Steel wire net rack composite board with good heat preservation performance
By using a design that combines splicing plates with insulation layers in the steel wire mesh composite panel, and utilizing a combination of sliding locking rods and limiting rotating plates, the problem of insulation effect and stability caused by joint gaps is solved, achieving higher insulation performance and structural stability, while simplifying the splicing process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHINA METALLURGICAL ROAD & BRIDGE CONSTR CO LTD
- Filing Date
- 2025-03-28
- Publication Date
- 2026-04-21
AI Technical Summary
The existing steel wire mesh composite panels have gaps at the joints during splicing, resulting in poor overall thermal insulation and structural stability.
The splicing plate and the insulation layer are engaged in a snap-fit design. The sliding locking rod is engaged into the locking hole by the first spring. The elastic soft pad contacts the insulation layer to block the splicing gap. At the same time, the limiting rotating plate and the limiting groove are engaged in a snap-fit design to reduce the splicing difficulty.
It improves the overall insulation effect and structural stability, reduces the difficulty of splicing, and increases the splicing efficiency.
Smart Images

Figure CN224148985U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of steel wire mesh composite panels, and in particular to a steel wire mesh composite panel with good thermal insulation. Background Technology
[0002] Steel wire mesh composite panels are a type of composite structural panel that integrates steel wire mesh and various panel materials, widely used in construction, decoration, and industrial manufacturing. These panels combine steel wire mesh with panel materials (such as cement board, gypsum board, and insulation materials) to form a robust and multifunctional structure, typically installed on walls to improve the thermal insulation effect of buildings. However, when installing steel wire mesh composite panels on walls, splicing is required. Because existing steel wire mesh composite panels are usually spliced together in contact with each other on the wall, gaps exist at the joints, resulting in poor overall insulation performance and structural stability.
[0003] Therefore, a steel wire mesh composite panel with good insulation has now been developed that can block the gaps between insulation layers, improve the overall insulation effect and structural stability. Utility Model Content
[0004] To overcome the shortcomings of existing steel wire mesh composite panels, which have gaps at the joints during splicing, resulting in poor overall insulation and structural stability, this utility model provides a steel wire mesh composite panel with good insulation that can block the splicing gaps between insulation layers, thereby improving the overall insulation effect and structural stability.
[0005] The technical solution is as follows: A steel wire mesh composite panel with good thermal insulation includes a steel wire mesh frame, an adhesive layer, an insulation layer, splicing components, and positioning components. The steel wire mesh frame has two parts, upper and lower. An adhesive layer is provided on the side of the steel wire mesh frame that is close to each other. An insulation layer is connected between the adhesive layers. A splicing component for splicing is provided on the insulation layer. A positioning component for positioning during splicing is also provided on the insulation layer.
[0006] Optionally, a slot is provided on the right side of the insulation layer.
[0007] Optionally, it also includes a sealing plug, which is snapped into the front left side of the insulation layer.
[0008] Optionally, the splicing assembly includes a splicing plate, an elastic pad, a sliding locking rod, and a first spring. The splicing plate is connected to the left side of the insulation layer, and the elastic pad is connected to the left side of the splicing plate. Multiple sliding locking rods are slidably connected to the upper side of the splicing plate, and each sliding locking rod is connected to the splicing plate by a first spring. Multiple locking holes are opened on the lower right side of the insulation layer.
[0009] Optionally, the upper side of the sliding locking rod is semi-circular.
[0010] Optionally, the positioning component includes a sliding rod, a second spring, and a limiting rotating plate. The right side of the insulation layer is slidably connected to the sliding rod on both the front and rear sides. The sliding rod is connected to the insulation layer by a second spring. The sliding rod is rotatably connected to the limiting rotating plate. The limiting rotating plate is engaged with the insulation layer. The splicing plate has limiting grooves on both the front and rear sides.
[0011] Compared with the prior art, the present invention has the following advantages: 1. The present invention uses splicing plate and insulation layer to engage and cooperate. The sliding locking rod is squeezed and moves downward. The first spring is compressed and contracts. When the sliding locking rod moves to the locking hole, the first spring rebounds, so that the sliding locking rod is locked into the locking hole. At this time, the elastic soft pad contacts the insulation layer, thereby blocking the splicing gap between the insulation layers and improving the overall insulation effect and structural stability.
[0012] 2. When the splicing plate is inserted into the insulation layer, the splicing plate is positioned by engaging with the limiting plate and the limiting groove, thereby reducing the splicing difficulty and improving the splicing efficiency. Attached Figure Description
[0013] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0014] Figure 2 This is a schematic diagram of the planar structure of this utility model.
[0015] Figure 3 This is a three-dimensional structural diagram of the sliding locking rod and the first spring of this utility model.
[0016] Figure 4 This is a three-dimensional structural diagram of the sliding rod and the second spring of this utility model.
[0017] Explanation of reference numerals in the attached drawings: 1. Wire mesh frame, 2. Adhesive layer, 3. Insulation layer, 4. Sealing plug, 5. Splicing plate, 6. Elastic pad, 7. Sliding locking rod, 8. First spring, 9. Locking hole, 10. Sliding rod, 11. Second spring, 12. Limiting rotating plate, 13. Limiting groove. Detailed Implementation
[0018] The technical solutions in the embodiments of this utility model will be clearly and completely described below. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0019] A type of well-insulated steel wire mesh composite panel, such as Figures 1-4As shown, the device includes a wire mesh frame 1, an adhesive layer 2, an insulation layer 3, a sealing plug 4, a splicing assembly, and a positioning assembly. The wire mesh frame 1 has two parts, upper and lower. The adhesive layer 2 is located on one side of each wire mesh frame 1, close to the other. The insulation layer 3 connects the adhesive layers 2. A slot is provided on the right side of the insulation layer 3 for easy splicing. The sealing plug 4 is secured to the front left side of the insulation layer 3. A splicing assembly is provided on the insulation layer 3. The splicing assembly includes a splicing plate 5, an elastic pad 6, a sliding locking rod 7, and a first spring 8. The splicing plate 5 is connected to the left side of the insulation layer 3, and the elastic pad 6 is connected to the left side of the splicing plate 5. Multiple sliding locking rods are slidably connected to the upper side of the splicing plate 5. Positioning rods 7, the upper sides of which are semi-circular for easy positioning, are connected to the splicing plate 5 by the first spring 8. The lower right side of the insulation layer 3 has multiple positioning holes 9. The insulation layer 3 is also provided with a positioning component. The positioning component includes a sliding rod 10, a second spring 11 and a limiting rotating plate 12. The sliding rod 10 is slidably connected to both the front and rear sides of the right side of the insulation layer 3. The second spring 11 is connected to both the sliding rod 10 and the insulation layer 3. The limiting rotating plate 12 is rotatably connected to both the sliding rod 10. The limiting rotating plate 12 is engaged with the insulation layer 3. The splicing plate 5 has limiting grooves 13 on both the front and rear sides.
[0020] When using this utility model, firstly, the wire mesh frame 1 is fixed to the upper and lower sides of the insulation layer 3 through the adhesive layer 2 to form a composite board. Then, the sealing plug 4 is removed, and the interior of the insulation layer 3 is evacuated to a vacuum state to improve the insulation effect of the insulation layer 3. Then, the sealing plug 4 is used to seal the insulation layer 3. Subsequently, multiple sets of composite boards are spliced together and installed on the wall to provide thermal insulation for the building. When the composite boards are spliced together, the splicing plate 5 is engaged with the insulation layer 3 in another set of composite boards. The sliding locking rod 7 is pressed downward, and the first spring 8 is compressed and contracted. When the sliding locking rod 7 moves to the locking hole 9, the first spring 8 rebounds, causing the sliding locking rod 7 to engage with the insulation layer 3. In the locking hole 9, the elastic pad 6 is in contact with the insulation layer 3, thereby blocking the splicing gaps between the insulation layers 3, improving the overall insulation effect and structural stability. When splicing the composite panel, the limiting rotating plate 12 can be pulled outward, the sliding rod 10 can be moved outward, the second spring 11 can be stretched, and then the limiting rotating plate 12 can be rotated 180°. Then the limiting rotating plate 12 is released, the second spring 11 rebounds, and the sliding rod 10 and the limiting rotating plate 12 move back to their original positions. When the splicing plate 5 is inserted into the insulation layer 3, the limiting rotating plate 12 engages with the limiting groove 13 to position the splicing plate 5, thereby reducing the splicing difficulty and improving the splicing efficiency.
[0021] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A steel wire mesh composite panel with good thermal insulation, characterized in that, It includes a wire mesh frame (1), an adhesive layer (2), an insulation layer (3), splicing components and positioning components. The wire mesh frame (1) has two parts, upper and lower. The wire mesh frame (1) is provided with an adhesive layer (2) on one side close to the other. The adhesive layer (2) is connected to the insulation layer (3). The insulation layer (3) is provided with splicing components for splicing. The insulation layer (3) is also provided with positioning components for positioning during splicing.
2. The steel wire mesh frame composite panel with good heat preservation according to claim 1, characterized in that, The insulation layer (3) has a slot on the right side.
3. The steel wire mesh frame composite panel with good heat preservation according to claim 1, characterized in that, It also includes a sealing plug (4), and the sealing plug (4) is snapped into the front left side of the insulation layer (3).
4. The steel wire mesh frame composite panel with good heat preservation according to claim 1, characterized in that, The splicing assembly includes a splicing plate (5), an elastic pad (6), a sliding locking rod (7), and a first spring (8). The splicing plate (5) is connected to the left side of the insulation layer (3), and the elastic pad (6) is connected to the left side of the splicing plate (5). Multiple sliding locking rods (7) are slidably connected to the upper side of the splicing plate (5). The first spring (8) is connected between each sliding locking rod (7) and the splicing plate (5). Multiple locking holes (9) are opened on the lower right side of the insulation layer (3).
5. The steel wire mesh frame composite panel according to claim 4, wherein The upper side of the sliding locking rod (7) is semi-circular.
6. The steel wire mesh frame composite panel with good heat preservation according to claim 1, characterized in that, The positioning assembly includes a sliding rod (10), a second spring (11), and a limiting rotating plate (12). The right side of the insulation layer (3) is slidably connected to the sliding rod (10) on both the front and rear sides. The sliding rod (10) is connected to the insulation layer (3) by the second spring (11). The sliding rod (10) is rotatably connected to the limiting rotating plate (12). The limiting rotating plate (12) is engaged with the insulation layer (3). The splicing plate (5) has a limiting groove (13) on both the front and rear sides.