Transparent composite glass with graphene heat conduction structure
By installing a frame plate and a frame cover made of a thermal conductivity, a reflective film and graphene plate in the transparent composite glass, and using a sealing strip, the problem of improving thermal conductivity in the prior art but affecting transparency is solved, and higher thermal conductivity, sealing and transparency are achieved, and service life is extended.
Patent Information
- Application Number
- CN202520690754.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2035-04-14
AI Technical Summary
The existing transparent composite glass with graphene thermal conductivity structures affects the transparency of the glass while improving the thermal conductivity efficiency. Since the sealing between various materials is low, water vapor is easily generated, which affects transparency and service life.
By installing a thermal conductivity plate, a reflective film and two layers of transparent glass in the transparent composite glass body, and wrapping the main body with a frame plate and a frame cover made of graphene plate, combined with the use of seal strip one and seal strip two, the thermal conductivity and sealing properties are improved and water vapor is avoided.
It improves the stability and thermal conductivity of transparent composite glass, enhances sealing, avoids the generation of water vapor, extends the service life, and improves transparency.
Smart Images

Figure CN222921200U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of transparent composite glass, and more specifically to a transparent composite glass provided with a graphene heat conduction structure. Background Art
[0002] In recent years, transparent composite glass has been widely used in various buildings, such as glass canopies and glass curtain walls. The application of transparent composite glass not only increases the lighting of buildings but also enhances their aesthetics, meeting the visual effects in architecture. Composite glass is a glass product formed by laminating two or more layers of glass with an intermediate layer material through a specific process, and a transparent, elastic, and strongly adhesive transparent thin film plastic is sandwiched between two or more pieces of glass. It is glued into a whole through processes such as hot pressing or grouting, enabling the entire transparent composite glass to have high safety.
[0003] For example, a transparent composite glass provided with a graphene heat conduction structure with the prior art publication number CN218171647U. This utility model increases the heat conduction efficiency of the composite glass by providing through holes in the reflective film, explosion-proof plate, inner lining plate, and outer layer glass, and arranging graphene strips in the through holes. The two ends of the graphene strips are connected to graphene sheets, so that external high temperature can be evenly conducted under high temperature weather, the heat dissipation surface is increased, and the phenomenon of heat entering the room after passing through the composite glass is reduced.
[0004] However, the above prior art still has the following problems when in use: Although a large number of graphene strips are arranged in the transparent composite glass and can play a heat conduction role, the arrangement of a large number of graphene strips and graphene sheets will affect the transparency of the glass. At the same time, the sealing performance between various materials is relatively low, resulting in the easy generation of water vapor inside the transparent composite glass, which will also affect the transparency. Based on this, the utility model provides a transparent composite glass provided with a graphene heat conduction structure. Summary of the Utility Model
[0005] In order to overcome the above-mentioned defects of the prior art, the utility model provides a transparent composite glass provided with a graphene heat conduction structure. A transparent composite glass main body is formed by a heat conduction plate, a reflective film, and two layers of transparent glass. The use of a frame plate and a frame cover can improve the stability and heat conduction of the transparent composite glass main body. In addition, a first sealing strip and a second sealing strip can improve the heat conduction and sealing performance of the transparent composite glass main body, avoid the generation of water vapor inside the transparent composite glass main body, and further improve the transparency and service life of the transparent composite glass main body to solve the problems presented in the above background art.
[0006] To achieve the above object, the present utility model provides the following technical solutions: A transparent composite glass provided with a graphene heat conduction structure, comprising a transparent composite glass main body and a heat conduction component sleeved outside the transparent composite glass main body. The transparent composite glass main body includes two layers of transparent glass, a heat conduction plate and a reflective film are provided between the two layers of transparent glass, and the reflective film is arranged outside the heat conduction plate. The heat conduction component includes a frame plate and a frame cover. Sealing strips I are fixedly arranged on the inner walls of the frame plate and the frame cover, and the sealing strips I are in contact with the heat conduction plate, the reflective film and the two layers of transparent glass. Sealing strips II are provided between the heat conduction plate and the reflective film, between the heat conduction plate and the transparent glass, and between the reflective film and the transparent glass.
[0007] In a preferred embodiment, both the sealing strip I and the sealing strip II are heat-conducting silica gel pads. The heat-conducting silica gel pads have high flexibility and can fill the gaps between the transparent composite glass main body and the frame plate and the frame cover, between the heat conduction plate and the reflective film, between the heat conduction plate and the transparent composite glass main body, and between the reflective film and the transparent composite glass main body, playing a sealing role. The heat conduction plate is a transparent silica gel plate, which has transparency and heat conductivity and can conduct the heat on the transparent glass into the sealing strips I and II.
[0008] In a preferred embodiment, positioning grooves are processed at the top and bottom of the heat conduction plate, the reflective film and the two layers of transparent glass. Positioning plates with the same number as the positioning grooves are fixedly arranged on the inner wall of the bottom of the frame plate and the inner wall of the top of the frame cover. The positioning plates are inserted into the positioning grooves. By using the cooperation of the positioning plates and the positioning grooves, the stability between the transparent composite glass main body and the frame plate and the frame cover can be improved.
[0009] In a preferred embodiment, the frame plate, the frame cover and the positioning plates are all graphene plates. The graphene plates have high heat conductivity and can conduct the heat of the transparent composite glass main body, greatly improving the heat conduction effect of the entire transparent composite glass main body.
[0010] In a preferred embodiment, two threaded holes are opened on both sides of the top of the frame cover, and a fastening bolt is threadedly connected inside each threaded hole. The frame cover is detachably fixed to the frame plate through the fastening bolts.
[0011] In a preferred embodiment, a plurality of insertion blocks are fixedly arranged at the bottom of the frame cover, and slots with the same number as the insertion blocks are opened at the top of the frame plate. The insertion blocks are inserted into the slots. By means of the insertion of the insertion blocks into the slots, the assembly efficiency of the frame cover and the frame plate can be improved.
[0012] In a preferred embodiment, a sealing strip III for blocking the gap between the bottom of the frame cover and the top of the frame plate is provided therebetween, so as to improve the sealing performance therebetween.
[0013] The technical effects and advantages of the present utility model:
[0014] 1. The utility model forms a transparent composite glass body through a heat-conducting plate, a reflective film and two layers of transparent glass, and uses a frame plate and a frame cover made of graphene plates to wrap the transparent composite glass body, which can improve the stability and heat conductivity of the transparent composite glass body. In addition, the first sealing strip and the second sealing strip can improve the heat conductivity and sealing performance of the transparent composite glass body, avoid the generation of water vapor inside the transparent composite glass body, and further improve the transparency and service life of the transparent composite glass body.
[0015] 2. By setting the frame cover and the frame plate to be separable, it is convenient to replace the transparent composite glass body subsequently. At the same time, with the cooperation of the insertion block and the slot, the assembly efficiency between the frame cover and the frame plate can be improved, and the third sealing strip is set to improve the sealing performance between the two. Description of the Drawings
[0016] Figure 1 is the overall structural schematic diagram of the utility model;
[0017] Figure 2 is the schematic diagram of the separation of the frame cover and the frame plate of the utility model;
[0018] Figure 3 is the cross-sectional view of the transparent composite glass body of the utility model;
[0019] Figure 4 is the schematic diagram of the separation of the frame plate and the first sealing strip of the utility model;
[0020] Figure 5 is the bottom view of the frame cover of the utility model.
[0021] The reference numerals are: 1, transparent composite glass body; 2, heat-conducting component; 3, positioning groove; 4, positioning plate; 5, threaded hole; 6, fastening bolt; 7, insertion block; 8, slot; 9, third sealing strip;
[0022] 101, transparent glass; 102, heat-conducting plate; 103, reflective film;
[0023] 201, frame plate; 202, frame cover; 203, first sealing strip; 204, second sealing strip. Detailed Embodiment
[0024] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the 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 of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0025] Refer to the attached drawings of the specificationFigures 1 - 5 , the utility model provides a transparent composite glass provided with a graphene heat conduction structure, which includes a transparent composite glass body 1 and a heat conduction component 2 sleeved outside the transparent composite glass body 1. The transparent composite glass body 1 includes two layers of transparent glass 101, a heat conduction plate 102 and a reflective film 103 are arranged between the two layers of transparent glass 101, and the reflective film 103 is arranged outside the heat conduction plate 102. The heat conduction component 2 includes a frame plate 201 and a frame cover 202. Sealing strips one 203 are fixedly arranged on the inner walls of the frame plate 201 and the frame cover 202. The sealing strips one 203 are in contact with the heat conduction plate 102, the reflective film 103 and the two layers of transparent glass 101. Sealing strips two 204 are arranged between the heat conduction plate 102 and the reflective film 103, the transparent glass 101, and between the reflective film 103 and the transparent glass 101.
[0026] Both the frame plate 201 and the frame cover 202 are graphene plates, both the sealing strips one 203 and the sealing strips two 204 are heat-conducting silica gel pads, and the heat conduction plate 102 is a transparent silica gel plate.
[0027] During actual use, the two layers of transparent glass 101, the heat conduction plate 102 and the reflective film 103 form the transparent composite glass body 1, and the frame plate 201 and the frame cover 202 are arranged outside the transparent composite glass body 1. The frame plate 201 and the frame cover 202 made of graphene plates wrap the transparent composite glass body 1, which can not only improve the stability of the transparent composite glass body 1, but also improve the heat conductivity. The transparent silica gel plate arranged between the two layers of transparent glass 101 has transparency and heat conductivity, so that the heat on the transparent glass 101 can be conducted into the sealing strips one 203 and the sealing strips two 204, and then conducted into the frame plate 201 and the frame cover 202, and conducted to the external environment through the frame plate 201 and the frame cover 202, so as to achieve the heat conduction effect. At the same time, both the sealing strips one 203 and the sealing strips two 204 are heat-conducting silica gel pads, and the heat-conducting silica gel pads have high flexibility and can fill the gaps between the transparent composite glass body 1 and the frame plate 201 and the frame cover 202, between the heat conduction plate 102 and the reflective film 103, between the heat conduction plate 102 and the transparent composite glass body 1, and between the reflective film 103 and the transparent composite glass body 1, complete heat transfer, and play a sealing role at the same time, which can improve the sealing performance of the transparent composite glass body 1, avoid the generation of water vapor inside the transparent composite glass body 1, and further improve the transparency and service life of the transparent composite glass body 1.
[0028] Refer to the attached drawings of the specification Figures 1 - 5, positioning grooves 3 are processed on the top and bottom of the heat conduction plate 102, the reflective film 103 and the two layers of transparent glass 101. Positioning plates 4 with the same number as the positioning grooves 3 are fixedly provided on the inner wall of the bottom of the frame plate 201 and the inner wall of the top of the frame cover 202. The positioning plates 4 are also made of graphene plates. The positioning plates 4 are inserted into the positioning grooves 3. By using the cooperation of the positioning plates 4 and the positioning grooves 3, the stability between the transparent composite glass body 1 and the frame plate 201 and the frame cover 202 can be improved. At the same time, the positioning plates 4 are made of graphene plates, which can conduct the heat of the transparent composite glass body 1 while performing positioning and reinforcement, so as to achieve a heat conduction effect.
[0029] Two threaded holes 5 are opened on both sides of the top of the frame cover 202. A fastening bolt 6 is threadedly connected inside each threaded hole 5. The frame cover 202 is detachably fixed to the frame plate 201 through the fastening bolt 6. Moreover, a plurality of insertion blocks 7 are fixedly provided on the bottom of the frame cover 202. Slots 8 with the same number as the insertion blocks 7 are opened on the top of the frame plate 201. The insertion blocks 7 are inserted into the slots 8. By means of the insertion of the insertion blocks 7 into the slots 8, the assembly efficiency of the frame cover 202 and the frame plate 201 can be improved.
[0030] Furthermore, a third sealing strip 9 is provided between the bottom of the frame cover 202 and the top of the frame plate 201. By means of the third sealing strip 9, the gap between the frame cover 202 and the frame plate 201 can be filled, so as to improve the sealing performance between the two.
[0031] Finally: The above are only the preferred embodiments of the present invention and are not used to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A transparent composite glass provided with a graphene heat-conducting structure, characterized in that: It comprises a transparent composite glass body (1) and a heat-conducting component (2) sleeved on the outside of the transparent composite glass body (1), wherein the transparent composite glass body (1) comprises two layers of transparent glass (101), a heat-conducting plate (102) and a reflective film (103) are provided between the two layers of transparent glass (101), and the reflective film (103) is provided on the outside of the heat-conducting plate (102); The heat conduction component (2) comprises a frame plate (201) and a frame cover (202); the inner walls of the frame plate (201) and the frame cover (202) are both fixedly provided with a first sealing strip (203); the first sealing strip (203) is in contact with the heat conduction plate (102), the reflective film (103) and the two layers of transparent glass (101); and a second sealing strip (204) is provided between the heat conduction plate (102) and the reflective film (103), between the heat conduction plate (102) and the transparent glass (101), and between the reflective film (103) and the transparent glass (101).
2. The transparent composite glass provided with a graphene heat-conducting structure according to claim 1, characterized in that: The sealing strip 1 (203) and the sealing strip 2 (204) are both thermally conductive silicone pads, and the thermally conductive plate (102) is a transparent silicone plate.
3. The transparent composite glass provided with a graphene heat-conducting structure according to claim 1, characterized in that: The heat conducting plate (102), the reflective film (103) and the top and bottom of the two layers of transparent glass (101) are all processed with positioning grooves (3); the bottom inner wall of the frame plate (201) and the top inner wall of the frame cover (202) are both fixedly provided with positioning plates (4) having the same number as the positioning grooves (3); the positioning plates (4) are plugged into the positioning grooves (3).
4. The transparent composite glass provided with a graphene heat-conducting structure according to claim 3, characterized in that: The frame plate (201), the frame cover (202) and the positioning plate (4) are all graphene plates.
5. The transparent composite glass provided with a graphene heat-conducting structure according to claim 1, characterized in that: Two threaded holes (5) are provided on both sides of the top of the frame cover (202), and a fastening bolt (6) is threadedly connected inside each threaded hole (5). The frame cover (202) is detachably fixed to the frame plate (201) via the fastening bolts (6).
6. The transparent composite glass provided with a graphene heat-conducting structure according to claim 1, characterized in that: A plurality of plug-in blocks (7) are fixedly provided at the bottom of the frame cover (202), and slots (8) having the same number as the plug-in blocks (7) are provided at the top of the frame plate (201), and the plug-in blocks (7) are plugged into the slots (8).
7. The transparent composite glass provided with a graphene heat-conducting structure according to claim 1, characterized in that: A sealing strip (9) is provided between the bottom of the frame cover (202) and the top of the frame plate (201) for sealing the gap therebetween.
Citation Information
Patent Citations
Transparent composite glass with graphene heat conduction structure
CN218171647U