Graphene decorating part
The magnetic installation structure of graphene decorative parts and the infrared radiation heating design solve the problem of inconvenient installation of home heating equipment, achieving simple installation and personalized location adaptation, thus improving user experience and interior decoration effect.
Patent Information
- Application Number
- CN202423286201.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2034-12-30
AI Technical Summary
Existing home heating systems are inconvenient to install and cannot meet users' personalized installation location needs, thus affecting the user experience.
It adopts a graphene decorative component design, including a graphene heating film layer, a heat insulation film layer, and a magnetic adsorption component, to achieve a magnetic installation structure. It can be attached to any position on the wall through the magnetic adsorption component, combining the infrared radiation heating function of the graphene heating film layer and the decorative function of the surface layer.
It achieves a simple installation method that can be disassembled and assembled, meets the needs of users for various installation locations, improves the user experience, and enhances the indoor environment through infrared radiation heating and decoration.
Smart Images

Figure CN223657914U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field technology of home decoration parts, especially a graphene decoration part. BACKGROUND
[0002] With the development of science and technology, the application of graphene is more and more extensive. With the excellent performance of graphene, more and more industries are developing various utilization values of graphene. In the prior art, graphene has become an ideal heating film material due to its excellent mechanical properties, electrical properties and optical properties. With the wide application of graphene heating film in the home industry, its cost has been greatly reduced, and it has reached the golden period of civilian use.
[0003] In winter, there is a heating demand in a large indoor space such as a gymnasium, a swimming pool, a hotel lobby, an activity room, etc. The current heating method generally adopts air conditioning, wall-mounted heating exchangers, integrated ceiling heaters or floor heating, etc. At present, the winter heating of the family is becoming more and more single, either heating radiators or heating floor tiles, which cannot meet the increasing personalized needs of people. At the same time, the installation of heating radiators or heating floor tiles usually adopts screw locking or adhesive embedding, which is relatively troublesome, leading to inconvenient disassembly and assembly, and cannot meet the various installation position needs of users, affecting the experience effect of users.
[0004] Therefore, it is necessary to research a new technology to solve the above problems. UTILITY MODEL CONTENT
[0005] Therefore, the utility model provides a graphene decoration part, which realizes the design of a magnetic installation structure, is convenient to disassemble and assemble, can meet the various installation position needs of users, and improves the experience effect of users.
[0006] To achieve the above purpose, the utility model adopts the following technical scheme:
[0007] A graphene decoration part, comprising a graphene heating film layer, the front surface of the graphene heating film layer is provided with a surface layer, the back surface of the graphene heating film layer is provided with a heat preservation film layer, the infrared radiation generated by the graphene heating film layer is dispersed outward through the surface layer, and the side surface of the heat preservation film layer away from the graphene heating film layer is provided with a magnetic adsorption accessory.
[0008] As a preferred scheme, the magnetic adsorption accessory is pasted to the side surface of the heat preservation film layer away from the graphene heating film layer.
[0009] As a preferred scheme, the magnetic adsorption accessory is a strip-shaped magnetic adsorption strip.
[0010] As a preferred scheme, the magnetic adsorption accessory is a ring-shaped magnetic adsorption ring.
[0011] As a preferred solution, the magnetic attachment is a circular magnetic block.
[0012] As a preferred solution, the magnetic attachment is a prismatic magnetic block.
[0013] As a preferred solution, the surface layer is a pattern layer.
[0014] As a preferred solution, the pattern layer comprises a substrate layer and a pattern, the substrate layer is pasted to the front surface of the graphene heating film layer, and the pattern is arranged on the surface of the substrate layer away from the graphene heating film layer.
[0015] As a preferred solution, the heat preservation film layer is pasted to the back surface of the graphene heating film layer.
[0016] The utility model discloses a graphene heating film layer and magnetic attachment, and the graphene heating film layer is pasted to the front surface of the graphene heating film layer, and the magnetic attachment is arranged on the side of the heat preservation film layer away from the graphene heating film layer, and the graphene heating film layer is pasted to the back surface of the graphene heating film layer.
[0017] In order to more clearly set forth the structural features, technical means and the concrete purpose and function that it reached of the utility model, the utility model is further detailed below with the specific embodiment and the drawing. DRAWINGS
[0018] Figure 1 It is the cross section schematic diagram of embodiment one of the utility model;
[0019] Figure 2 It is the bottom view of embodiment one of the utility model;
[0020] Figure 3 It is the bottom view of embodiment two of the utility model;
[0021] Figure 4 It is the bottom view of embodiment three of the utility model;
[0022] Figure 5 It is the bottom view of embodiment four of the utility model.
[0023] Brief Description of the Drawings
[0024] 10, graphene heating film layer 20, surface layer
[0025] 30, heat preservation film layer 40, magnetic accessory. DETAILED DESCRIPTION
[0026] Please refer to Figures 1 to 5 Fig. 1 shows the specific structure of four embodiments of the present application.
[0027] A graphene decorative part, comprising a graphene heating film layer 10, the front surface of the graphene heating film layer 10 is provided with a surface layer 20, and the back surface of the graphene heating film layer 10 is provided with a heat preservation film layer 30; the heat preservation film layer 30 is pasted on the back surface of the graphene heating film layer 10, and the heat preservation film layer 30 can reflect the infrared radiation generated by the graphene heating film layer 10, thereby reducing the heat transferred to the wall surface to reduce the loss of temperature, and the heat preservation film layer 30 can adopt the existing reflective film layer structure capable of reflecting infrared radiation; the infrared radiation generated by the graphene heating film layer 10 passes through the surface layer 20 and is dispersed outward, and by setting the graphene heating film layer 10, the indoor heating and heating purpose can be achieved through the infrared radiation generated by the graphene heating film layer 10; the graphene heating film layer 10 is a graphene heating film capable of electric heating conversion, and the graphene heating film layer 10 utilizes the high-efficiency electric heating conversion performance of graphene to convert electrical energy into heat energy and dissipate it into the air.
[0028] The surface layer 20 is a pattern layer, the pattern layer comprises a substrate layer and a pattern, the substrate layer is pasted on the front surface of the graphene heating film layer 10, and the pattern is arranged on the surface of the substrate layer away from the graphene heating film layer 10, wherein the surface layer 20 is designed as a pattern layer to play a role in decorating and beautifying the indoor environment; the pattern can be arranged on the surface of the substrate layer by printing, spraying, pasting or other ways, and the substrate layer can be a board layer, a cloth layer or other commonly used material layer in a home.
[0029] The side of the heat preservation film layer 30 away from the graphene heating film layer 10 is provided with a magnetic suction accessory 40, so that it can be adsorbed and installed on the wall at any position through the magnetic suction accessory 40, so as to realize the magnetic suction type installation structure design, and the disassembly and assembly are simple, which can meet the installation position requirements of users and improve the experience effect of users; and when the graphene decoration piece is adsorbed on the wall or other structure, a magnetic conductive paint layer needs to be sprayed or brushed on the surface of the wall or other structure, of course, if the surface of the wall or other structure itself has a component structure that can be adsorbed with the magnetic suction accessory 40, the magnetic conductive paint layer is not needed; the magnetic conductive paint layer is preferably made of metal powder magnet, of course, other materials can also be used, as long as they can conduct magnetism, that is, can be adsorbed with the magnetic suction accessory 40.
[0030] The magnetic suction accessory 40 is pasted on the side of the heat preservation film layer 30 away from the graphene heating film layer 10, specifically, the magnetic suction accessory 40 can be pasted on the side of the heat preservation film layer 30 away from the graphene heating film layer 10 by double-sided adhesive tape or strong glue or other adhesive methods, as long as the magnetic suction accessory 40 can be stably pasted on the graphene decoration piece, so as to realize the pasting type connection between the magnetic suction accessory 40 and the graphene decoration piece, so that the magnetic suction accessory 40 can be pasted at any position on the graphene decoration piece to meet the different requirements of users for the position of the magnetic suction accessory 40.
[0031] The magnetic suction accessory 40 can be a magnet or a rubber magnet, the rubber magnet is made of magnetic powder, rubber powder and additives mixed and molded, and the length of the rubber magnet can be cut according to actual use requirements. Preferably, as shown in Figure 1 With Figure 2 As shown in example one, the magnetic suction accessory 40 is a strip-shaped magnetic suction strip, and several magnetic suction strips are arranged at intervals on the side of the heat preservation film layer 30 away from the graphene heating film layer 10.
[0032] As shown in Figure 3 As shown in example two, the magnetic suction accessory 40 is a ring-shaped magnetic suction ring; as shown in Figure 4 As shown in example three, the magnetic suction accessory 40 is a circular magnetic suction block; as shown in Figure 5 As shown in example four, the magnetic suction accessory 40 is a prismatic magnetic suction block; and in other embodiments, the magnetic suction accessory 40 can also have other shapes, which are not described here.
[0033] Summarized above, the utility model discloses the design emphasis lies in, it mainly is through setting up magnetic attraction accessory in the side of thermal insulation film layer away from graphene heating film layer, so, make it can through magnetic attraction accessory adsorption installation on the wall arbitrary position, thereby make it realized magnetic formula installation structure design, easy to dismount, can satisfy various installation position needs of user, improve the experience effect of user, secondly, through setting up graphene heating film layer, make it can reach the purpose of indoor heating heating through the infrared radiation of graphene heating film layer, and, through the design of surface layer as pattern layer, make it can play the role of decorating and beautifying indoor environment, in addition, through setting up thermal insulation film layer on the back of graphene heating film layer, make it can through the infrared radiation of thermal insulation film layer reflection graphene heating film layer produces, thereby reduce the heat that transmits to the wall, to reduce the loss of temperature.
Claims
1. A graphene trim, characterized by: The graphene heating film layer is provided with a surface layer on the front surface and a heat preservation film layer on the back surface, infrared radiation generated by the graphene heating film layer is emitted outward through the surface layer, and the side of the heat preservation film layer away from the graphene heating film layer is provided with a magnetic adsorption accessory.
2. The graphene trim according to claim 1, wherein: The magnetic adsorption accessory is attached to the side of the heat preservation film layer away from the graphene heating film layer.
3. The graphene trim according to claim 1, wherein: The magnetic adsorption accessory is a strip-shaped magnetic adsorption strip.
4. The graphene trim according to claim 1, wherein: The magnetic adsorption accessory is a ring-shaped magnetic adsorption ring.
5. The graphene trim according to claim 1, wherein: The magnetic adsorption accessory is a circular magnetic adsorption block.
6. The graphene trim according to claim 1, wherein: The magnetic adsorption accessory is a prismatic magnetic adsorption block.
7. The graphene trim according to claim 1, wherein: The surface layer is a pattern layer.
8. A graphene trim according to claim 7, wherein: The pattern layer comprises a substrate layer and a pattern, the substrate layer is attached to the front surface of the graphene heating film layer, and the pattern is arranged on the surface of the substrate layer away from the graphene heating film layer.
9. The graphene trim according to claim 1, wherein: The heat preservation film layer is attached to the back surface of the graphene heating film layer.