New energy automobile energy storage cell insulation paper processing and conveying mechanism
By designing a processing and conveying mechanism for insulating paper of energy storage cells for new energy vehicles, the problems of stacking and dust pollution of insulating paperboard during transportation were solved by using sorting carrier boxes and cleaning mechanisms, thus achieving efficient and dust-free conveying and collection of insulating paper.
Patent Information
- Application Number
- CN202511325540.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-17
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2045-09-17
AI Technical Summary
Existing insulating paperboards for energy storage cells are prone to being squeezed and stacked during transportation, leading to dust adhesion and pollution, affecting transportation efficiency and subsequent processing, and requiring manual collection.
A processing and conveying mechanism for insulating paper of energy storage cells for new energy vehicles was designed, which includes a sorting carrier box, a dust removal brush roller and a negative pressure dust collection device. The sorting mechanism avoids stacking, the cleaning mechanism removes dust, and the insulating paper is collected by a partitioned carrier plate.
This method enables the orderly transport of insulating paper, avoids dust pollution, improves transport efficiency and processing quality, and reduces manual intervention.
Smart Images

Figure CN120841292B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of energy storage cell insulation paper processing technology, specifically to a conveying mechanism for processing insulation paper for new energy vehicle energy storage cells. Background Technology
[0002] The processing of insulating paper for energy storage cells refers to the application of insulating paper in the assembly process of battery cells to prevent short circuits between cells and ensure electrical safety. The thickness of the insulating paper is usually between 0.15mm and 0.75mm. It is usually made of cellulose fiber through special processing and has excellent electrical properties, mechanical strength and heat resistance. This insulating paper plays a vital role in energy storage cells.
[0003] The utility model disclosed in CN220431423U is a conveying mechanism for insulating paper processing. During the conveying process, when assisting in feeding and limiting the material, the lead screw connected below the knob can be rotated. When the lead screw rotates, the engaging nut sleeve connected to it can move downward. When the engaging nut sleeve moves downward, the moving block and moving plate connected below can move downward synchronously. At this time, the fixed shaft and rubber pulley fixedly installed below the moving plate can limit the material placed above the conveyor belt on both sides, preventing the material from shifting during the conveying process due to accidental contact by workers.
[0004] The utility model with announcement number CN209480501U discloses a conveyor belt correction device for insulating paperboard. When the conveyor belt is conveyed in reverse, after the cylinder is started, the sliding bearing on the telescopic rod of the cylinder moves to drive the correction guide roller at this end to move, thereby achieving the purpose of correction. After the deviation signal disappears, the corresponding solenoid valve closes, the correction operation stops, and the transmission belt can run normally.
[0005] However, the above-mentioned processing and conveying device for insulating paperboard for energy storage cells still has the following problems in actual use: Although the conveying mechanism and the correction mechanism are used to prevent the insulating paperboard from shifting during conveying, such insulating paperboards are usually squeezed and stacked together during conveying. Some insulating paperboards are piled up together, causing dust to stick and pollute, affecting the conveying and subsequent processing operations. At the same time, manual collection is required after conveying, which affects the conveying and processing efficiency of insulating paperboards.
[0006] Therefore, we propose a processing and conveying mechanism for insulating paper of energy storage cells in new energy vehicles to solve the problems mentioned above. Summary of the Invention
[0007] The purpose of this invention is to provide a processing and conveying mechanism for insulating paper of energy storage cells in new energy vehicles. This mechanism addresses the problem that existing insulating paperboards are often squeezed and stacked together during transport, resulting in dust accumulation and pollution, which affects transport and subsequent processing operations. Furthermore, manual collection is required after transport, which also affects the efficiency of insulating paperboard transport and processing.
[0008] To achieve the above objectives, the present invention provides the following technical solution: a new energy vehicle energy storage cell insulation paper processing and conveying mechanism, including a conveying platform, and conveying shafts rotatably disposed on the left and right sides inside the conveying platform via bearings, and a conveying track is meshed on the outer wall of the conveying shafts;
[0009] It also includes: a sorting mechanism is provided on the left side of the top surface of the conveying platform, and the sorting mechanism includes a sorting carrier box for placing insulating paper, and a telescopic push block is slidably provided at the bottom center of the sorting carrier box, and the left and right sides of the top surface of the telescopic push block are arranged in an arc-shaped structure.
[0010] A cleaning mechanism is provided in the center of the top surface of the conveying platform. The cleaning mechanism includes dust removal brush rollers arranged symmetrically in the left-right direction, and the top surface of each of the symmetrically arranged dust removal brush rollers is provided with a negative pressure dust suction cover.
[0011] Preferably, the sorting mechanism includes a support base, which is fixedly installed on the left side of the top surface of the conveying platform. A reciprocating threaded rod is rotatably provided in the middle of the top surface of the support base via a bearing, and the thread of the reciprocating threaded rod passes through the bottom end of the telescopic push block.
[0012] Preferably, the sorting mechanism includes a drive shaft, which is rotatably mounted on the top left side of the conveying platform via a bearing. The front end of the drive shaft is connected to the front end of the conveying shaft via a first pulley assembly, and the rear end of the drive shaft is meshed with the left end of the reciprocating threaded rod via a bevel gear assembly.
[0013] Preferably, the sorting mechanism includes a discharge guide chute, which is an inverted "T"-shaped structure opened on the bottom surface of the sorting carrier box. The discharge guide chute is slidably connected to the top of the telescopic push block, and the right end of the discharge guide chute is used to push a single piece of insulating paper to the right.
[0014] Preferably, the cleaning mechanism includes an elastic damping rod, with the inner end of the elastic damping rod rotating against the outer end of the dust removal brush roller, and the outer end of the elastic damping rod being fixedly installed on the top surface of the conveying platform. The symmetrically arranged dust removal brush rollers and the front end of the driven gear are connected to each other through a second pulley assembly, and the inner side of the driven gear is meshed with a bearing that rotates at the front end of the conveying platform.
[0015] Preferably, the cleaning mechanism includes a flipping link, with the right end of the flipping link eccentrically mounted to the front end of the right conveying shaft via a bearing, and the left end of the flipping link rotatably connected to the right end of the push piston via a bearing, while the push piston is slidably mounted on the front of the conveying platform.
[0016] Preferably, the cleaning mechanism includes a negative pressure sleeve fixedly installed on the front of the conveying platform, and the negative pressure sleeve is slidably connected to the left end of the push piston. The front of the negative pressure sleeve is provided with a one-way exhaust slot, and the left end of the negative pressure sleeve is connected through to the bottom end of the negative pressure telescopic pipe.
[0017] Preferably, the cleaning mechanism includes a negative pressure dust collection hood that is slidably installed on the top surface of the conveying platform, and the symmetrically arranged negative pressure dust collection hoods are connected through to the top of the negative pressure telescopic pipe. The negative pressure dust collection hood is used to absorb and clean the dust on the surface of the dust removal brush roller.
[0018] Preferably, the surface of the conveyor belt is provided with support frames for conveying insulating paper at equal intervals, and the support frames are symmetrically connected to the conveyor belt by elastic pads. The symmetrical support frames are connected to each other by flexible chain plates. Furthermore, the bottom sides of the support frame in the middle of the conveyor belt are fitted with abutting brackets, and the bottom end of the abutting brackets is fixedly installed in the middle of the top surface of the conveyor platform. The abutting brackets abut against the support frames through the protrusions on the top surface, causing the insulating paper to bounce.
[0019] Preferably, the right end of the conveying platform is provided with a separating bearing plate that rotates intermittently under the control of a servo motor, and the separating bearing plate, together with the support frame on the surface of the conveyor belt, carries and collects the separated and cleaned insulating paper in a single manner.
[0020] Compared with the prior art, the beneficial effects of the present invention are as follows: This new energy vehicle energy storage cell insulation paper processing and conveying mechanism uses a sorting carrier box and a support frame to sequentially convey the insulation paper. A cleaning mechanism removes dust while collecting it under negative pressure, and intermittently rotating partitioned carrier plates load and collect the processed insulation paper, preventing it from piling up and affecting subsequent processing operations. The specific details are as follows:
[0021] 1. The sorting and carrying box is used to stack and store the cut insulating paper. The conveying shaft drives the transmission shaft to rotate through the first belt pulley assembly. The transmission shaft drives the reciprocating threaded rod to rotate through the bevel gear assembly, which in turn drives the telescopic pushing block sliding inside the discharge guide chute to move the bottommost piece of insulating paper. The discharge guide chute blocks the second to last piece of insulating paper to prevent multiple pieces from being discharged during the sorting and conveying of the insulating paper.
[0022] The conveyor belt drives the support frame to move, thereby limiting the load on the insulating paper pushed out by the telescopic push block at the bottom right of the sorting load box. This ensures that each piece of insulating paper can be supported by the support frame. When the telescopic push block resets, it abuts against the opening and closing door of the sorting load box and descends, preventing deformation of subsequent insulating paper.
[0023] 2. The movable support frame contacts the protrusion of the support bracket. The elastically connected support frame drives the insulating paper to bounce and help shake off the dust adhering to the surface of the insulating paper. The end of the dust removal brush roller is set between the elastic damping rods by clamping. The dust removal brush roller moves upward past the support frame and contacts the top surface of the insulating paper to clean and remove dust from the insulating paper, so as to avoid the sticky dust affecting the subsequent processing of the insulating paper.
[0024] The driving gear meshes with the driven gears on both sides to rotate, and drives the connected dust removal brush roller to rotate through the second pulley assembly, so that the surface of the insulating paper can be cleaned by the dust removal brush roller rotating in the opposite direction.
[0025] 3. The eccentrically mounted flipping linkage drives the bearing-connected push piston to move back and forth. Air is discharged through the one-way exhaust slot on the front of the negative pressure sleeve. When the push piston moves to the right, the inside of the negative pressure sleeve is in a negative pressure state. The through-connected negative pressure telescopic tube draws air from inside the negative pressure dust collection hood, thereby sucking up the dust from the dust removal brush roller and avoiding the subsequent processing and use due to the accumulation of insulating paper.
[0026] The right-side support frame rotates at the end of the conveyor belt, and the right end of the insulation paper slides parallel to the right into the compartmentalized carrier plate. Under the push of the left-side support frame, all the insulation paper is pushed into the compartmentalized carrier plate for separate storage, avoiding mutual accumulation and affecting subsequent processing operations. Attached Figure Description
[0027] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention;
[0028] Figure 2 This is a schematic diagram of the three-dimensional structure of the sorting carrier box of the present invention;
[0029] Figure 3 This is a schematic diagram of the cross-sectional structure of the sorting carrier box of the present invention;
[0030] Figure 4 For the present invention Figure 3 Enlarged structural diagram at point A in the middle;
[0031] Figure 5 This is a three-dimensional structural diagram of the cleaning mechanism of the present invention;
[0032] Figure 6 For the present invention Figure 5Enlarged structural diagram at point B;
[0033] Figure 7 This is a schematic diagram of the three-dimensional structure of the push piston and negative pressure sleeve of the present invention;
[0034] Figure 8 This is a schematic diagram of the three-dimensional structure of the partition bearing disk of the present invention;
[0035] Figure 9 For the present invention Figure 8 Enlarged structural diagram at point C.
[0036] In the diagram: 1. Conveying platform; 2. Conveying shaft; 3. Conveying track; 4. Sorting and carrying box; 5. Telescopic pusher block; 6. Dust removal brush roller; 7. Negative pressure dust collection hood; 8. Bearing base; 9. Reciprocating threaded rod; 10. Transmission shaft; 11. First pulley assembly; 12. Bevel gear group; 13. Discharge guide chute; 14. Elastic damping rod; 15. Driven gear; 16. Drive gear; 17. Tilting connecting rod; 18. Pushing piston; 19. Negative pressure sleeve; 20. Negative pressure telescopic tube; 21. Support frame; 22. Flexible chain plate; 23. Abutment bracket; 24. Separating carrying plate; 25. Second pulley assembly. Detailed Implementation
[0037] 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 some embodiments of the present invention, and not all embodiments. 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.
[0038] Please see Figures 1-9 The present invention provides the following technical solution:
[0039] Example 1: In order to solve the problems existing in the transportation process of insulating paper for energy storage cells, this example discloses the following technical solution: a processing and conveying mechanism for insulating paper of energy storage cells for new energy vehicles, including a conveying platform 1 and a conveying shaft 2 rotatably disposed on the left and right sides inside the conveying platform 1 via bearings, and a conveying track 3 is meshed on the outer wall of the conveying shaft 2; the surface of the conveying track 3 is provided with support frames 21 for conveying the insulating paper at equal intervals, and the support frames 21 are symmetrically connected to the conveying track 3 by elastic pads, and the symmetrical support frames 21 are interconnected by flexible chain plates 22.
[0040] A sorting mechanism is provided on the top left side of the conveying platform 1. The sorting mechanism includes a sorting carrier box 4 for placing insulating paper. A telescopic push block 5 is slidably arranged at the bottom center of the sorting carrier box 4. The left and right sides of the top surface of the telescopic push block 5 are arranged in an arc shape. The sorting mechanism includes a carrier base 8, which is fixedly installed on the top left side of the conveying platform 1. A reciprocating threaded rod 9 is rotatably arranged in the middle of the top surface of the carrier base 8 through a bearing. The reciprocating threaded rod 9 is threaded through the bottom end of the telescopic push block 5.
[0041] The sorting mechanism includes a drive shaft 10, which is rotatably mounted on the top left side of the conveying platform 1 via bearings. The front end of the drive shaft 10 is connected to the front end of the conveying shaft 2 via a first pulley assembly 11. The rear end of the drive shaft 10 is meshed with the left end of the reciprocating threaded rod 9 via a bevel gear assembly 12. The sorting mechanism includes a discharge guide 13, which is an inverted "T"-shaped structure located on the bottom surface of the sorting carrier box 4. The discharge guide 13 is slidably connected to the top of the telescopic push block 5. The right end of the discharge guide 13 is used to push a single piece of insulating paper to the right.
[0042] like Figures 2-4 As shown, during the conveying process of insulating paper, the cut insulating paper is first placed in the sorting carrier box 4 in a stacked manner. Then, the drive motor drives the conveying shaft 2 inside the conveying platform 1 to rotate, so that the conveying shaft 2 drives the transmission shaft 10 to rotate through the first belt pulley assembly 11 at the front end. The transmission shaft 10 drives the reciprocating threaded rod 9 to rotate through the bevel gear assembly 12 at the rear end, so that the threaded telescopic push block 5 slides to the right inside the discharge guide chute 13. At the same time, the top of the telescopic push block 5 contacts and pushes the bottommost piece of insulating paper inside the sorting carrier box 4 to move. Meanwhile, the right end of the discharge guide chute 13 blocks the second to last piece of insulating paper, preventing multiple pieces from being discharged during the sorting and conveying process of insulating paper.
[0043] Furthermore, the conveyor belt 3 drives the top elastically connected support frame 21 to move to the right. Each set of symmetrically installed support frames 21 is connected by the flexible chain plate 22 in the middle so that it can follow the movement when the conveyor belt 3 rotates. The support frame 21 that moves to the bottom right of the sorting carrier box 4 supports and limits the insulation paper pushed out by the telescopic push block 5 so that each piece of insulation paper can be supported by the support frame 21. When the telescopic push block 5 is reset, it abuts against the opening and closing door of the sorting carrier box 4 and descends to avoid causing deformation to the subsequent insulation paper.
[0044] Example 2: To address the problems existing in the transportation of insulating paper for energy storage cells, this example discloses the following technical solution: A cleaning mechanism is provided in the center of the top surface of the conveying platform 1, and the cleaning mechanism includes dust removal brush rollers 6 arranged symmetrically in the left-right direction, and each of the symmetrically arranged dust removal brush rollers 6 has a negative pressure dust suction hood 7 on its top surface; Abutment brackets 23 are attached to the front and rear sides of the bottom of the support frame 21 in the middle of the conveyor belt 3, and the bottom end of the abutment brackets 23 is fixedly installed on the conveying platform 1. In the middle of the top surface, the abutment bracket 23 drives the insulating paper to jump by abutting the support frame 21 on the top surface; the cleaning mechanism includes an elastic damping rod 14, and the inner end of the elastic damping rod 14 is attached to and rotates with the outer end of the dust removal brush roller 6. The outer end of the elastic damping rod 14 is fixedly installed on the top surface of the conveying platform 1. The symmetrically arranged dust removal brush roller 6 and the front end of the driven gear 15 are connected to each other through the second pulley assembly 25. The inner side of the driven gear 15 is meshed with the drive gear 16, which rotates at the front end of the conveying platform 1.
[0045] like Figures 5-7 As shown, the support frame 21 drives the insulating paper to move to the right along with the conveyor belt 3. When the support frame 21 contacts the protrusion of the abutment bracket 23 on the top surface of the conveyor platform 1, the internal insulating paper will bounce up and down through the elastically connected support frame 21, helping to shake off the dust adhering to the surface of the insulating paper. At the same time, the top of the support frame 21 contacts the dust removal brush roller 6 included in the cleaning mechanism. The end of the dust removal brush roller 6 is set between the elastic damping rods 14 by clamping, so that the dust removal brush roller 6 moves upward past the support frame 21 and contacts the top surface of the insulating paper, thereby cleaning and removing dust from the insulating paper and preventing the adhering dust from affecting the subsequent processing of the insulating paper.
[0046] Furthermore, the drive gear 16 installed on the front of the conveyor platform 1 is driven to rotate by a motor, and meshes with the driven gears 15 on the left and right sides, which in turn drive the connected dust removal brush roller 6 to rotate via the second pulley assembly 25, so as to clean the surface of the insulating paper by rotating in opposite directions.
[0047] Example 3: To address the problems existing in the transportation of insulating paper for energy storage cells, this example discloses the following technical solution: The cleaning mechanism includes a flipping link 17, the right end of which is eccentrically mounted to the front end of the right-side conveying shaft 2 via a bearing, and the left end of which is rotatably connected to the right end of the push piston 18 via a bearing. The push piston 18 is slidably mounted on the front of the conveying platform 1. The cleaning mechanism also includes a negative pressure sleeve 19 fixedly mounted on the front of the conveying platform 1, and the negative pressure sleeve 19 is slidably connected to the left end of the push piston 18. The surface is provided with a one-way exhaust slot, and the left end of the negative pressure sleeve 19 is connected to the bottom end of the negative pressure telescopic pipe 20; the cleaning mechanism includes a negative pressure dust suction hood 7 which is slidably installed on the top surface of the conveying platform 1, and the symmetrically arranged negative pressure dust suction hoods 7 are connected to the top end of the negative pressure telescopic pipe 20, and the negative pressure dust suction hood 7 is used to absorb and clean the dust on the surface of the dust removal brush roller 6; the right end of the conveying platform 1 is provided with a separating bearing plate 24 that is intermittently rotated by a servo motor, and the separating bearing plate 24, together with the support frame 21 on the surface of the conveyor belt 3, carries and collects the separated and cleaned insulating paper in a single manner.
[0048] like Figures 8-9 As shown, the rotation of the conveying shaft 2 drives the eccentrically connected flipping link 17 to rotate in a circular motion, causing the flipping link 17 to drive the push piston 18 connected to the left end bearing to move reciprocally. When it moves into the negative pressure sleeve 19, the air inside is discharged through the one-way exhaust slot on the front of the negative pressure sleeve 19. When the end of the push piston 18 moves to the right, the inside of the negative pressure sleeve 19 is in a negative pressure state. The negative pressure telescopic tube 20, which is connected to the negative pressure sleeve 19, draws air from inside the negative pressure dust suction hood 7. Then, the dust on the surface of the dust removal brush roller 6 is sucked up by the negative pressure dust suction hood 7, avoiding subsequent cleaning operations on the insulating paper due to sticking.
[0049] Furthermore, the support frame 21 moves the cleaned insulation paper to the right. The support frame 21 on the right side rotates at the end of the conveyor belt 3, while the right end of the rigid insulation paper slides parallel to the right and moves into the interior of the separating carrier plate 24. Under the push of the support frame 21 on the left, all the insulation paper is pushed into the separating carrier plate 24 for separation and storage, so as to avoid mutual accumulation and affect subsequent processing operations.
[0050] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A new energy vehicle energy storage cell insulation paper processing and conveying mechanism, including a conveying platform (1) and a conveying shaft (2) rotatably disposed on the left and right sides inside the conveying platform (1) via bearings, and a conveying track (3) is meshed on the outer wall of the conveying shaft (2). Its features are, Also includes: The top left side of the conveying platform (1) is provided with a sorting mechanism, and the sorting mechanism includes a sorting carrier box (4) for placing insulating paper, and a telescopic push block (5) is slidably provided at the bottom center of the sorting carrier box (4), and the left and right sides of the top surface of the telescopic push block (5) are arranged in an arc structure. The top surface of the conveying platform (1) is provided with a cleaning mechanism, and the cleaning mechanism includes dust removal brush rollers (6) arranged symmetrically in the left and right directions, and the top surface of the symmetrically arranged dust removal brush rollers (6) is provided with a negative pressure dust suction cover (7). The sorting mechanism includes a bearing base (8), and the bearing base (8) is fixedly installed on the left side of the top surface of the conveying platform (1). A reciprocating threaded rod (9) is rotatably provided in the middle of the top surface of the bearing base (8) through a bearing. The reciprocating threaded rod (9) is threaded through the bottom end of the telescopic push block (5). The sorting mechanism includes a drive shaft (10), and the drive shaft (10) is rotatably mounted on the top left side of the conveying platform (1) via a bearing. The front end of the drive shaft (10) is connected to the front end of the conveying shaft (2) via a first pulley assembly (11), and the rear end of the drive shaft (10) is meshed with the left end of the reciprocating threaded rod (9) via a bevel gear assembly (12). The cleaning mechanism includes an elastic damping rod (14), and the inner end of the elastic damping rod (14) is attached to and rotates with the outer end of the dust removal brush roller (6). The outer end of the elastic damping rod (14) is fixedly installed on the top surface of the conveying platform (1). The symmetrically arranged dust removal brush roller (6) and the front end of the driven gear (15) are connected to each other through the second pulley assembly (25). At the same time, the inner side of the driven gear (15) is meshed with a bearing that rotates at the front end of the conveying platform (1) and is a drive gear (16). The cleaning mechanism includes a flipping link (17), and the right end of the flipping link (17) is eccentrically mounted to the front end of the right conveying shaft (2) via a bearing, and the left end of the flipping link (17) is rotatably connected to the right end of the push piston (18) via a bearing, while the push piston (18) is slidably mounted on the front of the conveying platform (1).
2. The new energy vehicle energy storage cell insulating paper processing and conveying mechanism according to claim 1, characterized in that: The sorting mechanism includes a discharge guide trough (13), and the discharge guide trough (13) is an inverted "T" shaped structure opened on the bottom surface of the sorting carrier box (4). The interior of the discharge guide trough (13) is slidably connected to the top of the telescopic push block (5), and the right end of the discharge guide trough (13) is used to push a single piece of insulating paper to the right.
3. The new energy vehicle energy storage cell insulating paper processing and conveying mechanism according to claim 1, characterized in that: The cleaning mechanism includes a negative pressure sleeve (19) fixedly installed on the front of the conveying platform (1), and the negative pressure sleeve (19) is slidably connected to the left end of the push piston (18). The front of the negative pressure sleeve (19) is provided with a one-way exhaust slot, and the left end of the negative pressure sleeve (19) is connected to the bottom end of the negative pressure telescopic pipe (20).
4. The new energy vehicle energy storage cell insulating paper processing and conveying mechanism according to claim 3, characterized in that: The cleaning mechanism includes a negative pressure dust collection hood (7) which is slidably installed on the top surface of the conveying platform (1). The symmetrically arranged negative pressure dust collection hoods (7) are connected to the top of the negative pressure telescopic tube (20). The negative pressure dust collection hoods (7) are used to absorb and clean the dust on the surface of the dust removal brush roller (6).
5. The new energy vehicle energy storage cell insulating paper processing and conveying mechanism according to claim 1, characterized in that: The surface of the conveyor belt (3) is provided with support frames (21) for conveying insulating paper at equal intervals. The support frames (21) are symmetrically connected to the conveyor belt (3) by elastic pads. The symmetrical support frames (21) are connected to each other by flexible chain plates (22). The bottom front and back sides of the support frame (21) in the middle of the conveyor belt (3) are fitted with abutting brackets (23). The bottom end of the abutting brackets (23) is fixedly installed in the middle of the top surface of the conveyor platform (1). The abutting brackets (23) abut against the support frame (21) through the protrusion on the top surface, causing the insulating paper to jump.
6. The new energy vehicle energy storage cell insulating paper processing and conveying mechanism according to claim 5, characterized in that: The right end of the conveying platform (1) is provided with a separating bearing plate (24) that is intermittently rotated by a servo motor. The separating bearing plate (24) works with the support frame (21) on the surface of the conveyor belt (3) to carry and collect the separated and cleaned insulating paper in a single manner.
Citation Information
Patent Citations
Conveyor belt deviation correcting device for insulating paperboard
CN209480501U
Transmission mechanism for insulation paper processing
CN220431423U
Transfer device for transformer insulation paper production
CN119551489A
A dust-proof and low-wear synchronous belt slide
CN119750130A