Anti-radiation fluorocarbon aluminum veneer
By incorporating a heat-conducting cover and graphene coating on the surface of the aluminum panel, the problem of ice expansion in fluorocarbon aluminum panels under temperature differences is solved, ensuring coating integrity and radiation resistance, and extending service life.
Patent Information
- Application Number
- CN202522147917.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-10
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-10-10
AI Technical Summary
Traditional radiation-resistant fluorocarbon aluminum panels are prone to ice expansion in environments with large temperature differences, which can lead to coating cracking and affect their radiation resistance.
A first and second heat-conducting shield are arranged in groups on the surface of the aluminum single panel, and a graphene coating is filled in the gap between them. The outer layer is sprayed with a fluorocarbon isolation layer and a clear varnish layer, which provides protection by utilizing the thermal conductivity of graphene and the flexible design of the heat-conducting shield.
It effectively prevents aluminum panels from deforming and cracking due to temperature differences, maintains their radiation resistance, reduces the thermal impact of high temperatures on aluminum panels, and extends their service life.
Smart Images

Figure CN224679038U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of fluorocarbon aluminum single-layer panel technology, specifically to a radiation-resistant fluorocarbon aluminum single-layer panel. Background Technology
[0002] Aluminum panels undergo chromating treatment and are then treated with fluorocarbon spraying to form fluorocarbon aluminum panels. Due to their light weight and high rigidity, fluorocarbon aluminum panels are widely used in building exterior walls, beam and column decoration, elevator cladding, and interior ceilings.
[0003] Unlike outdoor fluorocarbon aluminum panels, those used for indoor decoration require radiation protection treatment. Traditionally, this radiation protection treatment is achieved by Rongguang optimizing the chemical composition of the fluorocarbon coating. However, this single process of optimizing the fluorocarbon coating has certain drawbacks when applied to aluminum panels. Due to the large temperature differences in different regions, if the ambient temperature is too low, aluminum panels with only a single coating will be affected by the low temperature and experience ice expansion. In severe cases, this can cause the coating to crack, which in turn affects the actual radiation protection performance of the fluorocarbon aluminum panel.
[0004] In view of this, a radiation-resistant fluorocarbon aluminum single panel was designed to solve the above problems. Utility Model Content
[0005] This utility model aims to solve one of the technical problems existing in the prior art or related technologies.
[0006] Therefore, the technical solution adopted by this utility model is as follows: A radiation-resistant fluorocarbon aluminum panel includes a protective component and a mounting component installed within the protective component. The mounting component includes an aluminum panel, the upper and lower surfaces of which are coated with a PVDF resin layer. A first heat-conducting cover and a second heat-conducting cover are arranged on the surface of the PVDF resin layer away from the aluminum panel. The first and second heat-conducting covers are filled with a graphene coating. A fluorocarbon insulating layer is sprayed on the surface of the graphene coating away from the first and second heat-conducting covers. A clear varnish layer is sprayed on the fluorocarbon insulating layer.
[0007] In a preferred embodiment, the present invention can be further configured such that: a gap is reserved between the first heat-conducting cover and the second heat-conducting cover, and through holes are provided inside the first heat-conducting cover and the second heat-conducting cover.
[0008] In a preferred embodiment, the present invention may be further configured such that the walls of the holes of the first and second heat-conducting covers are coated with a heat-insulating coating.
[0009] In a preferred embodiment, the present invention can be further configured such that the surface of the graphene coating facing the fluorocarbon insulating layer is a polished layer.
[0010] In a preferred embodiment, the present invention can be further configured such that the protective component includes a first seal and a second seal, and the inner sides of both the first seal and the second seal are provided with protruding and grouped plugs.
[0011] In a preferred embodiment, the present invention can be further configured such that heat insulation pads are provided on the outer surfaces of the first and second seals.
[0012] By adopting the above technical solution, the beneficial effects achieved by this utility model are as follows: 1. This utility model adds a uniformly distributed and grouped first and second heat-conducting covers to the outer surface of an aluminum single panel, and leaves a crack-resistant and shrinkage-resistant gap between the two heat-conducting covers. The PVDF resin layer provides a flexible protective layer for the grouped heat-conducting covers and the aluminum single panel. When the ambient temperature difference is too large, the grouped heat-conducting covers can effectively protect the aluminum single panel from deformation or ice expansion caused by the temperature difference, and avoid damage to the anti-radiation coating caused by excessive deformation of the aluminum single panel.
[0013] 2. This utility model fills the gaps between the first and second heat-conducting covers with graphene coatings. When the ambient temperature continues to rise, the double-layer graphene coatings will quickly conduct heat energy and release it, reducing the direct impact of high temperature on the built-in aluminum panel and providing more constant temperature protection for the aluminum panel. Attached Figure Description
[0014] Figure 1 This is a schematic diagram illustrating the use of this utility model; Figure 2 This is a schematic diagram of the protective components of this utility model; Figure 3 This is a side view of the mounting plate assembly of this utility model; Figure 4 This utility model Figure 3 An explosion diagram.
[0015] Figure label: 100. Panel assembly; 110. Aluminum single panel; 120. PVDF resin layer; 130. First heat conduction cover; 140. Second heat conduction cover; 150. Graphene coating; 160. Fluorocarbon isolation layer; 170. Clear varnish layer; 200, Protective components; 210, First seal; 220, Second seal; 230, Plug. Detailed Implementation
[0016] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features of the present utility model can be combined with each other.
[0017] It should be understood that these descriptions are merely exemplary and are not intended to limit the scope of this invention.
[0018] The following describes, with reference to the accompanying drawings, some embodiments of the present invention, providing a radiation-resistant fluorocarbon aluminum single-layer panel.
[0019] Example 1: Combination Figures 1 to 4 As shown, the present invention provides a radiation-resistant fluorocarbon aluminum single panel, including a protective component 200 and a mounting component 100 installed in the protective component 200. The protective component 200 is used to provide side protection for the assembled mounting component 100, and the mounting component 100 is used to provide radiation protection for the load-bearing object in an environment with large temperature difference.
[0020] The panel assembly 100 includes an aluminum single panel 110. The upper and lower surfaces of the aluminum single panel 110 are coated with a PVDF resin layer 120. The surface of the PVDF resin layer 120 away from the aluminum single panel 110 is provided with a group of first heat-conducting covers 130 and second heat-conducting covers 140. The first heat-conducting covers 130 and second heat-conducting covers 140 are filled with a graphene coating 150. The surface of the graphene coating 150 away from the group of first heat-conducting covers 130 and second heat-conducting covers 140 is sprayed with a fluorocarbon isolation layer 160. A clear varnish layer 170 is sprayed on the fluorocarbon isolation layer 160. The surface of the graphene coating 150 facing the fluorocarbon insulating layer 160 is a polished layer.
[0021] When using it, use a drilling device to drill holes in the selected parts of the plate to be installed. Then, attach the plate to the surface of the load-bearing object for pre-installation. Then, insert expansion bolts into the holes of the plate and use the expansion bolts to fix the plate to the load-bearing object. When the ambient temperature difference is large, as the ambient temperature continues to rise, the graphene coating 150 on both sides of the aluminum panel 110 can quickly conduct heat energy radiated from the environment. Combined with the hollow protection provided by the grouped first heat-conducting cover 130 and the second heat-conducting cover 140, the central aluminum panel 110 will be in a constant temperature state, thereby effectively ensuring the service life of the aluminum panel 110. When the ambient temperature changes suddenly, the gap reserved by the grouped first heat-conducting cover 130 and the second heat-conducting cover 140 can provide corresponding protection for the aluminum panel 110 to expand due to ice, avoiding excessive deformation of the aluminum panel 110 and damage to the fluorocarbon isolation layer 160 and the clear varnish layer 170.
[0022] Example 2: Combination Figure 3 and Figure 4 As shown, based on Embodiment 1, a gap is reserved between the first heat-conducting cover 130 and the second heat-conducting cover 140, and through holes are opened inside the first heat-conducting cover 130 and the second heat-conducting cover 140. The walls of the holes in the first heat-conducting cover 130 and the second heat-conducting cover 140 are coated with a heat-insulating coating.
[0023] Preferably, after the heat insulation coating is applied to the internal through holes of the first heat-conducting cover 130 and the second heat-conducting cover 140, the through holes can also be filled with a plugging material according to actual usage requirements. Depending on the penetrating power of the sound of the object being carried, the plugging material can be replaced with sound-insulating cotton. To reduce the overall weight of the plate, the first heat-conducting cover 130 and the second heat-conducting cover 140 can be made of aluminum alloy.
[0024] Example 3: Combination Figures 2 to 4 As shown, in the above embodiment, the protective component 200 includes a first seal 210 and a second seal 220, and the inner sides of the first seal 210 and the second seal 220 are provided with protruding and grouped plugs 230. Heat insulation pads are provided on the outer surfaces of the first seal 210 and the second seal 220.
[0025] Preferably, the first seal 210 and the second seal 220 can be made of polyethylene material, and the plug 230 is made of rubber material. The inner sides of the first seal 210 and the second seal 220 are fixed to the two sides of the mounting plate assembly 100 by adhesive, and the plug 230 is adapted to be inserted into the port of the first heat-conducting cover 130 or the second heat-conducting cover 140.
[0026] The working principle and usage process of this utility model are as follows: When in use, a drilling device is used to drill vertically downwards along the top fluorocarbon isolation layer 160, and then expansion bolts are inserted into the holes of the plate until the expansion bolts are fixed to the surface of the substrate. When the plate is fixed, when the substrate is subjected to pressure and undergoes corresponding deformation, the first heat-conducting cover 130 and the second heat-conducting cover 140, which are evenly distributed on both sides of the aluminum single plate 110 and symmetrically distributed, can undergo corresponding lateral bending. The gap between the first heat-conducting cover 130 and the second heat-conducting cover 140 can provide a greater tolerance for lateral bending of the aluminum single plate 110. When the ambient temperature is too low, in order to prevent the aluminum panel 110 from cracking and shrinking due to the low temperature, after the panel is assembled, the first heat-conducting cover 130 and the second heat-conducting cover 140, which are evenly distributed and grouped, will provide protection against ice expansion for the aluminum panel 110 at low temperatures. With the help of the graphene coating 150, the heat conduction performance is faster, thereby improving the service life of the aluminum panel 110 in low temperature environments.
[0027] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A radiation-resistant fluorocarbon aluminum single panel, comprising a protective component (200), characterized in that, It also includes a mounting plate assembly (100) installed within the protective assembly (200); The mounting assembly (100) includes an aluminum single panel (110), the upper and lower surfaces of which are coated with a PVDF resin layer (120). A first heat-conducting cover (130) and a second heat-conducting cover (140) are arranged on the surface of the PVDF resin layer (120) away from the aluminum single panel (110). The first heat-conducting cover (130) and the second heat-conducting cover (140) are filled with a graphene coating (150). A fluorocarbon isolation layer (160) is sprayed on the surface of the graphene coating (150) away from the first heat-conducting cover (130) and the second heat-conducting cover (140). A clear varnish layer (170) is sprayed on the fluorocarbon isolation layer (160).
2. The radiation-resistant fluorocarbon aluminum single panel according to claim 1, characterized in that, A gap is reserved between the first heat-conducting cover (130) and the second heat-conducting cover (140), and through holes are provided inside the first heat-conducting cover (130) and the second heat-conducting cover (140).
3. The radiation-resistant fluorocarbon aluminum single panel according to claim 2, characterized in that, The walls of the holes in the first heat-conducting cover (130) and the second heat-conducting cover (140) are coated with a heat-insulating coating.
4. The radiation-resistant fluorocarbon aluminum single panel according to claim 1, characterized in that, The surface of the graphene coating (150) facing the fluorocarbon isolation layer (160) is a polished layer.
5. The radiation-resistant fluorocarbon aluminum single panel according to claim 1, characterized in that, The protective component (200) includes a first seal (210) and a second seal (220), and the inner sides of the first seal (210) and the second seal (220) are provided with protruding and grouped plugs (230).
6. The radiation-resistant fluorocarbon aluminum single panel according to claim 5, characterized in that, The outer surfaces of the first seal (210) and the second seal (220) are provided with heat insulation pads.