Induction digital energy-saving heating wallboard with graphene insulating layer
By incorporating a water cavity within the graphene heating wall panel and utilizing heat-conducting rods and a disturbance mechanism, the problem of dry indoor air is solved, achieving a multi-functional effect of heating, heat preservation, and humidification, thus improving ease of use and energy efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- HUIZHOU GUANTONG TECHNOLOGY CO LTD
- Filing Date
- 2026-03-05
- Publication Date
- 2026-05-12
AI Technical Summary
Existing graphene heating wall panels cause indoor air to dry out during prolonged heating and insulation, requiring additional humidification equipment, which increases costs and is inconvenient to use.
A water cavity is built into the heating wall panel. The water is heated by heat transfer through heat conduction rods, and the water is rapidly evaporated without boiling through a disturbance mechanism to humidify the air. At the same time, the water level is monitored and adjusted through an intelligent control panel.
It achieves multiple functions such as heating, heat preservation, and humidification, requiring no additional power supply, making it energy-saving, environmentally friendly, highly safe, and easy to use.
Smart Images

Figure CN122015167A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of building materials technology, and in particular to a graphene insulation layer induction digital energy-saving heating wall panel. Background Technology
[0002] Graphene heating wall panels are a new type of electric heating product that utilizes the high thermal conductivity and far-infrared radiation properties of graphene material to achieve rapid, uniform, and energy-saving heating effects. They are suitable for various scenarios such as homes, kindergartens, and agricultural greenhouses. Existing graphene heating wall panels typically only have heating and heat preservation functions. However, prolonged heating and heat preservation can make the indoor air very dry, so additional humidification equipment is usually required to increase the air humidity. This not only increases the equipment cost but is also inconvenient to use, resulting in the limited functionality of existing heating wall panels. Therefore, in order to solve the above problems, this application proposes a graphene insulation layer induction digital energy-saving heating wall panel. Summary of the Invention
[0003] This invention provides a graphene insulation layer induction digital energy-saving heating wall panel to solve the above-mentioned technical problems.
[0004] To solve the above technical problems, the present invention provides a graphene insulation layer induction digital energy-saving heating wall panel, including a heating wall panel body, the heating wall panel body being composed of a back panel, a graphene heating plate and a protective cover, the graphene heating plate and the protective cover being fixedly connected to the front side of the back panel, and the graphene heating plate being located inside the protective cover. Water cavities are provided on both sides inside the protective cover. Multiple heat-conducting rods are fixedly connected inside the protective cover and distributed vertically. The two ends of the heat-conducting rods extend into the two water cavities respectively. The heat-conducting rods are located in front of the graphene heating plate. Motor slots are provided on both sides of the protective cover. A disturbance mechanism is installed inside the motor slot and extends into the water cavity.
[0005] Preferably, the heat-conducting rod includes a main rod body, which is located inside the protective cover and extends into the two water cavities. Multiple support rods are fixedly connected to both ends of the main rod body, and the support rods are located inside the water cavities.
[0006] Preferably, a sealing ring is fitted onto the outer end of the main rod, and the sealing ring is located at the communication point between the inside of the protective cover and the inside of the water cavity.
[0007] Preferably, the disturbance mechanism includes a motor, which is fixedly connected inside the motor slot, and a propeller is fixedly connected to the motor output shaft. The propeller is located inside the water cavity and below the heat-conducting rod.
[0008] Preferably, a water level sensor is fixedly connected to the inner wall of the water cavity.
[0009] Preferably, the protective cover has a first opening, a second opening and a third opening on both sides of the front side, and the first opening, the second opening and the third opening are all connected to the inside of the water cavity. The second opening is located below the first opening and the third opening is located below the second opening.
[0010] Preferably, a grid plate is embedded inside the first opening, a ventilation channel is fixedly connected to the front side of the water cavity, the top of the ventilation channel is connected to the second opening, and an observation window is fixedly connected inside the third opening.
[0011] Preferably, ear plates are fixedly connected to the four corners of the heating wall panel body by bolts.
[0012] Preferably, a buckle is inserted into the front side of two adjacent ear plates. The buckle consists of a connecting plate and two plugs, and the plugs are fixedly connected to the rear side of the connecting plate.
[0013] Preferably, it also includes an intelligent control panel, wherein the graphene heating plate, the disturbance mechanism and the water level sensor are all electrically connected to the intelligent control panel.
[0014] Compared with related technologies, the graphene insulation layer induction digital energy-saving heating wall panel provided by the present invention has the following beneficial effects: 1. By embedding a water cavity in the main body of the heating wall panel, and using a heat-conducting rod to transfer heat from the graphene heating plate to heat the water in the water cavity, combined with a disturbance mechanism, the water can still evaporate quickly to humidify the air without boiling. The heating wall panel has multiple functions of heating, heat preservation, and humidification, and requires no additional power supply, making it more energy-efficient and environmentally friendly. It is also very safe and convenient to use. 2. When installing and fixing the heating wall panel body using ear plates, in addition to fixing the ear plates on the two outermost heating wall panel bodies with bolts, the middle part can be connected to two adjacent ear plates by clips. This allows the heating wall panel body to be installed quickly without the need for large-area drilling and bolting, and it is easy to disassemble and assemble, making it convenient for subsequent repair and replacement of a heating wall panel body. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic cross-sectional view of the main body of the heating wall panel of the present invention; Figure 3 For the present invention Figure 2 Enlarged structural diagram of section A in the middle; Figure 4This is a schematic diagram of the exploded structure of the main body of the heating wall panel of the present invention; Figure 5 This is a schematic diagram of the protective cover structure of the present invention; Figure 6 This is a schematic diagram of the heat-conducting rod structure of the present invention; Figure 7 This is a schematic diagram illustrating the assembly and usage effect of the present invention; Figure 8 This is a schematic diagram of the snap-fit structure of the present invention; Figure 9 This is a schematic diagram of the intelligent control panel structure of the present invention.
[0016] Numbered in the diagram: 1. Main body of the heating wall panel; 1-1. Back panel; 1-2. Graphene heating plate; 1-3. Protective cover; 1-3-1. First opening; 1-3-2. Second opening; 1-3-3. Third opening; 1-3-4. Motor slot; 2. Water cavity; 3. Ventilation channel; 4. Heat conduction rod; 4-1. Main rod body; 4-2. Support rod body; 5. Sealing ring; 6. Motor; 7. Propeller; 8. Water level sensor; 9. Grille plate; 10. Observation window; 11. Ear plate; 12. Buckle; 12-1. Connecting plate; 12-2. Plug; 13. Intelligent control panel. Detailed Implementation
[0017] Please see Figure 1-9 The technical solution provided by the present invention specifically includes the following embodiments: A graphene insulation layer induction digital energy-saving heating wall panel includes a heating wall panel body 1, which is composed of a back plate 1-1, a graphene heating plate 1-2 and a protective cover 1-3. The graphene heating plate 1-2 and the protective cover 1-3 are both fixedly connected to the front side of the back plate 1-1, and the graphene heating plate 1-2 is located inside the protective cover 1-3. Water cavities 2 are provided on both sides inside the protective cover 1-3. Multiple heat-conducting rods 4 are fixedly connected inside the protective cover 1-3 and distributed vertically. The two ends of the heat-conducting rods 4 extend into the two water cavities 2 respectively. The heat-conducting rods 4 are located in front of the graphene heating plate 1-2. Both sides of the protective cover 1-3 are provided with motor slots 1-3-4, and a disturbance mechanism is installed inside the motor slots 1-3-4, and the disturbance mechanism extends into the water cavity 2.
[0018] The electrothermal conversion efficiency of graphene heating wall panels can reach over 98%, with some products even reaching 99%, which is far higher than traditional heating methods such as air conditioning and carbon crystal film. Its far-infrared radiation heating mode can directly act on the human body and objects, reducing heat loss caused by air convection and making the body feel more comfortable. Immunity is a physiological protective response of the human body, including both cellular and humoral immunity, which plays a vital role in the body's resistance to disease. Clinical observations have shown that far-infrared radiation can indeed enhance the phagocytic function of macrophages and regulate the body's cellular and humoral immune functions, thus benefiting human health. The graphene heating plate 1-2 operates on the principle of far-infrared radiation heating, and therefore, while providing heating and heat preservation, it can also enhance the immune function of the target population.
[0019] The heat-conducting rod 4 includes a main rod body 4-1, which is located inside the protective cover 1-3 and extends into the two water chambers 2. Multiple support rods 4-2 are fixedly connected to both ends of the main rod body 4-1. The support rods 4-2 are located inside the water chambers 2. Water will slowly evaporate into the air under natural conditions, and the higher the temperature, the faster the evaporation rate. Here, the heat generated by the graphene heating plate 1-2 is used to heat the water in the water chambers 2 through heat transfer, thereby increasing the water evaporation rate. The support rods 4-2 can increase the contact area between the heat-conducting rod 4 and the water, resulting in better heat transfer. No additional energy is needed to promote water evaporation and humidify the air, making it more energy-efficient.
[0020] A sealing ring 5 is fitted on the outer end of the main rod 4-1. The sealing ring 5 is located at the connection between the inside of the protective cover 1-3 and the inside of the water cavity 2. Since the end of the main rod 4-1 extends into the inside of the water cavity 2, the sealing ring 5 is installed to improve the sealing between the main rod 4-1 and the inner wall of the water cavity 2, thus avoiding water leakage.
[0021] The disturbance mechanism includes a motor 6, which is fixedly connected inside the motor slot 1-3-4. The output shaft of the motor 6 is fixedly connected to a propeller 7, which is located inside the water cavity 2 and below the heat-conducting rod 4. When the water in the water cavity 2 is heated and evaporated for humidification, the propeller 7 driven by the motor 6 can rotate and tumble the water in the water cavity 2, so that it can tumble and evaporate a large amount of water into the air even without boiling, thereby accelerating the evaporation rate and improving the humidification effect.
[0022] Compared to ultrasonic atomization humidification, water evaporation humidification is safer and less likely to cause respiratory diseases.
[0023] A water level sensor 8 is fixedly connected to the inner wall of the water cavity 2. The water level sensor 8 can detect the water level inside the water cavity 2 and can be interconnected with the intelligent control panel 13 to know in time whether there is a water shortage.
[0024] The protective cover 1-3 has a first opening 1-3-1, a second opening 1-3-2, and a third opening 1-3-3 on both sides of its front side. All three openings are connected to the interior of the water cavity 2. The second opening 1-3-2 is located below the first opening 1-3-1, and the third opening 1-3-3 is located below the second opening 1-3-2. A grid plate 9 is embedded inside the first opening 1-3-1. A ventilation channel 3 is fixedly connected to the front side of the interior of the water cavity 2, and the top of the ventilation channel 3 is connected to the second opening 1-3-2. An observation window 10 is fixedly connected inside the third opening 1-3-3. When water needs to be added to the water cavity 2, the grid plate 9 can be removed and water can be added to the water cavity 2 through the first opening 1-3-1. During this period, the water level in the water cavity 2 can be directly observed through the observation window 10. When the water or air inside the water cavity 2 is disturbed by the disturbance mechanism, the air inside is discharged from the first opening 1-3-1. During this period, the outside air can pass through the second opening 1-3-2 and enter the ventilation channel 3, and finally be guided downward to the bottom of the water cavity 2, so that the internal and external air pressure is stable and the problem of water vapor or hot air not being able to be discharged smoothly is avoided.
[0025] The four corners of the heating wall panel body 1 are all fixedly connected with ear plates 11 by bolts. The ear plates 11 have mounting holes, which facilitates the installation of bolts to nail to the wall and also facilitates the installation of clips 12 to connect the ear plates 11 on two adjacent heating wall panel bodies 1. This eliminates the need for large-area drilling and screwing. At the same time, it makes disassembly and assembly more convenient when a heating wall panel is damaged and needs to be replaced or repaired.
[0026] A buckle 12 is inserted into the front side of two adjacent ear plates 11. The buckle 12 consists of a connecting plate 12-1 and two plugs 12-2. The plugs 12-2 are fixedly connected to the rear side of the connecting plate 12-1. Figure 7 and Figure 8 As shown, two adjacent heating wall panel bodies 1 can be connected to two ear plates 11 simultaneously via buckles 12, thereby connecting the two adjacent heating wall panel bodies 1 together.
[0027] It also includes an intelligent control panel 13, in which the graphene heating plate 1-2, the disturbance mechanism and the water level sensor 8 are all electrically connected to the intelligent control panel 13. The intelligent control panel 13 can display the real-time room temperature and the heating temperature of the heating wall panel, and can also detect and display the indoor air humidity and the water level in the water cavity 2. The disturbance mechanism is also controlled by it.
[0028] Working principle: During installation, the adjacent ear plates 11 of the two heating wall panel bodies 1 can be locked together by the clip 12. Then the ear plates 11 on the two outermost heating wall panel bodies 1 are fixed to the wall with bolts. If the heating wall panel body 1 in the middle part malfunctions, the clip 12 can be removed to remove the heating wall panel body 1 without frequent drilling and screwing. During use, the graphene heating plate 1-2 generates heat, which is then transferred to the outside air through the holes in the protective cover 1-3. During this time, the heat from the protective cover 1-3 also heats the main rod 4-1. Subsequently, through heat conduction, the support rod 4-2 also gains a certain amount of heat. Water is pre-filled into the water cavity 2, and the heat from the heat-conducting rod 4 heats the water in the water cavity 2, accelerating its evaporation. At the same time, the motor 6 drives the propeller 7 to rotate and stir the water in the water cavity 2, further accelerating its evaporation. The evaporated water is discharged from the grid opening on the grid plate 9 and mixed in the air to increase air humidity. The water level inside the water cavity 2 can be observed through the observation window 10. At the same time, the water level sensor 8 can also monitor whether the water level in the water cavity 2 is too low and display and warn through the intelligent control panel 13. When there is no water in the water cavity 2, the rotation of the propeller 7 can also blow the heat from the heat-conducting rod 4 upward to the grid plate 9 for discharge.
Claims
1. A graphene insulation layer induction digital energy-saving heating wall panel, characterized in that: The heating wall panel body (1) is composed of a back plate (1-1), a graphene heating plate (1-2), and a protective cover (1-3). The graphene heating plate (1-2) and the protective cover (1-3) are both fixedly connected to the front side of the back plate (1-1), and the graphene heating plate (1-2) is located inside the protective cover (1-3). Water cavities (2) are provided on both sides inside the protective cover (1-3). Multiple heat-conducting rods (4) are fixedly connected inside the protective cover (1-3) and distributed vertically. The two ends of the heat-conducting rods (4) extend into the two water cavities (2) respectively. The heat-conducting rods (4) are located in front of the graphene heating plate (1-2). The protective cover (1-3) has motor slots (1-3-4) on both sides. A disturbance mechanism is installed inside the motor slots (1-3-4) and the disturbance mechanism extends into the water cavity (2).
2. The graphene insulation layer induction digital energy-saving heating wall panel according to claim 1, characterized in that, The heat-conducting rod (4) includes a main rod body (4-1), which is located inside the protective cover (1-3) and extends into the two water cavities (2). Both ends of the main rod body (4-1) are fixedly connected to multiple support rod bodies (4-2), which are located inside the water cavities (2).
3. The graphene insulation layer induction digital energy-saving heating wall panel according to claim 2, characterized in that, A sealing ring (5) is fitted on the outer end of the main rod body (4-1). The sealing ring (5) is located at the connection between the inside of the protective cover (1-3) and the inside of the water cavity (2).
4. The graphene insulation layer induction digital energy-saving heating wall panel according to claim 1, characterized in that, The disturbance mechanism includes a motor (6), which is fixedly connected inside the motor slot (1-3-4). The output shaft of the motor (6) is fixedly connected to a propeller (7), which is located inside the water cavity (2) and below the heat-conducting rod (4).
5. A graphene insulation layer induction digital energy-saving heating wall panel according to claim 1, characterized in that, A water level sensor (8) is fixedly connected to the inner wall of the water cavity (2).
6. The graphene insulation layer induction digital energy-saving heating wall panel according to claim 1, characterized in that, The protective cover (1-3) has a first opening (1-3-1), a second opening (1-3-2), and a third opening (1-3-3) on both sides of its front side. The first opening (1-3-1), the second opening (1-3-2), and the third opening (1-3-3) are all connected to the interior of the water cavity (2). The second opening (1-3-2) is located below the first opening (1-3-1), and the third opening (1-3-3) is located below the second opening (1-3-2).
7. A graphene insulation layer induction digital energy-saving heating wall panel according to claim 6, characterized in that, The first opening (1-3-1) is inlaid with a grid plate (9), the water cavity (2) is fixedly connected to the front side of the air exchange channel (3), the top of the air exchange channel (3) is connected to the second opening (1-3-2), and the third opening (1-3-3) is fixedly connected to an observation window (10).
8. The graphene insulation layer induction digital energy-saving heating wall panel according to claim 1, characterized in that, The heating wall panel body (1) has ear plates (11) fixedly connected to its four corners by bolts.
9. A graphene insulation layer induction digital energy-saving heating wall panel according to claim 1, characterized in that, A buckle (12) is inserted into the front side of two adjacent ear plates (11). The buckle (12) consists of a connecting plate (12-1) and two plugs (12-2). The plugs (12-2) are fixedly connected to the rear side of the connecting plate (12-1).
10. A graphene insulation layer induction digital energy-saving heating wall panel according to claim 5, characterized in that, It also includes an intelligent control panel (13), wherein the graphene heating plate (1-2), the disturbance mechanism and the water level sensor (8) are all electrically connected to the intelligent control panel (13).