Folding induction cooker

By designing a foldable induction cooker that can be moved and unfolded or stored, combined with an adapter rod and an induction component, the problem of existing induction cookers having only one cooking position and being unable to be used individually after being stored is solved. This allows for flexible switching between dual and single cookers, improving usability and space utilization.

CN223992266UActive Publication Date: 2026-03-13广东尚朋堂科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-17
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

Existing induction cookers generally only have one cooking position, which cannot meet the diverse cooking needs of users. Furthermore, existing folding induction cookers cannot be used as single-burner induction cookers when stored, resulting in low flexibility of use.

Method used

A folding induction cooker comprising a first cooker body and a second cooker body was designed. It can be unfolded or folded by means of a connecting rod. Combined with the sensing status of the induction component, it can realize dual-cooker or single-cooker cooking control. The power supply is ensured by the wire passage cavity inside the connecting rod.

Benefits of technology

It enables flexible switching between dual and single burners to meet the cooking needs of different users, improves the flexibility of use, reduces space occupation, and ensures the stable and safe use of the induction cooker.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a folding induction cooker, which belongs to the technical field of cooking equipment, and comprises a first cooker body and a second cooker body, a switching rod and an electric induction assembly are arranged between the first cooker body and the second cooker body, a wire passing cavity for an electric lead to pass through is arranged in the switching rod, and the first cooker body and the second cooker body are electrically connected through the electric lead. And the first furnace body and the second furnace body are mutually inducted through the electric induction assembly when being unfolded or folded through translation type mutual unfolding or folding matching of the adapter rods. The first stove body and the second stove body of the structure can be mutually unfolded or folded in a translation mode to be matched, so that a user can conveniently achieve double-stove cooking or single-stove cooking or storage, the use requirements of different users are met, an electric wire can pass through the wire passing cavity in the switching rod, and it is ensured that the first stove body and the second stove body are stably and safely used; by means of the electric induction function of the electric induction assembly, the induction cooker can induce the unfolding or folding state between the first cooker body and the second cooker body, and then control over double-cooker or single-cooker cooking is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of cooking equipment technology, specifically a folding induction cooker. Background Technology

[0002] Induction cookers are common household appliances. When in use, an alternating current is passed through the electromagnetic coil, which generates an alternating magnetic field around the coil. Most of the magnetic field lines pass through the metal pot, generating a large number of eddy currents in the bottom of the pot, thus producing the heat required for cooking.

[0003] Current induction cookers generally only have one cooking position, which cannot meet users' cooking needs. While dual-burner induction cookers have been added to meet this demand, they are bulky, take up valuable space, and are not easily stored. To address this, researchers have developed solutions, such as the foldable dual-burner induction cooker disclosed in Chinese utility model patent CN202220596521.8, the multi-functional foldable integrated pot disclosed in Chinese utility model patent CN202320236671.2, the dual-burner foldable induction cooker disclosed in Chinese utility model patent CN202323228476.4, and the foldable induction cooker disclosed in Chinese utility model patent CN202420573556.9. However, these existing technologies can only be unfolded or folded with relative hinges, and cannot be used as a single-burner induction cooker when folded, resulting in low flexibility. Therefore, further improvements are necessary. Utility Model Content

[0004] The present invention aims to provide a folding induction cooker to overcome the shortcomings of the prior art.

[0005] A folding induction cooker designed for this purpose includes a first cooker body and a second cooker body. A connecting rod and an induction component are provided between the first cooker body and the second cooker body. The connecting rod has a wire passage cavity for the passage of electrical wires. The first cooker body and the second cooker body are electrically connected through the electrical wires and can be unfolded or folded together by sliding the connecting rod. The first cooker body and the second cooker body are mutually sensed by the induction component when unfolded or folded.

[0006] The adapter rods are rotatably engaged with the outer sides of the first furnace body and the second furnace body, respectively. The second furnace body is laterally unfolded on the outside of the first furnace body, and the second furnace body is laterally stacked and stored on top of the first furnace body.

[0007] The induction component includes a magnetic induction switch and a magnetic induction element, which are respectively disposed on the first furnace body and the second furnace body. When the first furnace body and the second furnace body are unfolded, the magnetic induction switch and the magnetic induction element are magnetically separated. When the first furnace body and the second furnace body are retracted, the magnetic induction switch and the magnetic induction element are magnetically engaged.

[0008] The first furnace body and the second furnace body are respectively provided with a first coil and a second coil. The first furnace body or the second furnace body is provided with a main control board, which is electrically connected to the first coil and the second coil through the electrical wire.

[0009] The main control board is on the first furnace body, the magnetic induction switch is a Hall element and is disposed on the first furnace body and electrically connected to the main control board, and the magnetic induction element is a magnet and is disposed on the second furnace body.

[0010] A control panel is provided on the first furnace body or the second furnace body, and the main control board is electrically connected to the control panel through the wire.

[0011] The first furnace body is provided with a control area, and the control panel is fixedly installed on the control area.

[0012] The control area protrudes from the front of the first furnace body and its control surface is inclined. The control panel is also inclined in relation to the control area. The second furnace body is located behind the control area when stacked and stored.

[0013] The first furnace body has a first furnace body rotating hole on its outer side wall, and the second furnace body has a second furnace body rotating hole on its outer side wall. The adapter rod has a rotating shaft at each end and rotates on the first furnace body rotating hole and the second furnace body rotating hole respectively through the rotating shaft.

[0014] The adapter rod has adapter rod wire passage holes at both ends on one side, which are connected to the wire passage cavity. The rotating shaft is set on the adapter rod wire passage hole by snap-fit ​​or fastener. The rotating shaft is also provided with a rotating shaft wire passage hole, which corresponds to the adapter rod wire passage hole. The electrical wire passes through the first furnace body rotating hole, the adapter rod wire passage hole, the rotating shaft wire passage hole, and the second furnace body rotating hole.

[0015] Through the structural improvement described above, this utility model utilizes the connecting rod to enable the first and second oven bodies to be horizontally extended or folded together. This allows users to horizontally extend the first and second oven bodies for dual-oven cooking, or horizontally fold them for single-oven cooking or storage, thereby greatly satisfying the needs of different users and improving the product's flexibility.

[0016] Furthermore, the adapter rod is equipped with a power supply wire passing through the wiring cavity, so that the first furnace body and the second furnace body are not affected by power supply when unfolded or stored, ensuring the stable and safe use of the first furnace body and the second furnace body.

[0017] In addition, the induction function of the induction component is utilized to enable the induction cooker to sense the unfolded or retracted state between the first and second cooktops, thereby realizing the control of dual-cooker or single-cooker cooking, which is highly practical. Attached Figure Description

[0018] Figure 1 This is an exploded structural diagram of an embodiment of the present invention.

[0019] Figure 2 This is a schematic diagram of the first and second furnace body storage structures according to an embodiment of the present invention.

[0020] Figure 3 This is a schematic cross-sectional view of the first and second furnace bodies according to an embodiment of the present invention.

[0021] Figure 4 This is a schematic diagram of the unfolded structure of the first and second furnace bodies according to an embodiment of the present invention.

[0022] Figure 5 This is a schematic diagram of the unfolded cross-sectional structure of the first and second furnace bodies according to an embodiment of the present invention.

[0023] Figure 6 This is an exploded structural diagram of the first furnace body according to an embodiment of the present invention.

[0024] Figure 7 This is a schematic diagram of the exploded structure of the second furnace body according to an embodiment of the present invention.

[0025] Figure 8 This is an exploded view of the adapter rod according to an embodiment of the present invention.

[0026] Figure 9 This is an exploded view of the adapter rod according to another embodiment of the present invention. Detailed Implementation

[0027] To make the above-mentioned objects, features, and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a full understanding of this utility model. However, this utility model can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this utility model. Therefore, this utility model is not limited to the specific embodiments disclosed below.

[0028] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0029] See Figures 1-9 This folding induction cooker includes a first cooker body 100 and a second cooker body 200. A connecting rod 1 and an induction component are provided between the first cooker body 100 and the second cooker body 200. The connecting rod 1 has a wire passage cavity for the electric wire to pass through. The first cooker body 100 and the second cooker body 200 are electrically connected by an electric wire and can be unfolded or folded together by the connecting rod 1. The first cooker body 100 and the second cooker body 200 sense each other when unfolded or folded.

[0030] This embodiment utilizes the connecting rod 1 to enable the first oven body 100 and the second oven body 200 to be extended or folded together in a translational manner. This allows users to extend the first oven body 100 and the second oven body 200 to achieve dual-oven cooking, and to fold them up to achieve single-oven cooking or storage. This greatly satisfies the usage needs of different users and improves the product's flexibility.

[0031] When users want to cook hot pot, existing induction cookers can only use a divided pot. However, when both sides of the divided pot are filled with water and ingredients, it is easy for the contents to overflow, causing flavors to mix. But in this embodiment, the first cooker body 100 and the second cooker body 200 can be moved and unfolded, and different pots can be placed on the first cooker body 100 and the second cooker body 200 respectively, so that different flavors of hot pot can be cooked, thereby meeting the different taste needs of different users. After the first cooker body 100 and the second cooker body 200 are moved and stored, the induction cooker can be stored away or used by users as a single-burner induction cooker, which can effectively reduce the space occupation and make it highly flexible in use.

[0032] Furthermore, the adapter rod 1 is equipped with a power supply wire passing through the wiring cavity, so that the first furnace body 100 and the second furnace body 200 are not affected by power supply when unfolded or stored, ensuring the stable and safe use of the first furnace body 100 and the second furnace body 200.

[0033] In addition, by utilizing the induction function of the induction component, the induction cooker can sense the unfolded or retracted state between the first cooker body 100 and the second cooker body 200, thereby realizing the control of dual-cooker or single-cooker cooking, which is highly practical.

[0034] Specifically, the adapter rod 1 rotates and engages with the outer sides of the first furnace body 100 and the second furnace body 200 respectively. The second furnace body 200 is extended outwards in a translational manner on the outside of the first furnace body 100, and the second furnace body 200 is stacked and stored on top of the first furnace body 100 in a translational manner.

[0035] In this embodiment, the second furnace body 200 is located outside the first furnace body 100 after being unfolded, and the two are in a flat and fitted state. After being stored, the second furnace body 200 is located above the first furnace body 100, and the two are in a vertically fitted state.

[0036] The induction component includes a magnetic induction switch 2 and a magnetic induction element 3, which are respectively disposed on the first furnace body 100 and the second furnace body 200. When the first furnace body 100 and the second furnace body 200 are unfolded, the magnetic induction switch 2 and the magnetic induction element 3 are magnetically separated. When the first furnace body 100 and the second furnace body 200 are retracted, the magnetic induction switch 2 and the magnetic induction element 3 are magnetically engaged.

[0037] A first coil 4 and a second coil 5 are respectively installed in the first furnace body 100 and the second furnace body 200. A main control board 6 is installed in the first furnace body 100 or the second furnace body 200. The main control board 6 is electrically connected to the first coil 4 and the second coil 5 through electrical wires.

[0038] The main control board 6 is on the first furnace body 100. The magnetic induction switch 2 is a Hall element and is located on the first furnace body 100 and electrically connected to the main control board 6. The magnetic induction element 3 is a magnet and is located on the second furnace body 200.

[0039] In this embodiment, when the magnetic induction switch 2 and the magnetic induction element 3 are magnetically separated, the magnetic induction switch 2 sends a separation signal to the main control board 6. The main control board 6 receives the separation signal and controls the first coil 4 to be inoperable, while the second coil 5 can be controlled to operate. When the magnetic induction switch 2 and the magnetic induction element 3 are magnetically engaged, the magnetic induction switch 2 sends a magnetic engagement signal to the main control board 6. The main control board 6 receives the magnetic engagement signal and can control the first coil 4 and the second coil 5 to operate individually or simultaneously.

[0040] A control panel 7 is provided on the first furnace body 100 or the second furnace body 200, and the main control board 6 is electrically connected to the control panel 7 via electrical wires.

[0041] Specifically, a control area 8 is provided on the first furnace body 100, and a control panel 7 is fixedly installed on the control area 8.

[0042] Users can control the control panel 7 through the control area 8, and then issue control commands to the main control board 6 through the control panel 7, thereby controlling the operation of the first coil 4 and the second coil 5.

[0043] The control area 8 protrudes from the front of the first furnace body 100 and its control surface is inclined. The control panel 7 is inclined in the same way as the control area 8. The second furnace body 200 is located behind the control area 8 when stacked and stored.

[0044] In this embodiment, since the control panel 7 and the control area 8 are tilted together, it is convenient for the user to operate the control panel 7 and improve the user's convenience. Moreover, since the control area 8 is raised, the second stove body 200 is located behind the control area 8 when stacked and stored. Therefore, the first stove body 100 and the second stove body 200 are stacked and stored together to form a box shape, which is compact in appearance and can ensure the stability of the cookware when placed on the second stove body 200.

[0045] The outer wall of the first furnace body 100 is provided with a first furnace body rotating hole 9, and the outer wall of the second furnace body 200 is provided with a second furnace body rotating hole 10. The two ends of the adapter rod 1 are respectively provided with rotating shafts 11, and can rotate on the first furnace body rotating hole 9 and the second furnace body rotating hole 10 through the rotating shafts 11 respectively.

[0046] In this embodiment, there are two adapter rods 1, which are respectively located on both sides of the first furnace body 100 and the second furnace body 200. The first furnace body rotating hole 9 is provided on the outer wall away from the control area 8, and the second furnace body rotating hole 10 is provided on the outer wall near the control area 8 of the second furnace body 200. This allows the adapter rods 1 to swing as the first furnace body 100 and the second furnace body 200 move, thereby ensuring that the first furnace body 100 and the second furnace body 200 can be deployed or stored more stably.

[0047] The adapter rod 1 has adapter rod wire passage holes 12 at both ends on one side, which are connected to the wire passage cavity. The rotating shaft 11 is set on the adapter rod wire passage hole 12 by snap-fit ​​or fastener. The rotating shaft 11 is also provided with a rotating shaft wire passage hole 13, which corresponds to the adapter rod wire passage hole 12. The wires are passed through the first furnace body rotating hole 9, the adapter rod wire passage hole 12, the rotating shaft wire passage hole 13, and the second furnace body rotating hole 10.

[0048] In this embodiment, the rotating shaft 11 is provided with a snap-fit ​​part 14, and is snapped onto the adapter rod wire hole 12 through the snap-fit ​​part 14. The structure is simple and the assembly is convenient.

[0049] The first furnace body 100 is composed of a first outer shell 101, a first panel 102, and a first base plate 103. The first outer shell 101 is open at the top or bottom. The first panel 102 is supported on the top opening of the first outer shell 101, and the first base plate 103 is positioned on the bottom opening of the first outer shell 101. The first panel 102 and the first base plate 103 are then fixed together by fasteners. Additionally, a first coil 4 is fixed to the first base plate 103 by fasteners. A control area 8 protrudes from the front of the first outer shell 101. After assembly, the first panel 102 is located behind the control area 8. The main control board 6 is fixed to the first base plate 103 by fasteners. A first furnace body rotating hole 9 is formed on the first outer shell 101. Several first heat dissipation holes 104 for heat dissipation are also provided on the first outer shell 101 and the first base plate 103. The cookware is placed on the first panel 102 and heated by the first coil 4. A magnetic induction switch 2 is located on the inner wall behind the control area 8.

[0050] The second furnace body 200 consists of a second outer shell 201 and a second panel 202. A second base plate 203 is integrally formed at the bottom of the second panel 202. The top of the second panel 202 is open, and it is supported on the open top of the second outer shell 201 and fixed to the second base plate 203 by fasteners. Additionally, a second coil 5 is fixed to the second base plate 203 by fasteners. A rotating hole 10 is formed in the second outer shell 201, and several second heat dissipation holes 204 are also provided on the second outer shell 201 for heat dissipation. The cookware is placed on the second panel 202 and heated by the second coil 5. The second outer shell 201 has a positioning groove 205 on its inner wall near the first furnace body 100. A magnetic induction element 3 is disposed in the positioning groove 205. When the second furnace body 200 is moved and stacked for storage, it is positioned and supported on the first panel 102. Simultaneously, the magnetic induction switch 2 and the magnetic induction element 3 are magnetically coupled.

[0051] The above describes the preferred embodiments of this utility model, illustrating and describing its basic principles, main features, and advantages. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made without departing from the spirit and scope of this utility model, and all such changes and modifications fall within the scope of protection of this utility model as defined by the appended claims and their equivalents.

Claims

1. A folding electromagnetic oven comprising a first oven body (100) and a second oven body (200), characterized in that: The first furnace body (100) and the second furnace body (200) are provided with an adapter rod (1) and an electric induction assembly, the adapter rod (1) is internally provided with a wire passing cavity for electric wires to pass through, the first furnace body (100) and the second furnace body (200) are electrically connected through the electric wires and are expanded or accommodated in a translational mode through the adapter rod (1), and the first furnace body (100) and the second furnace body (200) are inductively coupled to each other through the electric induction assembly when being expanded or accommodated.

2. The folding electromagnetic oven according to claim 1, characterized in that: The adapter rod (1) is rotationally coupled to the outer sides of the first furnace body (100) and the second furnace body (200), the second furnace body (200) is expanded in a translational mode outside the first furnace body (100), and the second furnace body (200) is accommodated in a translational mode on top of the first furnace body (100).

3. The folding electromagnetic oven according to claim 1, characterized in that: The electric induction assembly comprises a magnetic induction switch (2) and a magnetic induction piece (3), the magnetic induction switch (2) and the magnetic induction piece (3) are arranged on the first furnace body (100) and the second furnace body (200) respectively, the magnetic induction switch (2) and the magnetic induction piece (3) are magnetically separated from each other when the first furnace body (100) and the second furnace body (200) are expanded, and the magnetic induction switch (2) and the magnetic induction piece (3) are magnetically coupled to each other when the first furnace body (100) and the second furnace body (200) are accommodated.

4. The folding electromagnetic oven according to claim 3, characterized in that: The first furnace body (100) and the second furnace body (200) are respectively provided with a first coil disc (4) and a second coil disc (5), and a main control board (6) is arranged in the first furnace body (100) or the second furnace body (200), and the main control board (6) is electrically connected to the first coil disc (4) and the second coil disc (5) through electric wires.

5. The folding electromagnetic oven according to claim 4, characterized in that: The main control board (6) is arranged on the first furnace body (100), the magnetic induction switch (2) is a Hall element and is arranged on the first furnace body (100) and electrically connected to the main control board (6), and the magnetic induction piece (3) is a magnet and is arranged on the second furnace body (200).

6. The folding electromagnetic oven according to claim 4, characterized in that: A control panel (7) is arranged on the first furnace body (100) or the second furnace body (200), and the main control board (6) is electrically connected to the control panel (7) through electric wires.

7. The folding electromagnetic stove according to claim 6, characterized in that: A control area (8) is arranged on the first furnace body (100), and the control panel (7) is fixedly arranged on the control area (8).

8. The folding electromagnetic oven according to claim 7, characterized in that: The control area (8) is protruded on the front side of the first furnace body (100) and is arranged in an inclined manner, the control panel (7) is arranged in an inclined manner corresponding to the control area (8), and the second furnace body (200) is located on the rear side of the control area (8) when being accommodated in a stacked mode.

9. The folding electromagnetic stove as claimed in claim 2, wherein: The outer side wall of the first furnace body (100) is provided with a first furnace body rotating hole (9), the outer side wall of the second furnace body (200) is provided with a second furnace body rotating hole (10), and the rotating rod (1) is provided with rotating shafts (11) at both ends and rotates on the first furnace body rotating hole (9) and the second furnace body rotating hole (10) through the rotating shafts (11).

10. The folding electromagnetic oven according to claim 9, characterized in that: The rotating rod (1) is provided with rotating rod wire passing holes (12) at both ends on one side, which are in communication with the wire passing cavities, the rotating shafts (11) are arranged on the rotating rod wire passing holes (12) through clamping or fasteners, the rotating shafts (11) are further provided with rotating shaft wire passing holes (13), the rotating shaft wire passing holes (13) correspond to the rotating rod wire passing holes (12), and the electric wires are arranged on the first furnace body rotating hole (9), the rotating rod wire passing holes (12), the rotating shaft wire passing holes (13), and the second furnace body rotating hole (10).

Citation Information

Patent Citations

  • Foldable double-stove induction cooker

    CN216868564U

  • Multifunctional folding integrated pot

    CN219813793U

  • Double-burner folding induction cooker

    CN221403133U

  • Foldable induction cooker

    CN222068591U