The cup assembly and the blender of the blender
By employing a design in the blender that uses a first rotating part to drive the filtering part and a second rotating part to drive the crushing part, the problems of complex operation and low efficiency of existing blenders are solved, achieving the effect of simplified operation and high-efficiency processing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHEJIANG SHAOXING SUPOR DOMESTIC ELECTRICAL APPLIANCE CO LTD
- Filing Date
- 2025-05-13
- Publication Date
- 2026-05-26
AI Technical Summary
Existing blenders are complex to operate during the crushing and filtering process and have low processing efficiency.
The design employs a first rotating part to drive the filtering part and a second rotating part to drive the pulverizing part, allowing the pulverizing and filtering processes to be carried out in the same posture. By sharing the power system through the transmission components, the structure is simplified and the compactness is improved.
It achieves a simple and efficient pressing process, reduces the risk of interference between the crushing and filtering sections, and improves the crushing effect and filtering efficiency.
Smart Images

Figure CN224268932U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of small household appliance technology, and more specifically, to a cup assembly of a blender and a blender. Background Technology
[0002] The blender uses a blade assembly to stir and chop food, and then uses a filter to filter the juice, achieving rapid crushing and separation of residue and liquid. Summary of the Invention
[0003] This application provides a cup assembly and a mixer for a mixing press, which makes the mixing and pressing process more convenient and improves processing efficiency.
[0004] A cup assembly for a blender, comprising:
[0005] The cup body forms a cup cavity;
[0006] A first rotating part and a second rotating part that are rotatably controlled;
[0007] A filter section is disposed inside the cup cavity and connected to the first rotating part. The filter section forms a filter cavity for containing food ingredients.
[0008] The pulverizing section is disposed inside the filter chamber and is connected to the second rotating section.
[0009] The cup assembly of the blender provided in this application has a first rotating part that drives the filtering part to rotate, and a second rotating part that drives the grinding part to rotate. The grinding part is also installed inside the filtering chamber. In this way, the cup assembly can maintain the same posture during grinding and filtering, that is, there is no need to flip the cup assembly before executing the filtering process, which simplifies operation and increases processing efficiency.
[0010] Optionally, the first rotating part surrounds the entire circumference or part of the second rotating part on the outside, and is configured to rotate relative to the second rotating part, with the first rotating part and the second rotating part being coaxial. This improves the compactness of the structure, ensures a relatively uniform peripheral space for the pulverizing part, and reduces the risk of interference between the pulverizing part and the filtering part.
[0011] Optionally, the cup assembly further includes a transmission unit, wherein one of the first rotating part and the second rotating part is connected upstream of the transmission unit and is configured as a torque input unit to the transmission unit, and the other is connected downstream of the transmission unit and is configured as an output unit to output the torque of the transmission unit. A single power system can be used to simultaneously drive the first and second rotating parts, thereby simplifying the structure and reducing costs.
[0012] Optionally, the transmission unit includes a driving part, an intermediate part, and a driven part that are sequentially connected in transmission. The driving part is connected to the input part and rotates coaxially, the driven part is connected to the output part and rotates coaxially, and the output part also surrounds the outside of the input part, is coaxial with the input part, and can rotate relative to it. The driving part, intermediate part, and driven part are all rotatably configured, and the driving part and driven part rotate about the same axis, which makes the space occupied relatively small and the structure more compact.
[0013] Optionally, the cup assembly further includes a housing that accommodates the transmission part, the top of which forms the bottom of the cup cavity. The first rotating part and the second rotating part are rotatably mounted on the housing. The housing protects the transmission part, provides a carrier for mounting the first and second rotating parts, and serves as the bottom of the cup cavity, reducing the number of parts and simplifying the structure.
[0014] Optionally, the first rotating part is configured as the output part, and the second rotating part is configured as the input part. The housing has a coaxial first hole and a second hole. One axial end of the second rotating part extends from the first hole as a torque input end, and the other end extends from the second hole into the filter chamber and connects to the grinding part. One axial end of the first rotating part extends from the second hole into the cup cavity and connects to the filter part. With this configuration, the second rotating part directly engages with the motor shaft, enabling high-speed rotation and better grinding effect on the food. The first rotating part can be appropriately decelerated through the transmission part to meet the speed requirements during filtration.
[0015] Optionally, the first rotating part is hollow, and the second rotating part extends into the filter cavity through the hollow portion of the first rotating part. This modular structure improves the overall compactness of the design.
[0016] Optionally, the filter section includes a cylindrical body and a cylindrical bottom surrounding the filter chamber, the cylindrical bottom being detachably connected to the cylindrical body, the cylindrical body including a filter screen with perforations, and the cylindrical bottom being connected to the first rotating part. This structure facilitates the cleaning of the cylindrical body.
[0017] Optionally, the cup assembly further includes a cup lid, one of which, along with the cylinder body, is provided with a positioning shaft, and the other with a positioning hole. The positioning shaft is inserted into the positioning hole and is coaxial with the filter section. This prevents the cylinder body from shifting upwards during filtration and also reduces the amount of shaking and noise when the filter section rotates.
[0018] Optionally, the cylinder body is also provided with a handle for the user to hold, and the positioning shaft or the positioning hole is located in the handle. This facilitates the setting of the positioning hole or positioning shaft.
[0019] Optionally, the cylinder body is provided with a feeding port for adding food ingredients. The handle includes multiple connecting ribs located at the feeding port. One end of each connecting rib is connected to the cylinder body, and the other end is connected to each other. The gap between two adjacent connecting ribs forms the feeding port. The positioning shaft or the positioning hole is located at the junction of the multiple connecting ribs. This can improve the strength of the handle, extend its service life, and make it easier for the user to grip.
[0020] Optionally, the pulverizing section and the filtering section rotate in different directions; and / or
[0021] The grinding section and the filtering section rotate at different speeds. Rotating in the same direction but at different speeds allows for differential rotation, while rotating in opposite directions increases the momentum of the food, thereby creating a larger turbine and improving the grinding and filtering effects.
[0022] A blending press, comprising:
[0023] The main unit includes a drive shaft capable of outputting torque;
[0024] The cup assembly as described in any of the above embodiments is assembled into the main unit, and one of the first rotating part and the second rotating part is engaged with the drive shaft. This agitator is simple to operate and has high processing efficiency.
[0025] Optionally, the cup assembly further includes a bottom module detachably connected to the bottom of the cup body. The first rotating part, the second rotating part, and the crushing part are integrated into the bottom module, with the crushing part exposed outside the bottom module. Thus, the bottom module can be detached from the cup body, allowing direct cleaning of the exposed crushing part. Attached Figure Description
[0026] Figure 1 This is an exploded view of a blender shown in an exemplary embodiment of this application;
[0027] Figure 2 yes Figure 1 The cross-sectional view of the agitator shown in the image;
[0028] Figure 3 yes Figure 2 The image shows a cross-sectional view of a portion of the structure of the cup assembly;
[0029] Figure 4 This is a schematic diagram of part of the cup assembly structure;
[0030] Figure 5 This is another exploded view of the blender;
[0031] Figure 6 This is a diagram showing the cup in an inverted position;
[0032] Figure 7 This is a schematic diagram of the bottom module. Detailed Implementation
[0033] 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.
[0034] 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.
[0035] Please refer to Figure 1 , Figure 1 This is an exploded view of a blender 100 illustrated in an exemplary embodiment of this application.
[0036] This application provides a blending press 100, which includes a main unit 10 and a cup assembly 20. The cup assembly 20 is assembled to the main unit 10, and the assembly method includes, but is not limited to, a detachable method. Figure 1 In the illustrated embodiment, the cup assembly 20 is located above the main unit 10, which is a base-type main unit, but is not limited to this.
[0037] Please refer to Figure 2 , Figure 2 yes Figure 1 The image shows a cross-sectional view of the agitator 100.
[0038] The main unit 10 includes a main unit housing 11 and a motor 12 housed within the main unit housing 11. The motor shaft 120 of the motor 12 extends out of the main unit housing 11 and serves as a drive shaft. Of course, it is not limited to using the motor shaft 120 as the drive shaft. The main unit 10 also includes a lower clutch 13 connected to the top end of the motor shaft 120. The lower clutch 13 is used to engage with the upper clutch 24a of the cup assembly 20 to output torque to the cup assembly 20.
[0039] The cup assembly 20 includes a cup body 21, a filter section 22, a grinding section 23, and a controllable rotatable first rotating section 24 and a second rotating section 25. The cup body 21 forms a cup cavity 210, and the filter section 22 is disposed within the cup cavity 210 and connected to the first rotating section 24. The filter section 22 forms a filter chamber 220 for containing food. The filter section 22 is rotatable under the drive of the first rotating section 24, allowing the food in the filter chamber 220 to be filtered under centrifugal force, achieving separation of juice and residue. The grinding section 23 is disposed within the filter chamber 220 and connected to the second rotating section 25. The grinding section 23 rotates under the drive of the second rotating section 25 and is used to grind the food. The grinding section 23 may include one or more blades, the number and structure of which are not limited.
[0040] As described above, the second rotating part 25 drives the crushing part 23 to rotate, and the first rotating part 24 drives the filtering part 22 to rotate. The crushing part 23 is also installed inside the filtering chamber 220. In this way, the cup assembly 20 can maintain the same posture during crushing and filtering, that is, there is no need to flip the cup assembly 20 before executing the filtering procedure, which simplifies operation and increases processing efficiency.
[0041] This application does not specifically limit the direction of rotation and speed of the grinding section 23 and the filtering section 22. In one embodiment, the grinding section 23 and the filtering section 22 rotate in the same direction but at different speeds. In another embodiment, the grinding section 23 and the filtering section 22 rotate in opposite directions but at the same or different speeds. Rotating in the same direction but at different speeds can achieve differential rotation, while rotating in opposite directions can increase the momentum of the food, thereby forming a larger turbine and improving the grinding and filtering effect.
[0042] In one embodiment, the first rotating part 24 is disposed around the second rotating part 25, either circumferentially or partially, and can rotate relative to the second rotating part 25. The first rotating part 24 and the second rotating part 25 are coaxial. That is, the first rotating part 24 and the second rotating part 25 cover or partially cover each other, which improves the compactness of the structure and ensures that the peripheral space of the pulverizing part 23 is relatively uniform, reducing the risk of interference between the pulverizing part 23 and the filtering part 22. Of course, in some other embodiments, the axis of rotation of the first rotating part 24 and the axis of rotation of the second rotating part 25 can be parallel to each other but not coaxial.
[0043] In one embodiment, the cup assembly 20 further includes a transmission section 26, which is driveably connected to the first rotating section 24 and also driveably connected to the second rotating section 25. One of the first rotating section 24 and the second rotating section 25 serves as an input section, and the other as an output section. The input section is connected upstream of the transmission section 26 to input torque to the transmission section 26, and the output section is connected downstream of the transmission section 26 to output the torque from the transmission section 26. This configuration allows a single power system to simultaneously drive the first rotating section 24 and the second rotating section 25, thereby simplifying the structure and reducing costs. Figure 2 In the illustrated embodiment, the torque is input from the second rotating part 25 and transmitted to the first rotating part 24 via the transmission part 26. Alternatively, the torque can be input from the first rotating part 24 and transmitted to the second rotating part 25 via the transmission part 26.
[0044] This application does not limit the specific implementation of the transmission part 26. In one embodiment, the transmission part 26 includes a driving part 261, an intermediate part 262, and a driven part 263 connected in sequence. The driving part 261 is connected to the input part and rotates coaxially. The driven part 263 is connected to the output part and rotates coaxially. The output part is also sleeved on the outside of the input part, coaxial with the input part, and can rotate relative to it. In this embodiment, the driving part 261, the intermediate part 262, and the driven part 263 are all rotatably configured, and the driving part 261 and the driven part 263 rotate around the same axis, which makes the space occupied relatively small and the structure more compact.
[0045] In this embodiment, the transmission unit 26 employs a gear transmission mechanism. In one specific embodiment, the driving part 261 includes a central gear, the intermediate part 262 includes multiple planetary gears, and the driven part 263 includes an internal gear ring. The multiple planetary gears are arranged around the central gear and mesh with the central gear and the internal gear ring, respectively. The central gear and the input part can be connected by a key or configured as an integral structure, and the internal gear ring can be fixedly connected to the output part or configured as an integral structure. Of course, other gear mechanisms with different meshing forms can also be used, not limited to those described above. It should also be noted that in some other embodiments, the transmission unit 26 can also employ a belt drive mechanism, a chain drive mechanism, etc.
[0046] Please continue to refer to this. Figure 2In one embodiment, the cup assembly 20 further includes a housing 27 that houses the transmission part 26. The top of the housing 27 forms the bottom of the cup cavity 210. The first rotating part 24 and the second rotating part 25 are rotatably mounted on the housing 27. This arrangement allows the housing 27 to protect the transmission part 26, reducing or even preventing debris from entering the transmission part 26 and ensuring the reliability of its transmission. Simultaneously, the housing 27 also serves as the bottom of the cup cavity 210, reducing the number of parts and simplifying the structure. Furthermore, the housing 27 provides a carrier for the installation of the first rotating part 24 and the second rotating part 25.
[0047] exist Figure 2 In the illustrated embodiment, the housing 27 includes a detachably connected upper cover 271 and a lower cover 272, which together form a receiving cavity for housing the transmission part 26. The upper cover 271 is located above the lower cover 272 and serves as the bottom of the cup cavity 210. Multiple planetary gears are rotatably mounted on the lower cover 272.
[0048] In one embodiment, the first rotating part 24 is connected downstream of the transmission part 26 as an output part, and the second rotating part 25 is connected upstream of the transmission part 26 as an input part. The torque of the second rotating part 25 is transmitted to the first rotating part 24 through the transmission part 26.
[0049] The housing 27 has a coaxial first hole 27a and a second hole 27b, wherein the first hole 27a is located in the lower cover 272 and the second hole 27b is located in the upper cover 271. One axial end of the second rotating part 25 extends through the first hole 27a, serving as a torque input end. The other axial end of the second rotating part 25 extends through the second hole 27b into the filter chamber 220 and connects to the pulverizing part 23. An upper clutch 24a is connected to the end of the second rotating part 25 extending from the first hole 27a, for engaging with the lower clutch 13 on the motor shaft 120. One axial end of the first rotating part 24 extends through the second hole 27b into the cup chamber 210 and connects to the filter part 22. This configuration allows the second rotating part 25 to directly engage with the motor shaft 120, enabling high-speed rotation and better pulverization of ingredients. The first rotating part 24 can be appropriately decelerated by the transmission part 26 to meet the speed requirements during filtration.
[0050] In one embodiment, the first rotating part 24 is hollow, and the second rotating part 25 extends into the filter cavity 220 through the hollow part of the first rotating part 24, adopting a sleeve structure to improve the compactness of the structure.
[0051] exist Figure 2In the embodiment shown, the cup assembly 20 further includes a pressure ring 28 that is relatively fixed to the cup body 21. The pressure ring 28 can be fixedly connected to the cup body 21 or fixedly connected to the box body 27.
[0052] Please combine Figure 3 , Figure 3 for Figure 2 The image shows a partial structural cross-section of the cup assembly 20.
[0053] A first bearing 273 and a first sealing ring 274 are also installed in the first hole 27a. The first bearing 273 supports the second rotating part 25, and the first sealing ring 274 is clamped between the lower cover 272 and the second rotating part 25 to seal the gap between them. A second bearing 275 and a second sealing ring 276 are also installed in the second hole 27b. The second bearing 275 supports the first rotating part 24, and the second sealing ring 276 is clamped between the upper cover 271 and the first rotating part 24 to seal the gap between them.
[0054] In one embodiment, the first rotating part 24 has a hollow structure, and the second rotating part 25 is a solid shaft. The first rotating part 24 is sleeved on the outside of the second rotating part 25. A third bearing 277 and a third sealing ring 278 are provided between the first rotating part 24 and the second rotating part 25. The third bearing 277 can maintain the relative rotation between the first rotating part 24 and the second rotating part 25, and the third sealing ring 278 can seal the gap between the second rotating part 25 and the first rotating part 24.
[0055] In one embodiment, the first rotating part 24 is made of metal to ensure its strength and connection reliability. In this embodiment, the first rotating part 24 and the driven part 263 are integrated into one structure. The driven part 263 is made of plastic, and the first rotating part 24 is made of metal. The first rotating part 24 and the driven part 263 are molded into one structure by injection molding.
[0056] In one embodiment, the filter section 22 includes a cylindrical body 221 and a cylindrical bottom 222 surrounding the filter cavity 220. The cylindrical body 221 and the cylindrical bottom 222 are detachably connected. The cylindrical body 221 includes a filter screen with perforations, and the cylindrical bottom 222 is connected to the first rotating part 24. This structure facilitates the cleaning of the cylindrical body 221. The detachable connection between the cylindrical body 221 and the cylindrical bottom 222 can be achieved by means including, but not limited to, snap-fit connections.
[0057] In one embodiment, such as Figure 3As shown, the bottom of the cylinder 222 is provided with a connecting member 223 that connects to the first rotating part 24. The connecting member 223 is made of metal to ensure strength and connection reliability. In a specific embodiment, the bottom of the cylinder 222 is made of plastic, and the bottom of the cylinder 222 and the connecting member 223 are injection molded into an integral structure.
[0058] In one embodiment, combined Figure 2 and Figure 3 The cup assembly 20 also includes a cup lid 29 covering the cup body 21. One of the cup lid 29 and the cylindrical body 221 has a positioning shaft 291, and the other has a positioning hole 2210. The positioning shaft 291 is inserted into the positioning hole 2210, and the two are positioned and engaged. The positioning shaft 291 is coaxial with the filter section 22. This arrangement, through the positioning engagement between the cylindrical body 221 and the cup lid 29, prevents the cylindrical body 221 from moving upwards during filtration and reduces the amount of shaking and noise when the filter section 22 rotates. In this embodiment, the cup lid 29 has a positioning shaft 291, and the cylindrical body 221 has a positioning hole 2210.
[0059] In one embodiment, the cylinder body 221 is further provided with a handle 224 for the user to hold, which facilitates the user's disassembly and assembly of the cylinder body 221, thereby facilitating individual cleaning of the cylinder body 221. A positioning hole 2210 is provided in the handle 224. This simplifies the placement of the positioning hole 2210. Of course, in embodiments where the cylinder body 221 is provided with a positioning shaft 291, the positioning shaft 291 can also be located in the handle 224.
[0060] Please refer to Figure 4 , Figure 4 This is a schematic diagram of a portion of the structure of the cup assembly 20.
[0061] In one embodiment, the top of the cylinder 221 is provided with a feeding port 2211, through which food is added to the filter chamber 220. Figure 4 In the illustrated embodiment, a handle 224 is located at the feeding port 2211 of the cylinder body 221. The specific structure of the handle 224 is not limited. In this embodiment, the handle 224 includes multiple connecting ribs 2241. One end of each connecting rib 2241 is connected to the cylinder body 221, and the other end is connected to each other. The gap between two adjacent connecting ribs 2241 forms the feeding port 2211. A positioning hole 2210 is provided at the junction of the multiple connecting ribs 2241. This can improve the strength of the handle 224, extend the service life of the handle 224, and also make it easier for the user to grip.
[0062] Please refer to Figure 5 , Figure 5 This is another exploded view of the blender 100.
[0063] In one embodiment, the cup assembly 20 includes a bottom module 30 detachably connected to the bottom of the cup body 21. The first rotating part 24, the second rotating part 25, and the crushing part 23 are all integrated into the bottom module 30, with the crushing part 23 exposed outside the bottom module 30. This configuration allows the bottom module 30 to be detached from the cup body 21, enabling direct cleaning of the exposed crushing part 23.
[0064] Specifically, the bottom of the cylinder 222 is also integrated into the bottom module 30, forming the bottom of the filter chamber 220. The housing 27 and the transmission part 26 housed in the housing 27 are also integrated into the bottom module 30, and the second rotating part 25 extends from the bottom of the bottom module 30 and engages with the lower clutch 13 of the main unit 10.
[0065] Please combine Figure 2 and Figure 5 The cup body 21 is also equipped with a juice outlet channel 211 and a juice outlet valve 212 for closing and opening the juice outlet channel 211. The juice outlet channel 211 is connected to the cup cavity 210 to allow juice to be discharged. The juice outlet channel 211 can be tilted downwards to avoid juice accumulation. The juice outlet valve 212 can prevent leakage or contamination of the juice outlet, improving food safety.
[0066] Please refer to Figure 6 and Figure 7 , Figure 6 This is a schematic diagram of the cup body 21 in an inverted state. Figure 7 This is a schematic diagram of the bottom module 30.
[0067] In one embodiment, the bottom module 30 and the cup body 21 are detachably connected by a screw-on mechanism. Specifically, the bottom module 30 is provided with a first latch 31, and the cup body 21 is provided with a second latch 213. Rotation of the bottom module 30 relative to the cup body 21 allows the first latch 31 and the second latch 213 to engage. In the engaged state, the first latch 31 and the second latch 213 remain relatively fixed along the axial direction of the first rotating part 24. One of the first latch 31 and the second latch 213 can be configured as a straight latch and the other as a figure-7 latch. After screwing, the horizontal portion of the straight latch and the figure-7 latch abuts against each other, achieving axial limiting. Multiple first latches 31 and multiple second latches 213 can be provided, with each pair engaging in a one-to-one correspondence.
[0068] In one embodiment, please combine Figure 5 and Figure 6The main housing 11 and the cup body 21 are detachably connected by screwing. Specifically, one of the main housing 11 and the cup body 21 is provided with a slot 110, and the other is provided with a third buckle 214. The third buckle 214 is screwed into the slot 110 from the opening, realizing the assembly and axial positioning of the cup body 21 and the main housing 10. Multiple third buckles 214 and slots 110 can be provided respectively, and they are engaged one-to-one.
[0069] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of protection of this application.
Claims
1. A cup assembly for a blender, characterized in that, include: The cup body (21) forms a cup cavity (210); Controlled rotatable first rotating part (24) and second rotating part (25); A filter section (22) is disposed inside the cup cavity (210) and connected to the first rotating part (24). The filter section (22) forms a filter cavity (220) for containing food ingredients. The pulverizing part (23) is disposed inside the filter chamber (220) and connected to the second rotating part (25).
2. The cup assembly according to claim 1, characterized in that, The first rotating part (24) surrounds the outside of the second rotating part (25) in its entirety or in part, and is configured to be able to rotate relative to the second rotating part (25). The first rotating part (24) and the second rotating part (25) are coaxial.
3. The cup assembly according to claim 1, characterized in that, The cup assembly (20) further includes a transmission part (26), one of the first rotating part (24) and the second rotating part (25) is connected upstream of the transmission part (26) and is configured as a torque input part to input torque to the transmission part (26), and the other is connected downstream of the transmission part (26) and is configured as an output part to output torque from the transmission part (26).
4. The cup assembly according to claim 3, characterized in that, The transmission unit (26) includes a driving part (261), an intermediate part (262) and a driven part (263) connected in sequence. The driving part (261) is connected to the input part and rotates coaxially. The driven part (263) is connected to the output part and rotates coaxially. The output part also surrounds the outside of the input part, is coaxial with the input part and can rotate relative to it.
5. The cup assembly according to claim 3, characterized in that, The cup assembly (20) also includes a housing (27) that houses the transmission part (26), the top of the housing (27) forming the bottom of the cup cavity (210), and the first rotating part (24) and the second rotating part (25) are rotatably mounted on the housing (27).
6. The cup assembly according to claim 5, characterized in that, The first rotating part (24) is the output part, and the second rotating part (25) is the input part. The housing (27) is provided with a coaxial first hole (27a) and a second hole (27b). One axial end of the second rotating part (25) extends out from the first hole (27a) as a torque input end, and the other end extends out from the second hole (27b) into the filter chamber (220) and is connected to the pulverizing part (23). One axial end of the first rotating part (24) extends out from the second hole (27b) into the cup chamber (210) and is connected to the filter part (22).
7. The cup assembly according to claim 6, characterized in that, The first rotating part (24) is hollow, and the second rotating part (25) extends into the filter cavity (220) through the hollow part of the first rotating part (24).
8. The cup assembly according to any one of claims 1 to 7, characterized in that, The filter section (22) includes a cylindrical body (221) and a cylindrical bottom (222) surrounding the filter cavity (220). The cylindrical bottom (222) is detachably connected to the cylindrical body (221). The cylindrical body (221) includes a filter screen with holes. The cylindrical bottom (222) is connected to the first rotating part (24).
9. The cup assembly according to claim 8, characterized in that, The cup assembly (20) also includes a cup lid (29), one of which, the cup lid (29) and the cylinder body (221), is provided with a positioning shaft (291), and the other is provided with a positioning hole (2210). The positioning shaft (291) is inserted into the positioning hole (2210), and the positioning shaft (291) is coaxial with the filter part (22).
10. The cup assembly according to claim 9, characterized in that, The cylinder body (221) is also provided with a handle (224) for the user to hold, and the positioning shaft (291) or the positioning hole (2210) is provided on the handle (224).
11. The cup assembly according to claim 10, characterized in that, The cylinder body (221) is provided with a feeding port (2211) for adding food ingredients. The handle (224) includes multiple connecting ribs (2241) located at the feeding port (2211). One end of each connecting rib (2241) is connected to the cylinder body (221), and the other end is connected to each other. The gap between two adjacent connecting ribs (2241) forms the feeding port (2211). The positioning shaft (291) or the positioning hole (2210) is located at the junction of the multiple connecting ribs (2241).
12. The cup assembly according to any one of claims 1 to 7, characterized in that, The pulverizing section (23) rotates in a different direction than the filtering section (22); and / or The rotational speeds of the pulverizing section (23) and the filtering section (22) are different.
13. A stirring press, characterized in that, include: The main unit (10) includes a drive shaft capable of outputting torque; The cup assembly (20) as described in any one of claims 1 to 12 is assembled to the host (10), and one of the first rotating part (24) and the second rotating part (25) is engaged with the drive shaft.
14. The agitator according to claim 13, characterized in that, The cup assembly (20) also includes a bottom module (30) detachably connected to the bottom of the cup body (21), wherein the first rotating part (24), the second rotating part (25) and the crushing part (23) are integrated into the bottom module (30), and the crushing part (23) is exposed outside the bottom module (30).