Thermal insulation wall of green building
By introducing a fixed structure of base, support column, snap assembly and lock assembly into the insulation wall, the problem of poor stability in the prior art is solved, and the stable connection between the insulation wall and the building exterior wall is achieved, ensuring the insulation effect.
Patent Information
- Application Number
- CN202421542708.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-01
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-07-01
AI Technical Summary
The fixed structure of existing insulation walls has poor stability and is easy to loosen. The connection method causes damage to the wall, affecting the insulation effect.
The fixing structure includes a base, support column, snap assembly and locking assembly is adopted, and the locking assembly is connected to the exterior wall of the building through the snap assembly. The locking assembly is used to enhance the fixation between the support column and the snap assembly to ensure stability.
It improves the connection stability between the insulation wall and the building exterior wall, reduces the risk of loosening, and protects the integrity and insulation effect of the wall.
Smart Images

Figure CN223151402U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of construction, and particularly to a heat-insulating wall for a green building. Background Art
[0002] The heat-insulating wall is an important part of a building, mainly used to prevent heat from being transferred through the wall, so as to achieve the effect of energy conservation. The heat-insulating wall usually consists of a heat-insulating layer and a protective layer. The heat-insulating layer is mainly responsible for heat insulation, and the protective layer plays a role in protecting the heat-insulating layer.
[0003] The existing fixing structure of the heat-insulating wall usually uses bolts or rivets to connect the heat-insulating wall to the external wall. Although this connection method is simple, there are some problems. Since the connection method of bolts or rivets is point contact, its stability is poor and it is prone to loosening. And this connection method has a greater destructive effect on the heat-insulating wall and the external wall, which is not conducive to maintaining the heat-insulating effect.
[0004] The fixing structure used in the prior art has the problem of insecure fixation. Therefore, a new fixing structure for the heat-insulating wall is needed to overcome these defects and improve the fixing effect of the heat-insulating wall. Utility Model Content
[0005] In view of this, it is necessary to provide an improved structure for fixing a heat-insulating wall to solve the above problems.
[0006] An embodiment of this application provides a heat-insulating wall for a green building, including:
[0007] A mounting plate;
[0008] A fixing structure, including a base, a support column, a buckle assembly and two locking assemblies. The base is arranged on the mounting plate, the support column is arranged on the base, the buckle assembly is placed on the support column and is used to connect the support column and the external wall of the building. The two locking assemblies are respectively arranged on both sides of the buckle assembly, and the two locking assemblies extend into the buckle assembly.
[0009] In at least one embodiment of this application, each locking assembly includes a screw, a connecting piece and a tightening piece; the buckle assembly is provided with a clamping hole and a buckling hole; the connecting piece is arranged at one end of the screw close to the support column and is arranged opposite to the clamping hole; the tightening piece is sleeved on the outer peripheral surface of the screw and is used to tighten the buckle assembly and the support column.
[0010] In at least one embodiment of this application, the support column includes a support rod assembly and a resisting piece arranged on the support rod assembly; the support column extends into the buckling hole; the connecting piece extends into the clamping hole and abuts against the resisting piece.
[0011] In at least one embodiment of the present application, the support rod assembly includes a first support rod, a second support rod, and a protective member; the first support rod is disposed on the base, the second support rod is disposed on the first support rod, and the protective member is sleeved on the second support rod; wherein, the abutting member is sleeved on the second support rod, and the cross-sectional area of the second support rod is smaller than the cross-sectional area of the first support rod.
[0012] In at least one embodiment of the present application, the abutting member is provided with an abutting groove, and the second support rod is embedded in the abutting groove.
[0013] In at least one embodiment of the present application, the abutting member has an abutting surface facing the support rod assembly; the abutting surface is in the same plane as the top surface of the clamping hole.
[0014] In at least one embodiment of the present application, the connecting member extends out of the clamping hole, and the connecting member has a contact surface that fits with the abutting surface and a non-contact surface corresponding to the contact surface; the area of the contact surface is larger than the area of the non-contact surface.
[0015] In at least one embodiment of the present application, the contact surface abuts against the abutting surface to tightly fasten the buckle assembly and the support rod assembly.
[0016] In at least one embodiment of the present application, the buckle assembly is provided with two fixing members; the two fixing members have an inclined surface.
[0017] In at least one embodiment of the present application, the two fixing members are elastic buckle structures.
[0018] By connecting the base in the fixing structure with the mounting plate, connecting the buckle assembly in the fixing structure with the outer wall of the building, and using the two locking assemblies in the fixing structure, the support column connecting the mounting plate base and the buckle assembly can be better fixed, enabling this thermal insulation wall to be better connected to the outer wall of the building, thereby ensuring its stability. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a perspective view of the thermal insulation wall in an embodiment of the present application.
[0020] Figure 2 It is Figure 1 a perspective view of the fixing structure in
[0021] Figure 3 It is Figure 1 a top view of the thermal insulation wall and the fixing structure.
[0022] Figure 4 It is Figure 3Cross-sectional view of the insulation wall and the fixing structure in the A-A direction.
[0023] Description of main component symbols
[0024] 100. Insulation wall body; 10. Installation plate; 90. Fixing structure; 91. Base; 92. Support column; 93. Buckle assembly; 94. Locking assembly; 941. Screw; 942. Connector; 943. Tightening member; 93a. Clamping hole; 93b. Buckle hole; 921. Support rod assembly; 922. Abutting member; 9211. First support rod; 9212. Second support rod; 9213. Protective member; 922a. Abutting groove; 922b. Abutting surface; 942a. Contact surface; 942b. Non-contact surface; 931. Fixing member. Detailed implementation manners
[0025] Next, the embodiments of the present application will be described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments.
[0026] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intermediate component at the same time. When a component is considered to be "disposed on" another component, it can be directly disposed on the other component or there may be an intermediate component at the same time. The terms "top", "bottom", "upper", "lower", "left", "right", "front", "rear", and similar expressions used herein are only for the purpose of illustration.
[0027] The embodiments of the present application provide an insulation wall body for a green building, including:
[0028] Installation plate;
[0029] Fixing structure, including a base, a support column, a buckle assembly and two locking assemblies. The base is disposed on the installation plate, the support column is disposed on the base, the buckle assembly is placed on the support column for connecting the support column and the outer wall of the building, and the two locking assemblies are respectively disposed on both sides of the buckle assembly, and the two locking assemblies extend into the buckle assembly.
[0030] By connecting the base in the fixing structure with the installation plate, connecting the buckle assembly in the fixing structure with the outer wall of the building, and using the two locking assemblies in the fixing structure, the support column connecting the installation plate base and the buckle assembly can be better fixed, so that this insulation wall is better connected with the outer wall of the building, thereby ensuring its stability.
[0031] Next, some embodiments of the present application will be described in detail with reference to the accompanying drawings. Without conflict, the following embodiments and the features in the embodiments can be combined with each other.
[0032] Please refer to Figures 1-4 , an insulating wall 100 of a green building provided by an embodiment of the present application includes:
[0033] A mounting plate 10; a fixing structure 90, including a base 91, a support column 92, a buckle assembly 93 and two locking assemblies 94. The base 91 is provided on the mounting plate 10, the support column 92 is provided on the base 91, the buckle assembly 93 is placed on the support column 92 for connecting the support column 92 and the outer wall of the building, and the two locking assemblies 94 are respectively provided on both sides of the buckle assembly 93, and the two locking assemblies 94 extend into the buckle assembly 93.
[0034] Specifically, the mounting plate 10, as the basic structure of the insulating wall 100, can provide support and fixing points, and the insulation board is arranged in the mounting plate 10. The base 91 of the fixing structure 90 is welded to the mounting plate 10 to bear the weight of the insulating wall 100. The support column 92 is welded to the base 91 to play a main supporting role, keeping the vertical structure of the insulating wall 100 stable, and the support column 92 is sleeved into the buckle assembly 93. There is a large hole on the buckle assembly 93, so that the support column 92 is sleeved into the small hole. The two locking assemblies 94 are respectively provided on both sides of the buckle assembly 93. At the same time, the two locking assemblies 94 extend into the buckle assembly 93 through two small holes beside the buckle assembly 93. A part of the locking assembly 94 extending into the buckle assembly 93 can reach the large hole on the buckle assembly 93 and can contact the support column 92, increasing the connection strength between the buckle assembly 93 and the support column 92 and ensuring stability and safety.
[0035] In summary, the base 91 is welded to the mounting plate 10 to ensure its smoothness and stability, the support column 92 is welded to the base 91 to ensure its verticality and firmness, the buckle assembly 93 is sleeved on the support column 92 for connecting the support column 92 and the outer wall of the building. Finally, the two locking assemblies 94 are respectively arranged on both sides of the buckle assembly 93 and extend into the buckle assembly 93, and the wall is fixed by screws 941 or other fixing devices to ensure the firmness and stability of the wall.
[0036] In a specific example, each of the locking assemblies 94 includes a screw 941, a connecting member 942 and a tightening member 943; the buckle assembly 93 is provided with a clamping hole 93a and a buckle hole 93b; the connecting member 942 is provided at one end of the screw 941 close to the support column 92 and is disposed opposite to the clamping hole 93a; the tightening member 943 is sleeved on the outer peripheral surface of the screw 941 for tightening the buckle assembly 93 and the support column 92.
[0037] Specifically, the screw 941 serves as the main fixing element. The connecting piece 942 is a long column that can be connected to one end of the screw 941. The type of the tightening piece 943 can be a nut or a structure that can be tightened along the bar direction of the screw 942. The connecting piece 942 is arranged at one end of the screw 941 close to the support column 92, so that the screw 941 is aligned with the clamping hole 93a on the clamping component 93, ensuring that the screw 941 can smoothly enter the clamping component 93. The tightening piece 943 is sleeved on the outer peripheral surface of the screw 941. The tightening piece 943 moves the screw 941 and the connecting piece towards the clamping hole 93a along the stripe direction of the screw 941. By rotating the tightening piece 943, the clamping component 93 is fixed to the support column 92, making it difficult for the clamping component 93 to fall off from the fixing component.
[0038] Furthermore, the design of the clamping component 93 with the clamping hole 93a and the clamping hole 93b enables the effective cooperation of the connecting piece 942, the tightening piece 943, and the connecting piece 942 with the support column 92.
[0039] In a specific example, the support column 92 includes a support rod assembly 921 and a resisting piece 922 arranged on the support rod assembly 921; the support column 92 extends into the clamping hole 93b; the connecting piece 942 extends into the clamping hole 93a and abuts against the resisting piece 922.
[0040] Specifically, the type of the resisting piece 922 is a part of the support rod assembly 921, in a semi-circular shape. The design of the support column 92 enables it to bear the vertical and horizontal forces from the clamping component 93. The function of the support rod assembly 921 is to provide structural support and stability. One end of the support column 92 is welded to the mounting plate 10, and the other end is sleeved into the clamping hole 93b by the clamping component 93, ensuring the tensile and compressive capabilities of the structure, while facilitating installation and disassembly. The resisting piece 922 on the support rod assembly 921 can contact the connecting piece 942 of the clamping component 93 to form a counteracting force for connecting the entire support column 92 to the clamping component 93 through the connecting piece 942.
[0041] Further, in the fixing structure 90, the support rod assembly 921 is placed into the clamping hole 93b to ensure its correct alignment and stable standing. The resisting piece 922 is placed on the support rod assembly 921, and then the clamping component 93 is sleeved on the support column 92 already equipped with the resisting piece 922 to ensure its stability. The connecting piece 942 is inserted so that one end enters the clamping hole 93a and the other end abuts against the surface of the resisting piece 922. The corresponding tightening piece 943 is used to rotate and lock, so that the connecting piece 942 firmly presses the resisting piece 922, thereby fixing the relationship between the clamping component 93 and the support column 92. The connecting piece 942, as a part of the locking component 94, drives the connection of the entire locking component 94, enabling the entire fixing structure 90 to function.
[0042] In a specific example, the support rod assembly 921 includes a first support rod 9211, a second support rod 9212, and a protective member 9213; the first support rod 9211 is disposed on the base 91, the second support rod 9212 is disposed on the first support rod 9211, and the protective member 9213 is sleeved on the second support rod 9212; wherein, the abutting member 922 is sleeved on the second support rod 9212, and the cross-sectional area of the second support rod 9212 is smaller than the cross-sectional area of the first support rod 9211.
[0043] Specifically, the support rod assembly 921 is a part of the support column 92. Among them, the support rod assembly includes a first support rod 9211, a second support rod 9212, and a protective member 9213. The first support rod 9211 is one of the main structural components of the support column 92 and is used to bear vertical loads and provide a support function. The second support rod 9212 is disposed on the first support rod 9211, and the cross-sectional area of the second support rod 9212 is smaller than the cross-sectional area of the first support rod 9211. When the connecting member 942 of the locking assembly 94 extends from the clamping hole 93a and passes through the buckling hole 93b, the connecting member 942 can contact the second support rod 9212 with the longest length, thereby playing a role in reinforcement and support, and enhancing the fixation of the buckling assembly 93 and the support column 92. The protective member 9213 is sleeved on the second support rod 9212, and its function is to protect the first support rod 9211 and provide additional anti-compression or impact resistance.
[0044] In a specific example, the abutting member 922 is provided with an abutting groove 922a, and the second support rod 9212 is embedded in the abutting groove 922a.
[0045] Specifically, the abutting member 922 is provided with an abutting groove 922a. This groove-like structure is used to fix the second support rod 9212, making the connection between the abutting member 922 and the second support rod 9212 more stable and precise. Embedding the second support rod 9212 into the abutting groove 922a can ensure the tight fit and uniform distribution of force between the two. This embedded design improves the overall stability and simplifies the installation process because the second support rod 9212 can be directly placed into the groove without additional positioning tools or complex adjustments.
[0046] Further, weld the first support rod 9211 to the base 91 and confirm that its position is correct and level. Place the abutting member 922 with the abutting groove 922a on the second support rod 9212. Once the abutting member 922 is in place, the second support rod 9212 will be embedded in the abutting groove 922a to form a stable connection. Subsequently, the buckle assembly 93 can be placed on the support column 92, and the locking assembly 94 enters the clamping hole 93a. Move the screw 941 towards the buckle hole 93b through the tightening member 943, and make the connecting member 942 contact the abutting member 922 to fix the entire thermal insulation wall 100 system.
[0047] In a specific example, the abutting member 922 has an abutting surface 922b facing the support rod assembly 921;
[0048] The abutting surface 922b is in the same plane as the top surface of the clamping hole 93a.
[0049] Specifically, this plane on the abutting member 922 is specially designed to contact the connecting member 942 of the locking assembly 94, and it provides a smooth and uniform contact area. Such a design enables the connecting member 942 to effectively press against the abutting member 922 when tightened, thereby firmly locking the buckle assembly 93 on the support column 92. The abutting surface 922b is in the same plane as the top surface of the clamping hole 93a. This aligned design ensures that when the connecting member 942 passes through the clamping hole 93a and abuts against the abutting member 922, their contact surfaces are at the same level, which helps to achieve uniform pressure distribution, avoid unnecessary stress concentration, and thus improve the stability and reliability of the entire system.
[0050] In a specific example, the connecting member 942 extends out of the clamping hole 93a. The connecting member 942 has a contact surface 942a that fits with the abutting surface 922b and a non-contact surface 942b corresponding to the contact surface 942a; the area of the contact surface 942a is larger than the area of the non-contact surface 942b.
[0051] Specifically, the contact surface 942a on the connecting member 942 is specially designed to fit with the abutting surface 922b of the abutting member 922. This design ensures good contact and force transmission, thereby more effectively fixing the buckle assembly 93 and the support column 92 when tightened. The contact surface 942a of the connecting member 942 that fits with the abutting surface 922b is larger than the non-contact surface 942b corresponding to the contact surface 942a. This means that the contact surface 942a on the connecting member 942 responsible for pressing and stabilizing the abutting member 922 is larger than other parts, and the non-contact surface 942b does not participate in the contact with the abutting member 922, reducing the weight of the connecting member 942. Such a large-area contact surface 942a can provide a greater pressing force and support area, thereby reducing the risk of damage caused by concentrated stress.
[0052] In a specific example, the contact surface 942a abuts against the abutting surface 922b to tightly fasten the buckle assembly 93 and the support rod assembly 921.
[0053] Specifically, the contact surface 942a on the connecting member 942 directly abuts against the abutting surface 922b of the abutting member 922, ensuring that the pressure generated when the screw 941 is tightened is evenly distributed along the entire contact surface 942a. When the screw 941 of the locking member is tightened, the pressure between these two surfaces increases, thereby generating sufficient frictional force to prevent relative movement between the buckle assembly 93 and the support rod assembly 921. This face-to-face contact provides uniform force distribution, ensuring that the buckle assembly 93 can be resisted by the abutting member 922, preventing the support column 92 together with the mounting plate 10 from falling off.
[0054] In a specific example, the buckle assembly 93 is provided with two fixing members 931; the two fixing members 931 have an inclined surface.
[0055] Specifically, the fixing member 931 is a tetrahedral structure with an inclined surface. By providing two fixing members 931, the overall stability of the thermal insulation wall system is enhanced. The design of the inclined surface enables the fixing member 931 and the buckle assembly 93 to be automatically guided to the correct position when entering the exterior wall of the building during installation. The inclined surface also helps visually confirm whether the fixing member 931 is correctly installed, as the incorrect installation will be obvious due to the shape of the inclined surface.
[0056] In a specific example, the two fixing members 931 are elastic buckle structures.
[0057] Specifically, the fixing member 931 being an elastic buckle structure has an elastic effect. The fixing member 931 can be pressed in the direction of the inclined surface, causing the fixing member 931 to be compressed into a flat surface, facilitating the insertion of the fixing member 931 into the exterior wall of the building by pressing during installation. This means that no additional tools are required during the installation process, and the installation can be completed quickly and conveniently. In addition, since the fixing member 931 is elastic, it can return to its original shape after being pressed into the wall, improving the connection stability and overall structural safety.
[0058] Further, when the support column 92 is correctly sleeved into the buckle assembly 93, the locking member enters the buckle hole 93b through the clamping hole 93a. The screw 941 is tightened using the tightening member 943, and the connecting member 942 on the screw 941 moves to contact the support column 92. The tightening degree between the buckle assembly 93 and the support column 92 is adjusted by tightening to complete the entire connection process. By utilizing the inclined surface on the fixing member 931, the fixing member 931 is compressed to the same plane as the buckle assembly 93, and the fixing member 931 of the elastic buckle structure is pressed into the outer wall. The fixing member 931 returns to its original state due to elastic action and forms a tight fixation with the wall.
[0059] The above are only the embodiments of the present application. It should be noted here that for those of ordinary skill in the art, improvements can be made without departing from the creative concept of the present application, but these all fall within the protection scope of the present application.
Claims
1. A heat-insulating wall of a green building, characterized in that, Comprising: Mounting plate; Fixing structure, including a base, support columns, a buckle assembly and two locking assemblies. The base is provided on the mounting plate, the support columns are provided on the base, the buckle assembly is placed on the support columns and is used to connect the support columns and the outer wall of the building. The two locking assemblies are respectively provided on both sides of the buckle assembly, and the two locking assemblies extend into the buckle assembly.
2. The heat-insulating wall of the green building according to claim 1, wherein Each of the locking assemblies includes a screw, a connecting piece and a tightening piece; The buckle assembly is provided with a clamping hole and a buckling hole; The connecting piece is provided at one end of the screw close to the support column and is arranged opposite to the clamping hole; the tightening piece is sleeved on the outer peripheral surface of the screw and is used to tighten the buckle assembly and the support column.
3. The heat-insulating wall of the green building according to claim 2, wherein The support column includes a support rod assembly and a resisting piece provided on the support rod assembly; The support column extends into the buckling hole; The connecting piece extends into the clamping hole and abuts against the resisting piece.
4. The thermal insulation wall of the green building according to claim 3, characterized in that, The support rod assembly includes a first support rod, a second support rod and a protective piece; The first support rod is provided on the base, the second support rod is arranged on the first support rod, and the protective piece is sleeved on the second support rod; Wherein, the resisting piece is sleeved on the second support rod, and the cross-sectional area of the second support rod is smaller than that of the first support rod.
5. The heat-insulating wall of the green building according to claim 4, wherein The resisting piece is provided with a resisting groove, and the second support rod is embedded in the resisting groove.
6. The heat-insulating wall of the green building according to claim 4, characterized in that, The resisting piece has a resisting surface facing the support rod assembly; The resisting surface and the top surface of the clamping hole are in the same plane.
7. The heat-insulating wall of the green building according to claim 6, characterized in that, The connecting piece extends out of the clamping hole, and the connecting piece has a contact surface that fits with the resisting surface and a non-contact surface corresponding to the contact surface; The area of the contact surface is larger than that of the non-contact surface.
8. The heat-insulating wall of the green building according to claim 7, characterized in that, The contact surface abuts against the resisting surface and is used to tightly fasten the buckle assembly and the support rod assembly.
9. The heat-insulating wall of the green building according to claim 2, wherein The buckle assembly is provided with two fixing pieces; The two fixing pieces have an inclined surface.
10. The heat-insulating wall of the green building according to claim 9, wherein, The two fixing pieces are elastic buckle structures.