High-strength thermal insulation formwork
By introducing steel mesh and moisture-proof borders into the thermal insulation formwork, the problem of tilting or damage to the formwork during the support of unformed walls is solved, achieving high-strength support and stable connection of the formwork.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUBEI CHENYUAN NEW MATERIAL TECH CO LTD
- Filing Date
- 2025-06-19
- Publication Date
- 2026-08-04
AI Technical Summary
Existing thermal insulation templates are prone to tilting or damage during the support of unformed walls, resulting in insufficient strength.
The formwork body is supported by a first and a second steel mesh, and fixed to the bottom shell by extending the steel bars. Combined with moisture-proof frames, fixing grooves and fixing nails, the stability and firmness of the formwork are enhanced.
This improves the stability and firmness of the formwork when supporting an unformed wall, and ensures the stability and firmness of the connection between the formwork and the wall after it is formed.
Smart Images

Figure CN224591784U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of thermal insulation template technology, specifically a high-strength thermal insulation template. Background Technology
[0002] Thermal insulation formwork is a new type of building material that integrates formwork support and thermal insulation functions. It is mainly used in the construction of concrete walls, serving both as a formwork support structure and forming an insulation layer within the wall after construction, achieving integrated structural insulation. However, existing thermal insulation formwork has some shortcomings, such as: The non-removable exterior wall insulation formwork, application number CN202420224298.3, can fix multiple insulation formworks on the same surface, thus ensuring that the distance between the multiple insulation formworks and the wall surface is consistent during pouring, reducing the possibility of cracks after drying. The insulation board can insulate the wall, thereby reducing heat loss. However, in actual use, since the equipment is fixed to the wall by bolts and other components, when the wall is not yet formed, concrete may press on the formwork, causing the formwork to tilt or even be damaged, thus affecting the strength of the insulation formwork during use. Therefore, we propose a high-strength thermal insulation template to solve the problems mentioned above. Utility Model Content
[0003] The purpose of this utility model is to provide a high-strength thermal insulation template to solve the problem mentioned in the background art that the current thermal insulation templates on the market are difficult to support the unformed wall, thus causing the template to tilt or be damaged.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a high-strength thermal insulation template, comprising a template body and moisture-proof borders provided on the left and right sides of the template body; The front end of the template body is provided with a first steel mesh, and the front end of the first steel mesh is equipped with a first insulation layer. The rear end of the template body is provided with a second steel mesh, and the rear end of the second steel mesh is equipped with a second insulation layer. Both the first insulation layer and the second insulation layer are provided with cavities. The template body has a top plate at the top, and the bottom of the first and second steel meshes has extended steel bars. The bottom of the template body is equipped with a bottom shell, the bottom of the extended steel bars are connected to the bottom shell, and the outer sides of the first and second steel meshes are fixedly connected to the moisture-proof frame.
[0005] The formwork body is supported by the first and second steel meshes, and the bottom of the first and second steel meshes is fixed to the bottom shell by extending steel bars. This allows the middle of the formwork body to be supported by the first and second steel meshes, while the left and right sides are supported by moisture-proof frames. This makes the formwork more stable when supporting the unformed wall. Furthermore, the first steel mesh is connected to the first insulation layer, and the second steel mesh is connected to the second insulation layer, making the formwork body more secure when fixed to the first and second insulation layers.
[0006] As a preferred technical solution of this utility model, a fixing groove is provided on the inner side of the moisture-proof frame, and the moisture-proof frame is fixed to the template body through the fixing groove, and a connecting groove is provided on the outer side of the moisture-proof frame.
[0007] The above technical solution enables the moisture-proof frame to be more stable when fixing the template body, the first steel mesh, the second steel mesh, and other components, thereby increasing the stability of the equipment during installation.
[0008] As a preferred technical solution of this utility model, the rear end of the moisture-proof frame is provided with a fixing nail, and the moisture-proof frame is fixedly connected to the wall by the fixing nail, and the bottom of the moisture-proof frame is assembled and connected to the bottom shell.
[0009] The above technical solution enables the rear end of the moisture-proof frame to be more stable when connected and fixed to the wall, thereby increasing the firmness of the device when connected to the wall.
[0010] As a preferred technical solution of this utility model, the top of the moisture-proof frame is assembled and connected with the top plate, and the top plate is provided with an injection hole. The top plate is connected to the fixing buckle through the injection hole, and the front end of the first insulation layer is provided with a decorative outer plate, and the rear end of the second insulation layer is provided with a bonding plate.
[0011] The above technical solution enables the equipment to be injected through the injection hole when injecting thermal insulation mortar or filling thermal insulation foam, thereby increasing the stability of the equipment during injection.
[0012] As a preferred technical solution of this utility model, the bonding board can be directly bonded and fixed to the rear wall, and both the decorative outer panel and the bonding board are bonded and fixed to the moisture-proof frame through the fixing groove.
[0013] The above technical solution enables the device to be more stable when it is attached and fixed to the rear wall, thereby increasing the stability of the device when supporting the wall and making the connection between the device and the formed wall more secure.
[0014] As a preferred technical solution of this utility model, the bottom of the moisture-proof frame is provided with micro damping, and a fixing block is connected to the inner side of the micro damping. Furthermore, the bottom of the decorative outer panel and the bonding panel are provided with reserved holes, and the fixing block can be connected to the reserved holes at the bottom of the decorative outer panel and the bonding panel.
[0015] The above technical solution enables the moisture-proof frame to be more secure when fixing the decorative outer panel and the laminated panel, thereby increasing the stability of the equipment during installation.
[0016] As a preferred technical solution of this utility model, when the moisture-proof frames are connected to each other, they are connected by connecting grooves, and the connecting grooves are reserved with empty grooves and the first and second steel meshes are attached.
[0017] The above technical solution enables the insulation mortar or filling foam to fill the empty groove when it is injected, thereby making the first and second steel mesh more secure when connected to the bottom shell and other equipment.
[0018] Compared with the prior art, the beneficial effects of this utility model are as follows: the first and second steel meshes support the template body, and the bottom of the first and second steel meshes are fixed to the bottom shell by extending steel bars. This allows the middle part of the template body to be supported by the first and second steel meshes, while the left and right sides are supported by the moisture-proof frame. This makes the template more stable when supporting the unformed wall. Furthermore, the first steel mesh is connected to the first insulation layer, and the second steel mesh is connected to the second insulation layer, making the template body more secure when fixing the first and second insulation layers. Furthermore, by setting fixing grooves inside the moisture-proof frame, the moisture-proof frame can be made more stable when fixing components such as the template body, the first steel mesh, and the second steel mesh, thereby increasing the stability of the equipment during installation. Furthermore, the addition of the bonding plate enhances the stability of the device when it is bonded and fixed to the wall behind it, thereby increasing its stability in supporting the wall and ensuring a firm connection between the device and the formed wall. Attached Figure Description
[0019] Figure 1 This is a front view elevation diagram of the present utility model; Figure 2 This is a schematic diagram of the layered three-dimensional structure of the template body of this utility model; Figure 3 This is a three-dimensional structural schematic diagram of the present invention from a top cross-section. Figure 4This is a three-dimensional structural schematic diagram of the side cross-section of this utility model; Figure 5 For the present utility model Figure 2 A magnified structural diagram at point A; Figure 6 This is a schematic diagram of the layered three-dimensional structure of the first and second reinforcing meshes of this utility model.
[0020] In the diagram: 1. Template body; 2. Moisture-proof frame; 3. Fixing groove; 4. Connecting groove; 5. Fixing nail; 6. Top plate; 7. Fixing buckle; 8. First steel mesh; 9. First insulation layer; 10. Decorative outer panel; 11. Second steel mesh; 12. Second insulation layer; 13. Adhesive board; 14. Extending steel bar; 15. Bottom shell; 16. Micro damping; 17. Fixing block. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0022] To address the problem in existing technologies where thermal insulation formwork is insufficient to support unformed walls, leading to formwork tilting or damage, the following solution is disclosed. Please refer to [link / reference]. Figures 1-6 This utility model provides a technical solution: a high-strength thermal insulation template, including a template body 1 and moisture-proof frames 2 set on the left and right sides of the template body 1; The front end of the template body 1 is provided with a first steel mesh 8, and the front end of the first steel mesh 8 is provided with a first insulation layer 9. The rear end of the template body 1 is provided with a second steel mesh 11, and the rear end of the second steel mesh 11 is provided with a second insulation layer 12. Both the first insulation layer 9 and the second insulation layer 12 are provided with cavities. The top of the template body 1 is provided with a top plate 6, and the bottom of the first steel mesh 8 and the second steel mesh 11 are extended with extension steel bars 14. The bottom of the template body 1 is installed with a bottom shell 15, the bottom of the extension steel bars 14 is connected to the bottom shell 15, and the outer sides of the first steel mesh 8 and the second steel mesh 11 are fixedly connected to the moisture-proof frame 2.
[0023] The moisture-proof frame 2 has a fixing groove 3 on the inner side, and the moisture-proof frame 2 is fixed to the template body 1 through the fixing groove 3, and the moisture-proof frame 2 has a connecting groove 4 on the outer side. The moisture-proof frame 2 has a fixing nail 5 at the rear end, and the moisture-proof frame 2 is fixedly connected to the wall through the fixing nail 5. The bottom of the moisture-proof frame 2 is assembled and connected to the bottom shell 15, and the top of the moisture-proof frame 2 is assembled and connected to the top plate 6. The top of the top plate 6 has an injection hole, and the top plate 6 is connected to the fixing buckle 7 through the injection hole. The front end of the first insulation layer 9 has a decorative outer plate 10, and the rear end of the second insulation layer 12 has a bonding plate 13. The bonding board 13 can be directly bonded and fixed to the rear wall, and both the decorative outer panel 10 and the bonding board 13 are bonded and fixed to the moisture-proof frame 2 through the fixing groove 3. The bottom of the moisture-proof frame 2 is provided with a micro damping 16, and the inner side of the micro damping 16 is connected to a fixing block 17. The bottom of the decorative outer panel 10 and the bonding board 13 are provided with reserved holes. The fixing block 17 can be connected to the reserved holes at the bottom of the decorative outer panel 10 and the bonding board 13. When the moisture-proof frames 2 are connected to each other, they are connected to each other through the connecting groove 4. The connecting groove 4 has a reserved empty groove and is bonded to the first steel mesh 8 and the second steel mesh 11.
[0024] Working principle: When using this high-strength thermal insulation template, the front and rear ends of the template body 1 are first connected to the first steel mesh 8 and the second steel mesh 11 respectively, so that the first steel mesh 8 is connected and fixed to the first thermal insulation layer 9, and the second steel mesh 11 is connected and fixed to the second thermal insulation layer 12. Then, it is fixed by the moisture-proof frame 2 on the left and right sides. At this time, the extension steel bars 14 at the bottom of the first steel mesh 8 and the second steel mesh 11 will enter the bottom shell 15. Then, thermal insulation mortar or filling foam is injected into the empty grooves of the first steel mesh 8 and the second steel mesh 11, so that the filling flows into the bottom shell 15. When the filling solidifies, it fixes the first steel mesh 8 and the second steel mesh 11 through the extension steel bars 14, so that the first steel mesh 8 and the second steel mesh 11 support and fix the template body 1. When the template body 1, the first steel mesh 8 and the second steel mesh 11 are fixed in the moisture-proof frame 2, the moisture-proof frame 2 will fix the template body 1, the first steel mesh 8, the second steel mesh 11, the first insulation layer 9 and the second insulation layer 12 through the fixing groove 3. At the same time, the micro damping 16 will also push the fixing block 17, so that the fixing block 17 is connected and fixed with the holes reserved at the bottom of the decorative outer panel 10 and the bonding panel 13. When filling material is injected at the first steel mesh 8 and the second steel mesh 11, the material can be injected through the injection hole at the top of the top plate 6. After the injection is completed, the injection hole can be blocked by the fixing buckle 7, and then the top of the fixing buckle 7 is connected to the top layer, so that the top layer supports the top of the template body 1.
[0025] This completes a series of tasks. The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0026] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A high-strength thermal insulation template, comprising a template body (1) and moisture-proof frames (2) provided on the left and right sides of the template body (1); Its features are: The template body (1) has a first steel mesh (8) at the front end, and a first insulation layer (9) is installed at the front end of the first steel mesh (8). The template body (1) has a second steel mesh (11) at the rear end, and a second insulation layer (12) is installed at the rear end of the second steel mesh (11). Both the first insulation layer (9) and the second insulation layer (12) have cavities inside. The template body (1) is provided with a top plate (6) at the top, and the bottom of the first steel mesh (8) and the second steel mesh (11) are extended with extension steel bars (14), and the bottom of the template body (1) is installed with a bottom shell (15). The bottom of the extension steel bars (14) is connected to the bottom shell (15), and the outer sides of the first steel mesh (8) and the second steel mesh (11) are fixedly connected to the moisture-proof frame (2).
2. The high-strength thermal-protection mold plate according to claim 1, wherein The moisture-proof frame (2) has a fixing groove (3) on the inner side, and the moisture-proof frame (2) is fixed to the template body (1) through the fixing groove (3), and the moisture-proof frame (2) has a connecting groove (4) on the outer side.
3. The high-strength thermal-protection mold plate according to claim 2, wherein The moisture-proof frame (2) is provided with a fixing nail (5) at the rear end, and the moisture-proof frame (2) is fixedly connected to the wall through the fixing nail (5), and the bottom of the moisture-proof frame (2) is assembled and connected to the bottom shell (15).
4. The high-strength thermal-protection mold plate according to claim 3, wherein The top of the moisture-proof frame (2) is assembled and connected to the top plate (6), and the top plate (6) is provided with an injection hole. The top plate (6) is connected to the fixing buckle (7) through the injection hole. The front end of the first insulation layer (9) is provided with a decorative outer plate (10), and the rear end of the second insulation layer (12) is provided with a bonding plate (13).
5. The high-strength insulated form panel of claim 4, wherein, The bonding panel (13) can be directly bonded and fixed to the rear wall, and both the decorative outer panel (10) and the bonding panel (13) are bonded and fixed to the moisture-proof frame (2) through the fixing groove (3).
6. The high-strength thermal-protection mold plate according to claim 5, wherein The moisture-proof frame (2) has a micro damper (16) at the bottom, and a fixing block (17) is connected to the inner side of the micro damper (16). The decorative outer panel (10) and the bonding panel (13) have reserved holes at the bottom. The fixing block (17) can be connected to the reserved holes at the bottom of the decorative outer panel (10) and the bonding panel (13).
7. The high-strength insulated form panel of claim 6, wherein, When the moisture-proof frame (2) is connected to each other, it is connected to each other through the connecting groove (4), and the connecting groove (4) has a reserved empty groove and the first steel mesh (8) and the second steel mesh (11) are attached to each other.