Plug-in type metal energy-saving wall panel
By setting up multiple layers of flame retardant and thermal insulation materials in plug-in metal energy-saving wall panels and optimizing the connection structure, the problem of poor thermal insulation and flame retardant performance in the prior art is solved, and better energy-saving effects and safety performance are achieved.
Patent Information
- Application Number
- CN202422049263.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-22
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-08-22
AI Technical Summary
When used, the existing plug-in metal energy-saving wall panels have poor thermal insulation and flame retardant properties, resulting in unstable indoor temperature, poor energy-saving effect, and certain safety hazards.
By setting up flame retardant layer A, flame retardant layer B, flame retardant layer C, insulation layer A, wall panel A and wall panel B, materials such as silicate flame retardant coatings, polystyrene resins and phenolic foam boards are used to improve flame retardant performance; materials such as polyurea-formaldehyde foam, extruded boards and glass wool boards are used to improve thermal insulation performance, and through structural design such as rubber pads and positioning screws, the connection sealing and stability are enhanced.
It significantly improves the flame retardant and thermal insulation performance of wall panels, reduces indoor heat loss, achieves better energy-saving effects, and at the same time enhances the sealing and stability of the connection, reducing safety hazards.
Smart Images

Figure CN222991066U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of building materials, and particularly relates to a plug-in metal energy-saving wall panel. Background Art
[0002] The wall panel is a new type of building material, which is directly installed on the wall and used for wall decoration and protection. The wall panel is made of various materials, including gypsum board, PVC board, wood board, etc. In modern architecture, the use of wall panels not only improves the quality and safety of buildings, but also provides more design options and possibilities for architects.
[0003] However, when the existing plug-in metal energy-saving wall panel is in use, the heat preservation effect of the protective material usually set in the wall panel is poor, and the indoor temperature is easy to dissipate outward through the wall panel. The indoor air conditioner needs to work continuously to maintain the stability of the indoor temperature, and the energy-saving effect is poor. At the same time, the flame retardant effect of the protective material in the wall panel is poor, which has certain potential safety hazards. Therefore, a plug-in metal energy-saving wall panel is provided. Summary of the Utility Model
[0004] The main purpose of the utility model is to provide a plug-in metal energy-saving wall panel. By setting the flame retardant layer A, flame retardant layer B, flame retardant layer C, heat preservation layer A, wall panel A, wall panel B, heat preservation layer C and heat preservation layer B, the utility model solves the problems that the heat preservation and flame retardant properties of the existing plug-in metal energy-saving wall panel are poor when in use.
[0005] The technical solution adopted by the utility model to solve its technical problems is a plug-in metal energy-saving wall panel, which includes wall panel A and wall panel B. A groove for connecting with wall panel B is opened on one side of wall panel A. A fixing block entering the inside of the groove is fixed by screws on one side of wall panel B. Threaded holes are opened on the surfaces of wall panel A and the fixing block. A positioning screw for fixing wall panel A and wall panel B is threadedly connected to the outside of wall panel B. Flame retardant layer A for improving the flame retardant performance is sprayed on the outsides of wall panel A and wall panel B. Flame retardant layer B for improving the flame retardant performance is arranged inside wall panel A, and flame retardant layer C is fixed by screws on the outside of flame retardant layer B. Heat preservation layer A for improving the heat preservation and energy-saving performance is fixed by screws on one side of flame retardant layer C. Heat preservation layer C is adhered to the outside of heat preservation layer A, and heat preservation layer B is fixed by screws on the outside of heat preservation layer C.
[0006] By adopting the above technical solution, first insert the fixing block on wall panel B into the groove opened on wall panel A, then move wall panel B to the outside of wall panel A, and then rotate the positioning screw on wall panel B so that the positioning screw passes through the threaded holes opened on the surfaces of wall panel A and the fixing block, thereby facilitating the splicing of wall panel A and wall panel B;
[0007] The flame-retardant layer on the surfaces of wall panel A and wall panel B is sprayed with silicate flame-retardant paint. The silicate flame-retardant paint can decompose at high temperatures, releasing water and carbon dioxide to form a heat-insulating layer. The flame-retardant layer B inside wall panel A is filled with polystyrene resin. The flame-retardant polystyrene resin has high flame-retardant performance, which can effectively reduce the fire risk. At the same time, the flame-retardant layer C on one side of the flame-retardant layer B is made of phenolic foam board, which has excellent flame-retardant characteristics. And the internal structure of wall panel B is the same as that of wall panel A, thus improving the flame-retardant performance of wall panel A and wall panel B;
[0008] The heat-insulating layer A inside wall panel A is made of polyoxymethylene foam. Polyoxymethylene foam is a high-performance heat-insulating material with excellent heat-insulating performance. The heat-insulating layer C on one side of the heat-insulating layer A is made of extruded board, which has excellent heat-insulating performance and compressive strength, and also has good water vapor permeability resistance. And the heat-insulating layer B outside the heat-insulating layer C is made of glass wool board, which has good sound insulation performance. Thus, the heat-insulating performance of wall panel A and wall panel B is improved, the loss of indoor heat is reduced, and the purpose of energy conservation is achieved. At the same time, polyoxymethylene foam has good sound insulation effect and fire resistance, and glass wool board also has good sound insulation performance and fire resistance, thus further improving the sound insulation and flame-retardant performance of wall panel A and wall panel B.
[0009] Specifically, a rubber pad for improving the connection tightness of wall panel A and wall panel B is fixed to the outside of wall panel A with screws.
[0010] By adopting the above technical solution, when wall panel A and wall panel B are connected, the rubber pad on wall panel A is tightly connected to wall panel B, improving the connection tightness of wall panel A and wall panel B.
[0011] Specifically, the inner size of the groove matches the outer size of the fixing block.
[0012] By adopting the above technical solution, when the fixing block enters the groove, the inner side of the groove fits with the outside of the fixing block, facilitating the fixing block to enter the inside of the groove.
[0013] Specifically, the inner size of the threaded hole matches the outer size of the positioning screw, and the number of threaded holes and positioning screws is several.
[0014] By adopting the above technical solution, the threaded holes on the surfaces of wall panel A and the fixing block fit with the outside of the positioning screw. At the same time, several threaded holes and positioning screws are provided, making the connection between wall panel A and wall panel B stable.
[0015] Specifically, corrosion-resistant anti-rust paint is sprayed on both the threaded holes and the positioning screws.
[0016] By adopting the above technical solution, the antirust paint sprayed on the threaded holes and positioning screws increases the corrosion resistance of the threaded holes and positioning screws, and improves the service life of the threaded holes and positioning screws.
[0017] Advantages of the present utility model:
[0018] (1) For the plug-in metal energy-saving wall panel of the present utility model, the flame retardant layer on the surfaces of wall panel A and wall panel B is sprayed with silicate flame retardant paint. The silicate flame retardant paint can decompose at high temperatures, releasing water and carbon dioxide to form a heat insulation layer. The flame retardant layer B inside wall panel A is filled with polystyrene resin. The flame retardant polystyrene resin has high flame retardant performance, which can effectively reduce the fire risk. At the same time, the flame retardant layer C on one side of the flame retardant layer B is made of phenolic foam board, which has excellent flame retardant characteristics, and the internal structure of wall panel B is the same as that of wall panel A, thereby improving the flame retardant performance of wall panel A and wall panel B.
[0019] (2) For the plug-in metal energy-saving wall panel of the present utility model, the thermal insulation layer A inside wall panel A is made of polyoxymethylene foam. Polyoxymethylene foam is a high-performance thermal insulation material with excellent thermal insulation performance. The thermal insulation layer C on one side of the thermal insulation layer A is made of extruded board, which has excellent heat insulation performance and compressive strength, and also has good water vapor permeability resistance. And the thermal insulation layer B outside the thermal insulation layer C is made of glass wool board, which has good sound insulation performance, thereby improving the thermal insulation performance of wall panel A and wall panel B, reducing the loss of indoor heat, and achieving the purpose of energy conservation. At the same time, polyoxymethylene foam has good sound insulation effect and fire resistance, and glass wool board also has good sound insulation performance and fire resistance, thereby further improving the sound insulation and flame retardant performance of wall panel A and wall panel B. Description of the drawings
[0020] The present utility model will be further described below in conjunction with the drawings and embodiments.
[0021] Figure 1 It is a schematic diagram of the overall structure of a plug-in metal energy-saving wall panel of the present utility model;
[0022] Figure 2 It is an exploded structure schematic diagram of a plug-in metal energy-saving wall panel of the present utility model;
[0023] Figure 3 It is a schematic diagram of the internal structure of wall panel A of a plug-in metal energy-saving wall panel of the present utility model;
[0024] In the figure: 1, wall panel A; 2, flame retardant layer A; 3, wall panel B; 4, positioning screw; 5, groove; 6, rubber pad; 7, fixing block; 8, threaded hole; 9, flame retardant layer B; 10, flame retardant layer C; 11, thermal insulation layer A; 12, thermal insulation layer B; 13, thermal insulation layer C. Detailed implementation mode
[0025] In order to make the technical means, creative features, achieved purposes and effects realized by the present utility model easy to understand, the present utility model will be further described below in conjunction with specific implementation modes.
[0026] In order to improve the flame retardant performance of wall panel A1 and wall panel B3, as an embodiment of the present utility model, as shown in Figure 1 、 Figure 2 and Figure 3 A plug-in metal energy-saving wall panel described in the present utility model includes a wall panel A1 and a wall panel B3. A groove 5 for connecting with the wall panel B3 is provided on one side of the wall panel A1. A fixing block 7 entering the inside of the groove 5 is fixed by screws on one side of the wall panel B3. Threaded holes 8 are provided on the surfaces of both the wall panel A1 and the fixing block 7. A positioning screw 4 for fixing the wall panel A1 and the wall panel B3 is threadedly connected to the outside of the wall panel B3. Flame retardant layers A2 for improving the flame retardant performance are sprayed on the outsides of both the wall panel A1 and the wall panel B3. A flame retardant layer B9 for improving the flame retardant performance is provided inside the wall panel A1. A flame retardant layer C10 is fixed by screws on the outside of the flame retardant layer B9. A heat preservation layer A11 for improving the heat preservation and energy-saving performance is fixed by screws on one side of the flame retardant layer C10. A heat preservation layer C13 is bonded to the outside of the heat preservation layer A11. A heat preservation layer B12 is fixed by screws on the outside of the heat preservation layer C13.
[0027] During use, first insert the fixing block 7 on the wall panel B3 into the groove 5 provided on the wall panel A1. Then, move the wall panel B3 to the outside of the wall panel A1. Then, rotate the positioning screw 4 on the wall panel B3 so that the positioning screw 4 passes through the threaded holes 8 provided on the surfaces of the wall panel A1 and the fixing block 7, thereby facilitating the splicing process of the wall panel A1 and the wall panel B3;
[0028] The flame retardant layers on the surfaces of the wall panel A1 and the wall panel B3 are sprayed with silicate flame retardant paint. The silicate flame retardant paint can decompose at high temperatures, release water and carbon dioxide, and form a heat insulation layer. The flame retardant layer B9 inside the wall panel A1 is filled with polystyrene resin. The flame retardant polystyrene resin has high flame retardant performance and can effectively reduce the fire risk. At the same time, the flame retardant layer C10 on one side of the flame retardant layer B9 is made of phenolic foam board and has excellent flame retardant characteristics. The internal structure of the wall panel B3 is the same as that of the wall panel A1, thereby improving the flame retardant performance of the wall panel A1 and the wall panel B3;
[0029] The thermal insulation layer A11 inside the wall panel A1 is made of polyoxymethylene foam, which is a high-performance thermal insulation material with excellent thermal insulation performance. The thermal insulation layer C13 on one side of the thermal insulation layer A11 is made of extruded board, which has excellent heat insulation performance and compressive strength, and also has good water vapor permeability resistance. Moreover, the thermal insulation layer B12 outside the thermal insulation layer C13 is made of glass wool board, which has good sound insulation performance, thereby improving the thermal insulation performance of the wall panel A1 and the wall panel B3 and achieving the purpose of energy conservation. At the same time, the polyoxymethylene foam has good sound insulation effect and fire resistance, and the glass wool board also has good sound insulation performance and fire resistance, thereby further improving the sound insulation and flame retardant performance of the wall panel A1 and the wall panel B3.
[0030] To improve the sealing performance of the connection between the wall panel A1 and the wall panel B3, exemplarily, as Figure 2 shown, the present utility model further includes that a rubber pad 6 for improving the connection sealing performance between the wall panel A1 and the wall panel B3 is fixed to the outside of the wall panel A1 by screws.
[0031] During use, when the wall panel A1 and the wall panel B3 are connected, the rubber pad 6 on the wall panel A1 is tightly connected to the wall panel B3, improving the sealing performance of the connection between the wall panel A1 and the wall panel B3.
[0032] To enable the fixing block 7 to enter the inside of the groove 5, exemplarily, as Figure 2 shown, the present utility model further includes that the inner size of the groove 5 matches the outer size of the fixing block 7.
[0033] During use, when the fixing block 7 enters the groove 5, the inner side of the groove 5 fits with the outside of the fixing block 7, facilitating the fixing block 7 to enter the inside of the groove 5.
[0034] To make the connection between the wall panel A1 and the wall panel B3 stable, exemplarily, as Figure 2 shown, the present utility model further includes that the inner size of the threaded hole 8 matches the outer size of the positioning screw 4, and the number of the threaded holes 8 and the positioning screws 4 is several.
[0035] During use, the threaded holes 8 on the surface of the wall panel A1 and the fixing block 7 fit with the outside of the positioning screw 4. At the same time, several threaded holes 8 and positioning screws 4 are provided, making the connection between the wall panel A1 and the wall panel B3 stable.
[0036] To improve the service life of the threaded hole 8 and the positioning screw 4, exemplarily, as Figure 2 shown, the present utility model further includes that corrosion-resistant antirust paint is sprayed on both the threaded hole 8 and the positioning screw 4.
[0037] During use, the anti-rust paint sprayed on the threaded hole 8 and the positioning screw 4 increases the corrosion resistance of the threaded hole 8 and the positioning screw 4, and improves the service life of the threaded hole 8 and the positioning screw 4.
[0038] When this utility model is in use, first insert the fixing block 7 on the wall panel B3 into the groove 5 opened on the wall panel A1. Subsequently, move the wall panel B3 to the outside of the wall panel A1, and then rotate the positioning screw 4 on the wall panel B3 so that the positioning screw 4 passes through the threaded hole 8 opened on the surfaces of the wall panel A1 and the fixing block 7, thereby facilitating the splicing process of the wall panel A1 and the wall panel B3;
[0039] The flame retardant layer on the surfaces of the wall panel A1 and the wall panel B3 is sprayed with silicate flame retardant paint. The silicate flame retardant paint can decompose at high temperatures, releasing water and carbon dioxide to form a heat insulation layer. The flame retardant layer B9 inside the wall panel A1 is filled with polystyrene resin. The flame retardant polystyrene resin has high flame retardant performance, which can effectively reduce the fire risk. At the same time, the flame retardant layer C10 on one side of the flame retardant layer B9 is made of phenolic foam board, which has excellent flame retardant characteristics, and the internal structure of the wall panel B3 is the same as that of the wall panel A1, thereby improving the flame retardant performance of the wall panel A1 and the wall panel B3;
[0040] The thermal insulation layer A11 inside the wall panel A1 is made of polyurea formaldehyde foam. Polyurea formaldehyde foam is a high-performance thermal insulation material with excellent thermal insulation performance. The thermal insulation layer C13 on one side of the thermal insulation layer A11 is made of extruded board, which has excellent heat insulation performance and compressive strength, and also has good water vapor permeability resistance. And the thermal insulation layer B12 outside the thermal insulation layer C13 is made of glass wool board, which has good sound insulation performance, thereby improving the thermal insulation performance of the wall panel A1 and the wall panel B3 to achieve the purpose of energy conservation. At the same time, polyurea formaldehyde foam has good sound insulation effect and fire resistance, and the glass wool board also has good sound insulation performance and fire resistance, thereby further improving the sound insulation and flame retardant performance of the wall panel A1 and the wall panel B3;
[0041] When the wall panel A1 and the wall panel B3 are connected, the rubber pad 6 on the wall panel A1 is tightly connected to the wall panel B3, improving the sealing performance of the connection between the wall panel A1 and the wall panel B3;
[0042] When the fixing block 7 enters the groove 5, the inner side of the groove 5 fits with the outside of the fixing block 7, facilitating the entry of the fixing block 7 into the inside of the groove 5;
[0043] The threaded hole 8 on the surfaces of the wall panel A1 and the fixing block 7 fits with the outside of the positioning screw 4. At the same time, several threaded holes 8 and positioning screws 4 are provided, making the connection between the wall panel A1 and the wall panel B3 stable;
[0044] The anti-rust paint sprayed on the threaded hole 8 and the positioning screw 4 increases the corrosion resistance of the threaded hole 8 and the positioning screw 4, and improves the service life of the threaded hole 8 and the positioning screw 4.
[0045] The above shows and describes the basic principles, main features and advantages of the present utility model. Those skilled in the art should understand that the present utility model is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and all these changes and improvements fall within the scope of protection required by the present utility model. The scope of protection required by the present utility model is defined by the appended claims and their equivalents.
Claims
1. A plug-in metal energy-saving wall panel, characterized in that: The invention comprises a wall panel A (1) and a wall panel B (3), wherein one side of the wall panel A (1) is provided with a groove (5) connected to the wall panel B (3), one side of the wall panel B (3) is fixed with a fixing block (7) which enters the groove (5) by screws, the surface of the wall panel A (1) and the fixing block (7) are both provided with threaded holes (8), the outer side of the wall panel B (3) is threadedly connected with a positioning screw (4) which fixes the wall panel A (1) and the wall panel B (3), and the wall panel A (1) and the fixing block (7) are fixed with a fixing screw (4) which fixes the wall panel A (1) and the wall panel B (3). The wall panels B (3) are sprayed with a flame retardant layer A (2) for improving flame retardant performance on the outside, the wall panels A (1) are provided with a flame retardant layer B (9) for improving flame retardant performance on the inside, and a flame retardant layer C (10) is screwed to the outside of the flame retardant layer B (9), a thermal insulation layer A (11) for improving thermal insulation and energy saving performance is screwed to one side of the flame retardant layer C (10), a thermal insulation layer C (13) is bonded to the outside of the thermal insulation layer A (11), and a thermal insulation layer B (12) is screwed to the outside of the thermal insulation layer C (13).
2. A plug-in type energy-saving metal wall panel according to claim 1, characterized in that: The outer side of the wall panel A (1) is screwed with a rubber pad (6) for improving the sealing performance of the connection between the wall panel A (1) and the wall panel B (3).
3. The plug-in type energy-saving metal wall panel according to claim 1, characterized in that: The inner size of the groove (5) matches the outer size of the fixing block (7).
4. The plug-in type energy-saving metal wall panel according to claim 1, characterized in that: The inner size of the threaded hole (8) matches the outer size of the positioning screw (4), and the number of the threaded hole (8) and the number of the positioning screw (4) are both multiple.
5. The plug-in type energy-saving metal wall panel according to claim 1, characterized in that: The threaded hole (8) and the positioning screw (4) are sprayed with corrosion-resistant anti-rust paint.