A device for rapidly generating a heat source
By laying a superconducting thermal graphite silicon carbide layer around the outer circumference of a steel pipe and winding a high-frequency high-voltage coil, the electromagnetic field is used to generate heat, solving the problems of high energy consumption and pollution in traditional heat source generation methods, and realizing efficient and environmentally friendly heat source generation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HENAN SHUNTIANRUN ARTIFICIAL INTELLIGENCE TECHNOLOGY CO LTD
- Filing Date
- 2025-07-29
- Publication Date
- 2026-07-21
AI Technical Summary
In current industrial production, heat generation mainly relies on burning oil, coal, and biomass straw, resulting in high energy consumption and severe pollution, making it difficult to achieve clean and efficient heat generation.
A superconducting graphite silicon carbide layer is laid on the outer circumference of a steel pipe, and a high-frequency high-voltage coil is wound on it and connected to the control system. The high-frequency high-voltage electromagnetic field is used to make the graphite silicon carbide layer heat up quickly, and the heat source is generated efficiently by combining a fan and a temperature sensor.
It achieves efficient and environmentally friendly heat source generation, reduces energy consumption, meets environmental protection and energy conservation requirements, and is suitable for industrial production.
Smart Images

Figure CN224538361U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the generation of heat sources, specifically to a device for rapidly generating heat sources. Background Technology
[0002] Industrial production processes require a large amount of heat sources (heat gas sources, hot water sources) to meet production needs. Traditional heat sources provide heating by burning oil, coal, and biomass straw. This method not only consumes a large amount of energy materials but also generates pollution, which is inconsistent with the country's energy conservation and emission reduction policies.
[0003] Electricity is a clean energy source. If electricity can be applied to the heat generation process, it can not only meet the heat source demand, but also reduce the combustion of materials such as petrochemicals, which has great significance for energy conservation and environmental protection. Summary of the Invention
[0004] The technical problem to be solved by this invention is how to use electrical energy to generate a heat source to meet the heat source requirements of industrial production.
[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is: a device for rapidly generating a heat source, comprising a steel pipe, a superconducting thermal graphite silicon carbide layer laid on the outer periphery of the steel pipe, a heat insulation layer laid on the superconducting thermal graphite silicon carbide layer, a high-frequency high-voltage coil wound on the heat insulation layer, the high-frequency high-voltage coil being connected to a control system capable of generating a high-frequency high-voltage power supply, and a heat source initiation device set at one end of the steel pipe.
[0006] The initial heat source device consists of a fan installed at the end of a steel pipe, with the fan outlet connected to the steel pipe and the fan connected to a control system.
[0007] Multiple neodymium iron boron magnets are disposed on the high-frequency high-voltage coil.
[0008] A heat outlet temperature sensor is installed at the heat outlet of the steel pipe, and the heat outlet temperature sensor is connected to the control system.
[0009] A coil temperature protection sensor is installed on the high-frequency high-voltage coil, and the coil temperature protection sensor is connected to the control system.
[0010] This invention relates to a device for rapidly generating a heat source, designed using the aforementioned technical solution. A high-frequency, high-voltage electromagnetic field generated by a high-frequency, high-voltage coil rapidly heats a superconducting graphite silicon carbide layer, thereby discharging heat (hot air, steam, hot water, etc.) from the outlet of a steel pipe, meeting industrial heat source demands. This invention features a simple structure, low manufacturing cost, and is more efficient than traditional heat source generation methods. The heat source generation process is clean and environmentally friendly, meeting national environmental protection and energy-saving requirements. Attached Figure Description
[0011] Figure 1 This is a schematic diagram of the structure of a device for rapidly generating a heat source according to the present invention. Detailed Implementation
[0012] The following description, in conjunction with the accompanying drawings, details a device for rapidly generating a heat source according to this invention.
[0013] This utility model relates to a device for rapidly generating a heat source, see [link to relevant documentation]. Figure 1 The system includes a 304 stainless steel pipe 1, a superconducting thermal graphite silicon carbide layer 2 laid on the outer periphery of the pipe 1, a coil support frame 3 on the superconducting thermal graphite silicon carbide layer 2, a heat insulation layer 4 laid on the coil support frame 3, and a high-frequency high-voltage coil 5 wound on the heat insulation layer 4. The high-frequency high-voltage coil 5 is connected to a control system (not shown in the figure) that can generate a high-frequency high-voltage power supply. Under the action of the high-frequency high-voltage power supply, the high-frequency high-voltage coil 5 can generate a high-frequency high-voltage electromagnetic field. A coil temperature protection sensor 7 is installed on the high-frequency high-voltage coil 5. The coil temperature protection sensor 7 is connected to the control system and is used to detect the temperature of the high-frequency high-voltage coil 5 and feed the temperature back to the control system in real time. Multiple neodymium iron boron magnets 6 are installed on the high-frequency high-voltage coil 5. The function of the neodymium iron boron magnets 6 is to shield the magnetic field and prevent the magnetic field from overflowing. A heat source initiation device is installed at one end of the pipe 1. In this embodiment, the heat source initiation device is a fan 8 installed at the end of the pipe 1. The air outlet of the fan 8 is connected to the pipe 1, and the fan 8 is controlled by the control system. A heat outlet temperature sensor 10 is installed at the heat outlet 11 of the steel pipe 1. The heat outlet temperature sensor 10 is connected to the control system. The heat outlet temperature sensor 10 is used to detect the temperature of the heat source at the heat outlet 11 of the steel pipe 1 and feeds the temperature back to the control system in real time.
[0014] The air entering from the inlet 9 of the fan 8 and exiting from the outlet 8 enters the steel pipe 1. The high-frequency high-voltage coil 5 generates a high-frequency high-voltage electromagnetic field under the action of the high-frequency high-voltage power supply. The high-frequency high-voltage electromagnetic field passes through the heat insulation layer 4 and enters the superconducting graphite silicon carbide layer 2. The superconducting graphite silicon carbide layer 2 heats up rapidly after contacting the magnetic field. Tests show that its heating efficiency is higher than that of other heating materials on the market. The heat insulation layer 4 ensures that the high-frequency high-voltage coil 5 does not heat up. In this way, the heat generated by the superconducting graphite silicon carbide layer 2 is transferred to the food-grade steel pipe 1. The hot air coming out of the heat outlet 11 of the steel pipe 1 is not contaminated. It has a wide range of application value in drying food and industrial applications.
Claims
1. A device for rapidly generating a heat source, comprising a steel pipe, characterized in that: A superconducting thermal graphite silicon carbide layer is laid on the outer periphery of the steel pipe, an insulation layer is laid on the superconducting thermal graphite silicon carbide layer, a high-frequency high-voltage coil is wound on the insulation layer, the high-frequency high-voltage coil is connected to a control system that can generate high-frequency high-voltage power, and a heat source initiation device is set at one end of the steel pipe.
2. The device for rapidly generating a heat source according to claim 1, characterized in that: The initial heat source device consists of a fan installed at the end of a steel pipe, with the fan outlet connected to the steel pipe and the fan connected to a control system.
3. The device for rapidly generating a heat source according to claim 1, characterized in that a plurality of neodymium iron boron magnets are provided on the high-frequency high-voltage coil.
4. The device for rapidly generating a heat source according to claim 1, characterized in that: A heat outlet temperature sensor is installed at the heat outlet of the steel pipe, and the heat outlet temperature sensor is connected to the control system.
5. The device for rapidly generating a heat source according to claim 1, characterized in that a coil temperature protection sensor is provided on the high-frequency high-voltage coil, and the coil temperature protection sensor is connected to the control system.