Big glass plate with double-layer sealant

By setting up double-layer sealant, sealing groove, positioning groove and support mechanism in the double-layer sealant glass large plate, combined with the use of the inflatable valve core, the problem of poor structural strength and sound insulation and thermal insulation effect of the existing double-layer sealant glass large plate is solved, and high structural strength and excellent sound insulation and thermal insulation performance are achieved.

CN223034827UActive Publication Date: 2025-06-27湖北聚辉新材料科技有限公司
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Patent Information

Application Number
CN202422247861.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-13
Publication Date
2025-06-27
Estimated Expiration
2034-09-13

AI Technical Summary

Technical Problem

The existing double-layer sealant glass large plate has low structural strength and poor sound insulation and thermal insulation effects, making it difficult to meet the connection strength and heat insulation needs of building decoration.

Method used

A double-layer sealant glass large plate is designed. By setting the outer double-layer sealant, the inner double-layer sealant, the sealing groove, the positioning groove and the support mechanism between the substrate and the glass plate, the adhesive strength and structural strength are enhanced, and argon gas is charged through the inflatable valve core to improve thermal insulation and sound insulation performance.

Benefits of technology

The structural strength of the double-layer sealant glass large plate is improved, which is convenient for interconnection, ensures connection strength, and significantly improves thermal and sound insulation performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of large glass plates, in particular to a double-layer sealant large glass plate, which adopts the technical scheme that the double-layer sealant large glass plate comprises a base plate and a glass plate, a first splice plate is mounted at one side end of the base plate, an outer double-layer sealant is arranged at the edge of the upper end of the base plate, and an inflation valve core is mounted at the front end of the outer double-layer sealant in an embedded manner; the glass plate is installed at the upper end of the base plate in a bonding mode through outer double-layer sealant, a second splicing plate is installed at one side end of the glass plate, sealing grooves are formed in the upper end of the base plate and the lower end of the glass plate, and inner double-layer sealant is arranged in the sealing grooves. The upper end of the base plate and the lower end of the glass plate are each provided with two first positioning grooves and two second positioning grooves, the two first positioning grooves and the two second positioning grooves are symmetrically distributed, and the two first positioning grooves are located on the outer side of the sealing groove. The utility model has the advantages that the structural strength is high, mutual connection is convenient, the connection strength is ensured, the hollow layer can be filled with argon, and the sound insulation and heat preservation properties are ensured.
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Description

Technical Field

[0001] The utility model relates to the technical field of large glass plates, in particular to a double-layer sealant large glass plate. Background Art

[0002] Large glass plates, especially those used in double-layer sealant glass systems, are glass products with special structures and excellent properties. They are common materials in modern architecture and homes. They not only provide good visual effects but also have excellent heat insulation, sound insulation, and protection properties. In the structure of double-layer sealant large glass plates, the position of the sealant is crucial, which directly affects the sealing performance, safety, and durability of the large glass plates. The sealant needs to go through a certain curing time to achieve the best sealing effect after being applied.

[0003] Currently, the structural strength of double-layer sealant large glass plates is relatively low. When used in building decoration, it is often necessary to connect double-layer sealant large glass plates to each other. Without a connection structure, double-layer sealant large glass plates are connected and sealed with glue, and the inside of the double-layer sealant large glass plates is hollowed out for sound insulation and heat insulation, but the sound insulation and heat insulation effects are weak. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a double-layer sealant large glass plate, which has the advantages of high structural strength, convenient mutual connection, ensuring connection strength, and can be filled with argon in the hollow layer to ensure its sound insulation and heat preservation performance, and solves the problems raised in the above background art.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A double-layer sealant large glass plate, comprising a substrate and a glass plate. A first splicing plate is installed at one end of the substrate, an outer double-layer sealant is arranged at the upper edge of the substrate, and an inflation valve core is embedded at the front end of the outer double-layer sealant. The glass plate is adhesively installed on the upper end of the substrate through the outer double-layer sealant. A second splicing plate is installed at one end of the glass plate. Sealing grooves are provided at the upper end of the substrate and the lower end of the glass plate, and an inner double-layer sealant is arranged in the sealing grooves. First positioning grooves and second positioning grooves are provided at the upper end of the substrate and the lower end of the glass plate. There are two first positioning grooves and two second positioning grooves, which are symmetrically distributed. The two first positioning grooves are located outside the sealing grooves, and the two second positioning grooves are located inside the sealing grooves.

[0006] When using the double - layer sealed - glue glass slab of the present utility model, the substrate and the glass slab are adhesively connected through the outer double - layer sealant and the inner double - layer sealant, and a sealing groove is provided, which increases the adhesive area between the inner double - layer sealant and the substrate and the glass slab. Moreover, the substrate and the glass slab are also supported by the first support mechanism and the second support mechanism. Positioning grooves are provided at the upper end of the substrate and the lower end of the glass slab. The lower spacer bar and the upper spacer bar of the support mechanism are located in the positioning grooves, which can prevent the displacement of the support mechanism. A buffer glue layer is also provided between the lower spacer bar and the upper spacer bar, which can buffer through the buffer glue layer while providing support. With their mutual cooperation, the double - layer sealed - glue glass slab has high structural strength. When the double - layer sealed - glue glass slabs need to be spliced during decoration, the first splicing plate and the second splicing plate of the adjacent double - layer sealed - glue glass slabs are inserted into the first insertion groove and the second insertion groove of another double - layer sealed - glue glass slab, and then adhesive is filled. This not only facilitates the connection but also ensures the connection strength. Argon can be filled into the hollow layer between the substrate and the glass slab through the inflation valve core. The argon in the hollow layer can improve the heat - insulation and sound - insulation performance of the double - layer sealed - glue glass slab.

[0007] Preferably, a first insertion groove is provided at one side end of the substrate facing away from the first splicing plate, and the size of the first splicing plate is adapted to the size of the first insertion groove.

[0008] Preferably, a second insertion groove is provided at one side end of the glass slab facing away from the second splicing plate, and the size of the second splicing plate is adapted to the size of the second insertion groove.

[0009] Preferably, the inner double - layer sealant includes a positioning glue layer and a connecting glue layer. There are two positioning glue layers symmetrically distributed, the connecting glue layer is located between the positioning glue layers, and the positioning glue layer is adhered in the sealing groove.

[0010] Preferably, a first support mechanism and a second support mechanism are respectively provided in the first positioning groove and the second positioning groove. Both the first support mechanism and the second support mechanism include a lower spacer bar, an upper spacer bar, and a buffer glue layer. The lower spacer bar and the upper spacer bar are both located in the first positioning groove and the second positioning groove. The settings of the first positioning groove and the second positioning groove are used to limit the support mechanism.

[0011] Preferably, the buffer glue layer is provided between the lower spacer bar and the upper spacer bar, and the upper end of the lower spacer bar, the upper end of the upper spacer bar, and the buffer glue layer are all arranged in a V - shape.

[0012] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0013] 1. When the inner double - layer sealant is adhered, a sealing groove is provided, which increases the adhesive area between the inner double - layer sealant and the substrate and the glass slab, thereby improving the adhesive strength between the substrate and the glass slab.

[0014] 2. The substrate and the glass plate are also supported by the first support mechanism and the second support mechanism. The lower spacer and the upper spacer of the support mechanism can be limited by the positioning groove, which can prevent the displacement of the support mechanism. A buffer rubber layer is also provided between the lower spacer and the upper spacer, which can buffer through the buffer rubber layer while supporting. With their mutual cooperation, the double-layer sealed glass large plate has high structural strength.

[0015] 3. When the double-layer sealed glass large plates need to be spliced, the left and right adjacent double-layer sealed glass large plates can be spliced through the cooperation of the first splicing plate and the second splicing plate with the first insertion slot and the second insertion slot. After splicing, the adhesive is filled, which can not only facilitate and stabilize the connection, but also ensure the connection strength.

[0016] 4. Argon can be filled into the hollow layer between the substrate and the glass plate through the inflation valve core. The argon located in the hollow layer can improve the heat insulation and sound insulation performance of the double-layer sealed glass large plate, ensuring the heat insulation and sound insulation performance of the double-layer sealed glass large plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is the front view structural schematic diagram of the present utility model;

[0018] Figure 2 is the rear view structural schematic diagram of the present utility model;

[0019] Figure 3 is the disassembled structural schematic diagram of the present utility model;

[0020] Figure 4 is the substrate structural schematic diagram of the present utility model;

[0021] Figure 5 is the first support mechanism structural schematic diagram of the present utility model;

[0022] Figure 6 is the inner double-layer sealant structure schematic diagram of the present utility model.

[0023] The reference numerals and names in the drawings are as follows:

[0024] 101, substrate; 102, outer double-layer sealant; 103, glass plate; 104, inflation valve core; 201, first splicing plate; 202, second splicing plate; 203, first insertion slot; 204, second insertion slot; 301, first positioning groove; 302, second positioning groove; 303, lower spacer; 304, upper spacer; 305, buffer rubber layer; 401, sealant groove; 402, inner double-layer sealant; 403, positioning adhesive layer; 404, connection adhesive layer. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0025] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts belong to the protection scope of the present utility model.

[0026] Embodiment

[0027] Please refer to Figures 1 to 6 , an embodiment provided by the present utility model: a double-layer sealed glass slab, comprising:

[0028] A substrate 101 and a glass plate 103. A first splicing plate 201 is installed at one side end of the substrate 101. An outer double-layer sealant 102 is provided at the upper edge of the substrate 101. An inflation valve core 104 is embedded at the front end of the outer double-layer sealant 102. The glass plate 103 is adhesively installed on the upper end of the substrate 101 through the outer double-layer sealant 102. A second splicing plate 202 is installed at one side end of the glass plate 103. Sealing grooves 401 are provided at the upper end of the substrate 101 and the lower end of the glass plate 103. Inner double-layer sealants 402 are provided in the sealing grooves 401. First positioning grooves 301 and second positioning grooves 302 are provided at the upper end of the substrate 101 and the lower end of the glass plate 103. There are two first positioning grooves 301 and two second positioning grooves 302, which are symmetrically distributed. The two first positioning grooves 301 are located outside the sealing grooves 401, and the two second positioning grooves 302 are located inside the sealing grooves 401.

[0029] In this embodiment, the substrate 101 and the glass plate 103 are bonded and connected by an outer double-layer sealant 102 and an inner double-layer sealant 402, and a sealing groove 401 is provided to increase the bonding area between the inner double-layer sealant 402 and the substrate 101 and the glass plate 103, and the substrate 101 and the glass plate 103 are also supported by a first supporting mechanism and a second supporting mechanism, and a positioning groove is further provided at the upper end of the substrate 101 and the lower end of the glass plate 103, and a lower spacer bar 303 and an upper spacer bar 304 of the supporting mechanism are located in the positioning groove to prevent the displacement of the supporting mechanism, and a buffer rubber layer 305 is further provided between the lower spacer bar 303 and the upper spacer bar 304, so that while supporting The buffering layer 305 can also be used for buffering, and the double-layer sealed glass panel can have high structural strength by cooperating with each other. When the double-layer sealed glass panel needs to be spliced ​​during decoration, the first splicing plate 201 and the second splicing plate 202 of the adjacent double-layer sealed glass panel are plugged into the first plugging groove 203 and the second plugging groove 204 of another double-layer sealed glass panel, and then filled with adhesive. This not only facilitates connection, but also ensures connection strength. Argon gas can be filled into the hollow layer between the substrate 101 and the glass panel 103 through the inflatable valve core 104. The argon gas in the hollow layer can improve the heat insulation and sound insulation performance of the double-layer sealed glass panel.

[0030] Furthermore, a first plugging slot 203 is formed at one end of the base plate 101 which is away from the first splicing plate 201 , and the size of the first splicing plate 201 matches the size of the first plugging slot 203 .

[0031] Furthermore, a second plugging groove 204 is formed at one end of the glass plate 103 which is away from the second splicing plate 202 , and the size of the second splicing plate 202 matches the size of the second plugging groove 204 .

[0032] Furthermore, the inner double-layer sealant 402 includes a positioning adhesive layer 403 and a connecting adhesive layer 404 . The positioning adhesive layer 403 is provided with two symmetrically distributed ones. The connecting adhesive layer 404 is located between the positioning adhesive layers 403 , and the positioning adhesive layer 403 is bonded in the sealing groove 401 .

[0033] Furthermore, a first supporting mechanism and a second supporting mechanism are respectively provided in the first positioning groove 301 and the second positioning groove 302, and the first supporting mechanism and the second supporting mechanism both include a lower spacer bar 303, an upper spacer bar 304 and a buffer rubber layer 305, and the lower spacer bar 303 and the upper spacer bar 304 are both located in the first positioning groove 301 and the second positioning groove 302.

[0034] Furthermore, the buffer rubber layer 305 is disposed between the lower spacer bar 303 and the upper spacer bar 304 , and the upper end of the lower spacer bar 303 , the upper end of the upper spacer bar 304 and the buffer rubber layer 305 are all disposed in a V shape.

[0035] For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above-described exemplary embodiments, and the present utility model can be implemented in other specific forms without departing from the spirit or basic characteristics of the present utility model. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present utility model. Any reference signs in the claims should not be construed as limiting the claims involved.

Claims

1. A double-layer sealant glass plate, comprising a substrate (101) and a glass plate (103), characterized in that: A first splicing plate (201) is installed at one side end of the substrate (101); an outer double-layer sealant (102) is provided at the upper edge of the substrate (101); an inflatable valve core (104) is embedded and installed at the front end of the outer double-layer sealant (102); the glass plate (103) is mounted on the upper end of the substrate (101) by bonding with the outer double-layer sealant (102); a second splicing plate (202) is installed at one side end of the glass plate (103); the upper end of the substrate (101) and the lower end of the glass plate (103) are connected to each other. A sealing groove (401) is provided at each end, and an inner double-layer sealant (402) is arranged in the sealing groove (401); a first positioning groove (301) and a second positioning groove (302) are provided at the upper end of the substrate (101) and the lower end of the glass plate (103); two first positioning grooves (301) and two second positioning grooves (302) are provided and are symmetrically distributed, the two first positioning grooves (301) are located on the outside of the sealing groove (401), and the two second positioning grooves (302) are located on the inside of the sealing groove (401).

2. A double-layer sealant glass plate according to claim 1, characterized in that: A first plugging slot (203) is provided at one end of the base plate (101) facing away from the first splicing plate (201); the size of the first splicing plate (201) is adapted to the size of the first plugging slot (203).

3. The double-layer sealant glass plate according to claim 1, characterized in that: A second insertion groove (204) is provided on one side of the glass plate (103) facing away from the second splicing plate (202); the size of the second splicing plate (202) is adapted to the size of the second insertion groove (204).

4. The double-layer sealant glass plate according to claim 1, characterized in that: The inner double-layer sealant (402) comprises a positioning glue layer (403) and a connecting glue layer (404), wherein the positioning glue layer (403) is provided with two symmetrically distributed ones, the connecting glue layer (404) is located between the positioning glue layers (403), and the positioning glue layer (403) is bonded in the sealing groove (401).

5. The double-layer sealant glass plate according to claim 1, characterized in that: A first supporting mechanism and a second supporting mechanism are respectively arranged in the first positioning groove (301) and the second positioning groove (302), and the first supporting mechanism and the second supporting mechanism both comprise a lower spacer bar (303), an upper spacer bar (304) and a buffer rubber layer (305), and the lower spacer bar (303) and the upper spacer bar (304) are both located in the first positioning groove (301) and the second positioning groove (302).

6. The double-layer sealant glass plate according to claim 5, characterized in that: The buffer rubber layer (305) is arranged between the lower spacer bar (303) and the upper spacer bar (304); the upper end of the lower spacer bar (303), the upper end of the upper spacer bar (304) and the buffer rubber layer (305) are all arranged in a V-shape.