Deviation-preventing and deviation-rectifying device for glass conveying roller way

By automatically adjusting the position of the glass plate using a hydraulic alignment component, the problem of glass conveyor roller misalignment was solved, improving production efficiency and equipment lifespan, reducing the risk of glass damage, and ensuring safety and quality.

CN224132228UActive Publication Date: 2026-04-17TAIWAN GLASS WUHAN ENG GLASS
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TAIWAN GLASS WUHAN ENG GLASS
Filing Date
2025-05-20
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Glass conveyor rollers are prone to deviation during operation, which can lead to scratches on glass sheets, breakage of edges and corners, production interruptions, equipment wear and tear, and safety risks. Existing technologies require manual intervention and are inefficient.

Method used

The system employs a hydraulic alignment component, including a hydraulic cylinder, a connecting cross plate, a laser sensor, a connecting base plate, an L-shaped support plate, a fixed shaft, a rotating roller, and a rubber sleeve. The laser sensor monitors deviations and automatically adjusts the glass plate position, while the rotating roller makes rolling contact with the glass to perform alignment.

Benefits of technology

It enables automatic alignment of glass plates, improves production efficiency, reduces manual intervention and equipment wear, reduces the risk of glass damage, and ensures product quality and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-off-tracking deviation rectifying device for a glass conveying roller way, which relates to the technical field of glass conveying deviation rectifying and comprises a hydraulic deviation rectifying component fixedly mounted on a conveying support through a mounting support. The hydraulic deviation rectifying assembly is composed of a hydraulic cylinder, a connecting transverse plate, a connecting vertical plate, a laser sensor, a connecting base plate, an L-shaped supporting plate, a fixing shaft, a rotating roller and a rubber sleeve, and the connecting transverse plate is fixedly installed at the inner end of a piston rod of the hydraulic cylinder; by arranging a hydraulic deviation rectifying assembly composed of a hydraulic cylinder, a connecting transverse plate, a connecting vertical plate, a laser sensor, a connecting base plate, an L-shaped supporting plate, a fixing shaft, a rotating roller and a rubber sleeve, automatic deviation rectifying can be conducted on glass conveyed by the conveying roller, manual intervention is not needed, the production efficiency is remarkably improved, the workload of operators is reduced, and the production cost is reduced. And by reducing extra abrasion of glass deviation to the conveying roller way and related parts, the maintenance cost and the downtime are reduced, and the service life of equipment is prolonged.
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Description

Technical Field

[0001] This utility model relates to the field of glass conveying and correction technology, and in particular to a glass conveying roller anti-deviation and correction device. Background Technology

[0002] In glass production and processing, glass conveyor rollers are crucial transport equipment used to smoothly and efficiently deliver glass sheets to various processing stages. However, in actual operation, glass sheets are prone to deviation during transport, meaning they stray from the preset transport path. This deviation can be caused by various factors, such as roller installation errors, roller surface wear, unevenness of the glass sheet itself, or external vibrations.

[0003] The hazards of glass misalignment are mainly manifested in the following aspects: Misalignment can cause glass sheets to collide or rub against rollers or other equipment during transport, resulting in defects such as scratches and edge breakage on the glass surface, seriously affecting the appearance and quality of the product. Misalignment requires manual intervention or machine stoppage for adjustment, which not only increases the workload of operators but also leads to production interruptions and reduces overall production efficiency. Long-term misalignment may cause additional wear on the conveyor rollers and related components, and may even lead to equipment damage, increasing maintenance costs and downtime. Misaligned glass sheets may fall off or break, posing a threat to the personal safety of operators, especially in high-speed conveying or large glass sheet production environments. Therefore, this application proposes a glass conveyor roller misalignment prevention and correction device. Utility Model Content

[0004] The main purpose of this invention is to provide a glass conveyor roller anti-deviation and correction device, which can effectively solve the problems in the background art.

[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0006] A glass conveyor roller anti-deviation and correction device includes a hydraulic correction assembly, which is fixedly mounted on a conveyor support via a mounting bracket. The hydraulic correction assembly consists of a hydraulic cylinder, a connecting horizontal plate, a connecting vertical plate, a laser sensor, a connecting base plate, an L-shaped support plate, fixed shafts, rotating rollers, and rubber sleeves. The connecting horizontal plate is fixedly mounted on the inner end of the piston rod of the hydraulic cylinder, the connecting vertical plate is fixedly mounted on the lower end of the connecting horizontal plate, the laser sensor is fixedly mounted on the inner end of the connecting vertical plate, there are two connecting base plates symmetrically fixedly mounted on the inner ends of the connecting horizontal plate, there are two L-shaped support plates respectively fixedly mounted on the inner ends of the two connecting base plates, there are four fixed shafts symmetrically fixedly mounted in pairs within the two L-shaped support plates, there are two rotating rollers rotatably mounted on the four fixed shafts, and there are two rubber sleeves respectively fixedly fitted onto the two fixed shafts. The connecting vertical plate and the L-shaped support plate are both located between two adjacent conveyor rollers.

[0007] Preferably, there are several conveying rollers, all of which are rotatably mounted on the conveying support.

[0008] Preferably, the mounting bracket consists of a support vertical plate and a support tray, the support tray being fixedly installed on the upper end of the support vertical plate, and the support vertical plate being fixedly installed on the conveying bracket by bolts.

[0009] Preferably, the hydraulic cylinder on the hydraulic correction assembly is fixedly mounted on the upper end of the support plate on the mounting bracket, and the connecting cross plate is located above the conveying roller.

[0010] Preferably, the lower side wall of the L-shaped support plate on the hydraulic correction assembly is provided with an installation groove, and the fixed shaft is fixedly installed on the inner walls of the upper and lower sides of the installation groove.

[0011] Preferably, the rotating roller on the hydraulic correction assembly is rotatably installed in the mounting slot, and two mounting shaft holes are symmetrically opened at the upper and lower ends of the rotating roller, and the rotating roller is rotatably installed on the fixed shaft through the mounting shaft holes.

[0012] Compared with the prior art, the present invention has the following beneficial effects:

[0013] By setting up a hydraulic alignment assembly consisting of a hydraulic cylinder, connecting horizontal plate, connecting vertical plate, laser sensor, connecting base plate, L-shaped support plate, fixed shaft, rotating roller, and rubber sleeve, the glass conveyed by the conveyor roller can be automatically aligned without manual intervention. This significantly improves production efficiency and reduces the workload of operators. Furthermore, by reducing the additional wear on the conveyor roller and related components caused by glass deviation, it reduces maintenance costs and downtime, extends the service life of the equipment, and reduces the risk of glass falling off or breaking due to deviation, providing a safer working environment for operators. The fixed shaft on the hydraulic alignment assembly cooperates with the rotating roller and rubber sleeve, so that the hydraulic alignment assembly makes rolling contact with the glass when aligning it. This reduces the resistance experienced by the glass during the alignment process, avoids scratches or edge breakage of the glass surface, and ensures product quality and conveying efficiency. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0015] Figure 2 For the present utility model Figure 1 A magnified view of point A;

[0016] Figure 3 This is a schematic diagram of the hydraulic correction assembly of this utility model after the rotating roller and rubber sleeve have been removed;

[0017] Figure 4 This is an exploded view of the rotating roller, rubber sleeve, fixed shaft, and L-shaped support plate of this utility model.

[0018] In the diagram: 1. Hydraulic correction assembly; 2. Mounting bracket; 3. Conveying bracket; 4. Conveying roller; 5. Supporting vertical plate; 6. Supporting pallet; 7. Hydraulic cylinder; 8. Connecting horizontal plate; 9. Connecting vertical plate; 10. Laser sensor; 11. Connecting base plate; 12. L-shaped support plate; 13. Mounting through slot; 14. Fixed shaft; 15. Rotating roller; 16. Rubber sleeve; 17. Mounting shaft hole. Detailed Implementation

[0019] 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.

[0020] Please see Figures 1-4As shown, a glass conveyor roller anti-deviation and correction device includes a hydraulic correction assembly 1, which is fixedly mounted on a conveyor support 3 via a mounting bracket 2. The hydraulic correction assembly 1 consists of a hydraulic cylinder 7, a connecting horizontal plate 8, a connecting vertical plate 9, a laser sensor 10, a connecting base plate 11, an L-shaped support plate 12, a fixed shaft 14, a rotating roller 15, and a rubber sleeve 16. The connecting horizontal plate 8 is fixedly mounted on the inner end of the piston rod of the hydraulic cylinder 7, the connecting vertical plate 9 is fixedly mounted on the lower end of the connecting horizontal plate 8, and the laser sensor 10 is fixedly mounted on the inner end of the connecting vertical plate 9. At the ends, there are two connecting base plates 11, symmetrically fixedly installed on the inner ends of the connecting horizontal plate 8; two L-shaped support plates 12, respectively fixedly installed on the inner ends of the two connecting base plates 11; four fixed shafts 14, symmetrically fixedly installed in pairs within the two L-shaped support plates 12; two rotating rollers 15, rotatably installed on the four fixed shafts 14; two rubber sleeves 16, respectively fixedly sleeved on the two fixed shafts 14; the connecting vertical plate 9 and the L-shaped support plates 12 are both located between two adjacent conveying rollers 4; there are several conveying rollers 4, all rotatably installed on the conveying bracket 3; the conveying... When the glass is being transported, the glass plate is placed on several conveying rollers 4 on the conveying support 3. The conveying rollers 4 rotate to drive the glass plate forward along a preset path. During the transport process, the laser sensor 10 in the hydraulic correction assembly 1 monitors the edge position of the glass plate in real time. When the glass plate is detected to deviate from the preset path, the laser sensor 10 transmits a signal to the control system. The control system starts the hydraulic cylinder 7. The piston rod of the hydraulic cylinder 7 pushes the connecting horizontal plate 8 to move. The connecting horizontal plate 8 drives the connecting vertical plate 9 and the connecting base plate 11 to move synchronously. The connecting base plate 11 drives the fixed shaft 14 and the rotating roller 15 to move laterally through the L-shaped support plate 12. The rotating roller 15 contacts the edge of the glass plate through the rubber sleeve 16. Since the rotating roller 15 can rotate freely around the fixed shaft 14, the contact with the glass plate is rolling friction, thereby reducing resistance during the correction process and avoiding scratching the glass surface. By adjusting the stroke of the hydraulic cylinder 7, the rotating roller 15 applies a lateral thrust to the glass plate, causing it to gradually return to the correct position. After the correction is completed, the laser sensor 10 stops outputting a signal, the hydraulic cylinder 7 resets, the rotating roller 15 disengages from the glass plate, and the glass plate continues to be transported smoothly.

[0021] Furthermore, the mounting bracket 2 consists of a supporting vertical plate 5 and a supporting support plate 6. The supporting support plate 6 is fixedly installed on the upper end of the supporting vertical plate 5. The supporting vertical plate 5 is fixedly installed on the conveying bracket 3 by bolts. The hydraulic cylinder 7 on the hydraulic correction assembly 1 is fixedly installed on the upper end of the supporting support plate 6 on the mounting bracket 2. The connecting horizontal plate 8 is located above the conveying roller 4. An installation groove 13 is opened on the lower side wall of the L-shaped support plate 12 on the hydraulic correction assembly 1. The fixed shaft 14 is fixedly installed on the inner walls of the upper and lower sides of the installation groove 13. The rotating roller 15 on the hydraulic correction assembly 1 is rotatably installed in the installation groove 13. Two mounting shaft holes 17 are symmetrically opened at the upper and lower ends of the rotating roller 15. The rotating roller 15 is rotatably mounted on the fixed shaft 14 through the mounting shaft holes 17. There are several hydraulic correction components 1, and the distance between two adjacent hydraulic correction components 1 on the same side is less than the length of the glass being conveyed, so as to ensure that the glass is always within the control range of at least one hydraulic correction component 1 and avoid overall deviation due to local deviation. The distance between the laser sensor 10 and the glass being conveyed by the conveying roller 4 is greater than the distance between the rubber sleeve 16 sleeved on the rotating roller 15 and the glass, so as to ensure that the laser sensor 10 collides with the glass when correcting the glass.

[0022] Finally, by setting up a hydraulic alignment assembly 1 consisting of a hydraulic cylinder 7, a connecting horizontal plate 8, a connecting vertical plate 9, a laser sensor 10, a connecting base plate 11, an L-shaped support plate 12, a fixed shaft 14, a rotating roller 15, and a rubber sleeve 16, the glass conveyed by the conveyor roller 4 can be automatically aligned without manual intervention. This significantly improves production efficiency and reduces the workload of operators. Furthermore, by reducing the additional wear on the conveyor rollers and related components caused by glass deviation, maintenance costs and downtime are reduced, extending the service life of the equipment. It also reduces the risk of glass falling off or breaking due to deviation, providing a safer working environment for operators. The fixed shaft 14 on the hydraulic alignment assembly 1 cooperates with the rotating roller 15 and the rubber sleeve 16, so that the hydraulic alignment assembly 1 makes rolling contact with the glass when aligning it. This reduces the resistance experienced by the glass during the alignment process, avoids scratches on the glass surface or damage to the edges and corners, and ensures product quality and conveying efficiency.

[0023] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.

Claims

1. A glass conveying roller deviation prevention and correction device, characterized in that: The system includes a hydraulic alignment component (1), which is fixedly mounted on a conveying bracket (3) via a mounting bracket (2). The hydraulic alignment component (1) consists of a hydraulic cylinder (7), a connecting horizontal plate (8), a connecting vertical plate (9), a laser sensor (10), a connecting base plate (11), an L-shaped support plate (12), a fixed shaft (14), a rotating roller (15), and a rubber sleeve (16). The connecting horizontal plate (8) is fixedly mounted on the inner end of the piston rod of the hydraulic cylinder (7), and the connecting vertical plate (9) is fixedly mounted on the lower end of the connecting horizontal plate (8). The laser sensor (10) is fixedly mounted on the connecting vertical plate (7). The connecting vertical plate (9) has two connecting base plates (11) which are symmetrically fixedly installed at the inner end of the connecting horizontal plate (8). The L-shaped support plates (12) have two and are respectively fixedly installed at the inner ends of the two connecting base plates (11). The fixed shafts (14) have four and are symmetrically fixedly installed in the two L-shaped support plates (12). The rotating rollers (15) have two and are rotatably installed on the four fixed shafts (14). The rubber sleeves (16) have two and are respectively fixedly sleeved on the two fixed shafts (14). The connecting vertical plate (9) and the L-shaped support plates (12) are both located between two adjacent conveying rollers (4).

2. The glass conveying roller way deviation preventing and correcting device according to claim 1, characterized in that: There are several conveying rollers (4), all of which are rotatably mounted on the conveying bracket (3).

3. The glass conveying roller way deviation preventing and correcting device according to claim 2, characterized in that: The mounting bracket (2) consists of a support vertical plate (5) and a support tray (6). The support tray (6) is fixedly installed on the upper end of the support vertical plate (5). The support vertical plate (5) is fixedly installed on the conveying bracket (3) by bolts.

4. The glass conveying roller way deviation preventing and correcting device according to claim 3, characterized in that: The hydraulic cylinder (7) on the hydraulic correction assembly (1) is fixedly installed on the upper end of the support plate (6) on the mounting bracket (2), and the connecting cross plate (8) is located above the conveying roller (4).

5. A glass conveying roller table anti-deviation rectifying device according to claim 4, characterized in that: The lower side wall of the L-shaped support plate (12) on the hydraulic correction assembly (1) is provided with an installation groove (13), and the fixed shaft (14) is fixedly installed on the inner walls of the upper and lower sides of the installation groove (13).

6. A glass conveying roller table anti-deviation rectifying device according to claim 5, characterized in that: The rotating roller (15) on the hydraulic correction assembly (1) is rotatably installed in the mounting slot (13). The rotating roller (15) has two mounting shaft holes (17) symmetrically opened at its upper and lower ends. The rotating roller (15) is rotatably installed on the fixed shaft (14) through the mounting shaft holes (17).