Energy-saving wall with positioning structure
The energy-efficient wall structure with a positioning mechanism facilitates rapid alignment and secure fixation of panels, addressing installation inefficiencies and water leakage issues.
Patent Information
- Application Number
- CN202422206255.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-07
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-09-07
AI Technical Summary
Existing energy-saving walls are difficult to quickly align during installation, resulting in inefficient installation.
The energy-saving wall with a positioning structure is adopted to achieve rapid alignment and stable installation through the cooperation of concrete inserts, fixed blocks and rotating blocks; at the same time, the design of water stop pads and return springs is used to improve the sealing of the bottom to prevent water leakage.
It realizes rapid alignment and stable installation of energy-saving walls, improves installation efficiency, and effectively prevents water leakage, and enhances the sealing between the wall and the ground.
Smart Images

Figure CN223103904U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of energy-saving walls, and specifically relates to an energy-saving wall with a positioning structure. Background Technique
[0002] Building energy conservation refers to the activities of reducing energy consumption as much as possible through various technical means and measures during the production of building materials, the construction of buildings and structures, and their use, under the condition of meeting the same needs or achieving the same purpose. An energy-saving wall uses high-efficiency thermal insulation materials and technologies to reduce the heat exchange between indoors and outdoors. There are still certain defects in the existing energy-saving walls during use.
[0003] In the prior art, an energy-saving wall is a wall structure aiming to reduce energy consumption and improve building energy efficiency. Through the use of new energy-saving materials and technologies, multiple environmental protection functions such as heat preservation, heat insulation, and sound insulation are realized. Usually, the energy-saving wall is prefabricated. During the installation process of the energy-saving wall, a group of energy-saving walls need to be fixed first, and then another group of energy-saving walls is docked with the fixed energy-saving walls. When the traditional energy-saving wall is fixed, it is directly placed close together and then the position is adjusted, making it difficult for the two groups of energy-saving walls to be quickly aligned, resulting in a low installation efficiency of the energy-saving wall. Content of the Utility Model
[0004] The purpose of the utility model is to provide an energy-saving wall with a positioning structure to solve the problem that the energy-saving walls in the current market are difficult to be quickly aligned as proposed in the above background technique.
[0005] To achieve the above purpose, the utility model provides the following technical scheme: An energy-saving wall with a positioning structure, comprising: a concrete wall, a thermal insulation layer, a noise reduction layer, and a fire protection layer. The thermal insulation layer, the noise reduction layer, and the fire protection layer are respectively installed inside the concrete wall. Concrete inserts are cast on the outer side of the concrete wall. A slot is opened on the side of the concrete wall away from the concrete inserts. Fixed slots are opened on both sides of the front part of the concrete wall. An arc-shaped slot is opened inside the concrete wall near the fixed slots. Installation blocks are arranged in front of the two fixed slots. A fixed block is connected to the back of the installation block. A rotating rod is rotatably connected inside the installation block. A rotating block is welded on the outer side of the rotating rod.
[0006] Preferably, two groups of the rotating blocks are symmetrically arranged about the center of the installation block.
[0007] Preferably, a plug-in structure is formed between the concrete inserts and the slots.
[0008] Preferably, a moisture-proof pad is adhesively bonded to the inner side of the bottom of the concrete wall, and a card slot is opened on the inner wall of the bottom of the concrete wall.
[0009] Preferably, a connecting block is provided at the bottom of the moisture-proof mat, and a water-stop mat is adhesively bonded to the bottom of the connecting block.
[0010] Preferably, a return spring is connected inside the connecting block, and a clamping block is connected to one end of the return spring.
[0011] Compared with the prior art, the beneficial effects of the present utility model are as follows: The energy-saving wall with a positioning structure can push a group of concrete walls in the direction of another group of installed concrete walls. When the concrete wall moves, it can drive the concrete insertion block to move. When the end of the concrete insertion block is inserted into the other group of installed concrete walls through the slot, the two groups of concrete walls can be positioned and butted together. When installing the concrete wall, the concrete wall can squeeze the water-stop mat on the ground. At this time, the water-stop mat can generate extrusion deformation. Through the deformation generated by the water-stop mat, the sealing performance between the bottom of the concrete wall and the ground can be improved, so that the concrete wall is not prone to water leakage in the later stage.
[0012] 1. The energy-saving wall can effectively prevent indoor heat from being transferred to the outside, improve the indoor air temperature, and reduce the energy consumption of the building. During the installation process of the energy-saving wall, it is difficult to quickly align. A group of concrete walls can be pushed in the direction of another group of installed concrete walls. When the concrete wall moves, it can drive the concrete insertion block to move. When the end of the concrete insertion block is inserted into the other group of installed concrete walls through the slot, the two groups of concrete walls can be positioned and butted together. At this time, the two groups of rotating rods can be rotated in opposite directions respectively. When the rotating rod rotates, it can drive the rotating block to flip. When the two rotating blocks are respectively flipped into the two arc-shaped grooves, the rotating block can be stuck inside the concrete wall. At this time, the installed concrete wall is not prone to shaking and position movement. Through the concrete insertion block, the fixing block and the rotating block, the two groups of concrete walls can be positioned and stably placed during the butt joint installation process, so that the two groups of concrete walls can be quickly aligned, thereby improving the installation efficiency of the energy-saving wall.
[0013] 2. During the installation of the energy-saving wall, the bottom of the concrete wall needs to be placed on the indoor ground. Since the indoor ground of the building under construction is uneven, gaps are likely to occur at the bottom of the concrete wall, leading to potential water leakage in the later stage. When the top of the connecting block moves into the concrete wall, the inclined surface of the clamping block will be squeezed. When the clamping block is squeezed, the return spring can be compressed. When the return spring is compressed to the maximum extent, the clamping block can completely slide into the connecting block. At this time, the connecting block can be completely inserted into the concrete wall. When the clamping block resets, its end can be engaged into the card slot, thus installing the connecting block and the water stop pad at the bottom of the concrete wall. When installing the concrete wall, the concrete wall can squeeze the water stop pad on the ground. At this time, the water stop pad can generate extrusion deformation. Through the deformation generated by the water stop pad, the sealing performance between the bottom of the concrete wall and the ground can be improved, making it less likely for the concrete wall to leak water in the later stage. Description of the Drawings
[0014] Figure 1 is the front view structural schematic diagram of the present utility model;
[0015] Figure 2 is the top view sectional structural schematic diagram of the concrete wall of the present utility model;
[0016] Figure 3 For the present utility model Figure 2 is the enlarged structural schematic diagram of A in;
[0017] Figure 4 is the right view sectional structural schematic diagram of the water stop pad of the present utility model;
[0018] Figure 5 is the front view sectional structural schematic diagram of the installation block of the present utility model.
[0019] In the figure: 1, concrete wall; 2, thermal insulation layer; 3, noise reduction layer; 4, fire protection layer; 5, concrete insert block; 6, slot; 7, fixed slot; 8, arc slot; 9, installation block; 10, fixed block; 11, rotating rod; 12, rotating block; 13, moisture-proof pad; 14, card slot; 15, connecting block; 16, water stop pad; 17, return spring; 18, clamping block. Detailed Implementation Modes
[0020] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the protection scope of the present utility model.
[0021] Please refer toFigure 1 , Figure 2 , Figure 3 and Figure 5 It can be seen that the present utility model provides a technical solution: an energy-saving wall with a positioning structure, comprising: a concrete wall 1, a thermal insulation layer 2, a noise reduction layer 3 and a fireproof layer 4. The thermal insulation layer 2, the noise reduction layer 3 and the fireproof layer 4 are respectively installed inside the concrete wall 1. Concrete inserts 5 are cast on the outer side of the concrete wall 1. A slot 6 is opened on the side of the concrete wall 1 away from the concrete inserts 5. Fixed slots 7 are opened on both sides of the front part of the concrete wall 1. An arc-shaped slot 8 is opened inside the concrete wall 1 near the fixed slots 7. Installation blocks 9 are arranged in front of the two fixed slots 7. A fixed block 10 is connected to the back of the installation block 9. A rotating rod 11 is rotatably connected inside the installation block 9. A rotating block 12 is welded to the outer side of the rotating rod 11. Two groups of rotating blocks 12 are symmetrically arranged about the center of the installation block 9. A plug-in structure is formed between the concrete inserts 5 and the slots 6.
[0022] During specific implementation, the energy-saving wall can effectively prevent indoor heat from being transferred to the outside, improve the indoor air temperature, and reduce the energy consumption of the building. During the installation process of the energy-saving wall, it is difficult to quickly align. One group of concrete walls 1 can be pushed towards the direction of the other group of installed concrete walls 1. When the concrete wall 1 moves, it can drive the concrete inserts 5 to move. When the end of the concrete inserts 5 is inserted into the other group of installed concrete walls 1 through the slot 6, at this time, the two groups of concrete walls 1 can be positioned and butted together, and at the same time, the two groups of concrete walls 1 can be aligned. Then, the installation blocks 9 are placed inside the two groups of concrete walls 1 so that the installation blocks 9 are located in front of the two fixed slots 7. At this time, the two rotating rods 11 can be rotated in opposite directions respectively. When the rotating rod 11 rotates, it can drive the rotating block 12 to flip. When the two groups of rotating blocks 12 are respectively flipped into the two arc-shaped slots 8, the rotating blocks 12 can be stuck inside the concrete wall 1. At this time, the installed concrete wall 1 is not easy to shake and move in position.
[0023] Referring to Figure 1 , Figure 2 , Figure 3 and Figure 5 It can be seen that through the concrete inserts 5, the fixed blocks 10 and the rotating blocks 12, the two groups of concrete walls 1 can be positioned and stably placed during the docking installation process, so that the two groups of concrete walls 1 can be quickly aligned, thereby improving the installation efficiency of the energy-saving wall.
[0024] Referring to Figure 1 and Figure 4It can be seen that a moisture-proof pad 13 is adhesively bonded to the inner side of the bottom of the concrete wall 1. A clamping groove 14 is formed in the inner wall of the bottom of the concrete wall 1. A connecting block 15 is provided at the bottom of the moisture-proof pad 13. A water-stop pad 16 is adhesively bonded to the bottom of the connecting block 15. A return spring 17 is connected inside the connecting block 15. One end of the return spring 17 is connected to a clamping block 18. A groove matching the size of the connecting block 15 is formed in the bottom of the concrete wall 1.
[0025] During specific implementation, during the installation of the energy-saving wall, the bottom of the concrete wall 1 needs to be placed on the indoor ground. Since the indoor ground of the building under construction is uneven, gaps are likely to occur at the bottom of the concrete wall 1, resulting in potential water leakage in the later stage. Before installing the concrete wall 1, the connecting block 15 and the water-stop pad 16 can be pushed towards the moisture-proof pad 13. When the top of the connecting block 15 moves inside the concrete wall 1, the inclined surface of the clamping block 18 will be squeezed. When the clamping block 18 is squeezed, the return spring 17 can be compressed. When the return spring 17 is compressed to the maximum extent, the clamping block 18 can completely slide inside the connecting block 15. At this time, the connecting block 15 can be completely inserted into the concrete wall 1. At the same time, the top of the connecting block 15 can contact the moisture-proof pad 13. And when the end of the clamping block 18 moves to the outside of the clamping groove 14, it can be reset by the return spring 17. When the clamping block 18 is reset, its end can be clamped into the clamping groove 14, thereby installing the connecting block 15 and the water-stop pad 16 at the bottom of the concrete wall 1. When installing the concrete wall 1, the concrete wall 1 can squeeze the water-stop pad 16 onto the ground. At this time, the water-stop pad 16 can undergo compressive deformation.
[0026] Refer to Figure 1 and Figure 4 It can be seen that through the deformation of the water-stop pad 16, the sealing performance between the bottom of the concrete wall 1 and the ground can be improved, making it less likely for the concrete wall 1 to leak water in the later stage.
[0027] In summary, when using the energy-saving wall with a positioning structure, a group of concrete walls 1 can be pushed towards the direction of another group of installed concrete walls 1. When the concrete wall 1 moves, it can drive the concrete insert block 5 to move. Through the concrete insert block 5, the fixed block 10 and the rotating block 12, the two groups of concrete walls 1 can be positioned and stably placed during the docking installation process, so that the two groups of concrete walls 1 can be quickly aligned, thereby improving the installation efficiency of the energy-saving wall. When the block 18 is reset, its end can be engaged in the card slot 14, so as to install the connecting block 15 and the water-stop pad 16 at the bottom of the concrete wall 1. When installing the concrete wall 1, the concrete wall 1 can squeeze the water-stop pad 16 on the ground. At this time, the water-stop pad 16 can generate extrusion deformation. Through the deformation generated by the water-stop pad 16, the sealing performance between the bottom of the concrete wall 1 and the ground can be improved, so that the concrete wall 1 is not prone to water leakage in the later stage. The content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.
[0028] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art 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 within the protection scope of the present invention.
Claims
1. An energy-saving wall with a positioning structure, comprising: Concrete wall (1), thermal insulation layer (2), noise reduction layer (3) and fire protection layer (4), characterized in that: The thermal insulation layer (2), noise reduction layer (3) and fire protection layer (4) are respectively installed inside the concrete wall (1); Concrete inserts (5) are cast on the outer side of the concrete wall (1). A slot (6) is provided on the side of the concrete wall (1) away from the concrete inserts (5). Fixed slots (7) are provided on both sides of the front part of the concrete wall (1). An arc-shaped slot (8) is provided inside the concrete wall (1) near the fixed slot (7). Installation blocks (9) are provided at the front parts of the two fixed slots (7). A fixed block (10) is connected to the back of the installation block (9). A rotating rod (11) is rotatably connected inside the installation block (9). A rotating block (12) is welded to the outer side of the rotating rod (11).
2. The energy-saving wall with a positioning structure according to claim 1, wherein: Two groups of the rotating blocks (12) are symmetrically arranged about the center of the installation block (9).
3. The energy-saving wall with a positioning structure according to claim 1, wherein: A plug-in structure is formed between the concrete inserts (5) and the slots (6).
4. The energy-saving wall with a positioning structure according to claim 1, characterized in that: A moisture-proof pad (13) is adhesively bonded to the inner side of the bottom of the concrete wall (1), and a clamping slot (14) is provided on the inner wall of the bottom of the concrete wall (1).
5. The energy-saving wall with a positioning structure according to claim 4, characterized in that: A connecting block (15) is provided at the bottom of the moisture-proof pad (13), and a water-stop pad (16) is adhesively bonded to the bottom of the connecting block (15).
6. The energy-saving wall with a positioning structure according to claim 5, characterized in that: A return spring (17) is connected inside the connecting block (15), and a clamping block (18) is connected to one end of the return spring (17).