Heat preservation and insulation building aluminum profile
By introducing shock-absorbing support columns, flexible struts, and thermal insulation layers into architectural aluminum profiles, the problems of high thermal conductivity and poor seismic resistance of traditional aluminum profiles are solved, achieving efficient thermal insulation and shock absorption effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NANCHANG CHUANGAO ALUMINUM CO LTD
- Filing Date
- 2025-05-27
- Publication Date
- 2026-05-12
AI Technical Summary
Traditional aluminum profiles for buildings have high thermal conductivity, which increases building energy consumption and cannot provide effective shock absorption in vibrating environments.
It adopts a composite aluminum profile structure with built-in shock-absorbing support columns, flexible support strips, limit slide rails and protective plates. Combined with heat insulation material layers and thermal insulation material layers, it achieves shock resistance, thermal insulation and heat preservation effects by assembling shock-absorbing components and bending connection components.
It achieves effective vibration reduction in vibrating environments, reduces heat transfer, maintains stable indoor temperature, reduces noise interference, and meets building energy conservation requirements.
Smart Images

Figure CN224227982U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of aluminum profiles, specifically to a thermal insulation building aluminum profile. Background Technology
[0002] In the context of the construction industry's continuous pursuit of energy conservation and comfort, the thermal insulation performance of building envelopes is of paramount importance. Aluminum profiles, as a commonly used material in building structures, are widely used due to their lightweight, high strength, and ease of processing. However, traditional aluminum profiles are typically made of a single aluminum alloy, which has excellent thermal conductivity. During building use, heat is easily and rapidly transferred through the aluminum profile, leading to increased building energy consumption and making it difficult to meet modern building energy efficiency standards. Furthermore, even with the addition of insulation materials, existing aluminum profiles suffer from poor structural stability and inadequate insulation performance. Therefore, there is an urgent need to develop a new type of aluminum profile with high-efficiency thermal insulation performance, structural stability, and the ability to meet building energy efficiency requirements.
[0003] Application number CN202323101250.8 discloses a prefabricated building aluminum profile, relating to the field of prefabricated building technology. Specifically, it includes at least two aluminum profile bodies. Through slots are formed on both sides of the front of each aluminum profile body, and a through hole is formed in the middle of the body. A positioning component is inserted into the inner wall of the through hole. The two aluminum profile bodies are fixed together by the positioning component. A sealing component is snapped into the end of each aluminum profile body. A wiring groove is formed on the upper surface of the aluminum profile body, and a protective component is snapped into the inner wall of the groove. This prefabricated building aluminum profile, through the arrangement of the aluminum profile body, through slots, through hole, and positioning component, allows positioning pins to be inserted into the two aluminum profiles respectively. Positioning pins are then inserted into the positioning pins, aligning the two aluminum profile bodies. Locking the positioning bolts completes the assembly of two or more aluminum profile bodies. Simultaneously, after assembly, the positioning pins can fill the through hole, improving the bending resistance of the aluminum alloy body connection. However, a drawback is that the device cannot withstand vibration environments during use. Utility Model Content
[0004] The purpose of this invention is to provide a thermally insulated building aluminum profile that solves the problem that the device cannot provide shock absorption during production and processing when it is in use.
[0005] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:
[0006] This utility model is a thermal insulation building aluminum profile, including an assembled steel component. An assembled shock-absorbing component is installed in the middle of the internal limit of the assembled steel component, and the two sets of assembled steel components are connected by a bending connection component.
[0007] The assembled shock absorption component includes a shock absorption support column. The top and bottom of the shock absorption support column are equipped with limit slide rails, and the outer walls on both sides of the shock absorption support column are equipped with flexible support strips. The limit slide rails are installed in the assembly slot, and the ends of the top and bottom limit slide rails are equipped with protective plates. The outer walls of the protective plates are equipped with silicone layers, and the outer walls of the ends of the flexible support strips are equipped with limit blocks.
[0008] Furthermore, the assembled steel component includes an assembled steel frame, with limiting grooves opened on both sides of the interior of the assembled steel frame, and assembly slots corresponding to the top and bottom of the assembled steel frame. At the same time, an installation slot is opened inside the end of the assembled steel frame, and a limiting slot is opened on the outer wall of the end of the limiting groove.
[0009] Furthermore, the limiting block is installed inside the limiting slot.
[0010] Furthermore, the bending connection assembly includes a limiting silicone, which is installed inside the mounting groove, and a connecting rod is installed on the outside of the limiting silicone, with a bendable spring tube installed at the other end of the connecting rod.
[0011] Furthermore, sound-absorbing grooves are provided on both outer walls of the assembled steel frame, and sound-absorbing pads are installed inside the sound-absorbing grooves. The sound-absorbing pads are fixedly installed on the surface of the composite aluminum profile.
[0012] Furthermore, the composite aluminum profile includes a supporting aluminum profile plate, on the surface of which a heat insulation material layer is fixedly installed, and inside the supporting aluminum profile plate, a thermal insulation material layer is installed.
[0013] This utility model has the following beneficial effects:
[0014] (1) The thermal insulation building aluminum profile of this utility model has an assembly shock absorption component installed on the device, which allows the assembly shock absorption component to be added by combination when using the device, so that the device made by this device can have a certain anti-vibration and shock absorption effect.
[0015] (2) The thermal insulation building aluminum profile of this utility model has a bending connection component installed on the device, which allows for convenient bending angle adjustment for different bending operations when using the device.
[0016] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0017] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of the overall structure of a thermal insulation building aluminum profile according to this utility model;
[0019] Figure 2 This is a schematic diagram of the disassembled structure of a thermal insulation building aluminum profile according to this utility model;
[0020] Figure 3 This is a schematic diagram of the structure of a thermal insulation building aluminum profile bending connection component according to the present invention;
[0021] Figure 4 This is a schematic diagram of a composite aluminum profile for thermal insulation and heat preservation in buildings according to this utility model.
[0022] The attached diagram lists the components represented by each number as follows:
[0023] In the diagram: 1. Assemble steel components; 2. Assemble shock-absorbing components; 3. Bending connection components; 101. Assemble steel frame; 102. Limiting slide groove; 103. Assembly slot; 104. Limiting slot; 105. Installation slot; 201. Shock-absorbing support column; 202. Limiting slide rail; 203. Protective plate; 204. Silicone layer; 205. Flexible support strip; 206. Limiting block; 301. Limiting silicone; 302. Connecting rod; 303. Bendable spring tube; 1011. Sound-absorbing slot; 1012. Sound insulation pad; 1013. Composite aluminum profile; 10131. Thermal insulation layer; 10132. Supporting aluminum profile plate; 10133. Thermal insulation layer. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. 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.
[0025] Please see Figures 1-4 As shown, this utility model is a thermal insulation building aluminum profile, including an assembled steel component 1, an assembled shock-absorbing component 2 is installed in the middle of the interior of the assembled steel component 1, and the two assembled steel components 1 are connected by a bending connecting component 3.
[0026] The assembled shock-absorbing component 2 includes a shock-absorbing support column 201. The top and bottom of the shock-absorbing support column 201 are equipped with limit slide rails 202, and the outer walls on both sides of the shock-absorbing support column 201 are equipped with flexible support bars 205. The limit slide rails 202 are limited and installed in the assembly slot 103, and the ends of the top and bottom limit slide rails 202 are equipped with protective plates 203. The outer wall of the protective plate 203 is equipped with a silicone layer 204, and the outer wall of the end of the flexible support bar 205 is equipped with a limit block 206.
[0027] By installing the assembled shock-absorbing component 2 on the device, the device can be combined with other components to achieve a certain shock-absorbing effect.
[0028] The assembled steel component 1 includes an assembled steel frame 101. The assembled steel frame 101 has a limiting groove 102 on both sides inside, and an assembly slot 103 is opened at the top and bottom of the assembled steel frame 101. At the same time, an installation slot 105 is opened inside the end of the assembled steel frame 101, and a limiting slot 104 is opened on the outer wall of the end of the limiting groove 102.
[0029] The limiting block 206 is installed inside the limiting slot 104. The damping support column 201 in the assembled damping component 2 works in conjunction with the flexible support strip 205. When the aluminum profile is subjected to external impact or vibration, the damping support column 201 can absorb some energy through its own deformation, and the flexible support strip 205 can also undergo elastic deformation, further buffering the vibration. The limiting slide rail 202 slides within the assembly slot 103, and the limiting block 206 cooperates with the limiting slot 104 to ensure the stability and limiting effect of the damping component when it is in operation. Simultaneously, the protective plate 203 and its silicone layer 204 prevent direct collision damage to the components.
[0030] The bending connection assembly 3 includes a limiting silicone 301, which is installed inside the mounting slot 105. A connecting rod 302 is installed on the outside of the limiting silicone 301. A bendable spring tube 303 is installed at the other end of the connecting rod 302. The bendable spring tube 303 of the bending connection assembly 3 is connected to the mounting slot 105 through the connecting rod 302 and the limiting silicone 301, so that the aluminum profile can still maintain a stable connection when the bending angle is required. The bendable spring tube 303 has a certain elasticity, which can relieve the stress at the connection.
[0031] The outer walls on both sides of the assembled steel frame 101 are provided with sound-absorbing slots 1011, and sound-insulating pads 1012 are installed inside the sound-absorbing slots 1011. The sound-insulating pads 1012 are fixedly installed on the surface of the composite aluminum profile 1013.
[0032] The composite aluminum profile 1013 includes a supporting aluminum profile plate 10132. A thermal insulation layer 10131 is fixedly installed on the surface of the supporting aluminum profile plate 10132, and a thermal insulation layer 10133 is installed inside the supporting aluminum profile plate 10132. The thermal insulation layer 10131 and the thermal insulation layer 10133 in the composite aluminum profile 1013 play a crucial role. The thermal insulation layer 10131 blocks the entry of external heat, reducing heat conduction through the aluminum profile; the thermal insulation layer 10133 maintains a stable internal temperature, reducing heat loss, thereby achieving good thermal insulation performance.
[0033] The thermal insulation layer 10131 and the heat insulation layer 10133 in the composite aluminum profile 1013 play a core role. The thermal insulation layer 10131 blocks the entry of external heat and reduces heat conduction through the aluminum profile; the heat insulation layer 10133 maintains a stable internal temperature and reduces heat loss, thereby achieving a good thermal insulation effect. The shock-absorbing support column 201 in the assembled shock-absorbing component 2 works in conjunction with the flexible support strip 205. When the aluminum profile is subjected to external impact or vibration, the shock-absorbing support column 201 can absorb some energy through its own deformation, and the flexible support strip 205 can also produce elastic deformation to further buffer the vibration. The limiting slide rail 202 slides within the assembly slot 103, and the limiting block 206 cooperates with the limiting slot 104 to ensure the stability and limiting effect of the shock absorption component when it is in operation. At the same time, the protective plate 203 and its silicone layer 204 can prevent the components from being damaged by direct collision. The bendable spring tube 303 of the bending connection component 3 is connected to the mounting slot 105 through the connecting rod 302 and the limiting silicone 301, so that the aluminum profile can still maintain a stable connection when the bending angle is required. The bendable spring tube 303 has a certain elasticity, which can relieve the stress at the connection. The sound-absorbing pads 1012 inside the sound-absorbing slots 1011 on both sides of the assembled steel frame 101 can absorb and block sound, reducing noise transmission through the aluminum profile. In the workflow, firstly, the assembled vibration damping component 2 is installed into the assembled steel component 1. The limiting slide rails 202 at the top and bottom of the vibration damping support column 201 are embedded into the assembly slots 103 at the top and bottom of the assembled steel frame 101. The limiting block 206 at the end of the flexible support 205 is engaged in the limiting slot 104 at the end of the limiting slide rail 102. Next, the bending connection component 3 is installed in the mounting slot 105 inside the end of the assembled steel frame 101. The limiting silicone 301 is placed into the mounting slot 105, allowing the connecting rod 302 and the flexible spring tube 303 to extend. Finally, the sound-absorbing pads 1012 are installed in the sound-absorbing slots 1011 on both sides of the assembled steel frame 101. Within 011, the overall assembly of the steel component 1 is completed. When the building is affected by changes in the external ambient temperature, the thermal insulation layer 10131 and the heat insulation layer 10133 of the composite aluminum profile 1013 begin to function, maintaining a stable indoor temperature. If the building is subjected to external impact or vibration, the vibration damping component 2 responds immediately. The vibration damping support column 201 and the flexible support strip 205 absorb vibration energy, reducing the impact of vibration on the aluminum profile structure. In areas where the building requires bending or angle changes, the flexible spring tube 303 of the bending connection component 3 allows the aluminum profile to bend at a certain angle while maintaining connection strength, ensuring the integrity of the aluminum profile structure. When there is external noise, the sound insulation pad 1012 absorbs and blocks the incoming sound, reducing noise interference to the indoor environment.
[0034] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.
Claims
1. A thermally insulated building aluminum profile, comprising an assembled steel component (1), characterized in that: The assembled steel component (1) is internally limited by an assembled shock-absorbing component (2), and the two sets of assembled steel components (1) are connected by a bending connection component (3). The assembled shock-absorbing component (2) includes a shock-absorbing support column (201), with limit slide rails (202) installed at the top and bottom of the shock-absorbing support column (201), and flexible support bars (205) installed on the outer walls of both sides of the shock-absorbing support column (201). The limit slide rails (202) are installed in the assembly slot (103), and protective plates (203) are installed at the ends of the top and bottom limit slide rails (202). A silicone layer (204) is installed on the outer wall of the protective plate (203), and a limit block (206) is installed on the outer wall of the end of the flexible support bar (205).
2. The thermal insulation aluminum profile for buildings according to claim 1, characterized in that: The assembled steel component (1) includes an assembled steel frame (101). The assembled steel frame (101) has a limiting groove (102) on both sides inside, and an assembly slot (103) is opened at the top and bottom of the assembled steel frame (101). At the same time, an installation slot (105) is opened inside the end of the assembled steel frame (101), and a limiting slot (104) is opened on the outer wall of the end of the limiting groove (102).
3. The thermal insulation aluminum profile for buildings according to claim 1, characterized in that: The limiting block (206) is installed inside the limiting slot (104).
4. The thermal insulation aluminum profile for buildings according to claim 1, characterized in that: The bending connection assembly (3) includes a limiting silicone (301), which is limited and installed inside the mounting slot (105), and a connecting rod (302) is installed on the outside of the limiting silicone (301), and a flexible spring tube (303) is installed on the other end of the connecting rod (302).
5. The thermal insulation aluminum profile for buildings according to claim 2, characterized in that: The outer walls on both sides of the assembled steel frame (101) are provided with sound-absorbing grooves (1011), and sound-absorbing pads (1012) are installed inside the sound-absorbing grooves (1011). The sound-absorbing pads (1012) are fixedly installed on the surface of the composite aluminum profile (1013).
6. The thermal insulation aluminum profile for buildings according to claim 5, characterized in that: The composite aluminum profile (1013) includes a supporting aluminum profile plate (10132), on the surface of the supporting aluminum profile plate (10132) a heat insulation material layer (10131) is fixedly installed, and a thermal insulation material layer (10133) is installed inside the supporting aluminum profile plate (10132).