both penetrate through a side plate (15) and are rotatably connected to the side plate (15), on one side of the support plate (3), a linkage shaft (4) is horizontally rotatably connected, and between the driving shaft (1) and the linkage shaft (4), the same first belt (2) is connected, and between the driven shaft (6) and the linkage shaft (4), the same second belt (5) is connected.
6. The electrode plate conveying and detecting device according to claim 5, wherein, At the other end of the linkage shaft (4), a large disc (13) is welded, on one side of the large disc (13), a circular groove (23) is formed, at the center of the circular groove (23), a small disc (21) is welded, on a part of the inner wall of the circular groove (23), inner convex teeth (25) are welded, and on a part of the outer periphery of the small disc (21), outer convex teeth (22) are welded.
7. An electrode plate conveying and detecting device according to claim 6, wherein, Between the inner convex teeth (25) and the outer convex teeth (22), a gear (24) is provided, the gear (24) meshes with a plurality of inner convex teeth (25) and a plurality of outer convex teeth (22) in sequence, and one end of the rotating shaft (12) penetrates through one of the side plates (15) and is welded to the center of the gear (24).
Citation Information
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