Roller module and cooking equipment
By using adjustable magnetic suction components and magnetic assemblies in cooking equipment, the problem of low efficiency in assembling and disassembling cookware and base is solved, enabling quick assembly and disassembly and convenient operation, and improving the connection stability and separation convenience of cookware and base.
Patent Information
- Application Number
- CN202411291657.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2026-03-17
Smart Images

Figure CN121667529A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of kitchen equipment technology, and in particular to a drum module and cooking equipment. Background Technology
[0002] In current cooking equipment, such as drum stir-fry machines, the pot is usually rotatably mounted on the base. To ensure that the pot can rotate stably relative to the base, fasteners, rotating parts, and limiting parts are usually used to fix the pot. As a result, when it is necessary to disassemble and separate the pot from the base, there are many steps involved in disassembling and replacing parts, resulting in low efficiency in disassembling the pot. Summary of the Invention
[0003] In view of this, this application provides a roller module and a cooking device, which can realize quick assembly and disassembly of cookware by adsorbing or separating the adsorbent and the magnetic assembly, which greatly improves the efficiency of cookware assembly and disassembly. At the same time, by setting the magnetic force of the magnetic assembly to be adjustable, the magnetic force of the magnetic assembly acting on the adsorbent can correspond to the operation of loading and unloading the cookware, which can further improve the convenience of cookware assembly and disassembly.
[0004] An embodiment of the first aspect of this application provides a roller module, including: a cookware; a base, the cookware being drivenly connected to the base; an adsorption member and a magnetic assembly, one of which is mounted on the cookware and the other is mounted on the base, the magnetic assembly and the adsorption member attracting each other to connect the base and the cookware; wherein the magnetic attraction force of the magnetic assembly is set to be adjustable.
[0005] Furthermore, the magnetic attraction assembly includes a fixed magnetic pole assembly and a movable magnetic pole assembly, the movable magnetic pole assembly being movable relative to the fixed magnetic pole assembly to adjust the magnitude of the magnetic attraction force of the magnetic attraction assembly.
[0006] Furthermore, the fixed magnetic pole assembly includes a first magnetic pole base and a fixed magnetic pole mounted on the first magnetic pole base; the movable magnetic pole assembly includes a second magnetic pole base and a movable magnetic pole mounted on the second magnetic pole base, wherein the second magnetic pole base is movable relative to the first magnetic pole base.
[0007] Furthermore, the first magnetic pole base and the second magnetic pole base are soft magnets; and / or the fixed magnetic pole and the movable magnetic pole are permanent magnets, and the adsorption element is a soft magnet; and / or the second magnetic pole base and the first magnetic pole base move relative to each other in at least one of the following ways: translation, rotation, or flipping.
[0008] Furthermore, the first magnetic pole base is provided with a sliding groove, and the second magnetic pole base is installed in the sliding groove and can slide in the sliding groove. A rack is connected to or formed on the second magnetic pole base. The magnetic attraction assembly also includes an adjusting member, which is provided with an adjusting gear that meshes with the rack. The adjusting member is rotatable so as to drive the second magnetic pole base to move along the sliding groove through the adjusting gear and the rack to adjust the magnitude of the magnetic attraction force of the magnetic attraction assembly.
[0009] Furthermore, the magnetic suction assembly also includes a mounting base, which has a mounting hole and a first clearance opening communicating with the mounting hole. A first magnetic pole base is mounted on the mounting base. At least the portion of the slide groove opposite to the first clearance opening is configured as a through groove. An adjusting member is rotatably mounted in the mounting hole. A rack passes through the slide groove and is located in the first clearance opening, meshing with an adjusting gear. The mounting base is a soft magnet. The adjusting member also includes an adjusting rod connected to the adjusting gear and located at the end of the adjusting member. An operating port is provided at the position of the base or pot opposite to the adjusting rod.
[0010] Furthermore, the fixed magnetic pole assembly also includes a first magnetic shielding strip mounted on the first magnetic pole base; the movable magnetic pole assembly also includes a second magnetic shielding strip mounted on the second magnetic pole base; the first and second magnetic shielding strips are made of non-magnetic materials.
[0011] Furthermore, the magnetic attraction assembly also includes a buffer assembly located on the side of the magnetic attraction assembly facing the adsorption element; the buffer assembly includes a buffer plate and a third magnetic isolation strip mounted on the buffer plate, the buffer plate is connected to the first magnetic pole base, and the fixed magnetic pole assembly and the movable magnetic pole assembly are located between the buffer plate and the mounting base; wherein, the buffer plate is a soft magnetic body, and the third magnetic isolation strip is made of a non-magnetic material.
[0012] Furthermore, at least two sets of fixed magnetic poles are spaced apart on the first magnetic pole base along the first direction, each set including at least one fixed magnetic pole, and a second magnetic pole base with the same number of fixed magnetic pole sets is spaced apart on the first magnetic pole base along the second direction, and multiple movable magnetic poles are installed on each magnetic pole base, the second direction being perpendicular to the first direction.
[0013] Furthermore, the movable magnetic pole assembly also includes a connecting seat, which is fixedly connected to the first magnetic pole base, and the second magnetic pole base is rotatably connected to the connecting seat. An adjustment part is connected to or formed on the second magnetic pole base. Rotating the adjustment part can cause the second magnetic pole base to rotate relative to the connecting seat to adjust the magnitude of the magnetic attraction force of the magnetic attraction assembly. The connecting seat is made of a non-magnetic material.
[0014] Furthermore, the magnetic pole assembly also includes a side base, which is connected to the first magnetic pole base and located on at least one side of the connecting seat. The fixed magnetic pole is located within the space enclosed by the side base and the first magnetic pole base. The second magnetic pole base is located within the space enclosed by the side base, the connecting seat, and the first magnetic pole base. A second clearance opening is provided at the position of the side base opposite to the adjustment part. The magnetic pole assembly also includes a fourth magnetic shielding strip installed on the side base. The side base is a soft magnetic body, and the fourth magnetic shielding strip is made of a non-magnetic material. An operation port is provided at the position of the base or pot opposite to the second clearance opening.
[0015] Furthermore, two fixed magnetic poles are distributed on both sides of the first magnetic pole base, and two second magnetic pole bases are distributed on both sides of the connecting seat, with at least some of the movable magnetic poles facing the corresponding fixed magnetic poles.
[0016] Furthermore, the movable magnetic pole assembly also includes a linkage mechanism, which is connected to two second magnetic pole bases, such that rotation of one second magnetic pole base relative to the connecting seat will cause the other second magnetic pole base to rotate relative to the connecting seat. The linkage mechanism includes a first gear and a second gear meshing with each other, and a third gear and a fourth gear meshing with each other. The first end of the first gear is connected to one second magnetic pole base, and the second end of the first gear is rotatably connected to the connecting seat. The first end of the third gear is connected to another second magnetic pole base, and the second end of the third gear is rotatably connected to the connecting seat. The second gear and the fourth gear are coaxially arranged. The linkage mechanism is made of a non-magnetic material.
[0017] An embodiment of the second aspect of this application provides a cooking device, including: a frame, and a drum module as described in any of the first aspects, with a base connected to the frame.
[0018] The drum module and cooking device provided in this application include a pot, a base, an adsorption component, and a magnetic assembly. The pot is driven to connect with the base. One of the adsorption component and the magnetic assembly is installed on the pot, and the other is installed on the base. By attracting or separating the adsorption component and the magnetic assembly, the pot can be quickly assembled and disassembled. Compared with related technologies that use fasteners, rotating parts, or limiting parts to assemble the pot and the base, this simplifies the disassembly process, greatly improves the efficiency of pot assembly and disassembly, simplifies manual operation, and is suitable for widespread application. Furthermore, by setting the magnetic force of the magnetic assembly to be adjustable, the magnetic force acting on the adsorption component can correspond to the pot assembly and disassembly operations, ensuring that the pot can reliably and stably rotate and connect with the base after assembly, and that the pot can be easily and quickly separated from the base during disassembly, thereby improving the convenience of assembling and disassembling the pot and the base.
[0019] The above description is only an overview of the technical solution of this application. In order to better understand the technical means of this application 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 application more obvious and understandable, the following are specific embodiments of this application. Attached Figure Description
[0020] 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 this application. Furthermore, the same reference numerals denote the same parts throughout the drawings. Wherein:
[0021] Figure 1 A partial structural schematic diagram of the roller assembly of the first embodiment provided in this application is shown;
[0022] Figure 2 An exploded view of the connector and base of the first embodiment provided in this application is shown;
[0023] Figure 3 An exploded view of the connector and base of the second embodiment provided in this application is shown;
[0024] Figure 4 This illustration shows a schematic diagram of the magnetic field distribution of the magnetic suction assembly and adsorption element in a loaded state according to the first embodiment of this application.
[0025] Figure 5 This illustration shows a schematic diagram of the magnetic field distribution of the magnetic suction assembly and adsorption element in the unloaded state according to the first embodiment of this application.
[0026] Figure 6 An exploded view of the magnetic suction assembly of the first embodiment provided in this application is shown;
[0027] Figure 7 This illustration shows a structural schematic diagram of the fixed magnetic pole assembly of the magnetic attraction assembly according to the first embodiment of this application;
[0028] Figure 8 It shows Figure 7 An exploded view of the embodiment shown;
[0029] Figure 9 This paper shows a schematic diagram of the structure of the movable magnetic pole assembly of the magnetic attraction assembly according to the first embodiment of this application.
[0030] Figure 10 It shows Figure 9 An exploded view of the embodiment shown;
[0031] Figure 11 This illustration shows a schematic diagram of the structure of the buffer component of the magnetic attraction component according to the first embodiment of this application;
[0032] Figure 12 It shows Figure 11 An exploded view of the embodiment shown;
[0033] Figure 13 This illustration shows a schematic diagram of the magnetic field distribution of the magnetic attraction component in a loaded state according to the first embodiment of this application.
[0034] Figure 14 This illustration shows a schematic diagram of the magnetic field distribution of the magnetic suction component in the unloaded state according to the first embodiment of this application.
[0035] Figure 15 A partial structural schematic diagram of the roller assembly of the second embodiment provided in this application is shown;
[0036] Figure 16 This illustration shows a schematic diagram of the magnetic field distribution of the magnetic suction assembly and adsorption element in a loaded state according to the second embodiment of this application.
[0037] Figure 17 This illustration shows a schematic diagram of the magnetic field distribution of the magnetic suction assembly and adsorption element in the unloaded state according to the second embodiment of this application.
[0038] Figure 18 A schematic diagram of the structure of the magnetic suction assembly of the second embodiment provided in this application is shown;
[0039] Figure 19 It shows Figure 18 An exploded view of the embodiment shown;
[0040] Figure 20 This illustration shows a structural schematic diagram of the fixed magnetic pole assembly of the magnetic attraction assembly according to the second embodiment of this application.
[0041] Figure 21 It shows Figure 20 An exploded view of the embodiment shown;
[0042] Figure 22 This paper shows a schematic diagram of the structure of the movable magnetic pole assembly of the magnetic attraction assembly according to the second embodiment of this application.
[0043] Figure 23 It shows Figure 22 An exploded view of the embodiment shown;
[0044] Figure 24 This illustration shows a schematic diagram of the structure of a portion of the movable magnetic pole assembly of the magnetic attraction assembly provided in the second embodiment of this application;
[0045] Figure 25 It shows Figure 24 An exploded view of the embodiment shown;
[0046] Figure 26 This illustration shows a structural schematic diagram of another portion of the movable magnetic pole assembly of the magnetic attraction assembly provided in the second embodiment of this application;
[0047] Figure 27 It shows Figure 26 An exploded view of the embodiment shown.
[0048] in, Figures 1 to 27 The correspondence between the reference numerals and component names in the attached drawings is as follows:
[0049] 100 Roller module, 110 Cookware, 120 Transmission unit, 121 Operating port, 130 Adsorption component, 140 Magnetic suction assembly, 141 Fixed magnetic pole assembly, 1411 First magnetic pole base, 14111 Slide groove, 14112 Limiting part, 1412 Fixed magnetic pole, 1413 First magnetic shielding strip, 142 Movable magnetic pole assembly, 1421 Second magnetic pole base, 14211 Rack, 14212 Adjustment part, 1422 Movable magnetic pole, 1423 Second magnetic shielding strip, 1424 Linkage mechanism, 14241 First gear, 14242 Second gear, 14243 Third gear, 14244 Fourth gear 14245 Connecting shaft, 14246 First bearing, 14247 Second bearing, 14248 Third bearing, 14249 Fourth bearing, 1425 Connecting seat, 14251 Positioning part, 143 Adjusting component, 1431 Adjusting gear, 1432 Adjusting rod, 144 Mounting seat, 1441 Mounting hole, 1442 First clearance opening, 145 Buffer assembly, 1451 Buffer plate, 1452 Third magnetic shielding strip, 147 Side base, 1471 Second clearance opening, 148 Fourth magnetic shielding strip, 150 Connecting head, 160 Coupling device, 161 First coupling part, 162 Second coupling part, 170 Stirring shaft. Detailed Implementation
[0050] To better understand the above-mentioned objectives, features, and advantages of this application, the application 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 and features described in these embodiments can be combined with each other.
[0051] Many specific details are set forth in the following description in order to provide a full understanding of this application. However, this application may also be implemented in other ways different from those described herein. Therefore, the scope of protection of this application is not limited to the specific embodiments disclosed below.
[0052] The following reference Figures 1 to 27This application describes a drum module 100 and a cooking device according to some embodiments. The drum module 100 is applied to a cooking device, which can be a rotary cooker, specifically a rotary stir-fry machine.
[0053] like Figure 1 , Figure 2 , Figure 15 As shown in the first aspect of this application, an embodiment provides a roller module 100, including: a cookware 110; a base, the cookware 110 being drivenly connected to the base; an adsorption member 130 and a magnetic attraction assembly 140, one of the adsorption member 130 and the magnetic attraction assembly 140 being mounted on the cookware 110 and the other being mounted on the base, the magnetic attraction assembly 140 and the adsorption member 130 being attracted to each other to connect the base and the cookware 110; wherein, the magnetic attraction force of the magnetic attraction assembly 140 is set to be adjustable.
[0054] The roller module 100 provided in this application embodiment includes a cookware 110, a base, an adsorption component 130, and a magnetic adsorption assembly 140. The cookware 110 is driven to be connected to the base, and the cookware 110 is rotatably connected to the base. One of the adsorption component 130 and the magnetic adsorption assembly 140 is installed on the cookware 110, and the other is installed on the base. The magnetic adsorption assembly 140 and the adsorption component 130 attract each other to connect the base and the cookware 110. Thus, by the cooperation of the magnetic adsorption assembly 140 and the adsorption component 130, the cookware 110 can be assembled with the base. It can be understood that the cookware 110 can be disassembled and separated from the base by separating the magnetic adsorption assembly 140 and the adsorption component 130. Therefore, by attracting or separating the adsorption component 130 and the magnetic component 140, the cookware 110 can be quickly disassembled and assembled. Compared with the assembly of the cookware and the base by fasteners, rotating parts, and limiting parts in related technologies, the disassembly and assembly steps of fasteners, rotating parts, and limiting parts are simplified when disassembling and assembling the cookware 110 and the base, which greatly improves the disassembly and assembly efficiency of the cookware 110, simplifies manual operation, and is suitable for widespread application.
[0055] In this embodiment, the magnetic attraction force of the magnetic attraction component 140 is set to be adjustable, so that the magnetic attraction force of the magnetic attraction component 140 can be reasonably set or adjusted according to the disassembly and assembly requirements of the cookware 110 and the base, such as according to different operations of loading and unloading the cookware. This ensures that the magnetic attraction force of the magnetic attraction component 140 acting on the adsorption component 130 corresponds to the loading and unloading operations, so as to ensure that the cookware 110 can be reliably and stably rotated and connected to the base after assembly, and that the cookware 110 can be conveniently and quickly separated from the base during the unloading process, thereby improving the convenience of disassembling and assembling the cookware 110.
[0056] Specifically, during the pot assembly operation, the magnetic force of the magnetic suction component 140 can be increased to enhance the attraction between the magnetic suction component 140 and the adsorption element 130, thereby ensuring a reliable connection between them and improving the reliability and stability of the rotatable connection between the cookware 110 and the base. During the pot disassembly operation, the magnetic force of the magnetic suction component 140 can be decreased to weaken the attraction between it and the adsorption element 130, allowing the user to separate them with less force. This avoids situations where the user lacks sufficient strength to easily and quickly separate the cookware 110 from the base, which is connected by the adsorption element 130 and the magnetic suction component 140. This allows for convenient and quick pot disassembly with minimal effort, making it highly versatile.
[0057] Meanwhile, due to the heavy oil fumes in the kitchen environment, the magnetic suction component 140 and the adsorption component 130, which are connected by suction, are likely to accumulate oil fumes, increasing the suction force and making it more difficult to disassemble the pot. In this embodiment, by making the magnetic suction force of the magnetic suction component 140 adjustable, the magnetic suction force of the magnetic suction component 140 can be reduced during the pot disassembly operation. This reduces the suction force between the magnetic suction component 140 and the adsorption component 130, thereby further reducing the difficulty of disassembling the pot. Users can then separate the magnetic suction component 140 and the adsorption component 130 with less force, thus achieving the pot disassembly operation. This significantly reduces the difficulty of disassembling the pot, improves the convenience of the disassembly operation, and helps to increase the efficiency of pot disassembly.
[0058] The cookware 110 is driven to connect with the base, which can be a rotatable connection between the cookware 110 and the base. For example... Figure 1 , Figure 2 , Figure 15 As shown, the roller module 100 may further include a transmission unit 120, which is mounted on the base. The cookware 110 is connected to the transmission unit 120 via a magnetic assembly 140 and an adsorption member 130. When the transmission unit 120 operates, it rotates, driving the cookware 110 to rotate relative to the base, thereby achieving a drive connection between the cookware 110 and the base. Alternatively, a driving member, such as a rotating member, may be provided on the base. The cookware 110 is connected to the rotating member via the magnetic assembly 140 and the adsorption member 130, allowing the rotating member to rotate relative to the base, thereby achieving a drive connection between the cookware 110 and the base.
[0059] The adsorption component 130 can be mounted on the cookware 110, and the magnetic assembly 140 can be mounted on the base; alternatively, the adsorption component 130 can be mounted on the base, and the magnetic assembly 140 can be mounted on the cookware 110. The adsorption component 130 can be directly mounted on the cookware 110 or the base, or indirectly mounted on the cookware 110 or the base via other components. The magnetic assembly 140 can be directly mounted on the base or the cookware 110, or indirectly mounted on the base or the cookware 110 via other components.
[0060] The magnetic attraction force of the magnetic attraction component 140 is set to be adjustable, which means that the magnitude of the magnetic attraction force exerted by the magnetic attraction component 140 on the adsorption component 130 can be adjusted. When the magnetic attraction force of the magnetic attraction component 140 is large, the attraction force between the magnetic attraction component 140 and the adsorption component 130 is large. When the magnetic attraction force of the magnetic attraction component 140 is small, the attraction force between the magnetic attraction component 140 and the adsorption component 130 is small or non-existent.
[0061] like Figure 5 , Figure 18 and Figure 19 As shown, in some possible embodiments provided in this application, the magnetic attraction component 140 includes a fixed magnetic pole component 141 and a movable magnetic pole component 142, wherein the movable magnetic pole component 142 is movable relative to the fixed magnetic pole component 141 to adjust the magnitude of the magnetic attraction force of the magnetic attraction component 140.
[0062] In this embodiment, both the fixed magnetic pole assembly 141 and the movable magnetic pole assembly 142 are magnetic components. That is to say, in the embodiments of this application, the magnetic attraction force of the entire magnetic attraction assembly 140 can be adjusted by the movable magnetic pole assembly 142 moving relative to the fixed magnetic pole assembly 141. The structure is simple and easy to implement.
[0063] like Figure 6 , Figure 7 , Figure 8 , Figure 9 , Figure 10 , Figure 18 , Figure 19 , Figure 20 , Figure 24 , Figure 25 , Figure 26 , Figure 27As shown, in some possible embodiments provided in this application, the fixed magnetic pole assembly 141 includes a first magnetic pole base 1411 and a fixed magnetic pole 1412 mounted on the first magnetic pole base 1411; the movable magnetic pole assembly 142 includes a second magnetic pole base 1421 and a movable magnetic pole 1422 mounted on the second magnetic pole base 1421. The second magnetic pole base 1421 is movable relative to the first magnetic pole base 1411, so that the movable magnetic pole 1422 mounted on the second magnetic pole base 1421 is movable relative to the fixed magnetic pole 1412 mounted on the first magnetic pole base 1411. Thus, the magnetic attraction force of the entire magnetic attraction assembly 140 can be adjusted.
[0064] In this design, the first magnetic pole base 1411 and the second magnetic pole base 1421 are soft magnetic materials, the fixed magnetic pole 1412 and the movable magnetic pole 1422 are permanent magnets, and the adsorption component 130 is a soft magnetic material. Specifically, soft magnetic materials refer to magnets made of materials such as iron, whose magnetism cannot be permanently maintained. Hard magnetic materials are permanent magnets, which are generally made of steel and whose magnetism can be permanently maintained.
[0065] Therefore, by setting the fixed magnetic pole 1412 and the movable magnetic pole 1422 as permanent magnets, and the first magnetic pole base 1411 and the second magnetic pole base 1421 as soft magnets, the second magnetic pole base 1421 of the soft magnetic component, carrying the movable magnetic pole 1422 of the permanent magnetic component it supports, moves relative to the first magnetic pole base 1411 of the soft magnetic component and the movable magnetic pole 1422 of the permanent magnetic component it supports. This allows the magnetic attraction force of the entire magnetic attraction assembly 140 to change. By setting the adsorption component 130 as a permanent magnet, the attraction force between the magnetic attraction assembly 140 and the adsorption component 130 can be adjusted to meet the different magnetic attraction force requirements for different operations of loading and unloading the pot, thus achieving reliable loading and convenient unloading.
[0066] The second magnetic pole base 1421 and the first magnetic pole base 1411 are movable relative to each other in at least one of the following ways: translation, rotation, and flipping, thereby meeting the needs of different structures of the magnetic attraction assembly 140. It is understood that the second magnetic pole base 1421 and the first magnetic pole base 1411 can be movable relative to each other in any one of the following ways: translation, rotation, and flipping; or, the second magnetic pole base 1421 and the first magnetic pole base 1411 can be movable relative to each other in any two of the following ways: translation, rotation, and flipping; or, the second magnetic pole base 1421 and the first magnetic pole base 1411 can be movable relative to each other in three of the following ways: translation, rotation, and flipping.
[0067] Among them, such as Figure 7 , Figure 8 , Figure 20 , Figure 21As shown, the fixed magnetic pole 1412 can be connected to the first magnetic pole base 1411 by at least one of the following: adhesive, snap-fit structure, plug-in structure, tenon and mortise structure, and bolt structure; as shown Figure 9 , Figure 10 , Figure 24 , Figure 25 , Figure 26 , Figure 27 As shown, the movable magnetic pole 1422 can be connected to the second magnetic pole base 1421 through at least one of the following methods: adhesive, snap-fit structure, plug-in structure, tenon and mortise structure, and bolt structure. Furthermore, the fixed magnetic pole 1412 and the first magnetic pole base 1411 can be detachably connected to facilitate individual replacement and maintenance of both the fixed magnetic pole 1412 and the first magnetic pole base 1411, and the movable magnetic pole 1422 and the second magnetic pole base 1421 can also be detachably connected to facilitate individual replacement and maintenance of both the movable magnetic pole 1422 and the second magnetic pole base 1421, thereby reducing maintenance and replacement costs.
[0068] like Figure 6 , Figure 7 , Figure 8 As shown, in some possible embodiments provided in this application, the first magnetic pole base 1411 is provided with a sliding groove 14111, and the second magnetic pole base 1421 is installed in the sliding groove 14111 and can slide in the sliding groove 14111. Thus, by sliding the second magnetic pole base 1421 relative to the first magnetic pole base 1411 in the sliding groove 14111, the movement of the movable magnetic pole assembly 142 relative to the fixed magnetic pole assembly 141 can be realized, and the magnetic attraction force of the magnetic attraction assembly 140 can be adjusted. The structure is simple, easy to operate, and easy to implement.
[0069] Among them, such as Figure 6 , Figure 8 , Figure 9 , Figure 10 As shown, a rack 14211 is connected to or formed on the second magnetic pole base 1421. The magnetic attraction assembly 140 also includes an adjusting member 143, which is provided with an adjusting gear 1431 that meshes with the rack 14211. When the adjusting member 143 rotates, it drives the adjusting gear 1431 to rotate. In turn, the meshing adjusting gear 1431 and rack 14211 drive the second magnetic pole base 1421 to move relative to the first magnetic pole base 1411 along the slide groove 14111, thereby realizing the relative movement of the first magnetic pole base 1411 and the second magnetic pole base 1421 and adjusting the magnitude of the magnetic attraction force of the magnetic attraction assembly 140. This configuration is simple in structure and convenient in operation.
[0070] Specifically, the second magnetic pole base 1421 can reciprocate within the slide groove 14111, such as... Figure 6 , Figure 7 and Figure 8As shown, the second magnetic pole base 1421 can move left and right in the direction of arrow X within the slide groove 14111. It can be understood that by rotating the adjusting member 143 in different directions, and adjusting the gear 1431 and rack 14211, the second magnetic pole base 1421 can be moved left or right in the direction of arrow X within the slide groove 14111. It can be understood that after the second magnetic pole base 1421 moves relative to the first magnetic pole base 1411 along the slide groove 14111, it can change the magnetic properties of the movable magnetic pole 1422 on the side closer to the fixed magnetic pole 1412 to form different magnetic fields, thereby changing the magnitude of the magnetic attraction between the movable magnetic pole assembly 142 and the fixed magnetic pole assembly 141.
[0071] Among them, such as Figure 9 and Figure 10 As shown, the rack 14211 and the second magnetic pole base 1421 can be separate structures. The rack 14211 is installed on the second magnetic pole base 1421 by means of bolts, snap-fit, plug-in, tenon and mortise, adhesive, welding, etc. This arrangement allows the rack 14211 and the second magnetic pole base 1421 to be repaired or replaced separately, which helps to save on repair and replacement costs. Alternatively, the rack 14211 and the second magnetic pole base 1421 can be an integral structure, that is, the rack 14211 is formed in the second magnetic pole base 1421. This arrangement simplifies the assembly steps of the rack 14211 and the second magnetic pole base 1421 and allows for mass production.
[0072] Specifically, Figure 4 This diagram shows the magnetic field distribution of the magnetic attraction assembly 140 and the attraction element 130 under load. Figure 5 A schematic diagram of the magnetic field distribution of the magnetic attraction assembly 140 and the adsorption member 130 in the unloaded state is shown. Figure 4 and Figure 5 This is an explanation of the working principle of the magnetic attraction assembly 140 and the adsorption element 130, which are slidable relative to the first magnetic pole base 1411 and are mentioned above. Figure 4 and Figure 5 The second magnetic pole base 1421 can be translated and slidable relative to the first magnetic pole base 1411, wherein, Figure 4 The fixed magnetic pole 1412 has an N pole on its left and an S pole on its right, while the movable magnetic pole 1422 has an S pole on its left and an N pole on its right. At this time, the magnetic lines of force of the fixed magnetic pole 1412, the movable magnetic pole 1422, and the adsorption element 130 are as follows: Figure 4 As shown, the suction is strong at this time, which can fix the pot relatively on the base. Figure 5 The fixed magnetic pole 1412 has an N pole on its left and an S pole on its right, while the movable magnetic pole 1422 has an S pole on its right and an N pole on its left. At this time, the magnetic lines of force of the fixed magnetic pole 1412, the movable magnetic pole 1422, and the adsorption element 130 are as follows: Figure 17As shown, the suction is weak at this time, making it easy to disassemble the cookware.
[0073] Among them, by Figure 4 and Figure 5 It can be seen that the magnetic properties of the side of the active magnetic pole 1422 closest to the fixed magnetic pole 1412 changed under different loading and unloading states, indicating that... Figure 4 and Figure 5 The second magnetic pole base 1421 is located at a different position relative to the first magnetic pole base 1411, meaning the magnetic attraction force provided by the magnetic attraction assembly 140 is different under load and unload conditions, thus adjusting the magnetic attraction force. Specifically, Figure 4 The magnetic attraction component 140 has a large magnetic attraction force, which makes the magnetic attraction between the magnetic attraction component 140 and the adsorption component 130 strong, so that the cookware 110 can be reliably and stably fixed on the base. Figure 5 The magnetic attraction component 140 has a small magnetic attraction force or no magnetic pole force, which makes the magnetic attraction between the magnetic attraction component 140 and the adsorption component 130 weak. This allows the user to move the cookware 110 and the base in two directions with a small force to separate the adsorption component 130 and the magnetic attraction component 140, thereby disassembling the cookware 110. The operation is simple and the disassembly efficiency is high.
[0074] Furthermore, Figure 13 The magnetic field distribution diagram of the magnetic attraction assembly 140 under load is shown. Figure 14 The magnetic field distribution diagram of the magnetic attraction assembly 140 in the unloaded state is shown. Figure 13 The second magnetic pole base 1421 supports the movable magnetic pole 1422 and slides to the left side of the slide groove 14111. Figure 14 The second magnetic pole base 1421 carries the movable magnetic pole 1422 to slide to the left side of the slide groove 14111, which changes the relative position of the movable magnetic pole 1422 and the fixed magnetic pole 1412, so that the magnetic attraction force of the entire magnetic attraction assembly 140 changes in the unloading and auxiliary states.
[0075] like Figure 6 , Figure 8 , Figure 10As shown, in some possible embodiments provided in this application, the magnetic suction assembly 140 further includes a mounting base 144. The mounting base 144 is provided with a mounting hole 1441 and a first clearance opening 1442 communicating with the mounting hole 1441. The first magnetic pole base 1411 is mounted on the mounting base 144. At least the portion of the slide groove 14111 opposite to the first clearance opening 1442 is configured as a through groove, so that at least a portion of the slide groove 14111 is communicating with the first clearance opening 1442. Thus, the rack 14211 can be exposed at the first clearance opening 1442 through the slide groove 14111. The adjusting member 143 is rotatably installed in the mounting hole 1441, and the adjusting gear 1431 is located in the first clearance opening 1442. This allows the rack 14211, which is exposed in the first clearance opening 1442 through the slide groove 14111, to mesh with the adjusting gear 1431 located in the first clearance opening 1442. This causes the adjusting member 143 to rotate, and through the cooperation of the adjusting gear 1431 and the rack 14211, the second magnetic pole base 1421 can be moved along the slide groove 14111. This causes the movable magnetic pole assembly 142 to translate relative to the fixed magnetic pole assembly 141, thereby realizing the adjustment operation of the magnetic attraction force of the magnetic attraction assembly 140.
[0076] In this embodiment, the mounting base 144 provides installation positions and space for the fixed magnetic pole assembly 141, the movable magnetic pole assembly 142, and the adjusting member 143, enabling the entire magnetic suction assembly 140 to be modularized and easily installed as a whole with the cookware 110 or the base. It is understood that the entire magnetic suction assembly 140 can be installed on the cookware 110 or the base by connecting it to the mounting base 144.
[0077] The mounting base 144 is configured as a soft magnet, so that the fixed magnetic pole assembly 141 and the movable magnetic pole assembly 142 mounted on the mounting base 144 can form a magnetic flux loop through the mounting base 144. Then, after the second magnetic pole base 1421 moves relative to the first magnetic pole base 1411 along the slide groove 14111, the magnetic pole properties of the movable magnetic pole 1422 can be changed to form different magnetic fields, thereby changing the magnitude of the magnetic attraction between the movable magnetic pole assembly 142 and the fixed magnetic pole assembly 141.
[0078] The first magnetic pole base 1411 is mounted on top of the mounting base 144. At least the portion of the bottom of the slide groove 14111 opposite to the first clearance opening 1442 is configured as a through groove. This can be either the entire bottom of the slide groove 14111 or only the portion of the bottom of the slide groove 14111 opposite to the first clearance opening 1442. The purpose of configuring at least a portion of the slide groove 14111 as a through groove is to ensure accurate and stable meshing between the rack 14211 at the bottom of the movable magnetic pole 1422 base mounted within the slide groove 14111 and the adjusting gear 1431 within the first clearance opening 1442.
[0079] like Figure 6 As shown, in the above embodiment, the adjusting member 143 further includes an adjusting rod 1432 connected to the adjusting gear 1431 and located at the end of the adjusting member 143, such as... Figure 1 , Figure 15 As shown, an operating port 121 is provided at the position opposite to the adjusting rod 1432 on the base or pot 110.
[0080] When the magnetic suction assembly 140 is installed on the base, specifically, when the magnetic suction assembly 140 is installed on the transmission part 120 connected to the base, an operation port 121 is provided at the position opposite to the adjustment rod 1432 of the transmission part 120 connected to the base. In this way, the adjustment rod 1432 can be operated by means of tools or hands through the operation port 121 outside the transmission part 120 to rotate the entire adjustment component 143, so that the adjustment gear 1431 and the rack 14211 mesh to drive the second magnetic pole base 1421 to move relative to the first magnetic pole base 1411 in the slide groove 14111, so as to realize the adjustment operation of the magnetic suction force of the entire magnetic suction assembly 140, thereby meeting the needs of different magnetic suction forces of the magnetic suction assembly 140 during different operations of loading and unloading the pot. The operation is simple and the adjustment is convenient, which greatly improves the efficiency of loading and unloading the pot.
[0081] When the magnetic suction assembly 140 is installed on the cookware 110, an operation port 121 is provided at the position opposite to the adjusting rod 1432 on the cookware 110. It can be understood that when the magnetic suction assembly 140 is installed on the cookware 110 through other structures, an operation port 121 can be provided at the position opposite to the adjusting rod 1432 on the other structures. In this way, the adjusting rod 1432 can be operated through the operation port 121 from the outside of the other structures to make the entire adjusting component 143 rotate, so that the adjusting gear 1431 and the rack 14211 mesh to drive the second magnetic pole base 1421 to move relative to the first magnetic pole base 1411 in the slide groove 14111, so as to realize the adjustment operation of the magnetic suction force of the entire magnetic suction assembly 140, thereby meeting the needs of different magnitudes of magnetic suction force of the magnetic suction assembly 140 during different operations of loading and unloading the cookware. The operation is simple and the adjustment is convenient, which greatly improves the efficiency of loading and unloading the cookware.
[0082] like Figure 7 and Figure 8As shown, in some possible embodiments provided in this application, the fixed magnetic pole assembly 141 includes a plurality of fixed magnetic poles 1412. The fixed magnetic pole assembly 141 also includes a first magnetic isolation strip 1413 mounted on a first magnetic pole base 1411. The first magnetic isolation strip 1413 is located between adjacent fixed magnetic poles 1412 and is made of a non-magnetic material. The arrangement of the first magnetic isolation strip 1413 can reduce or eliminate the influence of the magnetic field of two adjacent fixed magnetic poles 1412 on each other and other equipment or materials, so as to ensure that the plurality of fixed magnetic poles 1412 as a whole have a strong and durable magnetic force.
[0083] like Figure 9 and Figure 10 As shown, in some possible embodiments provided in this application, the active magnetic pole assembly 142 includes a plurality of active magnetic poles 1422. The active magnetic pole assembly 142 also includes a second magnetic isolation strip 1423 mounted on a second magnetic pole base 1421. The second magnetic isolation strip 1423 is located between adjacent active magnetic poles 1422 and is made of a non-magnetic material. The arrangement of the second magnetic isolation strip 1423 can reduce or eliminate the influence of the magnetic fields of two adjacent active magnetic poles 1422 on each other and other equipment or materials, so as to ensure that the plurality of active magnetic poles 1422 as a whole have a strong and durable magnetic force.
[0084] like Figure 6 , Figure 11 and Figure 12 As shown, in some possible embodiments provided in this application, the magnetic suction assembly 140 further includes a buffer assembly 145, which is located on the side of the magnetic suction assembly 140 facing the adsorption member 130. Thus, when the magnetic suction assembly 140 and the adsorption member 130 are attracted together, the adsorption member 130 directly contacts the buffer assembly 145. The buffer assembly 145 reduces or avoids the problem of the adsorption member 130 directly or indirectly contacting the fixed magnetic pole 1412 or the movable magnetic pole 1422 when the magnetic suction assembly 140 and the adsorption member 130 are attracted together, thus preventing damage to the fixed magnetic pole 1412 or the movable magnetic pole 1422. The buffer assembly 145 provides good buffer protection for the fixed magnetic pole 1412 and the movable magnetic pole 1422, which helps to extend the overall service life of the magnetic suction assembly 140 and improve its reliability.
[0085] like Figure 11 and Figure 12As shown, in the above embodiment, the buffer assembly 145 includes a buffer plate 1451 and a third magnetic stripe 1452 mounted on the buffer plate 1451. The buffer plate 1451 is connected to the first magnetic pole base 1411. The fixed magnetic pole assembly 141 and the movable magnetic pole assembly 142 are located between the buffer plate 1451 and the mounting base 144, that is, the first magnetic pole base 1411, the second magnetic pole base 1421, the fixed magnetic pole 1412, and the movable magnetic pole 1422 are all located between the buffer plate 1451 and the mounting base 144. In this embodiment, by setting the buffer assembly 145, the impact force of the adsorption member 130 is buffered when it is attracted to the magnetic assembly 140, thereby providing good protection for the first magnetic pole base 1411, the second magnetic pole base 1421, the fixed magnetic pole 1412, and the movable magnetic pole 1422, which is beneficial to improving the service life of the entire magnetic assembly 140.
[0086] like Figure 12 As shown, in the above embodiment, the buffer plate 1451 is configured as a soft magnet, and the buffer assembly 145 further includes a third magnetic shielding strip 1452 mounted on the buffer plate 1451. The third magnetic shielding strip 1452 is made of a non-magnetic material. By configuring the buffer plate 1451 as a soft magnet, the movable magnetic pole assembly 142, the fixed magnetic pole 1412, the buffer plate 1451, and the adsorption member 130 can form a magnetic flux loop, allowing them to attract each other using magnetic attraction. The third magnetic shielding strip 1452 reduces or eliminates the influence of adjacent fixed magnetic poles 1412 on each other and other equipment or materials, and reduces or eliminates the influence of adjacent movable magnetic poles 1422 on each other and other equipment or materials, ensuring that the multiple fixed magnetic poles 1412 and the multiple movable magnetic poles 1422 all possess strong and durable magnetic force.
[0087] like Figure 6 , Figure 7 As shown, in some possible embodiments provided in this application, at least two sets of fixed magnetic poles 1412 are spaced apart on the first magnetic pole base 1411 along a first direction, each set including at least one fixed magnetic pole 1412, and a second magnetic pole base 1421 equal in number to the fixed magnetic poles 1412 is spaced apart on the first magnetic pole base 1411 along a second direction, and a plurality of movable magnetic poles 1422 are installed on each second magnetic pole base 1421, the second direction being perpendicular to the first direction.
[0088] Among them, the first direction can be as follows: Figure 6 and Figure 7 As shown by arrow X in the image, the second direction can be as follows: Figure 6 and Figure 7 As indicated by the arrow Y in the diagram.
[0089] In this embodiment, by grouping the fixed magnetic poles 1412, the number of groups of the second magnetic pole base 1421 and the fixed magnetic poles 1412 are equal. This allows the movable magnetic poles 1422 mounted on the second magnetic pole base 1421, the multiple groups of fixed magnetic poles 1412, the first magnetic pole base 1411, the second magnetic pole base 1421, and the mounting base 144 to form a magnetic flux loop with a large range. This ensures that the magnetic attraction assembly 140 has a large range of magnetic attraction force, thereby improving the reliability and stability of the cookware 110 after assembly with the base. Furthermore, this arrangement can meet the needs of different structures of the magnetic attraction assembly 140.
[0090] Specifically, the number of fixed magnetic pole assemblies 141 can be two, three, or other groups, and the number of fixed magnetic poles 1412 in each group of fixed magnetic poles 1412 can be one, two, three, or other. The number of movable magnetic poles 1422 on each second magnetic pole base 1421 can be one, two, three, or other.
[0091] Specifically, such as Figure 6 and Figure 7 As shown, there are two sets of fixed magnetic poles 1412, which are spaced apart along the X-direction on both sides of the first magnetic pole base 1411, with four fixed magnetic poles 1412 in each set. The first magnetic pole base 1411 has a through hole in its center, allowing other components of the drum module 100 to pass through, such as the stirring shaft 170 of the stirring assembly mentioned later. The two sets of fixed magnetic poles 1412 are spaced apart along the X-direction on both sides of the through hole in the first magnetic pole base 1411. There are two second magnetic pole bases 1421, arranged along the Y-direction on both sides of the through hole in the first magnetic pole base 1411. Figure 7 As shown, the fixed magnetic pole 1412 is located between the two second magnetic pole bases 1421, so that the movable magnetic pole 1422 on the second magnetic pole base 1421 forms a magnetic flux loop through the second magnetic pole base 1421, the first magnetic pole base 1411, the mounting base 144, and the fixed magnetic pole 1412, and makes the entire magnetic pole assembly have a large range of magnetic pole force, thereby improving the reliability and stability of the cookware 110 after it is assembled with the base.
[0092] like Figure 18 , Figure 19As shown, in some possible embodiments provided in this application, the movable magnetic pole assembly 142 further includes a connecting seat 1425, which is fixedly connected to the first magnetic pole base 1411, and the second magnetic pole base 1421 is rotatably connected to the connecting seat 1425. Thus, by rotating the second magnetic pole base 1421 relative to the connecting seat 1425, the second magnetic pole base 1421 can rotate relative to the first magnetic pole base 1411, thereby realizing the movement of the movable magnetic pole assembly 142 relative to the fixed magnetic pole assembly 141, and thus realizing the adjustment of the magnetic attraction force of the magnetic attraction assembly 140. The structure is simple, easy to operate, and easy to implement.
[0093] Among them, such as Figure 18 , Figure 19 , 25 and Figure 27 As shown, an adjustment part 14212 is connected to or formed on the second magnetic pole base 1421. Rotating the adjustment part 14212 allows the second magnetic pole base 1421 to rotate relative to the connecting seat 1425, thereby allowing the second magnetic pole base 1421 to rotate relative to the first magnetic pole base 1411. This achieves relative rotation between the first magnetic pole base 1411 and the second magnetic pole base 1421, thus adjusting the magnetic attraction force of the magnetic attraction assembly 140. This configuration is simple in structure and convenient in operation. Specifically, rotating the adjustment part 14212 allows the second magnetic pole base 1421 to reciprocate relative to the connecting seat 1425, that is, the second magnetic pole base 1421 can rotate clockwise and counterclockwise relative to the connecting seat 1425. It is understandable that after the second magnetic pole base 1421 rotates relative to the connecting seat 1425 in different directions, it can change the magnetic pole properties of the movable magnetic pole 1422 to form different magnetic fields, thereby changing the magnetic attraction between the movable magnetic pole assembly 142 and the fixed magnetic pole assembly 141.
[0094] The connector 1425 is made of a non-magnetic material, which hinders the propagation of magnetic flux. This allows the fixed magnetic pole 1412, the movable magnetic pole 1422, the first magnetic pole base 1411, the second magnetic pole base 1421 and other structures to form a complete magnetic flux circuit, and the magnetic flux circuit can pass smoothly through the adsorption member 130.
[0095] The connecting seat 1425 and the first magnetic pole base 1411 are fixedly connected, meaning there is no relative movement between them. Specifically, the connecting seat 1425 can be connected to the first magnetic pole base 1411 through snap-fit, plug-in, tenon-and-mortise, bolt, or adhesive methods. This ensures that when the second magnetic pole base 1421 on the connecting seat 1425 rotates, it will not cause relative movement between the connecting seat 1425 and the first magnetic pole base 1411, thus ensuring the accuracy of the magnetic flux circuit direction of the entire magnetic pole assembly.
[0096] Specifically, Figure 16 This diagram shows the magnetic field distribution of the magnetic attraction assembly 140 and the attraction element 130 under load. Figure 17 A schematic diagram of the magnetic field distribution of the magnetic attraction assembly 140 and the adsorption member 130 in the unloaded state is shown. Figure 16 and Figure 17 This is an explanation of the working principle of the magnetic attraction assembly 140 and the adsorption member 130, which are rotatable relative to the first magnetic pole base 1411 and are mentioned above. Figure 16 and Figure 17 The second magnetic pole base 1421 is rotatable relative to the first magnetic pole base 1411, wherein, Figure 16 The fixed magnetic pole 1412 has an N pole on its left and an S pole on its right, while the movable magnetic pole 1422 has an N pole on its left and an S pole on its right. At this time, the magnetic lines of force of the fixed magnetic pole 1412, the movable magnetic pole 1422, and the adsorption element 130 are as follows: Figure 16 As shown, the suction is strong at this point, which can relatively fix the cookware on the base. Among other things, Figure 17 The fixed magnetic pole 1412 has an N pole on its left and an S pole on its right, while the movable magnetic pole 1422 has an S pole on its left and an N pole on its right. At this time, the magnetic lines of force of the fixed magnetic pole 1412, the movable magnetic pole 1422, and the adsorption element 130 are as follows: Figure 17 As shown, the suction is weak at this time, making it easy to disassemble the cookware.
[0097] Among them, by Figure 16 and Figure 17 It can be seen that the magnetic properties of the side of the active magnetic pole 1422 closest to the fixed magnetic pole 1412 changed under different loading and unloading states, indicating that... Figure 16 and Figure 17 The second magnetic pole base 1421 is located at a different position relative to the first magnetic pole base 1411, meaning the magnetic attraction force provided by the magnetic attraction assembly 140 is different under load and unload conditions, thus adjusting the magnetic attraction force. Specifically, Figure 16 The magnetic attraction component 140 has a large magnetic attraction force, which makes the magnetic attraction between the magnetic attraction component 140 and the adsorption component 130 strong, so that the cookware 110 can be reliably and stably fixed on the base. Figure 17 The magnetic attraction component 140 has a small magnetic attraction force or no magnetic pole force, which makes the magnetic attraction between the magnetic attraction component 140 and the adsorption component 130 weak. This makes it easy for users to move the cookware 110 and the base in two directions with a small force. The casing separates the adsorption component 130 and the magnetic attraction component 140, thereby disassembling the cookware 110. The operation is simple and the disassembly efficiency is high.
[0098] like Figure 18 , Figure 19As shown, in some possible embodiments provided in this application, the magnetic pole assembly further includes a side base 147, which is connected to the first magnetic pole base 1411 and located on at least one side of the connecting seat 1425. The fixed magnetic pole 1412 is located within the space enclosed by the side base 147 and the first magnetic pole base 1411. The side base 147 and the first magnetic pole base 1411 provide good protection for the fixed magnetic pole 1412, which helps to extend the service life of the fixed magnetic pole 1412 and improve its reliability. The second magnetic pole base 1421 is located within the space enclosed by the side base 147, the connecting seat 1425, and the first magnetic pole base 1411. The side base 147, the connecting seat 1425, and the first magnetic pole base 1411 provide good protection for the second magnetic pole base 1421 and limit its rotation space.
[0099] In this embodiment, the side base 147 is set as a soft magnet. The side base 147 of the soft magnet component cooperates with the connecting seat 1425 of the non-magnetic material component to guide and limit the magnetic flux circuit formed by the fixed magnetic pole 1412, the movable magnetic pole 1422, the first magnetic pole base 1411, the second magnetic pole base 1421, etc., so that the magnetic flux circuit of the magnetic attraction component 140 can pass smoothly through the adsorption component 130 and can provide a large range of magnetic pole force.
[0100] like Figure 19 As shown, the magnetic attraction assembly 140 also includes a fourth magnetic shielding strip 148 mounted on the side base 147. The fourth magnetic shielding strip 148 is made of a non-magnetic material and is located on the side of the side base 147 away from the active magnetic pole assembly 142. The arrangement of the fourth magnetic shielding strip 148 can reduce or eliminate the influence of the magnetic field of the active magnetic pole 1422, or the fixed magnetic pole 1412, or the side base 147 on other equipment or materials, so as to ensure that the active magnetic pole 1422 and / or the fixed magnetic pole 1412 have a stronger and more durable magnetic force.
[0101] like Figure 19 As shown in the above embodiment, a second clearance opening 1471 is provided at the position opposite to the adjustment part 14212 on the side base 147, so that by rotating the adjustment part 14212 outside the magnetic suction assembly 140, the second magnetic pole base 1421 can be rotated relative to the connecting seat 1425, thereby realizing the adjustment operation of the magnetic attraction force of the entire magnetic suction assembly 140, and thus meeting the needs of different magnetic attraction forces of the magnetic suction assembly 140 during different operations of loading and unloading the pot. The operation is simple and the adjustment is convenient, which greatly improves the efficiency of loading and unloading the pot.
[0102] like Figure 1 and Figure 15As shown, in the above embodiment, an operation port 121 is provided at the position opposite to the second clearance port 1471 on the base or pot 110.
[0103] When the magnetic suction assembly 140 is installed on the base, and when the magnetic suction assembly 140 is installed on the transmission part 120 connected to the base, an operation port 121 is provided at the position opposite to the second clearance port 1471 of the transmission part 120 connected to the base. In this way, the adjustment part 14212 on the second magnetic pole base 1421 can be operated to rotate through the operation port 121 from the outside of the transmission part 120, so that the second magnetic pole base 1421 rotates relative to the connecting seat 1425, and then rotates relative to the first magnetic pole base 1411, so as to realize the adjustment operation of the magnetic suction force of the entire magnetic suction assembly 140, thereby meeting the needs of different magnetic suction forces of the magnetic suction assembly 140 during different operations of loading and unloading pots. The operation is simple and the adjustment is convenient, which greatly improves the efficiency of loading and unloading pots.
[0104] When the magnetic suction assembly 140 is installed on the cookware 110, the cookware 110 has an operation port 121 at a position opposite to the second operation port 121. It can be understood that when the magnetic suction assembly 140 is installed on the cookware 110 through other structures, the operation port 121 can be opened at a position opposite to the second clearance port 1471 in other structures. In this way, the adjustment part 14212 on the second magnetic pole base 1421 can be operated to rotate through the operation port 121 from the outside of other structures, so that the second magnetic pole base 1421 rotates relative to the connecting seat 1425, and then rotates relative to the first magnetic pole base 1411, so as to realize the adjustment operation of the magnetic suction force of the entire magnetic suction assembly 140, thereby meeting the needs of different magnetic suction forces of the magnetic suction assembly 140 during different operations of loading and unloading the cookware. The operation is simple and the adjustment is convenient, which greatly improves the efficiency of loading and unloading the cookware.
[0105] like Figure 19 As shown, in some possible embodiments provided in this application, two fixed magnetic poles 1412 are distributed on both sides of the first magnetic pole base 1411, and two second magnetic pole bases 1421 are distributed on both sides of the connecting seat 1425. At least some of the movable magnetic poles 1422 are opposite to the corresponding fixed magnetic poles 1412, so that the two fixed magnetic poles 1412, the two movable magnetic poles 1422, the first magnetic pole base 1411, the second magnetic pole base 1421, and the connecting seat 1425 cooperate to form a magnetic flux loop with a large range, so as to ensure that the magnetic pole assembly has a large range of magnetic attraction force, thereby improving the reliability and stability of the cookware 110 after it is assembled with the base.
[0106] In this embodiment, the corresponding fixed magnetic pole 1412 and movable magnetic pole 1422 need to correspond at least partially. Specifically, for example... Figure 18 and Figure 19 As shown, the corresponding fixed magnetic poles 1412 and movable magnetic poles 1422 correspond to each other in the vertical direction, and are arranged in the same direction. The two fixed magnetic poles 1412 are arranged along... Figure 18 The arrows shown are spaced apart in the X direction, with the two movable magnetic poles 1422 along... Figure 18 The arrows shown are arranged at intervals in the X direction, such that the two fixed magnetic poles 1412 and the two movable magnetic poles 1422 are arranged in the same direction. It is understood that in other examples, the arrangement directions of the two fixed magnetic poles 1412 and the two movable magnetic poles 1422 may be different, such as they may be staggered or perpendicular.
[0107] like Figure 22 and Figure 23 As shown, in some possible embodiments provided in this application, the active magnetic pole assembly 142 further includes a linkage mechanism 1424, which is connected to two second magnetic pole bases 1421, such that rotation of one second magnetic pole base 1421 relative to the connecting seat 1425 will cause the other second magnetic pole base 1421 to rotate relative to the connecting seat 1425.
[0108] In other words, the linkage mechanism 1424 allows the rotation of one of the two second magnetic pole bases 1421 to simultaneously drive the rotation of both second magnetic pole bases 1421. This configuration simplifies the steps of adjusting the magnetic attraction force of the magnetic attraction component 140 compared to the need to drive each second magnetic pole base 1421 to rotate individually, which is beneficial to further improve the efficiency of loading and unloading pots.
[0109] like Figure 23 As shown, in the above embodiment, the linkage mechanism 1424 includes a first gear 14241 and a second gear 14242 meshing with each other, a third gear 14243 meshing with each other, and a fourth gear 14244 meshing with each other. The first end of the first gear 14241 is connected to a second magnetic pole base 1421, and the second end of the first gear 14241 is rotatably connected to a connecting seat 1425. The first end of the third gear 14243 is connected to another second magnetic pole base 1421, and the second end of the third gear 14243 is rotatably connected to a connecting seat 1425. The second gear 14242 and the fourth gear 14244 are coaxially arranged. For example, the second gear 14242 and the fourth gear 14244 are connected by a connecting shaft 14245. For example, the connecting shaft 14245 passes through the connecting seat 1425 and is connected to the second gear 14242 and the fourth gear 14244, so that the second gear 14242 and the fourth gear 14244 can rotate synchronously.
[0110] Therefore, when the second magnetic pole base 1421 is driven to rotate by the adjustment part 14212 on any one of the second magnetic pole bases 1421, the other second magnetic pole base 1421 can be driven to rotate synchronously by the cooperation of the first gear 14241, the second gear 14242, the third gear 14243 and the fourth gear 14244. The structure is simple, the transmission is precise and the operation is convenient.
[0111] Specifically, such as Figure 23 As shown, the linkage mechanism 1424 also includes a first bearing 14246, a second bearing 14247, a third bearing 14248, and a fourth bearing 14249. The first gear 14241 is rotatably connected to the connecting seat 1425 through the first bearing 14246, the second gear 14242 is rotatably connected to the connecting seat 1425 through the second bearing 14247, the third gear 14243 is rotatably connected to the connecting seat 1425 through the third bearing 14248, and the fourth gear 14244 is rotatably connected to the connecting seat 1425 through the fourth bearing 14249.
[0112] In the above embodiments, the linkage mechanism 1424 is made of non-magnetic material, that is, the first gear 14241, the second gear 14242, the third gear 14243, the fourth gear 14244, the first bearing 14246, the second bearing 14247, the third bearing 14248, and the fourth bearing 14249 are made of non-magnetic material.
[0113] like Figure 20 , Figure 21 , Figure 23 As shown, in some possible embodiments provided in this application, a limiting part 14112 is provided on one of the first magnetic pole base 1411 and the connecting seat 1425, and a positioning part 14251 is provided on the other. The limiting part 14112 and the positioning part 14251 cooperate to limit the relative movement of the first magnetic pole base 1411 and the connecting seat 1425, so that the connecting seat 1425 can be reliably and stably connected to the first magnetic pole base 1411, thereby improving the reliability and stability of the connection between the first magnetic pole base 1411 and the connecting seat 1425, reducing the problem of relative movement between the connecting seat 1425 and the first magnetic pole base 1411 caused by the rotation of the second magnetic pole base 1421 relative to the connecting seat 1425, and thus improving the overall reliability of the magnetic attraction assembly 140.
[0114] Specifically, the limiting part 14112 can be disposed on the connecting seat 1425, and the positioning part 14251 can be disposed on the first magnetic pole base 1411; or, as Figure 20 , Figure 21 , Figure 23As shown, the limiting part 14112 can be disposed on the first magnetic pole base 1411, and the positioning part 14251 can be disposed on the connecting seat 1425. The limiting part 14112 includes a recess and / or a protrusion; the positioning part 14251 includes a recess and / or a protrusion. Therefore, the different structural requirements of the limiting part 14112 and the positioning part 14251 can be met. Furthermore, when both the limiting part 14112 and the positioning part 14251 include recesses and protrusions, it is beneficial to further improve the limiting effect between the limiting part 14112 and the positioning part 14251, thereby further improving the reliability and stability of the connection between the connecting seat 1425 and the first magnetic pole base 1411.
[0115] like Figure 1 , Figure 2 , Figure 3 and Figure 15 As shown, in some possible embodiments provided in this application, the roller module 100 further includes: a connector 150, a coupling device 160, and a transmission part 120. The connector 150 is installed on the bottom of the cookware 110, the adsorption member 130 is installed on the connector 150, the transmission part 120 is installed on the base, and the magnetic suction assembly 140 is installed on the transmission part 120, so that the magnetic suction assembly 140 is indirectly installed on the base. The coupling device 160 includes a first coupling part 161 and a second coupling part 162 respectively disposed on the transmission part 120 and the connector 150. The first coupling part 161 and the second coupling part 162 are coupled to limit the relative rotation of the connector 150 and the transmission part 120, so that the transmission part 120 rotates relative to the base. Through the coupling device 160, the cookware 110 can be driven to rotate relative to the base. The structure is simple and the transmission is convenient. It is understandable that when the adsorption member 130 and the magnetic adsorption assembly 140 are adsorbed and connected, the first coupling part 161 and the second coupling part 162 can be coupled. When the adsorption member 130 and the magnetic adsorption assembly 140 are separated, the first coupling part 161 and the second coupling part 162 can be separated, thereby enabling the pot disassembly operation.
[0116] The first coupling part 161 and the second coupling part 162 are connected by at least one of the following methods: plug-in, snap-in, and embedded connection. Thus, without the need for professional tools, when the magnetic attraction force of the magnetic attraction component 140 is adjusted to a small or non-existent state, that is, when the magnetic attraction force of the magnetic attraction component 140 on the adsorption component 130 is small or non-existent, the first coupling part 161 and the second coupling part 162 can be moved and / or rotated in a direction away from each other to separate the magnetic attraction component 140 and the adsorption component 130. The first coupling part 161 and the second coupling part 162 can also be separated, thereby decoupling the coupling device 160. Thus, the pot disassembly operation can be realized. The operation is simple and greatly improves the efficiency of pot disassembly.
[0117] The transmission unit 120 may include at least one of a gear mechanism, a chain mechanism, and a synchronous belt pulley mechanism.
[0118] like Figure 1 , Figure 2 and Figure 15 As shown, in some possible embodiments provided in this application, one of the first coupling part 161 and the second coupling part 162 is a positioning shaft and the other is a positioning hole. By inserting the positioning shaft into the positioning hole, the relative movement of the connector 150 and the transmission part 120 can be limited, so that the rotation of the transmission part 120 can drive the pot 110 connected to the connector 150 to rotate relative to the base.
[0119] Specifically, the positioning shaft can be disposed on the connector 150, and the positioning hole can be disposed on the transmission part 120, such as on the gear of the transmission part 120; or, the positioning shaft can be disposed on the transmission part 120, such as on the gear of the transmission part 120, and the positioning hole can be disposed on the connector 150. Specifically, such as... Figure 1 As shown, the positioning shaft is set on the connector 150, and the positioning hole is set on the transmission part 120. There are four positioning shafts and four positioning holes.
[0120] like Figure 3 As shown, in some other possible embodiments provided in this application, one of the first coupling part 161 and the second coupling part 162 is a positioning protrusion and the other is a positioning groove. By cooperating with the positioning protrusion and the positioning groove, the relative movement of the connector 150 and the transmission part 120 can be limited, so that the rotation of the transmission part 120 can drive the pot 110 connected to the connector 150 to rotate relative to the base.
[0121] Specifically, such as Figure 3 As shown, a positioning protrusion can be provided on the connector 150, and a positioning groove can be provided on the transmission part 120; or, a positioning protrusion can be provided on the transmission part 120, and a positioning groove can be provided on the connector 150. Specifically, as... Figure 3 As shown, a positioning protrusion can be provided on the connector 150, and the transmission part 120 includes a gear, with a positioning groove provided on the gear.
[0122] like Figure 1 and Figure 15 As shown, in some possible embodiments provided in this application, the drum module 100 further includes a stirring assembly, which is mounted on a base. The stirring assembly includes a stirring shaft 170, which passes through a transmission part 120, a magnetic suction assembly 140, an adsorption member 130, and a connector 150 and is disposed at the bottom of the pot 110. The stirring shaft 170 is rotatably disposed relative to the pot 110.
[0123] The stirring shaft 170 rotates to stir the food inside the pot 110. Since the stirring shaft 170 passes through the transmission part 120, the relative movements of the stirring shaft 170 and the transmission part 120 do not interfere with each other; that is, the rotation of the pot 110 and the rotation of the stirring shaft 170 can be independent of each other. Specifically, the stirring mechanism and the transmission part 120 can share a single drive unit, or they can each have a separate drive unit.
[0124] An embodiment of the second aspect of this application provides a cooking device, including: a frame, and a drum module 100 of any embodiment of the first aspect, with a base connected to the frame. Since the cooking device includes the drum module 100 of any of the aforementioned embodiments, it has all the technical effects of the aforementioned drum module 100, which will not be described in detail here.
[0125] The base connects to the frame to mount the roller module 100, making operation simple. Understandably, when the roller module 100 malfunctions, the base can be disassembled from the frame for repair, making operation simple and maintenance convenient.
[0126] Furthermore, the base and the frame can be rotatably connected by a rotating component, so that the base can rotate relative to the frame, and the entire drum module 100 can rotate relative to the frame to meet different functional requirements of the cooking equipment. For example, when the drum module 100 rotates relative to the frame, the pot opening can face downwards so that the cooking equipment is in the food dispensing position; when the drum module 100 rotates relative to the frame, the pot opening can face upwards so that the cooking equipment is in the food unloading position; when the drum module 100 rotates relative to the frame, the pot opening can be tilted upwards at a certain angle so that the cooking equipment is in the cooking or pot washing position, etc.
[0127] In the description of this application, the term "multiple" refers to two or more. Unless otherwise expressly 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 application 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 application. 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. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0128] In the description of this application, 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 application. In this application, 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.
[0129] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A drum module (100), characterized by, The pot (110) comprises: a base, the pot (110) is drivingly connected with the base; a suction accessory (130) and a magnetic suction assembly (140), one of the suction accessory (130) and the magnetic suction assembly (140) is installed on the pot (110), and the other is installed on the base, the magnetic suction assembly (140) and the suction accessory (130) are attracted to each other to connect the base and the pot (110); wherein the magnetic attraction force of the magnetic suction assembly (140) is adjustable.
2. The drum module (100) according to claim 1, wherein the magnetic suction assembly (140) comprises a fixed magnetic pole assembly (141) and a movable magnetic pole assembly (142), the movable magnetic pole assembly (142) is movable relative to the fixed magnetic pole assembly (141) to adjust the magnetic attraction force of the magnetic suction assembly (140).
3. The drum module (100) according to claim 2, wherein the fixed magnetic pole assembly (141) comprises a first magnetic pole base (1411) and a fixed magnetic pole (1412) installed on the first magnetic pole base (1411); the movable magnetic pole assembly (142) comprises a second magnetic pole base (1421) and a movable magnetic pole (1422) installed on the second magnetic pole base (1421), the second magnetic pole base (1421) is movable relative to the first magnetic pole base (1411).
4. The drum module (100) according to claim 3, wherein the first magnetic pole base (1411) and the second magnetic pole base (1421) are soft magnets; and / or the fixed magnetic pole (1412) and the movable magnetic pole (1422) are permanent magnets, and the suction accessory (130) is a soft magnet; and / or the second magnetic pole base (1421) and the first magnetic pole base (1411) are relatively movable in at least one of the following ways: translation, rotation, and overturning.
5. The drum module (100) according to claim 4, wherein the first magnetic pole base (1411) is provided with a sliding groove (14111), the second magnetic pole base (1421) is installed in the sliding groove (14111) and is slidable in the sliding groove (14111), and the second magnetic pole base (1421) is connected with or formed with a rack (14211); the magnetic suction assembly (140) further comprises an adjusting member (143), the adjusting member (143) is provided with an adjusting gear (1431) engaged with the rack (14211), and the adjusting member (143) is rotatable to drive the second magnetic pole base (1421) to move along the sliding groove (14111) through the adjusting gear (1431) and the rack (14211) to adjust the magnetic attraction force of the magnetic suction assembly (140).
6. The drum module (100) according to claim 5, wherein The magnetic attraction assembly (140) further comprises a mounting seat (144), the mounting seat (144) is provided with a mounting hole (1441) and a first avoiding opening (1442) communicated with the mounting hole (1441), the first magnetic pole base (1411) is mounted on the mounting seat (144), at least a part of the sliding slot (14111) opposite to the first avoiding opening (1442) is provided as a through slot, the adjusting part (143) is rotatably mounted in the mounting hole (1441), the rack (14211) passes through the sliding slot (14111) and is located in the first avoiding opening (1442) to engage with the adjusting gear (1431); the mounting seat (144) is a soft magnetic body; The adjusting part (143) further comprises an adjusting rod (1432) connected with the adjusting gear (1431) and located at an end of the adjusting part (143), the base or the pot (110) is provided with an operation opening (121) at a position opposite to the adjusting rod (1432).
7. The drum module (100) according to claim 5, characterized in that, The fixed magnetic pole assembly (141) further comprises a first magnetic separation strip (1413) mounted on the first magnetic pole base (1411); The movable magnetic pole assembly (142) further comprises a second magnetic separation strip (1423) mounted on the second magnetic pole base (1421); The first magnetic separation strip (1413) and the second magnetic separation strip (1423) are made of non-magnetic conductive material.
8. The drum module (100) according to claim 6, characterized in that, The magnetic attraction assembly (140) further comprises a buffer assembly (145), the buffer assembly (145) is located on a side of the magnetic attraction assembly (140) facing the suction accessory (130); The buffer assembly (145) comprises a buffer plate (1451) and a third magnetic separation strip (1452) mounted on the buffer plate (1451), the buffer plate (1451) is connected with the first magnetic pole base (1411), the fixed magnetic pole assembly (141) and the movable magnetic pole assembly (142) are located between the buffer plate (1451) and the mounting seat (144); Wherein, the buffer plate (1451) is a soft magnetic body, and the third magnetic separation strip (1452) is made of non-magnetic conductive material.
9. The drum module (100) according to claim 5, characterized in that, At least two groups of the fixed magnetic poles (1412) are distributed on the first magnetic pole base (1411) in a first direction, each group comprises at least one fixed magnetic pole (1412), the second magnetic pole base (1421) equal to the number of the fixed magnetic poles (1412) is arranged on the first magnetic pole base (1411) in a second direction, a plurality of movable magnetic poles (1422) are mounted on each magnetic pole base (1421), and the second direction is perpendicular to the first direction.
10. The drum module (100) according to claim 5, characterized in that, The movable magnetic pole assembly (142) further comprises a connecting seat (1425) fixedly connected between the first magnetic pole base (1411), the second magnetic pole base (1421) is rotationally connected with the connecting seat (1425), the second magnetic pole base (1421) is connected with or formed with an adjusting part (14212), rotating the adjusting part (14212) can make the second magnetic pole base (1421) rotate relative to the connecting seat (1425) to adjust the magnetic attraction force of the magnetic attraction assembly (140), and the connecting seat (1425) is made of a non-magnetic material.
11. The drum module (100) according to claim 10, characterized in that, The magnetic pole assembly further comprises a side base (147) connected with the first magnetic pole base (1411) and located at least on one side of the connecting seat (1425), the fixed magnetic pole (1412) is located in a space enclosed by the side base (147) and the first magnetic pole base (1411), the second magnetic pole base (1421) is located in a space enclosed by the side base (147), the connecting seat (1425) and the first magnetic pole base (1411), and the side base (147) is provided with a second avoiding opening (1471) at a position opposite to the adjusting part (14212); The magnetic pole assembly further comprises a fourth magnetic separation strip (148) mounted on the side base (147), the side base (147) is a soft magnetic body, and the fourth magnetic separation strip (148) is made of a non-magnetic material; The base or the pot (110) is provided with an operation opening (121) at a position opposite to the second avoiding opening (1471).
12. The drum module (100) according to claim 11, characterized in that, The two fixed magnetic poles (1412) are distributed on both sides of the first magnetic pole base (1411), the two second magnetic pole bases (1421) are distributed on both sides of the connecting seat (1425), and at least part of the movable magnetic poles (1422) are opposite to the corresponding fixed magnetic poles (1412).
13. The drum module (100) according to claim 12, characterized in that, The movable magnetic pole assembly (142) further comprises a linkage mechanism (1424) connected with the two second magnetic pole bases (1421), so that rotating one of the second magnetic pole bases (1421) relative to the connecting seat (1425) can drive the other second magnetic pole base (1421) to rotate relative to the connecting seat (1425). The linkage mechanism (1424) comprises a first gear (14241) and a second gear (14242) engaged with each other, a third gear (14243) and a fourth gear (14244) engaged with each other, a first end of the first gear (14241) is connected with one of the second magnetic pole bases (1421), a second end of the first gear (14241) is rotatably connected with the connecting seat (1425), a first end of the third gear (14243) is connected with another one of the second magnetic pole bases (1421), a second end of the third gear (14243) is rotatably connected with the connecting seat (1425), the second gear (14242) and the fourth gear (14244) are coaxially arranged; Wherein, the linkage mechanism (1424) is a non-magnetic conductive material.
14. A cooking apparatus, characterized by, Comprise: A rack, and the drum module (100) as claimed in any one of claims 1 to 13, the base is connected with the rack.