A type of thermal insulation wall for buildings
By installing a double-layer structure of support components and anchor rods inside the building wall, the problem of insufficient adhesion between the insulation layer and the wall is solved, achieving stable installation of the insulation layer and improving the insulation performance of the wall.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHONGQING BOKUN CONSTRUCTION ENGINEERING CO LTD
- Filing Date
- 2025-04-30
- Publication Date
- 2026-05-26
AI Technical Summary
In existing building insulation walls, the adhesion between the insulation layer and the wall is insufficient, resulting in reduced connection strength, easy displacement and detachment, and affecting insulation performance and service life.
Support components, including compartments and anchor rods, are installed inside the wall. The insulation layer is fixed by a double-layer structure of insert rods and anchor rods, and the fixing effect is further enhanced by the inner shaft and barbs to ensure the stability of the insulation layer.
It improves the installation stability of the insulation layer, avoids displacement and detachment, ensures the insulation performance and service life of the wall, and enhances the connection strength of the insulation layer.
Smart Images

Figure CN224281655U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of building wall technology, specifically to a thermal insulation wall for buildings. Background Technology
[0002] Building walls are an essential component of buildings, serving multiple functions and roles. As primary load-bearing structures, they bear the loads transmitted from the roof, floors, and other superstructures, transferring these loads to the foundation. Furthermore, walls act as the building's external envelope, protecting the interior environment from external elements such as wind, rain, and temperature changes. They also divide the building's interior space into different functional areas. In short, building walls play multiple vital roles in buildings, collectively ensuring the building's safety, comfort, and functionality.
[0003] Thermal insulation walls are a type of wall designed in modern buildings to meet energy-saving requirements. Their core function is to reduce heat transfer through special structures and materials, thereby improving the thermal insulation performance of buildings and enhancing the comfort of the indoor environment.
[0004] During construction, the insulation layer inside the wall may not fully bond with the base layer due to impurities such as dust on the surface or insufficient application area of the adhesive. This results in insufficient adhesion between the insulation layer and the wall, which reduces the stability of the insulation layer. As a result, the connection strength will continue to decrease during use, leading to displacement, detachment, and other issues that affect the insulation performance of the wall. Utility Model Content
[0005] The purpose of this utility model is to provide a thermal insulation wall for buildings, in order to solve the problems mentioned in the background art, such as insufficient adhesion between the insulation layer and the wall due to impurities or uneven application of adhesive during the construction of the insulation layer, resulting in reduced connection strength of the insulation layer, reduced service life, displacement and detachment during use, and affecting the normal use and thermal insulation performance of the wall.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a building insulation wall, comprising a wall, wherein an insulation layer and a protective layer are provided inside the wall, and a support assembly for ensuring the stable installation of the insulation layer is provided inside the wall, the support assembly comprising two compartments provided inside the wall, each of the two compartments being provided with an insulation layer, the inner walls of the two compartments being provided with multiple insert rods, and the outer wall of the protective layer being provided with multiple anchor rods;
[0007] Each of the anchor rods has a cavity inside. The inner wall of the cavity is provided with a support rod and multiple through holes. An inner shaft is provided inside the cavity. The inner shaft is provided with a positioning groove. The inner wall of the positioning groove is provided with multiple arc-shaped grooves. The outer wall of the inner shaft is provided with multiple barbs.
[0008] Preferably, the insulation layer is located inside the partition of the wall, and the array of multiple insertion rods is distributed on the inner wall of the partition, with one end connected to the inner wall of the partition and the other end penetrating through the insulation layer. The insertion rod has a hollow structure inside and a hollow structure on the outside.
[0009] Preferably, the array of anchor rods is distributed outside the protective layer, and the distribution position corresponds to the insertion rod inside the compartment. The anchor rod can penetrate the protective layer and the insertion rod to extend into the wall.
[0010] Preferably, the support rod is located in the cavity inside the anchor rod, and one end is connected to the inner wall of the cavity. The support rod has multiple arc-shaped protrusions on its outside, and multiple through holes are arranged in a ring array on the outer wall of the anchor rod and communicate with the cavity.
[0011] Preferably, one end of the inner shaft is located in the cavity inside the anchor rod and is slidably connected to the inner wall of the cavity, while the other end is connected to the outer wall of the anchor rod through a connecting rod. One end of the support rod inside the cavity is embedded in the positioning groove inside the inner shaft.
[0012] Preferably, a plurality of the arc-shaped grooves are distributed in a ring on the inner wall of the positioning groove of the inner shaft, and a plurality of the barbs are distributed in a ring array on the outer wall of the inner shaft, with the distribution angle corresponding to the through hole on the outer wall of the anchor rod.
[0013] Compared with the prior art, the beneficial effects of this utility model are:
[0014] 1. By reserving compartments within the wall, the installation position of the insulation layer is determined. The compartments also limit the angle of the insulation layer. If the insulation layer becomes loose, the compartments prevent excessive displacement. Furthermore, by using the compartments to create a double-layer structure for the insulation layer, the insulation performance of the wall is improved, and the insulation effect of the wall is ensured even if one of the insulation layers becomes loose and falls off.
[0015] 2. Multiple insert rods inside the compartment can penetrate the insulation layer structure during installation, improving the stability of the insulation layer within the compartment. Simultaneously, the anchors are modified to a double-layer structure. After penetrating the wall and fixing the insulation layer, pulling the internal shaft, in conjunction with the arc-shaped protrusion structure within the anchor, causes barbs to extend from the anchor rod and embed into the insulation layer, further securing the insulation layer installation, improving its stability, and effectively reducing the likelihood of the insulation layer loosening and falling off.
[0016] This invention improves the thermal insulation performance of the wall by setting the insulation layer to a double-layer structure, and ensures the insulation effect of the wall even if a single insulation layer fails. In addition, the reserved compartment in the wall, together with the double-layer structure anchors, restricts the angle and position of the insulation layer installation, effectively improving the stability of the insulation layer installation and preventing it from falling off. Attached Figure Description
[0017] Figure 1 This is an overall isometric view of the present invention;
[0018] Figure 2 This is a breakdown diagram of the internal structure of the wall of this utility model;
[0019] Figure 3 This is an enlarged view of part A of this utility model;
[0020] Figure 4 This is an internal sectional view of the anchor of this utility model;
[0021] Figure 5 This is an enlarged view of part B of this utility model.
[0022] In the diagram: 1. Wall; 2. Partition; 201. Insert rod; 3. Insulation layer; 4. Protective layer; 5. Anchor rod; 501. Cavity; 502. Support rod; 503. Through hole; 6. Inner shaft; 601. Positioning groove; 602. Arc groove; 7. Barb. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] All devices in this application adopt conventional models in the prior art, and the control method is through a controller. The control circuit of the controller can be implemented by simple programming by those skilled in the art, which is common knowledge in the field, so this application will not explain it in detail.
[0025] Please see the appendix Figure 1-3As shown, a building insulation wall includes a wall 1, with an insulation layer 3 and a protective layer 4 disposed inside the wall 1. The insulation layer 3 provides insulation performance for the wall 1, and the protective layer 4 wraps around the wall 1 and the insulation layer 3 to protect them. A support assembly is disposed inside the wall 1 to ensure the stable installation of the insulation layer 3. The support assembly includes two compartments 2 disposed inside the wall 1 for controlling the position and angle of the insulation layer 3 within the wall 1. Reserved space is made, and the angle of the insulation layer 3 is positioned after installation. At the same time, the displacement of the insulation layer 3 after loosening is limited. Both compartments 2 are equipped with insulation layers 3. Multiple insertion rods 201 are provided on the inner walls of both compartments 2. When the insulation layer 3 is installed in the compartment 2, the insertion rods 201 on the inner wall of the compartment 2 penetrate the insulation layer 3. The insertion rods 201 support the insulation layer 3, thereby improving the positional stability of the insulation layer 3 in the compartment 2. Multiple anchoring rods 5 are provided on the outer wall of the protective layer 4.
[0026] The insulation layer 3 is located inside the compartment 2 of the wall 1. Multiple insert rods 201 are arrayed on the inner wall of the compartment 2, with one end connected to the inner wall of the compartment 2 and the other end penetrating the insulation layer 3. The insert rods 201 have a hollow structure inside and a hollow structure outside. Multiple anchor rods 5 are arrayed on the outside of the protective layer 4, and their distribution positions correspond to the insert rods 201 inside the compartment 2. The anchor rods 5 can penetrate the protective layer 4 and the insert rods 201 and extend into the wall 1.
[0027] In this embodiment: by reserving a partition 2 in the wall 1 to limit the position and angle of the insulation layer 3 during installation with the wall 1, the installation stability of the insulation layer 3 is improved. The insulation layer 3 is set as a double-layer structure, thereby improving the insulation performance of the wall 1. If one insulation layer 3 malfunctions, the other insulation layer 3 ensures that the wall 1 still has an insulation effect. When the insulation layer 3 is installed in the partition 2, multiple insert rods 201 in the partition 2 penetrate the insulation layer 3 to support it, thereby improving the stability of the angle of the insulation layer 3 in the partition 2.
[0028] Example 2: This example is an improvement on Example 1. For details, please refer to [link / reference]. Figures 2-5Each of the multiple anchor rods 5 has a cavity 501 inside to house the inner shaft 6 and to position the angle between the inner shaft 6 and the outer anchor rod 5 during movement. The inner wall of the cavity 501 has a support rod 502 and multiple through holes 503. When the inner shaft 6 is located inside the cavity 501, one end of the support rod 502 is embedded in the positioning groove 601 inside the inner shaft 6. The arc-shaped protrusion on the outside of the support rod 502 is located in the arc-shaped groove 602 area on the inner wall of the positioning groove 601 in the normal state. The inner shaft 6 is located inside the cavity 501, serving as the inner layer of the anchor rod 5, making the anchor a double-layer structure. The end of the inner shaft 6 closest to the cavity 501 inside the anchor rod 5 is... The fork structure can deform and expand by abutting against the arc-shaped protrusion on the outside of the support rod 502 during movement. The inner shaft 6 is provided with a positioning groove 601, and the inner wall of the positioning groove 601 is provided with multiple arc-shaped grooves 602. The outer wall of the inner shaft 6 is provided with multiple barbs 7. In the normal state, the barbs 7 are compressed and shrink within the cavity 501 of the anchor rod 5. When the inner shaft 6 and the cavity 501 move and the barbs 7 are located in the area of the through hole 503, since the through hole 503 on the outside of the anchor rod 5 corresponds to the hollow area on the outer wall of the insertion rod 201, the barbs 7 extend out from the through hole 503 and the insertion rod 201 and embed into the insulation layer 3 after the inner shaft 6 expands, further improving the stability of the insulation layer 3 installation.
[0029] The support rod 502 is located in the cavity 501 inside the anchor rod 5, and one end is connected to the inner wall of the cavity 501. The support rod 502 has multiple arc-shaped protrusions on its exterior. Multiple through holes 503 are arranged in a ring array on the outer wall of the anchor rod 5 and communicate with the cavity 501. One end of the inner shaft 6 is located in the cavity 501 inside the anchor rod 5 and is slidably connected to the inner wall of the cavity 501. The other end is connected to the outer wall of the anchor rod 5 through a connecting rod. One end of the support rod 502 inside the cavity 501 is embedded in the positioning groove 601 inside the inner shaft 6. Multiple arc-shaped grooves 602 are arranged in a ring on the inner wall of the positioning groove 601 of the inner shaft 6. Multiple barbs 7 are arranged in a ring array on the outer wall of the inner shaft 6, and the distribution angle corresponds to the through holes 503 on the outer wall of the anchor rod 5.
[0030] In this embodiment: after the insulation layer 3 is installed in the compartment 2, the anchor rod 5 passes through the protective layer 4 and multiple insert rods 201 and is embedded in the wall 1, thereby connecting the wall 1, the insulation layer 3 and the protective layer 4 with anchors on the basis of adhesive connection. After the anchor rod 5 is installed, the connecting rod between the inner shaft 6 and the anchor rod 5 is cut off, and the inner shaft 6 is pulled to slide in the anchor rod 5. At the same time, the barb 7 area of the inner shaft 6 is moved to the through hole 503 and the barb 7 expands due to its toughness. During the movement, the protrusion on the outside of the support rod 502 pushes the inner shaft 6 to deform and the barb 7 extends out from the through hole 503 and the insert rod 201 and is embedded in the insulation layer 3 to improve the stability of the insulation layer 3 installation.
[0031] The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0032] 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 make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A building insulation wall, comprising a wall (1), wherein an insulation layer (3) and a protective layer (4) are disposed inside the wall (1), and a support assembly for ensuring the stable installation of the insulation layer (3) is disposed inside the wall (1), characterized in that: The support assembly includes two compartments (2) set inside the wall (1), each compartment (2) is provided with an insulation layer (3), the inner walls of each compartment (2) are provided with multiple insert rods (201), and the outer wall of the protective layer (4) is provided with multiple anchor rods (5). Each of the anchor rods (5) has a cavity (501) inside. The inner wall of the cavity (501) is provided with a support rod (502) and a plurality of through holes (503). The cavity (501) is provided with an inner shaft (6). The inner shaft (6) is provided with a positioning groove (601). The inner wall of the positioning groove (601) is provided with a plurality of arc-shaped grooves (602). The outer wall of the inner shaft (6) is provided with a plurality of barbs (7).
2. The building insulation wall according to claim 1, characterized in that: The insulation layer (3) is located in the compartment (2) of the wall (1). Multiple insertion rods (201) are arrayed on the inner wall of the compartment (2), with one end connected to the inner wall of the compartment (2) and the other end penetrating the insulation layer (3). The insertion rod (201) has a hollow structure inside and a hollow structure outside.
3. The building insulation wall according to claim 2, characterized in that: Multiple anchor rods (5) are arrayed outside the protective layer (4) and their positions correspond to the insertion rods (201) inside the compartment (2). The anchor rods (5) can penetrate the protective layer (4) and the insertion rods (201) and extend into the wall (1).
4. The building insulation wall according to claim 1, characterized in that: The support rod (502) is located in the cavity (501) inside the anchor rod (5), and one end is connected to the inner wall of the cavity (501). The support rod (502) has multiple arc-shaped protrusions on its exterior, and multiple through holes (503) are arranged in a ring array on the outer wall of the anchor rod (5) and communicate with the cavity (501).
5. A building insulation wall according to claim 4, characterized in that: One end of the inner shaft (6) is located in the cavity (501) inside the anchor rod (5) and is slidably connected to the inner wall of the cavity (501). The other end is connected to the outer wall of the anchor rod (5) through a connecting rod. One end of the support rod (502) inside the cavity (501) is embedded in the positioning groove (601) inside the inner shaft (6).
6. A building insulation wall according to claim 5, characterized in that: Multiple arc-shaped grooves (602) are distributed in a ring on the inner wall of the positioning groove (601) of the inner shaft (6), and multiple barbs (7) are distributed in a ring array on the outer wall of the inner shaft (6), with the distribution angle corresponding to the through hole (503) on the outer wall of the anchor rod (5).