Glass spacing paper cleaning, cutting and conveying system
By designing a glass spacer paper cleaning, cutting, and conveying system that integrates cutting, cleaning, and cutter cleaning functions, the problems of dispersed production lines and insufficient cleaning are solved, achieving automated and efficient cutting and cleaning, and simplifying the production line layout.
Patent Information
- Application Number
- CN202512003487.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-29
- Publication Date
- 2026-01-30
AI Technical Summary
In existing glass spacer paper cutting and processing production lines, the processing devices are scattered, cleaning is insufficient, and the cutters cannot be automatically cleaned, affecting cutting quality and efficiency.
Design a glass spacer paper cleaning, cutting and conveying system, including cutting, cleaning and cutter cleaning mechanisms, to achieve automatic cleaning through airflow nozzles and air collection components, combined with flexible scraper to clean the cutter, and integrated into a multi-functional integrated system.
It achieves efficient cleaning of the spacer paper and automatic cleaning of the cutter, improving cutting quality and efficiency while reducing the space occupied by the device and manual intervention.
Smart Images

Figure CN121424481A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of glass spacer paper processing technology, specifically a glass spacer paper cleaning, cutting and conveying system. Background Technology
[0002] The cleaning of glass spacer paper (also known as glass backing paper) during processing steps such as cutting is crucial, directly affecting the cleanliness, lifespan, and performance of the glass when it is subsequently applied. In existing glass spacer paper manufacturing production lines, the cleaning equipment for spacer paper is generally designed and laid out independently from the cutting equipment, and then connected in series via a conveyor system. This results in the various processing steps and equipment being relatively dispersed, the overall production line being large and inconvenient to arrange within the production workshop, and the cleaning of the spacer paper is not thorough enough, affecting its manufacturing quality. After cutting, the cutter blades in the cutting equipment have debris and impurities adhering to their surface, affecting the subsequent cutting quality. In actual production, this cannot be automatically cleaned; it generally requires manual disassembly and cleaning. This passive approach, using timed manual cleaning or manual disassembly and cleaning only when the cutting quality has significantly declined and defects are discovered during maintenance, makes the cutting equipment inconvenient to use and results in unstable cutting quality and efficiency. Summary of the Invention
[0003] The purpose of this invention is to provide a glass spacer paper cleaning, cutting and conveying system to solve the problems that the processing devices in the existing glass spacer paper cutting production line are relatively scattered, which is not conducive to the layout in the production workshop. The spacer paper is not cleaned sufficiently during the cutting process, and the cutter cannot be automatically cleaned, which makes the cutting device inconvenient to use and the cutting quality and efficiency unstable.
[0004] To achieve the above objectives, the present invention adopts the following technical solution: a glass spacer paper cleaning, cutting and conveying system, comprising a processing station, a conveying station and a receiving station connected in sequence;
[0005] The processing station is equipped with a cutting mechanism, a spacer paper cleaning mechanism, and a cutter cleaning mechanism. The cutting mechanism cuts the spacer paper fed into the processing station using a cutter. The spacer paper cleaning mechanism is used to clean impurities on the surface of the spacer paper and works in conjunction with the cutter cleaning mechanism to clean the cutter.
[0006] The conveying station continuously conveys several pieces of the spacer paper after slitting from the processing station to the receiving station.
[0007] The receiving station is responsible for receiving the spacer paper.
[0008] As a further description of the above technical solution:
[0009] The cutting mechanisms are arranged in pairs, each including a roller and a cutter. The roller is rotatably mounted in the first base of the processing station, and a first transmission gear is provided at its end. The first transmission gears of the two cutting mechanisms are meshed and connected. One roller is connected to a first servo motor on the first base. The cutter extends axially along the surface of the roller. When the cutters of the two cutting mechanisms rotate to the closed position, they cut the spacer paper.
[0010] As a further description of the above technical solution:
[0011] The spacer paper cleaning mechanism includes a first guide seat, a second guide seat, an airflow nozzle assembly, and an air collection assembly. The first guide seat is located inside the first base on the feeding side of the cutting mechanism, and the second guide seat is located inside the first base on the discharge side of the cutting mechanism. The spacer paper passes through the interface between the first and second guide seats. The airflow nozzle assembly and the air collection assembly are respectively located on the side of the second guide seat and the first guide seat facing the cutting mechanism.
[0012] As a further description of the above technical solution:
[0013] The second guide seat is also provided with an electrostatic eliminator, the ion emitting end of which extends toward the cutting mechanism.
[0014] As a further description of the above technical solution:
[0015] The interface of the second guide seat gradually contracts along the conveying direction of the spacer paper to form a tapered section.
[0016] As a further description of the above technical solution:
[0017] The cutter cleaning mechanism includes a first flexible scraper and a second flexible scraper. The first flexible scraper is disposed on the roller shaft and on the side of the cutter, and the second flexible scraper is disposed on the first guide seat and on the rotation trajectory of the cutter.
[0018] As a further description of the above technical solution:
[0019] The conveying station includes a double-layer conveying mechanism near the processing station. The double-layer conveying mechanism includes a lower conveying component and an upper conveying component distributed vertically. Both the lower and upper conveying components include several first transmission shafts rotatably mounted on a second base of the conveying station. Several wide conveyor belts are sleeved on the first transmission shafts of the lower conveying component, and several narrow conveyor belts are sleeved on the first transmission shafts of the upper conveying component. The wide and narrow conveyor belts abut against the spacer paper. The first transmission shafts of the lower and upper conveying components are provided with mutually meshing second transmission gears, and one of the second transmission gears is connected to a second servo motor.
[0020] As a further description of the above technical solution:
[0021] An isolation mechanism is provided on the inner or outer side of the upper-level conveying component. The isolation mechanism includes several support frames and isolation components disposed on the support frames.
[0022] As a further description of the above technical solution:
[0023] The conveying station also includes a material distribution and conveying mechanism near the receiving station. The material distribution and conveying mechanism includes a second drive shaft, a guide seat, and a shaped conveyor belt. The second drive shaft is rotatably mounted on the second base and connected to a third servo motor on the second base. A first rotating seat is mounted on the second drive shaft. One end of the guide seat is rotatably connected to the second drive shaft, and the other end is connected to a second rotating seat. The shaped conveyor belt is sleeved on the first rotating seat and the second rotating seat, and abuts against the spacer paper.
[0024] As a further description of the above technical solution:
[0025] The top of the receiving station is equipped with a U-shaped guide enclosure, and the opening of the guide enclosure faces the conveying station.
[0026] In summary, due to the adoption of the above technical solution, the present invention has the following beneficial effects compared with the prior art:
[0027] In use, the glass spacer paper cleaning, cutting, and conveying system of this invention delivers the spacer paper into the processing station via a conveying device at the front end. The cutting mechanisms on the upper and lower sides of the spacer paper operate synchronously, with the two cutters rotating to a closed state to achieve high-quality cutting of the spacer paper. Before and after cutting, high pressure is generated at the airflow nozzle assembly, and negative pressure is generated at the air collection assembly, creating an airflow between them. This airflow blows out debris and impurities from the surface of the spacer paper, the cutting area, and the cutter surface, and draws them into the air collection assembly, then discharges them from the processing station for unified collection. This achieves high-quality cutting of the spacer paper. During the paper cleaning process, the airflow also acts on the first flexible scraper to clean the cutter surface. During the cutter's rotation, it contacts the second flexible scraper for secondary cleaning, thus achieving automatic cleaning of the cutter to ensure subsequent cutting quality. Through the combined use of the cutting mechanism, the spacer paper cleaning mechanism, and the cutter cleaning mechanism, a fully automatic multi-functional integration of spacer paper cutting and cleaning, and cutter cleaning is achieved. At the same time, the structure is simplified and compact, reducing the internal space occupation. Afterward, the cut spacer paper sheets are conveyed to the receiving station through the conveyor station to achieve stable and automatic material collection. Attached Figure Description
[0028] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present invention and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0029] Figure 1 This is a schematic diagram of a glass spacer paper cleaning, cutting, and conveying system.
[0030] Figure 2 This describes the usage status of a processing station in a glass spacer paper cleaning, cutting, and conveying system. Figure 1 .
[0031] Figure 3 This describes the usage status of a processing station in a glass spacer paper cleaning, cutting, and conveying system. Figure 2 .
[0032] Figure 4 This is a partial structural diagram of a double-layer conveying mechanism in a glass spacer paper cleaning, cutting, and conveying system.
[0033] Figure 5 This is a schematic diagram of the material conveying mechanism in a glass spacer paper cleaning, cutting, and conveying system.
[0034] Figure 6 This is a schematic diagram of the conveying station in a glass spacer paper cleaning, cutting and conveying system.
[0035] Legend:
[0036] 1. Processing station; 2. Cutting mechanism; 21. Roller; 22. Cutter; 23. First transmission gear; 24. First servo motor; 3. Spacer paper cleaning mechanism; 31. First guide seat; 32. Second guide seat; 33. Airflow nozzle assembly; 34. Air collection assembly; 35. Static eliminator; 36. Closing section; 4. Cutter cleaning mechanism; 41. First flexible scraper; 42. Second flexible scraper; 5. Conveying station; 51. First transmission shaft; 511. Second transmission gear; 512. Second servo motor; 52. Wide conveyor belt; 53. Narrow conveyor belt; 54. Support frame; 541. Isolator; 55. Second transmission shaft; 551. Third servo motor; 552. First rotating seat; 56. Guide seat; 561. Second rotating seat; 57. Irregularly shaped conveyor belt; 6. Receiving station; 100. Spacer paper. Detailed Implementation
[0037] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, 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, not all, of the embodiments of the present invention. The components of the embodiments of the present invention described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0038] Therefore, the following detailed description of the embodiments of the invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the invention without inventive effort are within the scope of protection of the invention.
[0039] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0040] In the description of the embodiments of the present invention, it should be noted that the terms "upper" and "inner" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship in which the product of the invention is usually placed when in use. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting the present invention.
[0041] In the description of this invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection, an indirect connection through an intermediate medium, or a connection within two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0042] Example 1:
[0043] Please see Figure 1-6 The present invention provides a technical solution: a glass spacer paper cleaning, cutting and conveying system, comprising a processing station 1, a conveying station 5 and a receiving station 6 connected in sequence;
[0044] The processing station 1 is equipped with a cutting mechanism 2, a spacer paper cleaning mechanism 3, and a cutter cleaning mechanism 4. The cutting mechanism 2 cuts the spacer paper 100 fed into the processing station 1 using a cutter 22. The spacer paper cleaning mechanism 3 is used to clean impurities on the surface of the spacer paper 100, and it works in conjunction with the cutter cleaning mechanism 4 to clean the cutter 22.
[0045] The conveying station 5 continuously conveys several pieces of the spacer paper 100 after being cut from the processing station 1 to the receiving station 6.
[0046] The receiving station 6 is responsible for receiving the spacer paper 100.
[0047] The cutting mechanisms 2 are arranged in pairs, each including a roller 21 and a cutter 22. The roller 21 is rotatably mounted within a first base of the processing station 1, and a first transmission gear 23 is provided at its end. The first transmission gears 23 of the two cutting mechanisms 2 are meshed together. One roller 21 is connected to a first servo motor 24 on the first base. The cutter 22 extends axially along the surface of the roller 21. When the cutters 22 of the two cutting mechanisms 2 rotate to their closed positions, they cut the spacer paper 100. Through the meshing transmission of the first transmission gears 23 and the driving force applied by the first servo motor 24, the two rollers 21 are driven to rotate synchronously, so that the cutters 22 on them rotate synchronously and achieve high-quality cutting of the spacer paper 100 when closed.
[0048] The spacer paper cleaning mechanism 3 includes a first guide seat 31, a second guide seat 32, an airflow nozzle assembly 33, and an air collection assembly 34. The first guide seat 31 is located inside the first base on the feeding side of the cutting mechanism 2, and the second guide seat 32 is located inside the first base on the discharge side of the cutting mechanism 2. The spacer paper 100 passes through the interface between the first guide seat 31 and the second guide seat 32. The airflow nozzle assembly 33 and the air collection assembly 34 are respectively located on the side of the second guide seat 32 and the first guide seat 31 facing the cutting mechanism 2. In use, the airflow nozzle assembly 33 sprays out a cleaning airflow. The direction of this airflow is opposite to the conveying direction of the spacer paper 100, so that impurities on the surface of the spacer paper 100 are fully blown up and drawn into the air collection assembly 34 on the other side by the airflow, thereby achieving efficient cleaning of the spacer paper 100.
[0049] The interface of the second guide seat 32 gradually narrows along the conveying direction of the spacer paper 100 to form a tapered section 36. This facilitates the connection of the ends of the spacer paper 100, allowing the cut spacer paper 100 to pass back through the second guide seat 32 under the guidance of the tapered section 36 for subsequent cutting.
[0050] The cutter cleaning mechanism 4 includes a first flexible scraper 41 and a second flexible scraper 42. The first flexible scraper 41 is disposed on the roller 21 and on the side of the cutter 22, and the second flexible scraper 42 is disposed on the first guide seat 31 and on the rotation trajectory of the cutter 22. In use, after the cutter 22 completes the cutting, the airflow ejected from the airflow nozzle assembly 33 impacts the first flexible scraper 41, causing it to deform towards the cutter 22 and sweep across the surface of the cutter 22, thus removing and cleaning debris and impurities on one side. As the cutter 22 rotates with the roller 21, it passes over the second flexible scraper 42. After contact, the two scrapers move relative to each other to remove debris and impurities on the other side of the cutter 22. The swept debris and impurities are sucked into the air collection assembly 34 along with the airflow. This achieves automatic cleaning of the cutter 22, preventing the adhesion of impurities and debris on its surface from affecting the quality of subsequent cutting operations.
[0051] The top of the receiving station 6 is equipped with a U-shaped guide barrier, the opening of which faces the conveying station 5. The conveying station 5 feeds the cut spacer paper 100 into the receiving station 6. Guided by the side plates and blocked by the baffles in the guide barrier, the spacer paper 100 is stably collected. The top surface of the inner side of the guide barrier is lower than the top surface of the conveying station 5, so that the spacer paper 100 entering the receiving station 6 gradually falls and stacks inside the guide barrier, achieving automatic collection.
[0052] The working principle of the glass spacer paper cleaning, cutting, and conveying system of this embodiment includes: During use, the conveying device (not shown in the figure) at the front end of processing station 1 sends the spacer paper 100 into processing station 1. The cutting mechanisms 2 on the upper and lower sides of the spacer paper 100 operate synchronously, and the two cutters 22 rotate to a closed state, achieving high-quality cutting of the spacer paper 100. Before and after cutting, high pressure is formed at the airflow nozzle assembly 33, and negative pressure is formed at the air collection assembly 34, creating an airflow between them. This airflow blows out debris and impurities from the surface of the spacer paper 100, the cutting area, and the surface of the cutters 22, and draws them into the air collection assembly 34, then discharges them from processing station 1 for unified collection. The airflow cleans the spacer paper 100 and also acts on the first flexible scraper 41 to clean the surface of the cutter 22. During the rotation of the cutter 22, it contacts the second flexible scraper 42 for secondary cleaning, thus achieving automatic cleaning of the cutter 22 to ensure the subsequent cutting quality. Through the combined use of the cutting mechanism 2, the spacer paper cleaning mechanism 3, and the cutter cleaning mechanism 4, the cutting and cleaning of the spacer paper 100 and the cleaning of the cutter 22 are fully automated and multifunctional. At the same time, the structure is simplified and compact, reducing the internal space occupation. Afterward, the cut spacer paper 100 pieces are conveyed to the receiving station 6 through the conveying station 5 to achieve stable and automatic material collection.
[0053] Example 2:
[0054] Please see Figure 2 , 3 The figure shows a glass spacer paper cleaning, cutting, and conveying system according to Embodiment 2 of the present invention. Based on the above embodiments, this embodiment further improves upon the following technical solution: The second guide seat 32 is also provided with an electrostatic eliminator 35, the ion emitting end of which extends toward the cutting mechanism 2. Ions emitted from the ion emitting end move with the airflow ejected from the airflow nozzle assembly 33, flowing over the surfaces of the spacer paper 100 and the cutter 22, achieving electrostatic neutralization to prevent the surfaces from continuously carrying charge and adhering with debris and impurities, thereby improving the cleaning effect of the spacer paper 100 and the cutter 22.
[0055] Example 3:
[0056] Please see Figure 4-6The figure shows a glass spacer paper cleaning, cutting and conveying system provided in Embodiment 3 of the present invention. Based on the above embodiments, this embodiment further improves the following technical solution: The conveying station 5 includes a double-layer conveying mechanism close to the processing station 1. The double-layer conveying mechanism includes a lower conveying component and an upper conveying component distributed vertically. The lower conveying component and the upper conveying component each include a plurality of first transmission shafts 51 rotatably mounted on the second base of the conveying station 5. A plurality of wide conveyor belts 52 are sleeved on the first transmission shafts 51 of the lower conveying component, and a plurality of narrow conveyor belts 53 are sleeved on the first transmission shafts 51 of the upper conveying component. The wide conveyor belts 52 and narrow conveyor belts 53 abut against the spacer paper 100. The first transmission shafts 51 of the lower conveying component and the first transmission shafts 51 of the upper conveying component are provided with mutually meshing second transmission gears 511. One of the second transmission gears 511 is connected to a second servo motor 512. Through the meshing transmission of the second transmission gear 511 and the application of driving torque by the second servo motor 512, the synchronous operation of the upper and lower double-layer conveying mechanisms is achieved. These mechanisms respectively abut against the upper and lower end faces of the spacer paper 100, ensuring stable and continuous conveying without slippage. After cutting, the edges of adjacent spacer papers 100 abut against each other, preventing lateral shifting during conveying. Furthermore, the clamping effect of the upper and lower double-layer conveying mechanisms prevents edge misalignment and stacking, thus improving the conveying efficiency of the spacer paper 100. The lower wide conveyor belt 52 plays the main conveying role, while the upper narrow conveyor belt 53 mainly functions as a pressure, limit, and auxiliary conveyor, ensuring stable and orderly conveying of the spacer paper 100 while reducing costs.
[0057] An isolation mechanism is provided on the inner or outer side of the upper conveying assembly. The isolation mechanism includes several support frames 54 and isolation members 541 disposed on the support frames 54. The isolation members 541 are mainly used to prevent dust from the external environment from falling onto the surface of the spacer paper 100 and the wide conveyor belt 52 and causing contamination, thus ensuring the cleanliness of both.
[0058] The conveying station 5 also includes a material distribution and conveying mechanism near the receiving station 6. The material distribution and conveying mechanism includes a second drive shaft 55, a guide seat 56, and a shaped conveyor belt 57. The second drive shaft 55 is rotatably mounted on the second base and connected to a third servo motor 551 on the second base. A first rotating seat 552 is mounted on the guide seat 56. One end of the guide seat 56 is rotatably connected to the second drive shaft 55, and the other end is provided with a second rotating seat 561. The shaped conveyor belt 57 is sleeved on the first rotating seat 552 and the second rotating seat 561, and abuts against the spacer paper 100. The two rotating seats of the docking irregular conveyor belt 57 are respectively set on the second drive shaft 55 and the guide seat 56. In use, the guide seat 56 can rotate relative to the second drive shaft 55, so that the material distribution and conveying mechanism can rotate and move, and make full contact with the spacer paper 100, providing a more stable conveying driving force to flatten the spacer paper 100 one by one and stably send it into the receiving station 6 for receiving. Under the gravity of the guide seat 56, the rotation is restricted, improving the structural stability.
[0059] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A glass spacer paper cleaning, slitting, and conveying system characterized by, The processing station, the conveying station and the material receiving station are sequentially connected; The processing station is provided with a cutting mechanism, a spacer paper cleaning mechanism and a cutter cleaning mechanism. The cutting mechanism cuts the spacer paper fed into the processing station by a cutter. The spacer paper cleaning mechanism is used for cleaning the impurities on the surface of the spacer paper, and cooperates with the cutter cleaning mechanism to clean the cutter. The conveying station continuously conveys the cut spacer paper from the processing station to the material receiving station. The material receiving station receives the spacer paper.
2. A glass spacer paper cleaning, cutting and conveying system as defined in claim 1, wherein, The cutting mechanism is arranged in pairs and includes a roller shaft and a cutter. The roller shaft is rotatably arranged in a first base of the processing station and has a first transmission gear at an end thereof. The first transmission gears of the two cutting mechanisms are meshingly connected. One roller shaft is connected to a first servo motor on the first base. The cutter extends axially along the surface of the roller shaft. When the cutters of the two cutting mechanisms are closed, the cutters cut the spacer paper.
3. A glass spacer paper cleaning, cutting and conveying system according to claim 2, wherein, The spacer paper cleaning mechanism includes a first guide seat, a second guide seat, an airflow nozzle assembly and a gas collecting assembly. The first guide seat is arranged in the first base on the feeding side of the cutting mechanism. The second guide seat is arranged in the first base on the discharging side of the cutting mechanism. The spacer paper passes through the connecting part of the first guide seat and the second guide seat. The airflow nozzle assembly and the gas collecting assembly are arranged on the side of the first guide seat and the second guide seat, respectively, which faces the cutting mechanism.
4. A glass spacer paper cleaning, cutting and conveying system as claimed in claim 3, wherein, The second guide seat is further provided with an electrostatic eliminator, and an ion emission end of the electrostatic eliminator extends towards the cutting mechanism.
5. A glass spacer paper cleaning, cutting and conveying system as claimed in claim 3, wherein, The connecting part of the second guide seat gradually shrinks along the conveying direction of the spacer paper and forms a converging section.
6. A glass spacer paper cleaning, cutting and conveying system as claimed in claim 3, wherein, The cutter cleaning mechanism includes a first flexible scraper and a second flexible scraper. The first flexible scraper is arranged on the roller shaft on the side of the cutter. The second flexible scraper is arranged on the first guide seat on the rotation track of the cutter.
7. A glass spacer paper cleaning, cutting and conveying system as claimed in claim 1, wherein, The conveying station includes a double-layer conveying mechanism close to the processing station. The double-layer conveying mechanism includes a lower layer conveying assembly and an upper layer conveying assembly arranged in a vertical direction. Each of the lower layer conveying assembly and the upper layer conveying assembly includes a plurality of first transmission shafts rotatably arranged in a second base of the conveying station. A plurality of wide conveying belts are sleeved on the first transmission shafts of the lower layer conveying assembly. A plurality of narrow conveying belts are sleeved on the first transmission shafts of the upper layer conveying assembly. The wide conveying belts and the narrow conveying belts abut against the spacer paper. The first transmission shafts of the lower layer conveying assembly and the first transmission shafts of the upper layer conveying assembly are provided with second transmission gears which are meshingly connected. One second transmission gear is connected to a second servo motor.
8. A glass spacer paper cleaning, cutting and conveying system according to claim 7, wherein, The inner side or the outer side of the upper layer conveying assembly is provided with an isolation mechanism. The isolation mechanism includes a plurality of support frames and isolation members arranged on the support frames.
9. A glass spacer paper cleaning, cutting and conveying system as claimed in claim 7, wherein, The conveying station further comprises a material distributing conveying mechanism close to the material collecting station, the material distributing conveying mechanism comprises a second transmission rotating shaft, a guide base and a special-shaped conveying belt, the second transmission rotating shaft is rotationally arranged on the second base and is connected to a third servo motor on the second base, a first rotating base is arranged on the second transmission rotating shaft, one end of the guide base is rotationally connected to the second transmission rotating shaft, and the other end of the guide base is provided with a second rotating base, the special-shaped conveying belt is sleeved on the first rotating base and the second rotating base, and the special-shaped conveying belt abuts against the interval paper.
10. A glass spacer paper cleaning, cutting and conveying system as claimed in claim 1, wherein, A U-shaped material guiding fence is arranged on the top of the material collecting station, and the opening of the material guiding fence faces the conveying station.
Citation Information
Cited By
Automatic spacing paper laminating platform and method for ultra-thin glass production line
CN121626708A