A food material processing device
By sharing a drive component between the stirring and cutting mechanisms in the food processing device, the problem of the inability to share power mechanisms is solved, resulting in cost reduction, space optimization, and easy storage.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHENGDU BOSS INNOVATION TECH CO LTD
- Filing Date
- 2025-08-27
- Publication Date
- 2026-07-21
Smart Images

Figure CN224522968U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of kitchen appliances technology, and in particular to a food processing device. Background Technology
[0002] With the continuous improvement of living standards, various kitchen appliances and tools have emerged in large numbers, greatly satisfying people's needs to prepare various delicacies at home. Existing kitchen appliances mainly include cutting devices for processing vegetables and meats, and mixing devices for mixing minced meat and flour. Cutting devices primarily use the reciprocating motion of blades to cut ingredients, while mixing devices primarily use the rotational motion of mixing components to stir ingredients. To optimize the user experience, both cutting and mixing devices need to be equipped with power mechanisms to achieve automatic processing of ingredients, thereby improving efficiency and optimizing the processing results.
[0003] However, the cutting tool of the cutting device moves slowly, while the stirring component of the stirring device rotates at a faster speed. The difference in their operating frequencies means that their power mechanisms cannot be shared. Setting up separate power mechanisms for the cutting device and the stirring device increases both the cost and the space occupied, making them difficult to store. Utility Model Content
[0004] The purpose of this invention is to propose a food processing device that allows the stirring mechanism and the cutting mechanism to share power, thereby reducing costs and avoiding excessive space occupation, making it easy to store.
[0005] To achieve this objective, the present invention adopts the following technical solution:
[0006] A food processing device, comprising:
[0007] A stirring mechanism includes a first body and a first input shaft, wherein a first input part is provided on the first input shaft;
[0008] A cutting mechanism includes a second body and a second input shaft, wherein a second input part is provided on the second input shaft;
[0009] The drive assembly includes a drive motor, a first output component, and a second output component. The drive motor is connected to both the first output component and the second output component. The first output component includes a first output portion that can be detachably connected to the first input portion. The second output component includes a second output portion that can be detachably connected to the second input portion. The rotational speed of the first output component is greater than that of the second output component.
[0010] As an optional embodiment of the above-mentioned food processing device, the second output component includes a second output groove, the second output part includes a second output tooth protruding from the inner wall of the second output groove, the second input part includes a second input tooth protruding from the outer periphery of the second input shaft, the second input shaft is inserted into the second output groove, and the second output tooth abuts against the side wall of the second input tooth.
[0011] As an optional embodiment of the above-mentioned food processing device, the first output component passes through the second output component and rotates coaxially with the second output component, and the first output part is located in the second output groove.
[0012] As an optional solution for the above-mentioned food processing device, the first output component includes a first output groove, the first output part includes a first output tooth protruding from the inner wall of the first output groove, the first input part includes a first input tooth protruding from the outer periphery of the first input shaft, the first input shaft is inserted into the first output groove, and the first output tooth abuts against the side wall of the first input tooth.
[0013] As an optional solution for the above-mentioned food processing device, the end of the second input shaft is provided with a clearance hole. When the second input shaft is inserted into the second output slot, the first output component is inserted into the clearance hole.
[0014] As an optional solution for the above-mentioned food processing device, the driving component further includes a first anti-rotation structure. Both the first main body and the second main body are provided with a second anti-rotation structure. The first anti-rotation structure and the second anti-rotation structure are adapted to fix the relative angle between the driving component and the first main body and fix the relative angle between the driving component and the second main body.
[0015] As an optional solution for the above-mentioned food processing device, the first anti-rotation structure includes at least two anti-rotation grooves, and the second anti-rotation structure includes at least two anti-rotation pins corresponding to the at least two anti-rotation grooves, and the anti-rotation pins are inserted into the corresponding anti-rotation grooves.
[0016] As an optional solution for the above-mentioned food processing device, the first main body is provided with a limiting groove, the first input shaft passes through the bottom surface of the limiting groove, and when the first output part is connected to the first input part, the driving component part is located in the limiting groove.
[0017] As an optional solution for the above-mentioned food processing device, the driving component includes an abutting surface and a plurality of buffer members disposed on the abutting surface, wherein the abutting surface abuts against the first main body or the second main body through the plurality of buffer members.
[0018] As an optional solution for the above-mentioned food processing device, the second main body is provided with a receiving space, and the stirring mechanism can be disposed within the receiving space.
[0019] The beneficial effects of this utility model are:
[0020] This invention provides a food processing device. In this device, the stirring mechanism and the cutting mechanism share a drive assembly. When the drive assembly is engaged with the stirring mechanism, the first output portion of the first output component is connected to the first input portion of the first input shaft, and the drive motor drives the first input shaft to rotate for food processing. When the drive assembly is engaged with the cutting mechanism, the second output portion of the second output component is connected to the second input portion of the second input shaft, and the drive motor drives the second input shaft to rotate for food processing. The rotational speed of the first output component is greater than that of the second output component to ensure that the stirring mechanism and the cutting mechanism can process different foods separately.
[0021] This food processing device can selectively drive the stirring mechanism or the cutting mechanism through a drive component, so that the stirring mechanism and the cutting mechanism can share power, reducing costs and avoiding taking up too much space, making it easy to store. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the structure of a food processing device provided in one embodiment of the present invention;
[0023] Figure 2 This is a schematic diagram of the stirring mechanism provided in one embodiment of the present invention;
[0024] Figure 3 This is a schematic diagram of the cutting mechanism and drive assembly provided in one embodiment of the present invention;
[0025] Figure 4 This is a schematic diagram of the cutting mechanism provided in one embodiment of the present invention;
[0026] Figure 5 This is a schematic diagram of the structure of a drive component provided in one embodiment of the present invention;
[0027] Figure 6 This is a schematic diagram of the structure of the second output component provided in one embodiment of the present invention;
[0028] Figure 7 This is a schematic diagram of the structure of the first output component provided in one embodiment of the present invention.
[0029] In the picture:
[0030] 1. Stirring mechanism; 11. First body; 12. First input shaft; 121. First input gear; 122. Limiting groove;
[0031] 2. Cutting mechanism; 21. Second body; 211. Accommodation space; 22. Second input shaft; 221. Second input gear; 222. Clearance hole; 23. Cover plate; 24. Tool; 25. Basket;
[0032] 3. Drive assembly; 31. First output component; 311. First output slot; 312. First output tooth; 32. Second output component; 321. Second output slot; 322. Second output tooth; 33. Housing; 331. Abutment surface; 332. Anti-rotation groove; 333. Buffer component;
[0033] 4. Prevent resale. Detailed Implementation
[0034] The embodiments of this utility model are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0035] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. The terms "first position" and "second position" refer to two different positions.
[0036] Unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "fixing" should be interpreted broadly. For example, they can refer to fixed connections or detachable connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and connections within two components or interactions between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0037] Unless otherwise expressly specified and limited, "above" or "below" a second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of a second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" of a second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0038] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.
[0039] This embodiment provides a food processing device, such as... Figure 1 and Figure 2 As shown, the food processing device includes a stirring mechanism 1, which comprises a first body 11, a first input shaft 12, and a first processing component connected to the first input shaft 12. The first processing component is disposed inside the first body 11. When the first input shaft 12 rotates, the first processing component can process the food within the first body 11. The first input shaft 12 rotates at high speed to mix the flour within the first body 11 or to mince the meat within the first body 11 into meat paste, thereby completing the processing of the food.
[0040] like Figure 1 and Figure 3 As shown, the food processing device also includes a cutting mechanism 2. The cutting mechanism 2 includes a second body 21, a second input shaft 22, and a second processing component connected to the second input shaft 22. When the second input shaft 22 rotates, the second processing component can perform cutting operations on vegetables and meat to slice or shred the vegetables and meat.
[0041] Specifically, the second processing component includes a basket 25 and a cutting tool 24. When the second input shaft 22 rotates, one of the basket 25 and the cutting tool 24 can reciprocate relative to the second body 21. In some embodiments, the basket 25 is fixedly connected to the second body 21, and the cutting tool 24 reciprocates under the drive of the second input shaft 22 to perform a cutting operation on the vegetables and meat in the basket 25; in some embodiments, the cutting tool 24 is fixedly connected to the second body 21, and the basket 25 reciprocates under the drive of the second input shaft 22 so that the cutting tool 24 can perform a cutting operation on the vegetables and meat in the basket 25.
[0042] It is worth noting that the second input shaft 22 is connected to the basket 25 or the cutter 24 via a crank-slider mechanism to convert the rotation of the second input shaft 22 into the reciprocating motion of the basket 25 or the cutter 24. The crank-slider mechanism is existing technology and will not be described in detail here.
[0043] In this embodiment, the second input shaft 22 can drive the basket 25 to reciprocate. The second main body 21 is provided with a cover plate 23, and a knife 24 is provided on the cover plate 23. Along the moving direction of the basket 25, the front and rear side walls of the basket 25 are provided with clearance grooves, and the knife 24 can enter the clearance grooves to cut the food inside the basket 25.
[0044] To optimize the user experience, both the cutting mechanism 2 and the stirring mechanism 1 require power mechanisms to automate the processing of ingredients. However, due to the significant difference in their operating frequencies—the stirring mechanism 1 requires high speed to ensure thorough mixing of the ingredients, while the cutting mechanism 2 requires low speed to prevent damage to the blades 24 and to ensure its stability—their power mechanisms cannot be shared. Providing separate power mechanisms for the cutting mechanism 2 and the stirring mechanism 1 increases both cost and space requirements, making them difficult to store.
[0045] like Figures 1-5 As shown, to solve the above problems, the food processing device provided in this embodiment includes a drive assembly 3. The drive assembly 3 includes a drive motor, a first output component 31 and a second output component 32. The drive motor is connected to both the first output component 31 and the second output component 32. The first output component 31 includes a first output part that can be detachably connected to the first input part. The second output component 32 includes a second output part that can be detachably connected to the second input part. The rotational speed of the first output component 31 is greater than the rotational speed of the second output component 32.
[0046] In this food processing device, the stirring mechanism 1 and the cutting mechanism 2 share a drive assembly 3. When the drive assembly 3 is engaged with the stirring mechanism 1, the first output part of the first output component 31 is connected to the first input part of the first input shaft 12, and the drive motor can drive the first input shaft 12 to rotate for food processing. When the drive assembly 3 is engaged with the cutting mechanism 2, the second output part of the second output component 32 is connected to the second input part of the second input shaft 22, and the drive motor can drive the second input shaft 22 to rotate for food processing. The rotational speed of the first output component 31 is greater than that of the second output component 32 to ensure that the stirring mechanism 1 and the cutting mechanism 2 can process different foods separately.
[0047] The food processing device can selectively drive the stirring mechanism 1 or the cutting mechanism 2 through the drive component 3, so that the stirring mechanism 1 and the cutting mechanism 2 can share power, reduce costs, avoid taking up too much space, and facilitate storage.
[0048] In this embodiment, the food processing device can be a cutting and slicing machine or a cooking robot. Both cutting and slicing machines and cooking robots can process specific ingredients. Cutting and slicing machines can quickly complete operations such as slicing, shredding, and dicing ingredients, and the thickness / shape is uniform, avoiding human error and ensuring the appearance of the dishes and the consistency of cooking. Cooking robots can also be set with cutting and slicing functions, which can not only realize the physical processing of ingredients, but also accurately control the heat, seasoning, and time, ensuring that the taste and cooking degree of the dishes are consistent, and the serving efficiency is high, which can alleviate peak pressure.
[0049] like Figure 5 and Figure 6 As shown, the drive component 3 is a dual-speed motor with coaxial power output. The second output component 32 includes a second output slot 321. The first output component 31 passes through the second output component 32 and rotates coaxially with the second output component 32. The first output part is located in the second output slot 321.
[0050] like Figure 2 , Figure 5 and Figure 7 As shown, the first output component 31 includes a first output groove 311, the first output part includes a first output tooth 312 protruding from the inner wall of the first output groove 311, and the first input part includes a first input tooth 121 protruding from the outer periphery of the first input shaft 12. The first input shaft 12 is inserted into the first output groove 311, and the first output tooth 312 abuts against the side wall of the first input tooth 121.
[0051] When the drive motor drives the first output component 31 to rotate, the first output tooth 312 can drive the first input shaft 12 to rotate through the first input tooth 121, thereby providing power to the stirring mechanism 1.
[0052] Furthermore, the first output section includes a plurality of spaced-apart first output teeth 312, with the first input teeth 121 located between two adjacent first output teeth 312. This structure allows the first output component 31 to quickly drive the first input shaft 12 to rotate, whether rotating forward or backward, and the starting speed is low, at which time the impact force between the first output teeth 312 and the first input teeth 121 is small, avoiding damage.
[0053] Furthermore, the first input section includes a plurality of spaced-apart first input teeth 121, each first input tooth 121 being located between two adjacent first output teeth 312. This structure ensures that when the first output member 31 rotates, its driving force is evenly distributed among the plurality of first input teeth 121, which not only improves the uniformity of the force on the first input shaft 12, but also reduces the interaction force between each first output tooth 312 and the first input tooth 121, preventing damage.
[0054] It is worth noting that the multiple first input teeth 121 are equally spaced and the multiple first output teeth 312 are equally spaced, so that the first input part and the first output part can be connected at various relative angles.
[0055] like Figures 4-6 As shown, similarly, the second output part includes a second output tooth 322 protruding from the inner wall of the second output groove 321, and the second input part includes a second input tooth 221 protruding from the outer periphery of the second input shaft 22. The second input shaft 22 is inserted into the second output groove 321, and the second output tooth 322 abuts against the side wall of the second input tooth 221.
[0056] When the drive motor drives the second output component 32 to rotate, the second output tooth 322 can drive the second input shaft 22 to rotate through the second input tooth 221, thereby providing power to the cutting mechanism 2.
[0057] Furthermore, the second output section includes a plurality of spaced-apart second output teeth 322, with the second input teeth 221 located between two adjacent second output teeth 322. This structure allows the second output component 32 to quickly drive the second input shaft 22 to rotate, whether rotating clockwise or counterclockwise, and the starting speed is low, resulting in a smaller impact force between the second output teeth 322 and the second input teeth 221, thus preventing damage.
[0058] Furthermore, the second input section includes a plurality of spaced-apart second input teeth 221, each second input tooth 221 being located between two adjacent second output teeth 322. This structure ensures that when the second output member 32 rotates, its driving force is evenly distributed among the multiple second input teeth 221, which not only improves the uniformity of the force on the second input shaft 22, but also reduces the interaction force between each second output tooth 322 and the second input tooth 221, preventing damage.
[0059] It is worth noting that the multiple second input teeth 221 are equally spaced and the multiple second output teeth 322 are equally spaced, so that the second input part and the second output part can be inserted at various relative angles.
[0060] In this embodiment, the end of the second input shaft 22 is provided with a clearance hole 222. When the second input shaft 22 is inserted into the second output groove 321, the first output component 31 is inserted into the clearance hole 222. The second clearance hole 222 can avoid the end of the first input component, thereby ensuring that the length of the first input component protruding into the second output groove 321 is increased while keeping the depth of the second output groove 321 unchanged. This reduces the need for the first input shaft 12 of the stirring mechanism 1 to protrude too much from the stirring mechanism 1, thus optimizing the structure.
[0061] like Figure 5As shown, the drive assembly 3 includes a housing 33, which includes an abutment surface 331. The abutment surface 331 is configured to abut against the first body 11 or the second body 21 to ensure the stability of the drive assembly 3. Both the first output component 31 and the second output component 32 pass through the abutment surface 331 to output power. A start button is provided at the end of the housing 33 facing away from the abutment surface 331. In actual use, the user presses the drive assembly 3 onto the first body 11 or the second body 21 and starts the drive motor by pressing the start button.
[0062] like Figure 5 As shown, since the drive assembly 3 is prone to vibration during the drive process, in order to ensure the stability of the drive assembly 3 and reduce noise, the contact surface 331 is provided with several buffer members 333. The buffer members 333 are pressed against the first body 11 or the second body 21 by the contact surface 331, which can achieve flexible contact and absorb vibration, reduce the collision between the outer shell 33 and the first body 11 or the second body 21, and reduce noise.
[0063] In this embodiment, the drive assembly 3 further includes a first anti-rotation structure. Both the first main body 11 and the second main body 21 are provided with a second anti-rotation structure. The first anti-rotation structure and the second anti-rotation structure are adapted to fix the relative angle between the drive assembly 3 and the first main body 11, and to fix the relative angle between the drive assembly 3 and the second main body 21. Since the drive motor generates torque when outputting power, the first anti-rotation structure and the second anti-rotation structure can ensure that the relative angle between the drive assembly 3 and the first main body 11 or the second main body 21 remains unchanged, thereby improving the stability of the food processing device during food processing.
[0064] like Figure 2 , Figure 4 and Figure 5 As shown, the first anti-rotation structure includes at least two anti-rotation slots 332, and the second anti-rotation structure includes at least two anti-rotation pins 4 corresponding to the at least two anti-rotation slots 332, with the anti-rotation pins 4 engaging with their corresponding anti-rotation slots 332. When both anti-rotation pins 4 are inserted into their corresponding anti-rotation slots 332, the drive assembly 3 can be locked to the first body 11 or the second body 21 at a relative angle, ensuring stability.
[0065] Furthermore, at least two anti-rotation grooves 332 are equally spaced along the circumference of the drive assembly 3. This structure allows the drive assembly 3 to be adapted to the first body 11 or the second body 21 at various relative angles, improving the flexibility of use.
[0066] In this embodiment, the abutment surface 331 of the housing 33 of the drive assembly 3 is provided with three anti-rotation grooves 332, the first main body 11 and the second main body 21 are each provided with three anti-rotation pins 4, and the abutment surface 331 is provided with three buffer members 333. It can be understood that the closer the position of the anti-rotation groove 332 is to the edge of the abutment surface 331, the better its anti-rotation effect. Similarly, the closer the position of the buffer member 333 is to the edge of the abutment surface 331, the more it can improve the stability between the drive assembly 3 and the first main body 11 or the second main body 21.
[0067] In this embodiment, along the circumference of the contact surface 331, the buffer member 333 is an arc centered at a point on the axis of the first output shaft, and the anti-rotation groove 332 is located between two adjacent buffer members 333. The buffer member 333 has a large area, which can increase the buffer area and reduce the pressure on the buffer member 333, thereby improving the buffering effect. By placing the anti-rotation groove 332 between the two buffer members 333, the anti-rotation groove 332 can be placed as close as possible to the edge of the contact surface 331 without affecting the buffer member 333.
[0068] Understandably, because the stirring mechanism 1 operates at high speeds and experiences significant vibrations during food processing, the relative stability between the drive assembly 3 and the first main body 11 is poor. For example... Figure 2 As shown, in order to improve the stability between the first body 11 and the drive component 3 when the user presses the drive component 3 on the first body 11, the first body 11 is provided with a limiting groove 122. The first input shaft 12 passes through the bottom surface of the limiting groove 122. When the first output part is connected to the first input part, the drive component 3 is partially located in the limiting groove 122.
[0069] The limiting groove 122 can abut against the outer periphery of the housing 33 of the drive component 3, thereby increasing the contact area between the drive component 3 and the first body 11. It can also limit the movement of the drive component 3 and the first body 11 in both the horizontal and vertical directions, ensuring relative stability between them. Furthermore, because part of the housing 33 of the drive component 3 enters the limiting groove 122, the first body 11 can block the gap between the contact surface 331 and the first body 11. Even if the drive component 3 tilts during startup, the user's hand cannot enter between the contact surface 331 and the first body 11, ensuring user safety.
[0070] like Figure 3 and Figure 4 As shown, the second main body 21 is provided with a accommodating space 211, and the stirring mechanism 1 can be installed in the accommodating space 211. Since the second main body 21 of the cutting mechanism 2 is relatively large, using the wasted part of the second main body 21 to set up the accommodating space 211 to accommodate the stirring mechanism 1 can improve space utilization efficiency and facilitate storage.
[0071] The above description is only a preferred embodiment of this utility model. For those skilled in the art, there will be changes in the specific implementation method and application scope based on the idea of this utility model. The content of this specification should not be construed as a limitation of this utility model.
Claims
1. A food processing device, characterized in that, include: The stirring mechanism (1) includes a first body (11) and a first input shaft (12), wherein a first input part is provided on the first input shaft (12); The cutting mechanism (2) includes a second body (21) and a second input shaft (22), and a second input part is provided on the second input shaft (22); The drive assembly (3) includes a drive motor, a first output component (31) and a second output component (32). The drive motor is connected to both the first output component (31) and the second output component (32). The first output component (31) includes a first output portion that can be detachably connected to the first input portion. The second output component (32) includes a second output portion that can be detachably connected to the second input portion. The rotational speed of the first output component (31) is greater than the rotational speed of the second output component (32).
2. The food processing apparatus according to claim 1, characterized in that, The second output component (32) includes a second output groove (321), the second output part includes a second output tooth (322) protruding from the inner wall of the second output groove (321), the second input part includes a second input tooth (221) protruding from the outer periphery of the second input shaft (22), the second input shaft (22) is inserted into the second output groove (321), and the second output tooth (322) abuts against the side wall of the second input tooth (221).
3. The food processing apparatus according to claim 2, characterized in that, The first output component (31) passes through the second output component (32) and rotates coaxially with the second output component (32). The first output part is located in the second output slot (321).
4. The food processing apparatus according to claim 3, characterized in that, The first output component (31) includes a first output groove (311), the first output part includes a first output tooth (312) protruding from the inner wall of the first output groove (311), the first input part includes a first input tooth (121) protruding from the outer periphery of the first input shaft (12), the first input shaft (12) is inserted into the first output groove (311), and the first output tooth (312) abuts against the side wall of the first input tooth (121).
5. The food processing apparatus according to claim 3, characterized in that, The end of the second input shaft (22) is provided with a clearance hole (222). When the second input shaft (22) is inserted into the second output slot (321), the first output component (31) is inserted into the clearance hole (222).
6. The food processing apparatus according to any one of claims 1 to 5, characterized in that, The drive assembly (3) further includes a first anti-rotation structure. Both the first body (11) and the second body (21) are provided with a second anti-rotation structure. The first anti-rotation structure and the second anti-rotation structure are adapted to fix the relative angle between the drive assembly (3) and the first body (11) and fix the relative angle between the drive assembly (3) and the second body (21).
7. The food processing apparatus according to claim 6, characterized in that, The first anti-rotation structure includes at least two anti-rotation grooves (332), and the second anti-rotation structure includes at least two anti-rotation pins (4) corresponding to the at least two anti-rotation grooves (332), and the anti-rotation pins (4) are inserted into the corresponding anti-rotation grooves (332).
8. The food processing apparatus according to any one of claims 1 to 5, characterized in that, The first main body (11) is provided with a limiting groove (122), the first input shaft (12) passes through the bottom surface of the limiting groove (122), and when the first output part is connected to the first input part, the drive component (3) is partially located in the limiting groove (122).
9. The food processing apparatus according to any one of claims 1 to 5, characterized in that, The drive assembly (3) includes an abutment surface (331) and a plurality of buffers (333) disposed on the abutment surface (331), the abutment surface (331) abutting against the first body (11) or the second body (21) through the plurality of buffers (333).
10. The food processing apparatus according to any one of claims 1 to 5, characterized in that, The second main body (21) is provided with a accommodating space (211), and the stirring mechanism (1) can be disposed in the accommodating space (211).