Efficient and energy-saving wall heat preservation structure of low-carbon building
By adopting a sliding and embedded structural design in the wall insulation structure, combining the insulation layer and the waterproof layer, the problems of low installation linkage and insufficient structural strength of the traditional structure are solved, and efficient insulation and waterproofing effects are achieved.
Patent Information
- Application Number
- CN202422249983.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-13
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-09-13
AI Technical Summary
The traditional wall insulation structure has low installation linkage, low overall structural strength, and is prone to partial falloff.
The wall insulation structure of low-carbon buildings is adopted, including shell, clamp, limit block, connecting rod, slider, telescopic rod and spring. The splicing combination of multiple shells is achieved through sliding and embedded structural design, and the insulation layer and spray waterproof layer are nested inside the shell to improve insulation and waterproof performance.
The installation linkage and overall structural strength of the wall insulation structure are improved, and partially fall off is prevented, achieving efficient thermal insulation and waterproofing functions.
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Figure CN223034207U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of building insulation, in particular to a wall insulation structure for low-carbon buildings with high energy efficiency. Background Technique
[0002] With the increasingly severe global climate change, low-carbon buildings have become an important development direction in the construction industry. Among the numerous technologies of low-carbon buildings, the high-efficiency energy-saving wall insulation structure is undoubtedly the most crucial link.
[0003] The high-efficiency energy-saving wall insulation structure of low-carbon buildings integrates a variety of advanced technologies, mainly including key components such as an installation middle frame, a thermal insulation layer, a leveling pad, a clamping plate, a magic tape connection system, a metal mesh, a fixing plate, a binding plate, and special thermal insulation bricks. The core of the design of this structure lies in improving the thermal insulation performance, enhancing the structural stability, and taking into account multiple functions such as energy conservation, emission reduction, moisture-proof, and mold-proof.
[0004] Traditional insulation structures are installed in a stacked manner, which results in low installation linkage and low overall structural strength of the insulation structure, and is prone to partial detachment. Therefore, a wall insulation structure for low-carbon buildings with high energy efficiency is proposed to solve the above problems. Content of the Utility Model
[0005] In order to make up for the above deficiencies, the utility model provides a wall insulation structure for low-carbon buildings with high energy efficiency, aiming to improve the problems of low installation linkage and low overall structural strength of the insulation structure in the prior art, resulting in partial detachment.
[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme: A wall insulation structure for low-carbon buildings with high energy efficiency, including a housing. On the upper left and right sides of the housing, two clamping blocks are slidably connected respectively. A limiting block is fixedly connected to the middle of the clamping block. A connecting rod is fixedly connected to the lower part of the clamping block. On the upper left and right sides inside the housing, sliding blocks are slidably connected respectively. The lower end of the connecting rod is slidably connected inside the sliding block. A telescopic rod is fixedly connected to the lower part of the sliding block. A spring is sleeved on the outer periphery of the telescopic rod. The lower end of the telescopic rod is fixedly connected inside the housing. The upper end of the spring abuts against the lower part of the sliding block. The lower end of the spring abuts against the inside of the housing. On the lower left and right sides of the housing, clamping grooves are respectively opened. A thermal insulation and waterproof component is arranged inside the housing, and the thermal insulation and waterproof component is used to prevent heat transfer.
[0007] Further, the thermal insulation and waterproof component includes a thermal insulation layer, the thermal insulation layer is fixedly connected inside the housing, an adhesive layer is fixedly connected to the front of the housing, and a waterproof layer is fixedly connected to the rear of the housing.
[0008] Furthermore, chutes are provided on the upper left and right sides of the housing, and a plurality of the clamping blocks, a plurality of the limiting blocks, a plurality of the connecting rods, and two of the sliders are respectively slidably disposed inside the two chutes.
[0009] Furthermore, the lower end of the telescopic rod is fixedly connected inside the chute, and the lower end of the spring abuts against the inside of the chute.
[0010] Furthermore, the slider is in an inverted V shape.
[0011] Furthermore, the waterproof layer is made of polytetrafluoroethylene, and the polytetrafluoroethylene is sprayed on the rear part of the housing.
[0012] Furthermore, the adhesive layer is made of acrylate glue.
[0013] Furthermore, the heat-insulating layer is made of polystyrene, and the heat-insulating layer has a porous structure.
[0014] The utility model has the following beneficial effects:
[0015] 1. In the utility model, the clamping blocks of one housing are inserted into the card slots of another housing in alignment. The clamping blocks are squeezed by the card slots and embedded into the inside of the chute. The clamping blocks push the limiting blocks and the connecting rods to slide close to each other. The connecting rods push the sliders to slide downward and compress the telescopic rods and the springs. Then the springs rebound to push the sliders back to their original positions, and the clamping blocks abut against the inside of the card slots, so that the two housings can be spliced together, thus realizing the function of splicing and combining a plurality of housings.
[0016] 2. In the utility model, a heat-insulating layer is nested inside the housing to isolate the transfer of temperature, and a waterproof layer is sprayed to prevent moisture from penetrating into the inside of the housing, thereby realizing the functions of high-efficiency heat preservation and waterproofing of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a three-dimensional schematic diagram of the wall heat-insulating structure with high efficiency and energy saving for low-carbon buildings proposed by the utility model;
[0018] Figure 2 is a schematic structural diagram of the housing of the wall heat-insulating structure with high efficiency and energy saving for low-carbon buildings proposed by the utility model;
[0019] Figure 3 is a schematic structural diagram of the slider of the wall heat-insulating structure with high efficiency and energy saving for low-carbon buildings proposed by the utility model.
[0020] Legend:
[0021] 1. Housing; 2. Clamping block; 3. Limiting block; 4. Connecting rod; 5. Slider; 6. Telescopic rod; 7. Spring; 8. Chute; 9. Card slot; 10. Adhesive layer; 11. Waterproof layer; 12. Heat-insulating layer. Detailed implementation mode
[0022] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0023] Referring to Figures 1 - 3 , an embodiment provided by the present invention: a wall thermal insulation structure for low-carbon buildings with high energy efficiency, including a housing 1, the housing 1 provides the main structural support, two clamping blocks 2 are slidably connected to the upper left and right sides of the housing 1 respectively, the clamping blocks 2 can be used to assist in splicing the housing 1, a limiting block 3 is fixedly connected to the middle of the clamping block 2, the limiting block 3 can prevent the clamping block 2 from slipping out of the inside of the housing 1, a connecting rod 4 is fixedly connected to the lower part of the clamping block 2, the connecting rod 4 can push the clamping block 2 to move, two sliders 5 are slidably connected to the upper left and right sides inside the housing 1 respectively, the slider 5 is in an inverted V shape, the inclined surface of the inverted V shape of the slider 5 can push the connecting rod 4 to move, the lower end of the connecting rod 4 is slidably connected inside the slider 5, a telescopic rod 6 is fixedly connected to the lower part of the slider 5, the telescopic rod 6 can support the spring 7 to prevent the spring 7 from being compressed and deformed, a spring 7 is sleeved on the outer periphery of the telescopic rod 6, the spring 7 can rebound to push the slider 5 to move, the lower end of the telescopic rod 6 is fixedly connected to the inside of the housing 1, the upper end of the spring 7 abuts against the lower part of the slider 5, the lower end of the spring 7 abuts against the inside of the housing 1, a thermal insulation and waterproof component is arranged inside the housing 1, and the thermal insulation and waterproof component is used to prevent heat transfer. Chutes 8 are opened on the upper left and right sides of the housing 1 respectively, and a plurality of clamping blocks 2, a plurality of limiting blocks 3, a plurality of connecting rods 4 and two sliders 5 are respectively slid inside the two chutes 8, the lower end of the telescopic rod 6 is fixedly connected to the inside of the chute 8, and the lower end of the spring 7 abuts against the inside of the chute 8. Slots 9 are opened on the lower left and right sides of the housing 1 respectively, and the slots 9 can assist in splicing.
[0024] Referring to Figure 1 and Figure 2 , the thermal insulation and waterproof component includes a thermal insulation layer 12, the thermal insulation layer 12 is made of polystyrene, the thermal insulation layer 12 is a porous structure and can block the transfer of temperature, the thermal insulation layer 12 is fixedly connected to the inside of the housing 1, a paste layer 10 is fixedly connected to the front of the housing 1, the paste layer 10 has a certain viscosity, the paste layer 10 is made of acrylate glue and can be pasted on the wall, a waterproof layer 11 is fixedly connected to the rear of the housing 1, the waterproof layer 11 can prevent moisture from penetrating into the inside of the housing 1, the waterproof layer 11 is made of polytetrafluoroethylene, the polytetrafluoroethylene is sprayed on the rear of the housing 1, and the polytetrafluoroethylene film has good air permeability and waterproofness and can effectively discharge water vapor while preventing the penetration of liquid water.
[0025] Working principle: When in use, stick one side of the adhesive layer 10 on the wall, and then align the card slot 9 at the lower part of the other housing 1 and insert it into the multiple clamping blocks 2 at the upper part of the housing 1. The clamping block 2 is squeezed by the card slot 9 and embedded into the inside of the sliding groove 8. The clamping block 2 pushes the limiting block 3 and the connecting rod 4 to slide close to each other. The connecting rod 4 pushes the slider 5 to slide downwards. The slider 5 squeezes the telescopic rod 6 and the spring 7 to contract. When the clamping block 2 is stuck inside the card slot 9, the spring 7 rebounds and pushes the slider 5 back to its original position. Multiple clamping blocks 2 can respectively abut against the inside of the two card slots, so that the two housings 1 can be spliced and combined together. In order to ensure the use effect of the device, a heat preservation layer 12 is nested inside the housing 1 to isolate the transmission of temperature, and a waterproof layer 11 is sprayed on the rear part of the housing 1 to prevent water penetration. Thus, the functions of efficient heat preservation and waterproofing of the wall can be realized.
[0026] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. 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 low-carbon building energy-efficient wall insulation structure, comprising a shell (1), characterized in that: Two clamping blocks (2) are slidably connected to the left and right sides of the upper part of the shell (1); the middle part of the clamping block (2) is fixedly connected to a limit block (3); the lower part of the clamping block (2) is fixedly connected to a connecting rod (4); the left and right sides of the upper part of the shell (1) are slidably connected to sliders (5); the lower end of the connecting rod (4) is slidably connected to the inside of the slider (5); the lower part of the slider (5) is fixedly connected to a telescopic rod (6); the outer periphery of the telescopic rod (6) is sleeved with a spring (7); the lower end of the telescopic rod (6) is fixedly connected to the inside of the shell (1); the upper end of the spring (7) abuts against the lower part of the slider (5); the lower end of the spring (7) abuts against the inside of the shell (1); the left and right sides of the lower part of the shell (1) are provided with clamping grooves (9); a heat-insulating and waterproof component is arranged inside the shell (1); the heat-insulating and waterproof component is used to prevent temperature transfer.
2. The low-carbon building energy-efficient wall insulation structure according to claim 1 is characterized by: The thermal insulation and waterproof component comprises a thermal insulation layer (12), the thermal insulation layer (12) is fixedly connected to the interior of the shell (1), the front of the shell (1) is fixedly connected to an adhesive layer (10), and the rear of the shell (1) is fixedly connected to a waterproof layer (11).
3. The low-carbon building high-efficiency energy-saving wall insulation structure according to claim 1 is characterized by: Slide grooves (8) are provided on both left and right sides of the upper part of the shell (1), and the plurality of clamping blocks (2), the plurality of limit blocks (3), the plurality of connecting rods (4) and the two sliding blocks (5) slide inside the two slide grooves (8) respectively.
4. The low-carbon building high-efficiency energy-saving wall insulation structure according to claim 3 is characterized by: The lower end of the telescopic rod (6) is fixedly connected to the inside of the slide groove (8), and the lower end of the spring (7) abuts against the inside of the slide groove (8).
5. The low-carbon building high-efficiency energy-saving wall insulation structure according to claim 1 is characterized by: The sliding block (5) is in an inverted V shape.
6. The low-carbon building high-efficiency energy-saving wall insulation structure according to claim 2 is characterized by: The waterproof layer (11) is made of polytetrafluoroethylene, and the polytetrafluoroethylene is sprayed on the rear part of the shell (1).
7. The low-carbon building energy-efficient wall insulation structure according to claim 2 is characterized by: The adhesive layer (10) is made of acrylic adhesive.
8. The low-carbon building energy-efficient wall insulation structure according to claim 2 is characterized by: The thermal insulation layer (12) is made of polystyrene and has a porous structure.