Graphene electric floor heating with anti-static structure
By introducing residual heat mechanism and pressure protection mechanism into graphene electric floor heating, the problems of static electricity and pressure resistance are solved, the heat insulation performance is improved and static electricity is dissipated, providing continuous warmth and safety.
Patent Information
- Application Number
- CN202423014821.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-07
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-12-07
AI Technical Summary
Traditional graphene electric underfloor heating may generate static electricity in dry environments, affecting human health and electronic devices. It also has insufficient pressure resistance, which may cause damage. Furthermore, its heat insulation and heat storage performance is poor, leading to rapid cooling of the indoor temperature.
It employs a residual heat mechanism and a pressure-resistant protection mechanism. The residual heat mechanism consists of a three-layer heat insulation structure composed of foamed cement, vacuum insulation board, and aerogel padding. The pressure-resistant protection mechanism consists of a honeycomb structure composed of polyethylene protective rods, buffer pads, and conductive copper wires, which are used to block heat and dissipate static electricity, respectively.
It effectively blocks heat, prolongs the indoor heat storage time, improves pressure resistance and safety, avoids static electricity accumulation, and provides continuous warmth and safety.
Smart Images

Figure CN223550533U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of graphene electric floor heating technology, specifically a graphene electric floor heating system with an anti-static structure. Background Technology
[0002] Graphene electric underfloor heating is a new type of floor heating system that utilizes the excellent electrical and thermal conductivity of graphene material to heat the room. The system mainly consists of a graphene heating film, a temperature control system, and a power supply. The graphene heating film is heated by an electric current, and the generated heat is evenly distributed into the indoor air through the floor, thus achieving the heating effect. Graphene has extremely high thermal conductivity, enabling it to quickly convert electrical energy into heat energy, resulting in rapid heating; it typically reaches the preset temperature in just a few minutes. Graphene electric underfloor heating achieves uniform floor heating, avoiding the uneven heating and cooling issues common in traditional heating methods, providing a more comfortable living environment. Furthermore, graphene electric underfloor heating has high electrothermal conversion efficiency, relatively low energy consumption, and no combustion process, reducing environmental pollution.
[0003] Patent application CN202223526243.8 discloses a modular graphene electric underfloor heating system, comprising a heat-insulating mounting plate with a graphene heating plate embedded within it. A heat-conducting cover plate is bolted to the upper surface of the mounting plate. A locking block and a self-locking slot provide a positioning connection, ensuring each mounting plate is securely fixed and difficult to separate. The convenient self-locking and unlocking design of the self-locking slot not only guarantees the performance and lifespan of the graphene electric underfloor heating system but also makes the assembly and disassembly of the mounting plates convenient and efficient, thus simplifying the process of assembling and disassembling the graphene heating system. The installation of electric underfloor heating offers significant convenience for the workers. However, based on the aforementioned patent searches and the findings of existing graphene electric underfloor heating technologies, it has been discovered that traditional graphene electric underfloor heating may generate static electricity in dry environments. This is not only detrimental to human health but may also interfere with electronic devices and potentially cause electrical fires. Furthermore, since graphene electric underfloor heating typically needs to be laid on the ground, insufficient compressive strength of the material may lead to damage under heavy pressure. In addition, existing graphene electric underfloor heating systems have poor insulation and heat storage performance, resulting in rapid cooling of the room after the heating is turned off, leading to a poor user experience.
[0004] Based on this, this utility model designs a graphene electric floor heating system with an anti-static structure to solve the above problems. Utility Model Content
[0005] The purpose of this invention is to provide a graphene electric floor heating system with an anti-static structure to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a graphene electric underfloor heating system with an anti-static structure, comprising a graphene electric underfloor heating body, a residual heat mechanism disposed below the graphene electric underfloor heating body, and a pressure-resistant protection mechanism disposed above the graphene electric underfloor heating body. The residual heat mechanism comprises foamed cement, a vacuum insulation board, and an aerogel pad. An aerogel pad is fixedly installed at the lower end of the graphene electric underfloor heating body, a vacuum insulation board is fixedly installed at the lower end of the aerogel pad, and foamed cement is fixedly installed at the lower end of the vacuum insulation board. The pressure-resistant protection mechanism comprises a protective wooden board, a waterproof cloth, a polyethylene protective rod, a buffer pad, a conductive copper wire, a first terminal block, a first ground wire, a second terminal block, and a second ground wire. A buffer pad is fixedly installed at the upper end of the graphene electric underfloor heating body, a polyethylene protective rod is fixedly installed in the middle of the buffer pad, and a conductive copper wire is inserted into the middle of the polyethylene protective rod.
[0007] Optionally, a waterproof cloth is fixedly installed on the upper end of the cushioning pad, and a protective wooden board is fixedly installed on the upper end of the waterproof cloth.
[0008] Optionally, a first terminal block is fixedly installed at the left end of the conductive copper wire, the conductive copper wire is electrically connected to the first terminal block, and a first ground wire is fixedly connected to the middle of the first terminal block.
[0009] Optionally, a second terminal block is fixedly installed at the right end of the conductive copper wire, the conductive copper wire is electrically connected to the second terminal block, and a second ground wire is fixedly connected to the middle of the second terminal block. Both the first ground wire and the second ground wire are grounded.
[0010] Optionally, multiple sets of buffer pads are distributed from left to right on the upper end of the graphene electric underfloor heating body, and multiple sets of the polyethylene protective rods are installed crosswise from left to right on the upper end of the graphene electric underfloor heating body.
[0011] Optionally, multiple sets of the polyethylene protective rods and buffer pads form a honeycomb structure, and multiple sets of the conductive copper wires are distributed from front to back on the polyethylene protective rods.
[0012] Compared with the prior art, the beneficial effects of this utility model are:
[0013] 1. In this utility model, a residual heat mechanism is provided. The residual heat mechanism adopts a three-layer heat insulation structure, all of which are made of heat insulation material. It forms the support structure at the lower end of the graphene electric floor heating body, ensuring that the heat at the graphene electric floor heating body and the heat in the room are effectively blocked after the graphene electric floor heating body is turned off, preventing the heat from dissipating quickly, so that the room is still in a heated state, which saves heating energy consumption to a certain extent. Users can still experience the warm effect after the graphene electric floor heating body is turned off for a certain period of time.
[0014] 2. In this utility model, a pressure-resistant protection mechanism is provided. The pressure-resistant protection mechanism combines a pressure-resistant structure and a conductive structure. The honeycomb structure composed of polyethylene protective rods and buffer pads serves as the pressure-resistant medium between the graphene electric underfloor heating body and the protective wooden board body. It provides even support to the protective wooden board body and waterproof cloth at various points, thereby improving the safety of the graphene electric underfloor heating body. The conductive structure is used to conduct static electricity on the graphene electric underfloor heating body, which can stably conduct static electricity and avoid static electricity accumulation. Attached Figure Description
[0015] Figure 1 This is a three-dimensional front view structural diagram of the present invention;
[0016] Figure 2 This is a schematic diagram of the structure of this utility model from a frontal view.
[0017] Figure 3 This is a three-dimensional, bottom-view structural diagram of the present invention;
[0018] Figure 4 This is a three-dimensional top view of the structure of this utility model;
[0019] Figure 5 This is a three-dimensional sectional view of the structure of this utility model. Figure 1 ;
[0020] Figure 6 This is a three-dimensional sectional view of the structure of this utility model. Figure 2 ;
[0021] Figure 7 This utility model Figure 5 A magnified three-dimensional structural diagram of point A in the middle.
[0022] In the diagram: 1. Graphene electric floor heating element; 2. Residual heat mechanism; 201. Foamed cement; 202. Vacuum insulation board; 203. Aerogel pad; 3. Pressure-resistant protection mechanism; 301. Protective wooden board; 302. Waterproof cloth; 303. Polyethylene protective rod; 304. Buffer pad; 305. Conductive copper wire; 306. First terminal block; 307. First ground wire; 308. Second terminal block; 309. Second ground wire. Detailed Implementation
[0023] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, 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. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more.
[0024] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; 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; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. 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.
[0026] Please see Figures 1-7 In this embodiment of the present invention, a graphene electric underfloor heating system with an anti-static structure includes a graphene electric underfloor heating body 1, a residual heat mechanism 2 is provided below the graphene electric underfloor heating body 1, and a pressure-resistant protection mechanism 3 is provided above the graphene electric underfloor heating body 1. The residual heat mechanism 2 includes foamed cement 201, a vacuum insulation board 202, and an aerogel pad 203. An aerogel pad 203 is fixedly installed at the lower end of the graphene electric underfloor heating body 1, a vacuum insulation board 202 is fixedly installed at the lower end of the aerogel pad 203, and foamed cement 201 is fixedly installed at the lower end of the vacuum insulation board 202.
[0027] See Figure 2 , Figure 6 and Figure 7Initially, the residual heat mechanism 2 adopts a three-layer heat insulation structure, all made of heat insulation material. On the one hand, it forms the support structure at the lower end of the graphene electric floor heating body 1, and on the other hand, it can block heat and extend the heat storage time in the room.
[0028] Among them, foamed cement 201 is a lightweight thermal insulation material containing a large number of closed pores, which has good thermal insulation performance. Vacuum insulation board 202 uses its internal vacuum environment to block the stacking and radiative heat transfer. It has an extremely low thermal conductivity and is a highly efficient thermal insulation material. Aerogel mat 203 is a solid material with good thermal insulation performance. It has nano-sized pores and extremely low bulk density, which can effectively lock in hot air molecules and inhibit the diffusion rate of hot air molecules, resulting in excellent thermal insulation effect. The foamed cement 201, vacuum insulation board 202 and aerogel mat 203 are stacked and installed at the bottom of the graphene electric floor heating body 1. This ensures that after the graphene electric floor heating body 1 is turned off, the heat at the graphene electric floor heating body 1 and the heat in the room are effectively blocked, preventing the heat from dissipating quickly. This keeps the room in a heated state and saves heating energy to a certain extent. Users can still experience the warm effect after the graphene electric floor heating body 1 is turned off for a certain period of time.
[0029] The pressure-resistant protection mechanism 3 includes a protective wooden board 301, a waterproof cloth 302, a polyethylene protective rod 303, a cushioning rubber pad 304, a conductive copper wire 305, a first terminal block 306, a first ground wire 307, a second terminal block 308, and a second ground wire 309. A cushioning rubber pad 304 is fixedly installed at the upper end of the graphene electric floor heating element 1. A polyethylene protective rod 303 is fixedly installed in the middle of the cushioning rubber pad 304. A conductive copper wire 305 is inserted into the middle of the polyethylene protective rod 303. A waterproof cloth 302 is fixedly installed at the upper end of the cushioning rubber pad 304. A protective wooden board 301 is fixedly installed at the upper end of the waterproof cloth 302. A first terminal block 306 is fixedly installed at the left end of the conductive copper wire 305. The conductive copper wire 305 is connected to the first terminal block 306. The terminal block 306 is electrically connected. A first ground wire 307 is fixedly connected to the middle of the first terminal block 306. A second terminal block 308 is fixedly installed at the right end of the conductive copper wire 305. The conductive copper wire 305 is electrically connected to the second terminal block 308. A second ground wire 309 is fixedly connected to the middle of the second terminal block 308. Both the first ground wire 307 and the second ground wire 309 are grounded. Multiple sets of buffer pads 304 are distributed from left to right on the upper end of the graphene electric floor heating body 1. Multiple sets of polyethylene protective rods 303 are installed crosswise from left to right on the upper end of the graphene electric floor heating body 1. Multiple sets of polyethylene protective rods 303 and buffer pads 304 form a honeycomb structure. Multiple sets of conductive copper wires 305 are distributed from front to back on the polyethylene protective rods 303.
[0030] See Figure 6The pressure-resistant protection mechanism 3 combines a pressure-resistant structure and a conductive structure. The pressure-resistant structure consists of a protective wooden board 301, a waterproof cloth 302, a polyethylene protective rod 303, and a buffer pad 304. The buffer pad 304 provides a buffering function, and the polyethylene protective rod 303 provides a pressure-resistant effect. In particular, the honeycomb structure formed by multiple sets of polyethylene protective rods 303 and buffer pads 304 can uniformize the pressure resistance, thereby improving the overall pressure resistance of the graphene electric floor heating body 1. The conductive structure consists of a conductive copper wire 305, a first terminal block 306, a first ground wire 307, a second terminal block 308, and a second ground wire 309. The conductive copper wire 305 can quickly conduct away the static electricity accumulated above the graphene electric floor heating body 1 and conduct it to the ground through the first ground wire 307 and the second ground wire 309.
[0031] The honeycomb structure composed of polyethylene protective rod 303 and buffer pad 304 serves as the pressure-resistant medium between the graphene electric underfloor heating body 1 and the protective wooden board body 301, providing even support for the protective wooden board body 301 and the waterproof cloth 302, thus improving the safety of the graphene electric underfloor heating body 1. The conductive structure is used to conduct static electricity on the graphene electric underfloor heating body 1, which can stably conduct static electricity and avoid static electricity accumulation.
[0032] The working principle of this utility model is as follows: The graphene electric underfloor heating element 1, the first ground wire 307, and the second ground wire 309 within this graphene electric underfloor heating system with an anti-static structure all require power connection and access to the control terminal. The residual heat mechanism 2 employs a three-layer heat insulation structure, all made of heat-insulating material. On one hand, it forms the supporting structure at the lower end of the graphene electric underfloor heating element 1; on the other hand, it can block heat and extend the heat storage time indoors. The pressure-resistant protection mechanism 3 combines a pressure-resistant structure and a conductive structure. The pressure-resistant structure consists of a protective wooden board 301, a waterproof cloth 302, a polyethylene protective rod 303, and a buffer pad 304. The buffer pad... The body 304 provides a buffer function, and the polyethylene protective rod 303 provides a pressure-resistant effect. In particular, the honeycomb structure composed of multiple sets of polyethylene protective rods 303 and buffer pads 304 can uniformly distribute the pressure resistance, thereby improving the overall pressure resistance of the graphene electric underfloor heating body 1. The conductive structure is composed of conductive copper wire 305, first terminal block 306, first ground wire 307, second terminal block 308 and second ground wire 309. The conductive copper wire 305 can quickly conduct away the static electricity accumulated above the graphene electric underfloor heating body 1 and conduct it to the ground through the first ground wire 307 and the second ground wire 309, thereby achieving the effect of continuously eliminating static electricity.
[0033] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art 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 appended claims and their equivalents.
Claims
1. A graphene electric underfloor heating system with an antistatic structure, comprising a graphene electric underfloor heating body (1), characterized in that: A residual heat mechanism (2) is provided below the graphene electric floor heating body (1), and a pressure-resistant protection mechanism (3) is provided above the graphene electric floor heating body (1). The residual heat mechanism (2) includes foamed cement (201), a vacuum insulation board (202), and an aerogel pad (203). An aerogel pad (203) is fixedly installed at the lower end of the graphene electric floor heating body (1), a vacuum insulation board (202) is fixedly installed at the lower end of the aerogel pad (203), and foamed cement (201) is fixedly installed at the lower end of the vacuum insulation board (202). The pressure-resistant protection mechanism (3) is provided above the graphene electric floor heating body (1). The mechanism (3) includes a protective wooden board (301), a waterproof cloth (302), a polyethylene protective rod (303), a buffer rubber pad (304), a conductive copper wire (305), a first terminal block (306), a first ground wire (307), a second terminal block (308), and a second ground wire (309). The upper end of the graphene electric floor heating body (1) is fixedly installed with a buffer rubber pad (304), and the middle part of the buffer rubber pad (304) is fixedly installed with a polyethylene protective rod (303). A conductive copper wire (305) is inserted into the middle part of the polyethylene protective rod (303).
2. The graphene electric underfloor heating system with an antistatic structure according to claim 1, characterized in that: A waterproof cloth (302) is fixedly installed on the upper end of the buffer pad (304), and a protective wooden board (301) is fixedly installed on the upper end of the waterproof cloth (302).
3. A graphene electric underfloor heating system with an antistatic structure according to claim 1, characterized in that: The left end of the conductive copper wire (305) is fixedly installed with a first terminal block (306), the conductive copper wire (305) is electrically connected to the first terminal block (306), and the middle part of the first terminal block (306) is fixedly connected with a first ground wire (307).
4. A graphene electric underfloor heating system with an antistatic structure according to claim 1, characterized in that: A second terminal block (308) is fixedly installed at the right end of the conductive copper wire (305). The conductive copper wire (305) is electrically connected to the second terminal block (308). A second ground wire (309) is fixedly connected to the middle of the second terminal block (308). Both the first ground wire (307) and the second ground wire (309) are grounded.
5. A graphene electric underfloor heating system with an antistatic structure according to claim 1, characterized in that: Multiple sets of buffer pads (304) are distributed from left to right on the upper end of the graphene electric floor heating body (1), and multiple sets of the polyethylene protective rods (303) are installed crosswise from left to right on the upper end of the graphene electric floor heating body (1).
6. A graphene electric underfloor heating system with an antistatic structure according to claim 1, characterized in that: Multiple sets of the polyethylene protective rods (303) and buffer pads (304) form a honeycomb structure, and multiple sets of conductive copper wires (305) are distributed from front to back on the polyethylene protective rods (303).
Citation Information
Patent Citations
Splicing type graphene electric floor heating system
CN219735431U