Rinsing system and cooking appliance having the same
Patent Information
- Application Number
- CN202210094554.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-01-26
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2042-01-26
AI Technical Summary
[0003]送料仓的移动、搅拌件在洗料仓盖位于打开位置时的旋转、搅拌件在洗料仓盖位于关闭位置时的旋转、洗料仓盖的开合中的每个动作都需要通过各自的电机来实现,电机以及各电机相连的传动部件数量较多,这增加了零件和装置的数量,导致烹饪器具的内部结构复杂,生产成本高
[0034]可选地,还包括直线驱动装置,所述直线驱动装置与所述送料仓相连,用于驱动所述送料仓沿直线移动。由此,直线驱动装置能够同时驱动送料仓、传动组件和洗料仓盖的运动,操作简单。
Smart Images

Figure CN116530836B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of kitchen appliances, and more specifically to a washing system and a cooking appliance having the same. Background Technology
[0002] Existing cooking appliances, such as automatic rice cookers, typically have a storage compartment and a washing compartment. To keep the rice in the storage compartment dry, the storage compartment and the washing compartment are spaced apart. A movable feeding compartment is usually included to transport the rice from the storage compartment to the washing compartment. The bottom of the washing compartment has a discharge port and a cover to close the discharge port. An agitator is included for washing. The agitator is located inside the washing compartment, and a drive device, such as a motor, is connected to the agitator via a mechanical connection structure, such as a shaft or connector, and drives it to rotate around its axis. To open and close the discharge port, the mechanical connection structure, such as the shaft or connector, is also connected to the washing compartment cover to drive the cover to move up and down.
[0003] The movement of the feeding hopper, the rotation of the agitator when the washing hopper cover is in the open position, the rotation of the agitator when the washing hopper cover is in the closed position, and the opening and closing of the washing hopper cover all require their own motors. The number of motors and the transmission components connected to each motor is large, which increases the number of parts and devices, resulting in a complex internal structure of the cooking appliance and high production costs.
[0004] Therefore, a washing system and cooking appliances incorporating it are needed to at least partially solve the above problems. Summary of the Invention
[0005] The summary section introduces a series of simplified concepts, which will be further explained in detail in the detailed description section. This summary section is not intended to limit the key and essential technical features of the claimed technical solution, nor is it intended to determine the scope of protection of the claimed technical solution.
[0006] To at least partially solve the above problems, the present invention provides a washing system for cooking utensils, comprising: A feeding mechanism, comprising a feeding bin, the feeding bin being movably arranged along a straight line; A washing hopper assembly includes a washing hopper body, a washing hopper cover, an agitator, and a translational fitting. The washing hopper body forms a washing chamber with a discharge port. The washing hopper cover is movably disposed along a straight line. The agitator is located within the washing chamber and is rotatable relative to the washing hopper body. The translational fitting is connected to the washing hopper cover. A transmission assembly, which is movably disposed along a straight line and includes a translational drive element; The transmission assembly is engageable with the feeding hopper so that the transmission assembly moves together with the feeding hopper, and the feeding hopper is movably arranged in a straight line to transfer material to the washing chamber. At least one of the translational mating component and the translational driving component is a magnet, and there is a magnetic force between the translational mating component and the translational driving component. When the transmission assembly moves to change the magnetic force between the translational mating component and the translational driving component, the washing hopper cover moves between an open position that opens the discharge port and a closed position that closes the discharge port.
[0007] According to this solution, the movement of the feeding hopper can drive the transmission component to move, thus enabling the feeding hopper and the transmission component to move synchronously. The transmission component and the washing hopper cover can also move in coordination, allowing only one drive device to move the feeding hopper, thus completing the three linear movements of the feeding hopper, the transmission component, and the washing hopper cover. This enables the feeding hopper to move and discharge material, and the opening and closing of the discharge port. Furthermore, only one drive device to rotate the mixing component is needed to achieve the washing and / or throwing actions.
[0008] Therefore, by setting two drive units, the feeding, washing, and unloading actions of the washing hopper can be completed. This not only simplifies the feeding and unloading process of the washing hopper, but also simplifies the washing operation or the throwing operation, improves the washing efficiency or the unloading effect of the washing hopper, and reduces the number of drive units and the transmission components connected to them. This helps to simplify the internal structure of the product, reduce production costs, and improve the automation level of the product.
[0009] Optionally, the washing hopper assembly further includes a mounting base and a rotating mating component, the rotating mating component being disposed on the mounting base, and the agitator being connected to and rotatable with the mounting base; the transmission assembly includes a transmission body and a rotary drive component, the transmission body being rotatable relative to the washing hopper body, and the rotary drive component being disposed on the transmission body. The rotating drive component and the rotating mating component are magnets. When the transmission body rotates, the stirring component rotates under the magnetic force between the rotating drive component and the rotating mating component. Thus, the stirring component can be driven to rotate by magnetic force. The transmission body can drive the stirring component to rotate synchronously, allowing only one drive device to be used to drive the transmission body to achieve the material washing and / or material throwing action during discharge.
[0010] Optionally, the transmission body has a first driving position and a second driving position that links the rotary drive member with the rotary mating member, the first driving position corresponding to the closed position and the second driving position corresponding to the open position. Thus, the actions of washing and throwing materials during unloading can be achieved by magnetic drive.
[0011] Optionally, the agitator and the washing hopper cover are separate components connected together, or the agitator and the washing hopper cover are formed as a single piece. Thus, the separate component design facilitates manufacturing and offers greater design freedom, while the single-piece design simplifies the assembly process.
[0012] Optionally, the transmission body is provided with a central hole, and the feeding bin is located within the central hole. The transmission body is rotatable relative to the feeding bin. Thus, the feeding bin can smoothly drive the transmission assembly to move, and the rotation of the stirring component driven by the transmission body is independent of the feeding bin.
[0013] Optionally, the feeding mechanism further includes a linkage component located at the bottom of the feeding bin. This linkage component is situated below the transmission assembly and has an upward-facing linkage support surface for supporting the transmission assembly. Thus, the transmission assembly can move downwards together with the feeding bin under its own weight.
[0014] Optionally, the transmission assembly further includes a transmission support located within the central hole of the main body and connected to the transmission main body. The transmission main body is rotatable relative to the transmission support, and the transmission support has a downward-facing support surface that abuts against the linkage support surface. Thus, the transmission main body can be supported by the transmission support, and the relative position of the transmission support to the feeding hopper remains unchanged when the transmission main body rotates. The rotational movement of the transmission main body is independent of the feeding hopper.
[0015] Optionally, the transmission assembly further includes a rotary drive device and a mounting bracket. The mounting bracket is located above the transmission body and connected to the transmission support. The rotary drive device is mounted on the mounting bracket, and its output shaft is connected to the transmission body to rotate the transmission body. Thus, the rotary drive device can move linearly together with the transmission body, allowing the electrically powered rotary drive device to be positioned outside the washing hopper assembly, facilitating user cleaning operations on the washing hopper assembly.
[0016] Optionally, the top of the transmission body is provided with an upwardly protruding gear portion, the gear portion surrounds the central hole of the body, and the output shaft is provided with a transmission gear, the transmission gear meshing with the gear portion; thus, the gear transmission method is simple, the transmission efficiency is high, and the space occupied is small.
[0017] Alternatively, the transmission support may have a central hole and a radially outwardly extending boss, with the feed bin located within the central hole and the top of the transmission body positioned between the boss and the mounting bracket. This restricts the linear movement of the transmission body relative to the transmission support and allows for easy rotation of the transmission body.
[0018] Optionally, the rotary drive is located radially outside the rotary mating member in the drive position; thus, a magnetic force to rotate it can be provided from the radially outside of the mounting base.
[0019] Alternatively, the rotary drive member is located radially inside the rotary mating member in the drive position; thus, a magnetic force to rotate it can be provided from the radially inside the mounting base.
[0020] Alternatively, the rotary drive member can be positioned above the rotary mating member in the drive position. This allows a magnetic force to be provided from the upper side of the mounting base to rotate it.
[0021] Optionally, the rotary drive component is positioned opposite to the rotary mating component in the drive position, and their magnetic poles face opposite directions. Thus, the magnetic force between the rotary drive component and the rotary mating component is a magnetic attraction force, which causes the stirring component to rotate. Alternatively, the rotary drive component and the rotary mating component can be radially offset in the driving position, and their magnetic poles face the same direction. Therefore, the magnetic force between the rotary drive component and the rotary mating component is a magnetic repulsion force, which causes the stirring component to rotate.
[0022] Optionally, the rotary drive is located outside the washing chamber, and in the driving position, the rotary drive is located radially outside the rotary mating member; thus, magnetic force to rotate the agitator can be provided from outside the washing chamber, which can simplify the internal structure of the washing chamber and increase the volume of the washing chamber.
[0023] Alternatively, the rotary drive component can be located inside the washing chamber, and in the driving position, it is located radially inside the rotary mating component. This allows magnetic force to rotate the stirring component to be provided from inside the washing chamber, resulting in a simple external structure for the cooking appliance.
[0024] Optionally, the feeding hopper is provided with an inlet, an outlet, a feeding channel extending between the inlet and the outlet for conveying solid materials, and a water inlet, an outlet, and / or a water inlet channel extending between the inlet and the outlet. Thus, through the feeding hopper, food ingredients and / or water can be simultaneously fed into the washing chamber. For the scheme with both inlet and water inlets, food ingredients and water can be fed simultaneously, saving washing time and increasing washing efficiency. Furthermore, it eliminates the need for a separate water delivery component and a device to drive the water delivery component, reducing the number of parts on the cooking appliance and facilitating product miniaturization.
[0025] Optionally, the washing hopper assembly is located below the feeding hopper and the transmission assembly, and the feeding hopper, the washing hopper cover, and the transmission assembly are all movable vertically. This allows the feeding hopper and transmission assembly to be installed using the space above the washing hopper assembly, and makes it easy for the feeding hopper to connect to the inlet of the washing chamber.
[0026] Optionally, the feeding bin is movable at least between a first position, a second position, and an additional position. The transmission assembly is engageable with the feeding bin so that the transmission assembly moves together with the feeding bin between the first and second positions. In the additional position, the feeding bin extends relative to the transmission assembly and into the washing chamber. Thus, the feeding bin has a two-stage motion relative to the transmission assembly; it can move together with the transmission assembly or move independently. Independent movement of the feeding bin allows for individual material feeding. Furthermore, in the first position, the feeding bin and / or the transmission assembly are partially or completely housed within the machine body assembly, leaving space above the washing bin assembly. This allows for unrestricted placement and retrieval of the washing bin assembly, facilitating operation and preventing damage to the feeding bin and transmission assembly. In the second position, the feeding bin and transmission assembly extend to engage with the washing bin assembly.
[0027] Optionally, the feeding hopper has a feed channel for conveying solid materials. When the feeding hopper is in the first and second positions, the feed channel is not connected to the washing chamber. In the additional position, the feeding hopper extends relative to the transmission assembly and into the washing chamber, and the feed channel is connected to the washing chamber. Thus, the feeding hopper and the washing chamber can be switched between a connected state and a disconnected state to perform feeding and stop feeding operations.
[0028] Optionally, the system also includes a storage hopper. The inlet and outlet of the feeding channel are both located on the axially extending sidewall of the washing hopper. When the feeding hopper is in the first and second positions, the sidewall of the feeding hopper blocks the outlet of the storage hopper. When the feeding hopper is in the additional position, the inlet is connected to the outlet of the storage hopper, and the outlet is connected to the washing chamber. Thus, by moving the feeding hopper, the outlets of the feeding hopper and the storage hopper switch between a closed state and a connected state. When the outlets of the feeding hopper and the storage hopper are connected, material can be fed from the side of the feeding hopper and discharged from the side.
[0029] Optionally, when the feeding bin is in the additional position, the transmission assembly abuts against the top surface of the washing bin body; or a fixed support frame is included, and when the feeding bin is in the additional position, the transmission assembly abuts against the fixed support frame. Thus, the transmission assembly can be supported by the washing bin body or the fixed support frame to prevent its movement, allowing the feeding bin to move independently relative to the transmission assembly. In the option where it is supported by the washing bin body, the washing bin assembly structure is simple and easy to manufacture.
[0030] Optionally, the translational mating component is a magnet, and the translational driving component is one of a magnet, iron, nickel, cobalt, ferritic steel, martensitic steel, or austenitic-ferritic dual-phase steel; Alternatively, both the translational mating component and the translational driving component may be magnets; Alternatively, the translational mating component may be one of iron, nickel, cobalt, ferritic steel, martensitic steel, or austenitic-ferritic dual-phase steel, and the translational driving component may be a magnet.
[0031] Therefore, in schemes where all components are magnets, a greater magnetic force can be provided and the state is stable; the magnetism of iron, nickel, cobalt, ferritic steel, martensitic steel, and austenitic-ferritic dual-phase steel is not affected by high temperatures. Translational mating components and translational driving components can be set as needed.
[0032] Optionally, the translational drive member and the translational mating member are positioned opposite each other and have opposite or the same magnetic poles facing each other; thus, the magnetic force between the translational drive member and the translational mating member can be magnetic attraction or magnetic repulsion.
[0033] And / or the translational drive is located outside or inside the washing chamber. This allows magnetic force to be provided from outside the washing chamber to move the washing chamber cover; it simplifies the internal structure of the washing chamber, increases its volume, improves the single-pass capacity of the washing chamber, and facilitates cleaning of the washing chamber.
[0034] Optionally, the system also includes a linear drive unit connected to the feeding hopper for driving the feeding hopper to move in a straight line. Thus, the linear drive unit can simultaneously drive the movement of the feeding hopper, the transmission assembly, and the washing hopper cover, simplifying operation.
[0035] Optionally, the feeding bin is provided with a screw hole, and the feeding mechanism further includes a screw connected to the output shaft of the linear drive device and located within the screw hole. This facilitates manufacturing, assembly, and reduces costs.
[0036] Optionally, the washing hopper cover may block all or part of the discharge ports. Thus, the washing hopper cover can be configured to block the discharge ports itself or, together with other connected components, block the discharge ports according to design requirements.
[0037] According to another aspect of the present invention, a cooking appliance is provided, comprising a pot body and a washing system according to any of the preceding aspects, wherein the washing chamber assembly is connected to the pot body via the discharge port for discharging materials. Attached Figure Description
[0038] The following drawings, which are incorporated herein by reference and used to understand this application, illustrate embodiments of the application and their descriptions, thereby explaining the principles of the application.
[0039] In the attached image: Figure 1 A perspective view of a cooking utensil according to a preferred embodiment of the present invention; Figure 2 for Figure 1 The image shows a cross-sectional view of the cooking appliance in its initial state. Figure 3 for Figure 1 The image shows a cross-sectional view of a cooking appliance in a pre-cooking state. Figure 4 for Figure 1 The image shows a cross-sectional view of the cooking appliance in the feeding position; Figure 5 for Figure 1 The cross-sectional view of the cooking appliance shown is shown in the state of having finished feeding and washing the ingredients; Figure 6 for Figure 1 The image shows a cross-sectional view of a cooking appliance in a preparatory state for dispensing food. Figure 7 for Figure 1 The cross-sectional view of the cooking utensil shown is shown in the first feeding state; Figure 8 for Figure 1 The cross-sectional view of the cooking utensil shown is shown in the second discharging state; Figure 9 for Figure 1 The cross-sectional view of the cooking appliance shown is in the reset state after the material has been dispensed; Figure 10 for Figure 2 An exploded perspective view of a portion of the washing system shown. Figure 11 for Figure 10 An exploded perspective view of a portion of the feeding mechanism shown. Figure 12 for Figure 10 An exploded perspective view of another part of the feeding mechanism shown; Figure 13 for Figure 2 The cross-sectional view of the pot lid and washing hopper assembly shown; Figure 14 for Figure 2 An exploded perspective view of the pot lid and washing hopper assembly shown. Figure 15 for Figure 14 The image shows a perspective view of the pot lid and the main body of the washing hopper in an inverted state. Figure 16 for Figure 14 An exploded perspective view of the first and second mounting bases shown in the figure; Figure 17 for Figure 14 An exploded perspective view of the first mounting base and its components shown. Figure 17A for Figure 13 Enlarged view of section A; Figure 17B for Figure 13 Enlarged view of section B; Figure 17C for Figure 2 The diagram shows the relationship between the translational drive component and the rotary drive component in the driving position and the translational mating component and the rotary mating component. Figure 18 for Figure 10 A cross-sectional view of the transmission assembly shown; Figure 19 for Figure 10 A perspective view of the transmission assembly shown; Figure 20 For along Figure 18 A cross-sectional view of the section cut by the middle BB line; Figure 21 For along Figure 5 A cross-sectional view of an embodiment cut by line AA; Figure 22 For along Figure 5 A cross-sectional view of another embodiment cut by line AA. Detailed Implementation
[0040] In the following description, numerous specific details are set forth in order to provide a more thorough understanding of the invention. However, it will be apparent to those skilled in the art that the invention can be practiced without one or more of these details. In other instances, certain technical features well-known in the art have not been described in order to avoid obscuring the invention.
[0041] To fully understand the present invention, a detailed description will be set forth in the following description. It is obvious that the implementation of embodiments of the present invention is not limited to the specific details familiar to those skilled in the art. Preferred embodiments of the present invention are described in detail below; however, in addition to these detailed descriptions, the present invention may have other embodiments.
[0042] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the scope of exemplary embodiments according to the invention. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms “comprising” and / or “including” are used in this specification, they indicate the presence of the stated features, integrals, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components, and / or combinations thereof.
[0043] The ordinal numbers such as "first" and "second" used in this invention are merely identifiers and do not have any other meaning, such as a specific order. Moreover, for example, the term "first component" does not imply the existence of "second component," and the term "second component" does not imply the existence of "first component."
[0044] It should be noted that the terms “up,” “down,” “front,” “back,” “left,” “right,” “inner,” “outer,” and similar expressions used in this article are for illustrative purposes only and are not intended to be restrictive.
[0045] Exemplary embodiments according to the present invention will now be described in more detail with reference to the accompanying drawings. However, these exemplary embodiments may be implemented in many different forms and should not be construed as being limited to the embodiments set forth herein. It should be understood that these embodiments are provided so that the disclosure of the invention is thorough and complete, and that the concept of these exemplary embodiments is fully conveyed to those skilled in the art.
[0046] This invention provides a cooking appliance equipped with a washing system. This washing system enables the cooking appliance to perform multiple functions, including fully automatic feeding, water intake, washing, and discharging of ingredients.
[0047] The cooking appliance of the present invention will now be described in detail with reference to the accompanying drawings.
[0048] Figures 1 to 22 A preferred method of application of cooking utensil 1 is shown, see reference. Figure 1 and Figure 2 The cooking appliance 1 includes a body assembly 11 and a pot assembly. The bottom of the body assembly 11 has a base 12, on which the pot assembly can be placed and removed so that the pot assembly can be placed in any desired location, such as a dining table.
[0049] The pot assembly includes a pot body 2, an inner pot 3 disposed within the pot body 2, and a lid 4 fitted onto the pot body 2. The pot body 2 is detachably mounted on a base 12. The inner pot 3 is removably placed within the pot body 2. The lid 4 is detachably attached to the pot body 2. In a preferred embodiment, the lid 4 can be completely removed from the pot body 2, allowing the user to easily remove the entire lid 4 from the pot body 2 for cleaning. When the lid 4 is fitted onto the pot body 2, a cooking space is formed between the lid 4 and the inner pot 3.
[0050] The base 12 typically houses a heating device and a power supply module for supplying power to the heating device. When the pot assembly is placed on the base 12, the power supply module supplies power to the heating device, enabling it to heat the inner pot 3 within the pot body. In a preferred embodiment, the heating device is electromagnetic heating. Exemplarily, the heating device may include a coil and a coil wound on the coil, so that when energized, the heating device can generate heat to heat the inner pot 3. It is understood that in other embodiments not shown, the heating device may also be configured with other structures, such as heating wire heating. Exemplarily, the power supply module may be a plug adapted to an external power source, which supplies power to the heating device when plugged in. The power supply module may also be a battery housed in the base 12, or it may be an electrical connection wire electrically connected to other power supply modules on the body assembly 11.
[0051] refer to Figures 2-9The machine body assembly 11 also includes a storage mechanism and a feeding mechanism 100. The storage mechanism includes a storage bin 13, which can store solid materials such as rice, millet, corn kernels, black beans, red beans, and mung beans. The storage bin 13 has a side outlet, meaning that the outlet is located on the side of the storage bin 13 to facilitate the outflow of materials from the storage bin 13. In the illustrated embodiment, the outlet is located at the bottom of the storage bin 13, further facilitating the outflow of materials from the storage bin 13 by gravity. The top of the storage bin 13 may be covered with a storage bin cover. Materials can be added to the storage bin by opening the storage bin cover.
[0052] Continue to refer to Figures 2-9 as well as Figure 12 The feeding mechanism 100 includes a feeding bin 110. The feeding bin 110 has an inlet 111, an outlet 112 disposed below the inlet 111, and a vertically extending feeding channel disposed between the inlet 111 and the outlet 112. The feeding channel is used to convey solid materials. Both the inlet 111 and the outlet 112 are disposed on the side wall of the feeding bin 110. The feeding bin 110 also has a water inlet 113, an outlet 114 disposed below the water inlet 113, and a vertically extending water channel disposed between the water inlet 113 and the outlet 114. The water inlet 113 is disposed on the side wall of the feeding bin 110, and the outlet 112 is disposed at the bottom of the feeding bin 110. The feeding bin 110 is at least in a first position (e.g., Figure 2 The initial state shown) and the second position (e.g.) Figure 3 The feed hopper 110 is movable between the prepared feeding state shown. When the feed hopper 110 is in the first position, the side wall of the feed hopper 110 blocks the outlet of the storage hopper 13, and the feed channel and outlet of the feed hopper 110 and the feed inlet 201 of the washing hopper assembly 200 (described below) are not connected.
[0053] like Figure 4 As shown, the feeding hopper 110 also has an additional position. When the feeding hopper is in the additional position, the inlet 111 of the feeding hopper 110 and the outlet of the storage hopper 13 are connected. Solid materials enter the feeding channel of the feeding hopper and are discharged through the outlet 112 into the inlet 201 of the washing hopper assembly 200. The feeding hopper 110 is generally constructed as a columnar structure, and the inlet 111 is an arc-shaped opening extending along the circumferential direction of the feeding hopper 110. The feeding hopper 110 is in a second position (e.g., Figure 3 (as shown in the ready-to-feed state) and additional positions (such as...) Figure 4 It can move between the feeding states shown, and in the second position (e.g.) Figure 3When the material is in the ready-to-feed state (as shown), the side wall of the feeding bin 110 blocks the outlet of the storage bin 13, and the feeding bin 110 is moved downward. The outlets of the feeding bin 110 and the storage bin 13 will switch from the closed state to the connected state, that is, the inlet 111 of the feeding bin 110 is opened. At the same time, the outlet 112 of the feeding bin 110 is also opened. Therefore, the material in the storage bin 13 can be fed from the side of the feeding bin 110, flow through the feeding channel, and be discharged from the side into the washing bin assembly 200.
[0054] Washing bin components like Figure 2-9 as well as Figure 13-16 As shown, the cooking appliance 1 also includes a washing chamber assembly 200, which is disposed within the pot lid 4. When the pot lid 4 is removed from the pot body 2, the washing chamber assembly 200 is also removed to facilitate disassembly and cleaning. The washing chamber assembly 200 includes a washing chamber body 210 with a discharge port 212. The washing chamber body 210 has a washing chamber 211, through which washed materials can be discharged. The washing chamber body 210 also has an inlet 201, through which materials in the feeding chamber 110 described above can enter the washing chamber 211. The inlet 201 is located above the discharge port 212. Furthermore, the washing chamber body 210 forms a washing chamber 211 with an inlet 201 and a discharge port 212.
[0055] The washing hopper assembly 200 includes a side wall portion 6. The side wall portion 6 is disposed on the pot lid 4 and forms the washing hopper body 210, surrounding a washing chamber 211 having a discharge port 212. In a preferred embodiment, the side wall portion 6 is formed as part of the pot lid 4, that is, the side wall portion 6 and the pot lid 4 are integrally formed. The side wall portion 6 can be configured to extend vertically, so that the washing chamber 211 is of the same width from top to bottom, or it can be configured to extend obliquely from top to bottom toward the interior of the washing chamber 211, i.e., the washing chamber 211 is wider at the bottom and narrower at the top, to reduce material residue. Furthermore, the inner surface of the side wall portion 6 is configured as a smooth surface to further reduce material residue. The washing hopper assembly 200 also includes an agitator 19 disposed within the washing hopper chamber and a washing hopper cover 270 disposed below the agitator 19. The washing hopper cover 270, together with a portion of the first mounting base 220 (described below), the agitator 19, and the sealing member 261 (described below), covers the discharge port 212.
[0056] In other embodiments, the washing hopper cover 270 can cover the discharge port 212 separately, that is, the discharge port 212 can be completely closed by the washing hopper cover 270 alone.
[0057] The washing hopper cover 270 is movably disposed on the washing hopper body 210. Specifically, the washing hopper cover 270 is movable between an open position where the discharge port 212 is opened and a closed position where the discharge port 212 is closed. Figure 2-6 As shown, the washing hopper cover 270 is located at the top, in the closed position covering the discharge port 212; as Figure 7-9 As shown, the washing chamber cover 270 moves downwards and is in the open position of the discharge port 212. At this time, the material in the washing chamber 211 can fall into the inner pot 3 through the discharge port 212.
[0058] In the illustrated embodiment, the agitator is fixed and supported on the first mounting base. The two ends of the washing hopper cover 270 contact the agitator 19 and the first mounting base 220 respectively, and the axial degrees of freedom at both ends are simultaneously constrained by the agitator 19 and the first mounting base 220. The agitator 19 and the washing hopper cover 270 can move together between an open position and a closed position. The agitator 19 is rotatable relative to the washing hopper cover 270. In other embodiments not shown, the agitator 19 may also be fixedly connected to the washing hopper cover 270, meaning the washing hopper cover 270 and the agitator 19 are rotatable together. That is, when the agitator 19 rotates, the washing hopper cover 270 may or may not rotate.
[0059] In one embodiment, the agitator 19 can rotate during washing and discharging operations. Preferably, the agitator 19 is configured in a turntable shape and has a conical guide surface that is axially inclined and slopes outward from top to bottom along the radial direction of the agitator 19. This design allows the material on the agitator 19 to be more easily discharging during rotation, in addition to the centrifugal force, thanks to the inclined guide surface. Furthermore, the inclined guide surface facilitates downward sliding of the material, reducing residual material in the washing chamber 211.
[0060] Transmission components In one embodiment, the cooking appliance 1 further includes a transmission assembly 300, which is movable in a straight line. Specifically, the transmission assembly 300 is engageable with the feeding bin 110 such that the transmission assembly 300 moves with the feeding bin 110 in a first position (e.g., ...). Figure 2 (as shown) and second position (as shown) Figure 3 The transmission assembly 300 can drive at least a portion of the washing bin assembly 200 to rotate, for example, at least the agitator 19, to complete the washing and / or discharge process; and can drive the agitator 19 together with the washing bin cover 270 to move between the open and closed positions to complete the discharge and drainage process.
[0061] The transmission component 300 is disposed within the storage mechanism or the feeding mechanism 100. Specifically, the transmission component 300 is not disposed on the lid 4. This design, by placing the electrically powered transmission component 300 elsewhere on the lid 4, reduces the number of components on the lid 4, simplifying the lid structure. It also facilitates cleaning operations for the lid 4 and the washing hopper assembly 200. Furthermore, this design eliminates the need to consider waterproofing of the transmission component 300 during the manufacturing stage of the lid 4, thus simplifying the manufacturing process.
[0062] The aforementioned storage mechanism, feeding mechanism 100, transmission assembly 300, and washing bin assembly 200 constitute part of the washing system of this embodiment.
[0063] The transmission structure between the feeding mechanism 100, the transmission assembly 300, and the washing bin assembly 200 is described in detail below with reference to the accompanying drawings.
[0064] The feeding mechanism 100 can be connected to the transmission assembly 300 via contact transmission. The transmission assembly 300 can be connected to the washing chamber assembly 200 via magnetic force generated by a magnetic component, enabling a contactless transmission between the transmission assembly 300 and the washing chamber assembly 200. In this embodiment, the washing chamber cover 270 can be in a closed or open position initially. In other words, when the cooking appliance 1 is not in operation, the discharge port 212 can be in a normally closed or normally open state.
[0065] The illustrated embodiment shows one implementation of the transmission structure between the feeding mechanism 100, the transmission assembly 300, and the washing bin assembly 200. The discharge port 212 is schematically shown to be in a normally closed state.
[0066] As described above, the feeding bin 110 can move linearly between a first position and a second position together with the transmission assembly 300. Figure 4As shown, the feeding bin 110 also has an additional position. In the additional position, the feeding bin 110 is closer to the washing chamber 211. The feeding bin 110 has a feed channel for conveying solid materials, which is not in communication with either the storage bin 13 or the washing chamber 211 in the first and second positions. When the feeding bin 110 moves to the additional position, the transmission assembly 300 does not move accordingly. Thus, in the additional position, the feeding bin 110 can extend relative to the transmission assembly 300 and into the washing chamber 211, at which time the feed channel of the feeding bin 110 can communicate with both the storage bin 13 and the washing chamber 211. In this embodiment, the feeding bin 110 has a two-stage movement relative to the transmission assembly 300. In one stage of movement, i.e., when moving from the first position to the second position and when returning from the second position to the first position, the feeding bin 110 moves together with the transmission assembly 300. In the other stage of movement, i.e., when moving from the second position to the additional position and when moving from the additional position to the second position, the feeding bin 110 moves separately from the transmission assembly 300. The feeding bin 110 can move from the second position to the additional position and from the additional position to the second position, allowing the feeding bin 110 to enter or leave the washing chamber 211, facilitating material feeding and stopping.
[0067] The washing hopper assembly 200 is located below the transmission assembly 300. When the feeding hopper 110 is in the additional position, the transmission assembly 300 can abut against the top surface of the washing hopper body 210, so that the transmission assembly 300 can stop moving when the feeding hopper 110 moves from the second position to the additional position. In other embodiments not shown, a separate fixed support frame is included, which abuts the transmission assembly 300 when the feeding hopper 110 is in the additional position. This fixed support frame can be a separate support frame directly fixed to the pot lid 4.
[0068] like Figures 10 to 12 As shown, the feeding mechanism 100 may further include a linkage 130. The linkage 130 is disposed at the bottom of the feeding bin 110. For example, a rotary connection structure 117 is provided on the bottom surface of the feeding bin 110, and the linkage 130 is provided with a structure that cooperates with the rotary connection structure 117. Rotating the linkage 130 connects it to the rotary connection structure 117. The linkage 130 is then fixed to the rotary connection structure 117 with screws. The transmission body 310 is provided with a central hole 313, which is located at the center of the transmission body 310. The feeding bin 110 is located within the central hole 313.
[0069] The linkage 130 is located on the lower side of the transmission body 310 and has an upward-facing linkage support surface 131 for supporting the transmission assembly 300 upwards. With the aid of the linkage support surface 131, the feeding bin 110 can drive the transmission assembly 300 to move upwards. In the illustrated embodiment, the transmission assembly 300 can move downwards along with the feeding bin 110 by its own weight. The linkage support surface 131 can be constructed as an inclined surface in the vertical direction. The illustrated embodiment shows the linkage support surface 131 as an annular conical surface, specifically inclined outwards from top to bottom along the radial direction of the linkage 130. This allows the feeding bin assembly 110 and the transmission assembly 300 to guide each other when moving from a separated state to a connected state, resulting in better cooperation.
[0070] The feeding mechanism 100 also includes a linear drive device 120. The linear drive device 120 is connected to the feeding bin 110 and drives the feeding bin 110 to move linearly. Specifically, the feeding bin 110 is provided with a vertically extending screw hole 115, and the feeding mechanism 100 also includes a screw 121. The screw 121 is connected to the output shaft of the linear drive device 120 and is located within the screw hole 115. When the output shaft rotates, the screw 121 can move relative to the feeding bin 110 within the screw hole 115, thereby causing the feeding bin 110 to move up and down.
[0071] The feeding mechanism 100 also includes a fixed bracket 122, a fixed seat 123, and a fixed pressure plate 124. The fixed bracket 122 is located within the storage bin 13 and can be connected to the storage bin 13. For example, the inner bottom surface of the storage bin 13 may be provided with upwardly extending studs (not shown), and the fixed bracket 122 may be provided with screw bases 126 with through holes at intervals, through which screws can pass and be locked to the studs, thereby allowing the fixed bracket 122 to be installed into the storage bin 13. The fixed bracket 122 may be provided with a downward-opening receiving cavity, and a linear drive device 120 is connected to the fixed bracket 122 and located within the receiving cavity. Specifically, the linear drive device 120 is located within a recess in the fixed seat 123, which is accommodated within the receiving cavity. The recess is adapted to the shape of the linear drive device 120 to limit the rotation and vertical movement of the linear drive device 120. The fixed pressure plate 124 is located on the lower side of the linear drive device 120 opposite to the fixed base 123. The fixed pressure plate 124 can be connected to the fixed base 123. For example, both the fixed pressure plate 124 and the fixed base 123 are provided with screw holes, and the fixed bracket 122 is provided with a downwardly extending screw post 127. The screw passes through the screw holes of the fixed pressure plate 124 and the fixed base 123 and is locked to the screw post 127. The end of the screw 121 is clamped between the fixed pressure plate 124 and the fixed base 123.
[0072] An outlet for the storage hopper 13 can be formed between the bottom of the fixed bracket 122 and the inner bottom surface of the storage hopper 13. This outlet is located on one side of the fixed bracket 122. An outlet seal 125 is provided on the side of the fixed bracket 122 corresponding to this outlet. The outlet seal 125 can abut against the side wall of the feeding hopper 110 to prevent material from entering the feeding mechanism 100. The fixed bracket 122 is also provided with vertically extending guide posts 128 at intervals. Guide protrusions 116 are provided at intervals on the top of the feeding hopper 110, protruding from the side wall of the feeding hopper 110. The guide protrusions 116 are located between the spaced guide posts 128 and are movable along the guide posts 128 to prevent the feeding hopper 110 from shifting during movement.
[0073] The washing hopper assembly 200 also includes a washing hopper mating part 230 and a mounting base 240. The washing hopper mating part 230 can be connected to the mounting base 240. Part or all of the mounting base 240 can be movably disposed in a straight line on the washing hopper body 210. In the illustrated embodiment, part of the mounting base 240 is movable in a straight line. The agitator 19 is located in the washing chamber 211 and connected to the mounting base 240. The agitator 19 is rotatable with the mounting base 240 relative to the washing hopper body 210 about a first rotation axis Ax1. The washing hopper cover 270 can be disposed on the mounting base 240 and is movable in a straight line with the mounting base 240. The mounting base 240 is rotatable with respect to the washing hopper body 210 about the first rotation axis Ax1. The transmission assembly 300 includes a transmission body 310 and a washing hopper drive 320. The transmission body 310 is rotatable with respect to the washing hopper body 210 about a second rotation axis Ax2. The transmission body 310 is engageable with and rotatable relative to the feeding bin 110. The washing bin drive 320 is disposed on the transmission body 310 and can be installed to the transmission body 310, for example, by means of screw connection.
[0074] There may be a magnetic force between the washing hopper mating part 230 and the washing hopper drive part 320. When the transmission body rotates, the mounting base 240 and the stirring part 19 thereon rotate under the action of the magnetic force; and when the magnetic force between the washing hopper mating part 230 and the washing hopper drive part 320 is changed, the mounting base 240 moves in a straight line to open and close the washing hopper cover 270.
[0075] The transmission body 310 has a non-drive position that disengages the washing bin mating part 230 from the washing bin drive part 320 (e.g., Figure 6 and Figure 7 (The different material dropping states shown) and the driving positions that link the washing bin mating part 230 and the washing bin drive part 320. The driving positions include a first driving position (e.g., Figures 3 to 5 The states shown) and the second drive position (as shown) Figure 8The material feeding state is shown. The first drive position corresponds to the closed position, the second drive position corresponds to the open position, and the non-drive position can be the open position (e.g., ...). Figure 6 and Figure 7 The different material feeding states shown can also be in the closed position (e.g., ...). Figure 2 (The initial position), of course, in other embodiments, the initial position can be set to the open position.
[0076] The first position can be a non-driven position, which includes an initial position and an intermediate position (e.g., ...). Figure 6 and Figure 7 (The different material dropping states are shown); the second position can be a driving position and includes both the first and second driving positions. Further, when the transmission body 310 is in the first position, the washing bin driving component 320 is disengaged from the washing bin mating component 230. When the transmission body 310 is in the second position, the washing bin driving component 320 is engaged with the washing bin mating component 230. The intermediate position is located between the initial position and the second driving position. It should be noted that, for ease of understanding, Figure 6 and Figure 9 The transition state during the operation is shown, and the mounting base 240 of the washing hopper cover 270 is subjected to unbalanced forces in this transition state.
[0077] The washing chamber assembly 200 and the transmission assembly 300 form a contactless transmission system. When washing materials in the washing chamber 211, the washing water exists in a space isolated from the transmission assembly 300 and does not come into contact with it. This prevents the washing water from soiling the transmission assembly 300. Compared to mechanical transmission methods, the contactless transmission method eliminates the need for cleaning the transmission structure, thus improving the user experience.
[0078] In this embodiment, the feeding bin 110 and the transmission assembly 300 can move synchronously, and the transmission assembly 300 and the washing bin cover 270 can move in coordination. This allows only one drive device to move the feeding bin 110, which is sufficient to complete the three linear movements of the feeding bin 110, the transmission assembly 300, and the washing bin cover 270, thus realizing the movement of the feeding bin 110 and the opening and closing of the discharge port 212. Furthermore, only one drive device to rotate the transmission body 310 is needed to realize the throwing action during washing and unloading.
[0079] The washing hopper mating component 230 may include a translational mating component 231. The translational mating component 231 is disposed on the mounting base 240. The washing hopper drive component 320 may include a translational drive component 321. The translational drive component is disposed on the transmission body 310. Both the translational drive component 321 and the translational mating component 231 are magnetic components, and a magnetic force may exist between them. When the state of the translational drive component 321 is changed to change the magnetic force between the translational mating component 231 and the translational drive component 321, the washing hopper cover 270 moves between the open position of opening the discharge port 212 and the closed position of closing the discharge port 212. The transmission assembly 300 and the washing hopper cover 270 can achieve mating movement through magnetic force. When the transmission body 310 is moved, the washing hopper cover 270 can be opened and / or closed by magnetic force, thereby realizing the opening and closing action of the discharge port 212.
[0080] In one embodiment, when the state of the translational drive member 321 is changed, the washing hopper cover 270 moves from the open position to the closed position. Thus, the washing hopper cover 270 can be closed by means of the magnetic force between the translational mating member 231 and the translational drive member 321. In another embodiment, when the state of the translational drive member 321 is changed, the washing hopper cover 270 moves from the closed position to the open position. Thus, the washing hopper cover 270 can be opened by means of the magnetic force between the translational mating member 231 and the translational drive member 321. In the illustrated embodiment, when the state of the translational drive member 321 is changed, the washing hopper cover 270 moves from the open position to the closed position and from the closed position to the open position. Thus, the washing hopper cover 270 can be opened and closed simultaneously by means of the magnetic force between the translational mating member 231 and the translational drive member 321.
[0081] The washing hopper assembly 230 may include a rotating assembly 232. The washing hopper drive assembly 320 may include a rotating drive assembly 322. The rotating assembly 232 is mounted on the mounting base 240. The rotating drive assembly is mounted on the transmission body 310, and both the rotating drive assembly and the rotating assembly 232 are magnets. When the transmission body 310 rotates, the agitator 19 rotates under the magnetic force between the rotating drive assembly and the rotating assembly 232. Thus, when the transmission body 310 is rotated while the washing hopper cover 270 is being opened and closed, the washing and discharging actions can be achieved.
[0082] The magnetic component may include at least one of a magnet, an electromagnet, iron, nickel, cobalt, ferritic steel, martensitic steel, or austenitic-ferritic dual-phase steel. Optionally, the magnet may be a permanent magnet. Optionally, at least one of the translational mating component 231 and the translational driving component 321 may be a magnet. For example, the translational mating component 231 may be a magnet; the translational driving component 321 may be one of a magnet, an electromagnet, iron, nickel, cobalt, ferritic steel, martensitic steel, or austenitic-ferritic dual-phase steel. One example is that both the translational mating component 231 and the translational driving component 321 are magnets, thereby allowing a large magnetic force to exist between the translational mating component 231 and the translational driving component 321 and maintaining a stable state. Another example is that the translational mating component 231 is one of iron, nickel, cobalt, ferritic steel, martensitic steel, or austenitic-ferritic dual-phase steel, and the translational driving component 321 is a magnet. Since the magnetism of iron, nickel, cobalt, ferritic steel, martensitic steel, and austenitic-ferritic dual-phase steel is not affected by high temperatures, the high temperatures during cooking can be avoided from affecting the magnetism of the translational mating component 231, thus maintaining its performance. Optionally, at least one of the translational mating component 231 and the translational driving component 321 is an electromagnet.
[0083] When the washing hopper cover 270 and the agitator 19 are both mounted on the same mounting base 240, considering that rotating the mounting base 240 would cause the wires to become tangled, the translational mating component 231 and the translational drive component 321 are not selected as electromagnets. When the washing hopper cover 270 and the agitator 19 are mounted on different mounting bases 240, the opening and closing of the washing hopper cover 270 and the rotation of the agitator 19 are independent of each other, and the translational mating component 231 and the translational drive component 321 can be selected as electromagnets.
[0084] In embodiments excluding electromagnets, the transmission assembly 300 is linearly movable relative to the washing hopper body 210. When the transmission assembly 300 moves to change the magnetic force between the translational mating member 231 and the translational drive member 321, the washing hopper cover 270 moves between an open position with the discharge port 212 open and a closed position with the discharge port 212 closed. In the illustrated embodiment, the direction of movement of the washing hopper cover 270 is controlled by controlling the vertical movement of the transmission assembly 300, based on the change in the direction of the resultant force of the magnetic force and gravity, thus moving it to the open and closed positions.
[0085] In the implementation of the electromagnet, when the energization state of the electromagnet is changed, the washing bin cover 270 can move in a straight line to open and close the discharge port 212.
[0086] According to design requirements, the rotary drive member 322 can be located radially outside the rotary mating member 232 in the drive position. Alternatively, the rotary drive member 322 can be located radially inside the rotary mating member 232 in the drive position. Alternatively, the rotary drive member 322 can be located above the rotary mating member 232 in the drive position.
[0087] The washing hopper assembly 200 is located below the transmission assembly 300. The feeding hopper 110, the washing hopper cover 270, and the transmission assembly 300 can all move vertically. The translational drive member 321 and the translational mating member 231 are vertically aligned, and their magnetic poles are either opposite or the same. When the magnetic poles are opposite, the magnetic force between the translational drive member 321 and the translational mating member 231 is a magnetic attraction force, which moves the washing hopper cover 270. When the magnetic poles are the same, the magnetic force between the translational drive member 321 and the translational mating member 231 is a magnetic repulsion force, which moves the washing hopper cover 270. In the illustrated embodiment, the translational drive member 321 and the translational mating member 231 have opposite magnetic poles, and the magnetic force between them is a magnetic attraction force.
[0088] like Figure 10 As shown, the transmission body 310 is configured in a turntable shape and includes a transmission top wall 311 and a transmission side wall 312 connected to the transmission top wall 311. The transmission side wall 312 extends vertically, a translational drive member 321 is disposed on the transmission top wall 311, and a rotational drive member 322 is disposed on the transmission side wall 312. The translational drive member 321 is disposed on the transmission body 310 by at least one of snap-fit, fastener connection, or in-mold injection molding. In the illustrated embodiment, the translational drive member 321 is detachably mounted to the transmission body 310 by fasteners such as screws.
[0089] The height of the transmission body 310 in the first driving position is lower than its height in the second driving position. More specifically, the first driving position is above the second driving position. When the transmission body 310 is in the first driving position, the translational drive member 321 and the translational mating member 231 can be linked, and the rotary drive member 322 and the rotary mating member 232 can be linked. When the transmission body 310 is in the second driving position, the translational drive member 321 and the translational mating member 231 are disengaged, and the rotary drive member 322 and the rotary mating member 232 are linked. For the illustrated embodiment, see [reference needed]. Figure 8 When the transmission body 310 is in the second driving position, the magnetic force between the translational drive component 321 and the translational mating component 231 is less than the weight of the washing hopper cover 270 and the first mounting base 220 and the agitator 19 connected thereto. As a result, the washing hopper cover 270 can be kept in the open position.
[0090] In the illustrated embodiment, the washing chamber fitting 230 can be located outside the washing cavity 211, that is, both the rotary fitting 232 and the translational fitting 231 are located outside the washing cavity 211. When the transmission body 310 is in the first driving position and the second driving position, the rotary drive 322 is located radially outside the rotary fitting 232. This simplifies the internal structure of the washing cavity 211, increases the volume of the washing cavity 211, improves the single-pass washing capacity, and facilitates the cleaning of the washing cavity 211.
[0091] The following is for reference. Figures 13 to 17 The structure of the washing bin assembly 200 of this embodiment is described.
[0092] like Figure 13 and Figure 14 As shown, the mounting base 240 includes a first mounting base 220 and a second mounting base 250 connected to the first mounting base 220. The first mounting base 220 is located radially inside the second mounting base 250 and is linearly movable relative to the second mounting base 250. The agitator 19, the washing hopper cover 270, and the translational fitting 231 can be disposed on the first mounting base 220. The rotational fitting 232 can be disposed on the second mounting base 250. The first mounting base 220 can rotate with the second mounting base 250.
[0093] The first mounting base 220 may include a mounting base 221 and a mounting cylinder 222 connected to the mounting base 221. The agitator 19 and the washing chamber cover 270 are located on the mounting base 221. The mounting cylinder 222 is located radially outside the washing chamber 211, and its bottom is provided with circumferentially spaced seat openings 224 so that material falls into the inner pot 3 through these openings during material discharge. A translational mating member 231 is provided on the top of the mounting cylinder 222 so that a small distance exists between the translational mating member 231 and the translational drive member 321, generating a sufficiently large magnetic force to move the washing chamber cover 270 up and down.
[0094] The translational mating part 231 is disposed on the mounting base 240 by at least one of the following methods: snap-fit, fastener connection, or in-mold injection molding. For example... Figure 13 As shown, the translational mating component 231 can be pre-embedded in the mounting base 222, for example, by in-mold injection molding. Alternatively, in embodiments not shown, the translational mating component 231 can also be detachably mounted to the mounting base 222 using fasteners such as screws. Specifically, the top surface of the mounting base 222 is provided with a downwardly recessed mounting groove, in which the translational mating component 231 is fixed. Multiple translational mating components 231 can be provided, and they can be block-shaped members, or a single component can be provided, and it can be an annular member, etc. In embodiments with multiple translational mating components 231, the multiple translational mating components 231 can be arranged at intervals along the circumference of the first mounting base 220, preferably arranged in a ring array.
[0095] The washing hopper assembly 200 also includes a hopper body base 217. The hopper body base 217 is located below the washing hopper body 210 and is detachably connected to the washing hopper body 210 by means such as a fastening connection. A second mounting base 250 is supported on the hopper body base 217 located below it. A rotating mating member 232 can be disposed on the vertically extending outer peripheral surface of the second mounting base 250 so that a small radial distance exists between the rotating mating member 232 and the rotating drive member 322, generating a sufficiently large magnetic force to rotate the mounting base 240. Multiple rotating drive members 322 and rotating mating members 232 can be provided and are block-shaped components. Multiple rotating drive members 322 are arranged circumferentially spaced along the transmission body 310. Multiple rotating mating members 232 are arranged circumferentially spaced along the second mounting base 250.
[0096] When the transmission assembly 300 is in the driving position, the projections of the rotary drive member 322 and the rotary mating member 232 on the plane parallel to the axial direction overlap. When the transmission assembly 300 is in the first driving position, the projections of the rotary drive member 322 and the rotary mating member 232 on the plane parallel to the axial direction have a first overlapping area. When the transmission assembly 300 is in the second driving position, the projections of the rotary drive member 322 and the rotary mating member 232 on the plane parallel to the axial direction have a second overlapping area. The first overlapping area can be larger than the second overlapping area. Multiple rotary drive members 322 and multiple rotary mating members 232 can be arranged in one or two rows axially. For example, in the illustrated embodiment, as shown... Figure 10 and Figure 14 As shown, the rotary drive component 322 and the rotary mating component 232 can both be arranged in a row along the axial direction, and both can be constructed as long strips, i.e., long strip components. The rotary drive component 322 is placed horizontally, and the rotary mating component 232 is placed vertically.
[0097] The main body 210 of the washing silo may also include a top wall 216, an inner side wall 214 and an outer side wall 215 connected to the top wall 216. Figure 15These three components constitute the aforementioned sidewall portion 6. The inner sidewall 214 is located radially inside the outer sidewall 215 and is radially spaced from it. The inner sidewall 214 encloses the washing chamber 211. The second mounting seat 250 and the mounting sleeve portion 222 are located between the inner sidewall 214 and the outer sidewall 215. One of the first mounting seat 220 and the second mounting seat 250 may be provided with a seat guide groove 223, which extends axially. The other of the first mounting seat 220 and the second mounting seat 250 may be provided with a seat guide portion 251, which is located within the seat guide groove 223 and is linearly movable relative to the seat guide groove 223. By providing a convex-concave guide structure in the first mounting seat 220 and the second mounting seat 250, the first mounting seat 220 can rotate together with the second mounting seat 250, and the first mounting seat 220 can maintain linear movement, preventing displacement.
[0098] The washing bin assembly also includes a support component. The support component is located on the washing bin body 210. The support component has an upward-facing seat limiting surface 252 for supporting the mounting base 240 upwards. In this embodiment, the support component includes a second mounting base 250 and a bin body base 217. The second mounting base 250 has an upward-facing seat limiting surface 252 for supporting the first mounting base 220 upwards. The bin body base 217 supports the first mounting base 220 upwards. Figure 16 The image shows a mounting base 222 with a seat guide groove 223 and a second mounting base 250 with a seat guide portion 251. The top surface of the seat guide portion 251 is a seat limiting surface 252. In an embodiment not shown, the second mounting base 250 has a seat guide groove 223, and the mounting base 222 has a seat guide portion 251. The bottom surface of the seat guide groove 223 is a seat limiting surface 252.
[0099] Optionally, the mounting sleeve portion 222 may include an upper sleeve portion and a lower sleeve portion. The upper sleeve portion protrudes radially outward from the lower sleeve portion, that is, the thickness of the upper sleeve portion is greater than the thickness of the lower sleeve portion. The seat guide groove 223 may be provided in the upper sleeve portion, and the seat opening 224 may be provided in the lower sleeve portion.
[0100] like Figure 13 , Figure 17 and Figure 17AAs shown, to prevent water leakage during the washing process, the washing hopper assembly 200 also includes a discharge port seal 261. The discharge port seal 261 is disposed on the outer periphery of the washing hopper cover 270 so that it moves up and down with the washing hopper cover 270. When the washing hopper cover 270 is in the closed position, the discharge port seal 261 abuts against the washing hopper body 210 at the discharge port 212. Thus, the washing hopper cover 270 is under pressure and does not rotate relative to the first mounting base 220 and the agitator 19. When the washing hopper cover 270 is in the closed position, the discharge port seal 261 seals the gap between the washing hopper cover 270 and the washing hopper body 210, preventing washing water from leaking out of this gap during washing. When the washing hopper cover 270 is in the closed position and the agitator 19 rotates, the washing hopper cover 270 remains stationary relative to the washing hopper body 210, that is, its relative position to the washing hopper body 210 remains unchanged, and it does not rotate with the agitator 19. This ensures a better sealing effect for the material outlet seal 261 and a tighter fit for the washing hopper cover 270, preventing water leakage.
[0101] The washing chamber cover 270 is disposed on the side of the mounting base 221 facing the washing chamber 211, specifically on the upper side of the mounting base 221. The mounting base 221 is rotatable relative to the washing chamber cover 270. The outer periphery of the washing chamber cover 270 may be provided with a radially inwardly recessed cover groove 273. The cover groove 273 is annular. A portion of the inlet seal 261 may be located within the cover groove 273.
[0102] In one embodiment, as illustrated, the inlet seal 261 may be located below the washing hopper body 210. The washing hopper cover 270 may have a cover support surface 271. The cover support surface 271 faces the side where the discharge port 212 is located, specifically facing upwards. The inlet seal 261 may abut against the cover support surface 271 to provide upward support force to the inlet seal 261. When the washing hopper cover 270 is in the closed position, the inlet seal 261 is sandwiched between the bottom of the washing hopper body 210 and the cover support surface 271, and the washing hopper cover 270 is subjected to downward pressure at the cover support surface 271 and remains stationary relative to the washing hopper body 210. In this embodiment, the bottom surface of the side wall portion 6 may abut against the inlet seal 261, specifically the bottom surface of the inner side wall 214 may abut against the inlet seal 261. The inlet seal 261 is subjected to downward compressive force. In other embodiments not shown, the inner surface of the sidewall portion 6 may abut against the inlet seal 261, and the friction between the inlet seal 261 and the sidewall portion 6 may restrict the rotation of the washing hopper cover 270.
[0103] like Figure 17AAs shown, the bottom of the washing hopper body 210 is provided with a main arc-shaped surface 218, which can abut against the material outlet seal 261. The increased contact area between the bottom of the washing hopper body 210 and the material outlet seal 261 facilitates a more stable abutment and a better sealing effect.
[0104] The inlet seal 261 is an annular component and is fitted onto the outer periphery of the washing hopper cover 270. The outer periphery of the washing hopper cover 270 may be provided with a radially outwardly protruding cover boss 272. The inlet seal 261 is disposed on the cover boss 272. The upper surface of the cover boss 272 is a cover support surface 271, which can support the washing hopper cover 270.
[0105] The mounting base 221 may be provided with a cover mounting portion 263, and the washing hopper cover 270 may be provided with a cover mounting hole 264. The cover mounting portion 263 can be located within the cover mounting hole 264. A mounting seal 262 is provided between the cover mounting portion 263 and the hole wall of the cover mounting hole 264 to seal the gap between the mounting base 221 and the washing hopper cover 270. The cover mounting portion 263 is provided with a radially recessed mounting groove 265, and the mounting seal 262 is located within the mounting groove 265. An abutment boss is provided within the cover mounting hole 264, and the abutment boss is provided with a seat arc-shaped surface 274 facing the mounting groove 265 to increase the contact area between the mounting seal 262 and the cover mounting hole 264 and improve the sealing effect.
[0106] The agitator 19 can be located on the side of the washing hopper cover 270 opposite to the mounting base 221, specifically on the upper side. That is, the washing hopper cover 270 is located between the agitator 19 and the mounting base 221. The agitator 19 is connected to the cover mounting portion 263. One of the agitator 19 and the cover mounting portion 263 may be provided with a connecting protrusion, and the other may be provided with a connecting groove, with the connecting protrusion located within the connecting groove. Fasteners such as screws can pass through the mounting base 221 and be connected to the connecting protrusion to connect the agitator 19 to the mounting base 221. The figure schematically shows the agitator 19 provided with a connecting protrusion and the cover mounting portion 263 provided with a connecting groove.
[0107] In the embodiment shown, the washing hopper cover 270, the mounting base 221, the agitator 19, and the inlet seal 261 are assembled together. When the washing hopper cover 270 is in the closed position, the washing hopper cover 270, the mounting base 221, the agitator 19, and the inlet seal 261 together block the discharge port 212. When the agitator 19 and the bottom of the mounting base 211 rotate together, the washing hopper cover 270 and the inlet seal 261 do not rotate, that is, their relative positions with the washing hopper body 210 remain unchanged. This ensures a better sealing effect of the inlet seal 261 and a tighter fit of the washing hopper cover 270, preventing water leakage.
[0108] Alternatively, the discharge port 212 can be sealed in other ways, such as by sealing the discharge port 212 separately with the washing hopper cover 270, or by sealing the discharge port 212 together with one or more of the seal, agitator 19, and mounting base. One or more of the seal, agitator 19, and mounting base can move synchronously with the washing hopper cover 270, i.e., move together to open and close the discharge port 212 together. Alternatively, one or more of the seal, agitator 19, and mounting base can move separately from the washing hopper cover 270 to open and close the discharge port 212.
[0109] Optionally, the discharge port 212 can be blocked solely by the washing hopper cover 270, which is sufficient to cover the discharge port 212. Furthermore, a sealing element can be provided between the washing hopper cover 270 and the washing hopper body, so that the discharge port 212 is blocked together by the washing hopper cover 270 and the sealing element. The sealing element can be located on the washing hopper cover 270 or on the washing hopper body.
[0110] Optionally, the discharge port 212 is sealed together by the washing hopper cover 270 and a portion of the mounting base. Further, a sealing element may be included, with the washing hopper cover 270, the portion of the mounting base, and the sealing element sealing the discharge port 212 together. The sealing element may be provided on one or more of the washing hopper cover 270, the portion of the mounting base, and the washing hopper body to better seal the discharge port 212. It is understood that this method of sealing the discharge port 212 involves opening and closing a portion of the discharge port 212 via the washing hopper cover 270, and also involves the washing hopper cover 270 moving between an open position (open discharge port 212) and a closed position (closed discharge port 212). Optionally, the washing hopper cover 270 may also be integrally formed with the mounting base.
[0111] Optionally, the discharge port 212 is sealed together by the washing hopper cover 270 and the agitator 19. Further, a sealing element is also included. The washing hopper cover 270, the agitator 19 and the sealing element seal the discharge port 212 together. The sealing element can be provided on one or more of the washing hopper cover 270, the agitator 19 and the washing hopper body to better seal the discharge port 212.
[0112] Optionally, the washing hopper cover 270, the mixing component 19, and the mounting base are formed as a single piece.
[0113] Optionally, the discharge port 212 is sealed together by the washing hopper cover 270, the agitator 19, and the mounting base. Further, a sealing element is also included. The washing hopper cover 270, the agitator 19, the mounting base, and the sealing element seal the discharge port 212 together. The sealing element can be located on one or more of the washing hopper cover 270, the agitator 19, the mounting base, and the main body of the washing hopper. It is understood that the above sealing method of the discharge port 212 involves opening and closing part of the discharge port 212 by the washing hopper cover 270, and also involves the washing hopper cover 270 moving between an open position and a closed position of the discharge port 212, and also involves the washing hopper cover 270 opening and closing the discharge port 212.
[0114] like Figure 13 and Figure 17B As shown, the washing hopper cover 270 can be held in the closed position by magnetic connection in the initial state. Specifically, the washing hopper assembly 200 may also include a retaining member 237 and a retaining mating member 238. The retaining member 237 can be disposed on the washing hopper body 210. In other embodiments not shown, the retaining member 237 may be disposed on a mounting support frame. The mounting support frame is connected to the pot lid 4. This mounting support frame may be a separate support frame directly fixed to the pot lid 4. Both the retaining member 237 and the retaining mating member 238 are magnetic members. At least one of the retaining member 237 and the retaining mating member 238 is a magnet. For example, the retaining member 237 is a magnet, and the retaining mating member 238 is at least one of a magnet, iron, nickel, cobalt, ferritic steel, martensitic steel, or austenitic-ferritic dual-phase steel; the retaining member 237 is at least one of iron, nickel, cobalt, ferritic steel, martensitic steel, or austenitic-ferritic dual-phase steel, and the retaining mating member 238 is a magnet. Under the magnetic force between the retaining member 237 and the retaining fitting member 238, the washing chamber cover 270 is initially held in the closed position. Thus, the washing chamber cover 270 can be kept closed due to the magnetic force between the retaining member 237 and the retaining fitting member 238. When the washing chamber 211 is not in use, for example, when the cooking appliance 1 is not working or when the cooking appliance 1 is cooking, the discharge port 212 can remain closed, isolating the space of the inner pot 3 from the outside world. This prevents foreign objects such as dust and insects from entering the inner pot 3, thus keeping the inner pot 3 clean and uncontaminated when the cooking appliance 1 is not working, and ensuring good heat retention when the cooking appliance 1 is cooking, thereby improving cooking efficiency.
[0115] The retaining member 237 and the retaining mating member 238 are arranged vertically and opposite to each other in magnetic polarity, so that the magnetic force between them is a magnetic attraction. The washing hopper cover 270 is held in the closed position by the magnetic attraction between the retaining member 237 and the retaining mating member 238. For the illustrated embodiment, as Figure 17BAs shown, the retaining member 237 is located above the retaining fitting member 238. The retaining member 237 can be embedded in the washing hopper body 210, for example, by in-mold injection molding. Alternatively, in embodiments not shown, the retaining member 237 can also be detachably installed in the washing hopper body 210 by fasteners such as screws. The retaining member 237 can be provided on the top wall 216 of the hopper body.
[0116] In the illustrated embodiment, the retaining fitting member 238 and the translational fitting member 231 are formed as a single unit. In an embodiment not shown, the retaining fitting member 238 and the translational fitting member 231 are separate components.
[0117] Optionally, such as Figure 17C As shown, the upper end face of the translational mating part 231 can have an included angle α with the side end face of the rotary mating part 232, where 30°≤α≤150°, for example, α is 30°, 50°, 70°, 80°, 90°, 100°, 110°, 120°, 130°, 150°, etc. Preferably, 85°≤α≤95°. Thus, the magnetic fields generated by the translational mating part 231 and the rotary mating part 232 are independent and do not interfere with each other as much as possible. When the transmission body 310 is in the driving position, there is a first magnetic force between the translational driving member 321 and the translational mating member 231, and a second magnetic force between the rotary driving member 322 and the rotary mating member 232. The first and second magnetic forces are at an angle β, where 30°≤β≤150°. For example, β can be 30°, 50°, 70°, 80°, 90°, 100°, 110°, 120°, 130°, or 150°. Preferably, 85°≤β≤95°. Figure 17C The diagram schematically shows that the translational mating member 231 is subjected to a first magnetic force Fa from the translational drive member 321, and the rotary mating member 232 is subjected to a second magnetic force Fb from the rotary drive member 322, with an included angle β between Fa and Fb.
[0118] like Figures 18 to 20As shown, the transmission assembly 300 may further include a transmission support 330, a mounting bracket 340, and a rotary drive device 301. The transmission support 330 can be located within the central hole 313 of the main body and connected to the transmission main body 310. The transmission main body 310 can be rotatable relative to the transmission support 330. The mounting bracket 340 is located above the transmission main body 310 and can be connected to the transmission support 330, for example, by fasteners such as screws. The rotary drive device 301 can be disposed on the mounting bracket 340, and its output shaft is connected to the transmission main body 310 to rotate the transmission main body 310. The mounting bracket 340 supports the rotary drive device 301 upward. In this embodiment, the rotary drive device 301 can move linearly together with the transmission main body 310, so that the energized rotary drive device 301 can be disposed at a position other than the pot lid 4.
[0119] Specifically, the transmission support 330 may have a downward-facing support surface 332, which abuts against the linkage support surface 131. When the feeding bin 110 moves between the first position and the second position, the support surface 332 abuts against the linkage support surface 131 to enable the transmission assembly 300 to move smoothly. When the feeding bin 110 moves between the second position and the additional position, the support surface 332 separates from the linkage support surface 131.
[0120] The support surface 332 can be adapted to the shape of the linkage support surface 131, for example, it can be constructed as an inclined surface in the vertical direction, or optionally as an annular conical surface. The transmission support 330 can be provided with a support center hole 331 and a support boss 333 extending radially outward. It is understood that the support center hole 331 is located at the center of the transmission support 330. The feed bin 110 can be located within the support center hole 331, and the support surface 332 is arranged around the support center hole 331. The top of the transmission body 310 can be located between the support boss 333 and the mounting bracket 340, which can limit the linear movement of the transmission body 310 relative to the transmission support 330.
[0121] The top of the transmission body 310 may be provided with an upwardly protruding gear portion 314, which surrounds the central hole 331 of the support and has a ring of teeth. The output shaft is provided with a transmission gear 302, the teeth of which mesh with the teeth of the gear portion 314. The illustrated embodiment schematically shows one transmission gear 302 between the output shaft and the gear portion 314; however, the number of transmission gears 302 is not limited and can be set to two or more as needed.
[0122] The mounting bracket 340 may be provided with a bracket guide 341, which extends vertically. (See also: [link to previous section]) Figure 10The storage bin 13 may be provided with a vertically extending guide wall 102. At least a portion of the guide wall 102 is located inside the storage bin 13 and connected to the fixed bracket 122 to isolate the transmission structure from the space for storing food. Figure 10 The diagram schematically shows the guide wall 102 connected to the bottom wall of the storage bin 13, with a portion located above the bottom wall and a portion extending downwards from it. A support guide portion 341 is located within a sliding channel 46 enclosed by the guide wall 102. The mounting bracket 340 may include a bracket base 342 and a bracket stand 343 located above the bracket base 342. The bracket base 342 may have the support guide portion 341 integrally formed therewith. The support guide portion 341 may, for example, include three sequentially connected walls, with the bracket stand 343 located within a generally square area enclosed by these three walls. The bracket stand 343 is detachably connected to the bracket base 342 by fasteners such as screws. A rotary drive device 301 is mounted to the bracket stand 343 and is also located within the support guide portion 341. A support cylinder is provided in the middle of the bracket stand 343, and the output shaft of the rotary drive device 301 is located within the support cylinder. The lower end of the support cylinder abuts against a transmission gear 302 to limit the axial movement of the transmission gear 302.
[0123] like Figure 5 , Figure 8 , Figure 21 and Figure 22As shown, the first rotation axis Ax1 can be collinear with the second rotation axis Ax2. The washing chamber 211 is centrally symmetrical; for example, the shape of the washing chamber 211 can be cylindrical. The central axis of the washing chamber 211 is collinear with the first rotation axis Ax1. Both the first rotation axis Ax1 and the second rotation axis Ax2 can extend vertically. The central axis of the washing chamber 211 can also extend vertically. Multiple rotating mating parts 232 can be spaced apart circumferentially along the mounting base 240, specifically spaced apart circumferentially along the second mounting base 250. Multiple rotating driving parts 322 are spaced apart circumferentially along the transmission body 310. The multiple rotating mating parts 232 have the same magnetism and are centrally symmetrically arranged around the first rotation axis Ax1. The multiple rotating driving parts 322 have the same magnetism and are centrally symmetrically arranged around the second rotation axis Ax2. The multiple rotating mating parts 232 are uniformly arranged circumferentially along the mounting base 240; the multiple rotating driving parts 322 are uniformly arranged circumferentially along the transmission body 310. Therefore, the magnetic force on the second mounting base 250 in the circumferential direction can be equal and uniform, thus ensuring that the first rotation axis Ax1 and the second rotation axis Ax2 remain collinear. The magnetic properties of the multiple rotating mating parts 232 can also be different, but the number of rotating mating parts 232 with different magnetic properties must be equal. Preferably, the rotating mating parts 232 with different magnetic properties are evenly and intermittently arranged, provided that the number is equal. For example, a group of rotating mating parts with the first magnetic property can be arranged first, then a group of rotating mating parts with the other magnetic property, then another group of rotating mating parts with the first magnetic property, then another group of rotating mating parts with the second magnetic property, and so on, intermittently, to ensure that adjacent groups of rotating mating parts have different magnetic properties but the same number, and that the number of magnets in each group is the same and greater than or equal to 1. The specific arrangement can be flexibly set according to needs; for example, the number can be two, three, four, five, or six, etc. For example, the total number of rotating mating parts 232 can be two and evenly arranged, with one magnet facing outward as the N pole and the other magnet facing outward as the S pole. Correspondingly, two rotating drive components can be set. Or, as... Figure 22 As shown, there are four groups of rotating mating parts, each with three magnets. The outward-facing poles of all three magnets in one group can be designated as N poles, and the outward-facing poles of all three magnets in adjacent groups can be designated as S poles. Therefore, the outward-facing poles of the rotating mating parts are NNN, SSS, NNN, and SSS, respectively. Correspondingly, the magnetism of the multiple mating rotating drive components 322 must also be different, but their numbers must be equal and evenly spaced. For example, in... Figure 22As shown, there are 16 rotating drive components, which can be arranged into 4 groups. In one group, the outward-facing magnetic poles of the four magnets are all designated as N poles, and the outward-facing magnetic poles of the four adjacent magnets are all designated as S poles. Therefore, the outward-facing magnetic poles of the rotating drive components are NNNN, SSSS, NNNN, and SSSS. During rotation, the outward-facing magnetic poles of the NNNN group of rotating drive components interact with the outward-facing magnetic poles of the SSS group of rotating mating components to generate magnetic force. Similarly, the outward-facing magnetic poles of the SSSS group of rotating drive components interact with the outward-facing magnetic poles of the NNN group of rotating mating components to generate magnetic force. This ensures that the second mounting base 250 experiences equal and uniform magnetic force in the circumferential direction.
[0124] The washing hopper assembly 200 may also include a limiting member. The mounting base 240 rotates around the limiting member, and the surfaces of the limiting member and the mounting base 240 abut against each other. In this embodiment, the second mounting base 250 drives the first mounting base 220 to rotate around the limiting member, which includes the inner sidewall 214 and the outer sidewall 215 of the washing hopper body 210.
[0125] The transmission body 310 is constructed in a centrally symmetrical shape, specifically a turntable shape as described above. The mounting base 240 is also constructed in a centrally symmetrical shape. Specifically, both the first mounting base 220 and the second mounting base 250 are cylindrical. In this embodiment, as described above, the mounting base 240 and the agitator 19 can be separate components, specifically the first mounting base 220 and the agitator 19 are separate components, to facilitate the installation of the washing hopper cover 270.
[0126] like Figure 21 As shown, when the transmission body 310 is in the first driving position and the second driving position, that is, when the rotary drive member 322 is in the driving position, the rotary drive member 322 and the rotary mating member 232 are radially aligned and their magnetic poles face opposite directions. At this time, the magnetic force between the rotary drive member 322 and the rotary mating member 232 is a magnetic attraction force, which causes the stirring member 19 to rotate. Figure 22 As shown, when the rotary drive 322 is in the drive position, it is radially offset from the rotary mating member 232, and their magnetic poles face each other. At this time, the magnetic force between the rotary drive 322 and the rotary mating member 232 is a magnetic repulsion force, which causes the stirring member 19 to rotate.
[0127] Multiple rotary drive components 322 are arranged at circumferential intervals along the transmission body 310. The transmission sidewall 312 has multiple transmission mounting surfaces 315 arranged circumferentially. Figure 10The transmission mounting surface 315 is planar and extends vertically, and the rotary drive member 322 is mounted to the transmission mounting surface 315. Multiple rotary mating members 232 are arranged at intervals along the circumference of the transmission body 310. The second mounting base 250 has multiple seat mounting surfaces 253 arranged circumferentially, the seat mounting surfaces 253 being planar and extending vertically, and the rotary mating members 232 are mounted to the seat mounting surfaces 253. One of the rotary mating members 232 and the rotary drive member 322 can be arranged in one row, and the other can be arranged in two rows at intervals along the vertical direction. Alternatively, both the rotary mating members 232 and the rotary drive member 322 can be arranged in one row, and one of them can be a vertically arranged elongated strip.
[0128] pot lid See back Figures 13 to 15 The pot lid 4 includes a pot lid body and a washing chamber body 210 connected to the pot lid body. The pot lid body and the side wall portion 6 of the washing chamber body 210 are constructed as one piece, and the chamber body base 217 is detachably connected to the pot lid body. When the cooking utensil 1 is located... Figure 2 In the initial state shown, there is a gap between the transmission assembly 300 and the washing chamber assembly 200 on the lid 4. Using this gap, the user can lift the lid 4 and the pot body 2 together from the base 12 and remove them together, or the user can remove only the lid 4 from the pot body 2 to clean the washing chamber 211 and the agitator 19. The lid 4 is provided with a drainage structure communicating with the drain outlet 213 of the washing chamber body 210 and the wastewater tank 48, for draining washing water to the wastewater tank 48. Specifically, the drainage structure has a drainage pipe 10, which includes a drainage channel 105 and a pipe connector 106 located on the side wall 6, and a drainage pipe 107. The drainage channel 105 connects the drain outlet 213 and the pipe connector 106, and one end of the drainage pipe 107 is connected to the pipe connector 106, while the other end extends to the wastewater tank 48.
[0129] Optionally, as illustrated in the embodiment, the drain pipe 10 may include a siphon pipe with an inverted U-shaped structure. As an example, the drain channel 105 may be configured in an inverted U-shape as a siphon pipe. The pipe connector 106 is located in the middle of the side wall portion 6. This allows for siphon drainage. Alternatively, the drain structure may be configured such that the drain outlet 213 is level with or higher than the drain channel. This allows for gravity drainage. In this embodiment, water can flow by gravity from the washing chamber 211 to the wastewater tank 48 via the difference in water level, avoiding the use of a water pump. This reduces the number of internal components of the cooking appliance 1 and lowers production costs.
[0130] Alternatively, other sewage discharge methods can be adopted, such as setting up a separate solenoid valve for opening and closing the sewage outlet 213, and directly controlling whether to discharge by directly controlling the opening and closing state of the solenoid valve.
[0131] Optionally, the pot lid 4 may include a pot lid body and a removable cover (not shown) detachably connected to the pot lid body. Part or all of the drain pipe 10 may be detachably or non-detachably mounted on the removable cover. When the user wishes to clean the drain pipe 10, the removable cover can be removed for cleaning.
[0132] Return to reference Figure 1 and Figure 2 The cooking appliance 1 also includes a water inlet assembly for supplying water to the washing chamber 211. The water inlet assembly may include a clean water tank 81 and a water inlet pipe (not shown). The outlet of the clean water tank 81 can be connected to the water inlet 113 of the feeding bin 110 via the water inlet pipe, and an electrically controlled valve may be installed between them to control the water inlet. The clean water in the clean water tank 81 can flow to the feeding bin 110 by gravity due to the water level difference, or it can be pumped to the feeding bin 110. The clean water tank 81 is detachably mounted on the body assembly 11, allowing for convenient water addition by the user. The clean water tank 81 is located near the storage mechanism and above the wastewater tank 48. The water inlet pipe may be located within the storage mechanism. Alternatively, if a water pump is installed, the water pump may also be located within the storage mechanism.
[0133] like Figure 1 and Figure 2 As shown, the main body assembly 11 also includes a main frame 101. The pot body 2 is located on the first side of the main frame 101. As shown above, the feeding mechanism 100 is used to transport the ingredients in the storage mechanism to the washing chamber 211. The storage mechanism, the feeding mechanism 100, and the transmission assembly 300 can all be located on the first side of the main frame 101 and above the washing chamber assembly 200. With this arrangement, the feeding mechanism 100 can be close to the storage mechanism, occupying space, and the material can be automatically fed into the washing chamber 211 by gravity, without the need for additional drive devices such as feeding pumps and feeding pipelines, reducing costs, simplifying the structure of the cooking appliance 1, and facilitating product miniaturization; the transmission assembly 300 can drive the stirring component 19 from above the washing chamber 211, thereby allowing the electrically powered drive device to be placed outside the pot lid 4, facilitating the user's cleaning operations on the pot lid 4 and the washing chamber assembly 200.
[0134] The water inlet assembly and the sewage discharge assembly can be located on a second side of the main frame 101, different from the first side. Specifically, the clean water tank 81 and the sewage tank 48 are located on the second side of the main frame 101. Figure 1The first and second sides of the main frame 101 are shown facing away from each other. The clean water tank 81 can be vertically aligned with the wastewater tank 48, that is, the clean water tank 81 is located directly above the wastewater tank 48. The clean water in the clean water tank 81 can flow by gravity to the feeding hopper due to the difference in water level, without the need for a booster pump.
[0135] The cooking appliance 1 may also include a main board and a display panel. The display panel may be located in the storage mechanism, specifically on the front side of the storage compartment 13. A control panel may be located on the outer side of the display panel. The main board may be located inside the main frame 101. The main board is located above the wastewater tank 48, on the side of the clean water tank 81 facing the pot body 2. The wastewater tank 48 may have a top opening to receive wastewater from the drain pipe 10 and to pour out water.
[0136] The cooking appliance 1 may also include an electrical device. This electrical device is located on the main frame 101, not on the lid 4 or the pot body 2. The electrical device includes a drive unit for driving the rotation and linear movement of the transmission assembly 300, a main board, a heating element, and a display panel. The electrical device can be located outside the lid 4 and pot body 2, facilitating user cleaning of the lid 4, the washing chamber assembly 200, and the inner pot of the pot body 2. Furthermore, waterproofing of the electrical device does not need to be considered during the manufacturing of the lid 4 and pot body 2.
[0137] The following text is for reference only. Figures 2-9 The entire washing process of the cooking appliance 1 in this embodiment is described as follows: like Figure 2 As shown, the cooking appliance 1 is in its initial state. At this time, the feeding bin 110 and the transmission assembly 300 are both in their initial positions within the first position. The feeding bin 110 is not connected to the outlet of the storage bin 13 or the inlet 201 of the washing bin assembly 200, and the washing bin cover 270 is in the closed position. In the initial state, the force relationship of the washing bin cover 270 is F1+F2≥G1+G2, where F1 is the magnetic force between the translational mating part 231 and the translational driving part 321; F2 is the magnetic force between the holding member 237 and the holding mating part 238; G1 is the total weight of the washing bin cover 270 and the follower load that moves with it in a straight line. In this embodiment, the follower load includes at least the first mounting base 220, the translational mating part 231, and the stirring member 19; G2 is the weight of the water and materials in the washing chamber 211. It can be understood that G1 is a fixed value, and F1, F2, and G2 are variable values. In this state, F1 is small, and may even be close to or equal to 0. When F1=0, F2≥G1+G2; F2 is the largest, i.e. F2max; G2=0, or G2 is the weight of a small amount of residual water on the washing chamber 211 after cleaning.
[0138] When the material feeding operation is to be performed, the linear drive device 120 first drives the screw 121 to move, thereby the screw 121 drives the feeding bin 110 downward to the first drive position in the second position. For example... Figure 3 As shown, the cooking appliance 1 is in the preparation to feed ingredients. At this time, both the feeding bin 110 and the transmission assembly 300 are in the first drive position of the second position. The feeding bin 110 is still not connected to the outlet of the storage bin 13 and the inlet 201 of the washing bin assembly 200, and the washing bin cover 270 is still in the closed position. Figure 3 In the shown state, the force relationship of the washing hopper cover 270 is F1+F2>G1+G2, where F1 and F2 are at their maximum, i.e., F1max and F2max, and G2 is the same as in the initial state. Therefore, the washing hopper cover 270 is subjected to an upward magnetic force, and the washing hopper assembly 200 is radially magnetically connected. Then, the linear drive device 120 can continue to drive the screw 121, and the feeding hopper 110 continues to move downward and extend into the washing chamber 211, while the transmission assembly 300 does not move accordingly. Figure 4 As shown, the cooking appliance 1 is in the feeding state. At this time, the feeding bin 110 is in the auxiliary position, the transmission component 300 is in the first drive position of the second position, and the feeding bin 110 is still connected to the outlet of the storage bin 13 and the inlet 201 of the washing bin component 200. The washing bin cover 270 is still in the closed position. The material in the storage bin 13 enters the feeding bin 110 through the inlet 111, and then enters the washing chamber 211 through the outlet 112 to perform the feeding action. The amount of material flowing into the washing chamber 211 can be calculated by time. The cooking appliance controls the time when the feeding bin 110 is in the auxiliary position according to the amount of material required by the user to achieve quantitative feeding. Water can also be supplied to the washing chamber 211 in this feeding state. Feeding and water supply can be carried out simultaneously, or water supply can be carried out after feeding is completed. The clean water in the clean water tank 81 enters the feeding hopper 110 through the pipeline and the water inlet 113, and then enters the washing chamber 211 through the water outlet 114. When the feeding and water supply are completed, the force relationship of the washing hopper cover 270 is F1+F2>G1+G2, where F1 and F2 are F1max and F2max, and G2 is the weight of water and material.
[0139] When the feeding operation is completed, the linear drive device 120 drives the screw 121 to move again. The screw 121 drives the feeding bin 110 to move upward to the first drive position in the second position, as shown. Figure 5 As shown. In Figure 5 In the state shown, water can be supplied to the washing chamber 211, or it can also be... Figure 4 Water is supplied to the washing chamber under the specified condition. When... Figure 5When water is supplied in the state shown, the weight of G2 increases. After water supply is completed, the rotation driving device 301 can drive the transmission main body 310 to rotate, and then the magnetic force between the rotation driving member 322 and the rotation matching member 232 can drive the second mounting base 250 to rotate, thereby driving the first mounting base 220 and the stirring member 19 thereon to rotate together, so as to perform the material washing action. It can be understood that, for the illustrated embodiment, when the material washing action is performed, the water level in the material washing chamber 211 is lower than the highest part of the sewage discharge pipe 10. In other unillustrated embodiments, an electromagnetic valve for separately opening and closing the sewage outlet 213 can be provided, and whether to drain water is directly controlled by directly controlling the opening and closing states of the electromagnetic valve. This drainage method does not require that the water level in the material washing chamber 211 must be lower than the highest part of the sewage discharge pipe.
[0140] For the illustrated embodiment, when drainage is intended after the material washing action is completed, water is first supplied into the material washing chamber 211 until the water level in the material washing chamber 211 is higher than the highest part of the sewage discharge pipe 10, and drainage is performed by means of siphon principle. Moreover, the highest position of the drainage channel has a velocity head, thereby forming a full flow in the sewage discharge pipe 10. When the water level drops below the highest position of the sewage discharge pipe 10, since the drainage channel is already in a full flow state, and because the water level in the material washing chamber 211 is higher than the water level at the water outlet 114 of the sewage pipe 107, according to Bernoulli's principle, the outlet of the sewage pipe 107 has a velocity head at this time, which can completely drain the water in the material washing bin. When the drainage is completed, the force relationship of the material washing bin cover 270 is F1 + F2 > G1 + G2, where F1 and F2 are F1max and F2max respectively, and G2 is the weight of the material after water absorption and a small amount of residual water. If necessary, clean water can be added after drainage for cooking; in this case, G2 is the weight of the material after water absorption and the clean water.
[0141] The actions of water supply, material throwing during material washing and drainage can be repeated, so as to realize multiple times of material washing for a single batch of materials.
[0142] When discharging is intended after the drainage action is completed, the linear driving device 120 drives the feeding bin 110 to move upward to an intermediate position in the first position, as Figure 6 shown. In the Figure 6 state shown, the force relationship of the material washing bin cover 270 is F1 + F2 < G1 + G2, where F1 is decreased, that is, F1 < F1max, F2 is F2max, and G2 is the same as that when the drainage is completed. Since F1 + F2 < G1 + G2, the force on the material washing bin cover 270 is unbalanced, it cannot be maintained at the closed position and will move downward, and the discharge outlet 212 will be opened. The cooking appliance quickly switches from the state shown in Figure 6 to the state shown in Figure 7 , that is, the material washing bin cover 270 moves downward to the open position. During this process, F1 continues to decrease, and F2 also decreases. As shown in Figure 7 As shown, the washing hopper cover 270 is already in the open position, and the discharge port 212 is opened. At this time, part of the material and / or water will fall into the inner pot 3, and G2 decreases. In Figure 7 the state shown, the force relationship of the washing hopper cover 270 is F1+F2<G1+G2, wherein F1<F1max and F2 is at its minimum value, that is F2min, and G2 is the weight of the remaining water-absorbing material and a small amount of residual water. Then the linear driving device 120 drives the screw 121 to move the transmission main body 310 downward from the middle position to the second driving position in the second position. At this time, as shown in Figure 8 , the cooking appliance 1 is in a discharging state. There is a distance d1 between the translation driving member 321 and the translation fitting member 231, and the force relationship of the washing hopper cover 270 is F1+F2<G1+G2, wherein F1<F1max, F2 is F2min, and G2 is the same as that in the state shown in Figure 7 , so that the washing hopper cover 270 is always kept in the open position during the discharging process. Then the rotation driving device 301 drives the transmission main body 310 to rotate again, so that the stirring member 19 rotates to start discharging by spinning, and the material quickly falls into the inner pot 3 under the action of centrifugal force. During spinning discharging, G2 continues to decrease. After the spinning discharging is completed, the force relationship of the washing hopper cover 270 is F1+F2<G1+G2, wherein F1<F1max, F2 is F2min, and G2 is the weight of a small amount of residual water. As an example, the difference between F1+F2 and G1+G2 may be 30g at this time.
[0143] After the discharging action is completed, when reset is required, the linear driving device 120 continues to drive the screw 121 to move the transmission main body 310 from the second driving position to the first driving position, as shown in Figure 9 , F1 increases during this process, and there is a distance d2 between the translation driving member 321 and the translation fitting member 231, wherein d2 is smaller than d1. The force relationship of the washing hopper cover 270 is F1+F2>G1+G2, wherein F1 is F1max, F2 is F2max, and G2 is the weight of a small amount of residual water, so that the washing hopper cover 270 will move upward to the closed position under the action of magnetic force, for example, as shown in Figure 3 , the reset of the washing hopper cover 270 is realized. The cooking appliance quickly switches from the state shown in Figure 9 to the state shown in Figure 3 , that is, the washing hopper cover 270 moves upward to the closed position. During this process, F1 continues to increase to F1max, F2 increases to F2max, and G2 is the same as that in the state of Figure 9 , at this time F1+F2>G1+G2.
[0144] Each action in the process from blanking to discharging can be repeated to realize washing of materials for multiple times; that is, the states shown in Figures 3 to 9 are repeated.
[0145] Then, the linear driving device 120 drives the feeding bin 110 to move upward to the initial position in the first position, such as Figure 2 shown, realizing the reset of the feeding bin 110 and the transmission assembly 300. In this process, F1 decreases to a relatively small value, and may even approach or equal 0, F2 reaches F2max, G2 is the same as Figure 9 the state, and F1+F2>G1+G2 at this time.
[0146] It can be understood that, in other embodiments not shown, the washing bin cover 270 may be located at the open position in the initial state. In other words, when the cooking appliance 1 is not in operation, the discharge opening 212 may be in a normally open state, that is, the washing bin cover 270 is in the open position in the initial state. Specifically, except that the holding member 237 and the holding engaging member 238 are omitted, the remaining structure is the same as that of the cooking appliance in the illustrated embodiment. For brevity, only the differences are described in detail herein. Specifically, the washing bin assembly 200 does not include the holding member 237 and the holding engaging member 238, that is, F2 does not exist, wherein F2 is the magnetic force between the holding member 237 and the holding engaging member 238. Therefore, in the initial state, both the feeding bin 110 and the transmission assembly 300 are at the initial position in the first position, the feeding bin 110 is not communicated with the outlet of the storage bin 13 and the feeding inlet 201 of the washing bin assembly 200, and the washing bin cover 270 is in the open position.
[0147] In the initial state, the force relationship of the washing bin cover 270 is F1<G1+G2. In this state, F1 is small, and may even approach or equal 0, G2=0, or G2 is the weight of a small amount of residual water after cleaning on the washing cavity 211. When the discharging operation is intended to be performed, it is necessary to first move the washing bin cover 270 from the open position to the closed position, that is, the linear driving device 120 can drive the screw 121 to act, so that the screw 121 can drive the feeding bin 110 to move downward to the first driving position in the second position (as Figure 3 shown). At this time, the force relationship of the washing bin cover 270 is F1>G1+G2, and under the action of magnetic force, the washing bin cover 270 moves to the closed position.
[0148] The remaining feeding, washing, draining, dropping, and water supply operations are the same as those of the cooking appliance in the illustrated embodiment. The only difference is that the magnetic force on the washing chamber cover 270 is F1, not F1+F2, meaning there is no magnetic force of F2. However, the relationship between the magnetic force on the washing chamber cover 270 and G1+G2 during the feeding, washing, draining, and dropping stages is consistent with the relationship between the magnetic force on the cooking appliance in the illustrated embodiment during the same stages. The operations of the linear drive device 120 and the rotary drive device 301 are also consistent. Taking the feeding stage as an example, in the embodiment where the discharge port 212 is normally open, the force relationship on the washing chamber cover 270 is F1>G1+G2; in the illustrated embodiment, the force relationship is F1+F2>G1+G2. The magnetic force during the feeding stage in both embodiments is greater than G1+G2, meaning the magnitude relationship is consistent. The difference is that after the material feeding action is completed, the washing hopper cover 270 does not need to be reset. That is, the washing hopper cover 270 remains in the open state. After the linear drive device 120 drives the feeding hopper 110 to move upward to the initial position in the first position, the washing hopper cover 270 continues to remain in the open state.
[0149] Furthermore, in embodiments not shown, a separate water supply pipe communicatively connected to the washing chamber 211 can be provided to directly supply water to the washing chamber 211. This allows water to be supplied to the washing chamber 211 at any stage of the entire washing process. A feeding device communicatively connected to the washing chamber 211 can be provided. This feeding device may remain stationary relative to the storage hopper 13 and includes a feeding component such as a rotating screw to feed material into the washing chamber 211.
[0150] Furthermore, in other embodiments not shown, both the translational mating member 231 and the rotary mating member 232 are located inside the washing chamber 211. When the rotary drive member 322 is in the drive position, i.e., when the transmission body 310 is in the first drive position and the second drive position, the rotary drive member 322 is located radially inside the rotary mating member 232. Therefore, the external structure of the cooking appliance is simple, which is beneficial for product miniaturization; and the structure of the transmission assembly 300 can be further simplified.
[0151] As an example, a cylindrical mounting base may be included inside the washing chamber 211. The washing chamber cover 270 and the agitator 19 may both be connected to this mounting base. A rotary fitting 232 and a translational fitting 231 are provided on this mounting base. The washing chamber body 210 has a trough portion located inside the washing chamber. The trough portion forms a receiving trough to receive the translational drive 321 and the rotary drive 322, more specifically, to receive the transmission body.
[0152] It should be noted that the force relationship mentioned in this article can be understood as the force relationship of the component consisting of the washing hopper cover 270 and the follower load that moves with it in a straight line. For the sake of simplicity, it is simply referred to as the force relationship of the washing hopper cover 270. Similarly, the descriptions of the washing hopper cover 270 being subjected to magnetic force, physical force, magnetic force, gravity, etc. can be understood as various descriptions of the forces of the component consisting of the washing hopper cover 270 and the follower load that moves with it in a straight line. For the sake of simplicity, it is simply referred to as the washing hopper cover 270. As an example, the magnetic force on the washing hopper cover 270 can be understood as the magnetic force on the component consisting of the washing hopper cover 270 and the follower load that moves with it in a straight line.
[0153] The order of steps in the method of this invention can be adjusted, combined, or deleted according to actual needs. The processes described in all the preferred embodiments above are merely examples. Unless adverse effects occur, various processing operations can be performed in a different order than the above-described processes. The order of steps in the above-described processes can also be added, combined, or deleted according to actual needs.
[0154] Unless otherwise defined, the technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. The terminology used herein is for descriptive purposes only and is not intended to limit the invention. Features described in one embodiment may be applied, alone or in combination with other features, to another embodiment, unless that feature is not applicable in that other embodiment or is otherwise stated.
[0155] The present invention has been described through the above embodiments. However, it should be understood that the above embodiments are for illustrative purposes only and are not intended to limit the invention to the scope of the described embodiments. Furthermore, those skilled in the art will understand that the present invention is not limited to the above embodiments, and many more variations and modifications can be made based on the teachings of the present invention, all of which fall within the scope of protection claimed by the present invention. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A washing system for cooking utensils, characterized in that, include: A feeding mechanism, comprising a feeding bin, the feeding bin being movably arranged along a straight line; A washing hopper assembly includes a washing hopper body, a washing hopper cover, an agitator, and a translational fitting. The washing hopper body forms a washing chamber with a discharge port. The washing hopper cover is movably disposed along a straight line. The agitator is located within the washing chamber and is rotatable relative to the washing hopper body. The translational fitting is connected to the washing hopper cover. A transmission assembly, which is movably disposed along a straight line and includes a translational drive element; The transmission assembly is engageable with the feeding hopper so that the transmission assembly moves together with the feeding hopper, and the feeding hopper is movably arranged in a straight line to transfer material to the washing chamber. At least one of the translational mating component and the translational driving component is a magnet, and there is a magnetic force between the translational mating component and the translational driving component. When the transmission assembly moves to change the magnetic force between the translational mating component and the translational driving component, the washing hopper cover moves between an open position that opens the discharge port and a closed position that closes the discharge port.
2. The washing system according to claim 1, characterized in that, The washing hopper assembly further includes a mounting base and a rotating fitting, the rotating fitting being disposed on the mounting base, and the agitator being connected to and rotatable with the mounting base; the transmission assembly includes a transmission body and a rotary drive, the transmission body being rotatable relative to the washing hopper body, and the rotary drive being disposed on the transmission body. The rotating drive component and the rotating mating component are magnets. When the transmission body rotates, the stirring component rotates under the magnetic force between the rotating drive component and the rotating mating component.
3. The washing system according to claim 2, characterized in that, The transmission body has a first driving position and a second driving position that enables the rotary drive member to work in conjunction with the rotary mating member. The first driving position corresponds to the closed position, and the second driving position corresponds to the open position.
4. The washing system according to claim 2, characterized in that, The agitator and the washing hopper cover are separate components connected to each other, or the agitator and the washing hopper cover are formed as a single unit.
5. The washing system according to claim 2, characterized in that, The transmission body is provided with a central hole, the feeding bin is located inside the central hole, and the transmission body is rotatable relative to the feeding bin.
6. The washing system according to claim 5, characterized in that, The feeding mechanism also includes a linkage component, which is located at the bottom of the feeding bin. The linkage component is located below the transmission assembly and has an upward-facing linkage support surface for supporting the transmission assembly upwards.
7. The washing system according to claim 6, characterized in that, The transmission assembly further includes a transmission support, which is located in the central hole of the main body and connected to the transmission main body. The transmission main body is rotatable relative to the transmission support. The transmission support has a downward-facing support surface, which is used to abut against the linkage support surface.
8. The washing system according to claim 7, characterized in that, The transmission assembly further includes a rotary drive device and a mounting bracket. The mounting bracket is located above the transmission body and connected to the transmission support. The rotary drive device is disposed on the mounting bracket, and its output shaft is connected to the transmission body to rotate the transmission body.
9. The washing system according to claim 8, characterized in that, The top of the transmission body is provided with an upwardly protruding gear portion, which surrounds the central hole of the body. The output shaft is provided with a transmission gear, which meshes with the gear portion. And / or, the transmission support is provided with a support center hole and a support boss extending radially outward, the feeding bin is located in the support center hole, and the top of the transmission body is located between the support boss and the mounting bracket.
10. The washing system according to claim 2, characterized in that, The rotary drive member is located radially outside the rotary mating member when in the drive position; Alternatively, the rotary drive member may be located radially inside the rotary mating member when in the drive position. Alternatively, the rotary drive member may be positioned above the rotary mating member in the drive position.
11. The washing system according to claim 2, characterized in that, The rotary drive component, when in the drive position, corresponds to the position of the rotary mating component and their magnetic poles face opposite directions, or When in the driving position, the rotary drive component is radially offset from the rotary mating component, and their magnetic poles face each other.
12. The washing system according to claim 2, characterized in that, The rotary drive is located outside the washing chamber, and when in the driving position, the rotary drive is located radially outside the rotary mating member; Alternatively, the rotary drive is located inside the washing chamber, and when in the driving position, the rotary drive is located radially inside the rotary mating member.
13. The washing system according to any one of claims 1 to 12, characterized in that, The feeding hopper is provided with an inlet, an outlet, an inlet channel for conveying solid materials extending between the inlet and the outlet, and / or a water inlet, an outlet, and a water inlet channel extending between the inlet and the outlet.
14. The washing system according to any one of claims 1 to 12, characterized in that, The washing bin assembly is located below the feeding bin and the transmission assembly, and the feeding bin, the washing bin cover, and the transmission assembly can all be moved up and down.
15. The washing system according to any one of claims 1 to 12, characterized in that, The feeding bin is movable at least between a first position, a second position, and an additional position. The transmission assembly is engageable with the feeding bin so that the transmission assembly moves together with the feeding bin between the first position and the second position, and the feeding bin extends relative to the transmission assembly and into the washing chamber in the additional position.
16. The washing system according to claim 15, characterized in that, The feeding bin has a feeding channel for conveying solid materials. When the feeding bin is in the first position and the second position, the feeding channel is not connected to the washing chamber. When the feeding bin is in the additional position, it extends relative to the transmission assembly and into the washing chamber, and the feeding channel is connected to the washing chamber.
17. The washing system according to claim 16, characterized in that, It also includes a storage bin, wherein the inlet and outlet of the feeding channel are both located on the axially extending side wall of the washing bin, wherein when the feeding bin is located in the first position and the second position, the side wall of the feeding bin blocks the outlet of the storage bin; when the feeding bin is located in the additional position, the inlet is connected to the outlet of the storage bin, and the outlet is connected to the washing chamber.
18. The washing system according to claim 15, characterized in that, When the feeding bin is in the additional position, the transmission assembly abuts against the top surface of the washing bin body; Alternatively, it may include a fixed support frame, in which the transmission assembly abuts against the fixed support frame when the feed hopper is in the additional position.
19. The washing system according to any one of claims 1 to 12, characterized in that, The translational mating component is a magnet, and the translational driving component is one of the following: magnet, iron, nickel, cobalt, ferritic steel, martensitic steel, or austenitic-ferritic dual-phase steel. Alternatively, both the translational mating component and the translational driving component may be magnets; Alternatively, the translational mating component may be one of iron, nickel, cobalt, ferritic steel, martensitic steel, or austenitic-ferritic dual-phase steel, and the translational driving component may be a magnet.
20. The washing system according to any one of claims 1 to 12, characterized in that, The translational drive component and the translational mating component are positioned opposite each other, and their magnetic poles are either opposite or the same. And / or the translational drive is located outside or inside the washing chamber.
21. The washing system according to any one of claims 1 to 12, characterized in that, It also includes a linear drive device, which is connected to the feeding bin and is used to drive the feeding bin to move in a straight line.
22. The washing system according to claim 21, characterized in that, The feeding bin is provided with a screw hole, and the feeding mechanism further includes a screw, which is connected to the output shaft of the linear drive device and is located in the screw hole.
23. The washing system according to any one of claims 1 to 12, characterized in that, The washing hopper cover blocks all of the discharge ports, or the washing hopper cover blocks part of the discharge ports.
24. A cooking utensil, characterized in that, Includes a pot body and a washing system according to any one of claims 1 to 23, wherein the washing bin assembly is connected to the pot body via the discharge port for material discharge.
Citation Information
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