Manual adjusting device for glass conveying

By designing a manual adjustment device for glass conveying, the position and posture of the glass conveying can be flexibly adjusted by using the adjustment body and U-shaped baffle, which solves the problem that existing equipment is difficult to adapt to glass of different specifications and sizes, and improves production efficiency and stability.

CN224257774UActive Publication Date: 2026-05-19CHONGQING BIYING OPTOELECTRONICS TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHONGQING BIYING OPTOELECTRONICS TECHNOLOGY CO LTD
Filing Date
2025-05-08
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Existing glass conveying equipment lacks a flexible adjustment mechanism, making it difficult to quickly adapt to glass of different specifications and sizes, resulting in low production efficiency and increased costs.

Method used

A manual adjustment device for glass conveying was designed, including an adjustment body, a U-shaped baffle, a first slide rail, and a second slide rail. The adjustment body is manually pushed to slide in the slide rail, and the U-shaped baffle is used to limit and guide the glass, so as to realize flexible adjustment of the glass conveying position and posture.

Benefits of technology

It improves the stability and accuracy of glass conveying, enhances the versatility and adaptability of the device, reduces the difficulty of operation and the threshold for use, and improves production efficiency and equipment adaptability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass conveying, in particular to a glass conveying manual adjusting device which comprises an adjusting body, and a plurality of U-shaped baffles are evenly arranged on the side wall of the adjusting body. The device further comprises a first sliding groove and a second sliding groove, and the two ends of the adjusting body are in sliding fit with the first sliding groove and the second sliding groove respectively.
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Description

Technical Field

[0001] This utility model relates to the field of glass conveying technology, and specifically to a manual adjustment device for glass conveying. Background Technology

[0002] In the glass manufacturing and processing industry, glass conveying is a key link in the production process, and the stability and accuracy of the conveying process directly affect production efficiency and product quality.

[0003] Currently, most glass conveying equipment uses fixed conveying tracks and limiting structures, lacking a flexible adjustment mechanism. When it is necessary to convey glass of different specifications and sizes, it is often difficult to adapt quickly. Either the entire conveying equipment needs to be replaced, or a lot of time needs to be spent on complex debugging, resulting in low production efficiency and a significant increase in equipment and labor costs.

[0004] Therefore, there is an urgent need for a manual adjustment device for glass conveying that can adjust the glass conveying track during the glass conveying process, thereby improving the adaptability and efficiency of the glass conveying process. Utility Model Content

[0005] The technical problem solved by this utility model is to provide a manual adjustment device for glass conveying, which realizes the adjustable function of the glass conveying track, thereby improving the adaptability and efficiency of the glass conveying process.

[0006] The basic solution provided by this utility model is: a manual adjustment device for glass conveying, including an adjustment body, wherein a plurality of U-shaped baffles are evenly arranged on the side wall of the adjustment body;

[0007] It also includes a first slide groove and a second slide groove, with the two ends of the adjusting body slidingly engaging with the first slide groove and the second slide groove, respectively.

[0008] The principle and advantages of this invention are as follows: In this solution, during the glass conveying process, when it is necessary to adjust the conveying position or state of the glass, since the two ends of the adjusting body are respectively slidably engaged with the first and second slide grooves, the operator can manually push the adjusting body to slide within the first and second slide grooves. Several U-shaped baffles evenly arranged on the adjusting body can limit and guide the glass. When the adjusting body slides, the U-shaped baffles move with the adjusting body, thereby changing the position or posture of the glass during the conveying process, realizing manual adjustment of the glass conveying.

[0009] The device mainly consists of an adjustment body, a U-shaped baffle, a first slide groove, and a second slide groove. Its structure is relatively simple, and operators can master the manual adjustment method without complicated training, which reduces the difficulty of operation and the threshold for use.

[0010] Several evenly spaced U-shaped baffles can reliably limit the glass, preventing it from shifting or shaking during transport, ensuring that the glass is transported along the predetermined path, and improving the stability and accuracy of glass transport.

[0011] By manually pushing the adjusting body to slide within the chute, the conveying position and posture of the glass can be flexibly adjusted according to actual production needs. This is applicable to glass of different specifications and conveying requirements, enhancing the versatility and adaptability of the device. In other words, it realizes the adjustable function of the glass conveying track, thereby improving the adaptability and efficiency of the glass conveying process.

[0012] Furthermore, the U-shaped baffle includes a left baffle, a right baffle, and a middle baffle. The middle baffle is disposed between the left baffle and the right baffle. The cross-sections of the left baffle and the right baffle are both L-shaped, and the left baffle and the right baffle are symmetrical to each other along the center line.

[0013] Beneficial effects: The L-shaped and symmetrical baffles on the left and right sides can effectively limit the horizontal displacement of the glass and prevent it from jumping up and down, ensuring that the glass always stays in the precise preset position during the conveying process, thus improving the positioning accuracy of glass conveying.

[0014] The symmetrical L-shaped left and right baffles reduce the contact area with the glass while keeping the number of contact points constant. This effectively reduces friction between the baffles and the glass, thereby improving transmission efficiency.

[0015] Furthermore, through grooves are provided on the side walls at both ends of the adjusting body, and the height of the through grooves is greater than the height of the corresponding sliding grooves; a sliding mechanism is provided on the side wall of the through groove, the sliding mechanism includes a fixed rod and a roller, one end of the fixed rod is fixedly connected to the side wall of the through groove, the other end of the fixed rod is fixedly connected to the roller, and the roller is in contact with the bottom surface of the corresponding sliding groove.

[0016] Beneficial effects: The rollers in the sliding mechanism contact the bottom surface of the slide groove, transforming the sliding friction between the adjusting body and the slide groove into rolling friction. Rolling friction resistance is much lower than sliding friction, making the adjusting body move more easily and smoothly within the slide groove. This reduces the effort required for manual adjustment and improves adjustment efficiency.

[0017] The height of the through groove is greater than the corresponding height of the slide groove. Combined with the sliding mechanism, this effectively prevents the adjusting body from wobbling or shifting during sliding. The rollers roll stably within the slide groove, allowing the adjusting body to move accurately along the preset track, facilitating precise adjustment of the glass conveying position.

[0018] One end of the fixed rod is fixedly connected to the side wall of the through groove, and the other end is fixedly connected to the roller. This connection method provides a stable support structure for the roller. During the movement of the adjustment body, the position of the roller can be kept relatively fixed, bearing the weight of the adjustment body and the glass, and maintaining the stability and reliability of the entire sliding mechanism.

[0019] Furthermore, notches are provided at the same positions on the sidewalls of the first and second chutes, and the width of the notches is greater than the diameter of the roller.

[0020] Beneficial effects: The notch width is larger than the roller diameter, allowing the roller to be easily inserted into the groove during installation and smoothly removed during disassembly. This greatly simplifies the assembly and maintenance process of the adjustment body and the groove, reducing the difficulty and time cost of equipment maintenance.

[0021] During the adjustment of the sliding body, if foreign objects enter the slide groove, the notch provides some clearance space. Even if small particles enter, they are unlikely to jam the rollers, ensuring that the rollers can roll smoothly and continuously, maintaining the normal sliding of the adjustment body and reducing equipment downtime.

[0022] The notch provides greater flexibility in the adjustment process. When manually adjusting the unit, operators can utilize the space in the notch to apply force and operate more conveniently, making the adjustment process more precise and efficient.

[0023] Furthermore, the adjusting body is also provided with a limiting part, which includes a limiting pin and a limiting nut. The limiting pin and the limiting nut are threaded together. The through groove is provided with a first through hole for the limiting pin to extend into. The first slide groove and the second slide groove are both provided with a second through hole for the limiting pin to extend into.

[0024] Beneficial effects: After the adjusting body slides to the appropriate position within the first and second slides to adjust the glass conveying position or state, the limiting pin can be passed through the first through hole on the through groove and inserted into the corresponding second through hole on the first or second slide. Then, the limiting nut is tightened by engaging the threaded connection between the limiting nut and the limiting pin. This securely fixes the adjusting body in its current position, preventing it from sliding due to vibration, external forces, or other factors during glass conveying. This ensures the accuracy of the glass conveying position and guarantees that the glass is conveyed according to the expected path and state.

[0025] The limiting mechanism makes adjustment operations more flexible and convenient. When adjustments to the glass conveying system are needed, operators can easily loosen the limiting nut and pull out the limiting pin, allowing the adjusting body to slide freely within the groove for position adjustment. After adjustment, the limiting pin is inserted into the corresponding through hole and the limiting nut is tightened, quickly completing the adjustment and fixing process and improving work efficiency.

[0026] Furthermore, the second through hole is an elongated through hole.

[0027] Beneficial effects: Compared to ordinary circular through holes, elongated through holes provide greater adjustment space in the length direction. When the adjusting body is fixed using limit pins and limit nuts, the presence of elongated through holes allows for more precise positional adjustments within the length range of the through holes. This makes the adjustment of the glass conveying position more flexible and diverse, adaptable to more different production needs, and improves the adjustment accuracy and applicability of the entire device.

[0028] In actual production, due to manufacturing errors, installation errors, or wear and tear of components after long-term use, a certain positional deviation may occur between the adjusting body and the slide. The elongated through-hole can compensate for these errors to a certain extent. Even if the position of the adjusting body deviates slightly from the ideal position, the adjusting body can be effectively fixed by adjusting the insertion position of the limiting pin within the elongated through-hole, ensuring the normal operation of the device, reducing the requirements for component manufacturing and installation precision, and improving the reliability of the device.

[0029] Furthermore, the second through hole is a plurality of elongated through holes and circular through holes of varying lengths.

[0030] Beneficial effects: Circular through-holes enable precise positioning of fixed points, suitable for fixing the position of standard glass conveyors and ensuring the glass is conveyed along a predetermined path. Longer through-holes of varying lengths provide possibilities for scenarios requiring fine-tuning or larger-range adjustments. Operators can select appropriate through-holes and limit pins according to actual needs to achieve multi-level adjustments from precise to flexible, significantly improving the accuracy and adaptability of glass conveyor position adjustment.

[0031] In actual production, glass comes in a wide variety of specifications, and the conveying requirements are complex and varied. Circular through-holes meet the fixing requirements under standard operating conditions, shorter elongated through-holes are suitable for minor adjustments, and longer elongated through-holes can handle large-span positional changes. This combination allows the device to flexibly adapt to glass of different sizes and conveying requirements. Whether for small-batch customized production or large-scale standardized production, it can efficiently complete glass conveying and adjustment tasks, greatly enhancing the device's versatility. Attached Figure Description

[0032] Figure 1 This is a schematic diagram of the overall structure of the manual adjustment device for glass conveying in Embodiment 1 of this utility model. Detailed Implementation

[0033] The following detailed description illustrates the specific implementation method:

[0034] The markings in the accompanying drawings include: adjustment body 1, first slide groove 2, second slide groove 3, fixing rod 4, roller 5, second through hole 6, left side baffle 7, right side baffle 8, middle baffle 9, first through hole 10, and notch 11.

[0035] The basic implementation examples are as follows: Figure 1 As shown: A manual adjustment device for glass conveying includes an adjustment body 1, on which a plurality of U-shaped baffles are evenly arranged on the side wall;

[0036] The U-shaped baffle includes a left baffle 7, a right baffle 8, and a middle baffle 9. The middle baffle 9 is disposed between the left baffle 7 and the right baffle 8. The cross-sections of the left baffle 7 and the right baffle 8 are both L-shaped, and the left baffle 7 and the right baffle 8 are symmetrical about each other along the center line. In this embodiment, the left baffle 7, the right baffle 8, and the middle baffle 9 are integrally formed, and the entire middle baffle 9, as well as parts of the left baffle 7 and the right baffle 8, are welded and fixed to the side wall of the adjusting body 1.

[0037] It also includes a first slide groove 2 and a second slide groove 3, with the two ends of the adjusting body 1 slidingly engaging with the first slide groove 2 and the second slide groove 3 respectively.

[0038] Notches 11 are provided at the same position on the sidewalls of the first slide 2 and the second slide 3, and the width of the notches 11 is greater than the diameter of the roller 5.

[0039] The adjusting body 1 has through grooves on both sides of its sidewalls, and the height of the through grooves is greater than the height of the corresponding sliding grooves. A sliding mechanism is provided on the sidewall of the through groove. The sliding mechanism includes a fixed rod 4 and a roller 5. One end of the fixed rod 4 is fixedly connected to the sidewall of the through groove, and the other end of the fixed rod 4 is fixedly connected to the roller 5. The roller 5 is in contact with the bottom surface of the corresponding sliding groove.

[0040] The adjusting body 1 is also provided with a limiting part, which includes a limiting pin and a limiting nut. The limiting pin and the limiting nut are threaded together. A first through hole 10 for the limiting pin to extend into is provided on the through groove. A second through hole 6 for the limiting pin to extend into is provided on both the first sliding groove 2 and the second sliding groove 3. The second through hole 6 is an elongated through hole.

[0041] In this embodiment, the first slide 2 and the second slide 3 are first installed at the corresponding positions of the glass conveying system, so that the first slide 2 and the second slide 3 are arranged in parallel, ensuring that they can provide a stable sliding track for the adjustment body 1. At the same time, attention is paid to the position of the notch 11, and it is necessary to ensure that the notches 11 on the first slide 2 and the second slide 3 correspond to each other, thereby completing the installation of the first slide 2 and the second slide 3.

[0042] Then, the rollers 5 at both ends of the adjusting body 1 are placed into the notch 11 respectively, and then moved away from the notch 11 to complete the installation of the adjusting body 1 on the first slide 2 and the second slide 3.

[0043] After installation, the adjusting body 1 slides in conjunction with the first slide groove 2 and the second slide groove 3 via a sliding mechanism, placing it in an adjustable state. Depending on the size of the glass on the conveying track, the operator manually pushes the adjusting body 1, which slides within the first and second slide grooves 2 and 3 via the rollers 5 of the sliding mechanism. Once the adjusting body 1 reaches the desired position, the limiting pin is passed sequentially through the first through hole 10 on the through groove and the corresponding second through hole 6 on the slide groove. The limiting nut is then tightened through the threaded engagement with the limiting pin, thus firmly fixing the adjusting body 1 in its current position and preventing slippage due to external forces during glass conveying, ensuring the accuracy of the glass conveying position. Because the second through hole 6 is an elongated through hole, the operator can make fine adjustments to the adjusting body 1 within the length of the elongated through hole during adjustment to accommodate the conveying requirements of different glass sizes or to fine-tune the glass conveying position.

[0044] After adjustment and fixing, the glass continues to be conveyed stably under the limiting and guiding influence of the U-shaped baffle. If it is necessary to readjust the glass conveying position during equipment operation, the limiting nut can be loosened, the limiting pin removed, and the above adjustment and fixing operations repeated. When the glass enters the conveying track, the left baffle 7 and right baffle 8 of the U-shaped baffle limit and guide the glass.

[0045] Example 2

[0046] Compared with Embodiment 1, the difference in this embodiment is that the second through hole 6 is a number of elongated through holes and circular through holes of different lengths.

[0047] Circular through-holes enable precise positioning at fixed points, suitable for fixing standard glass conveying positions and ensuring glass is transported along a predetermined path. Longer through-holes of varying lengths allow for scenarios requiring fine-tuning or wider adjustments. Operators can select appropriate through-holes and limit pins to achieve multi-level adjustments, from precise to flexible, significantly improving the accuracy and adaptability of glass conveying position adjustments.

[0048] The above are merely embodiments of this utility model. Commonly known structures and characteristics are not described in detail here. Those skilled in the art are aware of all common technical knowledge in the field prior to the application date or priority date, are aware of all existing technologies in that field, and have the ability to apply conventional experimental methods prior to that date. Those skilled in the art can, based on the guidance provided in this application, improve and implement this solution in combination with their own capabilities. Some typical known structures or methods should not be obstacles for those skilled in the art to implement this application. It should be noted that those skilled in the art can make several modifications and improvements without departing from the structure of this utility model. These should also be considered within the scope of protection of this utility model, and will not affect the effectiveness of the implementation of this utility model or the practicality of the patent. The scope of protection claimed in this application should be determined by the content of its claims, and the specific embodiments described in the specification can be used to interpret the content of the claims.

Claims

1. A glass delivery manual adjustment device characterized by: It includes an adjustment body, on which several U-shaped baffles are evenly arranged; It also includes a first slide groove and a second slide groove, with both ends of the adjusting body slidingly engaged with the first slide groove and the second slide groove respectively; The U-shaped baffle includes a left baffle, a right baffle, and a middle baffle. The middle baffle is disposed between the left baffle and the right baffle. The cross-sections of the left baffle and the right baffle are both L-shaped, and the left baffle and the right baffle are symmetrical to each other along the center line. The adjusting body has through grooves on both sides of its sidewalls, and the height of the through grooves is greater than the height of the corresponding sliding grooves. A sliding mechanism is provided on the sidewall of the through groove. The sliding mechanism includes a fixed rod and a roller. One end of the fixed rod is fixedly connected to the sidewall of the through groove, and the other end of the fixed rod is fixedly connected to the roller. The roller is in contact with the bottom surface of the corresponding sliding groove.

2. The glass delivery manual adjustment device of claim 1, wherein: Notches are provided at the same position on the sidewalls of the first and second slides, and the width of the notches is greater than the diameter of the roller.

3. The glass delivery manual adjustment device of claim 2, wherein: The adjusting body is also provided with a limiting part, which includes a limiting pin and a limiting nut. The limiting pin and the limiting nut are threaded together. The through groove is provided with a first through hole for the limiting pin to extend into. The first slide groove and the second slide groove are both provided with a second through hole for the limiting pin to extend into.

4. The glass delivery manual adjustment device of claim 3, wherein: The second through hole is an elongated through hole.

5. The glass delivery manual adjustment device of claim 3, wherein: The second through hole consists of several elongated through holes and circular through holes of varying lengths.