Food processor
By controlling the blending and filtering sections of the food processor to rotate at different speeds using a near-field communication receiving module, the difference in speed requirements between the blending and filtering modes of the food processor is resolved, simplifying the structure and improving safety and noise control.
Patent Information
- Application Number
- CN202520133367.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-20
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2035-01-20
AI Technical Summary
Existing food processors have different speed requirements for pulverizing and filtering modes, resulting in complex structures and problems such as eccentric vibration and noise.
A near-field communication receiving module is used to identify the stirring and filtering parts, and the motor shaft is controlled to rotate at different speeds via radio frequency signals, simplifying the structure and optimizing the assembly process.
It achieves automatic speed adjustment in crushing and filtering modes, simplifies the number of parts, and improves safety and noise control.
Smart Images

Figure CN223695688U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of small household appliances, in particular to a food processor. BACKGROUND
[0002] Some food processors have both automatic crushing and automatic filtering functions. The required rotating speeds are different in the two working modes. For example, a high rotating speed is required for crushing to obtain a better crushing effect, while a low rotating speed is required for filtering to avoid eccentric vibration and loud noise of the filter drum caused by high-speed rotation. SUMMARY
[0003] The present application provides a food processor which can meet the requirements of different rotating speeds in the crushing mode and the filtering mode.
[0004] A food processor comprises:
[0005] A main machine comprising a motor, a near field communication receiving module, a control circuit electrically connected with the motor and the near field communication receiving module respectively, and a motor shaft of the motor;
[0006] A cup assembly comprising a cup body, a stirring part and a filtering part installed on the cup body, the cup assembly being detachably installed on the main machine in a first installation mode and a second installation mode, the installation mode in which the stirring part is engaged with the motor shaft being the first installation mode, and the installation mode in which the filtering part is engaged with the motor shaft being the second installation mode, in the first installation mode, the near field communication receiving module can output a first signal to the control circuit, and the control circuit controls the motor shaft to drive the stirring part to rotate at a first rotating speed according to the first signal, in the second installation mode, the near field communication receiving module can output a second signal to the control circuit, and the control circuit controls the motor shaft to drive the filtering part to rotate at a second rotating speed according to the second signal, the first rotating speed being different from the second rotating speed.
[0007] The food processor provided by the present application can output a first signal to the control circuit when the cup assembly is installed in the main machine in the first installation mode, at this time, the motor is controlled by the first control signal corresponding to the first signal output by the control circuit, so that the motor shaft drives the stirring part to rotate at a first rotating speed, when the cup assembly 20 is installed in the main machine in the second installation mode, the near field communication receiving module can output a second signal to the control circuit, at this time, the motor is controlled by the second control signal corresponding to the second signal output by the control circuit, so that the motor shaft drives the filtering part to rotate at a second rotating speed, thereby realizing that the stirring part and the filtering part can rotate at different rotating speeds respectively, meeting the requirements of the whipping mode and the filtering mode. Moreover, the near field communication receiving module is used to identify the stirring part and the filtering part through radio frequency signals, which can simplify the structure of the cup assembly, thereby reducing the number of parts and optimizing the assembly process.
[0008] Optionally, the stirring part is provided with a first near field communication transmitting module, the first near field communication transmitting module can transmit a first radio frequency signal, in the first installation mode, the near field communication receiving module is paired with the first near field communication transmitting module. In this scheme, the first near field communication transmitting module and the near field communication receiving module realize near field communication, so as to ensure that the near field communication receiving module reliably outputs the first signal to the control circuit.
[0009] Optionally, the filter part is provided with a second near field communication transmitting module, the second near field communication transmitting module can transmit a second radio frequency signal, in the second installation mode, the near field communication receiving module is paired with the second near field communication transmitting module. In this scheme, the second near field communication transmitting module and the near field communication receiving module realize near field communication, so as to ensure that the near field communication receiving module reliably outputs the second signal to the control circuit.
[0010] Optionally, the stirring part includes a first trigger part, the host also includes a first circuit and a first switch part for controlling the on-off of the first circuit, the motor is also connected in the first circuit, the first trigger part can trigger the first switch part to close in the first installation mode. The motor is set to be energized under the control of both the control circuit and the first switch part, so as to avoid accidents caused by misoperation on the stirring part.
[0011] Optionally, the filter part includes a second trigger part, the host also includes a second circuit and a second switch part for controlling the on-off of the second circuit, the motor is also connected in the second circuit, the second trigger part can trigger the second switch part to close in the second installation mode. The motor is set to be energized under the control of both the control circuit and the second switch part, so as to avoid accidents caused by misoperation on the filter part.
[0012] Optionally, the host includes the first switch part and / or the second switch part, one of the first switch part and the second switch part is a top contact type switch part, the top contact type switch part includes a movable top rod and a switch, the top rod is movable under the action of a trigger force and drives the switch to close. This trigger mode is mechanical, simple and reliable in structure.
[0013] Optionally, the top contact type switch part further includes an elastic member, the elastic member can be elastically deformed along the movement direction of the top rod, one end of the elastic member is fixed along the extension direction, and the other end of the elastic member acts on the top rod, the elastic member is used to drive the top rod to reset after the action force is removed. The elastic member can realize automatic reset of the top rod, without manual operation, so that the on-off of the circuit is more convenient and safe.
[0014] Optionally, the stirring part further comprises a stirring base, a stirring member rotatably mounted on the stirring base, and the first trigger part movably arranged on the stirring base, in the mounted state of the stirring part and the cup assembly, the first trigger part is extended out of the stirring base under the abutting of the cup assembly and remains fixed, and in the dismounted state of the stirring part and the cup assembly, the first trigger part is retractable into the stirring base. In this way, when the stirring part is mistakenly mounted on the main machine alone, the first trigger part is in a free state, the first trigger part cannot trigger the first circuit to be turned on, the motor shaft will not rotate, and the use is safer.
[0015] Optionally, the filter part further comprises a filter cartridge base and a filter cartridge rotatably mounted on the filter cartridge base, and the second trigger part is movably arranged on the filter cartridge base, in the mounted state of the filter part and the cup assembly, the second trigger part is extended out of the filter cartridge base under the abutting of the cup assembly and remains fixed, and in the dismounted state of the filter part and the cup assembly, the second trigger part is retractable into the filter cartridge base. When the filter part is mistakenly mounted on the main machine alone, the second trigger part is in a free state, the second trigger part cannot trigger the second circuit to be turned on, the motor shaft will not rotate, and the use is safer.
[0016] Optionally, in the first mounting mode, the stirring part is screw-fixed with the main machine; and / or
[0017] In the second mounting mode, the filter part is screw-fixed with the main machine. The mounting mode is simple and reliable.
[0018] Optionally, the main machine further comprises a main machine shell, the main machine shell is provided with a drainage channel, a water inlet of the drainage channel is arranged at a top of the main machine shell, and a water outlet of the drainage channel is arranged at a bottom of the main machine.
[0019] In this way, water accumulation at the top of the main machine can be avoided.
[0020] Optionally, the main machine further comprises a main machine shell at the outermost side, the near field communication receiving module comprises a module body and a lead wire, the module body is encapsulated in the main machine shell, and the lead wire is led out of the main machine shell. In this way, the reliability of the module body can be ensured, and residue can also be avoided from being hidden in the installation gap. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 is a cross-sectional view of a food processor shown in an example embodiment of the present application, in which the cup assembly is in a first mounting mode;
[0022] Figure 2 is Figure 1 is another cross-sectional view of a food processor shown in the example embodiment of the present application, in which the cup assembly is in a second mounting mode;
[0023] Figure 3 This is a cross-sectional view of a food processor with some parts removed.
[0024] Figure 4 This is a schematic diagram showing the stirring section located at the bottom of the cup assembly;
[0025] Figure 5 This is a schematic diagram showing the filter section located at the bottom of the cup assembly;
[0026] Figure 6 yes Figure 1 An enlarged view of part A in the middle;
[0027] Figure 7 This is an exploded view of the cup component;
[0028] Figure 8 It is a cross-sectional view of the host machine with some structural parts removed. Detailed Implementation
[0029] The technical solutions in the embodiments (or "implementations") of this application will be clearly and completely described herein with reference to the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements.
[0030] If the embodiments of this application contain terms relating to directional indications or positional relationships (such as up, down, left, right, front, back, inside, outside, top, bottom, center, vertical, horizontal, longitudinal, transverse, length, width, counterclockwise, clockwise, axial, radial, circumferential, etc.), such terms are only used to explain the relative positional relationships and movements between components in a specific posture (as shown in the attached figures); if the specific posture changes, the directional indications or positional relationships will also change accordingly. Furthermore, the terms "first" and "second" used in the embodiments of this application are only for descriptive convenience and should not be construed as indicating or implying relative importance.
[0031] Please refer to Figures 1 to 3 , Figure 1 This is a cross-sectional view of a food processor 100 shown as an exemplary embodiment of this application, wherein the cup assembly 20 is in a first mounting configuration. Figure 2 for Figure 1 Another cross-sectional view of the food processor 100 shown in the figure, in which the cup assembly 20 is in a second mounting configuration. Figure 3This is a cross-sectional view of the blender 100 with some structures removed. This application provides a blender 100, which includes a main unit 10 and a cup assembly 20, the cup assembly 20 being detachably mounted to the main unit 10. The main unit 10 includes a motor 11, a near-field communication receiving module 12, and a control circuit 13 electrically connected to both the motor 11 and the near-field communication receiving module 12. The motor includes a rotatable motor shaft 110. The near-field communication receiving module 12 can receive radio frequency signals.
[0032] The cup assembly 20 includes a cup body 21 and a stirring part 22 and a filtering part 23 installed on the cup body 21. The cup assembly 20 can be detachably installed on the host 10 in a first installation method and a second installation method.
[0033] exist Figure 1 In the embodiment shown, the installation method in which the stirring part 22 is engaged with the motor shaft 110 is the first installation method. In the first installation method, the near-field communication receiving module 12 can output a first signal to the control circuit 13. The control circuit 13 controls the motor shaft 110 to drive the stirring part 22 to rotate at a first speed according to the first signal.
[0034] exist Figure 2 In the illustrated embodiment, the installation method in which the filter section 23 is engaged with the motor shaft 110 is a second installation method. In the second installation method, the near-field communication receiving module 12 can output a second signal to the control circuit 13. The control circuit 13 controls the motor shaft 110 to drive the filter section 23 to rotate at a second speed according to the second signal. The first speed is different from the second speed. The first speed can be higher than the second speed, but it is not limited to this.
[0035] As described above, when the cup assembly 20 is installed into the main unit 10 in the first mounting method, the near-field communication receiving module 12 can output a first signal to the control circuit 13. At this time, the motor 11 is controlled by the first control signal output by the control circuit 13 corresponding to the first signal, causing the motor shaft 110 to drive the stirring part 22 to rotate at a first speed. When the cup assembly 20 is installed into the main unit 10 in the second mounting method, the near-field communication receiving module 12 can output a second signal to the control circuit 13. At this time, the motor 11 is controlled by the second control signal output by the control circuit 13 corresponding to the second signal, causing the motor shaft 110 to drive the filtering part 23 to rotate at a second speed. Thus, the stirring part 22 and the filtering part 23 can rotate at different speeds respectively, satisfying the requirements of the stirring mode and the filtering mode. Furthermore, by using the near-field communication receiving module 12, the stirring part 22 and the filtering part 23 can be identified by radio frequency signals, which simplifies the structure of the cup assembly 20, thereby reducing the number of parts and optimizing the assembly process.
[0036] In one embodiment, as shown in Figure 1 The stirring part 22 is provided with a first near field communication transmitting module 24 which can transmit a first radio frequency signal. In the first installation mode, the near field communication receiving module 12 is paired with the first near field communication transmitting module 24. In this scheme, the first near field communication transmitting module 24 and the near field communication receiving module 12 realize near field communication to ensure that the near field communication receiving module 12 reliably outputs the first signal to the control circuit 13. The first near field communication transmitting module 24 includes but is not limited to an NFC module, a Bluetooth module, and an infrared module.
[0037] In one embodiment, as shown in Figure 1 The filter part 23 is provided with a second near field communication transmitting module 25 which can transmit a second radio frequency signal. In the second installation mode, the near field communication receiving module 12 is paired with the second near field communication transmitting module 25. In this scheme, the second near field communication transmitting module 25 and the near field communication receiving module 12 realize near field communication to ensure that the near field communication receiving module 12 reliably outputs the second signal to the control circuit 13. The second near field communication transmitting module 25 includes but is not limited to an NFC module, a Bluetooth module, and an infrared module.
[0038] It should be noted that the first near field communication transmitting module 24 and the second near field communication transmitting module 25 are different, thereby making the signals output by the near field communication receiving module 12 to the control circuit 13 different. It should also be noted that the first near field communication transmitting module 24 can be provided on the stirring part 22 alone; the second near field communication transmitting module 25 can be provided on the filter part 23 alone. When there is no near field communication transmitting module paired with the near field communication receiving module 12, the first signal or the second signal is output by default, thereby executing the corresponding stirring program or filtering program. In this embodiment, the stirring part 22 is provided with the first near field communication transmitting module 24, and the filter part 23 is provided with the second near field communication transmitting module 25.
[0039] Please refer to Figure 1 and Figure 4 , Figure 4 is a schematic view of the stirring part 22 arranged at the bottom of the cup assembly 20.
[0040] In one embodiment, the stirring part 22 comprises a first trigger part 221, the host 10 further comprises a first circuit and a first switch part 14 for controlling the first circuit, the motor 11 is further connected in the first circuit, and the first trigger part 221 can trigger the first switch part 14 to close in the first installation mode. The first switch part 14 is set based on safety, that is, the motor 11 is set to be energized under the control of both the control circuit 13 and the first switch part 14, so as to avoid accidents caused by misoperation of the stirring part 22.
[0041] In one embodiment, as shown in Figure 4 , the stirring base 222 is set as a screw base, that is, the stirring base 222 is installed on the cup body 21 in a screwing manner. In one embodiment, the stirring base 222 is further screwed and fixed with the host 10, and the stirring base 222 is provided with a buckle 2221, which is clamped with the host 10 after being screwed in place. The installation mode is simple and reliable.
[0042] Please refer to Figure 1 and Figure 5 , Figure 5 is a schematic view of the stirring part 22 arranged at the bottom of the cup assembly 20.
[0043] In one embodiment, the filter part 23 comprises a second trigger part 231, the host 10 further comprises a second circuit and a second switch part 15 for controlling the second circuit, and the motor 11 is further connected in the second circuit. The second trigger part 231 can trigger the second switch part 15 to close in the second installation mode. Similarly, the second switch part 15 is set based on safety, that is, the motor 11 is set to be energized under the control of both the control circuit 13 and the second switch part 15, so as to avoid accidents caused by misoperation of the filter part 23.
[0044] In one embodiment, as shown in Figure 5 , the filter cartridge seat 232 is set as a screw base, that is, the filter cartridge seat 232 is installed on the cup body 21 in a screwing manner. In one embodiment, the filter cartridge seat 232 is further screwed and fixed with the host 10, and the filter cartridge seat 232 is provided with a buckle 2321, which is clamped with the host 10 after being screwed in place. The installation mode is simple and reliable.
[0045] Please refer to Figure 6 , Figure 6 is Figure 1 is an enlarged view of part A in
[0046] In one embodiment, the first switch portion 14 is configured as a push-type switch portion, which includes a movable push rod 141 and a switch 142. The push rod 141 is movable under the force of the first trigger portion 221, driving the switch 142 to close. With this configuration, the first trigger portion 221 applies a force to the push rod 141, which can move the push rod 141 and thus trigger the switch 142 to close. This triggering method is mechanical, simple in structure, and reliable. The switch 142 includes, but is not limited to, a microswitch. Figure 1 and Figure 6 In the embodiment shown, the push rod 141 can move downward under the force of the first trigger part 221, but it is not limited to this; for example, it can also move laterally to the left or right.
[0047] exist Figure 6 In the illustrated embodiment, the push-type switch further includes an elastic element 143. The elastic element 143 is extendable and deformable along the direction of movement of the push rod 141. One end of the elastic element 143 along the extension / detension direction is fixed, and the other end acts on the push rod 141. The elastic element 143 drives the push rod 141 after the force of the first trigger part 221 is removed, achieving automatic reset of the push rod 141 without manual operation, making circuit switching more convenient and safer. The elastic element 143 includes, but is not limited to, a compression spring. Figure 6 In the embodiment shown, the elastic element 143 is sleeved on a column to prevent the elastic element 143 from shifting.
[0048] It should be noted that the second switch section 15 can adopt the same structure as the first switch section 14, which will not be described in detail here. Of course, the second switch section 15 can also adopt other embodiments.
[0049] Please refer to Figure 7 , Figure 7 This is an exploded view of the cup component 20.
[0050] The stirring unit 22 also includes a stirring base 222 and a stirring element 223 rotatably mounted on the stirring base 222. The stirring element 223 is disposed within the cup cavity 210 of the cup body 21 and is used to stir food. In one embodiment, the first trigger 221 is movably disposed on the stirring base 222. When the stirring unit 22 and the cup body 21 are in the installed state, the first trigger 221 extends out of the stirring base 222 under the abutment of the cup body 21 and remains fixed. When the stirring unit 22 and the cup body 21 are in the disassembled state, the first trigger 221 can retract into the stirring base 222. With this configuration, when the stirring unit 22 is mistakenly installed alone on the main unit 10, the first trigger 221 is in a free state, and the first trigger 221 cannot trigger the first circuit to be connected, so the motor shaft 110 will not rotate, making it safer to use.
[0051] In Figure 7 In the embodiment shown, the filter part 23 further comprises a filter cartridge seat 232 and a filter cartridge 233 rotatably mounted on the filter cartridge seat 232, the filter cartridge 233 being in communication with the cup cavity 210 of the cup body 21, and the filter cartridge 233 being used for filtering food materials.
[0052] The second trigger part 231 is movably arranged on the filter cartridge seat 232, and when the filter part 23 and the cup body 21 are in the mounted state, the second trigger part 231 is extended out of the filter cartridge seat 232 under the abutting of the cup body 21 and remains fixed, and when the filter part 23 and the cup body 21 are in the dismounted state, the second trigger part 231 can be retracted into the filter cartridge seat 232. In this way, when the filter part 23 is mistakenly mounted on the main machine 10 alone, the second trigger part 231 is in a free state, the second trigger part 231 cannot trigger the second circuit to be turned on, and the motor shaft 110 will not rotate, which is safer for use.
[0053] Please refer to Figure 8 , Figure 8 A sectional view of the main machine 10 with part of the structure removed.
[0054] In an embodiment, the main machine 10 further comprises an outermost main machine shell 16, and the main machine shell 16 is provided with a drainage passage 160, the water inlet of the drainage passage 160 being arranged at the top of the main machine shell 16, and the water outlet of the drainage passage 160 being arranged at the bottom of the main machine 10, so that water accumulation at the top of the main machine 10 can be avoided.
[0055] In an embodiment, the near field communication receiving module 12 comprises a module body 121 and a lead 122, the module body 121 being encapsulated in the main machine shell 16, and the lead 122 being led out from the main machine shell 16. In this way, the reliability of the module body 121 can be ensured, and residue can also be avoided from being hidden in the installation gap. For example, the near field communication receiving module 12 can be used as an insert to be integrally injection molded with the main machine shell 16.
[0056] Please refer to Figure 5 and Figure 8 In an embodiment, the filter part 23 is further provided with a foolproof part 234, and the main machine 10 can be provided with a foolproof matching part 17, when the second trigger part 231 is loaded in correspondence with the first switch part 14, the foolproof part 234 interferes with the foolproof matching part, so that the filter part 23 can be prevented from being mistakenly installed, and the assembly safety can be improved. Figure 5In the shown embodiment, the fool-proof part 234 is provided as a protrusion, and the fool-proof matching part 17 can also be provided as a protrusion, the two protrusions interfere and thus avoid the mis-assembly of the filter part 23. Of course, the stirring part 22 can also be provided with a fool-proof part to avoid the mis-assembly of the stirring part 22, which will not be described here.
[0057] The above only describes the preferred embodiments of the present application and is not used to limit the present application. 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 food processor, characterized in that, include: The host (10) includes a motor (11), a near-field communication receiving module (12), and a control circuit (13) electrically connected to the motor (11) and the near-field communication receiving module (12) respectively. The motor (11) includes a motor shaft (110). The cup assembly (20) includes a cup body (21) and a stirring part (22) and a filtering part (23) mounted on the cup body (21). The cup assembly (20) can be detachably mounted on the host (10) in a first mounting method and a second mounting method. The first mounting method is when the stirring part (22) is engaged with the motor shaft (110), and the second mounting method is when the filtering part (23) is engaged with the motor shaft (110). In the first mounting method, the near-field communication receiving module (12) can output a first signal to the control circuit (13), and the control circuit (13) controls the motor shaft to drive the stirring part (22) to rotate at a first speed according to the first signal. In the second mounting method, the near-field communication receiving module (12) can output a second signal to the control circuit (13), and the control circuit (13) controls the motor shaft (110) to drive the filtering part (23) to rotate at a second speed according to the second signal. The first speed and the second speed are different.
2. The food processor according to claim 1, characterized in that, The stirring section (22) is equipped with a first near-field communication transmitting module (24), which can transmit a first radio frequency signal. In the first installation method, the near-field communication receiving module (12) is paired with the first near-field communication transmitting module (24); and / or The filter section (23) is provided with a second near-field communication transmitting module (25), which can transmit a second radio frequency signal. In the second installation mode, the near-field communication receiving module (12) is paired with the second near-field communication transmitting module (25).
3. The food processor according to claim 1 or 2, characterized in that, The stirring unit (22) includes a first trigger unit (221), the main unit (10) further includes a first circuit and a first switch unit (14) for controlling the on / off state of the first circuit, the motor (11) is also connected to the first circuit, and the first trigger unit (221) can trigger the first switch unit (14) to close in the first installation mode; and / or The filter section (23) includes a second trigger section (231), the host (10) also includes a second circuit and a second switch section (15) for controlling the on / off state of the second circuit, the motor (11) is also connected to the second circuit, and the second trigger section (231) can trigger the second switch section (15) to close in the second installation mode.
4. The food processor according to claim 3, characterized in that, The host (10) includes a first switch part (14) and / or a second switch part (15), one of the first switch part (14) and the second switch part (15) is a push-type switch part, the push-type switch part includes a movable push rod (141) and a switch (142), the push rod (141) is movable under the action of a triggering force and drives the switch (142) to close.
5. The food processor according to claim 4, characterized in that, The push-type switch also includes an elastic element (143), which can extend and deform along the direction of movement of the push rod (141). One end of the elastic element (143) along the extension direction is fixed, and the other end along the extension direction acts on the push rod (141). The elastic element (143) is used to drive the push rod (141) to reset after the force is removed.
6. The food processor according to claim 3, characterized in that, The stirring unit further includes a stirring base (222), a stirring element (223) rotatably mounted on the stirring base (222), and a first triggering part (221). The first triggering part (221) is movably disposed on the stirring base (222). When the stirring unit (22) and the cup body (21) are in the installed state, the first triggering part (221) extends out of the stirring base (222) under the abutment of the cup body (21) and remains fixed. When the stirring unit (22) and the cup body (21) are in the disassembled state, the first triggering part (221) can retract into the stirring base (222).
7. The food processor according to claim 3, characterized in that, The filter section (23) further includes a filter cartridge seat (232) and a filter cartridge (233) rotatably mounted on the filter cartridge seat (232). The second trigger part (231) is movably disposed on the filter cartridge seat (232). When the filter section (23) and the cup body (21) are in the installed state, the second trigger part (231) extends out of the filter cartridge seat (232) under the abutment of the cup body (21) and remains fixed. When the filter section (23) and the cup body (21) are in the disassembled state, the second trigger part (231) can retract into the filter cartridge seat (232).
8. The food processor according to any one of claims 1 to 2, 4 to 7, characterized in that, In the first installation method, the stirring part (22) is screwed and fixed to the main unit (10); and / or In the second installation method, the filter section (23) is screwed and fixed to the host (10).
9. The food processor according to any one of claims 1 to 2, 4 to 7, characterized in that, The host (10) also includes a host housing (16), the host housing (16) is provided with a drainage channel (160), the inlet of the drainage channel (160) is located at the top of the host housing (16), and the outlet of the drainage channel (160) is located at the bottom of the host (10).
10. The food processor according to any one of claims 1 to 2, 4 to 7, characterized in that, The host (10) also includes a host housing (16) located on the outermost side. The near-field communication receiving module (12) includes a module body (121) and a lead wire (122). The module body (121) is encapsulated in the host housing (16), and the lead wire (122) is led out from the host housing (16).