Compression-resistant buffering punching aluminum veneer
By setting an aluminum alloy substrate and elastic buffer layers on both sides on the main body of the aluminum panel and fixing them with fixing components, the deformation problem caused by repeated collisions and impacts during transportation of the aluminum panel is solved, the impact resistance and compressive load resistance are improved, the service life is extended, and the quality problems during transportation are reduced.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-04
- Publication Date
- 2026-03-10
AI Technical Summary
Existing aluminum panels are prone to deformation, cracking, or even breakage when subjected to significant impact or compressive loads. This is especially true due to insufficient cushioning capacity, poor stability, and short service life. Furthermore, existing aluminum panels lack impact resistance, making them susceptible to repeated collisions and impacts during transportation, which can lead to quality issues.
The main body of the aluminum single panel includes an aluminum alloy substrate, with first and second buffer layers of elastic material on both sides, which are fixed to the aluminum alloy substrate by fixing components to enhance the impact resistance and compressive load resistance.
It effectively improves the impact and compressive load resistance of aluminum panels, extends their service life, avoids deformation caused by repeated impacts and collisions during transportation, reduces quality problems during transportation, and enhances the user experience.
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Figure CN223982257U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of new aluminum alloy materials, specifically relating to a pressure-resistant and buffer-resistant perforated aluminum single panel. Background Technology
[0002] In existing technologies, aluminum single-panel refers to building decoration materials made primarily of aluminum alloy through processing, forming, and surface treatment. It features lightweight, high strength, corrosion resistance, ease of processing, and environmental friendliness, and is widely used in building curtain walls, interior decoration, electronic device housings, and other fields. With the development of the construction industry and people's increasing demands for environmental protection and aesthetics, the market demand for aluminum single-panel will continue to grow. In the future, aluminum single-panel will develop towards high performance, multi-functionality, and environmental friendliness, and its application areas will further expand.
[0003] In existing technologies, traditional aluminum composite panels are characterized by high strength and strong decorative properties. However, when subjected to large impact forces or compressive loads, existing aluminum composite panels are prone to deformation, cracking, or even breakage. Especially in environments subjected to repeated collisions or impacts, traditional aluminum composite panels have insufficient cushioning capacity, poor stability, and short service life, requiring frequent replacement by users, resulting in a poor user experience. Therefore, there is an urgent need for an aluminum composite panel that can maintain both high strength and decorative properties while also exhibiting excellent performance in terms of compressive strength and cushioning. Utility Model Content
[0004] This application aims to address the technical problem that traditional aluminum panels have weak impact resistance or compressive load resistance in the prior art. As the service life increases, traditional aluminum panels are prone to deformation, cracking, or even breakage. In particular, during the transportation of aluminum panels, they are easily subjected to multiple collisions and impacts, which can easily lead to quality problems and reduce the user experience. Therefore, this application proposes a pressure-resistant and buffer-resistant perforated aluminum panel.
[0005] This application adopts the following solution: a pressure-resistant and buffer-resistant perforated aluminum panel, comprising an aluminum panel body, a plurality of perforations disposed on the aluminum panel body, and a plurality of fixing components disposed on the outer edge of the aluminum panel body. The aluminum panel body comprises an aluminum alloy substrate, and a first buffer layer group and a second buffer layer group respectively disposed on the upper and lower sides of the aluminum alloy substrate. The first buffer layer group and / or the second buffer layer group are made of elastic material. The fixing components are used to fix the first buffer layer group / second buffer layer group to the aluminum alloy substrate.
[0006] In some possible embodiments, the first buffer layer group includes a first adhesive layer and a first buffer layer stacked sequentially from the inside to the outside, wherein the thickness of the first adhesive layer is less than the thickness of the first buffer layer.
[0007] In some possible embodiments, the material of the first adhesive layer is selected from any one of epoxy resin, polyurethane, acrylate, and cyanoacrylate;
[0008] The material of the first buffer layer is selected from any one of thermoplastic polyurethane elastomer, polyether ester elastomer, and styrene-butadiene-styrene block copolymer.
[0009] In some possible embodiments, the second buffer layer group includes a second adhesive layer and a second buffer layer stacked sequentially from the inside to the outside, wherein the thickness of the second adhesive layer is less than the thickness of the second buffer layer.
[0010] In some possible embodiments, the material of the second adhesive layer is selected from any one of epoxy resin, polyurethane, acrylate, and cyanoacrylate;
[0011] The material of the second buffer layer is selected from any one of natural rubber, neoprene rubber, and EPDM rubber.
[0012] In some possible embodiments, the first buffer layer group / second buffer layer group is interference-fitted with the fixing component.
[0013] In some possible embodiments, the fixing component is disposed on each corner of the aluminum panel body. The fixing component includes a fixing body, a fixing groove disposed on the side of the fixing body near the aluminum panel body, and fixing holes disposed on the fixing body and communicating with the upper and lower sides of the fixing body. The aluminum panel body can be matched and extended into the fixing groove to fix the first buffer layer group / second buffer layer group to the aluminum alloy substrate.
[0014] In some possible embodiments, the fixing component further includes a clearance hole disposed on the side of the fixing body near the aluminum single panel body, the clearance hole having a semi-circular cross-sectional shape.
[0015] In some possible embodiments, the fixing component further includes a mounting ear on the side of the fixing body away from the aluminum panel body, and a mounting hole on the mounting ear for mounting the aluminum panel body on a reference surface.
[0016] In some possible embodiments, the aluminum alloy substrate is made of 1060 aluminum alloy.
[0017] Compared with the prior art, this application has the following beneficial effects:
[0018] This application provides a pressure-resistant, cushioning perforated aluminum panel, comprising an aluminum panel body, a plurality of perforations on the aluminum panel body, and a plurality of fixing components on the outer edge of the aluminum panel body. The aluminum panel body includes an aluminum alloy substrate, and a first buffer layer group and a second buffer layer group respectively disposed on the upper and lower sides of the aluminum alloy substrate. By designing the first and second buffer layer groups to be made of elastic materials and fixing them to the aluminum alloy substrate using the fixing components, the impact resistance and compressive load resistance of the aluminum panel can be effectively improved, extending the service life of the aluminum panel and avoiding deformation, cracking, or even breakage due to increased service life. During the transportation of the aluminum panel, it can effectively prevent deformation after repeated impacts and collisions, reduce the incidence of quality problems during the transportation of the aluminum panel, and improve the user experience. It has the advantages of simple structure, easy operation, and easy promotion and implementation. Attached Figure Description
[0019] Figure 1 This is a structural schematic diagram of a pressure-resistant, buffer-type perforated aluminum veneer according to this application;
[0020] Figure 2 This is a top view of a pressure-resistant, buffer-absorbing perforated aluminum veneer of this application;
[0021] Figure 3 This application Figure 2 Sectional view at point AA;
[0022] Figure 4 This is an exploded structural diagram of a pressure-resistant, buffer-absorbing perforated aluminum veneer of this application;
[0023] Figure 5 This is a structural schematic diagram of the fixing component of this application. Detailed Implementation
[0024] Combination Figure 1-5 The content shown further illustrates the technical solution provided in this application. This application provides a pressure-resistant and buffer-resistant perforated aluminum panel, including an aluminum panel body 1, a plurality of perforations 2 provided on the aluminum panel body 1, and a plurality of fixing components 3 provided on the outer edge of the aluminum panel body 1. The aluminum panel body 1 includes an aluminum alloy substrate 10, and a first buffer layer group 11 and a second buffer layer group 12 respectively provided on the upper and lower sides of the aluminum alloy substrate 10. The first buffer layer group 11 and / or the second buffer layer group 12 are made of elastic material. The fixing components 3 are used to fix the first buffer layer group 11 / the second buffer layer group 12 to the aluminum alloy substrate 10.
[0025] In practical implementation, the aluminum single-panel structure, with its aluminum alloy substrate and two layers of elastic buffer, effectively disperses and buffers external pressure, reducing impact damage and offering high durability suitable for modern building requirements. By incorporating fixing components, the buffer layers are securely fixed to the aluminum alloy substrate, ensuring a stable overall structure that is not easily deformed. This application features a lightweight design, making it suitable for installation in various building environments, ideal for applications requiring high strength and high compressive strength, and offering advantages in environmental protection and energy conservation.
[0026] This application provides a pressure-resistant, cushioning perforated aluminum panel, comprising an aluminum panel body, a plurality of perforations on the aluminum panel body, and a plurality of fixing components on the outer edge of the aluminum panel body. The aluminum panel body includes an aluminum alloy substrate, and a first buffer layer group and a second buffer layer group respectively disposed on the upper and lower sides of the aluminum alloy substrate. By designing the first and second buffer layer groups to be made of elastic materials and fixing them to the aluminum alloy substrate using the fixing components, the impact resistance and compressive load resistance of the aluminum panel can be effectively improved, extending the service life of the aluminum panel and avoiding deformation, cracking, or even breakage due to increased service life. During the transportation of the aluminum panel, it can effectively prevent deformation after repeated impacts and collisions, reduce the incidence of quality problems during the transportation of the aluminum panel, and improve the user experience. It has the advantages of simple structure, easy operation, and easy promotion and implementation.
[0027] In this embodiment, the first buffer layer group 11 includes a first adhesive layer 110 and a first buffer layer 111 stacked sequentially from the inside to the outside, and the thickness of the first adhesive layer 110 is less than the thickness of the first buffer layer 111.
[0028] In this embodiment, the material of the first adhesive layer 110 is selected from any one of epoxy resin, polyurethane, acrylate, and cyanoacrylate.
[0029] The material of the first buffer layer 111 is selected from any one of thermoplastic polyurethane elastomer, polyether ester elastomer, and styrene-butadiene-styrene block copolymer.
[0030] In actual implementation, the first adhesive layer 110 is made of epoxy resin, and the first buffer layer 111 is made of thermoplastic polyurethane elastomer.
[0031] In actual implementation, epoxy resin is selected as the first adhesive layer. After curing, the first adhesive layer has good mechanical strength and chemical resistance, which can meet the bonding requirements of aluminum alloy. The adhesive layer formed after curing has high strength and is suitable for structural connection.
[0032] In actual implementation, the epoxy resin grade is Loctite E-20HP.
[0033] In actual implementation, by using thermoplastic polyurethane elastomer as the first buffer layer, the aluminum panel body can have excellent elasticity and wear resistance, and avoid deformation caused by collision during transportation.
[0034] In this embodiment, the second buffer layer group 12 includes a second adhesive layer 120 and a second buffer layer 121 stacked sequentially from the inside to the outside, and the thickness of the second adhesive layer 120 is less than the thickness of the second buffer layer 121.
[0035] In this embodiment, the material of the second adhesive layer 120 is selected from any one of epoxy resin, polyurethane, acrylate, and cyanoacrylate.
[0036] The material of the second buffer layer 121 is selected from any one of natural rubber, neoprene rubber, and EPDM rubber.
[0037] In this embodiment, the first buffer layer group 11 / the second buffer layer group 12 are interference-fitted with the fixing component 3.
[0038] In actual implementation, the second adhesive layer 120 is made of epoxy resin.
[0039] In actual implementation, the material of the second buffer layer 121 is neoprene rubber.
[0040] In actual implementation, by using neoprene rubber as the second buffer layer, deformation of the aluminum panel body due to collisions during transportation can be avoided.
[0041] In this embodiment, the fixing component 3 is disposed on each corner of the aluminum single panel body 1. The fixing component 3 includes a fixing body 30, a fixing groove 31 disposed on the side of the fixing body 30 near the aluminum single panel body 1, and fixing holes 32 disposed on the fixing body 30 and communicating with the upper and lower sides of the fixing body 30. The aluminum single panel body 1 can be matched and extended into the fixing groove 31 to fix the first buffer layer group 11 / the second buffer layer group 12 to the aluminum alloy substrate 10.
[0042] In actual implementation, PVC is selected as the material for the main body of the fastener. By using PVC as the main body of the fastener, the structural strength can be guaranteed while avoiding wear on the first buffer layer group / second buffer layer group of the main body of the fastener.
[0043] In this embodiment, the fixing component 3 also includes a clearance hole 33 on the side of the fixing body 30 near the aluminum single panel body 1, and the cross-sectional shape of the clearance hole 33 is semi-circular.
[0044] In this embodiment, the fixing component 3 also includes a mounting ear 4 on the side of the fixing body 30 away from the aluminum panel body 1, and a mounting hole 5 on the mounting ear 4. The mounting hole 5 is used to allow the aluminum panel body 1 to be installed on the reference surface.
[0045] In this embodiment, the aluminum alloy substrate 10 is made of 1060 aluminum alloy.
[0046] This application provides a pressure-resistant, cushioning perforated aluminum panel, comprising an aluminum panel body, a plurality of perforations on the aluminum panel body, and a plurality of fixing components on the outer edge of the aluminum panel body. The aluminum panel body includes an aluminum alloy substrate, and a first buffer layer group and a second buffer layer group respectively disposed on the upper and lower sides of the aluminum alloy substrate. By designing the first and second buffer layer groups to be made of elastic materials and fixing them to the aluminum alloy substrate using the fixing components, the impact resistance and compressive load resistance of the aluminum panel can be effectively improved, extending the service life of the aluminum panel and avoiding deformation, cracking, or even breakage due to increased service life. During the transportation of the aluminum panel, it can effectively prevent deformation after repeated impacts and collisions, reduce the incidence of quality problems during the transportation of the aluminum panel, and improve the user experience. It has the advantages of simple structure, easy operation, and easy promotion and implementation.
[0047] The above are merely embodiments of this utility model and are not intended to limit this utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A pressure-resistant cushioning hole aluminum veneer, characterized in that, The aluminum veneer body (1) comprises an aluminum alloy base material (10), a first buffer layer group (11) and a second buffer layer group (12) arranged on the upper and lower sides of the aluminum alloy base material (10) respectively, and a plurality of fixing components (3) arranged on the outer edge of the aluminum veneer body (1).
2. The pressure-resistant and cushioning punched aluminum veneer according to claim 1, characterized in that, The first buffer layer group (11) comprises a first adhesive layer (110) and a first buffer layer (111) arranged in sequence from inside to outside, and the thickness of the first adhesive layer (110) is less than that of the first buffer layer (111).
3. The pressure-resistant cushioning hole aluminum veneer according to claim 2, characterized in that, The material of the first adhesive layer (110) is selected from any one of epoxy resin, polyurethane, acrylate and cyanoacrylate. The material of the first buffer layer (111) is selected from any one of thermoplastic polyurethane elastomer, polyether ester elastomer and styrene-butadiene-styrene block copolymer.
4. The pressure-resistant and cushioning punched aluminum veneer according to claim 1, characterized in that, The second buffer layer group (12) comprises a second adhesive layer (120) and a second buffer layer (121) arranged in sequence from inside to outside, and the thickness of the second adhesive layer (120) is less than that of the second buffer layer (121).
5. The pressure-resistant cushioning hole aluminum veneer according to claim 4, characterized in that, The material of the second adhesive layer (120) is selected from any one of epoxy resin, polyurethane, acrylate and cyanoacrylate. The material of the second buffer layer (121) is selected from any one of natural rubber, chloroprene rubber and ethylene-propylene-diene rubber.
6. The pressure-resistant and cushioning punched aluminum veneer according to claim 1, characterized in that, The first buffer layer group (11) and the second buffer layer group (12) are in interference fit with the fixing component (3).
7. The pressure-resistant cushioning hole aluminum veneer according to claim 1, characterized in that, The fixing component (3) is arranged on each corner of the aluminum veneer body (1), and comprises a fixing member body (30), a fixing groove (31) arranged on the side of the fixing member body (30) close to the aluminum veneer body (1), and a fixing hole (32) arranged on the fixing member body (30) and communicating the upper and lower sides of the fixing member body (30), and the aluminum veneer body (1) can be matched to extend into the fixing groove (31) to fix the first buffer layer group (11) and the second buffer layer group (12) on the aluminum alloy base material (10).
8. The pressure-resistant cushioning hole aluminum veneer according to claim 7, characterized in that, The fixing component (3) further comprises a clearance hole (33) arranged on the side of the fixing member body (30) close to the aluminum veneer body (1), and the cross-sectional shape of the clearance hole (33) is semicircular.
9. The pressure-resistant cushioning hole aluminum veneer according to claim 7, characterized in that, The fixing component (3) further comprises a mounting ear (4) arranged on the side of the fixing member body (30) away from the aluminum veneer body (1), and a mounting hole (5) arranged on the mounting ear (4), and the mounting hole (5) is used for mounting the aluminum veneer body (1) on a reference surface.
10. The pressure-resistant cushioning hole aluminum veneer according to claim 1, characterized in that, The material of the aluminum alloy base material (10) is selected from 1060 aluminum alloy.