Cookware module and cooking equipment

By adopting an integrated frame and coaxial mounting structure in the cookware module, the problem of unstable flipping of the cookware module was solved, achieving higher stability and longer motor life, while improving production efficiency.

CN224125744UActive Publication Date: 2026-04-17ZHUHAI UNICOOK TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHUHAI UNICOOK TECHNOLOGY CO LTD
Filing Date
2025-03-12
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

In existing cooking equipment, the coaxiality of the rotating shaft hole of the pot module is poor, which leads to unstable flipping and affects the stability of the pot module and the life of the flipping motor.

Method used

The design adopts an integrated frame structure. By setting coaxial mounting structures on opposite sides of the frame, combined with power components and limiting structures, the coaxiality and stability of the cookware module and the frame are ensured, simplifying the welding operation.

Benefits of technology

It improves the reliability and stability of the pot module's tilting motion relative to the frame, reduces pot tilting instability and drum wobbling, extends the service life of the pot tilting motor, simplifies the production process, and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a pot module and cooking equipment. The cookware module comprises a first module and cookware installed on the first module, the first module comprises an integrally-formed frame body, installation structures are coaxially arranged on the two opposite sides of the frame body, and the first module is configured to be connected with a rack of the cooking equipment in an overturning mode through the installation structures so as to drive the cookware to conduct overturning movement relative to the rack. Therefore, the coaxiality of the two mounting structures can be improved, the reliability and the stability of the overturning movement of the cookware module relative to the rack are improved, the tailor-welding operation is simplified, and the production efficiency of the frame body can be improved.
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Description

Technical Field

[0001] This utility model relates to the field of kitchen equipment technology, and in particular to a cookware module and cooking equipment. Background Technology

[0002] Current cooking equipment, such as drum stir-fry machines, uses a drum-shaped cookware module. The drum part is mostly a welded structure, such as the inner frame of the drum being welded together and then welded to the outer frame. The pivot holes connecting the cookware module to the frame of the cooking equipment are located on separate welded plates on both sides of the inner frame of the drum. Due to the welded connection, there is a problem of poor coaxiality of the pivot holes on both sides, which affects the stability of the cookware module's flipping operation. This can easily lead to problems such as unstable flipping, drum nodding and shaking, and reduced lifespan of the flipping motor. Utility Model Content

[0003] In view of this, the present invention provides a cookware module and a cooking device, which can improve the coaxiality of the two mounting structures, improve the reliability and stability of the cookware module's flipping motion relative to the frame, and simplify the welding operation, thereby improving the production efficiency of the frame.

[0004] An embodiment of the first aspect of this utility model provides a cookware module for a cooking device, comprising: a first module and a cookware mounted on the first module. The first module includes an integrally formed frame, with mounting structures coaxially arranged on opposite sides of the frame. The first module is configured to be flipped and connected to the frame of the cooking device via the mounting structures, so as to drive the cookware to flip relative to the frame.

[0005] Furthermore, the frame includes two side panels arranged opposite each other, and a bottom plate located at the bottom of the side panels. The mounting structure is located on the side panels, and the cookware is located above the bottom plate.

[0006] Furthermore, the first module also includes a power assembly connected to the bottom of the base plate. The power assembly includes a rotating pot drive assembly, which includes a first drive unit and a first transmission unit. The first drive unit is connected to the pot through the first transmission unit, and the angle between the output shaft of the first drive unit and the rotating shaft of the pot is in the range of 90° to 180°.

[0007] Furthermore, the first transmission unit includes a first bevel gear and a second bevel gear that mesh with each other. The first bevel gear is poweredly connected to the first drive unit, and the second bevel gear is connected to the cookware.

[0008] Furthermore, one of the second bevel gear and the cookware is provided with an adsorption element, and the other is provided with an adsorption element. The adsorption element and the adsorption element attract each other to limit the relative movement of the cookware and the second bevel gear.

[0009] Furthermore, the adsorbed part is provided with a positioning part, and the second bevel gear is provided with a limiting part. The positioning part and the limiting part cooperate to limit the relative circumferential movement of the cookware and the second bevel gear.

[0010] Furthermore, the power assembly also includes a mounting plate and a stirring drive assembly. The stirring drive assembly and the rotating pot drive assembly are mounted on the mounting plate, which is connected to the frame. The pot is equipped with a stirring assembly, which includes a stirring shaft that passes through the pot and rotates relative to it. The pot is connected to the first transmission unit so that the stirring shaft is poweredly connected to the stirring drive assembly. The stirring drive assembly includes a second drive unit and a second transmission unit. The second drive unit is connected to the stirring shaft through the second transmission unit, and the angle between the output shaft of the second drive unit and the stirring shaft is in the range of 90° to 180°.

[0011] Furthermore, the first module also includes a support plate, which is located on the same side of the base plate. The support plate and the frame together form a first mounting cavity, and the cookware is located inside the first mounting cavity. The first module also includes a heating plate assembly located inside the first mounting cavity. The heating plate assembly is connected to the support plate and located between the cookware and the base plate. The first module also includes a cooling fan and an air duct assembly. The cooling fan and the heating plate assembly are located on both sides of the base plate. The air duct assembly is located inside the first mounting cavity and is connected to the base plate and configured to guide the airflow discharged by the cooling fan. The first module also includes a mating assembly installed at the mounting structure. The first module is flipped and connected to the frame through the mating assembly. The first module also includes a controller assembly. The controller assembly and the cookware are located on both sides of the base plate. The controller assembly is electrically connected to the power assembly.

[0012] Furthermore, the cookware module also includes: a top plate assembly and a connecting plate. The top plate assembly includes a top plate, a first support wheel and a second support wheel. The top plate is arranged opposite to the bottom plate and is detachably connected to the top of the side plate through the connecting plate. A clearance opening for the cookware is provided in the middle of the top plate. The first support wheel is fixedly connected to the top plate and faces the clearance opening. The second support wheel is movably connected to the top plate and faces the clearance opening. The outer wall of the cookware is configured to contact the first support wheel and the second support wheel.

[0013] Furthermore, the cookware module also includes: a first housing, which surrounds the outside of the frame, and the two ends of the first housing are detachably connected to the bottom plate and the top plate, respectively, with the cooperating components passing through the first housing;

[0014] The second housing and the side plates are distributed on both sides of the base plate. The second housing is detachably connected to the base plate. The first module on the side of the base plate away from the side plates is located inside the second housing. A ventilation structure is provided on the second housing. The ventilation structure includes ventilation holes provided on the second housing, or the ventilation structure includes ventilation grilles installed on the second housing.

[0015] A second aspect of this utility model provides a cooking device, including: a frame, and a cookware module according to any one of the first aspects.

[0016] The cookware module and cooking equipment provided in this embodiment of the utility model include a first module and a cookware. The cookware is mounted on the first module, which includes a frame. The first module is connected to the frame of the cooking equipment via mounting structures coaxially arranged on opposite sides of the frame, allowing the first module to rotate relative to the frame, thereby causing the cookware mounted on the first module to rotate relative to the frame. By making the frame a one-piece molded structure, the coaxiality of the mounting structures on opposite sides of the frame can be improved, enhancing the reliability and stability of the cookware module's rotation relative to the frame, reducing instability during tilting and roller wobbling, and extending the service life of the tilting motor. Simultaneously, it simplifies the welding process of the frame, improving the production efficiency of the frame.

[0017] The above description is merely an overview of the technical solution of this utility model. In order to better understand the technical means of this utility model and to implement it in accordance with the contents of the specification, and to make the above and other objects, features and advantages of this utility model more obvious and understandable, specific embodiments of this utility model are given below. Attached Figure Description

[0018] Various other advantages and benefits will become apparent to those skilled in the art upon reading the following detailed description of preferred embodiments. The accompanying drawings are for illustrative purposes only and are not intended to limit the scope of the invention. Furthermore, the same reference numerals denote the same parts throughout the drawings. Wherein:

[0019] Figure 1 One of the structural schematic diagrams of the frame provided in an embodiment of the present invention is shown;

[0020] Figure 2 One of the structural schematic diagrams of the power assembly provided in an embodiment of the present invention is shown;

[0021] Figure 3 A second schematic diagram of the power assembly provided in an embodiment of this utility model is shown;

[0022] Figure 4 A schematic diagram of the structure of the first module provided in an embodiment of the present invention is shown;

[0023] Figure 5 One of the structural schematic diagrams of the cookware provided in the embodiment of this utility model is shown;

[0024] Figure 6 A second schematic diagram of the structure of the cookware provided in an embodiment of this utility model is shown;

[0025] Figure 7 One of the structural schematic diagrams of the top plate assembly provided in an embodiment of the present invention is shown;

[0026] Figure 8 One of the partial structural schematic diagrams of the cookware module provided in an embodiment of the present invention is shown;

[0027] Figure 9 This is a second schematic diagram showing a partial structure of the cookware module provided in an embodiment of the present invention;

[0028] Figure 10 One of the structural schematic diagrams of the second housing provided in an embodiment of the present invention is shown;

[0029] Figure 11 The third schematic diagram shows a partial structural diagram of the cookware module provided in an embodiment of this utility model.

[0030] in, Figures 1 to 11 The correspondence between the reference numerals and component names in the attached drawings is as follows:

[0031] 100 First Module, 110 Frame, 111 Side Plate, 112 Mounting Structure, 113 Base Plate, 120 Power Component, 121 Rotary Pot Drive Component, 1211 First Drive Unit, 1212 First Transmission Unit, 1213 First Bevel Gear, 1214 Second Bevel Gear, 1215 Adsorption Component, 1216 Limiting Part, 122 Mounting Plate, 123 Stirring Drive Component, 1231 Second Drive Unit, 1232 Second Transmission Unit, 130 Support Plate 140 Heating plate assembly, 150 Cooling fan, 160 Air duct assembly, 170 Matching assembly, 180 Controller assembly, 190 Partition, 200 Cookware, 210 Adsorbed part, 211 Positioning part, 220 Stirring shaft, 230 Stirring part, 300 Top plate assembly, 310 Top plate, 311 Circumvention port, 320 First support wheel, 330 Second support wheel, 400 Connecting plate, 500 First housing, 600 Second housing, 610 Ventilation grille. Detailed Implementation

[0032] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that, unless otherwise specified, the embodiments of this utility model and the features thereof can be combined with each other.

[0033] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.

[0034] The following reference Figures 1 to 11 The present invention provides a cookware module and a cooking device according to some embodiments. The cookware module is applied to the cooking device, which may be a stir-fry machine or other kitchen equipment; specifically, the cookware module may be a roller structure.

[0035] like Figure 1 , Figure 5 and Figure 8 As shown, an embodiment of the first aspect of this utility model provides a cookware module for a cooking device, including: a first module 100 and a cookware 200 mounted on the first module 100. The first module 100 includes an integrally formed frame 110, and mounting structures 112 are coaxially arranged on opposite sides of the frame 110. The first module 100 is configured to be flipped and connected to the frame of the cooking device via the mounting structures 112, so as to drive the cookware 200 to flip relative to the frame.

[0036] The cookware module provided in this embodiment of the present invention includes a first module 100 and a cookware 200. The cookware 200 is mounted on the first module 100, so that the movement of the first module 100 can drive the cookware 200 to move synchronously. The first module 100 includes a frame 110, and the first module 100 is flip-connected to the frame of the cooking equipment (not shown in the figure) via mounting structures 112 coaxially arranged on opposite sides of the frame 110. This allows the first module 100 to rotate relative to the frame, thereby driving the cookware 200 mounted on the first module 100 to rotate relative to the frame. This allows the cookware 200 to rotate to a suitable position relative to the frame, meeting the needs of the cooking station, serving station, and pot-washing station of the cooking equipment.

[0037] In related technologies, the inner frame of the cookware module is usually a welded structure. For example, the mounting structure in related technologies is located on an independent sheet metal and is welded to the sheet metal parts on both sides of the inner frame. As a result, the coaxiality of the two mounting structures is low, which can easily lead to problems such as unstable turning of the pot, nodding and shaking of the roller, and reduced life of the turning motor.

[0038] Therefore, in this embodiment, by setting the frame 110 as a one-piece molded structure, the coaxiality of the mounting structures 112 located on opposite sides of the frame 110 can be improved, thereby improving the reliability and stability of the pot module's flipping movement relative to the frame, reducing instability during pot flipping and roller wobbling, and extending the service life of the pot flipping motor. Simultaneously, compared to a welded inner frame, the one-piece molded frame 110 simplifies the welding operation, facilitates assembly and manufacturing, improves production efficiency, saves costs, enhances the reliability of the frame 110, improves the stability of pot flipping, and also improves the appearance quality of the frame 110.

[0039] Specifically, the frame 110 can be configured as a die-cast part, injection-molded part, or sheet metal stretch-formed part to meet the production needs of different materials and processes for the frame. Furthermore, the materials and processing techniques of die-casting, injection-molded, and sheet metal stretch-formed parts are less expensive than welding, making them suitable for widespread application. Specifically, the frame 110 can be integrally formed using processes such as low-pressure die casting, gravity casting, high-pressure die casting, and lost-wax casting.

[0040] The mounting structure 112 is mounted on the frame 110. The mounting structure 112 can be integrally formed with the frame 110, which simplifies the processing steps of the mounting structure 112, further improves production efficiency, and saves costs.

[0041] Among them, such as Figure 1 As shown, the mounting structure 112 can be a through-hole structure, which can be integrally formed with the frame 110, making it convenient to process and easy to implement.

[0042] like Figure 1 As shown, in some possible embodiments provided by this utility model, the frame 110 includes two side plates 111 arranged opposite to each other, and a bottom plate 113 located at the bottom of the side plates 111. The mounting structure 112 is located on the side plates 111, and the pot 200 is located above the bottom plate 113.

[0043] In this embodiment, the two side plates 111 and the bottom plate 113 are processed into a frame 110 through an integral molding process. The structure is simple and easy to implement, simplifying the welding operation and improving the production efficiency of the frame 110. Since the two side plates 111 are arranged opposite each other, by arranging the mounting structure 112 on the side plates 111, that is, arranging one mounting structure 112 on each side plate 111, the two mounting structures 112 can be arranged opposite each other. Furthermore, this arrangement helps to ensure that the two mounting structures 112 have a high degree of coaxiality, improves the reliability and stability of the pot module's flipping movement relative to the frame, reduces the phenomenon of unstable pot flipping and roller wobbling, and extends the service life of the pot flipping motor.

[0044] By positioning the cookware 200 above the base plate 113, the cookware 200 can be housed within the frame 110 formed by the two side plates 111 and the base plate 113. In other words, the frame 110 provides space for the cookware 200, offering good protection. It is understood that in some examples, the frame 110 can provide space for the cookware 200 to move, allowing it to rotate relative to the first module 100.

[0045] like Figure 2 , Figure 3 and Figure 4As shown, in some possible embodiments provided by this utility model, the first module 100 further includes a power component 120, which is connected to the bottom of the base plate 113. The power component 120 includes a pot drive component 121, which includes a first drive part 1211 and a first transmission part 1212. The first drive part 1211 is connected to the pot 200 through the first transmission part 1212. The angle between the output shaft of the first drive part 1211 and the rotation shaft of the pot 200 is in the range of 90° to 180°.

[0046] In this embodiment, by distributing the power assembly 120 and the cookware 200 on both sides of the base plate 113, the frame 110 above the base plate 113 has a large space to accommodate the cookware 200, providing ample space for the cookware 200 to move smoothly. The first drive unit 1211 of the rotating pot drive assembly 121 is connected to the cookware 200 via the first transmission unit 1212. When the first drive unit 1211 operates, the first transmission unit 1212 drives the cookware 200 to rotate relative to the frame 110, thereby improving the uniformity of heating of the cookware 200 and enhancing the cooking quality.

[0047] The angle between the output shaft of the first drive unit 1211 and the rotating shaft of the pot 200 is in the range of 90° to 180°, which can meet the needs of different installation methods and different installation angles of the first drive unit 1211.

[0048] Among them, such as Figure 2 , Figure 3 and Figure 4 As shown, the angle between the output shaft of the first drive unit 1211 and the rotating shaft of the cookware 200 is 90°. This can be understood as the first drive unit 1211 being horizontally mounted relative to the rotating shaft of the cookware 200. For example, if the rotating shaft of the cookware 200 is arranged vertically, the output shaft of the first drive unit 1211 is arranged horizontally. This arrangement helps to reduce the vertical dimension of the first drive unit 1211, thereby reducing the space occupied by the first drive unit 1211 in the vertical direction and saving space in the vertical direction of the cookware module. This can meet the design requirements of a compact structure and small size of the cookware module in the vertical direction.

[0049] The angle between the output shaft of the first drive unit 1211 and the rotating shaft of the cookware 200 is 180°. This can be understood as the first drive unit 1211 being installed vertically relative to the rotating shaft of the cookware 200. For example, if the rotating shaft of the cookware 200 is arranged in a vertical direction, the output shaft of the first drive unit 1211 is also arranged in a vertical direction.

[0050] It is understood that the angle between the output shaft of the first drive unit 1211 and the rotating shaft of the pot 200 can be adjusted to any angle between 90° and 180°, such as 90°, 120°, 150°, 180°, or other angles. Specifically, the first drive unit 1211 can be a motor.

[0051] Furthermore, when the first drive unit 1211 is vertically mounted relative to the pivot of the cookware 200, if the first drive unit 1211 is vertically inverted, the longitudinal space of the cookware module is largely wasted, and the first transmission unit 1212 is difficult to disassemble and maintain at the end of the vertically inverted first drive unit 1211. Therefore, as... Figure 2 , Figure 3 and Figure 6 As shown, in some examples, the first drive unit 1211 is horizontally mounted relative to the rotating shaft of the cookware 200, such as when the rotating shaft of the cookware 200 is arranged vertically and the output shaft of the first drive unit 1211 is arranged horizontally. This reduces the vertical dimension of the first drive unit 1211, thereby reducing the space occupied by the first drive unit 1211 in the vertical direction and saving space in the vertical direction of the cookware module. This meets the design requirements of a compact structure and small size of the cookware module in the vertical direction. Simultaneously, it facilitates the assembly and disassembly of the first drive unit 1211 and the first transmission unit 1212, and facilitates the maintenance of the rotating pot drive assembly 121.

[0052] like Figure 2 As shown, in some possible embodiments provided by this utility model, the first transmission part 1212 includes a first bevel gear 1213 and a second bevel gear 1214 that mesh with each other. The first bevel gear 1213 is poweredly connected to the first drive part 1211, and the second bevel gear 1214 is connected to the cookware 200.

[0053] In this embodiment, the first transmission unit 1212 is a bevel gear structure. Through the meshing of the first bevel gear 1213 and the second bevel gear 1214, power transmission between intersecting shafts can be achieved. For example, power transmission can be achieved between the output shaft of the angled first drive unit 1211 and the rotating shaft of the pot 200, thereby transmitting the power of the first drive unit 1211 to the pot 200. Alternatively, the power of the horizontally mounted first drive unit 1211 can be transmitted to the pot 200 via the bevel gear structure of the first transmission unit 1212, resulting in a simple structure. Simultaneously, the bevel gear structure has the advantages of compact structure, high transmission accuracy, and smooth transmission, which can further reduce the space occupied by the rotating pot drive assembly 121, meeting the design requirements of a compact pot module structure and improving the stability of the rotating pot.

[0054] Specifically, the first bevel gear 1213 and the second bevel gear 1214 are umbrella-type bevel gear transmissions, which saves the longitudinal space of the cookware module.

[0055] like Figure 3 and Figure 6 As shown, in some possible embodiments provided by this utility model, one of the second bevel gear 1214 and the cookware 200 is provided with an adsorption member 210, and the other is provided with an adsorption member 1215. The adsorption member 210 and the adsorption member 1215 are attracted to each other to limit the relative movement of the cookware 200 and the second bevel gear 1214.

[0056] Therefore, through the adsorption component 210 and the adsorption component 1215, the second bevel gear 1214 and the cookware 200 can be quickly disassembled and assembled, which is convenient for disassembly and assembly, maintenance and cleaning.

[0057] The adsorbed component 210 can be disposed on the second bevel gear 1214, and the adsorbed component 1215 can be disposed on the cookware 200, or, as... Figure 6 As shown, the adsorbed component 210 can be disposed on the cookware 200, such as... Figure 3 As shown, the adsorption element 1215 can be disposed on the second bevel gear 1214. In another embodiment of this utility model, the adsorption element 1215 can also be disposed inside the second bevel gear 1214, as long as the second bevel gear 1214 can be attracted to the pot 200.

[0058] The attracted component 210 and the attracted component 1215 can both be magnets, or one of the attracted component 210 and the attracted component 1215 can be a magnet and the other is a ferromagnetic material component.

[0059] The adsorbed component 210 and the adsorbent component 1215 attract each other to limit the relative movement of the cookware 200 and the second bevel gear 1214. This can be understood as the adsorbed component 210 and the adsorbent component 1215 attracting each other, using the adsorption force to limit the relative axial movement of the cookware 200 and the second bevel gear 1214, so that the two can be reliably connected and adsorbed together. Along the axial direction of the rotation axis of the cookware 200 and the rotation axis of the second bevel gear 1214, the cookware 200 and the second bevel gear 1214 will not move relative to each other.

[0060] It is understandable that by using external force to pull the cookware 200 and the second bevel gear 1214 in a direction away from each other, when the external force is greater than the adsorption force between the adsorbed part 210 and the adsorption part 1215, the cookware 200 and the second bevel gear 1214 can be separated.

[0061] like Figure 3 and Figure 6As shown, in some possible embodiments provided by this utility model, the adsorbed member 210 is disposed on the cookware 200, the adsorbed member 210 is provided with a positioning part 211, the adsorbed member 1215 is disposed on the second bevel gear 1214, such as the adsorbed member 1215 is disposed inside the second bevel gear 1214, the second bevel gear 1214 is provided with a limiting part 1216, the positioning part 211 and the limiting part 1216 cooperate to limit the relative circumferential movement of the cookware 200 and the second bevel gear 1214. Therefore, when the adsorbed part 210 and the adsorbent part 1215 are attracted to each other, the adsorption force can limit the relative axial movement of the cookware 200 and the second bevel gear 1214. The positioning part 211 and the limiting part 1216 can limit the relative circumferential movement of the cookware 200 and the second bevel gear 1214. This ensures that the cookware 200 and the second bevel gear 1214 can be reliably and stably connected, avoids the possibility of relative jumping or rotation of the cookware 200 and the second bevel gear 1214, improves the reliability and stability of the connection between the cookware 200 and the second bevel gear 1214, and ensures that the cookware 200 can rotate smoothly relative to the first module 100.

[0062] The positioning part 211 and the limiting part 1216 can be a structure with a concave and convex fit. For example, the positioning part 211 includes a concave part and the limiting part 1216 includes a matching convex part, or the positioning part 211 includes a convex part and the limiting part 1216 includes a matching concave part. It is understood that in some examples, the positioning part 211 may include both a concave part and a convex part, and the limiting part 1216 may include a convex part and a concave part that fit with the positioning part 211.

[0063] like Figure 2 , Figure 3 and Figure 4 As shown, in some possible embodiments provided by this utility model, the power assembly 120 further includes a mounting plate 122 and a stirring drive assembly 123. The stirring drive assembly 123 and the rotating pot drive assembly 121 are mounted on the mounting plate 122, and the mounting plate 122 is connected to the frame 110. Thus, through the mounting plate 122, the stirring drive assembly 123 and the rotating pot drive assembly 121 can be treated as a whole and detachably connected to the frame 110, facilitating the maintenance of the stirring drive assembly 123 and the rotating pot drive assembly 121. In other words, in this embodiment, the mounting plate 122, the stirring drive assembly 123, and the rotating pot drive assembly 121 are modularly designed to form the power assembly 120, achieving a detachable connection with the frame 110, which is beneficial to improving maintenance efficiency and meeting the compact layout requirements of the cookware module structure.

[0064] The mounting plate 122 and the frame 110 can be detachably connected. For example, the mounting plate 122 and the frame 110 can be detachably connected by at least one of the following: bolt structure, snap-fit ​​structure, plug-in structure, tenon structure, and magnetic structure.

[0065] The rotary pot drive assembly 121 and the frame 110 can be detachably connected. For example, the first drive part 1211 of the rotary pot drive assembly 121 can be detachably connected by at least one of bolt structure, snap-fit ​​structure, plug-in structure, and tenon structure.

[0066] like Figure 5 and Figure 6 As shown, in the above embodiment, the cookware 200 is equipped with a stirring assembly, which includes a stirring shaft 220 that passes through the cookware 200 and is rotatably disposed relative to the cookware 200. The cookware 200 is connected to the first transmission unit 1212 in such a way that the stirring shaft 220 is poweredly connected to the stirring drive assembly 123. That is, during the assembly and connection of the cookware 200 and the first transmission unit 1212, the assembly and connection of the stirring shaft 220 and the stirring drive assembly 123 can be realized simultaneously. Thus, through the same assembly operation, the power connection between the cookware 200 and the first transmission unit 1212, and the stirring shaft 220 and the stirring drive assembly 123 can be realized, simplifying the assembly operation of the cookware module and improving the assembly efficiency and accuracy of the cookware module.

[0067] The stirring drive assembly 123 is connected to the stirring shaft 220. The stirring drive assembly 123 can drive the stirring shaft 220 to rotate. It can be understood that the pot 200 is provided with a stirring element 230 connected to the stirring shaft 220. The rotation of the stirring shaft 220 will drive the stirring element 230 to rotate synchronously, so as to stir the food in the pot 200 and improve the cooking quality.

[0068] like Figure 2 , Figure 3 and Figure 6 As shown, in the above embodiment, the stirring drive assembly 123 includes a second drive unit 1231 and a second transmission unit 1232. The second drive unit 1231 is connected to the stirring shaft 220 via the second transmission unit 1232. Thus, the power of the second drive unit 1231 is transmitted to the stirring shaft 220 via the second transmission unit 1232, thereby enabling the stirring shaft 220 to rotate relative to the pot 200. The included angle between the output shaft of the second drive unit 1231 and the stirring shaft 220 ranges from 90° to 180°, which can meet the requirements of different installation methods and angles for the second drive unit 1231.

[0069] The angle between the output shaft of the second drive unit 1231 and the stirring shaft 220 is 90°. This can be understood as the second drive unit 1231 being horizontally mounted relative to the stirring shaft 220. For example, the stirring shaft 220 and the rotating shaft of the pot 200 are coaxially arranged. For example, the stirring shaft 220 is arranged vertically and the output shaft of the second drive unit 1231 is arranged horizontally. This arrangement helps to reduce the size of the second drive unit 1231 in the vertical direction, reduce the space occupied by the second drive unit 1231 in the vertical direction, save the space of the pot module in the vertical direction, and meet the design requirements of the pot module having a compact structure and small size in the vertical direction.

[0070] The angle between the output shaft of the second drive unit 1231 and the rotating shaft of the pot 200 is 180°. This can be understood as the second drive unit 1231 being vertically installed relative to the stirring shaft 220. That is, the output shaft of the second drive unit 1231 and the stirring shaft 220 are arranged coaxially. For example, if the stirring shaft 220 is arranged in a vertical direction, the output shaft of the second drive unit 1231 is also arranged in a vertical direction.

[0071] It is understood that by adjusting the mounting angle and position of the second drive unit 1231, the angle between the output shaft of the second drive unit 1231 and the rotating shaft of the pot 200 can be any angle between 90° and 180°, such as 90°, 120°, 150°, 180°, or other angles. Specifically, the second drive unit 1231 can be a motor.

[0072] Furthermore, when the second drive unit 1231 is vertically installed relative to the stirring shaft 220, if the second drive unit 1231 is vertically inverted, the longitudinal space of the cookware module is largely wasted, and the second transmission unit 1232 is difficult to disassemble and maintain at the end of the vertically inverted second drive unit 1231. Therefore, as... Figure 2 , Figure 3 and Figure 6 As shown, in some examples, the second drive unit 1231 is horizontally mounted relative to the stirring shaft 220, such as when the stirring shaft 220 is arranged vertically and the output shaft of the second drive unit 1231 is arranged horizontally. This arrangement helps to reduce the vertical dimension of the second drive unit 1231, thereby reducing the space occupied by the second drive unit 1231 in the vertical direction and saving space in the cookware module in the vertical direction. This meets the design requirements of a compact structure and small size of the cookware module in the vertical direction. At the same time, it facilitates the disassembly and assembly of the second drive unit 1231 and the second transmission unit 1232, and facilitates the maintenance of the stirring drive assembly 123.

[0073] In the above embodiment, the second transmission unit includes a worm gear mechanism, that is, the second drive unit 1231 is connected to the stirring shaft 220 through the worm gear mechanism. Since the worm gear mechanism can realize power transmission between intersecting shafts, such as realizing power transmission between the output shaft of the angled second drive unit 1231 and the stirring shaft 220, the power of the second drive unit 1231 is transmitted to the pot 200. For example, the power of the horizontally mounted second drive unit 1231 can be transmitted to the stirring shaft 220 through the worm gear mechanism, which is simple in structure. At the same time, the worm gear mechanism has the advantages of compact structure, high transmission accuracy, and smooth transmission, which can further reduce the space occupied by the stirring drive assembly 123, meet the design requirements of the compact structure of the pot module, and help improve the stability of stirring.

[0074] The stirring drive assembly 123 is detachably connected to the mounting plate 122. For example, the second drive part 1231 of the stirring drive assembly 123 can be detachably connected by at least one of bolt structure, snap-fit ​​structure, plug-in structure, and tenon structure.

[0075] like Figure 4 As shown, in some possible embodiments provided by this utility model, the first module 100 further includes a support plate 130. The support plate 130 and the side plate 111 are located on the same side of the bottom plate 113. The support plate 130 and the frame 110 enclose a first mounting cavity, and the cookware 200 is located in the first mounting cavity. Thus, the support plate 130 and the frame 110 provide good protection for the cookware 200, which helps to extend the service life of the cookware 200. At the same time, they provide a space for the cookware 200 to accommodate and move, so that the cookware 200 can rotate smoothly in the first mounting cavity and realize the rotating pot movement.

[0076] The support plate 130 is located between the two side plates 111 and is connected to the two side plates 111 and the bottom plate 113. This improves the strength and stability of the frame 110, providing reliable support for the cookware 200 and ensuring that the cookware 200 can move stably.

[0077] Specifically, the support plate 130 can be detachably connected to the two side plates 111 and the bottom plate 113 by at least one of the following structures: bolt structure, snap-fit ​​structure, tenon structure, and plug-in structure, so as to facilitate disassembly and assembly.

[0078] In the above embodiment, the first module 100 further includes a heating plate assembly 140 located within the first mounting cavity. The heating plate assembly 140 is connected to the support plate 130 and located between the cookware 200 and the bottom plate 113. The heating plate assembly 140 is positioned to heat the cookware 200 to achieve the cooking function. By connecting the heating plate assembly 140 to the support plate 130, the support plate 130 can provide stable support for the heating plate assembly 140, and the heating plate assembly 140 is located on the side of the bottom plate 113 facing the cookware 200. This results in a closer distance between the heating plate assembly 140 and the cookware 200, allowing the heating plate assembly 140 to heat the cookware 200 promptly and quickly, ensuring a good heating effect.

[0079] like Figure 4 As shown, in the above embodiment, the first module 100 further includes a cooling fan 150 and an air duct assembly 160. The cooling fan 150 and the heating plate assembly 140 are located on both sides of the base plate 113, that is, the heating plate assembly 140 is located above the base plate 113, and the cooling fan 150 is located below the base plate 113. The base plate 113 separates the heating plate assembly 140 and the cooling fan 150, which can reduce the impact of the cooling fan 150 on the heating effect of the heating plate assembly 140. At the same time, it can reduce the space occupied by the cooling fan 150 in the first mounting cavity, so as to ensure that the heating plate assembly 140 has a good heating effect on the pot 200.

[0080] The air duct assembly 160 is located in the first mounting cavity. The air duct assembly 160 is connected to the base plate 113 and configured to guide the airflow discharged by the cooling fan 150. Thus, the air duct assembly 160 can connect the first mounting cavity where the heating plate assembly 140 is located and the space where the cooling fan 150 is located. When the cooling fan 150 is working, the airflow in the first mounting cavity and the airflow in the space where the cooling fan 150 is located can circulate, so as to realize the ventilation and heat dissipation of the heating plate assembly 140, reduce the problem of the heating plate assembly 140 overheating and failure, extend the service life of the heating plate assembly 140, and improve the reliability of the cookware module.

[0081] like Figure 4 As shown, in some possible embodiments provided by this utility model, the first module 100 further includes a mating component 170 installed at the mounting structure 112. The first module 100 is flipped and connected to the frame through the mating component 170, thereby realizing the flipped connection between the cookware module and the frame.

[0082] The mating component 170 may include a rotating shaft, a connecting bearing, etc. For example, the mating component 170 includes a first rotating shaft and a first connecting bearing, a second rotating shaft and a second connecting bearing. The first rotating shaft is mounted on one side plate 111 of the frame 110 through a mounting structure 112, and the second rotating shaft is mounted on another side plate 111 of the frame 110 through another mounting structure 112. The first rotating shaft is flipped and connected to one side of the frame through the first connecting bearing, and the second rotating shaft is flipped and connected to the other side of the frame through the second connecting bearing. Thus, the entire first module 100 can be flipped and connected to the frame to realize the flipped connection between the cookware module and the frame.

[0083] like Figure 4 As shown, in the above embodiment, the first module 100 further includes a controller assembly 180. The controller assembly 180 and the pot 200 are located on both sides of the base plate 113, and the controller assembly 180 is electrically connected to the power assembly 120. Thus, the controller assembly 180 can control the working state of the rotary pot drive assembly 121 and the stirring drive assembly 123.

[0084] In this embodiment, the controller assembly 180 is located below the base plate 113 and outside the first mounting cavity. This arrangement reduces the space occupied by the controller assembly 180 in the first mounting cavity, ensuring sufficient space within the first mounting cavity to allow the cookware 200 to rotate smoothly. At the same time, this arrangement separates the controller assembly 180 and the heating plate assembly 140 on opposite sides of the base plate 113, preventing the high temperature generated by the heating plate assembly 140 from affecting the controller assembly 180 and extending the service life of the controller assembly 180.

[0085] Understandably, the controller assembly 180 can also be electrically connected to the heating plate assembly 140 to control the operating state of the heating plate assembly 140. The controller assembly 180 can also be electrically connected to the cooling fan 150 to control the operating state of the cooling fan 150.

[0086] In the above embodiments, functional components such as the power assembly 120, heating plate assembly 140, cooling fan 150, and controller assembly 180 can be independently and detachably mounted on the frame 110 and / or support plate 130. This modular design allows each component to be tested and pre-assembled individually. After each component passes testing, it is mounted on the frame 110 and / or support plate 130, improving the overall machine testing pass rate and efficiency, thus increasing factory efficiency. Furthermore, the modular design allows for easy disassembly and repair of any component, including the power assembly 120, heating plate assembly 140, cooling fan 150, and controller assembly 180, in case of failure. This improves repair efficiency.

[0087] like Figure 4 and Figure 8 As shown, in the above embodiment, the first module 100 further includes a partition 190. The partition 190 and the side plate 111 are located on both sides of the bottom plate 113. The cooling fan 150 and the power component 120 are located on both sides of the partition 190. Since the cooling fan 150 needs to communicate with the first mounting cavity where the heating plate component 140 is located through the air duct component 160, the temperature of the space where the cooling fan 150 is located will increase. By isolating the cooling fan 150 and the power component 120 through the partition, the impact of the high-temperature airflow in the space where the cooling fan 150 is located on the reliability of the power component 120 can be reduced, which is beneficial to extending the service life of the power component 120.

[0088] Furthermore, the controller assembly 180 and the cooling fan 150 are located on opposite sides of the partition 190. Since the controller assembly 180 generates heat during operation, separating the two via the partition 190 reduces the impact of the heat generated by the controller assembly 180 on the space where the cooling fan 150 is located, preventing the temperature of the space where the cooling fan 150 is located from rising further and ensuring good heat dissipation. Simultaneously, this arrangement places the controller assembly 180 and the power assembly 120 on the same side of the partition 190, facilitating their connection.

[0089] like Figure 7 and Figure 8As shown, in some possible embodiments provided by this utility model, the cookware module further includes: a top plate assembly 300 and a connecting plate 400. The top plate assembly 300 includes a top plate 310, a first support wheel 320 and a second support wheel 330. The top plate 310 is arranged opposite to the bottom plate 113 and is detachably connected to the top of the side plate 111 through the connecting plate 400. The top plate 310 has a clearance opening 311 in the middle to avoid the cookware 200. The first support wheel 320 is fixedly connected to the top plate 310 and faces the clearance opening 311. The second support wheel 330 is movably connected to the top plate 310 and faces the clearance opening 311. The outer wall of the cookware 200 is configured to contact the first support wheel 320 and the second support wheel 330.

[0090] In this embodiment, the top plate 310 is connected to the top of the side plate 111 via the connecting plate 400. Thus, the top plate 310 and the connecting plate 400 further define the first mounting cavity formed by the frame 110 and the support plate 130, thereby further limiting the accommodating space and rotation space of the cookware 200. Simultaneously, the top plate 310, the connecting plate 400, and the frame 110 are assembled as a single unit, becoming the main load-bearing components of the cookware module. This provides excellent load-bearing support and stable stability for the cookware 200, the heating plate assembly 140, the cooling fan 150, the controller assembly 180, and other components.

[0091] The top plate 310 has a clearance opening 311 in the middle to avoid the pot 200. It can be understood that the pot opening of the pot 200 can be located inside the clearance opening 311 to ensure that the pot opening can be exposed to the external environment, so that ingredients, seasonings and other ingredients can be smoothly put into the pot 200 through the pot opening.

[0092] The top plate 310 is provided with a first support wheel 320 and a second support wheel 330 on the side facing the clearance opening 311. The outer wall of the cookware 200 is configured to contact the first support wheel 320 and the second support wheel 330. The first support wheel 320 is fixedly connected to the top plate 310, and the second support wheel 330 is movably connected to the top plate 310. Thus, the first support wheel 320 and the second support wheel 330 can provide a certain degree of support for the cookware 200 and can balance and position the cookware 200 during its rotation relative to the first module 100, thereby ensuring the stability of the rotation of the cookware 200.

[0093] Specifically, the second support wheel 330 can be movably connected to the top plate 310 via a floating mechanism. This floating mechanism allows the second support wheel 330 to move towards or away from the cookware 200 in the radial direction. Thus, under the action of the floating mechanism, the second support wheel 330 can reliably abut against the outer wall of the cookware 200 and cooperate with the first support wheel 320, ensuring that the cookware 200 is reliably and stably confined between the first and second support wheels 320 and 330. Simultaneously, when the rotating pot drive assembly 121 operates, the rotational force provided by the rotating pot drive assembly 121 to the cookware 200 overcomes the supporting force provided by the floating mechanism, allowing the cookware 200 to rotate relative to the first module 100, thereby achieving the rotating pot operation. When the rotating pot drive assembly 121 stops operating, under the action of the floating mechanism, the cookware 200 can again be reliably and stably confined between the first and second support wheels 320 and 330. Understandably, when the cookware 200 is subjected to external force, the cookware 200 will shake. Under the action of the floating mechanism, the cookware 200 can be reliably and stably constrained between the first support wheel 320 and the second support wheel 330 to reset the cookware to its initial state and balance the rotation and shaking of the cookware 200.

[0094] The number of first support wheels 320 is one or more, and the number of second support wheels 330 is one or more.

[0095] like Figure 9 As shown, in some possible embodiments provided by this utility model, the cookware module further includes: a first housing 500, which surrounds the outside of the frame 110, and the two ends of the first housing 500 are detachably connected to the bottom plate 113 and the top plate 310 respectively, and the mating component 170 passes through the first housing 500.

[0096] In related technologies, the inner and outer frames of cookware modules are welded together, resulting in low efficiency in the assembly and production of functional components and poor subsequent maintainability.

[0097] In this embodiment, the first housing 500 is detachably connected to the bottom plate 113 and the top plate 310, so that the first housing 500 does not need to bear weight as a functional structural component. The first housing 500 is used to shield the first module 100 above the bottom plate 113, which helps to improve the neatness and aesthetics of the cookware module. At the same time, compared with the welding operation of the inner and outer frames in related technologies, this arrangement facilitates the assembly and disassembly of the first housing 500 and the first module 100, and facilitates the assembly and disassembly of the various components of the first module 100, which helps to improve the disassembly and maintenance efficiency of the first module 100.

[0098] Furthermore, the first housing 500 can be detachably connected to the bottom plate 113 and the top plate 310 through at least one of the following structures: bolt structure, snap-fit ​​structure, plug-in structure, tenon structure, and magnetic structure.

[0099] It is understandable that a clearance structure for the clearance mating component 170 can be provided at the position where the first housing 500 is opposite to the mounting structure 112. The clearance structure can be a through hole structure.

[0100] like Figure 10 and Figure 11 As shown, in the above embodiment, the cookware module further includes a second housing 600. The second housing 600 and side plates 111 are distributed on both sides of the base plate 113. The second housing 600 is detachably connected to the base plate 113. The first module 100 on the side of the base plate 113 away from the side plates 111 is located inside the second housing 600. The second housing 600 is used to shield the first module 100 located below the base plate 113, providing good protection for the first module 100 located below the base plate 113. This helps extend the service life of the power component 120, cooling fan 150, and controller component 180 located below the base plate 113. At the same time, it helps improve the neatness and aesthetics of the cookware module. Furthermore, this arrangement facilitates the disassembly and assembly of the second housing 600 and the base plate 113, making it convenient for after-sales disassembly and maintenance of the power component 120, controller component 180, cooling fan 150, etc.

[0101] Furthermore, the second housing 600 can be detachably connected to the base plate 113 via at least one of the following structures: bolt structure, snap-fit ​​structure, plug-in structure, tenon structure, and magnetic structure. It is understood that the second housing 600 and the base plate 113 together form a second mounting cavity, and the power assembly 120, controller assembly 180, and cooling fan 150 are located inside the second mounting cavity.

[0102] Among them, such as Figure 10 and Figure 11 As shown, the second housing 600 is provided with a ventilation structure. This ventilation structure serves to draw in air and dissipate heat. For example, when the cooling fan 150 is operating, airflow from the external environment can flow into the second mounting cavity through the ventilation structure, then through the air duct assembly 160 and into the first mounting cavity, providing ventilation and heat dissipation for the heating plate assembly 140 located within the first mounting cavity. This helps extend the service life of the heating plate assembly 140. It is understood that in some examples, after the airflow from the external environment flows into the second mounting cavity through the ventilation structure, it can also provide ventilation and heat dissipation for the controller assembly 180 located within the second mounting cavity, thereby extending the service life of the controller assembly 180.

[0103] In the above embodiments, the ventilation structure includes ventilation holes disposed in the second housing 600. The ventilation holes are easy to process and implement, which helps to save manufacturing costs.

[0104] like Figure 10 and Figure 11 As shown, in the above embodiment, the ventilation structure includes a ventilation grille 610 installed on the second housing 600. The ventilation grille 610 has good ventilation effect and also has good filtration function, which can filter out larger debris, thereby improving the cleanliness of the airflow flowing into the second mounting cavity through the ventilation grille 610, reducing the damage of debris to the controller assembly 180 and the cooling fan 150, and helping to further extend the service life of the controller assembly 180 and the cooling fan 150.

[0105] Specifically, the second housing 600 has mounting holes, and the ventilation grille 610 is detachably connected to the second housing 600 and located at the mounting holes. This facilitates the installation and removal of the ventilation grille 610, and makes it easier to maintain or clean the ventilation grille 610. Specifically, the ventilation grille 610 can be detachably connected to the second housing 600 through at least one of the following structures: bolt structure, plug-in structure, snap-fit ​​structure, tenon and mortise structure, and magnetic structure.

[0106] A second aspect of this utility model provides a cooking device, including: a frame and a cookware module according to any of the embodiments in the first aspect. Since the cooking device includes the cookware module of any of the aforementioned embodiments, it possesses all the technical effects of the aforementioned cookware module, which will not be elaborated further here.

[0107] Specifically, the first module 100 is connected to the frame via the mounting structure 112. Similarly, the cookware module's mating component 170 is connected to the frame via the mounting structure 112, allowing the cookware module to be rotatably mounted on the frame to meet different functional requirements of the cooking equipment. For example, when the cookware module is rotated relative to the frame, the pot opening of the cookware 200 can face downwards, placing the cooking equipment in the food dispensing position; when the cookware module is rotated relative to the frame, the pot opening can face upwards, placing the cooking equipment in the food feeding position; when the cookware module is rotated relative to the frame, the pot opening can be tilted upwards at a certain angle, placing the cooking equipment in the cooking or pot washing position, etc.

[0108] Furthermore, the installation structure 112 of the cookware module is detachably connected to the frame via the mating component 170, so that when the cookware module fails, the cookware module can be disassembled from the frame for repair, which is simple to operate and convenient to maintain.

[0109] In the description of this utility model, the term "multiple" refers to two or more. Unless otherwise explicitly defined, the terms "upper," "lower," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used 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. Therefore, they should not be construed as limitations on this utility model. The terms "connection," "installation," "fixing," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a direct connection or an indirect connection through an intermediate medium. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.

[0110] In the description of this utility model, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of this utility model. In this utility model, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0111] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A pan module for a cooking apparatus, characterized in that, include: The first module (100) and the cookware (200) mounted on the first module (100) include an integrally formed frame (110) with mounting structures (112) coaxially arranged on opposite sides of the frame (110). The first module (100) is configured to be flipped and connected to the frame of the cooking equipment through the mounting structures (112) to drive the cookware (200) to flip relative to the frame.

2. The cookware module according to claim 1, characterized in that, The frame (110) includes two side plates (111) arranged opposite to each other, and a bottom plate (113) located at the bottom of the side plates (111). The mounting structure (112) is located on the side plates (111), and the cookware (200) is located above the bottom plate (113).

3. The cookware module according to claim 2, characterized in that, The first module (100) further includes a power assembly (120), which is connected to the bottom of the base plate (113). The power assembly (120) includes a pot drive assembly (121), which includes a first drive part (1211) and a first transmission part (1212). The first drive part (1211) is connected to the pot (200) through the first transmission part (1212). The angle between the output shaft of the first drive part (1211) and the rotation shaft of the pot (200) is in the range of 90° to 180°.

4. The cookware module according to claim 3, characterized in that, The first transmission unit (1212) includes a first bevel gear (1213) and a second bevel gear (1214) that mesh with each other. The first bevel gear (1213) is poweredly connected to the first drive unit (1211), and the second bevel gear (1214) is connected to the cookware (200).

5. The cookware module according to claim 4, characterized in that, One of the second bevel gear (1214) and the cookware (200) is provided with an adsorption element (210), and the other is provided with an adsorption element (1215). The adsorption element (210) and the adsorption element (1215) are attracted to each other to limit the relative movement of the cookware (200) and the second bevel gear (1214).

6. The cookware module according to claim 5, characterized in that, The adsorbed part (210) is provided with a positioning part (211), and the second bevel gear (1214) is provided with a limiting part (1216). The positioning part (211) and the limiting part (1216) cooperate to limit the relative circumferential movement of the cookware (200) and the second bevel gear (1214).

7. The cookware module according to claim 3, characterized in that, The power assembly (120) also includes a mounting plate (122) and a stirring drive assembly (123), the stirring drive assembly (123) and the rotary pot drive assembly (121) are mounted on the mounting plate (122), and the mounting plate (122) is connected to the frame (110); The pot (200) is equipped with a stirring assembly, which includes a stirring shaft (220) that passes through the pot (200) and is rotatably disposed relative to the pot (200). The pot (200) is connected to the first transmission unit (1212) so that the stirring shaft (220) is poweredly connected to the stirring drive assembly (123). The stirring drive assembly includes a second drive unit (1231) and a second transmission unit (1232). The second drive unit (1231) is connected to the stirring shaft (220) through the second transmission unit (1232). The angle between the output shaft of the second drive unit (1231) and the stirring shaft (220) is in the range of 90° to 180°.

8. The cookware module according to claim 3, characterized in that, The first module (100) further includes a support plate (130), the support plate (130) and the side plate (111) are located on the same side of the bottom plate (113), the support plate (130) and the frame (110) enclose a first mounting cavity, and the pot (200) is located in the first mounting cavity; The first module (100) further includes a heating plate assembly (140) located in the first mounting cavity, the heating plate assembly (140) being connected to the support plate (130) and located between the cookware (200) and the bottom plate (113); The first module (100) further includes a cooling fan (150) and an air duct assembly (160). The cooling fan (150) and the heating plate assembly (140) are located on both sides of the base plate (113). The air duct assembly (160) is located in the first mounting cavity. The air duct assembly (160) is connected to the base plate (113) and configured to guide the airflow discharged by the cooling fan (150). The first module (100) further includes a mating component (170) installed at the mounting structure (112), and the first module (100) is flip-connected to the frame through the mating component (170); The first module (100) further includes a controller assembly (180), which and the cookware (200) are located on both sides of the base plate (113), and the controller assembly (180) is electrically connected to the power assembly (120).

9. The pan module of claim 8, wherein, Also includes: The top plate assembly (300) and the connecting plate (400) are provided. The top plate assembly (300) includes a top plate (310), a first support wheel (320) and a second support wheel (330). The top plate (310) is arranged opposite to the bottom plate (113) and is detachably connected to the top of the side plate (111) through the connecting plate (400). The top plate (310) has a clearance opening (311) in the middle to avoid the cookware (200). The first support wheel (320) is fixedly connected to the top plate (310) and faces the clearance opening (311). The second support wheel (330) is movably connected to the top plate (310) and faces the clearance opening (311). The outer wall of the cookware (200) is configured to contact the first support wheel (320) and the second support wheel (330).

10. The pan module of claim 9, wherein, Also includes: A first housing (500) surrounds the outside of the frame (110). The two ends of the first housing (500) are detachably connected to the bottom plate (113) and the top plate (310) respectively. The mating assembly (170) passes through the first housing (500). The second housing (600) and the side plate (111) are distributed on both sides of the bottom plate (113). The second housing (600) is detachably connected to the bottom plate (113). The first module (100) on the side of the bottom plate (113) away from the side plate (111) is located inside the second housing (600). The second housing (600) is provided with a ventilation structure, which includes ventilation holes provided in the second housing (600), or the ventilation structure includes a ventilation grille (610) installed on the second housing (600).

11. A cooking apparatus, characterized by, include: The frame, and the cookware module as described in any one of claims 1 to 10.