An automated conveying device with correction function

By setting up figure-eight-shaped correction components and correction rollers in the automated conveying device, the problems of friction and misalignment of the railings or boxes during the conveying process are solved, achieving a highly efficient and precise conveying process and reducing the equipment failure rate.

CN224577434UActive Publication Date: 2026-07-31WUHU TOKEN SCI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
WUHU TOKEN SCI
Filing Date
2025-08-26
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

In automated equipment, friction, jamming, and collisions can occur due to positional deviations during the conveying process of railings or boxes, affecting the operating efficiency and failure rate of the equipment.

Method used

Design an automated conveying device with a correction function. The device employs first and second correction components symmetrically arranged on both sides of the conveying roller, including a straight section and an inclined section, forming a figure-eight structure. Multiple correction rollers guide and constrain the railing or box to ensure accurate and frictionless conveying.

Benefits of technology

It effectively avoids interference and collision between the railings or boxes and equipment components during the conveying process, improves conveying accuracy, reduces failure rate, and increases production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model belongs to the field of automated conveying equipment technology, specifically an automated conveying device with a correction function. A first correction component (2) is provided on one side of the conveying roller (1), and a second correction component (3) is provided on the other side. The first correction component (2) includes a first straight section (4) and a first inclined section (5), and the second correction component (3) includes a second straight section (6) and a second inclined section (7). The first straight section (4) and the second straight section (6) are arranged in parallel, and the first inclined section (5) and the second inclined section (7) form a figure-eight structure. This utility model's automated conveying device with a correction function has a simple structure and can correct the position of the conveying equipment or box, ensuring that there is no friction causing jamming or misalignment during the conveying process, increasing the accuracy of the conveying position, reducing the process failure rate, and improving production efficiency.
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Description

Technical Field

[0001] This utility model belongs to the field of automated conveying equipment technology, and more specifically, it relates to an automated conveying device with a correction function. Background Technology

[0002] In the field of automation equipment technology, and more specifically in the field of glass handling equipment or boxes used for glass transfer in glass production, the transfer of handling equipment or boxes is involved. During the transfer of handling equipment or boxes in automated equipment, if there is a deviation in the position of the handling equipment or boxes on the conveyor rollers, misalignment may occur during the transfer process. This can lead to friction or jamming with the protective covers or other components of the conveyor line, resulting in collision damage to the handling equipment or boxes. This also affects the efficiency of automated operation and the failure rate, significantly reducing the uptime of the equipment.

[0003] The prior art includes a technology entitled "A Rubber Strip Conveying and Correcting Device" with publication number "CN205589937U". This technology discloses a rubber strip conveying and correcting device, including a frame. Two transmission rollers are hinged to both ends of the frame. The conveying roller is tensioned on the two transmission rollers. A drive motor is fixed on the outer wall of the frame. A drive gear is fixed on the output shaft of the drive motor. One end of the transmission roller extends out of the frame and is fixed with a transmission gear. The drive gear meshes with the transmission gear. The top crossbeam of the frame has a guide limiting groove in the middle. Multiple push cylinders are fixed on the outer wall of the top crossbeam of the frame where the guide limiting groove is located. Limit blocks are fixed on the push rods of the push cylinders. The limit blocks are inserted into the guide limiting groove. Two limit blocks are arranged opposite each other and are located on both sides of the conveying roller. The bottom surface of the limit block has a bottom limiting part in the middle. A front guide plate and a rear guide plate are fixed to the front and rear parts of the inner sidewall of the top crossbeam of the frame, respectively. It can align the rubber strip during transport, facilitating cutting by the cutting mechanism and ensuring clean cuts. However, this technology does not relate to the technical solution of this application. Utility Model Content

[0004] The technical problem to be solved by this utility model is to provide an automated conveying device with a correction function that is simple in structure, can correct the position of the conveying railing or box, ensures that there is no friction causing jamming or misalignment during the conveying process, increases the accuracy of the conveying position, reduces the process failure rate, and improves the production efficiency, in order to overcome the shortcomings of the existing technology.

[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:

[0006] This utility model is an automated conveying device with a correction function. A first correction component is provided on one side of the conveying roller, and a second correction component is provided on the other side of the conveying roller. The first correction component includes a first straight section and a first inclined section, and the second correction component includes a second straight section and a second inclined section. The first straight section and the second straight section are arranged in parallel, and the first inclined section and the second inclined section have a figure-eight structure. The first correction component and the second correction component are provided with correction rollers.

[0007] The first straight segment and the first inclined segment of the first corrective component are an integral structure, and the first straight segment and the first inclined segment are a frame structure. The first straight segment and the first inclined segment are respectively provided with multiple corrective rollers.

[0008] The second straight section and the second inclined section of the second straightening component are an integral structure, and the second straight section and the second inclined section are a frame structure. Multiple straightening rollers are respectively provided on the second straight section and the second inclined section 7.

[0009] The straightening rollers are arranged vertically.

[0010] The first and second inclined segments form an obtuse angle.

[0011] The first straight segment includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the first straight segment are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller is movably connected to the upper crossbeam via an upper bearing, and the lower end of each straightening roller is movably connected to the lower crossbeam via a lower bearing.

[0012] The first inclined section includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the first inclined section are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller is movably connected to the upper crossbeam via an upper bearing, and the lower end of each straightening roller is movably connected to the lower crossbeam via a lower bearing.

[0013] The second straight section includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the second straight section are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller is movably connected to the upper crossbeam via an upper bearing, and the lower end of each straightening roller is movably connected to the lower crossbeam via a lower bearing.

[0014] The second inclined section includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the second inclined section are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller is movably connected to the upper crossbeam via an upper bearing, and the lower end of each straightening roller is movably connected to the lower crossbeam via a lower bearing.

[0015] The straightening roller is made of nylon material.

[0016] The working principle and beneficial effects of this utility model are as follows:

[0017] The automated conveying device with correction function described in this utility model is provided with a conveying roller for automatic conveying of railings or boxes. An automated conveying device with correction function is provided along the conveying roller 1. The device includes a first correction component and a second correction component, which are symmetrically arranged on both sides of the conveying roller. The first correction component includes a first straight section and a first inclined section, and the second correction component includes a second straight section and a second inclined section. The first inclined section and the second inclined section have a figure-eight structure. After the railing or box to be transported is placed at the starting point of the conveyor roller, the conveyor roller begins to transport it. The railing or box can then easily enter between the first and second inclined sections. The gap between the first and second inclined sections gradually decreases, thus guiding the railing or box. The railing or box then enters the first and second straight sections, which are arranged parallel to each other and along the entire length of the conveyor roller. The distance between the first straight section and the first inclined section is approximately greater than the width of the square railing or box. Therefore, the first and second straight sections constrain the position of the railing or box on the conveyor roller, continuously constraining its position from both sides, thus providing constant adjustment until the railing or box leaves the first and second straight sections, indicating that it has been transported to its correct position. In this way, the railing or box will not interfere with or collide with the protective cover of the conveyor roller or other components or equipment during transport, ensuring that there is no friction causing jamming or misalignment during the transfer process. Attached Figure Description

[0018] The following is a brief explanation of the contents depicted in the accompanying drawings and the markings therein:

[0019] Figure 1 This is a schematic diagram of the structure of the automated conveying device with correction function described in this utility model;

[0020] Figure 2 This is a schematic diagram of the structure of the automated conveying device with correction function described in this utility model;

[0021] The labels in the attached diagram are as follows: 1. Conveyor roller; 2. First straightening component; 3. Second straightening component; 4. First straight section; 5. First inclined section; 6. Second straight section; 7. Second inclined section; 8. Straightening roller; 9. Guardrail or box. Detailed Implementation

[0022] The following description, with reference to the accompanying drawings, provides a more detailed explanation of the specific embodiments of this utility model, including the shape and structure of each component, the relative positions and connections between the parts, the functions and working principles of each part:

[0023] As attached Figure 1 -Appendix Figure 2 As shown, this utility model is an automated conveying device with a correction function. A first correction component 2 is provided on one side of the conveying roller 1, and a second correction component 3 is provided on the other side of the conveying roller 1. The first correction component 2 includes a first straight segment 4 and a first inclined segment 5, and the second correction component 3 includes a second straight segment 6 and a second inclined segment 7. The first straight segment 4 and the second straight segment 6 are arranged in parallel, and the first inclined segment 5 and the second inclined segment 7 have a V-shaped structure. A correction roller 8 is provided on the first correction component 2 and the second correction component. The above structure addresses the shortcomings of the prior art by proposing an improved technical solution. In the structural configuration, a conveying roller 1 is provided for automatic conveying of railings or boxes 9, and an automated conveying device with a correction function is provided along the conveying roller 1. This device includes a first correction component 2 and a second correction component 3, which are symmetrically arranged on both sides of the conveying roller 1. The first correction component 2 includes a first straight segment 4 and a first inclined segment 5, and the second correction component 3 includes a second straight segment 6 and a second inclined segment 7. The first inclined segment 5 and the second inclined segment 7 have a V-shaped structure. After the railing or box 9 to be transported is placed at the starting point of the conveyor roller 1, the conveyor roller 1 transports it. Then the railing or box 9 can easily enter between the first inclined section 5 and the second inclined section 7. The gap between the first inclined section 5 and the second inclined section 7 becomes smaller and smaller, thus guiding the railing or box 9. The railing or box then enters the first straight section 4 and the second straight section 6. The first straight section 4 and the second straight section 6 are arranged in parallel and along the entire length of the conveyor roller. The distance between the first straight section 4 and the first inclined section 5 is approximately greater than the width of the square railing or box 9. Therefore, the first straight section 4 and the second straight section 6 constrain the position of the railing or box 9 on the conveyor roller 1, continuously constraining the position of the railing or box 9 from both sides, thus playing a role in constant adjustment until the railing or box 9 leaves the first straight section 4 and the second straight section 6, indicating that the railing or box 9 has been transported to the correct position. In this way, the conveyor belt or box 9 will not interfere with or collide with the protective cover of the conveyor roller 1 or other components or equipment during the conveying process, ensuring that there is no friction causing jamming or misalignment during the conveying of the conveyor belt or box 9. The automated conveying device with correction function described in this utility model has a simple structure and can correct the position of the conveying conveyor belt or box 9, ensuring that there is no friction causing jamming or misalignment during the conveying process, increasing the accuracy of the conveying position, reducing the process failure rate, and improving production efficiency.

[0024] The first straight segment 4 and the first inclined segment 5 of the first correcting component 2 are an integral structure, forming a frame structure, and each segment is equipped with multiple correcting rollers 8. Similarly, the second straight segment 6 and the second inclined segment 7 of the second correcting component 3 are an integral structure, forming a frame structure, and each segment is equipped with multiple correcting rollers 8. This structure, by providing multiple correcting rollers 8 to the first and second correcting components 2 and 3 respectively, ensures that the contact between the railing or enclosure and the first and second correcting components 2 and 3 is a rolling contact, thereby reliably achieving guidance while preventing friction damage to the railing or enclosure.

[0025] The straightening rollers 8 are configured to be arranged vertically. In the above structure, the multiple straightening rollers 8 of the first straightening component 2 and the second straightening component 3 are all arranged vertically, thereby reliably constraining the railing or box from both sides and correcting the position of the railing or box on the conveyor roller.

[0026] The first inclined segment 5 and the second inclined segment 7 form an obtuse angle. The above structure...

[0027] The first straight section 4 includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the first straight section 4 are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller 8 is movably connected to the upper crossbeam via an upper bearing, and the lower end of each straightening roller 8 is movably connected to the lower crossbeam via a lower bearing. The first inclined section 5 also includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the first inclined section 5 are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller 8 is movably connected to the upper crossbeam via an upper bearing, and the lower end of each straightening roller 8 is movably connected to the lower crossbeam via a lower bearing. With this structure, multiple straightening rollers 8 are flexibly connected through bearings and corresponding straightening components, achieving both reliable guidance and positioning of the straightening rails or boxes on the conveyor rollers, while also ensuring long-term usability.

[0028] The second straight section 6 includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the second straight section 6 are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller 8 is movably connected to the upper crossbeam via an upper bearing, and the lower end of each straightening roller 8 is movably connected to the lower crossbeam via a lower bearing. The second inclined section 7 also includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the second inclined section 7 are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller 8 is movably connected to the upper crossbeam via an upper bearing, and the lower end of each straightening roller 8 is movably connected to the lower crossbeam via a lower bearing. With this structure, multiple straightening rollers 8 are flexibly connected through bearings and corresponding straightening components, achieving both reliable guidance and positioning of the straightening rails or boxes on the conveyor rollers, while also ensuring long-term usability.

[0029] The straightening roller 8 is made of nylon. This structure, where the straightening roller 8 is made of nylon, ensures strength while preventing wear and tear on the railings or enclosure.

[0030] The automated conveying device with correction function described in this utility model is configured with a conveying roller 1 for automatic conveying of railings or boxes 9. An automated conveying device with correction function is set along the conveying roller 1. The device includes a first correction component 2 and a second correction component 3, which are symmetrically arranged on both sides of the conveying roller 1. The first correction component 2 includes a first straight section 4 and a first inclined section 5, and the second correction component 3 includes a second straight section 6 and a second inclined section 7. The first inclined section 5 and the second inclined section 7 have a figure-eight structure. After the railing or box 9 to be transported is placed at the starting point of the conveyor roller 1, the conveyor roller 1 transports it. Then the railing or box 9 can easily enter between the first inclined section 5 and the second inclined section 7. The gap between the first inclined section 5 and the second inclined section 7 becomes smaller and smaller, thus guiding the railing or box 9. The railing or box then enters the first straight section 4 and the second straight section 6. The first straight section 4 and the second straight section 6 are arranged in parallel and along the entire length of the conveyor roller. The distance between the first straight section 4 and the first inclined section 5 is approximately greater than the width of the square railing or box 9. Therefore, the first straight section 4 and the second straight section 6 constrain the position of the railing or box 9 on the conveyor roller 1, continuously constraining the position of the railing or box 9 from both sides, thus playing a role in constant adjustment until the railing or box 9 leaves the first straight section 4 and the second straight section 6, indicating that the railing or box 9 has been transported to the correct position. In this way, during the conveying process of the railing or box 9, there will be no interference or collision with the protective cover of the conveying roller and other components or equipment, ensuring that there is no friction during the conveying process that causes jamming or deviation, thus ensuring the smoothness and efficiency of the conveying.

[0031] The present invention has been described above with reference to the accompanying drawings. Obviously, the specific implementation of the present invention is not limited to the above-described manner. Any improvements made using the inventive concept and technical solution of the present invention, or the direct application of the inventive concept and technical solution to other situations without modification, are all within the protection scope of the present invention.

Claims

1. An automated conveyor device with a correction function, characterized by: A first straightening component (2) is provided on one side of the conveying roller (1), and a second straightening component (3) is provided on the other side of the conveying roller (1). The first straightening component (2) includes a first straight section (4) and a first inclined section (5). The second straightening component (3) includes a second straight section (6) and a second inclined section (7). The first straight section (4) and the second straight section (6) are arranged in parallel. The first inclined section (5) and the second inclined section (7) have a figure-eight structure. The first straightening component (2) and the second straightening component (3) are provided with straightening rollers (8).

2. The automated conveyor with a correction function according to claim 1, characterized in that: The first straight section (4) and the first inclined section (5) of the first straight component (2) are an integral structure. The first straight section (4) and the first inclined section (5) are a frame structure. The first straight section (4) and the first inclined section (5) are respectively provided with multiple straightening rollers (8).

3. The automated conveyor with a correction function according to claim 1, wherein: The second straight section (6) and the second inclined section (7) of the second straight component (3) are an integral structure. The second straight section (6) and the second inclined section (7) are frame structures. The second straight section (6) and the second inclined section (7) are respectively provided with multiple straightening rollers (8).

4. An automated conveyor with a corrective function according to claim 2 or 3, characterized in that: The corrective roller (8) is arranged vertically.

5. The automated conveyor with a correction function according to claim 3, wherein: The first inclined segment (5) and the second inclined segment (7) form an obtuse angle.

6. The automated conveyor with a correction function according to claim 2, wherein: The first straight segment (4) includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the first straight segment (4) are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller (8) is movably connected to the upper crossbeam through an upper bearing. The lower end of each straightening roller (8) is movably connected to the lower crossbeam through a lower bearing.

7. The automated conveyor with a correction function according to claim 6, characterized in that: The first inclined section (5) includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the first inclined section (5) are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller (8) is movably connected to the upper crossbeam through an upper bearing, and the lower end of each straightening roller (8) is movably connected to the lower crossbeam through a lower bearing.

8. The automated conveyor with a correction function according to claim 3, wherein: The second straight section (6) includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the second straight section (6) are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller (8) is movably connected to the upper crossbeam through an upper bearing, and the lower end of each straightening roller (8) is movably connected to the lower crossbeam through a lower bearing.

9. The automated conveying device with correction function according to claim 8, characterized in that: The second inclined section (7) includes an upper crossbeam and a lower crossbeam. The upper and lower crossbeams of the second inclined section (7) are fixedly connected by multiple connecting vertical beams. The upper end of each straightening roller (8) is movably connected to the upper crossbeam through an upper bearing, and the lower end of each straightening roller (8) is movably connected to the lower crossbeam through a lower bearing.

10. The automated conveying device with correction function according to claim 4, characterized in that: The straightening roller (8) is made of nylon material.