Driving assembly and food processor

By connecting the motor and reducer to the housing, the problem of large vibration of the motor and reducer in the prior art is solved, the stability and service life of the drive assembly are improved, and the driving effect is optimized.

CN222853731UActive Publication Date: 2025-05-13GUANGDONG MIDEA CONSUMER ELECTRICS MFG CO LTD
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Patent Information

Application Number
CN202323627343.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2023-12-29
Publication Date
2025-05-13
Estimated Expiration
2033-12-29

AI Technical Summary

Technical Problem

In the prior art, the vibration of the motor and reducer is large, which affects the driving effect of the driving component and shortens the service life of the driving component.

Method used

By connecting the motor and reducer to the housing, the double connection effect is achieved, the stability of the motor and reducer is improved, and the connection flexibility and installation efficiency of the motor and the housing are improved through the design of auxiliary parts.

Benefits of technology

Improves the stability and service life of the drive components, optimizes the drive effect, and facilitates maintenance and replacement.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a driving assembly and a food processer, and the driving assembly comprises a shell, a motor and a speed reducer. And the motor is connected with the shell. And the speed reducer is in driving connection with the motor and is connected with the shell.
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Description

Technical Field

[0001] The present application relates to the technical field of household appliances, and in particular to a driving assembly and a food processor. Background Art

[0002] In the related art, the motor is connected to the reducer, and the reducer is connected to the housing. When the motor and the reducer are in operation, both the motor and the reducer experience large vibrations, which affect the driving effect of the drive component and shorten the service life of the drive component. Utility Model Content

[0003] The present application aims to solve at least one of the technical problems existing in the prior art or related art.

[0004] To this end, a first aspect of the present application provides a drive assembly.

[0005] A second aspect of the present application provides a food processor.

[0006] In view of this, the first aspect of the present application provides a driving assembly, which includes: a housing, a motor and a reducer. The motor is connected to the housing. The reducer is drivingly connected to the motor, and the reducer is connected to the housing.

[0007] In this embodiment, the driving assembly includes a housing, a motor and a reducer. The motor and the reducer are located in the housing, the reducer is connected to the motor, the reducer is located below the motor, the reducer is connected to the stirring assembly, the stirring assembly is located below the reducer, the reducer transmits the power output by the motor to the stirring assembly, and matches the output speed of the motor with the speed of the stirring assembly, so that the stirring assembly can rotate at a speed suitable for the food, so that the stirring assembly can cut the food.

[0008] It is understandable that when the motor and the reducer rotate, there is torque between them, and the motor is subjected to force and vibrates. Especially when the reducer is multi-stage and multi-output, the reducer is high, the torque between the reducer and the motor is large, and the force on the motor is large.

[0009] The motor is connected to the housing, which provides structural support for the motor and improves the stability of the motor when it rotates. The reducer is connected to the housing, which provides structural support for the reducer and improves the stability of the reducer when it rotates.

[0010] In this way, the motor and the reducer are respectively connected to the housing. Compared with the single connection effect of the reducer and the housing in the related art, a double connection effect of the reducer and the motor being respectively connected to the housing is achieved, which improves the stability of the motor and the reducer during operation, thereby improving the stability of the drive assembly, optimizing the driving effect of the drive assembly, and extending the service life of the drive assembly.

[0011] In addition, the driving assembly in the above embodiment provided by the present application may also have the following additional technical features:

[0012] In some embodiments provided in the present application, optionally, the driving assembly provided in the present application further includes an auxiliary component, a first end of the auxiliary component is connected to the motor, and a second end of the auxiliary component is connected to the housing.

[0013] In this embodiment, the drive assembly also includes an auxiliary component, a first end of the auxiliary component is connected to the motor, and a second end of the auxiliary component is connected to the housing, that is, the two ends of the auxiliary component are respectively connected to the motor and the housing, so that the motor is connected to the housing through the auxiliary component, which improves the flexibility of the connection between the motor and the housing, improves the installation efficiency of the motor and the housing, and facilitates the installation of the motor and the subsequent maintenance and replacement during use.

[0014] In some embodiments provided in the present application, optionally, the auxiliary part includes: a first connection part, a second connection part and a third connection part. The motor is provided with a first mounting part, and the first mounting part is connected to the first connection part. The housing is provided with a second mounting part, and the second mounting part is connected to the second connection part. The first end of the third connection part is connected to the first connection part, and the second end of the third connection part is connected to the second connection part.

[0015] In this embodiment, the auxiliary part includes a first connection part, a second connection part and a third connection part. The motor is provided with a first mounting part, and the first mounting part is connected to the first connection part. Exemplarily, the first mounting part and the first connection part can be connected by plugging, buckling or bolting.

[0016] The housing is provided with a second mounting portion, and the second mounting portion is connected to the second connecting portion. For example, the first mounting portion and the first connecting portion can be connected by plugging, buckling or bolting.

[0017] The first end of the third connection part is connected to the first connection part, and the second end of the third connection part is connected to the second connection part, that is, the two ends of the third connection part are connected to the first connection part and the second connection part respectively. Exemplarily, the first connection part, the second connection part and the third connection part can be an integrally formed structure to improve the structural strength of the auxiliary part.

[0018] In this way, the first connection part is connected to the second connection part through the third connection part, which reduces the enclosure space of the motor by the auxiliary part, expands the heat dissipation space of the motor, shortens the height of the third connection part, reduces the material used for the auxiliary part, and saves the material cost of the auxiliary part. In addition, the connection method is simple and stable, which improves the flexibility of the installation of the auxiliary part, thereby improving the flexibility of the connection between the motor and the housing, improving the installation efficiency of the motor and the housing, and facilitating the installation of the motor and the subsequent maintenance and replacement in use.

[0019] In some embodiments provided in the present application, optionally, the number of the first connection part and the first mounting part are both multiple, the multiple first mounting parts are distributed along the circumference of the motor, and the multiple first connection parts correspond to the multiple first mounting parts one by one. And / or the number of the second connection part and the second mounting part are both multiple, the multiple second mounting parts are distributed along the circumference of the motor, and the multiple second connection parts correspond to the multiple second mounting parts one by one.

[0020] In this embodiment, there are multiple first connecting parts and multiple first mounting parts, and the multiple first mounting parts are distributed along the circumference of the motor. The multiple first connecting parts and the multiple first mounting parts correspond one to one, so that the motor and the auxiliary parts are connected through the multiple first connecting parts and the first mounting parts, which increases the connection positions between the motor and the auxiliary parts and improves the connection effect between the auxiliary parts and the motor.

[0021] There are multiple second connecting parts and second mounting parts, and the multiple second mounting parts are distributed along the circumference of the motor. The multiple second connecting parts and the multiple second mounting parts correspond one to one, so that the shell and the auxiliary parts are connected through the multiple second connecting parts and the second mounting parts, which increases the connection positions of the shell and the auxiliary parts and improves the connection effect of the auxiliary parts and the shell.

[0022] In some embodiments provided in the present application, optionally, the third connecting portion includes an annular connecting portion, a portion of the reducer is located in the annular connecting portion, and the annular connecting portion is used to limit the reducer.

[0023] In this embodiment, the third connecting part includes an annular connecting part, a part of the reducer is located in the annular connecting part, so that the annular connecting part is sleeved on the reducer, and the annular connecting part is used to limit the reducer to prevent the reducer from deviating from the working position due to vibration, thereby improving the stability of the reducer.

[0024] In some embodiments provided in the present application, optionally, the minimum distance between the annular connecting portion and the reducer is W1, the minimum distance between the second connecting portion and the reducer is W2, and W1 and W2 satisfy that W2>W1.

[0025] In this embodiment, the minimum distance between the annular connection part and the reducer is W1, that is, the minimum distance between the inner wall of the annular connection part and the reducer is W1, and the minimum distance between the second connection part and the reducer is W2, W2>W1, that is, the annular connection part is close to the reducer relative to the second connection part, and the second connection part extends along the radial direction of the reducer in the direction away from the axis of the annular connection part. The annular connection part is located on the side of the second connection part close to the reducer to reduce the radius of the annular connection part, reduce the material used in the annular connection part, save the material cost of the auxiliary parts, and reduce the weight of the auxiliary parts.

[0026] In some embodiments provided in the present application, optionally, a plurality of reinforcement portions are provided on the inner ring of the annular connecting portion, and the plurality of reinforcement portions are distributed along the circumference of the annular connecting portion.

[0027] In this embodiment, a plurality of reinforcement portions are provided on the inner ring of the annular connection portion, the reinforcement portions extend in a direction close to the annular axis, a plurality of protrusions are formed on the inner ring of the annular connection portion, the plurality of reinforcement portions are distributed along the circumference of the annular connection portion, and the plurality of reinforcement portions are evenly distributed around the circumference of the annular connection portion, so that the reinforcement portions provide structural support for the annular connection portion along the circumference, thereby improving the structural strength and connection strength of the annular connection portion.

[0028] In some embodiments provided in the present application, optionally, the first mounting portion includes: a first mounting plate, a first mounting member, and a first shock-absorbing pad. The first mounting plate is disposed on the motor. The first mounting member is provided with a first slot, the first mounting plate is plugged into the first slot, and the first mounting member is used to connect to the first connecting portion. The first shock-absorbing pad is sleeved on the first mounting member.

[0029] In this embodiment, the first mounting portion includes a first mounting plate, a first mounting member and a first shock-absorbing pad. The first mounting plate is provided on the motor, connected to the outer wall of the motor, and extends in a direction away from the outer wall of the motor. The first mounting member is provided with a first slot, and the first mounting plate is inserted into the first slot. The first mounting member is used to connect with the first connecting portion, so that the motor is connected to the first connecting portion through the first mounting plate and the first mounting member.

[0030] The first shock-absorbing pad is sleeved on the first mounting member, and the first shock-absorbing pad is located between the first mounting plate and the first mounting member to absorb the vibration of the motor on the first mounting member through the first mounting plate, reduce the vibration of the first mounting member, and improve the stability of the first mounting portion.

[0031] In some embodiments provided in the present application, optionally, a first mounting groove is provided on the first mounting member, and a portion of the first connecting portion is inserted into the first mounting groove.

[0032] In this embodiment, a first mounting groove is provided on the first mounting member, and a portion of the first connecting part is inserted into the first mounting groove, so that the first connecting part is connected to the first mounting member through the first mounting groove. The connection method is simple and firm, which facilitates the installation of the first mounting part and the first connecting part, and improves the assembly efficiency of the first mounting part.

[0033] In some embodiments provided in the present application, optionally, the motor includes a motor body and an output shaft, the output shaft extends out of a first side of the motor body, and a second side of the motor body faces away from the reducer. The minimum distance between the first side of the motor body and the first mounting member is L1, and the minimum distance between the second side of the motor body and the first mounting member is L2, and L2>L1.

[0034] In this embodiment, the motor includes a motor body and an output shaft, the output shaft is connected to the reducer, the output shaft is provided on the first side of the motor body, the output shaft extends out of the first side of the motor body, and the second side of the motor body is away from the reducer, that is, the first side of the motor body is located above the second side.

[0035] The minimum distance between the first side of the motor body and the first mounting member is L1, and the minimum distance between the second side of the motor body and the first mounting member is L2, L2>L1, that is, the first mounting member is closer to the second side of the motor than the first side.

[0036] In some embodiments provided in the present application, optionally, the first side of the reducer faces the motor, and the second side of the reducer faces away from the motor. Along the axial direction of the motor, the second connecting portion is located between the first side of the reducer and the second side of the reducer.

[0037] In this embodiment, the first side of the reducer faces the motor, and the second side of the reducer faces away from the motor, that is, the first side of the reducer is located above the second side. Along the axial direction of the motor, the second connecting portion is located between the first side of the reducer and the second side of the reducer, so that the second connecting portion is located between the two ends of the reducer, which reduces the space occupied by the auxiliary parts and optimizes the spatial distribution of the auxiliary parts and the reducer in the housing.

[0038] In some embodiments provided in the present application, optionally, the driving assembly further comprises: a second mounting plate, a second mounting member, and a second shock absorbing pad. The second mounting plate is arranged on the reducer. The second mounting member is provided with a second slot, the second mounting plate is plugged into the second slot, and the second mounting member is used to connect with the housing. The second shock absorbing pad is sleeved on the second mounting member.

[0039] In this embodiment, the driving assembly further includes: a second mounting plate, a second mounting member, and a second shock-absorbing pad. The second mounting plate is provided on the reducer, the second mounting plate is connected to the outer wall of the reducer, and the second mounting plate extends in a direction away from the outer wall of the reducer. The second mounting member is provided with a second slot, the second mounting plate is plugged into the second slot, and the second mounting member is used to connect with the housing, so that the reducer is connected to the housing through the second mounting plate and the second mounting member.

[0040] The second shock-absorbing pad is sleeved on the second mounting member, and the second shock-absorbing pad is located between the second mounting plate and the second mounting member to absorb the vibration of the reducer on the second mounting member through the second mounting plate, reduce the vibration of the second mounting member, and improve the stability of the shell.

[0041] In some embodiments provided in the present application, optionally, a second mounting member is provided with a second mounting groove, and a positioning member is provided on the housing, and the positioning member is inserted into the second mounting groove.

[0042] In this embodiment, a second mounting groove is provided on the second mounting member, and a positioning member is provided on the shell. The positioning member is inserted into the second mounting groove, so that the shell is connected to the second mounting member through the positioning member and the second mounting groove. The connection method is simple and firm, which facilitates the installation of the second mounting member and the shell, and improves the assembly efficiency of the second mounting part.

[0043] In some embodiments provided in the present application, optionally, a positioning ring is provided on one of the housing and the reducer, and a positioning column is provided on the other, and the positioning column is inserted into the positioning ring.

[0044] In this embodiment, a positioning ring is provided on one of the housing and the reducer, and a positioning column is provided on the other. The positioning column is inserted into the positioning ring, which makes it convenient for the operator to position the reducer during installation, improves the installation efficiency of the reducer, and limits the position of the reducer on the housing, reduces the vibration of the reducer, and improves the stability of the reducer.

[0045] In some embodiments provided in the present application, optionally, the shell includes a first shell and a second shell, the second shell is detachably connected to the first shell, an installation cavity is formed between the first shell and the second shell, and the motor and the reducer are located in the installation cavity.

[0046] In this embodiment, the housing includes a first housing and a second housing, and the second housing is detachably connected to the first housing, which improves the installation efficiency of the housing and facilitates the installation of the housing and the subsequent maintenance and replacement in use. Exemplarily, the first housing and the second housing can be connected by plugging, snapping or bolting.

[0047] An installation cavity is formed between the first shell and the second shell, and the motor and the reducer are located in the installation cavity, so that the shell provides structural protection for the motor and the reducer to prevent the motor and the reducer from being disturbed by the external environment and affecting the working state.

[0048] In some embodiments provided in the present application, optionally, the reducer has a first output part and a second output part, the second output part is an annular output part, the first output part is located inside the annular output part, and the output rotation speeds of the first output part and the second output part are different.

[0049] In this embodiment, the reducer has a first output part and a second output part, the second output part is an annular output part, the first output part is located inside the annular output part, and a gap is provided between the first output part and the second output part to prevent the first output part and the second output part from affecting each other's rotation. The output speeds of the first output part and the second output part are different. The first output part and the second output part are respectively connected to the stirring assembly.

[0050] In this way, the first output part and the second output part have different rotation speeds respectively, so that the stirring component has different rotation speeds. When cutting different ingredients, the user can select the appropriate second output part, and the stirring components with different rotation speeds can meet the cutting speed requirements for different ingredients. The speed range of the reducer is expanded, so that the speed of the ingredients and the corresponding stirring components are more matched, the use range of the product is expanded, the processing effect of the stirring component on the ingredients is optimized, the taste of the processed ingredients is improved, and the user experience is improved.

[0051] In some embodiments provided in the present application, optionally, the rotational speed of the first output part is N1, the rotational speed of the second output part is N2, and N1 and N2 satisfy that N1≥8N2.

[0052] In this embodiment, the rotational speed of the first output part is N1, and the rotational speed of the second output part is N2. N1 and N2 satisfy N1≥8N2, that is, the rotational speed of the first output part is high, and the rotational speed of the second output part is low, and the rotational speed of the first output part is more than 8 times the rotational speed of the second output part, thereby ensuring the rotational speed difference between the first output part and the second output part, so that the stirring component has a sufficiently high rotational speed when processing meat ingredients, and has a sufficiently low rotational speed when processing vegetables or noodles ingredients, thereby enabling the stirring component to meet the rotational speed requirements of different ingredients.

[0053] The second embodiment of the present application provides a food processor, which includes a container, a stirring component, and a driving component provided by any one of the first embodiments of the present application. The stirring component is located in the container, and the stirring component is connected to a reducer.

[0054] In this embodiment, the food processor includes a container, a stirring assembly and a driving assembly. The container is used to contain the food to be processed, the stirring assembly is located in the container, the stirring assembly is connected to a reducer, and the reducer drives the stirring assembly to rotate so that the stirring assembly stirs the food.

[0055] It should be noted that, since the food processor includes the driving component provided by any one of the above embodiments of the present application, it has all the beneficial technical effects of the above driving components, which will not be described here to avoid repetition.

[0056] Additional aspects and advantages of the present application will be given in part in the description below, and in part will become apparent from the description below, or will be learned through the practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0057] The above and / or additional aspects and advantages of the present application will become apparent and easily understood from the description of the embodiments in conjunction with the following drawings, in which:

[0058] Figure 1One of the structural schematic diagrams of the food processor provided in the embodiment of the present application is shown;

[0059] Figure 2 The second structural schematic diagram of the food processor provided in the embodiment of the present application is shown;

[0060] Figure 3 The third structural schematic diagram of the food processor provided in the embodiment of the present application is shown;

[0061] Figure 4 A fourth structural schematic diagram of a food processor provided in an embodiment of the present application is shown;

[0062] Figure 5 A schematic diagram of the structure of a drive assembly provided in an embodiment of the present application is shown;

[0063] Figure 6 A schematic diagram of the structure of a reducer provided in an embodiment of the present application is shown;

[0064] Figure 7 The fifth structural schematic diagram of the food processor provided in the embodiment of the present application is shown;

[0065] Figure 8 The sixth structural schematic diagram of the food processor provided in the embodiment of the present application is shown.

[0066] in, Figures 1 to 8 The corresponding relationship between the reference numerals and component names in the figure is:

[0067] 10 driving assembly, 100 housing, 110 second mounting portion, 120 first housing, 130 second housing, 140 mounting cavity, 150 positioning member, 200 motor, 210 first mounting portion, 211 first mounting plate, 212 first mounting member, 213 first mounting groove, 214 first shock-absorbing pad, 215 first slot, 220 motor body, 230 output shaft, 300 reducer, 310 first output portion, 320 second output portion, 330 annular output portion, 340 connecting member, 350 transmission member, 351 first Planetary gear set, 352 first bracket, 353 first transmission part, 361 second planetary gear set, 362 second bracket, 363 second transmission part, 400 auxiliary part, 410 first connecting part, 420 second connecting part, 430 third connecting part, 440 annular connecting part, 450 reinforcement part, 510 second mounting plate, 520 second mounting part, 530 second mounting groove, 540 second shock-absorbing pad, 550 second slot, 600 positioning column, 700 positioning ring, 20 food processor, 800 container, 900 stirring assembly. DETAILED DESCRIPTION

[0068] In order to more clearly understand the above-mentioned purposes, features and advantages of the present application, the present application is further described in detail below in conjunction with the accompanying drawings and specific implementation methods. It should be noted that the embodiments of the present application and the features in the embodiments can be combined with each other without conflict.

[0069] In the following description, many specific details are set forth to facilitate a full understanding of the present application. However, the present application may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present application is not limited to the specific embodiments disclosed below.

[0070] Refer to the following Figures 1 to 8 The drive assembly 10 and the food processor 20 according to some embodiments of the present application are described.

[0071] The first aspect of the present application provides a driving assembly 10, such as Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, the driving assembly 10 includes: a housing 100, a motor 200 and a reducer 300. The motor 200 is connected to the housing 100. The reducer 300 is drivingly connected to the motor 200, and the reducer 300 is connected to the housing 100.

[0072] In this embodiment, the driving assembly 10 includes a housing 100, a motor 200 and a reducer 300. The motor 200 and the reducer 300 are located in the housing 100, the reducer 300 is drivingly connected to the motor 200, the reducer 300 is located below the motor 200, the reducer 300 is connected to the stirring assembly 900, and the stirring assembly 900 is located below the reducer 300. The reducer 300 transmits the power output by the motor 200 to the stirring assembly 900, and matches the output speed of the motor 200 with the speed of the stirring assembly 900, so that the stirring assembly 900 can rotate at a speed suitable for the food, so that the stirring assembly 900 can cut the food.

[0073] It is understood that when the motor 200 and the reducer 300 rotate, there is torque between the two, and the motor 200 is subjected to a force and vibrates. In particular, when the reducer 300 is multi-stage and multi-output, the reducer 300 is high, and the torque between the reducer 300 and the motor 200 is large, so that the motor 200 is subjected to a large force.

[0074] The motor 200 is connected to the housing 100, which provides structural support for the motor 200 and improves the stability of the motor 200 during rotation. The reducer 300 is connected to the housing 100, which provides structural support for the reducer 300 and improves the stability of the reducer 300 during rotation.

[0075] In this way, the motor 200 and the reducer 300 are respectively connected to the housing 100. Compared with the single connection effect of the reducer and the housing in the related art, a double connection effect of the reducer 300 and the motor 200 being respectively connected to the housing 100 is achieved, thereby improving the stability of the motor 200 and the reducer 300 during operation, thereby improving the stability of the drive component 10, optimizing the driving effect of the drive component 10, and extending the service life of the drive component 10.

[0076] In some embodiments provided in this application, Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, optionally, the driving assembly 10 provided in the present application further includes an auxiliary component 400 , a first end of the auxiliary component 400 is connected to the motor 200 , and a second end of the auxiliary component 400 is connected to the housing 100 .

[0077] In this embodiment, the drive assembly 10 also includes an auxiliary component 400, a first end of the auxiliary component 400 is connected to the motor 200, and a second end of the auxiliary component 400 is connected to the housing 100, that is, the two ends of the auxiliary component 400 are respectively connected to the motor 200 and the housing 100, so that the motor 200 is connected to the housing 100 through the auxiliary component 400, thereby improving the flexibility of the connection between the motor 200 and the housing 100, improving the installation efficiency of the motor 200 and the housing 100, and facilitating the installation of the motor 200 and the subsequent maintenance and replacement in use.

[0078] In some embodiments provided in this application, Figure 2 and Figure 3 As shown, optionally, the auxiliary component 400 includes: a first connection portion 410, a second connection portion 420 and a third connection portion 430. The motor 200 is provided with a first mounting portion 210, and the first mounting portion 210 is connected to the first connection portion 410. The housing 100 is provided with a second mounting portion 110, and the second mounting portion 110 is connected to the second connection portion 420. The first end of the third connection portion 430 is connected to the first connection portion 410, and the second end of the third connection portion 430 is connected to the second connection portion 420.

[0079] In this embodiment, the auxiliary component 400 includes a first connection portion 410, a second connection portion 420 and a third connection portion 430. The motor 200 is provided with a first mounting portion 210, and the first mounting portion 210 is connected to the first connection portion 410. Exemplarily, the first mounting portion 210 and the first connection portion 410 can be connected by plugging, buckling or bolting.

[0080] The housing 100 is provided with a second mounting portion 110, and the second mounting portion 110 is connected to the second connecting portion 420. For example, the first mounting portion 210 and the first connecting portion 410 can be connected by plugging, buckling or bolting.

[0081] The first end of the third connection part 430 is connected to the first connection part 410, and the second end of the third connection part 430 is connected to the second connection part 420, that is, the two ends of the third connection part 430 are respectively connected to the first connection part 410 and the second connection part 420. Exemplarily, the first connection part 410, the second connection part 420 and the third connection part 430 can be an integrally formed structure to improve the structural strength of the auxiliary component 400.

[0082] In this way, the first connection part 410 is connected to the second connection part 420 through the third connection part 430, which reduces the enclosed space of the auxiliary part 400 for the motor 200, expands the heat dissipation space of the motor 200, shortens the height of the third connection part 430, reduces the material used for the auxiliary part 400, and saves the material cost of the auxiliary part 400. In addition, the connection method is simple and stable, which improves the flexibility of the installation of the auxiliary part 400, thereby improving the flexibility of the connection between the motor 200 and the housing 100, improving the installation efficiency of the motor 200 and the housing 100, and facilitating the installation of the motor 200 and the subsequent maintenance and replacement in use.

[0083] In some embodiments provided in this application, Figure 2 As shown, optionally, the number of the first connection part 410 and the first mounting part 210 are both multiple, the multiple first mounting parts 210 are distributed along the circumference of the motor 200, and the multiple first connection parts 410 correspond to the multiple first mounting parts 210. And / or the number of the second connection part 420 and the second mounting part 110 are both multiple, the multiple second mounting parts 110 are distributed along the circumference of the motor 200, and the multiple second connection parts 420 correspond to the multiple second mounting parts 110.

[0084] In this embodiment, the number of the first connecting parts 410 and the first mounting parts 210 are both multiple, and the multiple first mounting parts 210 are distributed along the circumference of the motor 200. The multiple first connecting parts 410 and the multiple first mounting parts 210 correspond one to one, so that the motor 200 and the auxiliary part 400 are connected through the multiple first connecting parts 410 and the first mounting parts 210, which increases the connection positions between the motor 200 and the auxiliary part 400 and improves the connection effect between the auxiliary part 400 and the motor 200.

[0085] Exemplarily, the plurality of first mounting portions 210 are evenly distributed in the circumferential direction of the motor 200 , so that the connection positions between the motor 200 and the auxiliary component 400 are evenly distributed, thereby improving the connection effect between the auxiliary component 400 and the motor 200 .

[0086] There are multiple second connecting parts 420 and multiple second mounting parts 110, and the multiple second mounting parts 110 are distributed along the circumference of the motor 200. The multiple second connecting parts 420 and the multiple second mounting parts 110 correspond one to one, so that the shell 100 and the auxiliary part 400 are connected through the multiple second connecting parts 420 and the second mounting parts 110, which increases the connection positions between the shell 100 and the auxiliary part 400 and improves the connection effect between the auxiliary part 400 and the shell 100.

[0087] Exemplarily, the plurality of second mounting portions 110 are evenly distributed in the circumference of the housing 100 , so that the connection positions between the housing 100 and the auxiliary component 400 are evenly distributed, thereby improving the connection effect between the auxiliary component 400 and the housing 100 .

[0088] In some embodiments provided in this application, Figure 2 As shown, optionally, the third connection portion 430 includes an annular connection portion 440 , a portion of the reducer 300 is located in the annular connection portion 440 , and the annular connection portion 440 is used to limit the reducer 300 .

[0089] In this embodiment, the third connecting portion 430 includes an annular connecting portion 440, and a portion of the reducer 300 is located in the annular connecting portion 440, so that the annular connecting portion 440 is sleeved on the reducer 300. The annular connecting portion 440 is used to limit the reducer 300 to prevent the reducer 300 from deviating from the working position due to vibration, thereby improving the stability of the reducer 300.

[0090] In some embodiments provided in this application, Figure 3 As shown, optionally, the minimum distance between the annular connection portion 440 and the reducer 300 is W1, and the minimum distance between the second connection portion 420 and the reducer 300 is W2, and W1 and W2 satisfy that W2>W1.

[0091] In this embodiment, the minimum spacing between the annular connection part 440 and the reducer 300 is W1, that is, the minimum distance between the inner wall of the annular connection part 440 and the reducer 300 is W1, and the minimum spacing between the second connection part 420 and the reducer 300 is W2, W2>W1, that is, the annular connection part 440 is close to the reducer 300 relative to the second connection part 420, and the second connection part 420 extends along the radial direction of the reducer 300 in the direction away from the axis of the annular connection part 440, and the annular connection part 440 is located on the side of the second connection part 420 close to the reducer 300, so as to reduce the radius of the annular connection part 440, reduce the material used in the annular connection part 440, save the material cost of the auxiliary part 400, and reduce the weight of the auxiliary part 400.

[0092] Exemplarily, along the radial direction of the reducer 300, in the direction close to the shell 100, the outer wall of the second connecting part 420 gradually shrinks, so that the cross-section of the second connecting part 420 in the horizontal plane is similar to a triangle, so that the second connecting part 420 can reduce the material used in the second connecting part 420 while ensuring the connection effect with the third connecting part 430, thereby reducing the weight of the second connecting part 420.

[0093] In some embodiments provided in this application, Figure 2 As shown, optionally, a plurality of reinforcement portions 450 are provided on the inner circle of the annular connecting portion 440 , and the plurality of reinforcement portions 450 are distributed along the circumference of the annular connecting portion 440 .

[0094] In this embodiment, a plurality of reinforcing portions 450 are provided on the inner ring of the annular connecting portion 440, and the reinforcing portions 450 extend in a direction close to the annular axis, and a plurality of protrusions are formed on the inner ring of the annular connecting portion 440. The plurality of reinforcing portions 450 are distributed along the circumference of the annular connecting portion 440, and the plurality of reinforcing portions 450 are evenly distributed around the circumference of the annular connecting portion 440, so that the reinforcing portions 450 provide structural support for the annular connecting portion 440 along the circumferential direction, thereby improving the structural strength and connection strength of the annular connecting portion 440.

[0095] In some embodiments provided in this application, Figure 3 and Figure 7 As shown, optionally, the first mounting portion 210 includes: a first mounting plate 211, a first mounting member 212 and a first shock absorbing pad 214. The first mounting plate 211 is disposed on the motor 200. The first mounting member 212 is provided with a first slot 215, and the first mounting plate 211 is plugged into the first slot 215. The first mounting member 212 is used to connect with the first connecting portion 410. The first shock absorbing pad 214 is sleeved on the first mounting member 212.

[0096] In this embodiment, the first mounting portion 210 includes a first mounting plate 211, a first mounting member 212 and a first shock-absorbing pad 214. The first mounting plate 211 is provided on the motor 200, the first mounting plate 211 is connected to the outer wall of the motor 200, and the first mounting plate 211 extends in a direction away from the outer wall of the motor 200. The first mounting member 212 is provided with a first slot 215, and the first mounting plate 211 is inserted into the first slot 215. The first mounting member 212 is used to connect with the first connecting portion 410, so that the motor 200 is connected to the first connecting portion 410 through the first mounting plate 211 and the first mounting member 212.

[0097] The first shock-absorbing pad 214 is sleeved on the first mounting member 212, and the first shock-absorbing pad 214 is located between the first mounting plate 211 and the first mounting member 212 to absorb the vibration generated by the motor 200 on the first mounting member 212 through the first mounting plate 211, reduce the vibration of the first mounting member 212, and improve the stability of the first mounting portion 210.

[0098] In some embodiments provided in this application, Figure 7 As shown, optionally, a first mounting groove 213 is provided on the first mounting member 212 , and a portion of the first connecting portion 410 is inserted into the first mounting groove 213 .

[0099] In this embodiment, a first mounting groove 213 is provided on the first mounting member 212, and a portion of the first connecting portion 410 is inserted into the first mounting groove 213, so that the first connecting portion 410 is connected to the first mounting member 212 through the first mounting groove 213. The connection method is simple and firm, which facilitates the installation of the first mounting portion 210 and the first connecting portion 410, thereby improving the assembly efficiency of the first mounting portion 210.

[0100] Specifically, the first shock-absorbing pad 214 is sleeved in the first installation groove 213 to reduce the vibration of the first installation groove 213 on the first connecting portion 410 .

[0101] In some embodiments provided in this application, Figure 3 As shown, optionally, the motor 200 includes a motor body 220 and an output shaft 230, the output shaft 230 extends out of a first side of the motor body 220, and the second side of the motor body 220 is away from the reducer 300. The minimum distance between the first side of the motor body 220 and the first mounting member 212 is L1, and the minimum distance between the second side of the motor body 220 and the first mounting member 212 is L2, and L2>L1.

[0102] In this embodiment, the motor 200 includes a motor body 220 and an output shaft 230, the output shaft 230 is connected to the reducer 300, the output shaft 230 is provided on the first side of the motor body 220, the output shaft 230 extends out of the first side of the motor body 220, and the second side of the motor body 220 is away from the reducer 300, that is, the first side of the motor body 220 is located above the second side.

[0103] The minimum distance between the first side of the motor body 220 and the first mounting member 212 is L1, and the minimum distance between the second side of the motor body 220 and the first mounting member 212 is L2, L2>L1, that is, the first mounting member 212 is closer to the second side of the motor 200 relative to the first side.

[0104] It should be noted that a winding is provided inside the motor body 220 near the first side, and the winding drives the output shaft 230 to rotate through electromagnetic reaction. Since the first mounting member 212 is usually made of a strong metal material, the first mounting member 212 is set away from the first book so that the first mounting member 212 avoids the winding position to prevent the first mounting member 212 from interfering with the working state of the winding.

[0105] In some embodiments provided in this application, Figure 3 and Figure 4 As shown, optionally, the first side of the reducer 300 faces the motor 200, and the second side of the reducer 300 faces away from the motor 200. Along the axial direction of the motor 200, the second connecting portion 420 is located between the first side of the reducer 300 and the second side of the reducer 300.

[0106] In this embodiment, the first side of the reducer 300 faces the motor 200, and the second side of the reducer 300 faces away from the motor 200, that is, the first side of the reducer 300 is located above the second side. Along the axial direction of the motor 200, the second connecting portion 420 is located between the first side of the reducer 300 and the second side of the reducer 300, so that the second connecting portion 420 is located between the two ends of the reducer 300, which reduces the occupied space of the auxiliary component 400 and optimizes the spatial distribution of the auxiliary component 400 and the reducer 300 in the housing 100.

[0107] In some embodiments provided in this application, Figure 5 and Figure 8 As shown, optionally, the driving assembly 10 further includes: a second mounting plate 510, a second mounting member 520 and a second shock absorbing pad 540. The second mounting plate 510 is disposed on the reducer 300. The second mounting member 520 is provided with a second slot 550, and the second mounting plate 510 is plugged into the second slot 550. The second mounting member 520 is used to connect with the housing 100. The second shock absorbing pad 540 is sleeved on the second mounting member 520.

[0108] In this embodiment, the driving assembly 10 further includes: a second mounting plate 510, a second mounting member 520 and a second shock-absorbing pad 540. The second mounting plate 510 is disposed on the reducer 300, the second mounting plate 510 is connected to the outer wall of the reducer 300, and the second mounting plate 510 extends in a direction away from the outer wall of the reducer 300. The second mounting member 520 is provided with a second slot 550, the second mounting plate 510 is plugged into the second slot 550, and the second mounting member 520 is used to connect with the housing 100, so that the reducer 300 is connected to the housing 100 through the second mounting plate 510 and the second mounting member 520.

[0109] The second shock-absorbing pad 540 is sleeved on the second mounting member 520, and the second shock-absorbing pad 540 is located between the second mounting plate 510 and the second mounting member 520 to absorb the vibration generated by the reducer 300 to the second mounting member 520 through the second mounting plate 510, reduce the vibration of the second mounting member 520, and improve the stability of the shell 100.

[0110] Exemplarily, the number of the first mounting plate 211, the second mounting member 520 and the second shock-absorbing pad 540 can be multiple, and the multiple first mounting plates 211 are distributed along the circumference of the outer wall of the reducer 300, and the multiple first mounting plates 211, the second mounting member 520 and the second shock-absorbing pad 540 correspond one to one.

[0111] In some embodiments provided in this application, Figure 8 As shown, optionally, a second mounting groove 530 is provided on the second mounting member 520 . A positioning member 150 is provided on the housing 100 , and the positioning member 150 is inserted into the second mounting groove 530 .

[0112] In this embodiment, a second mounting groove 530 is provided on the second mounting member 520, and a positioning member 150 is provided on the shell 100. The positioning member 150 is inserted into the second mounting groove 530, so that the shell 100 is connected to the second mounting member 520 through the positioning member 150 and the second mounting groove 530. The connection method is simple and firm, which facilitates the installation of the second mounting member 520 and the shell 100, and improves the assembly efficiency of the second mounting part 110.

[0113] Specifically, the second shock-absorbing pad 540 may also be sleeved in the second mounting groove 530 to reduce the vibration of the second mounting member 520 on the positioning member 150 .

[0114] In some embodiments provided in this application, Figure 5 As shown, optionally, a positioning ring 700 is provided on one of the housing 100 and the reducer 300 , and a positioning column 600 is provided on the other, and the positioning column 600 is inserted into the positioning ring 700 .

[0115] In this embodiment, a positioning ring 700 is provided on one of the housing 100 and the reducer 300, and a positioning column 600 is provided on the other. The positioning column 600 is inserted into the positioning ring 700, which makes it convenient for the operator to position the reducer 300 during installation, improves the installation efficiency of the reducer 300, and limits the position of the reducer 300 on the housing 100, reduces the vibration of the reducer 300, and improves the stability of the reducer 300.

[0116] In some embodiments provided in this application, Figure 5As shown, optionally, the housing 100 includes a first housing 120 and a second housing 130 , the second housing 130 is detachably connected to the first housing 120 , an installation cavity 140 is formed between the first housing 120 and the second housing 130 , and the motor 200 and the reducer 300 are located in the installation cavity 140 .

[0117] In this embodiment, the housing 100 includes a first housing 120 and a second housing 130, and the second housing 130 is detachably connected to the first housing 120, which improves the installation efficiency of the housing 100 and facilitates the installation and subsequent maintenance and replacement of the housing 100. Exemplarily, the first housing 120 and the second housing 130 can be connected by plugging, snapping or bolting.

[0118] An installation cavity 140 is formed between the first shell 120 and the second shell 130, and the motor 200 and the reducer 300 are located in the installation cavity 140, so that the shell 100 provides structural protection for the motor 200 and the reducer 300 to prevent the motor 200 and the reducer 300 from being disturbed by the external environment and affecting the working state.

[0119] In some embodiments provided in this application, Figure 6 As shown, optionally, the reducer 300 has a first output part 310 and a second output part 320, the second output part 320 is an annular output part 330, the first output part 310 is located inside the annular output part 330, and the output rotation speeds of the first output part 310 and the second output part 320 are different.

[0120] In this embodiment, the reducer 300 has a first output part 310 and a second output part 320, the second output part 320 is an annular output part 330, the first output part 310 is located in the annular output part 330, and a gap is provided between the first output part 310 and the second output part 320 to prevent the first output part 310 and the second output part 320 from affecting each other's rotation. The output speeds of the first output part 310 and the second output part 320 are different. The first output part 310 and the second output part 320 are respectively connected to the stirring assembly 900.

[0121] It should be noted that, when the food material is meat, the stirring component 900 needs to have a high rotation speed to cut the meat block. After multiple cuts, the stirring component 900 divides the meat block into small meat particles, and the sharp blade can cut the meat tendons while cutting the meat block at high speed to avoid adhesion between small meat particles. Since vegetables are easier to cut than meat, the high-speed blade cuts the vegetables too many times, causing the stirring component 900 to cut the vegetables too finely, resulting in smaller vegetable particles after cutting, more water, and affecting the taste of the vegetables. Therefore, when the food material is vegetables, the stirring component 900 needs to have a lower rotation speed.

[0122] In this way, the first output part 310 and the second output part 320 have different rotation speeds, respectively, so that the stirring component 900 has different rotation speeds. When cutting different ingredients, the user can select the appropriate second output part 320, and the stirring component 900 with different rotation speeds can meet the cutting speed requirements for different ingredients. The speed range of the reducer 300 is expanded, so that the ingredients and the corresponding stirring component 900 rotation speeds are more matched, the use range of the product is expanded, the processing effect of the stirring component 900 on the ingredients is optimized, the taste of the processed ingredients is improved, and the user experience is improved.

[0123] In some embodiments provided in this application, Figure 6 As shown, optionally, the rotation speed of the first output part 310 is N1, the rotation speed of the second output part 320 is N2, and N1 and N2 satisfy that N1≥8N2.

[0124] In this embodiment, the rotational speed of the first output part 310 is N1, and the rotational speed of the second output part 320 is N2, and N1 and N2 satisfy N1≥8N2, that is, the rotational speed of the first output part 310 is a high speed, and the rotational speed of the second output part 320 is a low speed, and the rotational speed of the first output part 310 is more than 8 times the rotational speed of the second output part 320, thereby ensuring the rotational speed difference between the first output part 310 and the second output part 320, so that the stirring component 900 has a sufficiently high rotational speed when processing meat ingredients, and has a sufficiently low rotational speed when processing vegetable or noodle ingredients, thereby enabling the stirring component 900 to meet the rotational speed requirements of different ingredients.

[0125] In some embodiments provided in this application, Figure 6 As shown, optionally, multiple output parts are coaxially distributed.

[0126] In this embodiment, the first output part 310 and the second output part 320 are coaxially distributed, that is, the first output part 310 and the second output part 320 have the same axis, so that the first output part 310 and the second output part 320 can rotate around the same axis, and the axes of the first output part 310 and the second output part 320 are both located at the center of the driving component 10, so that when any output part drives the stirring component 900 to rotate, the stirring component 900 rotates around the central axis, thereby increasing the cutting radius of the stirring component 900 and expanding the cutting range of the stirring component 900.

[0127] In some embodiments provided in this application, Figure 6 As shown, optionally, the reducer 300 includes a plurality of transmission members 350 , and the first output portion 310 or the second output portion 320 is connected to one transmission member 350 .

[0128] In this embodiment, the reducer 300 includes multiple transmission parts 350, and the reducer 300 can output multiple different rotational speeds through the multiple transmission parts 350. The first output part 310 or the second output part 320 is connected to a transmission part 350. The first output part 310 and the second output part 320 have multiple different rotational speeds, so that the stirring component 900 has different rotational speeds to meet the different requirements of different ingredients for the cutting speed of the stirring component 900.

[0129] In some embodiments provided in this application, Figure 6 As shown, optionally, the reducer 300 further includes a connecting member 340, which is connected to the motor 200. The plurality of transmission members 350 include a first planetary gear set 351 and a second planetary gear set 361. The first planetary gear set 351 is connected to the connecting member 340, and the connecting member 340 is used to drive the first planetary gear set 351 to rotate, and the first planetary gear set 351 includes a first transmission part 353. The second planetary gear set 361 is connected to the first transmission part 353, and the second planetary gear set 361 is meshed with the first transmission part 353 for transmission, and the second planetary gear set 361 includes a second transmission part 363, and the first transmission part 353 and the second transmission part 363 are connected to different output parts.

[0130] In this embodiment, the reducer 300 further includes a connecting member 340 , which is connected to the motor 200 , and the connecting member 340 rotates along with the driving end of the motor 200 .

[0131] The plurality of transmission members 350 include a first planetary gear set 351 and a second planetary gear set 361. The reducer 300 also includes a housing and a first bracket 352, and the first bracket 352 is located in the housing. The first planetary gear set 351 is disposed in the first bracket 352, and the first planetary gear set 351 is connected to the first bracket 352, and the first bracket 352 provides structural protection for the first planetary gear set 351. The connecting member 340 is inserted into the first bracket 352, and the first planetary gear set 351 is connected to the connecting member 340, and the connecting member 340 is used to drive the first planetary gear set 351 to rotate, and the first planetary gear set 351 includes a first transmission part 353, and the first transmission part 353 extends downward. Specifically, meshing teeth are provided on the outer periphery of the connecting member 340, and the first planetary gear set 351 includes a first gear and a first inner ring gear. The meshing teeth of the connecting member 340 mesh with the first gear for transmission, and the first gear meshes with the first inner ring gear for transmission, so that the connecting member 340 drives the first ring gear to rotate through the first gear, and the first transmission part 353 is connected to the first ring gear, so that the first transmission part 353 rotates at a first speed.

[0132] The second planetary gear set 361 is disposed below the first planetary gear set 351. The reducer 300 further includes a second bracket 362, which is located in the housing. The second planetary gear set 361 is disposed in the second bracket 362, and the second planetary gear set 361 is connected to the second bracket 362, which provides structural protection for the second planetary gear set 361. The first transmission part 353 is disposed on the second bracket 362, and the second planetary gear set 361 is connected to the first transmission part 353. The second planetary gear set 361 is meshed with the first transmission part 353 for transmission, so that the first transmission part 353 drives the second planetary gear set 361 to rotate. The second planetary gear set 361 includes a second transmission part 363. Specifically, the outer periphery of the first transmission part 353 is provided with meshing teeth. The second planetary gear set 361 includes a second gear and a second inner ring gear. The meshing teeth of the first transmission part 353 mesh with the second gear, and the second gear meshes with the second inner ring gear, so that the first transmission part 353 drives the second ring gear to rotate through the second gear. The second transmission part 363 is connected to the second ring gear, so that the second transmission part 363 rotates at a second speed.

[0133] Specifically, the first transmission part 353 is connected to the first output part 310, so that the first output part 310 has a high speed, and the second transmission part 363 is connected to the second output part 320, so that the second output part 320 has a low speed. The stirring assembly 900 has different speeds when connected to the first output part 310 and the second output part 320, and the stirring assembly 900 with different speeds can meet the cutting speed requirements for different ingredients.

[0134] The first output part 310 and the stirring component 900 can be connected to each other by plugging. The first output part 310 is provided with an axial hole, and the stirring component 900 includes a connecting shaft, which is plugged into the axial hole. The inner wall of the axial hole engages and rotates with the connecting shaft, so that the first output part 310 drives the stirring component 900 to rotate.

[0135] The second output part 320 and the stirring component 900 can be connected to each other by plugging. The second output part 320 is a ring structure. The stirring component 900 also includes a connecting sleeve, so that the second output part 320 and the connecting sleeve can be plugged into each other. The outer wall of the second output part 320 engages and rotates with the inner wall of the connecting sleeve, so that the second output part 320 drives the stirring component 900 to rotate.

[0136] In a second aspect of the present application, a food processor 20 is provided. Figure 1 , Figure 3 and Figure 4As shown, the food processor 20 includes a container 800, a stirring assembly 900 and a driving assembly 10 provided by any one of the first embodiment of the present application. The stirring assembly 900 is located in the container 800 and is connected to the reducer 300.

[0137] In this embodiment, the food processor 20 includes a container 800, a stirring assembly 900 and a driving assembly 10. The container 800 is used to contain food to be processed, the stirring assembly 900 is located in the container 800, and the stirring assembly 900 is connected to the reducer 300, and the reducer 300 drives the stirring assembly 900 to rotate so that the stirring assembly 900 stirs the food.

[0138] It should be noted that the food processor 20 includes the driving assembly 10 provided by any one of the above embodiments of the present application, and thus has all the beneficial technical effects of the above driving assembly 10, which will not be described here in detail to avoid repetition.

[0139] In the claims, specification and drawings of the present application, the term "multiple" refers to two or more than two. Unless otherwise clearly defined, the terms "upper" and "lower" indicate positions or positional relationships based on the positions or positional relationships shown in the drawings. They are only for the purpose of more conveniently describing the present application and making the description process easier, and are not intended to indicate or imply that the device or element referred to must have the specific orientation described, be constructed and operated in a specific orientation. Therefore, these descriptions cannot be understood as limitations on the present application. The terms "connect", "install", "fix" and the like should be understood in a broad sense. For example, "connection" can be a fixed connection between multiple objects, or a detachable connection between multiple objects, or an integral connection; it can be a direct connection between multiple objects, or an indirect connection between multiple objects through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood based on the specific circumstances of the above data.

[0140] In the claims, specification and drawings of the present application, the description of the terms "one embodiment", "some embodiments", "specific embodiments" and the like means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In the claims, specification and drawings of the present application, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner.

[0141] The above description is only the preferred embodiment of the present application and is not intended to limit the present application. For those skilled in the art, the present application may have various modifications and variations. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A drive assembly, characterized in that: include: case; A motor connected to the housing; A reducer, drivingly connected to the motor, and the reducer is connected to the housing; An auxiliary component, wherein a first end of the auxiliary component is connected to the motor, and a second end of the auxiliary component is connected to the housing; The auxiliary parts include: A first connecting portion, wherein the motor is provided with a first mounting portion, and the first mounting portion is connected to the first connecting portion; A second connecting portion, wherein the housing is provided with a second mounting portion, and the second mounting portion is connected to the second connecting portion; A third connection portion, wherein a first end of the third connection portion is connected to the first connection portion, and a second end of the third connection portion is connected to the second connection portion.

2. The drive assembly according to claim 1, characterized in that: There are multiple first connection parts and multiple first mounting parts, the multiple first mounting parts are distributed along the circumference of the motor, and the multiple first connection parts correspond to the multiple first mounting parts one by one; and / or There are multiple second connection parts and multiple second mounting parts, and the multiple second mounting parts are distributed along the circumference of the motor. The multiple second connection parts and the multiple second mounting parts correspond to each other one by one.

3. The drive assembly according to claim 1 or 2, characterized in that: The third connection portion includes an annular connection portion, a portion of the reducer is located in the annular connection portion, and the annular connection portion is used to limit the reducer.

4. The drive assembly according to claim 3, characterized in that: The minimum distance between the annular connecting portion and the reducer is W1, and the minimum distance between the second connecting portion and the reducer is W2. W1 and W2 satisfy W2>W1.

5. The drive assembly according to claim 3, characterized in that: A plurality of reinforcement parts are arranged on the inner circle of the annular connecting part, and the plurality of reinforcement parts are distributed along the circumference of the annular connecting part.

6. The drive assembly according to claim 1 or 2, characterized in that: The first mounting portion comprises: A first mounting plate, provided on the motor; A first mounting member, wherein the first mounting member is provided with a first slot, the first mounting plate is inserted into the first slot, and the first mounting member is used to connect with the first connecting portion; The first shock-absorbing pad is sleeved on the first mounting member.

7. The drive assembly according to claim 6, characterized in that: The first mounting member is provided with a first mounting groove, and a part of the first connecting portion is inserted into the first mounting groove.

8. The drive assembly according to claim 6, characterized in that: The motor comprises a motor body and an output shaft, wherein the output shaft extends out of a first side of the motor body, and a second side of the motor body faces away from the reducer; The minimum distance between the first side of the motor body and the first mounting member is L1, and the minimum distance between the second side of the motor body and the first mounting member is L2, where L2>L1.

9. The drive assembly according to claim 1 or 2, characterized in that: The first side of the reducer faces the motor, and the second side of the reducer faces away from the motor; Along the axial direction of the motor, the second connection portion is located between the first side of the reducer and the second side of the reducer.

10. The drive assembly according to claim 1 or 2, characterized in that: The drive assembly also includes: A second mounting plate, provided on the reducer; A second mounting member, wherein the second mounting member is provided with a second slot, the second mounting plate is plugged into the second slot, and the second mounting member is used to be connected to the housing; The second shock-absorbing pad is sleeved on the second mounting member.

11. The drive assembly according to claim 10, characterized in that: The second mounting member is provided with a second mounting groove; The housing is provided with a positioning piece, and the positioning piece is inserted into the second installation groove.

12. The drive assembly according to claim 1 or 2, characterized in that: A positioning ring is provided on one of the housing and the reducer, and a positioning column is provided on the other, and the positioning column is inserted into the positioning ring.

13. The drive assembly according to claim 1 or 2, characterized in that: The housing includes a first housing and a second housing, the second housing is detachably connected to the first housing, an installation cavity is formed between the first housing and the second housing, and the motor and the reducer are located in the installation cavity.

14. The drive assembly according to claim 1 or 2, characterized in that: The reducer has a first output part and a second output part, the second output part is an annular output part, the first output part is located inside the annular output part, and the output rotation speeds of the first output part and the second output part are different.

15. The drive assembly according to claim 14, characterized in that The rotation speed of the first output part is N1, the rotation speed of the second output part is N2, and N1 and N2 satisfy N1≥8N2.

16. A food processor, characterized in that: include: container; A stirring assembly, located in the container; The driving assembly according to any one of claims 1 to 15, wherein the stirring assembly is connected to the reducer.