Multi-head electromagnetic pot furnace

By designing a staggered furnace cavity, a clamping plate for positioning, and a dual heat dissipation system, the problems of poor heat dissipation and electromagnetic leakage in electromagnetic clay pot stoves have been solved, thereby improving the heating efficiency and equipment stability of the clay pot stoves.

CN223976081UActive Publication Date: 2026-03-06DONGGUAN KEYUE ELECTRONICS TECH
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Patent Information

Application Number
CN202520430545.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-12
Publication Date
2026-03-06
Estimated Expiration
2035-03-12

AI Technical Summary

Technical Problem

Existing electromagnetic clay pot cookers suffer from poor heat dissipation during prolonged operation, leading to localized overheating, which affects equipment stability and energy efficiency. Furthermore, insufficient positioning of the electromagnetic coil results in electromagnetic leakage and energy loss.

Method used

A multi-head electromagnetic clay pot stove was designed, which adopts a staggered furnace cavity structure, a wire clamp plate to position the heating coil, a dual heat dissipation system and temperature sensor control, and combines a microcrystalline heating plate and a magnetic ring to improve heat dissipation efficiency and heating stability.

Benefits of technology

It achieves excellent heat dissipation, reduces heat loss, improves heating efficiency and equipment stability, and extends service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multi-head electromagnetic pot stove which comprises a stove platform and an induction cooker body, two rows of stove cavities which are arranged in a staggered mode are arranged on the surface of the stove platform, the induction cooker body is arranged in the stove cavities, the induction cooker body comprises a shell, a microcrystal heating plate, an electromagnetic wire coil and a circuit board, and the electromagnetic wire coil is provided with a plurality of wire clamping plates in the circumferential direction. The wire clamping plate is provided with a plurality of wire bunching grooves in the extending direction of the wire clamping plate, the wire bunching grooves are used for surrounding and positioning the heating coil, a magnetic attraction ring is arranged on the surface of the microcrystal heating plate, and a heat removal cavity is formed in the coil base below the induction cooker body. According to the utility model, the two rows of staggered furnace chambers are arranged on the furnace platform, so that mutual interference between the induction cooker bodies can be avoided, and electromagnetic interference and energy loss are reduced; a wire clamping plate and a wire bunching groove on the electromagnetic wire coil can be used for positioning and fixing the heating coil, so that displacement and electromagnetic leakage are prevented, and the heating efficiency is improved; the first radiator and the second radiator can enhance the heat dissipation capability of the electromagnetic pot furnace; the device has the advantages of efficient heat dissipation, low energy consumption and the like.
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Description

Technical Field

[0001] This utility model relates to the field of clay pot stoves, and in particular to a multi-head electromagnetic clay pot stove. Background Technology

[0002] Induction cookers, as a highly efficient, energy-saving, and safe heating device, have been widely used in home kitchens and the commercial catering industry. Induction cookers typically generate an alternating magnetic field through an electromagnetic coil, which in turn generates eddy currents in the magnetic material of the cookware to achieve the heating function.

[0003] In existing technologies, traditional electromagnetic clay pot stoves in the catering industry often adopt a multi-burner collaborative operation mode. During the long-term continuous operation of the clay pot stove, the internal temperature rises significantly, which can easily cause airflow turbulence in the heat dissipation channels, thereby increasing the risk of local overheating, affecting the stability of electronic components and the service life of the equipment. In addition, the electromagnetic coil structure in conventional electromagnetic clay pot stoves does not provide sufficient positioning constraint for the heating coil, which can easily lead to electromagnetic leakage, resulting in energy loss and affecting the thermal efficiency of the clay pot stove.

[0004] Therefore, existing technologies have shortcomings and need to be improved. Utility Model Content

[0005] The technical problem to be solved by this utility model is to provide a multi-head electromagnetic clay pot stove with good heat dissipation, convenient use, and effective reduction of heat loss.

[0006] To achieve this objective, the present invention adopts the following technical solution: a multi-head electromagnetic clay pot stove, comprising a stove platform and an electromagnetic stove body, wherein the surface of the stove platform is provided with two rows of staggered furnace cavities, and the electromagnetic stove body is disposed in the furnace cavity, and the electromagnetic stove body is used to heat the pot.

[0007] The induction cooker body includes a shell, a microcrystalline heating plate, an electromagnetic coil, and a circuit board. The shell is embedded in the furnace cavity. The circuit board and the electromagnetic coil are both located inside the shell. The electromagnetic coil is electrically connected to the circuit board. The electromagnetic coil has several wire clamping plates along the circumferential direction. The wire clamping plates have several wire binding grooves along their extension direction. The wire binding grooves are used to surround and position the heating coil.

[0008] The microcrystalline heating plate is located at the opening of the shell, and a magnetic ring is provided on the surface of the microcrystalline heating plate. The magnetic ring is used to attract the pot to be heated.

[0009] The furnace platform below the induction cooker body has a heat dissipation chamber. The furnace platform is provided with a first heat dissipation hole communicating with the heat dissipation chamber. The heat dissipation chamber is provided with a first radiator and a first temperature sensor. The first temperature sensor is electrically connected to the first radiator. The first temperature sensor is used to detect the temperature in the heat dissipation chamber. The first radiator is used to dissipate the heat in the heat dissipation chamber.

[0010] Using the above technical solution, the multi-head electromagnetic clay pot stove further includes a second radiator and a second temperature sensor in the stove body.

[0011] The second heat sink and the second temperature sensor are both located inside the housing. The second temperature sensor is electrically connected to the second heat sink. The second temperature sensor is used to detect the temperature of the induction cooker body, and the second heat sink is used to dissipate the heat generated by the induction cooker body.

[0012] Using the above technical solution, the multi-head electromagnetic clay pot stove further includes a control button module. The control button module is located on the stove platform wall and is electrically connected to the circuit board. The control button module is used to control the working state of the electromagnetic stove body.

[0013] Using the above technical solution, in the multi-head electromagnetic clay pot stove, a storage compartment is provided in the stove platform at the bottom of the heat dissipation chamber. The storage compartment is separated from the heat dissipation chamber by a partition. A compartment door is provided on the stove platform wall, and the compartment door is used to close or open the storage compartment.

[0014] In the multi-head electromagnetic clay pot stove described above, the shell is provided with a second heat dissipation hole, which is connected to the heat dissipation chamber.

[0015] Using the above technical solution, in the multi-head electromagnetic clay pot stove, the number of the first radiator is two sets.

[0016] The multi-head electromagnetic clay pot stove, which adopts the above technical solution, also includes an emergency stop button, which is located on the wall of the stove platform.

[0017] Using the above technical solution, the number of induction cooker bodies in the multi-head electromagnetic clay pot stove is six.

[0018] Compared with the prior art, the present invention has the following beneficial effects:

[0019] This invention avoids mutual interference between multiple induction cookers by setting two rows of staggered furnace cavities on the surface of the cooker, thereby reducing electromagnetic interference and energy loss and ensuring that each induction cooker can heat independently and efficiently. The electromagnetic coil inside the cooker is equipped with a wire clamping plate, and the wire spool on the clamping plate can precisely position the heating coil, preventing displacement and electromagnetic leakage, thus improving heating efficiency. A first temperature sensor can monitor the temperature data in the heat dissipation chamber in real time, and a first radiator can intelligently adjust the heat dissipation intensity according to temperature changes, thereby quickly dissipating internal heat. A second radiator enhances the heat dissipation capacity of the induction cooker, ensuring efficient and stable operation of the equipment. The overall structure is compact, effectively improving the energy efficiency and service life of the induction cooker and meeting the needs of long-term heating under high-temperature conditions. Attached Figure Description

[0020] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0021] The structures, proportions, sizes, etc., shown in the accompanying drawings of this specification are only for the purpose of assisting those skilled in the art in understanding and reading the content disclosed in the specification, and are not intended to limit the implementation conditions of this utility model. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in the proportions, or adjustments to the size, without affecting the effects and purposes that this utility model can produce, should still fall within the scope of the technical content disclosed in this utility model.

[0022] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0023] Figure 2 This is a schematic diagram of the assembly structure of the induction cooker body of this utility model;

[0024] Figure 3 This is a schematic diagram of the internal structure of the induction cooker body of this utility model;

[0025] Figure 4 This is a schematic diagram of the internal structure of the furnace platform of this utility model. Detailed Implementation

[0026] To make the utility model's objectives, features, and advantages more apparent and understandable, the technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described below 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 skilled in the art without creative effort are within the scope of protection of the present utility model.

[0027] In the description of this utility model, it should be understood that the terms "upper," "lower," "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. It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be a component centrally located at the same time.

[0028] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.

[0029] like Figures 1 to 4 As shown, this utility model embodiment provides a multi-head electromagnetic clay pot stove, including a stove platform 1 and an electromagnetic stove body 2. The surface of the stove platform 1 is provided with two rows of staggered furnace cavities. The electromagnetic stove body 2 is disposed in the furnace cavity and is used to heat the pot. By providing two rows of staggered furnace cavities on the surface of the stove platform 1, mutual interference between electromagnetic stove bodies 2 in multiple furnace cavities can be avoided, thereby reducing electromagnetic interference and energy loss, and ensuring that each electromagnetic stove body 2 can heat independently and efficiently.

[0030] The induction cooker body 2 includes a shell 21, a microcrystalline heating plate 22, an electromagnetic coil 23, and a circuit board 24. The shell 21 is embedded in the furnace cavity. The circuit board 24 and the electromagnetic coil 23 are both disposed within the shell 21. The electromagnetic coil 23 is electrically connected to the circuit board 24. The electromagnetic coil 23 has several wire clamping plates 231 along its circumferential direction. The wire clamping plates 231 have several wire binding grooves 232 along their extending direction. The wire binding grooves 232 are used to surround and position the heating coil (not shown). The microcrystalline heating plate 22 is disposed at the opening of the shell 21. The surface of the microcrystalline heating plate 22 is provided with a magnetic ring 221. The magnetic ring 221 is used for... The heating coil 23 is equipped with several clamping plates 231 along its circumference. The wire grooves 232 on the clamping plates 231 can surround and position the heating coil, keeping it stable and preventing electromagnetic leakage during operation. This ensures a uniform distribution of the magnetic field strength, thereby improving heating efficiency and reducing energy loss. Meanwhile, the microcrystalline heating plate 22 is located at the opening of the housing 21, serving as both a heat transfer medium and a protective and heat-insulating function, making heating safer and more efficient. The magnetic rings 221 on the surface of the microcrystalline heating plate 22 can be used to stably attract the cookware, ensuring precise alignment between the cookware and the heating area, thereby optimizing the magnetic field induction effect and improving heating efficiency.

[0031] The furnace platform 1 below the induction cooker body 2 has a heat dissipation chamber 11. The furnace platform 1 is provided with a first heat dissipation hole 12 that communicates with the heat dissipation chamber 11. The heat dissipation chamber 11 is provided with a first radiator 13 and a first temperature sensor (not shown). The first temperature sensor is electrically connected to the first radiator 13. The first temperature sensor is used to detect the temperature inside the heat dissipation chamber 11. The first radiator 13 is used to dissipate the heat inside the heat dissipation chamber 11. The heat dissipation chamber 11 inside the furnace platform 1 serves as a channel for heat accumulation and dissipation, allowing the heat generated by the induction cooker body 2 to be concentratedly discharged. The heat dissipation chamber 11 is connected to the outside through the first heat dissipation hole 12, allowing cold air to enter and hot air to exit, thus forming a good airflow path and preventing localized heat accumulation. The first temperature sensor can monitor the temperature data inside the heat dissipation chamber 11 in real time, and the first radiator 13 can intelligently adjust the heat dissipation intensity according to temperature changes, thereby quickly dissipating internal heat and ensuring that the internal temperature of the induction cooker body 2 remains within a safe range even during long-term continuous operation, avoiding equipment failure due to overheating and improving the energy efficiency and overall reliability of the induction cooker body 2. In this embodiment, there are two sets of first radiators 13.

[0032] like Figure 3As shown, the induction cooker body 2 further includes a second heat sink 25 and a second temperature sensor. Both the second heat sink 25 and the second temperature sensor are located within the housing 21. The second temperature sensor is electrically connected to the second heat sink 25. The second temperature sensor is used to detect the temperature of the induction cooker body 2, and the second heat sink 25 is used to dissipate the heat generated by the induction cooker body 2. The second temperature sensor can monitor local temperature changes within the housing 21 in real time and feed back the detected signal to the second heat sink 25. When the temperature reaches a certain threshold, the second heat sink 25 is activated, thereby quickly dissipating the heat accumulated within the housing 21.

[0033] like Figure 1 and Figure 2 As shown, the induction cooker body 2 further includes a control button module 26, which is located on the wall of the cooktop 1 and electrically connected to the circuit board 24. The control button module 26 is used to control the working state of the induction cooker body 2, so that the user can independently control each induction cooker body 2 to start or stop heating, adjust the temperature or heating mode, thereby improving the convenience of operation and user experience.

[0034] like Figure 4 As shown, furthermore, a storage compartment 14 is provided inside the furnace platform 1 at the bottom of the heat dissipation chamber 11. The storage compartment 14 is separated from the heat dissipation chamber by a partition 15. A door 16 is provided on the wall of the furnace platform 1, which is used to close or open the storage compartment 14. The storage compartment 14 provides storage space for users, improving the practicality and convenience of the furnace platform 1. The door 16 makes the use of the storage compartment 14 more flexible, allowing users to close or open the door 16 at any time as needed, facilitating the storage and retrieval of items. The partition 15 ensures that the items in the storage compartment 14 are not affected by the heat of the heat dissipation chamber, preventing damage to the stored items due to excessively high temperatures.

[0035] like Figure 3 As shown, the housing 21 is further provided with a second heat dissipation hole 210, which communicates with the heat dissipation chamber 11. By providing the second heat dissipation hole 210 on the housing 21 and communicating it with the heat dissipation chamber 11, heat can flow into the heat dissipation chamber 11 through the second heat dissipation hole 210, avoiding excessive heat accumulation inside the housing 21 and thus improving heat dissipation efficiency.

[0036] like Figure 1 and Figure 2As shown, it further includes an emergency stop button 27, which is located on the wall of the stove platform 1. This design allows the user to quickly press the button when needed to directly cut off the power supply and stop the heating process of the induction cooker body 2, thereby effectively preventing fire, overheating or other safety accidents.

[0037] like Figure 1 and Figure 2 As shown, the number of induction cooker bodies 2 is six, so that six pots can be heated independently at the same time, thereby improving the work efficiency of the catering industry.

[0038] The above-described embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.

Claims

1. A multi-head electromagnetic wok, characterized in that, The electromagnetic induction cooker comprises a stove table and an electromagnetic induction body, the stove table is provided with two rows of stove cavities arranged staggeredly, and the electromagnetic induction body is arranged in the stove cavities and used for heating a pot; The electromagnetic induction body comprises a shell, a microcrystal heating plate, an electromagnetic wire disc and a circuit board, the shell is embedded in the stove cavities, the circuit board and the electromagnetic wire disc are arranged in the shell, the electromagnetic wire disc is electrically connected with the circuit board, the electromagnetic wire disc is provided with a plurality of wire clamping plates in the circumferential direction, and the wire clamping plates are provided with a plurality of wire bundling grooves in the extending direction, and the wire bundling grooves are used for positioning a heating coil. The microcrystal heating plate is arranged at the opening of the shell, and the microcrystal heating plate is provided with a magnetic ring for adsorbing a pot to be heated. The stove table below the electromagnetic induction body is provided with a heat exhaust chamber, the stove table is provided with a first heat dissipation hole in communication with the heat exhaust chamber, the heat exhaust chamber is provided with a first heat radiator and a first temperature sensor, the first temperature sensor is electrically connected with the first heat radiator, the first temperature sensor is used for detecting the temperature in the heat exhaust chamber, and the first heat radiator is used for exhausting the heat in the heat exhaust chamber.

2. The multi-head electromagnetic wok-stove according to claim 1, wherein, The electromagnetic induction body further comprises a second heat radiator and a second temperature sensor. The second heat radiator and the second temperature sensor are arranged in the shell, the second temperature sensor is electrically connected with the second heat radiator, the second temperature sensor is used for detecting the temperature of the electromagnetic induction body, and the second heat radiator is used for exhausting the heat generated by the electromagnetic induction body.

3. The multi-head electromagnetic wok-stove according to claim 1, wherein, The electromagnetic induction body further comprises a control button module, the control button module is arranged on the wall of the stove table, the control button module is electrically connected with the circuit board, and the control button module is used for controlling the working state of the electromagnetic induction body.

4. The multi-head electromagnetic wok-stove of claim 1, wherein, The stove table below the bottom of the heat exhaust chamber is provided with a storage compartment, the storage compartment is separated from the heat exhaust chamber by a partition plate, the wall of the stove table is provided with a compartment door, and the compartment door is used for closing or opening the storage compartment.

5. The multi-head electromagnetic wok-stove of claim 2, wherein, The shell is provided with a second heat dissipation hole, and the second heat dissipation hole is in communication with the heat exhaust chamber.

6. The multi-head electromagnetic wok-stove of claim 1, wherein, The number of the first heat radiators is two groups.

7. The multi-head electromagnetic wok-stove of claim 1, wherein, The electromagnetic induction cooker further comprises an emergency stop button arranged on the wall of the stove table.

8. The multi-head electromagnetic wok-stove of claim 1, wherein, The number of the electromagnetic induction bodies is six groups.