Vacuum magnetron sputter coated glass transfer roll

By setting an arc plate, a rubber layer, and a screw structure on the vacuum magnetic coating glass conveyor roller, the replacement process of the rubber layer is simplified, solving the problem of cumbersome replacement in the prior art, and realizing convenient replacement and cost reduction.

CN224578326UActive Publication Date: 2026-07-31JIANGXI XINMEI OPTICAL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANGXI XINMEI OPTICAL CO LTD
Filing Date
2025-06-30
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

The replacement process for existing vacuum magnetic coating glass conveyor rollers is cumbersome when the rubber layer is severely worn. It requires disassembling the conveyor roller and side plate, and the small size of the rubber sleeve requires manual force to open it, resulting in a heavy workload for replacement.

Method used

The design incorporates an arc-shaped plate, a rubber layer, and a screw structure. The arc-shaped plate and rubber layer can be removed and replaced by twisting and disassembling the screw, avoiding the need to disassemble the conveyor rollers and side plates. The use of protrusions and clearance grooves eliminates the limiting mechanism, simplifying the replacement process of the rubber layer.

Benefits of technology

It enables convenient replacement of the rubber layer, reduces the cost of the positioning mechanism, improves replacement efficiency and stability, and simplifies the operation process.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224578326U_ABST
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Abstract

This utility model relates to the field of conveyor roller technology and discloses a vacuum magnetic coating glass conveyor roller, including a roller body, side plates fixedly installed on both sides of the roller body, and arc-shaped plates placed on both sides of the roller body; two sets of arc-shaped plates are sleeved on the outer side of the roller body, with protrusions fixedly installed at the ends of the arc-shaped plates and locking blocks fixedly installed on the inner side of the arc-shaped plates; slots are opened on both sides of the roller body, and the locking blocks are locked in the slots. This utility model, by setting up arc-shaped plates, a rubber layer, and a screw, allows for easy replacement of the rubber layer when its surface is severely worn. The screw can be turned and removed through the groove, and then the arc-shaped plate can be removed, allowing the rubber layer to be disassembled and replaced. The process can then be reversed to reinstall the arc-shaped plate with the new rubber layer onto the roller body. Compared to existing methods, the rubber layer can be replaced without disassembling the conveyor roller and side plates, making the installation of the rubber layer more convenient.
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Description

Technical Field

[0001] This utility model relates to the field of conveyor roller technology, specifically a vacuum magnetic coating glass conveyor roller. Background Technology

[0002] Vacuum magnetron sputtering coating equipment can produce coated glass that is widely used in daily life. In the actual production process, the glass substrate moves in the vacuum chamber by means of conveying rollers.

[0003] In the process of realizing this utility model, the inventors discovered the following unresolved problems in the prior art: When the rubber layer on the surface of the existing vacuum magnetic coating glass conveyor roller is severely worn and needs to be replaced after long-term use, the shaft must be disassembled, the conveyor roller removed, and the side plate removed. The rubber layer must be separated and removed, and then the rubber layer must be stretched and deformed to be greater than that of the roller body and then fitted. The side plate is then reinstalled, the conveyor roller is lifted back to its original position, and the shaft is reconnected. This process is cumbersome, and the size of the rubber sleeve must be smaller than the design of the conveyor roller to ensure a firm fit. However, it requires manual force to forcibly stretch and fit, which is a heavy workload for replacement. Therefore, we propose a vacuum magnetic coating glass conveyor roller. Utility Model Content

[0004] The purpose of this invention is to provide a vacuum magnetic coating glass conveyor roller, which solves the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a vacuum magnetic coating glass conveying roller, comprising a roller body, side plates fixedly installed on both sides of the roller body, and arc-shaped plates placed on both sides of the roller body;

[0006] Both sets of arc-shaped plates are sleeved on the outside of the roller body, and a protrusion is fixedly installed at the end of the arc-shaped plate, and a locking block is fixedly installed on the inside of the arc-shaped plate;

[0007] The roller body has slots on both sides, and the locking blocks are locked in the slots;

[0008] The outer side of the arc-shaped plate is wrapped with a rubber layer, and grooves are provided on both outer sides of the rubber layer. A screw is provided in the groove, and the rubber layer and the protrusion are connected by the screw.

[0009] Both sets of side plates have shafts fixedly installed on their outer center. They can be used in conjunction with components such as arc plates, rubber layers, and screws. During the use of the conveyor roller, whenever the surface of the rubber layer is severely worn and needs to be replaced, the screw can be turned and removed, and then the screw can be taken away through the groove. Subsequently, the arc plate can be removed, and the rubber layer can be disassembled and replaced. Then, the operation is reversed, and the arc plate with the new rubber layer is reinstalled on the roller body. Compared with the existing method, the rubber layer can be replaced without disassembling the conveyor roller and side plates, making the installation of the rubber layer more convenient.

[0010] As an optional solution to the technical solution of this application, the rubber layer is provided with a relief groove on the outer side near the protrusion. The screw passes through the rubber layer and the protrusion respectively. One end of the screw is screwed with a nut through an external thread. It can be used in conjunction with components such as the protrusion and the relief groove. Whenever the screw is removed later, the removal of the screw not only removes the limiting position between the two arc plates, but also removes the limiting position of the rubber layer. It is not necessary to remove the arc plates first and then remove the rubber layer. Similarly, it is not necessary to fix the arc plates and the rubber layer one by one when reinstalling. This limiting structure design is easy to assemble and disassemble later, and can reduce the cost of the positioning mechanism. The effect of use is more ideal.

[0011] As an optional solution to the technical solution of this application, an indicator sign is fixedly installed on the outer wall of a set of side plates near the shaft, and the indicator sign is fixed by welding. The guide text on the indicator sign can introduce the rubber replacement procedure, making it easy to understand and use.

[0012] As an optional solution to the technical solution of this application, the outer wall of the end of the screw is hexagonal, and a wrench can be used later to apply force to rotate and disassemble the screw by fitting it on the outside of the hexagonal surface, which meets the needs of later disassembly and assembly.

[0013] As an optional solution to the technical solution of this application, the shape of the card block is adapted to the contour of the card slot, and the card block fits inside the card slot, so that the card position component is adapted to the design, which can prevent shaking and tilting, and the stability is more ideal.

[0014] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0015] 1. This utility model discloses a vacuum magnetic coating glass conveyor roller, which is equipped with an arc-shaped plate, a rubber layer, and a screw. During the use of the conveyor roller, whenever the surface of the rubber layer is severely worn and needs to be replaced, the screw can be turned and removed, and then the screw can be taken away through the groove. Subsequently, the arc-shaped plate can be removed, and the rubber layer can be disassembled and replaced. Then, the operation is reversed to reinstall the arc-shaped plate with the new rubber layer onto the roller body. Compared with the existing method, the rubber layer can be replaced without disassembling the conveyor roller and side plate, making the installation of the rubber layer more convenient.

[0016] 2. This utility model discloses a vacuum magnetic coating glass conveying roller, which is equipped with protrusions and clearance grooves. Whenever the screw is removed after disassembly, the limiting between the two arc plates is eliminated, and the limiting of the rubber layer is also eliminated. There is no need to disassemble the arc plates first and then the rubber layer. Similarly, reassembly does not require fixing the arc plates and rubber layer one by one. This limiting structure design is easy to assemble and disassemble later, and can reduce the cost of the positioning mechanism. The effect is quite ideal. Attached Figure Description

[0017] Other features, objects, and advantages of this invention will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:

[0018] Figure 1 This is a schematic diagram of the overall three-dimensional structure of a vacuum magnetic coating glass conveyor roller according to the present invention;

[0019] Figure 2 This is a side view cross-sectional structural diagram of the roller body of a vacuum magnetic coating glass conveyor roller according to the present invention.

[0020] Figure 3 This is an enlarged structural diagram of point A of a vacuum magnetic coating glass conveyor roller according to this utility model.

[0021] In the diagram: 1. Roller body; 11. Slot; 2. Side plate; 21. Shaft; 22. Indicator sign; 3. Arc plate; 31. Block; 32. Protrusion; 4. Rubber layer; 41. Groove; 42. Clearance groove; 5. Screw; 51. Nut. Detailed Implementation

[0022] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0023] Please see Figure 1-3This utility model provides a technical solution: a vacuum magnetic coating glass conveyor roller, including a roller body 1, with side plates 2 fixedly installed on both sides of the roller body 1. An indicator 22 is fixedly installed on the outer wall of one set of side plates 2 near the shaft 21, and the indicator 22 is fixed by welding. The guide text on the indicator 22 can introduce the rubber replacement process, making it easy to understand and use. Arc-shaped plates 3 are placed on both sides of the roller body 1; two sets of arc-shaped plates 3 are sleeved on the outer side of the roller body 1, with protrusions 32 fixedly installed at the ends of the arc-shaped plates 3, and locking blocks 31 fixedly installed on the inner side of the arc-shaped plates 3; slots 11 are opened on both sides of the roller body 1, and the locking blocks... The 31 is positioned within the slot 11, and the shape of the 31 matches the contour of the slot 11. The 31 fits snugly inside the slot 11, making the positioning component adaptable to the design and preventing wobbling or tilting, resulting in better stability. The outer side of the arc plate 3 is wrapped with a rubber layer 4. Grooves 41 are provided on both outer ends of the rubber layer 4. Screws 5 are installed in the grooves 41, and the rubber layer 4 and the protrusion 32 are connected by screws 5. The outer wall of the end of the screw 5 is hexagonal, which can be removed later by using a wrench. The screw 5 is disassembled by applying force to rotate the sleeve on the outer side of the hexagonal surface, meeting the needs of later disassembly and assembly. Shafts 21 are fixedly installed on the middle of the outer side of both sets of side plates 2.

[0024] In this technical solution, components such as the arc plate 3, rubber layer 4, and screw 5 can be used together. During the use of the conveyor roller, whenever the surface of the rubber layer 4 is severely worn and needs to be replaced, the screw 5 can be screwed and removed, and then the screw 5 can be taken away through the groove 41. Then the arc plate 3 can be removed, and the rubber layer 4 can be disassembled and replaced. Then the operation is reversed, and the arc plate 3 with the new rubber layer 4 is put back on the roller body 1. Compared with the existing method, the replacement of the rubber layer 4 can be achieved without disassembling the conveyor roller and the side plate 2, making the installation of the rubber layer 4 more convenient.

[0025] In some technical solutions, the rubber layer 4 is provided with a relief groove 42 on the outer side near the protrusion 32, and the screw 5 passes through the rubber layer 4 and the protrusion 32 respectively. One end of the screw 5 is screwed with a nut 51 through an external thread.

[0026] In this technical solution, components such as protrusion 32 and clearance groove 42 can be used together. Whenever the screw 5 is removed later, the removal of the screw 5 not only removes the limit between the two arc plates 3, but also removes the limit of the rubber layer 4. There is no need to remove the arc plates 3 first and then the rubber layer 4. Similarly, reinstallation does not require fixing the arc plates 3 and the rubber layer 4 one by one. This limit structure design is easy to assemble and disassemble later, and can reduce the cost of the positioning mechanism. The effect is quite ideal.

[0027] Working principle: It should be noted that this utility model is a vacuum magnetic coating glass conveyor roller. All components are general standard parts or parts known to those skilled in the art. Its structure and principle can be learned by those skilled in the art through technical manuals or conventional test methods.

[0028] When using a vacuum magnetic coating glass conveyor roller, the conveyor roller is carried to one side of the conveying mechanism and connected to the motor drive shaft of the conveying mechanism via shaft 21. After assembly, the vacuum magnetic coating glass can be placed on the conveyor roller for conveying the vacuum magnetic coating glass.

[0029] By incorporating an arc-shaped plate 3, a rubber layer 4, and a screw 5, when the surface of the rubber layer 4 becomes severely worn and needs replacement during the use of the conveyor roller, the screw 5 can be unscrewed and removed, and then taken away through the groove 41. Subsequently, the arc-shaped plate 3 can be removed, and the rubber layer 4 can be disassembled and replaced. Then, the operation is reversed, and the arc-shaped plate 3 with the new rubber layer 4 is reinstalled on the roller body 1. Compared with the existing method, the replacement of the rubber layer 4 can be achieved without disassembling the conveyor roller and the side plate 2, making the installation of the rubber layer 4 more convenient. By incorporating a protrusion 32 and a clearance groove 42, whenever the screw 5 is removed later, the removal of the screw 5 not only eliminates the limiting position between the two arc-shaped plates 3, but also eliminates the limiting position of the rubber layer 4. It is not necessary to disassemble the arc-shaped plate 3 first, and then the rubber layer 4. Similarly, reinstallation does not require fixing the arc-shaped plate 3 and the rubber layer 4 one by one. This limiting structure design is easy to assemble and disassemble later, and can reduce the cost of the positioning mechanism, resulting in a more ideal performance.

Claims

1. A vacuum magnetron-coated glass transfer roll characterized by: Includes a roller body (1), with side plates (2) fixedly installed on both sides of the roller body (1), and arc-shaped plates (3) placed on both sides of the roller body (1); Both sets of the arc plates (3) are sleeved on the outside of the roller body (1). The ends of the arc plates (3) are fixedly installed with protrusions (32), and the inner side of the arc plates (3) is fixedly installed with locking blocks (31). The roller body (1) has slots (11) on both sides, and the locking block (31) is locked in the slot (11); The arc plate (3) is wrapped with a rubber layer (4) on the outside. The rubber layer (4) has grooves (41) on both sides. A screw (5) is provided in the groove (41). The rubber layer (4) and the protrusion (32) are connected by the screw (5). Both sets of side plates (2) have a shaft (21) fixedly installed on the middle of the outer side.

2. The vacuum magnetron sputter coated glass conveyor roller of claim 1, wherein: The rubber layer (4) has a relief groove (42) on the outer side near the protrusion (32). The screw (5) passes through the rubber layer (4) and the protrusion (32) respectively. One end of the screw (5) is screwed with a nut (51) through an external thread.

3. The vacuum magnetron sputter coated glass conveyor roller of claim 1, wherein: An indicator plate (22) is fixedly installed on the outer wall of a set of side plates (2) near the shaft (21), and the indicator plate (22) is fixed by welding.

4. The vacuum magnetron sputter coated glass conveyor roller of claim 1, wherein: The outer wall of the end of the screw (5) is hexagonal.

5. The vacuum magnetron sputter coated glass conveyor roller of claim 1, wherein: The shape of the card block (31) is adapted to the outline of the card slot (11), and the card block (31) fits inside the card slot (11).