Discharging device and cooking equipment

The design of the detachable limiting structure solves the problems of difficult cleaning and poor structural stability of the feeding device, realizing a feeding device that is easy to clean and highly stable, thus improving its performance.

CN224140616UActive Publication Date: 2026-04-21ZHUHAI UNICOOK TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHUHAI UNICOOK TECHNOLOGY CO LTD
Filing Date
2025-04-27
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing feeding devices suffer from poor performance due to difficulties in cleaning and poor structural stability.

Method used

A feeding device was designed, which is detachably connected by a first mounting structure and a second mounting structure. A limiting structure is set to ensure stability, and the limiting structure can be detachably spliced ​​to form a feeding channel for easy cleaning.

Benefits of technology

It effectively reduces the difficulty of cleaning the feeding channel, ensures the stability of the device, prevents seasoning leakage, and improves the performance of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a blanking device and cooking equipment. The discharging device comprises a first mounting structure; the first mounting structure and the second mounting structure are detachably connected and define a discharging channel, at least one limiting structure is arranged on at least one of the first mounting structure and the second mounting structure, and the at least one limiting structure extends towards one face of the other mounting structure and abuts against one face of the other mounting structure. The discharging device solves the problem that in the prior art, due to the fact that a discharging device is difficult to clean and poor in structural stability, the using performance is poor.
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Description

Technical Field

[0001] This utility model relates to the field of cooking equipment technology, and more specifically, to a feeding device and cooking equipment. Background Technology

[0002] Existing automatic cooking machines often cannot automatically dispense solid seasonings, or the solid seasonings cannot be accurately dispensed into the pot. In order to dispense solid seasonings, automatic cooking machines are usually equipped with a feeding device.

[0003] Existing feeding devices mostly use pneumatic ducts for supply. A spice box containing solid seasonings is installed above the duct. The spice box dispenses the seasonings (powder) quantitatively into the duct below through a feeding mechanism. A fan blows air into one end of the duct, and the air inside the duct carries the dispensed powdered seasonings to the other end of the duct, which is located above the wok, thus adding the seasonings into the wok.

[0004] However, due to the high humidity in the kitchen, powder residue can adhere to the inner wall of the pipes after prolonged use, hindering powder discharge. Timely cleaning is necessary, but it is extremely troublesome and difficult for customers to do themselves, requiring on-site cleaning by the manufacturer. The pipes are non-disassembled and difficult to clean, significantly impacting the normal operation of the powder dispensing mechanism. Furthermore, the existing dispensing device suffers from poor structural stability, making it difficult to guarantee a proper seal, leading to solid seasoning leakage during use.

[0005] In another existing technology, the feeding device is set up in separate parts, but the connection structure is more complicated and it cannot achieve multiple aspects of limiting, so it cannot achieve multiple aspects of limiting.

[0006] Therefore, existing technologies suffer from poor performance of feeding devices due to difficulties in cleaning and poor structural stability. Utility Model Content

[0007] The main purpose of this utility model is to provide a feeding device and cooking equipment to solve the problem of poor performance of the feeding device in the prior art due to difficulty in cleaning and poor structural stability.

[0008] To achieve the above objectives, according to one aspect of the present invention, a feeding device is provided, comprising: a first mounting structure; and a second mounting structure, wherein the first mounting structure and the second mounting structure are detachably connected and form a feeding channel, and at least one of the first mounting structure and the second mounting structure is provided with at least one limiting structure, wherein the at least one limiting structure extends toward one side of the other mounting structure and abuts against one side of the other mounting structure.

[0009] Furthermore, at least one of the first mounting structure and the second mounting structure is an L-shaped structure.

[0010] Furthermore, the first and second mounting structures are either horizontally split mounting structures or vertically split mounting structures.

[0011] Furthermore, the limiting structure includes a limiting baffle disposed on the first mounting structure, the limiting baffle extending toward the second mounting structure and abutting against the side wall of the second mounting structure.

[0012] Furthermore, the limiting structure includes a stop protrusion disposed on the second mounting structure, the stop protrusion extending toward one side of the first mounting structure and abutting against one side of the first mounting structure.

[0013] Furthermore, the stop protrusion has a discharge channel connected to the feeding channel, the end of the discharge channel away from the feeding channel has a discharge port, and the end of the feeding channel away from the discharge channel has an air inlet.

[0014] Furthermore, the first mounting structure has a first abutting surface, and the second mounting structure has a second abutting surface that abuts against the first abutting surface. A first step and a first groove are respectively provided on the first abutting surface and the second abutting surface. The first step and the first groove cooperate to restrict the movement of the first mounting structure and the second mounting structure.

[0015] Furthermore, the first step and the first groove are disposed outside the first mounting structure and the second mounting structure; and / or the first step and the first groove are disposed near the material discharge channel.

[0016] Furthermore, a fitting gap is provided between the first step and the first groove.

[0017] Furthermore, the first mounting structure has a concave surface, and the second mounting structure has an extended side protruding from the concave surface. The concave surface and the extended side together form a hand-held part on the side of the feeding device.

[0018] Furthermore, the output end of the feeding channel is equipped with a feeding pipe for guiding the feeding of seasonings. The feeding pipe and the feeding channel are detachably connected by threads, limiting ribs, or sealing rings.

[0019] Furthermore, the input end of the feeding channel is equipped with a fan or a fan and a heat engine, and the airflow output by the fan drives the seasonings in the feeding channel to be fed into the pot.

[0020] Furthermore, the first mounting structure and the second mounting structure are designed to be inclined relative to the horizontal plane toward the pot body.

[0021] Furthermore, the side of the first mounting structure facing away from the second mounting structure has at least one discharge port that communicates with the discharge channel.

[0022] According to another aspect of the present invention, a cooking device is provided, including the above-mentioned feeding device. A feeding port communicating with the feeding channel is provided on the first mounting structure. The cooking device also includes a solid feeding chamber, which accommodates a solid material tank. A power transmission component, a material tank limiting component, and a material hopper mounting port are provided in the solid feeding chamber. When the solid material tank is connected to the power transmission component through the material tank limiting component, the discharge port, the material hopper mounting port, and the feeding port of the solid material tank are connected in sequence.

[0023] Applying the technical solution of this utility model, the feeding device in this application includes a first mounting structure and a second mounting structure. The first mounting structure and the second mounting structure are detachably connected and form a feeding channel. At least one of the first mounting structure and the second mounting structure is provided with at least one limiting structure. The at least one limiting structure extends toward the other mounting structure and abuts against the other mounting structure.

[0024] When using the feeding device of this application, since the feeding channel of the feeding device is detachably assembled from the first mounting structure and the second mounting structure, when cleaning of the feeding channel is required, the first mounting structure and the second mounting structure can be separated and the feeding channel can be cleaned, thereby effectively reducing the cleaning difficulty of the feeding channel. This allows users to clean the feeding channel independently without the need for professional operators. Simultaneously, since the feeding device also has a limiting structure, after the first mounting structure and the second mounting structure are assembled, the relative position between the first mounting structure and the second mounting structure can be limited by the limiting structure. This effectively ensures the stability between the first mounting structure and the second mounting structure during the operation of the feeding device, preventing relative displacement between the first mounting structure and the second mounting structure from affecting the sealing performance of the feeding device, and thus effectively preventing material leakage. Therefore, the feeding device of this application effectively solves the problem of poor performance caused by difficult cleaning and poor structural stability in existing feeding devices. Attached Figure Description

[0025] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:

[0026] Figure 1 A schematic diagram of the structure of a feeding device according to a specific embodiment of this application is shown;

[0027] Figure 2 It shows Figure 1 Exploded view of the feeding device in the middle;

[0028] Figure 3 It shows Figure 1A schematic diagram of the first installation structure of the feeding device in the middle;

[0029] Figure 4 A schematic diagram of the first mounting structure of the feeding device according to another specific embodiment of this application is shown;

[0030] Figure 5 It shows Figure 4 A schematic diagram of the second mounting structure of the feeding device in the middle;

[0031] Figure 6 It shows Figure 4 The first installation structure and Figure 5 A schematic diagram showing the positional relationship between the first groove and the first step after the second mounting structure is assembled.

[0032] Figure 7 A schematic diagram of the structure of a cooking device according to a specific embodiment of this application is shown;

[0033] Figure 8 It shows Figure 1 A schematic diagram of the first mounting structure in the embodiment from another angle;

[0034] Figure 9 It shows Figure 1 A schematic diagram of the second mounting structure in the embodiment.

[0035] The above figures include the following reference numerals:

[0036] 10. First mounting structure; 11. First abutting surface; 111. First groove; 12. Concave surface; 13. Discharge port; 20. Second mounting structure; 21. Second abutting surface; 211. First step; 22. Extension edge; 23. Handheld part; 30. Discharge channel; 31. Air inlet; 40. Limiting structure; 41. Limiting baffle; 42. Stop protrusion; 421. Discharge channel; 50. Feeding pipe; 60. First magnetic component; 61. Second magnetic component; 70. Solid discharge chamber; 71. Power transmission component; 72. Material tank limiting component; 73. Material hopper mounting port; 80. First mating position; 81. First mating surface; 90. Second mating position; 91. Second mating surface. Detailed Implementation

[0037] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0038] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.

[0039] In this utility model, unless otherwise stated, directional terms such as "upper," "lower," "top," and "bottom" are generally used in relation to the direction shown in the accompanying drawings, or in relation to the vertical, perpendicular, or gravitational direction of the component itself; similarly, for ease of understanding and description, "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.

[0040] In order to solve the problem of poor performance of the feeding device in the prior art due to difficulty in cleaning and poor structural stability, this application provides a feeding device and cooking equipment.

[0041] And, as Figures 1 to 7 As shown, the cooking device in this application has the following feeding device.

[0042] like Figures 1 to 6 As shown, the feeding device in this application includes a first mounting structure 10 and a second mounting structure 20. The first mounting structure 10 and the second mounting structure 20 are detachably connected and form a feeding channel 30. At least one of the first mounting structure 10 and the second mounting structure 20 is provided with at least one limiting structure 40. The at least one limiting structure 40 extends toward the side of the other mounting structure and abuts against the side of the other mounting structure.

[0043] When using the feeding device of this application, since the feeding channel 30 of the feeding device is detachably assembled from the first mounting structure 10 and the second mounting structure 20, when cleaning the feeding channel 30 is required, the first mounting structure 10 and the second mounting structure 20 can be separated and the feeding channel 30 can be cleaned, thereby effectively reducing the cleaning difficulty of the feeding channel 30. This allows users to clean the feeding channel 30 independently without the need for professional operators. Simultaneously, since the feeding device also has a limiting structure 40, after the first mounting structure 10 and the second mounting structure 20 are assembled, the limiting structure 40 can limit the relative position between the first mounting structure 10 and the second mounting structure 20, thereby effectively ensuring the stability between the first mounting structure 10 and the second mounting structure 20 during the operation of the feeding device. This prevents relative displacement between the first mounting structure 10 and the second mounting structure 20 from affecting the sealing performance of the feeding device, thus effectively preventing material leakage. Therefore, the feeding device of this application effectively solves the problem of poor performance caused by difficult cleaning and poor structural stability in existing feeding devices.

[0044] In this application, the limiting structure 40 can be individually disposed on the first mounting structure 10, individually disposed on the second mounting structure 20, or simultaneously disposed on both the first mounting structure 10 and the second mounting structure 20. Furthermore, the feeding device in this application can have multiple limiting structures 40, and the placement and specific structure of each limiting structure 40 can be different. For the limiting structure 40 disposed on the first mounting structure 10, it acts on the second mounting structure 20 to limit the relative position between the first mounting structure 10 and the second mounting structure 20. For the limiting structure 40 disposed on the second mounting structure 20, it acts on the first mounting structure 10 to limit the relative position between the first mounting structure 10 and the second mounting structure 20. Of course, the limiting structure 40 in this application can also be a split structure, that is, one part of the limiting structure 40 is disposed on the first mounting structure 10 and the other part is disposed on the second mounting structure 20, so that the part of the limiting structure 40 on the first mounting structure 10 and the part of the limiting structure 40 on the second mounting structure 20 interact with each other, thereby achieving the technical effect of limiting the relative position between the first mounting structure 10 and the second mounting structure 20.

[0045] In this application, the feeding device can have multiple limiting structures 40. For different shapes of the limiting structures 40, they can be limiting baffles 41, stop protrusions 42, etc. When the limiting baffle 41 or the stop protrusion 42 is disposed on the first mounting structure 10, the limiting baffle 41 or the stop protrusion 42 extends towards the second mounting structure 20 and abuts against the outer surface of the second mounting structure 20. When the limiting baffle 41 or the stop protrusion 42 is disposed on the second mounting structure 20, the limiting baffle 41 or the stop protrusion 42 extends towards the first mounting structure 10 and abuts against the outer surface of the second mounting structure 20. This achieves the technical effect of limiting the relative position between the first mounting structure 10 and the second mounting structure 20. Of course, in this application, the first mounting structure 10 and the second mounting structure 20 can also simultaneously be provided with limiting baffles 41 or stop protrusions 42, or one can have a limiting baffle 41 and the other has a stop protrusion 42.

[0046] Optionally, at least one of the first mounting structure 10 and the second mounting structure 20 is an L-shaped structure. In this application, after the limiting structure 40 is provided on the first mounting structure 10, since the limiting structure 40 extends toward the second mounting structure 20, the first mounting structure 10 is actually composed of the main body structure of the first mounting structure 10 and the limiting structure 40. Therefore, the cross-sectional shape of the first mounting structure 10 in a certain direction is L-shaped. As for the shape of the second mounting structure 20, its formation principle is the same as that of the first mounting structure 10, so it will not be described again.

[0047] like Figure 4 As shown, the limiting structure 40 includes a limiting baffle 41 disposed on the first mounting structure 10. The limiting baffle 41 extends toward the second mounting structure 20 and abuts against the side wall of the second mounting structure 20. That is, in this embodiment, the limiting baffle 41 and the body structure of the first mounting structure 10 make the specific structure of the first mounting structure 10 approximately L-shaped. Furthermore, in this embodiment, the limiting baffle 41 is disposed on the side of the first mounting structure 10 and extends toward the second mounting structure 20, so that the limiting baffle 41 can abut against the side of the second mounting structure 20. And regarding the length of the limiting baffle 41, the length of the limiting baffle 41 is the same as the length of the side of the first mounting structure 10 on which it is located. And, as... Figure 4 As shown, in this application, the length direction of the first mounting structure 10 is the X-axis direction, the width direction is the Y-axis direction, and the thickness direction is the Z-axis direction. At this time, the side of the first mounting structure 10 where the limiting baffle 41 is located extends along the X-axis direction, and the extension direction of the limiting baffle 41 toward the second mounting structure 20 is the Z-axis direction. Furthermore, in this embodiment, the first mounting structure 10 and the second mounting structure 20 are stacked on top of each other along the Z-axis direction.

[0048] like Figure 1 As shown, in another embodiment of this application, unlike the above embodiment, the first mounting structure 10 and the second mounting structure 20 are spliced ​​in the Y-axis direction. That is, in this application, the first mounting structure 10 and the second mounting structure 20 can be a horizontally separate mounting structure, i.e., the first mounting structure 10 and the second mounting structure 20 are stacked or spliced ​​together in the Z-axis direction, or they can be a vertically separate mounting structure, i.e., in this embodiment, the first mounting structure 10 and the second mounting structure 20 are spliced ​​in the Y-axis direction. Furthermore, for both configurations, the length of the spliced ​​portion of the first mounting structure 10 and the second mounting structure 20 in the X-axis direction is approximately the same, ensuring that every part of the material discharge channel 30 extending in the X-axis direction is formed by splicing the first mounting structure 10 and the second mounting structure 20, thereby ensuring that the user can more easily clean the material discharge channel 30.

[0049] like Figure 5 As shown, the limiting structure 40 includes a stop protrusion 42 disposed on the second mounting structure 20. The stop protrusion 42 extends toward one side of the first mounting structure 10 and abuts against one side of the first mounting structure 10. That is, in this embodiment, the stop protrusion 42 and the body structure of the second mounting structure 20 make the specific structure of the second mounting structure 20 approximately L-shaped. Furthermore, in this embodiment, the stop protrusion 42 is disposed at one end of the second mounting structure 20 in the X-axis direction and extends toward the first mounting structure 10 in the Z-axis direction, so that the stop protrusion 42 can abut against the surface of one end of the first mounting structure 10 in the X-axis direction. At this time, the limiting baffle 41 interacts with the second mounting structure 20, and the stop protrusion 42 interacts with the first mounting structure 10. Moreover, the limiting direction between the limiting baffle 41 and the second mounting structure 20 is different from the limiting direction between the stop protrusion 42 and the first mounting structure 10, thereby ensuring a more stable relative position between the first mounting structure 10 and the second mounting structure 20. Therefore, at this time, the limiting structure 40 ensures the limiting baffle 41 provided on the first mounting structure 10 and the stop protrusion 42 provided on the second mounting structure 20.

[0050] Optionally, the stop protrusion 42 has a discharge channel 421 communicating with the discharge channel 30. The end of the discharge channel 421 away from the discharge channel 30 has a discharge port, and the end of the discharge channel away from the discharge channel 421 has an air inlet 31. Therefore, when using the discharge device of this application, air can be blown into the air inlet 31 by a fan, thereby ensuring that the solid seasoning can be carried by the airflow in the discharge channel 30 through the discharge channel 421 and discharged from the discharge port into the cooking appliance. Furthermore, in this application, the cooking appliance can be a pot or pan, such as a wok, frying pan, or saucepan. Therefore, in this application, the discharge port can be located on the rectangle of the wok. Furthermore, to ensure that the seasonings can enter the cooking appliance more easily, the feeding channel 30 and the discharging channel 421 can be inclined along the direction close to the cooking appliance. In other words, the feeding channel 30 is inclined inside the first mounting structure 10 and the second mounting structure 20, and the discharging channel 421 is inclined within the stop protrusion 42 and forms an angle with the X-axis. This ensures that the seasonings can enter the cooking appliance more easily under the influence of gravity while moving through the feeding channel 30 and the discharging channel 421. Moreover, the portions of the first mounting structure 10 and the second mounting structure 20 that constitute the feeding channel 30 can be different from those portions of the second mounting structure 20. In other words, the proportion of the first mounting structure 10 constituting the feeding channel 30 and the proportion of the second mounting structure 20 constituting the feeding channel 30 can be different. Of course, in this application, the feeding device can also be tilted relative to the cooking appliance. In this case, the proportion of the first mounting structure 10 constituting the feeding channel 30 and the proportion of the second mounting structure 20 constituting the feeding channel 30 can be the same.

[0051] Alternatively, the first mounting structure 10 can be directly coupled with the second mounting structure 20, and the overall horizontal plane formed by the splicing of the first mounting structure 10 and the second mounting structure 20 can be tilted towards the pot body, that is, tilted towards the cooking appliance relative to the XY plane. In this case, the tilting setting allows solid seasonings to be discharged from the feeding channel under their own gravity, thereby reducing the use of a power source.

[0052] Optionally, the first mounting structure 10 has a first abutting surface 11, and the second mounting structure 20 has a second abutting surface 21 that abuts against the first abutting surface 11. A first step 211 and a first groove 111 are respectively provided on the first abutting surface 11 and the second abutting surface 21. The first step 211 and the first groove 111 cooperate to restrict the movement of the first mounting structure 10 and the second mounting structure 20. That is, in this application, in the Z-axis direction, the side where the first mounting structure 10 and the second mounting structure 20 are joined together has a first abutting surface 11 and a second abutting surface 21, and the first abutting surface 11 and the second abutting surface 21 have a cavity structure that is joined together to form a feeding channel 30. Furthermore, through the mutual cooperation of the first groove 111 and the first step 211, the relative position between the first mounting structure 10 and the second mounting structure 20 can be further limited. Figures 4 to 6 As shown, the first abutting surface 11 has a first groove 111, and the second abutting surface 21 has a first step 211. Of course, the relative positions of the first groove 111 and the first step 211 can be interchanged.

[0053] In such Figures 4 to 6 In the embodiment shown, the first groove 111 and the limiting baffle 41 are located at the two ends of the first mounting structure 10 in the Y-axis direction.

[0054] Of course, regarding the placement of the first step 211 and the first groove 111, when the splicing direction between the first mounting structure 10 and the second mounting structure 20 changes, the placement of the first step 211 and the first groove 111 will also change simultaneously. Therefore, as... Figure 1 and Figure 2 As shown, when the first mounting structure 10 and the second mounting structure 20 are vertically joined, that is, when the first mounting structure 10 and the second mounting structure 20 are joined in the Y-axis direction, the first step 211 and the first groove 111 are respectively disposed on the top or top surface of the first mounting structure 10 and the second mounting structure 20 in the Z-axis direction. Alternatively, depending on the installation requirements, the first step 211 and the first groove 111 are respectively disposed on the bottom surface of the first mounting structure 10 and the second mounting structure 20 in the Z-axis direction.

[0055] Therefore, the first step 211 and the first groove 111 are disposed outside the first mounting structure 10 and the second mounting structure 20.

[0056] It should be noted that, regarding the placement of the first step 211 and the first groove 111 in this application, the first step 211 and the first groove 111 can be located close to the outer wall surface where the first mounting structure 10 and the second mounting structure 20 intersect, or close to the inner wall surface where the first mounting structure 10 and the second mounting structure 20 intersect. Therefore, the first step 211 and the first groove 111 can be positioned near the material feeding channel 30 in the first mounting structure 10 and the second mounting structure 20. Of course, depending on different design requirements, the first step 211 and the first groove 111 can also be positioned away from the material feeding channel 30 in the first mounting structure 10 and the second mounting structure 20.

[0057] Specifically, such as Figure 1 , Figure 2 , Figure 8 and Figure 9 As shown, when the first mounting structure 10 and the second mounting structure 20 are vertically spliced ​​structures, that is, when the first mounting structure 10 and the second mounting structure 20 are spliced ​​in the Y-axis direction, the first step 211 and the first groove 111 can be set at the edge of the material discharge channel 30 formed by the splicing of the first mounting structure 10 and the second mounting structure 20. In other words, when the first mounting structure 10 and the second mounting structure 20 are spliced ​​to form the material discharge channel 30, the first mounting structure 10 and the second mounting structure 20 will have splicing edges corresponding to the material discharge channel 30. At this time, the first step 211 and the first groove 111 are set at the splicing edge of the first mounting structure 10 and the second mounting structure 20. This not only limits the relative position of the first mounting structure 10 and the second mounting structure 20, but also effectively improves the sealing effect of the material discharge channel. Furthermore, regarding the arrangement of the first step 211 and the first groove 111, one of the first mounting structure 10 and the second mounting structure 20 may only have the first step 211, and the other may only have the first groove 111; of course, the first mounting structure 10 and the second mounting structure 20 may both have the first step 211 and the first groove 111, and the first step 211 of the first mounting structure 10 and the first groove 111 of the second mounting structure 20 are correspondingly arranged and cooperate with each other, and the first groove 111 of the first mounting structure 10 and the first step 211 of the second mounting structure 20 are correspondingly arranged and cooperate with each other.

[0058] Optionally, a fitting gap is provided between the first step 211 and the first groove 111. This arrangement can effectively reduce the processing difficulty of the first mounting structure 10 and the second mounting structure 20, and also reduce the assembly difficulty of the first mounting structure 10 and the second mounting structure 20. Figures 4 to 6As shown, in this application, the first mounting structure 10 has a first groove 111, and the second mounting structure 20 has a first step 211. The top surface of the first step 211, which is parallel to the XY plane, abuts against the first groove 111, while the side surface of the first step 211 opposite to the XZ plane is inclined, thereby forming a fitting gap with the inner wall surface of the first groove 111 that is parallel to the XZ axis plane. The fitting gap can avoid the problem of insufficient structural sealing due to process errors.

[0059] Of course, for Figure 6 Regarding the first step 211 and the first groove 111, there is a first mating position 80 and a second mating position 90 between them. A mating gap can be provided at each of the corresponding positions. This is because the first mating position 80 affects the fit between the first mounting structure 10 and the second mounting structure 20 at the first mating surface 81, thus affecting the sealing effect at that surface. Similarly, the second mating position 90 affects the fit between the first mounting structure 10 and the second mounting structure 20 at the second mating surface 91, thus affecting the sealing effect there as well. If no gap is provided at the first mating position 80, a gap will exist at the first mating surface 81, affecting the sealing effect there. Likewise, if no gap is provided at the second mating position 90, a gap will exist at the second mating surface 91, affecting the sealing effect there.

[0060] Preferably, the first mounting structure 10 has a concave surface 12, and the second mounting structure 20 has an extended side 22 protruding from the concave surface 12. The concave surface 12 and the extended side 22 together form a handhold 23 on the side of the feeding device. In this application, when it is necessary to disassemble the first mounting structure 10 and the second mounting structure 20, the concave surface 12 of the first mounting structure 10 provides a placement position for the operator's fingers, and the extended side 22 provides a pressing position for the fingers, making it easier for the operator to apply force to separate the first mounting structure 10 and the second mounting structure 20. Therefore, in this application, the concave surface 12 and the extended side 22 together form the handhold 23. The purpose of setting the concave surface 12 on the first mounting structure 10 and setting the extension edge 22 on the second mounting structure 20 is because the cooking device in this application may also have a shell, and the top surface of the first mounting structure 10 is connected to the shell in the Z-axis direction. Thus, in the process of disassembling the first mounting structure 10 and the second mounting structure 20, the second mounting structure 20 is actually removed from the first mounting structure 10. Therefore, the extension edge 22 is set on the second mounting structure 20 to form a force-bearing position.

[0061] Optionally, the output end of the feeding channel 30 is provided with a feeding pipe 50 for guiding the dispensing of seasonings. The feeding pipe 50 is detachably connected to the feeding channel 30 by threads, limiting ribs, or sealing rings. Furthermore, in this application, when the second mounting structure 20 is provided with a stop protrusion 42, the feeding pipe 50 can extend into the discharge channel 421 of the stop protrusion 42 and connect with the feeding channel 30. Of course, in this application, the feeding pipe 50 can also be connected to the discharge port of the discharge channel 421. The purpose of providing threads, limiting ribs, or sealing rings is to ensure the sealing of the connection between the feeding pipe 50 and the feeding channel 30 or the discharge port, thereby preventing seasoning leakage. In this application, the feeding pipe 50 can also be inclined downwards towards the cooking pot, thereby ensuring that the seasonings can enter the cooking pot more easily.

[0062] Specifically, the feeding device also includes a first magnetic element 60 and a second magnetic element 61 that cooperate with each other. The first magnetic element 60 is disposed on the first mounting structure 10, and the second magnetic element 61 is disposed on the second mounting structure 20. Regarding the arrangement of the first magnetic element 60 and the second magnetic element 61, they can be inserted into the mounting structure from opposite sides of the mating surfaces of the first mounting structure 10 and the second mounting structure 20, with at least a portion of the mounting structure separated by a gap; or the first magnetic element 60 and the second magnetic element 61 can be inserted into the mounting structure from the mating surfaces of the first mounting structure 10 and the second mounting structure 20, and can be directly in contact. It should be noted that the first mounting structure 10 and / or the second mounting structure 20 can be configured as a whole to be magnetic. In this case, the first mounting structure 10 is the first magnetic element 60, and the second mounting structure 20 is the second magnetic element 61.

[0063] It should be noted that the feeding device in this application may have only the first magnetic element 60 or the second magnetic element 61, or it may have both the first magnetic element 60 and the second magnetic element 61. When the feeding device has only the first magnetic element 60, the second mounting structure 20 may be made of a magnetically attractive metal material (such as a ferromagnetic material), or the second mounting structure 20 may have a magnetically attractive component (such as a magnetically attractive component made of a ferromagnetic material) to attract the first magnetic element 60, thereby ensuring that the first magnetic element 60 can magnetically engage with the second mounting structure 20, without the need for the second magnetic element 61. When the feeding device has only the second magnetic element 61, the principle is the same as described above, and will not be repeated here. When the feeding device has both the first magnetic element 60 and the second magnetic element 61, the first mounting structure 10 and the second mounting structure 20 can be magnetically attached and detached through the mutual cooperation of the first magnetic element 60 and the second magnetic element 61, thereby ensuring that the first mounting structure 10 and the second mounting structure 20 can be more easily attached and detached.

[0064] Furthermore, regarding the placement of the first magnetic component 60 and the second magnetic component 61, they can be positioned on the side where the first mounting structure 10 and the second mounting structure 20 intersect, effectively ensuring the adsorption effect between them. Alternatively, the first magnetic component 60 and the second magnetic component 61 can be positioned on the side where the first mounting structure 10 and the second mounting structure 20 are far apart. This effectively prevents the material in the feeding channel 30 from entering the mounting gaps around the first magnetic component 60 and the second magnetic component 61, and also ensures a smoother splicing of the parts of the first mounting structure 10 and the second mounting structure 20 that form the feeding channel 30, thereby reducing splicing gaps. On the other hand, positioning the first magnetic element 60 and the second magnetic element 61 on opposite sides of the first mounting structure 10 and the second mounting structure 20 can prevent them from detaching from the respective structures during interaction, thus ensuring stability between the first magnetic element 60 and the first mounting structure 10, as well as between the second magnetic element 61 and the second mounting structure 20. Furthermore, corresponding groove structures can be provided in the first mounting structure 10 and the second mounting structure 20 at positions corresponding to the first magnetic element 60 and the second magnetic element 61 to accommodate them. This configuration also applies to cases involving only the first magnetic element 60 and the second magnetic element 61.

[0065] Meanwhile, in the X-axis direction, the first magnetic element 60 and the second magnetic element 61 can be correspondingly positioned at opposite ends of the first mounting structure 10 and the second mounting structure 20 in the X-axis direction. Alternatively, the first magnetic element 60 and the second magnetic element 61 can be correspondingly positioned at the midpoint of the first mounting structure 10 and the second mounting structure 20 in the X-axis direction. Therefore, the specific number of the first magnetic element 60 and the second magnetic element 61 can be adaptively adjusted according to different design requirements.

[0066] Specifically, for the first mounting structure 10 of the feeding device, the side of the first mounting structure 10 facing away from the second mounting structure 20 has at least one feeding port 13 communicating with the feeding channel 30. By setting the feeding port 13, the solid container of the cooking equipment can be installed on the feeding port 13, thereby ensuring that the solid seasoning in the solid container can enter the interior of the feeding channel 30 through the feeding port 13. Therefore, when there are multiple feeding ports 13, multiple solid containers can be installed, and different solid containers can hold different solid seasonings. Specifically, the input end of the feeding channel 30 is provided with a fan or a fan and a heat engine. The airflow output by the fan drives the seasoning in the feeding channel 30 to be fed into the pot. That is to say, a power structure such as a fan or a heat engine can be set at the air inlet 31 of the first mounting structure 10, thereby ensuring that the seasoning in the solid container, after entering the interior of the feeding channel 30, is transported to the feeding pipe 50 under the action of the power structure and discharged from the feeding pipe 50 to enter the cooking appliance. Of course, in this application, a vibration structure can also be provided on the feeding device so that the solid seasoning in the feeding channel 30 is discharged from the feeding pipe 50 and enters the cooking appliance under the vibration action of the vibration structure.

[0067] According to another aspect of this utility model, a cooking device is provided, including the aforementioned feeding device. A first mounting structure 10 is provided with a feeding port 13 communicating with a feeding channel 30. The cooking device also includes a solid feeding chamber 70, which accommodates a solid container. The solid feeding chamber 70 is provided with a power transmission component 71, a container limiting component 72, and a hopper mounting port 73. When the solid container is connected to the power transmission component 71 via the container limiting component 72, the solid container's outlet, the hopper mounting port 73, and the feeding port 13 are sequentially connected. Furthermore, in this application, the solid feeding chamber 70 may be located within the casing of the cooking device.

[0068] As can be seen from the above description, the embodiments of this utility model achieve the following technical effects:

[0069] 1. Effectively solves the problem of poor performance of existing feeding devices due to difficulties in cleaning and poor structural stability;

[0070] 2. Simple structure and stable performance;

[0071] 3. Easy to disassemble.

[0072] Obviously, the embodiments described above are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of this utility model.

[0073] 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 exemplary embodiments according to this application. 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 features, steps, operations, devices, components, and / or combinations thereof.

[0074] It should be noted that the terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in sequences other than those illustrated or described herein.

[0075] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A blanking device characterized by, include: First mounting structure (10); The second mounting structure (20) is detachably connected to the first mounting structure (10) and the second mounting structure (20) to form a feeding channel (30). At least one of the first mounting structure (10) and the second mounting structure (20) is provided with at least one limiting structure (40). At least one of the limiting structures (40) extends toward the side of the other mounting structure and abuts against the side of the other mounting structure.

2. The blanking device of claim 1, wherein, At least one of the first mounting structure (10) and the second mounting structure (20) is an L-shaped structure.

3. The blanking device of claim 1, wherein, The first mounting structure (10) and the second mounting structure (20) are horizontal split mounting structures or vertical split mounting structures.

4. The blanking device of claim 1, wherein, The limiting structure (40) includes a limiting baffle (41) disposed on the first mounting structure (10), the limiting baffle (41) extending toward the second mounting structure (20) and abutting against the side wall of the second mounting structure (20).

5. The blanking device of claim 4, wherein, The limiting structure (40) includes a stop protrusion (42) disposed on the second mounting structure (20), the stop protrusion (42) extending toward one side of the first mounting structure (10) and abutting against one side of the first mounting structure (10).

6. The blanking device of claim 5, wherein, The stop protrusion (42) has a discharge channel (421) communicating with the discharge channel (30). The discharge channel (421) has a discharge port at one end away from the discharge channel (30), and the discharge channel (30) has an air inlet (31) at one end away from the discharge channel (421).

7. The blanking device of claim 5, wherein, The first mounting structure (10) has a first abutting surface (11), and the second mounting structure (20) has a second abutting surface (21) that abuts against the first abutting surface (11). A first step (211) and a first groove (111) are respectively provided on the first abutting surface (11) and the second abutting surface (21). The first step (211) and the first groove (111) cooperate to restrict the movement of the first mounting structure (10) and the second mounting structure (20).

8. The feeding device according to claim 7, characterized in that, The first step (211) and the first groove (111) are disposed outside the first mounting structure (10) and the second mounting structure (20); and / or The first step (211) and the first groove (111) are located near the feeding channel (30).

9. The feeding device according to claim 7, characterized in that, A fitting gap is provided between the first step (211) and the first groove (111).

10. The blanking device of claim 1, wherein, The first mounting structure (10) is provided with a concave surface (12), and the second mounting structure (20) is provided with an extended side (22) protruding from the concave surface (12). The concave surface (12) and the extended side (22) together form a hand-held part (23) on the side of the feeding device.

11. The blanking device of claim 1, wherein, The output end of the feeding channel (30) is provided with a feeding pipe (50) for guiding the feeding of seasonings. The feeding pipe (50) and the feeding channel (30) are detachably connected by threads, limiting ribs or sealing rings.

12. The blanking device of claim 1, wherein, The input end of the feeding channel (30) is equipped with a fan or a fan and a heat engine. The airflow output by the fan drives the seasonings in the feeding channel (30) to be fed into the pot.

13. The blanking device of claim 1, wherein, The first mounting structure (10) cooperates with the second mounting structure (20) and is inclined towards the pot body relative to the horizontal plane.

14. The blanking device of claim 1, wherein, The first mounting structure (10) has at least one discharge port (13) communicating with the discharge channel (30) on the side opposite to the second mounting structure (20).

15. A cooking apparatus, characterized by, The cooking device includes a feeding device according to any one of claims 1 to 14, wherein a first mounting structure (10) of the feeding device is provided with a feeding port (13) communicating with the feeding channel (30), and the cooking device further includes a solid feeding chamber (70) that accommodates a solid container, wherein a power transmission component (71), a container limiting component (72), and a hopper mounting port (73) are provided in the solid feeding chamber (70). When the solid material tank is connected to the power transmission component (71) through the material tank limiting component (72), the discharge port of the solid material tank, the hopper installation port (73) and the discharge port (13) are connected in sequence.