Anti-glare high-transmittance glass

By using a multi-layered glass structure and an inner anti-glare coating design, combined with buffer components and inert gas filling, the problem of coating wear during long-term use of anti-glare high-transparency glass is solved, achieving a longer-lasting anti-glare effect and stronger impact resistance.

CN223576365UActive Publication Date: 2025-11-21DONGGUAN YINFU GLASS CO LTD
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Patent Information

Application Number
CN202423138008.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-19
Publication Date
2025-11-21
Estimated Expiration
2034-12-19

AI Technical Summary

Technical Problem

The coating or surface treatment processes of existing anti-glare high-transparency glass are prone to wear and tear during long-term use, resulting in a decrease in anti-glare effect.

Method used

The system employs a multi-layered glass structure, with an anti-glare coating placed on the inner side. Buffer components are filled between the glass panels to cushion external forces, and a flexible sealing strip forms a cavity filled with inert gas to enhance heat and sound insulation.

Benefits of technology

It extends the lifespan of the anti-glare effect, enhances the glass's impact resistance, and improves the glass's heat insulation and sound insulation performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of high-transmittance glass, and discloses anti-glare high-transmittance glass which comprises a first glass plate, second glass plates are arranged at the positions, a certain distance away from the rear side, of the front side of the first glass plate, and flexible sealing belts are connected to the edge positions of the front side and the rear side of the first glass plate. The flexible sealing belt is connected with the edge position of the second glass plate, a cavity is formed between the first glass plate and the second glass plate, an anti-glare coating film is arranged on the side, close to the first glass plate, of the second glass plate, and buffering assemblies are connected to the four corners of the first glass plate and the four corners of the second glass plate. The first glass plate and the second glass plate form a three-layer glass plate structure, cavities are formed among the three layers of glass plate structures to achieve the effects of heat insulation and sound insulation, and the anti-dazzle coating film is arranged on the outer surface of the glass plate on the inner side, so that dazzle light generated by the first glass plate can be reduced, abrasion is avoided, and long-time use is facilitated.
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Description

Technical Field

[0001] This utility model belongs to the field of high-transparency glass technology, specifically an anti-glare high-transparency glass. Background Technology

[0002] Glass is an amorphous solid made from various inorganic minerals (such as quartz sand, soda ash, limestone, etc.) as the main raw materials, which are melted at high temperatures and then cooled and solidified. High-transparency glass is a type of glass with extremely high light transmittance. Under normal circumstances, its visible light transmittance can reach more than 90%. This type of glass allows a large amount of light to pass through while minimizing light loss and scattering during propagation, thus providing a very clear view. Compared with ordinary glass, high-transparency glass performs better in terms of transparency. The light transmittance of ordinary glass is generally around 80%-85%, while high-transparency glass allows more light to pass through, making objects appear brighter and clearer. The main component of high-transparency glass is still silicon dioxide, but the purity requirements of the raw materials are higher. In order to achieve high light transmittance, the content of impurities needs to be strictly controlled.

[0003] Anti-glare high-transmittance glass is a type of glass that combines anti-glare and high light transmittance. It can effectively reduce glare while ensuring high light transmittance, typically with a visible light transmittance of over 80%-90%. This type of glass uses special coating or surface treatment processes to optimize light transmission, reducing reflected light interference while allowing most light to pass through smoothly.

[0004] In existing technologies, regardless of whether special coating or surface treatment processes are used, the structure is located on the outer surface of the glass, and it will continuously wear down during long-term use until the anti-glare effect of the glass is greatly reduced.

[0005] Therefore, a high-transparency anti-glare glass is proposed to address the above problems. Utility Model Content

[0006] To address the problems mentioned in the background art, this utility model provides an anti-glare high-transparency glass, which features a multi-layer glass structure with an anti-glare coating on the inner side to avoid wear during long-term use and minimize impact on the anti-glare effect. Furthermore, the multi-layer glass has a buffer structure between it to cushion external forces, reducing impact and extending its service life.

[0007] To achieve the above objectives, this utility model provides the following technical solution: an anti-glare high-transmittance glass, comprising a first glass plate, a second glass plate being provided at a certain distance from the front and rear sides of the first glass plate, a flexible sealing strip being connected to the edges of the front and rear sides of the first glass plate, the flexible sealing strip being connected to the edges of the second glass plate, a cavity being formed between the first glass plate and the second glass plate, an anti-glare coating being provided on the side of the second glass plate near the first glass plate, and buffer components being connected to the four corners of the first glass plate and the second glass plate.

[0008] Preferably, the first glass plate and the second glass plate are the same size, and there is a certain distance between the first glass plate and the second glass plate.

[0009] Preferably, a fixing frame is fixedly connected to the outer side of the first glass plate, and the fixing frame is bonded to the first glass plate with sealant.

[0010] Preferably, the first glass plate, the second glass plate, and the flexible sealing strip together form a cavity, which is filled with a transparent, heat-insulating, and sound-insulating inert gas.

[0011] Preferably, the buffer assembly includes a cylinder, inside which a movable plate is provided, and springs and movable rods are respectively connected to both sides of the movable plate, with the movable rods penetrating through the cylinder.

[0012] Preferably, the cylinder is embedded in the first glass plate and located at the four corners of the first glass plate.

[0013] Preferably, the end of the movable rod is fixedly connected to the second glass plate, and the movable rod is fixed at the four corners of the second glass plate.

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

[0015] 1. This utility model forms a three-layer glass structure by setting a first glass plate and a second glass plate, with cavities between them, so as to achieve the effects of heat insulation and sound insulation. Furthermore, by placing an anti-glare coating on the outer surface of the inner glass plate, the glare generated by the first glass plate can be reduced while avoiding wear, which is beneficial for long-term use.

[0016] 2. By setting up a buffer component, the present invention can retract when the second glass is subjected to an impact force, so as to alleviate the impact force on the second glass plate, thereby protecting the second glass plate and enabling the glass to withstand greater impact forces. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0018] Figure 2 This is a schematic diagram of the appearance and structure of this utility model;

[0019] Figure 3 This is a cross-sectional structural diagram of the present invention;

[0020] Figure 4 This is a cross-sectional view of the first glass plate of this utility model;

[0021] Figure 5 This is a schematic diagram of the structure of the buffer component of this utility model.

[0022] In the diagram: 1. First glass plate; 2. Second glass plate; 3. Flexible sealing strip; 4. Cavity; 5. Anti-glare coating;

[0023] 6. Buffer assembly; 601. Cylinder; 602. Movable plate; 603. Spring; 604. Movable rod;

[0024] 7. Fixed connection frame. Detailed Implementation

[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0026] like Figures 1 to 5As shown, this utility model provides an anti-glare high-transparency glass, including a first glass plate 1. Second glass plates 2 are positioned at a certain distance from the front and rear sides of the first glass plate 1. Flexible sealing strips 3 are connected to the edges of the front and rear sides of the first glass plate 1. The flexible sealing strips 3 seal the cavity 4 without affecting the displacement of the second glass plates 2. The flexible sealing strips 3 connect to the edges of the second glass plates 2, forming a cavity 4 between the first glass plate 1 and the second glass plates 2. The air in the cavity 4 has heat insulation and sound insulation effects relative to the fixed glass. It can also be filled with gas to achieve better heat insulation and sound insulation. An anti-glare coating 5 is provided on the side of the second glass plate 2 closest to the first glass plate 1. The anti-glare coating 5 mainly achieves its function by reducing reflected light. In optics, when light enters another medium from one medium (such as from air into a lens), it is reflected at the interface. According to Fresnel's law of reflection, the intensity of the reflected light is related to the angle of incidence and the refractive indices of the two media. The refractive index of the anti-glare coating material is carefully designed so that the coating can reduce reflected light through the principle of interference. When light is reflected at different interfaces of the coating, the peaks of the reflected light cancel each other out, thereby reducing the intensity of the reflected light and reducing glare. Buffer components 6 are connected at the four corners of the first glass plate 1 and the second glass plate 2. When the second glass plate 2 is subjected to an impact, the buffer components 6 can retract to alleviate the impact on the second glass plate 2, thereby protecting the second glass plate 2 and enabling the glass to withstand greater impact forces.

[0027] Specifically, the first glass plate 1 and the second glass plate 2 have the same size, and there is a certain distance between the first glass plate 1 and the second glass plate 2 so that there is enough distance for the second glass plate 2 to move.

[0028] Furthermore, a fixed connecting frame 7 is fixedly connected to the outer side of the first glass plate 1. The fixed connecting frame 7 is bonded to the first glass plate 1 with sealant, so that the fixed connecting frame 7 is connected to the frame of the glass installation, and there is a gap between the second glass plate 2 and the installation frame to facilitate the displacement of the second glass plate 2.

[0029] Furthermore, the first glass plate 1, the second glass plate 2, and the flexible sealing strip 3 together form a cavity 4. The cavity 4 is filled with a transparent, heat-insulating, and sound-insulating inert gas, such as argon. Argon is an inert gas with a very low thermal conductivity, about two-thirds that of air. When filled in the glass interlayer, it can effectively prevent heat from being conducted through the glass. This is because the heat conduction of a gas is mainly achieved through the thermal motion of its molecules. Argon molecules are relatively heavy, and at the same temperature, their molecular thermal motion speed is slower than that of air molecules, resulting in lower heat transfer efficiency. In terms of sound insulation, argon can increase the resistance to sound propagation. When sound propagates in a medium, the density and elasticity of the medium affect the speed of sound propagation and the degree of attenuation. Argon has a higher density than air, and the speed of sound propagation in argon is different from that in air. When sound propagates from one side of the glass to the other, it is reflected and refracted due to the change in the medium, and some of the sound energy is attenuated, thus achieving a sound insulation effect.

[0030] It is worth noting that the buffer assembly 6 includes a cylinder 601, inside which is a movable plate 602. A spring 603 and a movable rod 604 are respectively connected to both sides of the movable plate 602. The movable rod 604 passes through the cylinder 601, and the spring 603 is used to absorb the impact force to protect the second glass plate 2.

[0031] It is worth noting that the cylinder 601 is embedded in the first glass plate 1 and is located at the four corners of the first glass plate 1, which reduces the impact on the light transmission of the glass.

[0032] It is worth mentioning that the end of the movable rod 604 is fixedly connected to the second glass plate 2, and the movable rod 604 is fixed at the four corners of the second glass plate 2.

[0033] Working principle and process: The first glass plate 1 and the second glass plate 2 form a three-layer glass structure with cavities 4 between them. The cavities 4 are filled with transparent, heat-insulating, and sound-insulating inert gases to achieve better heat and sound insulation effects, such as argon gas. Argon gas has a very low thermal conductivity, about two-thirds that of air. In terms of sound insulation, argon gas can increase the resistance to sound transmission, thereby achieving a sound insulation effect. The anti-glare coating 5 is placed on the outer surface of the inner glass plate, which can reduce glare from the first glass plate 1 and prevent wear. When the second glass plate 2 is subjected to impact, the buffer component 6 can retract and use the spring 603 to absorb the impact force to alleviate the impact force on the second glass plate 2, thereby protecting the second glass plate 2 and enabling the glass to withstand greater impact forces, which is beneficial to the use of the glass.

[0034] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0035] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A high-transparency anti-glare glass, comprising a first glass plate (1), characterized in that: A second glass plate (2) is provided at a certain distance from the front and rear sides of the first glass plate (1). A flexible sealing strip (3) is connected to the edge of the front and rear sides of the first glass plate (1). The flexible sealing strip (3) is connected to the edge of the second glass plate (2). A cavity (4) is formed between the first glass plate (1) and the second glass plate (2). An anti-glare coating (5) is provided on the side of the second glass plate (2) close to the first glass plate (1). Buffer components (6) are connected to the four corners of the first glass plate (1) and the second glass plate (2).

2. The anti-glare high-transmittance glass according to claim 1, characterized in that: The first glass plate (1) and the second glass plate (2) have the same size, and there is a certain distance between the first glass plate (1) and the second glass plate (2).

3. The anti-glare high-transmittance glass according to claim 1, characterized in that: A fixing frame (7) is fixedly connected to the outer side of the first glass plate (1), and the fixing frame (7) is bonded to the first glass plate (1) with sealant.

4. The anti-glare high-transmittance glass according to claim 1, characterized in that: The first glass plate (1), the second glass plate (2), and the flexible sealing strip (3) together form a cavity (4), which is filled with a transparent, heat-insulating, and sound-insulating inert gas.

5. The anti-glare high-transmittance glass according to claim 1, characterized in that: The buffer assembly (6) includes a cylinder (601), inside which is a movable plate (602). A spring (603) and a movable rod (604) are respectively connected to both sides of the movable plate (602), and the movable rod (604) passes through the cylinder (601).

6. The anti-glare high-transmittance glass according to claim 5, characterized in that: The cylinder (601) is embedded in the first glass plate (1) and is located at the four corners of the first glass plate (1).

7. The anti-glare high-transmittance glass according to claim 5, characterized in that: The end of the movable rod (604) is fixedly connected to the second glass plate (2), and the movable rod (604) is fixed at the four corners of the second glass plate (2).