Ultrathin induction cooker structure

By using aluminum silicate fiberboard insulation and an intelligent heat dissipation system in the induction cooker, the problem of insufficient heat utilization at the bottom of the coil is solved, achieving high efficiency, energy saving, and stable operation, extending the service life of the induction cooker, and improving safety and user experience.

CN223460503UActive Publication Date: 2025-10-21ZHONGSHAN FEIHONG ELECTRIC APPLIANCES CO LTD
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Patent Information

Application Number
CN202423057674.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-11
Publication Date
2025-10-21
Estimated Expiration
2034-12-11

AI Technical Summary

Technical Problem

The heat at the bottom of the internal coil of existing induction cookers cannot be fully utilized, resulting in energy waste and safety hazards. Furthermore, the traditional design may cause the internal temperature of the induction cooker to be too high, affecting its service life and safety.

Method used

Aluminum silicate fiberboard is used to insulate the coil, and a heat dissipation system that works with the fan blades and motor is used to efficiently dissipate heat through the heat dissipation duct and heat dissipation holes, reducing heat transfer to the bottom of the coil, and transferring heat through the heat conduction plate.

Benefits of technology

It effectively reduces heat transfer during coil operation, improves the thermal efficiency and safety of the induction cooker, extends its service life, provides energy-saving effects and stable operation, and enhances the user's cooking experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of induction cookers, and discloses an ultrathin induction cooker structure which comprises an induction cooker body, supporting columns are fixedly mounted in the induction cooker body, and coil panels are fixedly mounted at the tops of the three supporting columns. Heat at the bottom of the coil panel is effectively isolated through the aluminum silicate fiber board, heat transfer during operation of the coil panel is effectively reduced, the internal structure of the induction cooker is protected, the overall heat efficiency is remarkably improved, meanwhile, the excellent heat insulation performance of the aluminum silicate fiber board brings a good energy-saving effect, and the service life of the induction cooker is prolonged. The energy loss in the heating process is reduced, the induction cooker is more efficient and energy-saving, the pursuit of modern kitchens for high efficiency and energy conservation is met, in addition, the good high-temperature resistance ensures that the induction cooker body stably works for a long time in a high-temperature environment and is not prone to physical or chemical change, and the safety and reliability of the induction cooker body are further improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of induction cooker, more specifically, the utility model relates to a kind of ultra-thin induction cooker structure. BACKGROUND

[0002] An ultra-thin induction cooker structure realizes compact and thin body through optimization design, while maintaining the integrity of function. The shell is made of high-strength heat-resistant material, the panel is smooth and easy to clean, and the body thickness is greatly reduced, saving space and improving appearance. The internal structure is precisely laid out, and the key components such as electromagnetic coil and circuit board are arranged compactly, and a high-efficiency cooling system is provided to ensure stable operation. The existing induction cooker coil disc usually uses the way of heating on both sides at the same time. Although this way is uniform in heating, the heat emitted from the bottom often cannot be fully utilized, causing energy waste. At the same time, this design also makes the internal temperature of the induction cooker too high, which poses a potential threat to the service life and safety of the induction cooker. SUMMARY

[0003] In order to overcome the shortcomings of the prior art, the utility model provides an ultra-thin induction cooker structure, which has the advantage of heat insulation of the coil disc by aluminum silicate fiber plate.

[0004] To achieve the above purpose, the utility model provides the following technical scheme: an ultra-thin induction cooker structure, comprising an induction cooker body, a support column is fixedly installed inside the induction cooker body, a coil disc is fixedly installed on the top of the three support columns, an aluminum silicate fiber plate is fixedly installed inside the induction cooker body;

[0005] A placing frame is fixedly installed inside the induction cooker body, an inverter is movably installed inside the placing frame, a power plug is fixedly installed on the left side of the induction cooker body, the inverter is electrically connected with the heat dissipation air duct, a heat conduction plate is embedded on the top of the induction cooker body, and a main control circuit board is fixedly installed inside the induction cooker body.

[0006] As a preferred technical scheme of the utility model, a fixed support is fixedly installed inside the induction cooker body, a motor is fixedly installed on the bottom of the fixed support, a fan blade is fixedly installed on the outer surface of the motor, a second heat dissipation hole is formed on the bottom of the induction cooker body, and a heat dissipation air duct is arranged inside the induction cooker body.

[0007] As a preferred technical scheme of the utility model, a support base is fixedly installed on the bottom of the induction cooker body, and the support base has four identical shapes.

[0008] As a preferred technical scheme of the utility model, a first heat dissipation hole is formed on the outer side of the induction cooker body, and the first heat dissipation hole has a linear array form.

[0009] As a preferred technical scheme of the utility model, the reinforcing rib is fixedly installed at the clamping angle between the electromagnetic oven body and the placing frame, and the reinforcing rib has a ladder-shaped shape.

[0010] Compared with the prior art, the utility model has the beneficial effects as follows:

[0011] 1、 compared with the traditional structure, the mechanism effectively isolates the heat at the bottom of the coil disc by the aluminum silicate fiber plate, effectively reduces the heat transfer of the coil disc during work, not only protects the internal structure of the electromagnetic oven, but also significantly improves the overall thermal efficiency, at the same time, the excellent heat insulation performance of the aluminum silicate fiber plate also brings good energy-saving effect, reduces the energy loss in the heating process, makes the electromagnetic oven more efficient and energy-saving, meets the pursuit of high efficiency and energy saving of modern kitchen, in addition, the good high temperature resistance ensures that the electromagnetic oven body works stably for a long time under high temperature environment, is not easy to have physical or chemical change, further improves the safety and reliability of the electromagnetic oven body.

[0012] 2、 compared with the traditional structure, the structure is convenient for heat dissipation of the inside of the electromagnetic oven body through the cooperation between the fan blade and the motor, rapidly and stably discharges the internal heat, this design not only ensures the stable operation of the electromagnetic oven under long time use, but also effectively prolongs the service life, at the same time, the intelligent heat dissipation system also improves the cooking experience of users, makes the kitchen environment more comfortable, is an indispensable efficient heat dissipation solution for modern kitchen. BRIEF DESCRIPTION OF DRAWINGS

[0013] Figure 1 It is a front perspective appearance structure schematic view of the utility model;

[0014] Figure 2 It is an electromagnetic oven internal structure schematic view of the utility model;

[0015] Figure 3 It is an aluminum silicate fiber plate structure schematic view of the utility model;

[0016] Figure 4 It is a front cross section structure schematic view of the utility model;

[0017] Figure 5 It is a coil disc structure schematic view of the utility model.

[0018] In the figure: 1, the electromagnetic oven body; 2, the heat conduction plate; 3, the support base; 4, the power plug; 5, the first heat dissipation hole; 6, the support column; 7, the coil disc; 8, the aluminum silicate fiber plate; 9, the fixed support; 10, the motor; 11, the fan blade; 12, the second heat dissipation hole; 13, the main control circuit board; 14, the heat dissipation air duct; 15, the inverter; 16, the placing frame; 17, the reinforcing rib. DETAILED DESCRIPTION

[0019] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.

[0020] As Figures 1 to 5 shown, the utility model provides a kind of ultra-thin electromagnetic oven structure, including electromagnetic oven body 1, the inside fixed installation of electromagnetic oven body 1 has support column 6, the top of three support columns 6 is fixedly installed with coil disc 7, the inside fixed installation of electromagnetic oven body 1 has aluminum silicate fiber plate 8;

[0021] The inside fixed installation of electromagnetic oven body 1 has placing frame 16, the inside movable installation of placing frame 16 has inverter 15, the left side fixed installation of electromagnetic oven body 1 has power plug 4, inverter 15 and heat dissipation air duct 14 are electrically connected, the top embedding of electromagnetic oven body 1 has heat conduction plate 2, the inside fixed installation of electromagnetic oven body 1 has main control circuit board 13.

[0022] Staff inserts power plug 4 steadily into the inside of socket, and power supply is connected for electromagnetic oven body 1, then, main control circuit board 13 is activated, and it is connected by wire power plug 4 and inverter 15, provides required power for inverter 15.Inverter 15 is started immediately, and direct current is converted into high-frequency alternating current efficiently, and this electric energy is transported to coil disc 7, and coil disc 7 receives electric energy immediately and starts heating, and heat is transferred to the object needing heating by heat conduction plate 2, and simultaneously, aluminum silicate fiber plate 8 isolates the heat at the bottom of coil disc 7, to complete the heat isolation at the bottom of coil disc 7.

[0023] The power plug 4 is inserted into the inside of the socket to supply power to the induction cooker body 1, and then the main control circuit board 13 is pressed to connect the power plug 4 with the inverter 15 through the power plug 4, supply power to the inverter 15 through the power plug 4, convert the direct current into high-frequency alternating current through the inverter 15 to supply the coil disc 7, and then the coil disc 7 starts heating, the heat-conducting plate 2 is heated through the coil disc 7, and the bottom heat of the coil disc 7 is effectively isolated through the aluminum silicate fiber plate 8. Compared with the traditional structure, the mechanism effectively isolates the heat of the bottom of the coil disc 7 through the aluminum silicate fiber plate 8, effectively reduces the heat transfer of the coil disc 7 during work, not only protects the internal structure of the induction cooker, but also significantly improves the overall thermal efficiency. At the same time, the excellent heat insulation performance of the aluminum silicate fiber plate 8 also brings good energy-saving effect, reduces the energy loss in the heating process, makes the induction cooker more efficient and energy-saving, meets the pursuit of modern kitchen for high efficiency and energy saving, and besides, the good high-temperature resistance ensures the long-term stable work of the induction cooker body 1 in high-temperature environment, and is not easy to occur physical or chemical change, further improves the safety and reliability of the induction cooker body 1.

[0024] The inside of the induction cooker body 1 is fixedly provided with a fixed support 9, the bottom of the fixed support 9 is fixedly provided with a motor 10, the outer surface of the motor 10 is fixedly provided with a fan blade 11, the bottom of the induction cooker body 1 is provided with a second heat dissipation hole 12, and the inside of the induction cooker body 1 is provided with a heat dissipation air duct 14.

[0025] The motor 10 is controlled by the main control circuit board 13 to rotate at the bottom of the fixed support 9, the fan blade 11 is driven to rotate by the motor 10, and the internal heat of the induction cooker body 1 is slowly discharged through the second heat dissipation hole 12 by the main control circuit board 13, and at the same time, the inside is discharged through the heat dissipation air duct 14, so as to complete the internal heat dissipation of the induction cooker body 1.

[0026] The motor 10 is controlled by the main control circuit board 13 to rotate at the bottom of the fixed support 9, the fan blade 11 is driven to rotate by the motor 10, and the internal heat of the induction cooker body 1 is slowly discharged through the second heat dissipation hole 12 by the main control circuit board 13, and at the same time, the inside is discharged through the heat dissipation air duct 14, so as to complete the internal heat dissipation of the induction cooker body 1.

[0027] The bottom of the induction cooker body 1 is fixedly provided with a support base 3, and the support base 3 has four shapes of the same size.

[0028] The support base 3 presents four shapes of the same size inside the electromagnetic oven body 1, so that the electromagnetic oven body 1 is stably supported by the support base 3, and the electromagnetic oven body 1 is prevented from shaking during use, and the stability of the electromagnetic oven body 1 during use is improved.

[0029] The first heat dissipation hole 5 is arranged on the outer side of the electromagnetic oven body 1 in a linear array.

[0030] The first heat dissipation hole 5 is arranged on the outer side of the electromagnetic oven body 1 in a linear array, so that the inside of the electromagnetic oven body 1 is conveniently cooled, the phenomenon of excessively high temperature of the electromagnetic oven body 1 during use is avoided, and the stability of the electromagnetic oven body 1 during use is improved.

[0031] The reinforcing rib 17 is arranged at the corner between the electromagnetic oven body 1 and the placing frame 16 in a ladder shape.

[0032] The reinforcing rib 17 is arranged at the corner between the electromagnetic oven body 1 and the placing frame 16 in a ladder shape, so that the inverter 15 is stably supported, the inverter 15 is prevented from shaking during use, and the stability of the inverter 15 during use is ensured.

[0033] The working principle and use process of the utility model are as follows:

[0034] The power plug 4 is stably inserted into the socket by the staff, the power supply of the electromagnetic oven body 1 is connected, then the main control circuit board 13 is activated, the power plug 4 is connected with the inverter 15 through the wire, and the required power supply of the inverter 15 is provided. The inverter 15 is started immediately, and the direct current is efficiently converted into high-frequency alternating current. The electric energy is transported to the coil disc 7, the coil disc 7 receives the electric energy and immediately starts heating, and the heat is transmitted to the object to be heated through the heat-conducting plate 2. At the same time, the heat at the bottom of the coil disc 7 is isolated by the aluminum silicate fiber plate 8, so that the heat isolation of the bottom of the coil disc 7 is completed.

[0035] The motor 10 rotates at the bottom of the fixed support 9 through the control of the main control circuit board 13, the fan blade 11 is driven to rotate through the motor 10, the internal heat of the electromagnetic oven body 1 is slowly discharged through the second heat dissipation hole 12 through the control of the main control circuit board 13, and the internal heat is discharged through the heat dissipation air duct 14, so that the internal heat dissipation of the electromagnetic oven body 1 is completed.

[0036] It is to be noted that, in the present document, relational terms such as first and second and the like can be used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Moreover, the terms "comprises", "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can include other elements not expressly listed or inherent to such process, method, article, or apparatus.

[0037] While the embodiments of the present application have been illustrated and described, it will be understood by those skilled in the art that various changes, modifications, substitutions, and alterations can be made therein without departing from the spirit and scope of the application, which is defined by the appended claims and their equivalents.

Claims

1. An ultra-thin induction cooker structure comprising an induction cooker body (1), characterized in that: The inside of the electromagnetic oven body (1) is fixedly installed with support columns (6), the top of the three support columns (6) is fixedly installed with a coil disc (7), the inside of the electromagnetic oven body (1) is fixedly installed with an aluminum silicate fiber plate (8); The inside of the electromagnetic oven body (1) is fixedly installed with a placing frame (16), the inside of the placing frame (16) is movably installed with an inverter (15), the left side of the electromagnetic oven body (1) is fixedly installed with a power plug (4), the inverter (15) is electrically connected with a heat dissipation air duct (14), the top of the electromagnetic oven body (1) is embedded with a heat conduction plate (2), the inside of the electromagnetic oven body (1) is fixedly installed with a main control circuit board (13).

2. The ultra-thin electromagnetic oven structure according to claim 1, characterized in that: The inside of the electromagnetic oven body (1) is fixedly installed with a fixed support (9), the bottom of the fixed support (9) is fixedly installed with a motor (10), the outer surface of the motor (10) is fixedly installed with a fan blade (11), the bottom of the electromagnetic oven body (1) is provided with a second heat dissipation hole (12), the inside of the electromagnetic oven body (1) is provided with a heat dissipation air duct (14).

3. The ultra-thin electromagnetic oven structure according to claim 1, characterized in that: The bottom of the electromagnetic oven body (1) is fixedly installed with a support base (3), and the support base (3) presents four shapes of the same size.

4. The ultra-thin electromagnetic structure of claim 1, wherein: The outside of the electromagnetic oven body (1) is provided with a first heat dissipation hole (5), and the first heat dissipation hole (5) presents a linear array form.

5. The ultra-thin electromagnetic structure of claim 1, wherein: The electromagnetic oven body (1) and the placing frame (16) are fixedly installed with a reinforcing rib (17) at the included angle, and the reinforcing rib (17) presents a ladder shape.