Composite wall heating structure based on graphene heating
By incorporating graphene panel components and insulation layers within the wall, combined with a reflective layer, the aesthetic, safety, and efficiency issues of traditional wall heating systems are resolved, achieving efficient and safe indoor heating.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-17
- Publication Date
- 2026-03-13
AI Technical Summary
Traditional wall heating equipment is unsightly due to its exposed nature, poses safety hazards due to excessively high temperatures, is complex to install, consumes a lot of energy, has low thermal efficiency, and has a slow response time.
Graphene panel components are used as the indoor heating source. Combined with insulation and reflective layers, the graphene panel components are installed in the wall structure to ensure heat dissipation into the room, and electrical connections are made between adjacent individual wall panels.
It improves thermal efficiency and safety, enhances insulation performance, simplifies device structure, reduces energy consumption, and increases response speed.
Smart Images

Figure CN223992298U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of composite wall heating structure technology, specifically a composite wall heating structure based on graphene heating. Background Technology
[0002] Wall heating, which uses walls as a heat source, has always attracted much attention. However, traditional wall heating equipment is unsightly due to its exposed nature, poses safety hazards due to excessively high temperatures, and typically uses water as a medium, resulting in complex devices. In practical applications, traditional heating systems also suffer from high energy consumption, low thermal efficiency, and slow response times. Graphene, as a novel material, possesses excellent electrical and thermal conductivity, making it highly suitable as a heating element.
[0003] Therefore, a composite wall heating structure based on graphene heating was designed and developed. Utility Model Content
[0004] The purpose of this invention is to provide a composite wall heating structure based on graphene heating. By using a graphene layer assembly inside the wall structure as an indoor heating source, combined with an insulation layer and a reflective layer, heat can be dissipated into the room while protecting the wall and enhancing the thermal effect.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a composite wall heating structure based on graphene heating, comprising a single wall panel, wherein the single wall panel includes a wall panel, a decorative panel, and a graphene layer assembly embedded between the wall panel and the decorative panel; an insulation layer and a reflective layer are also sequentially disposed between the wall panel and the graphene layer assembly, wherein the insulation layer is used to improve thermal insulation performance, and the reflective layer is located between the graphene layer assembly and the insulation layer to reflect heat and improve thermal efficiency; and an assembly connection structure disposed at the four corners of the single wall panel for splicing adjacent single wall panels and for electrical connection of the graphene layer assembly embedded in each single wall panel.
[0006] Preferably, the decorative panel, graphene layer assembly, heat insulation layer, reflective layer, and wall panel can be assembled by adhesive bonding.
[0007] Preferably, the graphene layer assembly includes a first partition plate, mounting strips disposed at both ends of the first partition plate, power copper strips disposed on opposite sides of the two mounting strips, a plurality of graphene strips disposed between the two power copper strips and distributed laterally, and a second partition plate disposed above the first partition plate and covering the plurality of graphene strips.
[0008] Preferably, each of the assembly connection structures includes a mounting groove, which is opened at the corner of the decorative panel and the mounting strip and has a built-in elastic contact piece. Each elastic contact piece is connected to the corresponding power copper strip. It also includes a connecting frame, a connector, which can be inserted into two adjacent mounting grooves, and a transmission wedge assembly provided on the mounting strip. When the connecting frame acts on two adjacent single wall panels and splices them, the transmission wedge assembly is used for the horizontal movement of the connector and to connect the elastic contact piece in the mounting groove.
[0009] Preferably, the connector has a concave structure, and an electric sheet is snapped onto the connector. The electric sheet has a U-shaped structure and can contact and communicate with the elastic contact sheet. A sealing element is assembled on the connector. The sealing element is made of rubber elastic material. A transmission groove is formed on the connector.
[0010] Preferably, the transmission wedge assembly includes a mounting block mounted on a mounting strip and a transmission block slidably mounted on the mounting strip. The inclined surface of the transmission block acts within the transmission groove. A spring connects the transmission block and the mounting block. A top block is provided inside the connecting frame, and the top block can act on the end of the transmission block.
[0011] Preferably, the mounting strip has screw holes and bolts provided on the connecting frame, and the bolts can be assembled and connected with the screw holes.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0013] 1. This utility model uses a composite wall heating structure under this structure, in which a graphene layer assembly, an insulation layer, and a reflective layer are set sequentially between the decorative panel and the wall panel. This design, by using the graphene layer assembly set in the wall structure as an indoor heating source, together with the insulation layer and the reflective layer, can ensure that heat is dissipated into the room, while protecting the wall and enhancing the thermal effect.
[0014] 2. Under the function of the assembly and connection structure, it not only realizes the splicing of adjacent single wall panels, but also connects the graphene layer components in adjacent single wall panels to form circuits, thereby improving work efficiency. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of the single wall panel of this utility model before assembly;
[0016] Figure 2 for Figure 1 A partial disassembly diagram;
[0017] Figure 3 This is a disassembly diagram of the assembly connection structure of this utility model;
[0018] Figure 4 This is a schematic diagram of another disassembly structure of the assembly connection structure of this utility model;
[0019] Figure 5 This is an enlarged structural diagram of point A of this utility model;
[0020] Figure 6 This is a schematic diagram of the splicing state of adjacent single wall panels of this utility model;
[0021] Figure 7 This is a schematic diagram of the internal structure of the adjacent single wall panels spliced together according to this utility model;
[0022] Figure 8 This is an enlarged structural diagram of section B of the present invention.
[0023] In the picture: 111, decorative panel;
[0024] 112. First partition plate; 1121. Power supply copper strip; 1122. Mounting strip; 1123. Second partition plate; 1124. Screw hole; 1125. Mounting groove; 11251. Flexible contact piece;
[0025] 1127. Transmission block; 11271. Mounting block; 11272. Spring; 11273. Top block; 1128. Connecting frame; 1129. Bolt; 1130. Connector; 1131. Transmission groove; 1134. Seal; 1135. Electrical plate;
[0026] 113. Insulation layer; 114. Reflective layer; 115. Wall panel;
[0027] 2111, Graphene strips. Detailed Implementation
[0028] In the description of this utility model, it should be understood that the terms "length," "width," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. The various embodiments of this utility model are described in detail below with reference to the accompanying drawings.
[0029] Example 1
[0030] Please see Figures 1 to 8The present invention preferably provides the following technical solution: a composite wall heating structure based on graphene heating, comprising a single wall panel, the single wall panel including a wall panel 115, a decorative panel 111, and a graphene layer assembly built between the wall panel 115 and the decorative panel 111; an insulation layer 113 and a reflective layer 114 are also sequentially provided between the wall panel 115 and the graphene layer assembly, the insulation layer 113 is used to improve the heat preservation performance, and the reflective layer 114 is located between the graphene layer assembly and the insulation layer 113, used to reflect heat and improve thermal efficiency; and an assembly connection structure provided at the four corners of the single wall panel for splicing adjacent single wall panels and for electrical connection of the graphene layer assembly built into each single wall panel.
[0031] In this application, through the composite wall heating structure under this structure, such as Figure 1 , 2 As shown in Figure 5, a graphene layer assembly, an insulation layer 113, and a reflective layer 114 are sequentially arranged between the decorative panel 111 and the wall panel 115. First, the graphene layer assembly, as a new type of material, has excellent electrical conductivity and thermal conductivity, making it very suitable as a heating element. Therefore, it is considered to improve existing indoor heating technology.
[0032] Combined with the reflective layer 114, which has the function of reflecting heat and improving thermal efficiency, and with the action of the wall panel 115, it achieves the heat preservation effect. This design, through the graphene layer assembly set in the wall structure as an indoor heating source, together with the insulation layer 113 and the reflective layer 114, can ensure that heat is dissipated into the room while protecting the wall.
[0033] And under the action of the assembly connection structure, such as Figure 1 , 6 As shown in Figure 7, it not only enables the splicing of adjacent single wall panels, but also connects the graphene layer components within adjacent single wall panels through circuitry, thereby improving work efficiency.
[0034] Furthermore, the decorative panel 111, graphene layer assembly, heat insulation layer 113, reflective layer 114, and wall panel 115 can be assembled by adhesive bonding.
[0035] Furthermore, the graphene layer assembly includes a first partition plate 112, mounting strips 1122 disposed at both ends of the first partition plate 112, power copper strips 1121 disposed on opposite sides of the two mounting strips 1122, a plurality of graphene strips 2111 disposed between the two power copper strips 1121 and distributed laterally, and a second partition plate 1123 disposed above the first partition plate 112 and covering the plurality of graphene strips 2111.
[0036] Through further configuration of graphene layer assemblies, such as Figure 2As shown, after the power copper strip 1121 on both sides of the circuit is connected, current is passed through several graphene strips 2111, and heat is generated efficiently through the Joule effect to realize the heating of the wall.
[0037] Example 2
[0038] In another embodiment of this utility model, each assembly connection structure includes a mounting groove 1125, which is opened at the corner of the decorative panel 111 and the mounting strip 1122 and has a built-in elastic contact piece 11251. Each elastic contact piece 11251 is connected to the corresponding power copper strip 1121. It also includes a connecting frame 1128, a connector 1130, which can be inserted into two adjacent mounting grooves 1125, and a transmission wedge assembly provided on the mounting strip 1122. When the connecting frame 1128 acts on two adjacent single wall panels and splices them, the transmission wedge assembly is used for the horizontal movement of the connector 1130 and to communicate with the elastic contact piece 11251 in the mounting groove 1125.
[0039] Furthermore, the connector 1130 has a concave structure, and an electric sheet 1135 is snapped onto the connector 1130. The electric sheet 1135 has a U-shaped structure and can contact and communicate with the elastic contact sheet 11251. A sealing member 1134 is assembled on the connector 1130. The sealing member 1134 is made of rubber elastic material. A transmission groove 1131 is formed on the connector 1130.
[0040] In this embodiment, through a further configured assembly connection structure, such as Figure 3 , 4 As shown in Figures 5 and 8, when two adjacent single wall panels are spliced together, the corresponding mounting groove 1125 forms a concave structure. The connector 1130 is inserted into it, and the electric piece 1135 is placed on the side of the elastic contact piece 11251. When the connecting frame 1128 is assembled, it can drive the transmission wedge block assembly to act in the transmission groove 1131, thereby driving the connector 1130 to move closer to the elastic contact piece 11251. On the one hand, it drives the single wall panels on both sides to be tightly spliced. At the same time, the direction of approach makes the electric piece 1135 connect the two elastic contact pieces 11251, thereby making the power copper strips 1121 of the two adjacent single wall panels interconnected. When the first wall panel is energized, the graphene layer assembly of the whole wall panel can be electrically connected.
[0041] Example 3
[0042] In another embodiment of this utility model, the transmission wedge assembly includes a mounting block 11271 mounted on the mounting strip 1122 and a transmission block 1127 slidably mounted on the mounting strip 1122. The inclined surface of the transmission block 1127 acts within the transmission groove 1131. A spring 11272 connects the transmission block 1127 and the mounting block 11271. A top block 11273 is provided inside the connecting frame 1128, and the top block 11273 can act on the end of the transmission block 1127.
[0043] Furthermore, the mounting strip 1122 has a screw hole 1124 and a bolt 1129 provided on the connecting frame 1128, and the bolt 1129 can be assembled and connected with the screw hole 1124.
[0044] In this embodiment, through a further configured transmission wedge assembly, such as Figure 3 As shown, the inner sidewall of the connecting frame 1128 is provided with a top block 11273 corresponding to the transmission block 1127. When the connecting frame 1128 is assembled, the top block 11273 will push the transmission block 1127 closer to the connecting member 1130. Under the inclined transmission of the transmission groove 1131 and the transmission block 1127, the connecting member 1130 can be driven to move closer to the elastic contact piece 11251, thereby completing the action in embodiment 2. The connecting frame 1128 is locked by the threaded connection of the bolt 1129 and the screw hole 1124.
[0045] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Detachable installation methods are varied, such as through plug-in and snap-fit connections, or through bolt connections, etc.
[0046] The above description of the specific embodiments of this utility model is only used to further illustrate this utility model and should not be construed as limiting the scope of protection of this utility model. Any non-essential improvements and adjustments made to this utility model by technical engineers in the art based on the content of the above utility model shall fall within the scope of protection of this utility model.
Claims
1. A composite wall heating structure based on graphene heating, characterized by, The single wallboard comprises a wallboard (115), a decorative panel (111), and a graphene layerboard assembly embedded between the wallboard (115) and the decorative panel (111); The wallboard (115) and the graphene layerboard assembly are further sequentially provided with a heat insulation layer (113) for improving thermal insulation performance and a reflection layer (114) between the graphene layerboard assembly and the heat insulation layer (113) for reflecting heat and improving thermal efficiency; And an assembly connecting structure is arranged at four corners of the single wallboard for splicing adjacent single wallboards and for electrical connection of the graphene layerboard assembly embedded in each single wallboard.
2. The graphene heating based composite wall heating structure according to claim 1, characterized in that: The decorative panel (111), the graphene layerboard assembly, the heat insulation layer (113), the reflection layer (114), and the wallboard (115) can be assembled by adhesive connection.
3. The graphene heating based composite wall heating structure according to claim 1, characterized in that: The graphene layerboard assembly comprises a first partition plate (112), mounting strips (1122) arranged at both ends of the first partition plate (112), power copper strips (1121) arranged on opposite sides of the two mounting strips (1122), a plurality of graphene strips (2111) transversely distributed between the two power copper strips (1121), and a second partition plate (1123) arranged above the first partition plate (112) and covering the plurality of graphene strips (2111).
4. The graphene heating based composite wall heating structure according to claim 1, characterized in that: Each assembly connecting structure comprises a mounting groove (1125) arranged at a corner of the decorative panel (111) and the mounting strip (1122) and embedded with an elastic contact piece (11251), each elastic contact piece (11251) is in communication with a corresponding power copper strip (1121), further comprising a connecting frame member (1128), a connecting member (1130) which can be inserted into two adjacent mounting grooves (1125), and a transmission wedge block assembly arranged on the mounting strip (1122), when the connecting frame member (1128) acts on adjacent two single wallboards and splices them, the transmission wedge block assembly is used for horizontal movement of the connecting member (1130) and communication of the elastic contact pieces (11251) in the mounting grooves (1125).
5. The graphene heating based composite wall heating structure according to claim 4, characterized in that: The connecting member (1130) is in a concave structure, an electric sheet (1135) is clamped on the connecting member (1130), the electric sheet (1135) is in a "N" shape structure, can be in contact with the elastic contact piece (11251) and in communication, a sealing member (1134) is assembled on the connecting member (1130), the sealing member (1134) is a rubber elastic material, and a transmission groove (1131) is arranged on the connecting member (1130).
6. The graphene heating based composite wall heating structure according to claim 4, characterized in that: The transmission wedge assembly comprises a mounting block (11271) mounted on a mounting strip (1122), and a transmission block (1127) slidingly mounted on the mounting strip (1122), the inclined surface of the transmission block (1127) acting in a transmission groove (1131), a spring (11272) being connected between the transmission block (1127) and the mounting block (11271), and a top block (11273) being arranged in the inner side of the connecting frame (1128), the top block (11273) being capable of acting on the end of the transmission block (1127).
7. The graphene heating based composite wall heating structure according to claim 4, characterized in that: Screw holes (1124) are formed on the mounting strip (1122), and bolts (1129) are arranged on the connecting frame (1128), the bolts (1129) being capable of being assembled and connected with the screw holes (1124).