Laminating device for multi-layer glass production

By designing a bonding device for multi-layer glass production, and utilizing extrusion components and beveled guides to correct glass misalignment, the problem of uneven glass stacking was solved, ensuring high-quality production of multi-layer glass.

CN223821259UActive Publication Date: 2026-01-23BOQUN ZHIDA GLASS TECH (TIANJIN) CO LTD
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Patent Information

Application Number
CN202520066812.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-12
Publication Date
2026-01-23
Estimated Expiration
2035-01-12

AI Technical Summary

Technical Problem

In the production of multi-layered glass, machine precision errors can cause uneven glass stacking, leading to misalignment during hot pressing and affecting product quality.

Method used

Design a bonding device for multi-layer glass production, including a base, support frame, linear slide rail, slide table, hydraulic press, negative pressure suction cup, linear cylinder and extrusion assembly. The extrusion assembly corrects glass misalignment and uses bevel and rotary belt to guide glass positioning to avoid friction damage.

Benefits of technology

It achieves precise alignment and positioning of glass plates, avoids misalignment during hot pressing, and improves the production quality and efficiency of multilayer glass.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a laminating device for multi-layer glass production, which comprises a base, a support frame arranged above the base, a linear slide rail mounted on the support frame, a slide table slidably arranged on the linear slide rail, a negative pressure sucker connected in the slide table through a hydraulic machine, a placing table fixedly connected to the center of the top of the base, and a pressing plate fixedly connected to the placing table. Linear air cylinders are arranged on the periphery of the containing table, and extrusion assemblies are fixedly connected to sliding blocks of the linear air cylinders. The utility model relates to the technical field of multi-layer glass production. According to the laminating device for producing the multi-layer glass, through the arranged extrusion assembly, when the glass plates deviate, the glass plates can be aligned by extruding the glass plates, and deviation of the glass plates is corrected, so that the multi-layer glass plates are accurately stacked together, it is guaranteed that the glass does not deviate in the subsequent hot pressing process, and the quality of the glass plates is improved. And the production quality of the multi-layer glass is ensured.
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Description

Technical Field

[0001] This utility model relates to the field of multilayer glass production technology, and in particular to a bonding device for multilayer glass production. Background Technology

[0002] Multi-layered glass typically refers to two or more layers of glass materials combined using special structures and technologies to form a glass structure with specific functions. It is commonly found in architectural windows, vehicle glass, and in applications requiring sound insulation and protection. Multi-layered glass comes in various designs, such as insulated glass and laminated glass, each offering different performance characteristics depending on the application requirements.

[0003] In existing technologies, the production of multilayer glass requires stacking multiple glass layers together. However, due to the lateral movement of the machine, precision errors can occur, causing the glass layers to align inaccurately during stacking. This leads to misalignment of the glass layers during subsequent hot pressing, altering the overall stress on the multilayer glass and affecting its quality, thus resulting in defective products. Utility Model Content

[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a bonding device for multilayer glass production, so as to solve the technical problems mentioned in the background art.

[0005] The above-mentioned technical objective of this utility model is achieved through the following technical solution:

[0006] A bonding device for multilayer glass production includes a base, a support frame mounted on top of the base, a linear slide rail mounted on the support frame, a slide table slidably mounted on the linear slide rail, a negative pressure suction cup connected to the slide table via a hydraulic press, a placement platform fixedly connected to the top center of the base, and linear cylinders arranged around the placement platform, with extrusion components fixedly connected to the sliders of the linear cylinders.

[0007] The extrusion assembly includes side plates, rotating rollers, and a rotary belt. There are two side plates, which are symmetrically connected to both sides of the slider. A rotary belt is provided between the two side plates and is supported by the rotating rollers.

[0008] Furthermore, the top of the side plate near the placement platform is machined with an angle, and multiple rotating rollers are arranged one-to-one at the corners of the side plate, so that the rotating belt surrounds the outer periphery of the side plate.

[0009] Furthermore, support plates are fixedly connected to the side of the side plate near the placement platform and at the oblique angle of the side plate, with the support plates avoiding the rotating roller.

[0010] Furthermore, the outer surface of the rotating belt protrudes from the outer peripheral wall of the side plate, and a layer of anti-slip rubber is attached to the outer surface of the rotating belt.

[0011] Furthermore, the length of the support frame is greater than the length of the base, so that the bottom of the support frame has space for storing the glass plate.

[0012] In summary, this utility model has at least one of the following beneficial technical effects:

[0013] 1. A bonding device for multi-layer glass production, through a set extrusion component, can correct the glass plate misalignment by extruding the glass plate, thereby ensuring that the multi-layer glass plates are accurately stacked together, thus ensuring that the glass does not shift during subsequent hot pressing process, thereby ensuring the production quality of multi-layer glass.

[0014] 2. This bonding device for multi-layer glass production, by setting an oblique angle, allows the side of the glass plate to be located at the oblique angle of the extrusion component when the glass plate is slightly offset. At this time, the downward pressing of the glass plate will be guided by the oblique angle, correcting the offset of the glass plate and restoring the glass plate to its original position, so as to achieve the effect of precise positioning between the glass plates. Attached Figure Description

[0015] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the bonding device for multilayer glass production according to the present invention.

[0017] Figure 2 This is a schematic diagram of the base in a bonding device for multi-layer glass production according to the present invention.

[0018] Figure 3 This is a schematic diagram of the internal structure of the extrusion component in a bonding device for multilayer glass production according to this utility model.

[0019] Figure 4 This is a side view of the extrusion component in a bonding device for multilayer glass production according to this utility model.

[0020] In the diagram, 1 is the base; 2 is the support frame; 3 is the linear slide rail; 4 is the slide table; 5 is the negative pressure suction cup; 6 is the placement platform; 7 is the linear cylinder; 8 is the slider; 9 is the extrusion assembly; 91 is the side plate; 92 is the rotating roller; 93 is the rotary belt; 10 is the bevel; 11 is the support plate; and 12 is the anti-slip rubber. Detailed Implementation

[0021] The present invention will be further described in detail below with reference to the accompanying drawings.

[0022] Example:

[0023] Reference Figure 1 - Figure 4 The present invention discloses a bonding device for multilayer glass production, comprising a base 1, a support frame 2 mounted above the base 1, a linear slide rail 3 mounted on the support frame 2, a slide table 4 slidably mounted on the linear slide rail 3, and a negative pressure suction cup 5 connected to the slide table 4 via a hydraulic press. The device is characterized in that a placement platform 6 is fixedly connected to the top center of the base 1, and linear cylinders 7 are arranged around the placement platform 6. A pressing component 9 is fixedly connected to the slider 8 of the linear cylinder 7.

[0024] The extrusion assembly 9 includes a side plate 91, a rotating roller 92, and a rotary belt 93. There are two side plates 91, which are symmetrically connected to both sides of the slider 8. The rotary belt 93 is provided between the two side plates 91 and is supported by the rotating roller 92.

[0025] In this embodiment, observation Figure 1 It can be seen that by setting up a support frame 2 and installing a linear slide rail 3 on the top of the support frame 2, and sliding table 4 slidably connected on the linear slide rail 3, the slide table 4 can slide linearly with the negative pressure suction cup 5. By connecting the negative pressure suction cup 5 and the slide table 4 through a hydraulic press, the hydraulic press can push the negative pressure suction cup 5 to move up and down along the Z-axis for transporting glass plates.

[0026] Observation and Figure 2 It can be observed that a placement platform 6 for placing glass is installed on the base 1, which can be used to stack multiple layers of glass. However, due to the lateral movement of the machine, precision errors can occur, causing the glass layers to align inaccurately during stacking. This leads to glass misalignment during subsequent hot pressing, altering the overall stress on the multi-layered glass and affecting its quality, thus resulting in defective products. Therefore, in Figure 2It can also be seen that linear cylinders 7 are set around the placement table 6. When in use, the linear cylinders 7 push the slider 8 close to the placement table 6, so that the slider 8 defines the position of the glass around the placement table 6. At this time, after the negative pressure suction cup 5 picks up the glass, when the glass is placed on the placement table 6, the glass will come into contact with the extrusion component 9 on the slider 8. It will be extruded by the extrusion component 9 to correct slight errors, so that the glass is placed exactly on the placement table 6. This provides a positioning effect for the placement of the glass, so that the multi-layer glass is precisely aligned, thereby ensuring that the glass will not shift during the subsequent hot pressing process, thus ensuring the production quality of multi-layer glass.

[0027] When the sliding table 4 experiences precision errors while sliding on the linear guide rail 3, the glass plate adsorbed by the negative pressure suction cup 5 will come into contact with the extrusion assembly 9, causing the edges of the glass plate to chip under pressure, resulting in glass damage. Therefore, observation is necessary. Figure 3 and Figure 4 It can be seen that the extrusion assembly 9 consists of side plates 91, rotating rollers 92, and a rotary belt 93. There are two side plates 91, which are symmetrically connected to both sides of the slider 8. The rotary belt 93 is set between the two side plates 91 and is supported by the rotating rollers 92. When the edge of the glass plate comes into contact with the extrusion assembly 9, it will press on the rotary belt 93. Then, as the negative pressure suction cup 5 descends, the glass plate will slide on the extrusion assembly 9. The rotary belt 93 is connected to the side plates 91 through the rotating rollers 92. At this time, the rotary belt 93 moves with the glass plate, so that there is no friction between the glass plate and the extrusion assembly 9. This can prevent the edge of the glass plate from contacting and rubbing against the extrusion assembly 9 and causing damage, improve the integrity of the glass plate, and thus ensure the production quality of multilayer glass.

[0028] In a further preferred embodiment of this utility model, such as Figure 3 and Figure 4 As shown, the top of the side plate 91 near the placement platform 6 is machined with an angle 10, and a plurality of rotating rollers 92 are arranged one-to-one at the corner of the side plate 91, so that the rotating belt 93 surrounds the outer periphery of the side plate 91.

[0029] A support plate 11 is fixedly connected to the side of the side plate 91 near the placement platform 6 and at the oblique angle 10 of the side plate 91. The support plate 11 avoids the rotating roller 92.

[0030] The outer surface of the rotating belt 93 protrudes from the outer peripheral wall of the side plate 91, and a layer of anti-slip rubber 12 is attached to the outer surface of the rotating belt 93.

[0031] In this embodiment, observation Figure 3 and Figure 4It can be observed that by machining an angled edge 10 on the top of the side plate 91 near the placement table 6, and by having multiple rotating rollers 92 correspondingly positioned at the corners of the side plate 91, the rotating belt 93 can be made to... Figure 4 The glass plate is arranged in a manner that surrounds the outside of the side plate 91. When the glass plate is slightly offset, the side of the glass plate is located at the angle 10 of the pressing component 9. At this time, the downward pressing of the glass plate will be guided by the angle 10, correcting the offset of the glass plate and restoring the glass plate to achieve the effect of precise positioning between the glass plates.

[0032] Because the rotating belt 93 deforms when the glass plate is pressed, the glass plate may come into contact with the side plate 91 and chip at the edge. Therefore, observation is needed. Figure 3 It can be observed that support plates 11 are fixedly connected to the side of the side plate near the placement platform 6 and at the oblique angle 10 of the side plate 91. This ensures that the area where the rotating belt 93 contacts the glass plate is supported by the support plates 11, effectively preventing the rotating belt 93 from deforming under pressure and causing the glass plate to chip at the contact point with the side plate 91, thus effectively ensuring the integrity of the glass plate. Since the support plates 11 affect the rotation of the rotating roller 92, they are positioned to avoid contact with the rotating roller 92. This ensures that the rotating belt 93 can rotate smoothly and prevents the edges of the glass plate from sliding and rubbing against each other, thus preventing damage.

[0033] exist Figure 3 It can also be observed that the outer surface of the rotating belt 93 is covered with a layer of anti-slip rubber 12, which is then combined with... Figure 4 It can be observed that the outer surface of the rotating belt 93, which is fitted with anti-slip rubber 12, protrudes from the outer wall of the side plate 91, allowing the glass plate to contact the anti-slip rubber 12 when pressed against the rotating belt 93, thus increasing friction and further protecting the fragile edges of the glass plate. The rotating belt 93, which extends above the side plate 91, further prevents the glass plate from contacting the side plate 91, thereby further ensuring the integrity of the glass plate.

[0034] In a further preferred embodiment of this utility model, such as Figure 1 As shown, the length of the support frame 2 is greater than the length of the base 1, so that the bottom of the support frame 2 has space for storing the glass plate.

[0035] In this embodiment, since the negative pressure suction cup 5 is only responsible for moving the glass plate and cannot produce the glass plate, a space needs to be reserved for storing the glass plate in the negative pressure suction cup 5. Therefore, observation... Figure 1It can be seen that by making the length of the support frame 2 greater than the length of the base 1, the bottom of the support frame 2 is left with space for storing glass plates. At this time, it is necessary to stack the glass plates. Simply use a trolley, stacking device or other object that can be used to stack the glass plates in the space at the bottom of the support frame 2. Then the negative pressure suction cup 5 can continuously transport the glass plates to the base 1 for stacking, which can effectively improve the efficiency of multi-layer glass bonding.

[0036] The embodiments described herein are preferred embodiments of this utility model and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape, and principle of this utility model should be included within the scope of protection of this utility model.

Claims

1. A bonding device for multilayer glass production, comprising a base (1), a support frame (2) mounted above the base (1), a linear slide rail (3) mounted on the support frame (2), a slide table (4) slidably mounted on the linear slide rail (3), and a negative pressure suction cup (5) connected to the slide table (4) via a hydraulic press, characterized in that, A placement platform (6) is fixedly connected to the top center of the base (1), and linear cylinders (7) are provided around the placement platform (6). A pressing component (9) is fixedly connected to the slider (8) of the linear cylinder (7). The extrusion assembly (9) includes a side plate (91), a rotating roller (92) and a rotary belt (93). There are two side plates (91) and they are symmetrically connected to both sides of the slider (8). A rotary belt (93) is provided between the two side plates (91) and is supported by the rotating roller (92).

2. The bonding device for multilayer glass production according to claim 1, characterized in that, The side plate (91) has a bevel (10) on the top of the side closest to the placement platform (6), and a plurality of rotating rollers (92) are arranged one-to-one at the corner of the side plate (91), so that the rotating belt (93) surrounds the outer periphery of the side plate (91).

3. The bonding device for multilayer glass production according to claim 2, characterized in that, A support plate (11) is fixedly connected to the side of the side plate (91) near the placement platform (6) and at the oblique angle (10) of the side plate (91), and the support plate (11) avoids the rotating roller (92).

4. The bonding device for multilayer glass production according to claim 3, characterized in that, The outer surface of the rotating belt (93) protrudes from the outer peripheral wall of the side plate (91), and a layer of anti-slip rubber (12) is attached to the outer surface of the rotating belt (93).

5. A bonding device for multilayer glass production according to claim 1, characterized in that, The length of the support frame (2) is greater than the length of the base (1), so that the bottom of the support frame (2) has space for storing the glass plate.