Energy-saving coated hollow glass combined structure
By introducing sealing strips, reinforcing frames, and heating elements into the insulated glass assembly structure, the problem of frost and ice formation on glass in cold regions is solved, achieving efficient heating protection and sealing performance, and ensuring the transparency and stability of insulated glass in cold environments.
Patent Information
- Application Number
- CN202423145096.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2034-12-19
AI Technical Summary
Traditional insulated glass is prone to frost and ice formation on its surface in cold regions, affecting light transmission and visibility. External heating equipment is required, which is time-consuming, labor-intensive, and results in uneven heating.
The system employs an energy-saving coated insulating glass assembly structure, including an outer frame, glass, sealing strips, heating elements, and a conductive film. Through the sealing of the sealing strips, the support of the reinforcing frame, the dehumidification of the desiccant, and the heating function of the heating elements, a highly efficient sealing and heating system is formed.
It effectively prevents frost and ice formation on glass in cold environments, maintains transparency and visibility, reduces energy consumption, and improves structural stability and sealing performance.
Smart Images

Figure CN223562709U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of hollow glass, in particular to an energy-saving coated hollow glass combined structure. BACKGROUND
[0002] In the current high-speed evolution of the building industry, under the background of strict requirements for building quality, energy saving and environmental protection, and living comfort, glass, as a key component of building envelope structure, directly affects the overall performance of the building. Traditional hollow glass aims to achieve a certain degree of heat and sound insulation by sandwiching a hollow layer between double-layer glass. However, in cold regions, frost and ice often form on the surface of the glass, which seriously hinders light and line of sight penetration, and relies on external heating equipment (such as a warm air blower), which is time-consuming, labor-intensive, energy-intensive, and unevenly heated, with local ice ridges being difficult to melt for a long time.
[0003] The above information disclosed in the background of the application is only used to increase the understanding of the background of the application, and therefore, it can include prior art known to those skilled in the art. CONTENT OF THE UTILITY MODEL
[0004] In order to solve the problem that traditional hollow glass aims to achieve a certain degree of heat and sound insulation by sandwiching a hollow layer between double-layer glass, but in cold regions, frost and ice often form on the surface of the glass, which seriously hinders light and line of sight penetration, and relies on external heating equipment, which is time-consuming, labor-intensive, energy-intensive, and unevenly heated, with local ice ridges being difficult to melt for a long time, the application provides an energy-saving coated hollow glass combined structure.
[0005] The energy-saving coated hollow glass combined structure provided by the application adopts the following technical scheme:
[0006] An energy-saving coated hollow glass combined structure, comprising an outer frame, glass one and glass two are respectively installed on both sides of the inner part of the outer frame, a sealing rubber strip one is attached to the outer wall corner of the glass one and the glass two, a hollow layer is arranged between the glass one and the glass two, a heating element is arranged at the bottom end of the inner wall of the hollow layer, and a conductive film is arranged on the inner wall of one end of the glass one and the glass two.
[0007] Preferably, a high-adhesion polysulfide glue is arranged at the top end of the inner wall of the hollow layer, and an inner sealing rubber is arranged on both sides of the high-adhesion polysulfide glue.
[0008] Preferably, a reinforcing frame is arranged at the center of the high-adhesion polysulfide glue, and a drying agent is arranged in the reinforcing frame.
[0009] Preferably, a sealing rubber strip two is attached to the inner wall corner of one end of the glass one and the glass two.
[0010] Preferably, the bottom end of the inner wall of the glass one and the glass two is provided with a sealing plate, one end of the heating element is fixed to the inner wall of the sealing plate, and the inside of the heating element is provided with an electrically conductive wire.
[0011] In summary, the present application has the following beneficial technical effects:
[0012] The present application forms a complete and efficient energy-saving coated hollow glass combined structure through glass, sealing strips, desiccants and heating elements, from the sealing of the sealing strip one and the sealing strip two, to the strengthening and optimization of the hollow interlayer by the high-adhesion polysulfide glue, the inner sealing glue, the reinforcing frame and the desiccant, to the heating and conductive functions of the heating element, the sealing plate, the electrically conductive wire and the conductive film, each link is closely connected and works cooperatively to ensure that the energy-saving coated hollow glass is comprehensively optimized in terms of sealing performance, structural stability, moisture resistance, heating function and conductive performance, which can effectively block the invasion of external adverse factors and maintain good use performance under different environmental conditions, greatly improving the comprehensive performance of the energy-saving coated hollow glass. BRIEF DESCRIPTION OF DRAWINGS
[0013] Figure 1 is a front view of an energy-saving coated hollow glass combined structure according to an embodiment of the application.
[0014] Figure 2 is a structural schematic view of an energy-saving coated hollow glass combined structure according to an embodiment of the application.
[0015] Figure 3 is a structural schematic view of a glass according to an embodiment of the application.
[0016] BRIEF DESCRIPTION OF DRAWINGS 1, outer frame; 2, glass one; 3, sealing strip one; 4, glass two; 5, hollow interlayer; 6, inner sealing glue; 7, high-adhesion polysulfide glue; 8, sealing strip two; 9, reinforcing frame; 10, desiccant; 11, sealing plate; 12, heating element; 13, electrically conductive wire; 14, conductive film. DETAILED DESCRIPTION
[0017] The following will be described in detail with reference to the accompanying drawings Figures 1-3 The present application will be further described in detail.
[0018] The present application discloses an energy-saving coated hollow glass combined structure. Referring to Figure 1, including the outer frame 1, the two sides of the inner frame 1 are respectively installed with glass one 2 and glass two 4, the corners of the outer wall of glass one 2 and glass two 4 are all bonded with sealing rubber strip one 3 which is attached to the inner wall of the outer frame 1, the hollow interlayer 5 is set between glass one 2 and glass two 4, the inner wall corners of the end of glass one 2 and glass two 4 which are close to each other are all bonded with sealing rubber strip two 8, the setting of sealing rubber strip one 3 and sealing rubber strip two 8 plays a key sealing role at the connecting part of glass and the outer frame 1, it can be closely attached to the inner wall of the outer frame 1, effectively preventing the outside air, water vapor and dust and other impurities from entering the hollow interlayer 5 from the gap between glass and the outer frame 1, ensuring the relative stability of the environment in the hollow interlayer 5.
[0019] As shown in Figure 2 , the top end of the inner wall of the hollow interlayer 5 is provided with high-adhesion polysulfide glue 7, the two sides of the high-adhesion polysulfide glue 7 are both installed with inner sealing glue 6, the high-adhesion polysulfide glue 7 has very strong adhesion, which can firmly bond the parts of glass one 2 and glass two 4 at the top end of the hollow interlayer 5, enhancing the connection strength of the glass at this part, ensuring the structural stability of the hollow interlayer 5. At the same time, the inner sealing glue 6 on both sides cooperates with the high-adhesion polysulfide glue 7, further perfecting the sealing system of the top end of the hollow interlayer 5, not only preventing gas leakage, but also resisting the influence of external pressure on the structure of the hollow interlayer 5 to a certain extent, so that the hollow interlayer 5 can better maintain the integrity of its internal space, thereby ensuring the performance stability of the whole hollow glass.
[0020] In this application, the center of the high-adhesion polysulfide glue 7 is installed with a reinforcing frame 9, and the inside of the reinforcing frame 9 is installed with a desiccant 10, which can effectively absorb the residual water vapor in the hollow interlayer 5, reduce the humidity in the hollow interlayer 5, prevent water droplets from condensing in the hollow interlayer 5 due to the presence of water vapor, and avoid affecting the transparency, heat insulation performance and other properties of the hollow glass.
[0021] As shown in Figure 3 , the bottom end of the inner wall of the hollow interlayer 5 is provided with a heating element 12, and the bottom end of the inner wall of glass one 2 and glass two 4 is installed with a sealing plate 11, one end of the heating element 12 is fixed to the inner wall of the sealing plate 11, and the inside of the heating element 12 is installed with a conductive wire 13, which provides a current transmission channel for the heating element 12, and the inner wall of the end of glass one 2 and glass two 4 which are close to each other is provided with a conductive film 14, which can provide heat for the hollow glass when needed, and the sealing plate 11 plays a role in fixing the heating element 12, and also seals the inner wall of the bottom end of glass one 2 and glass two 4 to a certain extent, preventing external factors from invading the hollow interlayer 5 from this part, ensuring the relative stability of the working environment of the heating element 12, so that the heating function can reliably work.
[0022] The implementation principle of the energy-saving coated hollow glass combined structure of the embodiment of the application is:
[0023] In use, the sealing strip one 3 and the sealing strip two 8 are bonded and sealed at the corners of the inner and outer walls of the glass one 2 and the glass two 4, so as to be closely attached to the inner and outer walls of the frame 1, to complete the preliminary sealing between the glass and the frame 1, to prevent external air, water vapor and dust from entering the hollow interlayer 5 from the gap, to firmly bond the glass one 2 and the glass two 4 through the high adhesion of the high-adhesion polysulfide glue 7, and to improve the top sealing system through the inner sealing glue 6, to guarantee the structural stability and the sealing property of the top of the hollow interlayer 5, to provide additional structural support for the top area of the hollow interlayer 5 by the reinforcing frame 9 to resist external force deformation, and to absorb the residual water vapor in the hollow interlayer 5 by the desiccant 10 to reduce humidity and prevent water vapor condensation from affecting the glass performance, to effectively prevent glass surface frosting and icing in cold weather through heating of the heating element 12 to maintain the transparency of the glass and ensure that the indoor lighting and the field of view are not affected.
[0024] Finally, it should be pointed out that: first, in the description of the present application, it should be pointed out that, unless otherwise specified and limited, the terms "mounting", "connection", "connection" should be understood broadly, which can be mechanical connection or electrical connection, or the communication between two elements, or direct connection, "up", "down", "left", "right" and the like are only used to indicate the relative positional relationship, when the absolute position of the described object changes, the relative positional relationship may change;
[0025] Secondly: the utility model discloses the embodiment of the drawings only relates to the structure involved in the embodiment of the present disclosure, and other structures can refer to the usual design, and under the condition of no conflict, the same embodiment and different embodiments of the utility model can be combined with each other.
[0026] Finally: the above only for the preferred embodiment of the utility model, and does not limit the utility model, any modification, equivalent replacement, improvement and the like made within the spirit and principle of the utility model should be included in the protection scope of the utility model.
[0027] The above are the preferred embodiments of the present application, and are not used to limit the protection scope of the present application, so: any equivalent change made according to the structure, shape, principle of the present application should be covered in the protection scope of the present application.
Claims
1. An energy-saving coated hollow glass composite structure comprising an outer frame (1), characterized in that: The outer frame (1) inside is respectively installed with glass one (2) and glass two (4), the corner of outer wall of glass one (2) and glass two (4) is bonded with sealing rubber strip one (3) that is attached with outer frame (1) inner wall, hollow interlayer (5) is set up between glass one (2) and glass two (4), the bottom end of hollow interlayer (5) inner wall is equipped with heating element (12), the inner wall of one end of glass one (2) and glass two (4) is approached each other and is equipped with conductive film (14).
2. The energy-saving coated hollow glass composite structure according to claim 1, characterized in that: The top end of the inner wall of the hollow interlayer (5) is provided with high-viscosity polysulfide glue (7), and the two sides of the high-viscosity polysulfide glue (7) are provided with inner sealing glue (6).
3. The energy-saving coated hollow glass composite structure according to claim 2, characterized in that: The center of the high-viscosity polysulfide glue (7) is provided with a reinforcing frame (9), and the inside of the reinforcing frame (9) is provided with a desiccant (10).
4. The energy-saving coated hollow glass composite structure of claim 1, wherein: The inner wall corner of the end of the glass one (2) and the glass two (4) is connected with the sealing rubber strip two (8).
5. The energy-saving coated hollow glass composite structure of claim 1, wherein: The bottom end of the inner wall of the glass one (2) and the glass two (4) is provided with a sealing plate (11), one end of the heating element (12) is fixed with the inner wall of the sealing plate (11), and the inside of the heating element (12) is provided with a conductive wire (13).