Laundry treating apparatus
By designing a structure in the garment processing equipment that connects the agitator to the impeller, and utilizing snap-fit holes and positioning slots to achieve quick installation and disassembly, the problem of complex agitator connection in existing technologies is solved, installation efficiency is improved, and multiple washing modes can be switched.
Patent Information
- Application Number
- CN202520333533.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-27
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-02-27
AI Technical Summary
In existing garment processing equipment, the connection between the stirring rod and the housing is complex, resulting in complicated and inefficient replacement operations.
It adopts a structural design that connects the stirring component and the impeller. The stirring component and the impeller are driven to rotate by the motor shaft. Quick installation and disassembly are achieved by using snap-fit holes and positioning slots, and it supports switching between stirring washing and impeller washing modes.
The installation of the mixing components has been simplified, improving installation efficiency and enabling flexible switching between different washing modes to meet diverse washing needs of users.
Smart Images

Figure CN223766588U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of household appliance technology, and in particular to a clothing processing device. Background Technology
[0002] Clothing drying equipment is a household appliance that uses electrical energy to generate mechanical action to dry clothes. As consumers' living standards improve, their requirements for clothing drying equipment are also increasing.
[0003] In related garment processing equipment, the garment processing equipment typically includes a housing and a drum assembly. The drum assembly is located inside the housing and includes an outer drum and an inner drum. The inner drum forms a garment processing chamber and is rotatably disposed inside the outer drum.
[0004] In existing garment processing equipment, washing methods can include agitation washing and pulsator washing. Compared to pulsator washing, agitation washing requires an agitator to be installed inside the garment processing chamber. This agitator stirs the water within the chamber, ensuring thorough contact between the clothes and the washing water, thus improving washing efficiency. However, in existing garment processing equipment, the connection between the agitator and the chamber is relatively complex, making agitator replacement cumbersome and inefficient. Utility Model Content
[0005] The purpose of this invention is to provide a garment processing device that optimizes the structure of garment processing devices in related technologies, simplifies the installation of the mixing components, and improves the installation efficiency of the mixing components.
[0006] The purpose of this utility model is not limited to the purposes mentioned above. Those skilled in the art can clearly understand other purposes not mentioned through the following description.
[0007] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:
[0008] According to one aspect of the present invention, a garment processing device is provided, comprising: a housing configured as the outer shell of the garment processing device; a cylindrical assembly disposed within the housing; a garment processing chamber disposed within the cylindrical assembly; a pulsator disposed within the garment processing chamber; a mounting cavity recessed downwards on the top surface of the pulsator; a motor shaft rotatably disposed at the bottom of the cylindrical assembly, the upper end of the motor shaft being fixed to the pulsator; and a stirring assembly with its bottom extending into the mounting cavity; a first snap-fit hole being provided at the bottom of the stirring assembly; wherein the top end of the motor shaft extends into the mounting cavity and into the first snap-fit hole to limit the bottom of the stirring assembly within the mounting cavity.
[0009] One of the above technical solutions has the following advantages or beneficial effects: The stirring assembly can be connected to the impeller, so that when the motor shaft drives the impeller to rotate, the stirring assembly can rotate with the impeller within the garment processing chamber, thereby enabling the stirring assembly to stir the garments in the chamber. Furthermore, when installing the stirring assembly, simply align the top of the motor shaft with the first snap-fit hole and press the stirring assembly to achieve connection between the motor shaft and the first snap-fit hole. This allows for quick connection between the stirring assembly and the impeller, simplifying the installation structure and making the installation operation more convenient, thus improving installation efficiency.
[0010] In some embodiments of this application, the bottom of the stirring assembly is detachably installed in the mounting cavity; when the bottom of the stirring assembly extends into the mounting cavity, the top end of the motor shaft can extend into the first snap-fit hole.
[0011] One of the above technical solutions has the following advantages or beneficial effects: The detachable connection between the agitator and the mounting cavity allows the garment processing equipment to have both an agitation washing mode and a pulsator washing mode. Specifically, when the agitator is installed in the mounting cavity, the garment processing equipment is in agitation washing mode. In this mode, the rotation of the motor shaft drives the agitator to rotate and agitate, ensuring that the clothes in the garment processing cavity are thoroughly agitated, meeting the user's high-cleanliness requirements. When the agitator is detached from the mounting cavity, the garment processing equipment is in pulsator washing mode. In this mode, the rotation of the motor shaft drives the pulsator to rotate, which then agitates the clothes. Therefore, the detachable agitator allows for switching between two washing modes, meeting the user's needs.
[0012] In some embodiments of this application, the bottom surface of the stirring assembly is provided with a positioning post protruding downwards; the bottom wall of the mounting cavity is provided with a positioning groove corresponding to the positioning post; when the bottom of the stirring assembly extends into the mounting cavity, the positioning post extends into and is positioned in the positioning groove.
[0013] One of the above technical solutions has the following advantages or beneficial effects: when the bottom of the stirring component extends into the installation cavity, the positioning column can extend into and be positioned in the positioning groove, thereby realizing the connection between the stirring component and the impeller. Then, when the motor shaft drives the impeller to rotate, the impeller can drive the stirring component to rotate synchronously through the positioning groove and the positioning column, so as to realize the stirring of the clothing in the clothing processing cavity.
[0014] In some embodiments of this application, multiple positioning slots are provided, and the multiple positioning slots are arranged circumferentially around the periphery of the motor shaft at intervals; multiple positioning posts are provided, and the multiple positioning posts are arranged one-to-one with the multiple positioning slots.
[0015] One of the above technical solutions has the following advantages or beneficial effects: when the motor shaft drives the impeller to rotate, the impeller can simultaneously drive the stirring assembly to rotate synchronously through multiple positioning slots and multiple positioning columns, thereby improving the stability of the transmission connection between the impeller and the stirring assembly.
[0016] In some embodiments of this application, the stirring assembly includes: a stirring member, the bottom of which extends into the mounting cavity; stirring blades provided on the outer peripheral wall of the stirring member; a filter cavity provided inside the stirring member, and filter holes provided on the outer peripheral wall of the stirring member communicating with the filter cavity and the clothing processing cavity; a first snap-fit member, the first snap-fit member being disposed at the bottom inside the stirring member, and a first snap-fit hole being formed inside the first snap-fit member; when the stirring member extends into the mounting cavity, the top end of the motor can extend into the stirring member and into the first snap-fit hole.
[0017] One of the above technical solutions has the following advantages or beneficial effects: when the bottom of the stirring component extends into the mounting cavity, the top of the motor shaft can extend into the stirring component and into the first snap-fit hole from the bottom. Therefore, the connection between the motor shaft and the first snap-fit component can be quickly achieved using the first snap-fit hole, thereby realizing the connection between the impeller and the stirring assembly, simplifying the installation operation of the stirring assembly and improving the installation efficiency of the stirring assembly.
[0018] In some embodiments of this application, the stirring assembly further includes: a first pressing member, the first pressing member being movably disposed on the top of the first snap-fit member; the bottom of the first pressing member having a downwardly extending first extrusion arm; the top of the first pressing member being pressed so that the first extrusion arm can extend into the first snap-fit hole and open the inner wall of the first snap-fit hole.
[0019] One of the above technical solutions has the following advantages or beneficial effects: the first pressing member can quickly separate the first snap-fit member from the motor shaft, thereby simplifying the disassembly operation between the first snap-fit member and the motor shaft, and thus improving the installation and disassembly efficiency between the first snap-fit member and the motor shaft.
[0020] In some embodiments of this application, the first snap-fit hole includes a first hole segment and a second hole segment connected vertically. The diameter of the first hole segment gradually decreases from top to bottom, and the diameter of the second hole segment gradually increases from top to bottom. When the bottom of the stirring component extends into the mounting cavity, the top end of the motor shaft can pass through the second hole segment and extend into the first hole segment.
[0021] One of the above technical solutions has the following advantages or beneficial effects: the first hole segment and the second hole segment can be used to achieve the snap-fit of the motor shaft, thereby improving the stability of the motor shaft in the first snap-fit hole.
[0022] In some embodiments of this application, the top of the stirring member has an opening communicating with the filter chamber; the first snap-fit member is disposed at the bottom of the filter chamber, and the top of the first pressing member protrudes from the top surface of the first snap-fit member and is exposed in the filter chamber.
[0023] One of the above technical solutions has the following advantages or beneficial effects: As such, the user can insert into the filter chamber through the opening at the top of the stirring member and press the top of the first pressing member so that the first pressing member can move downward, so that the first extrusion arm opens the first snap-fit hole, thereby allowing the motor shaft to separate from the first snap-fit hole.
[0024] In some embodiments of this application, an elastic element is provided between the first pressing arm and the motor shaft. One end of the elastic element abuts against the first pressing arm, and the other end of the elastic element abuts against the motor shaft. The elastic element is used to drive the first pressing member to move upward so that the top of the first pressing member protrudes from the top surface of the first snap-fit member.
[0025] One of the above technical solutions has the following advantages or beneficial effects: When the first pressing member is pressed, the first pressing arm moves downward, thereby compressing the first elastic member. The first pressing arm opens the first snap-fit hole, allowing the motor shaft to separate from the first snap-fit hole. When the first pressing member is released, the first elastic member can drive the first pressing member upward, so that the top of the first pressing member is above the top surface of the first snap-fit member, and the top of the first pressing member is exposed in the filter chamber, thereby completing the reset of the first pressing member. Thus, the elastic force of the first elastic member can automatically complete the reset of the first pressing member and support the first pressing member to protrude above the top surface of the first snap-fit member when not pressed.
[0026] In some embodiments of this application, the garment processing device further includes: a pulsator cover assembly, which is detachably disposed on the mounting cavity; the pulsator cover assembly includes: a cover body disposed on the mounting cavity; a second snap-fit member extending into the mounting cavity; a second snap-fit hole formed inside the second snap-fit member; a second pressing member movably disposed on the top of the second snap-fit member; the bottom of the second pressing member having a downwardly extending second squeezing arm; wherein, when the cover body is disposed on the mounting cavity, the top end of the motor shaft can extend into the second snap-fit hole; the top of the second pressing member is used to be pressed so that the second squeezing arm can extend into the second snap-fit hole and open the inner wall of the second snap-fit hole.
[0027] One of the above technical solutions has the following advantages or beneficial effects: By utilizing the second pressing member, the second snap-fit member can be quickly separated from the motor shaft, simplifying the disassembly operation and thus improving the installation and disassembly efficiency. Simultaneously, by separating the second snap-fit member from the motor shaft, the impeller cover assembly can be separated from the motor shaft, allowing the impeller cover assembly to be removed. Then, the bottom of the agitator can be inserted into the installation cavity, enabling the garment processing equipment to switch from impeller washing mode to agitator washing mode to meet the user's needs for different washing modes. Attached Figure Description
[0028] Figure 1 This is a structural schematic diagram of one embodiment of the present utility model.
[0029] Figure 2 yes Figure 1 A sectional view.
[0030] Figure 3 yes Figure 2 A schematic diagram of the middle section.
[0031] Figure 4 yes Figure 3 A structural diagram from another perspective.
[0032] Figure 5 yes Figure 4 A schematic diagram of the middle section.
[0033] Figure 6 yes Figure 4 A schematic diagram of the middle section.
[0034] Figure 7 yes Figure 3 A sectional view.
[0035] Figure 8 yes Figure 7 Enlarged view of part A in the middle.
[0036] Figure 9 yes Figure 5 The exploded diagram.
[0037] Figure 10 yes Figure 9 Schematic diagram of the middle section.
[0038] Figure 11 yes Figure 10 The exploded diagram.
[0039] Figure 12 This is a schematic diagram of the impeller cover assembly installed on the impeller disc.
[0040] Figure 13 yes Figure 12 A structural diagram from another perspective.
[0041] Figure 14 yes Figure 12 A sectional view.
[0042] Figure 15 yes Figure 14 Enlarged view of section B.
[0043] The reference numerals in the attached drawings are explained as follows: 1. Housing; 11. Door cover; 2. Drum assembly; 20. Clothing processing chamber; 21. Outer drum; 22. Inner drum; 23. Impeller; 231. Mounting chamber; 232. Water-dispensing rib; 233. Positioning groove; 3. Motor shaft; 31. Boss; 4. Agitator assembly; 41. First snap-fit component; 411. First snap-fit hole; 4111. First hole section; 4112. Second hole section; 4113. Stepped wall; 412. Buckle; 413. First pressing chamber; 414. First pressing port; 415. First sliding groove; 42. Agitator component; 421. Agitator blade; 422. Filter chamber; 4 23. Filter hole; 424. Opening; 425. Positioning post; 426. Bayonet; 43. First pressing element; 431. First extrusion arm; 4311. First limiting cavity; 432. First locking protrusion; 44. First elastic element; 5. Impeller cover assembly; 51. Cover body; 52. Second locking element; 521. Second locking hole; 5211. Third hole segment; 5212. Fourth hole segment; 522. Second pressing cavity; 523. Second pressing port; 524. Second sliding groove; 53. Second pressing element; 531. Second extrusion arm; 5311. Second limiting cavity; 532. Second locking protrusion; 54. Second elastic element. Detailed Implementation
[0044] Typical embodiments embodying the features and advantages of this utility model will be described in detail in the following description. It should be understood that this utility model can have various variations in different embodiments, all of which do not depart from the scope of this utility model, and the descriptions and illustrations therein are for illustrative purposes only and not intended to limit this utility model.
[0045] In the description of this application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0046] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the stated features. In the description of this application, "a plurality of" means two or more, unless otherwise explicitly specified.
[0047] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0048] In existing garment processing equipment, washing methods can include agitation washing and pulsator washing. Compared to pulsator washing, agitation washing requires an agitator to be installed inside the garment processing chamber. This agitator stirs the water within the chamber, ensuring thorough contact between the clothes and the washing water, thus improving washing efficiency. However, in existing garment processing equipment, the connection between the agitator and the chamber is relatively complex, making the connection and operation of the agitator cumbersome.
[0049] For ease of explanation, unless otherwise specified, the descriptions of up, down, left, right, front, and back directions in this article are based on the state of the garment processing equipment in use. The door of the garment processing equipment is the front, the opposite direction is the back, the vertical direction is up and down, and the horizontal direction is left and right.
[0050] Figure 1 This is a structural schematic diagram of one embodiment of the present utility model.
[0051] Please see Figure 1 As shown, in some embodiments, the garment processing device provided by this utility model may include a housing 1. The housing 1 may be configured as an outer shell of the garment processing device. The housing 1 may typically have a hollow cuboid structure. It should be noted that in other embodiments, the external shape of the housing 1 may be designed as needed, and is not limited here. The interior of the housing 1 may be used to provide installation space.
[0052] In some embodiments, a clothing inlet (not shown in the figure) may be provided on the top side wall of the housing 1. This clothing inlet can connect to the internal space of the housing 1. Clothes can be placed into the housing 1 through the clothing inlet for washing.
[0053] like Figure 1As shown, in some embodiments, a door cover 11 may be provided on the top side wall of the housing 1. The door cover 11 can be used to open and close the clothing inlet on the top side wall of the housing 1, thereby opening and closing the space inside the housing 1 through the door cover 11.
[0054] In some embodiments, the door cover 11 and the housing 1 can be connected by a hinge. The door cover 11 can rotate about the axis of the hinge, thereby opening and closing the door cover 11 of the clothing handling equipment, and thus opening and closing the clothing inlet on the top surface of the housing 1.
[0055] Figure 2 yes Figure 1 A sectional view.
[0056] Please see Figure 2 In some embodiments, the garment processing device may include a drum assembly 2. The drum assembly 2 may be disposed within the housing 1. The drum assembly 2 may be disposed within the mounting space of the housing 1. The interior of the drum assembly 2 may have a garment processing chamber 20. The garment processing chamber 20 can be used to hold garments to be washed.
[0057] In some embodiments, the top of the tubular assembly 2 may have a clothing loading / unloading port (not shown in the figure). The clothing loading / unloading port may be connected to the clothing processing chamber 20. The clothing loading / unloading port may be arranged directly opposite the clothing inlet on the top surface of the housing 1. When the door cover 11 is opened, clothing can enter the clothing processing chamber 20 sequentially from the clothing inlet of the housing 1 and the clothing loading / unloading port of the tubular assembly 2.
[0058] In some embodiments, the tub assembly 2 may include an outer tub 21. The outer tub 21 may be disposed inside the housing 1. The outer tub 21 may be disposed within the mounting space of the housing 1. The outer tub 21 may be a shell structure with a top opening. The opening of the outer tub 21 may be arranged directly opposite the clothing loading / unloading opening on the top surface of the housing 1. The outer tub 21 may be configured as a tub for containing washing water. The internal space of the outer tub 21 may be used to hold washing liquid.
[0059] In some embodiments, the tubular assembly 2 may include an inner tubing 22. The inner tubing 22 is rotatably disposed within the interior space of the outer tubing 21. A garment handling chamber 20 may be formed inside the inner tubing 22. The top of the inner tubing 22 may have an opening. The opening of the inner tubing 22 may be the top opening 424 of the garment handling chamber 20. The opening of the inner tubing 22 may be directly opposite the opening of the outer tubing 21. The opening of the inner tubing 22, the opening of the outer tubing 21, and the garment loading / unloading port may be directly opposite each other. When the door cover 11 is opened, garments can sequentially enter the garment handling chamber 20 from the garment loading / unloading port of the housing 1, the opening of the outer tubing 21, and the opening of the inner tubing 22.
[0060] In some embodiments, the opening of the inner tube 22 can be the clothing loading port of the tube assembly 2. When the door cover 11 is opened, clothing can enter the clothing processing chamber 20 sequentially from the clothing loading port of the housing 1 and the clothing loading / unloading port of the inner tube 22.
[0061] In some embodiments, the outer cylinder 21 and the inner cylinder 22 can be arranged coaxially. The inner cylinder 22 can rotate about the axis of the outer cylinder 21. A hole (not shown in the figure) can be formed on the outer wall of the inner cylinder 22. Water in the outer cylinder 21 can enter the inner cylinder 22 through the hole to wash the clothes in the clothes handling chamber 20 of the inner cylinder 22.
[0062] Figure 3 yes Figure 2 A schematic diagram of the middle section.
[0063] Please see Figure 3 As shown, in some embodiments, a drive device (not shown) may be provided inside the housing 1. The drive device may be located inside the housing 1. The drive device may be connected to the inner drum 22 for transmission. The drive device can drive the inner drum 22 to rotate relative to the housing 1, thereby realizing the drying, washing or dehydration functions of the clothes processing chamber 20 in the inner drum 22.
[0064] In some embodiments, the driving device may include a motor shaft 3. The motor shaft 3 may be rotatably connected to the axis of the housing 1. The motor shaft 3 may be coaxially connected to the axis of the inner cylinder 22. The driving device may drive the motor shaft 3 to rotate, thereby causing the inner cylinder 22 to rotate inside the outer cylinder 21.
[0065] In some embodiments, the driving device may include a drive motor (not shown in the figure). The drive motor may be housed inside the housing 1. The output shaft of the drive motor may be connected to the motor shaft 3 for transmission. Thus, when the drive motor is working, the output shaft of the drive motor can drive the motor shaft 3 to rotate, thereby driving the inner cylinder 22 to rotate inside the housing 1 via the motor shaft 3.
[0066] Figure 4 yes Figure 3 A structural diagram from another perspective.
[0067] Please see Figure 3 and Figure 4 As shown, in some embodiments, the garment processing device may include a pulsator 23. The pulsator 23 may be disposed at the bottom of the tubular assembly 2. The pulsator 23 may be disposed within the garment processing chamber 20. The pulsator 23 may rotate within the garment processing chamber 20 to drive the water flow within the garment processing chamber 20 to rotate.
[0068] In some embodiments, the impeller 23 may have a mounting cavity 231. The mounting cavity 231 may be formed by a downward recess from the top surface of the impeller 23. The mounting cavity 231 may be coaxially opposite to the motor shaft 3. The upper end of the motor shaft 3 may extend into the mounting cavity 231. The upper end of the motor shaft 3 may be fixed to the impeller 23 so that the impeller 23 can be rotated by the motor shaft 3. As the impeller 23 rotates, it drives the water flow in the inner drum 22 to rotate, forming a vortex that rotates sometimes counterclockwise and sometimes clockwise. The vortex causes the clothes in the inner drum 22 to rotate and tumble, thereby washing the stains on the clothes.
[0069] In some embodiments, the impeller 23 may be provided with a water-dispersing rib 232. The water-dispersing rib 232 protrudes from the top surface of the impeller 23. When the impeller 23 rotates, the water-dispersing rib 232 can agitate the water flow in the clothing processing chamber 20, thereby rubbing the clothes in the clothing processing chamber 20.
[0070] In some embodiments, the water-dispersing rib 232 may extend radially along the impeller 23. The water-dispersing rib 232 may extend from the central region of the impeller 23 to the edge region of the impeller 23. Thus, the water-dispersing rib 232 can improve the stirring effect of the water flow in the garment processing chamber 20.
[0071] In some embodiments, multiple water-repelling ribs 232 may be provided. The multiple water-repelling ribs 232 may be distributed at intervals along the circumference of the impeller 23. When the impeller 23 rotates, the multiple water-repelling ribs 232 can simultaneously rub the clothes in the clothes processing chamber 20, thereby further improving the rubbing effect of the clothes.
[0072] Figure 5 yes Figure 4 A schematic diagram of the middle section. Figure 6 yes Figure 4 A schematic diagram of the middle section.
[0073] Please see Figure 5 and Figure 6 As shown, in some embodiments, the garment processing device may include an agitation assembly 4. The bottom of the agitation assembly 4 may extend into the mounting cavity 231 so that the agitation assembly 4 is mounted on the impeller 23. The impeller 23 may drive the agitation assembly 4 to rotate so that the agitation assembly 4 is rotatably disposed within the garment processing cavity 20.
[0074] Figure 7 yes Figure 3 A sectional view. Figure 8 yes Figure 7 Enlarged view of part A in the middle.
[0075] Please see Figure 7 and Figure 8As shown, in some embodiments, the stirring assembly 4 may have a first snap-fit hole 411. The first snap-fit hole 411 may be located at the bottom of the stirring assembly 4. The top end of the motor shaft 3 may extend into the mounting cavity 231 and into the first snap-fit hole 411 to limit the bottom of the stirring assembly 4 within the mounting cavity 231, thereby connecting the stirring assembly 4 and the impeller 23. Thus, by connecting the stirring assembly 4 to the impeller 23, when the motor shaft 3 drives the impeller 23 to rotate, the stirring assembly 4 can rotate with the impeller 23 within the clothing processing cavity 20, thereby enabling the stirring assembly 4 to stir the clothing in the clothing processing cavity 20. Meanwhile, when installing the stirring assembly 4, simply align the top of the motor shaft 3 with the first snap-fit hole 411 and press the stirring assembly 4 to achieve the connection between the motor shaft 3 and the first snap-fit hole 411. This allows for a quick connection between the stirring assembly 4 and the impeller 23, making the connection structure between the stirring assembly 4 and the impeller 23 simpler and the connection operation more convenient, thereby improving installation efficiency.
[0076] In some embodiments, the bottom of the agitator 4 is detachably installed in the mounting cavity 231. When the bottom of the agitator 4 extends into the mounting cavity 231, the top end of the motor shaft 3 can extend into the first snap-fit hole 411, thereby realizing the installation between the agitator 4 and the impeller 23. Thus, by utilizing the detachable connection between the agitator 4 and the mounting cavity 231, the garment processing device can have both an agitation washing mode and an impeller washing mode. Specifically, when the agitator 4 is installed in the mounting cavity 231, the garment processing device is in the agitation washing mode. At this time, when the motor shaft 3 rotates, it can drive the agitator 4 to rotate and agitate, thereby ensuring that the clothes in the garment processing cavity 20 are thoroughly agitated, meeting the user's high washing requirements. When the agitator 4 is detached from the mounting cavity 231, the garment processing device is in the impeller washing mode. At this time, when the motor shaft 3 rotates, it can drive the impeller 23 to rotate, thereby agitating the clothes.
[0077] Please see Figure 3 , Figure 4 and Figure 7 As shown, in some embodiments, the stirring assembly 4 may include a stirring element 42. The stirring element 42 may be disposed within the garment processing chamber 20. The bottom of the stirring element 42 may extend into the mounting cavity 231. A stirring blade 421 may be provided on the outer peripheral wall of the stirring element 42. The stirring blade 421 may be arranged around the outer peripheral wall of the stirring element 42. When the motor shaft 3 drives the impeller 23 to rotate, the impeller 23 can drive the stirring element 42 to rotate, thereby causing the stirring blade 421 on the stirring element 42 to rotate, so as to stir the garment in the garment processing chamber 20.
[0078] In some embodiments, the agitator 42 may have a filter chamber 422 inside. The outer peripheral wall of the agitator 42 may have filter holes 423. The filter holes 423 can connect the filter chamber 422 and the clothing processing chamber 20. When the motor shaft 3 drives the agitator 42 to rotate, water in the clothing processing chamber 20 can enter the filter chamber 422 through the filter holes 423, thereby achieving the filtration of water in the clothing processing chamber 20.
[0079] In some embodiments, the top of the agitator 42 may be provided with an opening 424. The opening 424 may connect the filter chamber 422 and the clothing treatment chamber 20. When the motor shaft 3 drives the agitator 42 to rotate, the water in the clothing treatment chamber 20 can enter the filter chamber 422 through the filter hole 423, and then return to the clothing treatment chamber 20 through the opening 424 at the top of the filter chamber 422, thereby spraying the clothes in the clothing treatment chamber 20 and improving the cleaning effect of the clothes in the clothing treatment chamber 20.
[0080] In some embodiments, the outer peripheral wall of the agitator 42 may be provided with a filter port. A filter cover may be provided on the filter port. The filter cover is detachably attached to the filter port. A filter hole 423 may be provided on the filter cover. The filter hole 423 may connect the clothing processing chamber 20 and the filter chamber 422. Water in the clothing processing chamber 20 may enter the filter chamber 422 through the filter hole 423.
[0081] Please see Figure 5 and Figure 6 As shown, in some embodiments, the bottom of the stirring assembly 4 may be provided with a positioning post 425. The positioning post 425 may be formed by the bottom of the stirring assembly 4 protruding downwards. The positioning post 425 may be formed by the bottom of the stirring member 42 protruding downwards. A positioning groove 233 may be provided on the bottom wall of the mounting cavity 231. The positioning groove 233 may correspond to the positioning post 425, so that when the bottom of the stirring assembly 4 extends into the mounting cavity 231, the positioning post 425 can extend into and be positioned in the positioning groove 233, thereby realizing the connection between the stirring assembly 4 and the impeller 23. Thus, when the motor shaft 3 drives the impeller 23 to rotate, the impeller 23 can drive the stirring assembly 4 to rotate synchronously through the positioning groove 233 and the positioning post 425, so as to realize the stirring of the underwear in the clothing processing cavity 20.
[0082] In some embodiments, multiple positioning grooves 233 may be provided. These multiple positioning grooves 233 may be arranged circumferentially around the periphery of the motor shaft 3 at intervals. Multiple positioning posts 425 may be provided, and each positioning post 425 may correspond one-to-one with a single positioning groove 233. When the motor shaft 3 drives the impeller 23 to rotate, the impeller 23 can simultaneously drive the stirring assembly 4 to rotate synchronously via the multiple positioning grooves 233 and the multiple positioning posts 425, thereby improving the stability of the transmission connection between the impeller 23 and the stirring assembly 4.
[0083] Figure 9 yes Figure 5 The exploded diagram. Figure 10 yes Figure 9 Schematic diagram of the middle section.
[0084] Please see Figure 8 , Figure 9 and Figure 10 As shown, in some embodiments, the stirring assembly 4 may include a first snap-fit member 41. The first snap-fit member 41 may be disposed within the stirring member 42. The first snap-fit member 41 may be disposed at the bottom of the stirring member 42. A first snap-fit hole 411 may be formed within the first snap-fit member 41. The first snap-fit hole 411 may extend vertically through the first snap-fit member 41. When the bottom of the stirring member 42 extends into the mounting cavity 231, the top end of the motor shaft 3 may extend into the stirring member 42 and into the first snap-fit hole 411 from the bottom. Thus, the connection between the motor shaft 3 and the first snap-fit member 41 can be quickly achieved using the first snap-fit hole 411, thereby achieving the connection between the impeller 23 and the stirring assembly 4, simplifying the installation operation of the stirring assembly 4 and improving the installation efficiency of the stirring assembly 4.
[0085] In some embodiments, the inner wall of the first snap-fit hole 411 can be elastic. When the bottom of the stirring member 42 extends into the mounting cavity 231, the top end of the motor shaft 3 can press against the inner wall of the first snap-fit hole 411 and extend into and snap into the first snap-fit hole 411, thereby realizing the connection between the first snap-fit member 41 and the motor shaft 3.
[0086] In some embodiments, the positioning post 425 may also be formed by the bottom of the first snap-fit member 41 protruding downwards. The positioning post 425 may protrude downwards from the bottom of the first snap-fit member 41 onto the bottom surface of the stirring member 42. When the bottom of the stirring assembly 4 extends into the mounting cavity 231, the positioning post 425 at the bottom of the first snap-fit member 41 can extend into and be positioned in the positioning groove 233, thereby achieving the connection between the first snap-fit member 41 and the impeller 23. Thus, when the motor shaft 3 drives the impeller 23 to rotate, the impeller 23 can drive the first snap-fit member 41 to rotate synchronously through the positioning groove 233 and the positioning post 425.
[0087] Please see Figure 9 As shown, in some embodiments, a buckle 412 may protrude from the outer peripheral wall of the first snap-fit member 41. A slot 426 may be formed on the outer peripheral wall of the stirring member 42. The buckle 412 of the first snap-fit member 41 can extend into and engage with the slot 426, thereby achieving the connection between the first snap-fit member 41 and the stirring member 42. When the impeller 23 drives the stirring member 42 to rotate, the stirring member 42 can drive the first snap-fit member 41 to rotate.
[0088] Please see Figure 7 and Figure 8As shown, in some embodiments, the first snap-fit hole 411 may include a first segment 4111 and a second segment 4112. The first segment 4111 may be located above the second segment 4112. The outer diameter of the top end of the motor shaft 3 may be larger than the minimum diameter of the second segment 4112. The bottom of the first segment 4111 may communicate with the top of the second segment 4112. When the bottom of the stirring component 42 extends into the mounting cavity 231, the top end of the motor shaft 3 can press against the inner wall of the second segment 4112 and snap into the first segment 4111, thereby achieving the connection between the motor shaft 3 and the first snap-fit component 41. Thus, the first segment 4111 and the second segment 4112 can be used to snap the motor shaft 3, thereby improving the stability of the motor shaft 3 within the first snap-fit hole 411.
[0089] In some embodiments, the aperture of the second hole segment 4112 gradually decreases from bottom to top. In this case, the aperture at the upper end of the second hole segment 4112 is the minimum aperture of the second hole segment 4112. When the bottom of the stirring member 42 extends into the mounting cavity 231, the top end of the motor shaft 3 can extend from bottom to top into the second hole segment 4112 and gradually press against the inner wall of the second hole segment 4112, allowing the top end of the motor shaft 3 to extend into and engage with the bottom of the first hole segment 4111, thereby achieving the connection between the motor shaft 3 and the first engaging member 41.
[0090] In some embodiments, the diameter of the first hole segment 4111 gradually decreases from top to bottom. In this case, the diameter at the bottom of the first hole segment 4111 is the minimum diameter of the first hole segment 4111. The outer diameter of the top end of the motor shaft 3 can be larger than the minimum diameter of the first hole segment 4111. When the bottom of the stirring member 42 extends into the mounting cavity 231, the top end of the motor shaft 3 can press against the inner wall of the second hole segment 4112 and extend into and engage with the bottom of the first hole segment 4111, thereby achieving the connection between the motor shaft 3 and the first engaging member 41.
[0091] In some embodiments, a stepped wall 4113 may be formed inside the first bore 4111. The stepped wall 4113 may be located at the bottom of the first bore 4111. A boss 31 may be provided at the top of the motor shaft 3. The outer diameter of the boss 31 may be larger than the bore diameter of the stepped wall 4113. When the bottom of the stirring member 42 extends into the mounting cavity 231, the boss 31 can press against the inner wall of the second bore 4112 and extend into and engage with the stepped wall 4113. The bottom surface of the boss 31 can be supported on the top wall of the stepped wall 4113, thereby improving the stability of the engagement between the motor shaft 3 and the first bore 4111.
[0092] Figure 11 yes Figure 10 The exploded diagram.
[0093] Please see Figure 8 , Figure 10 and Figure 11 As shown, in some embodiments, the garment handling device may further include a first pressing member 43. The first pressing member 43 may be disposed on the top of the first snap-fit member 41. The first pressing member 43 may be movably disposed on the top of the first snap-fit member 41. The bottom of the first pressing member 43 has a downwardly extending first squeezing arm 431. The top of the first pressing member 43 is used to be pressed so that the first squeezing arm 431 can extend downward into the first snap-fit hole 411 and gradually expand the inner wall of the first snap-fit hole 411, so that the diameter of the first snap-fit hole 411 gradually increases. When the minimum diameter of the first snap-fit hole 411 is greater than the outer diameter of the motor shaft 3, the top end of the motor shaft 3 can disengage from the first snap-fit hole 411, so that the motor shaft 3 is separated from the first snap-fit member 41. Thus, the separation between the first snap-fit member 41 and the motor shaft 3 can be quickly achieved by using the first pressing member 43, simplifying the disassembly operation between the first snap-fit member 41 and the motor shaft 3, thereby improving the installation and disassembly efficiency between the first snap-fit member 41 and the motor shaft 3.
[0094] In some embodiments, the top surface of the first latching member 41 may be recessed to form a first pressing cavity 413. The bottom of the first pressing cavity 413 may communicate with the first latching hole 411. The top of the first pressing cavity 413 may be provided with a first pressing opening 414. The first pressing member 43 is movably disposed at the first pressing opening 414. The top of the first pressing member 43 may protrude from the top surface of the first latching member 41, that is, the top of the first pressing member 43 may protrude from the first pressing opening 414. Therefore, when the top of the first pressing member 43 is pressed down, the first pressing member 43 can move downward along the first pressing cavity 413, and the bottom end of the first pressing arm 431 can extend into the first snap-fit hole 411 from the first pressing cavity 413, so that the bottom end of the first pressing arm 431 moves downward along the first snap-fit hole 411, gradually pressing the inner wall of the first snap-fit hole 411 and opening the first snap-fit hole 411, so that the diameter of the first snap-fit hole 411 becomes larger, thereby allowing the motor shaft 3 to disengage from the first snap-fit hole 411, and then disassembling the first snap-fit member 41.
[0095] Please see Figure 8 and Figure 11As shown, in some embodiments, a first groove 415 may be provided on the peripheral sidewall of the first pressing cavity 413. The first groove 415 may extend vertically. A first locking protrusion 432 may be provided on the outer peripheral wall of the first pressing member 43. The first locking protrusion 432 may extend into the first groove 415 and slide up and down along the first groove 415. When the top of the first pressing member 43 is pressed, the first locking protrusion 432 of the first pressing member 43 may slide downward along the first groove 415, causing the first pressing arm 431 to move downward and press the inner wall of the first locking hole 411, thereby opening the first locking hole 411 and increasing the diameter of the first locking hole 411, thereby allowing the motor shaft 3 to disengage from the first locking hole 411 and disassemble the first locking member 41.
[0096] In some embodiments, multiple first grooves 415 may be provided. Multiple first grooves 415 may be circumferentially spaced on the peripheral sidewall of the first pressing cavity 413. Multiple first latching protrusions 432 may be provided. Multiple first latching protrusions 432 may be circumferentially spaced on the outer peripheral wall of the first pressing member 43. Multiple first latching protrusions 432 may correspond one-to-one with multiple first grooves 415. When the top of the first pressing member 43 is pressed, the multiple first latching protrusions 432 can slide downwards along the multiple first grooves 415 respectively, thereby causing the first pressing arm 431 to open the first locking hole 411 downwards. Thus, by utilizing the multiple first latching protrusions 432 sliding within the multiple first grooves 415 respectively, the stability of the first pressing member 43 sliding within the first pressing cavity 413 can be improved.
[0097] In some embodiments, the top of the first pressing member 43 is exposed outside the filter chamber 422. The top opening 424 of the stirring member 42 can communicate with the filter chamber 422. Thus, a user can insert into the filter chamber 422 through the opening 424 at the top of the stirring member 42 and press the top of the first pressing member 43 to move the first pressing member 43 downward, so that the first pressing arm 431 opens the first snap-fit hole 411, thereby allowing the motor shaft 3 to separate from the first snap-fit hole 411.
[0098] Please see Figure 8 and Figure 11As shown, in some embodiments, the garment processing device may further include a first elastic element 44. The first elastic element 44 may be disposed between the first pressing arm 431 and the motor shaft 3. The first elastic element 44 may be disposed within the first pressing cavity 413. One end of the first elastic element 44 may abut against the first pressing arm 431. The other end of the first elastic element 44 may abut against the top surface of the motor shaft 3. When the first pressing member 43 is pressed, the first pressing arm 431 moves downward, thereby compressing the first elastic element 44. The first pressing arm 431 opens the first snap-fit hole 411, thereby allowing the motor shaft 3 to separate from the first snap-fit hole 411. When the first pressing member 43 is released, the first elastic element 44 may drive the first pressing member 43 to move upward, so that the top of the first pressing member 43 protrudes beyond the top surface of the first snap-fit member 41, and the top of the first pressing member 43 is exposed in the filter cavity 422, thereby completing the reset of the first pressing member 43. Therefore, the elastic force of the first elastic member 44 can automatically complete the reset of the first pressing member 43, and can support the first pressing member 43 to protrude from the top surface of the first snap-fit member 41 when it is not pressed.
[0099] In some embodiments, the first elastic element 44 can be a compression spring. The compression spring extends along the extension direction of the motor shaft 3. When the first pressing member 43 is pressed, the first pressing arm 431 can compress the compression spring and open the first latching hole 411, at which time the compression spring is in a compressed state. When the user releases the first pressing member 43, the compression spring drives the first pressing member 43 to move upward, so that the top of the first pressing member 43 protrudes from the top surface of the first latching member 41, thereby resetting the first pressing member 43 so that the user can press it again.
[0100] It should be noted that in some other embodiments, the first elastic element 44 can be other elastic structures.
[0101] In some embodiments, a first limiting cavity 4311 is recessed upward on the bottom surface of the first pressing arm 431. The first limiting cavity 4311 extends vertically. The upper end of the first elastic member 44 can extend into the first limiting cavity 4311, so that when the first pressing member 43 is pressed, the first pressing arm 431 can compress the first elastic member 44. When the first pressing member 43 is released, the end of the first elastic member 44 extending into the first limiting cavity 4311 can drive the first pressing member 43 to slide upward. Through the mechanical cooperation of the first limiting cavity 4311 and the first elastic member 44 and the elastic action of the first elastic member 44, the reliability and repeatability of the pressing operation are ensured.
[0102] Figure 12 This is a schematic diagram of the impeller cover assembly 5 installed on the impeller disk 23. Figure 13 yes Figure 12 A structural diagram from another perspective. Figure 14 yes Figure 12 A sectional view.
[0103] Please see Figure 12 , Figure 13 and Figure 14 As shown, in some embodiments, the garment processing device may further include a pulsator cover assembly 5. The pulsator cover assembly 5 can cover the mounting cavity 231. Thus, when the user disassembles the agitator assembly, the pulsator cover assembly 5 can cover the mounting cavity 231, allowing the garment processing device to switch from agitation washing mode to pulsator washing mode to meet the user's needs for different washing modes.
[0104] In some embodiments, when the garment processing device is equipped with the impeller cover assembly 5 and is in the impeller washing mode, the impeller disc 23 in the garment processing device can rotate 1080 degrees.
[0105] It should be noted that in some other embodiments, when the garment processing device is in the pulsator washing mode, the pulsator disk 23 in the garment processing device can rotate 360 degrees or other angles.
[0106] In some embodiments, when the garment processing device is equipped with the agitator 4 and is in the agitation washing mode, the agitator 42 in the garment processing device can rotate 270 degrees.
[0107] It should be noted that in some other embodiments, when the garment processing device is in the agitation washing mode, the agitator 42 in the garment processing device can rotate 180 degrees or other angles.
[0108] In some embodiments, the impeller cover assembly 5 may include a cover 51. The cover 51 may cover the mounting cavity 231. The cover 51 may seal the mounting cavity 231 to isolate the mounting cavity 231 from the garment handling cavity 20.
[0109] Figure 15 yes Figure 14 Enlarged view of section B.
[0110] Please see Figure 14 and Figure 15 As shown, in some embodiments, the impeller cover assembly 5 may include a second snap-fit member 52. The second snap-fit member 52 may have a second snap-fit hole 521 inside. When the cover 51 is placed over the mounting cavity 231, the top end of the motor shaft 3 can extend into the second snap-fit hole 521, and the bottom end of the second snap-fit hole 521 can also extend into the second snap-fit hole 521. Thus, the connection between the motor shaft 3 and the second snap-fit member 52 can be quickly achieved using the second snap-fit hole 521, thereby achieving the connection between the impeller disk 23 and the impeller cover assembly 5.
[0111] In some embodiments, the inner wall of the second snap-fit hole 521 can be elastic. When the cover 51 is placed on the mounting cavity 231, the top end of the motor shaft 3 can press against the inner wall of the second snap-fit hole 521 and extend into the second snap-fit hole 521, thereby realizing the connection between the second snap-fit member 52 and the motor shaft 3.
[0112] In some embodiments, the second snap-fit hole 521 may include a third segment 5211 and a fourth segment 5212. The third segment 5211 may be located above the fourth segment 5212. The bottom of the third segment 5211 may communicate with the top of the fourth segment 5212. When the cover 51 is placed over the mounting cavity 231, the top end of the motor shaft 3 can press against the inner wall of the fourth segment 5212 and snap into the third segment 5211, thereby achieving the connection between the motor shaft 3 and the second snap-fit member 52. Thus, by utilizing the third segment 5211 and the fourth segment 5212, the motor shaft 3 can be snapped into place, thereby improving the stability of the motor shaft 3 within the second snap-fit hole 521.
[0113] In some embodiments, the diameter of the third hole segment 5211 gradually decreases from top to bottom. When the cover 51 is placed inside the mounting cavity 231, the top end of the motor shaft 3 can press against the inner wall of the fourth hole segment 5212 and extend into and engage with the bottom of the third hole segment 5211, thereby achieving the connection between the motor shaft 3 and the second engaging member 52.
[0114] In some embodiments, the diameter of the fourth hole segment 5212 gradually increases from top to bottom. When the cover 51 is placed inside the mounting cavity 231, the top end of the motor shaft 3 can press the inner wall of the fourth hole segment 5212 from bottom to top and extend into and engage with the bottom of the third hole segment 5211, thereby realizing the connection between the motor shaft 3 and the second engaging member 52.
[0115] Please see Figure 14 and Figure 15As shown, in some embodiments, the garment handling device may include a second pressing member 53. The second pressing member 53 is movably disposed on the top of the second latching member 52. The bottom of the second pressing member 53 has a downwardly extending second squeezing arm 531. The top of the second pressing member 53 is pressed so that the second squeezing arm 531 can extend downward into the second latching hole 521 and expand the inner wall of the second latching hole 521, thereby increasing the diameter of the second latching hole 521. This allows the top end of the motor shaft 3 to disengage from the second latching hole 521, separating the motor shaft 3 from the second latching member 52. Thus, the second pressing member 53 enables rapid separation between the second latching member 52 and the motor shaft 3, simplifying the disassembly operation and improving the installation and disassembly efficiency between the second latching member 52 and the motor shaft 3. At the same time, by separating the second snap-fit 52 from the motor shaft 3, the impeller cover assembly 5 is separated from the motor shaft 3, and then the impeller cover assembly 5 is removed. Then, the bottom of the agitator assembly 4 is inserted into the mounting cavity 231 so that the clothing processing equipment can switch from impeller washing mode to agitator washing mode to meet the needs of users for different washing modes.
[0116] In some embodiments, the top surface of the second latching member 52 may be recessed into a second pressing cavity 522. The bottom of the second pressing cavity 522 may communicate with the second latching hole 521. The top of the second pressing cavity 522 may be provided with a second pressing opening 523. The second pressing member 53 is movably disposed at the second pressing opening 523. The top of the second pressing member 53 may protrude from the top surface of the second latching member 52, that is, the top of the second pressing member 53 may protrude from the second pressing opening 523. Therefore, when the top of the second pressing member 53 is pressed down, the second pressing member 53 can move downward along the second pressing cavity 522, and the bottom end of the second pressing arm 531 can extend into the second locking hole 521 from the second pressing cavity 522, so that the bottom end of the second pressing arm 531 moves downward along the second locking hole 521, gradually pressing the inner wall of the second locking hole 521 and opening the second locking hole 521, so that the diameter of the second locking hole 521 becomes larger, thereby allowing the motor shaft 3 to disengage from the second locking hole 521, and then disassembling the second locking member 52.
[0117] Please see Figure 15As shown, in some embodiments, a second groove 524 may be provided on the peripheral sidewall of the second pressing cavity 522. The second groove 524 may extend vertically. A second locking protrusion 532 may be provided on the outer peripheral wall of the second pressing member 53. The second locking protrusion 532 may extend into the second groove 524 and slide up and down along the second groove 524. When the top of the second pressing member 53 is pressed, the second locking protrusion 532 of the second pressing member 53 may slide downward along the second groove 524, causing the second pressing arm 531 to move downward and press the inner wall of the second locking hole 521, thereby opening the second locking hole 521 and increasing the diameter of the second locking hole 521, thereby allowing the motor shaft 3 to disengage from the second locking hole 521, and thus disassembling the second locking member 52.
[0118] In some embodiments, multiple second slide grooves 524 may be provided. Multiple second slide grooves 524 may be circumferentially spaced on the peripheral sidewall of the second pressing cavity 522. Multiple second locking protrusions 532 may be provided. Multiple second locking protrusions 532 may be circumferentially spaced on the outer peripheral wall of the second pressing member 53. Multiple second locking protrusions 532 may be corresponding one-to-one with multiple second slide grooves 524. When the top of the second pressing member 53 is pressed, the multiple second locking protrusions 532 can slide downwards along the multiple second slide grooves 524 respectively, thereby causing the second pressing arm 531 to downwardly open the second locking hole 521. Thus, by utilizing the multiple second locking protrusions 532 sliding within the multiple second slide grooves 524 respectively, the stability of the second pressing member 53 sliding within the second pressing cavity 522 can be improved.
[0119] Please see Figure 14 and Figure 15 As shown, in some embodiments, the garment handling device may further include a second elastic member 54. The second elastic member 54 may be disposed between the second pressing arm 531 and the motor shaft 3. One end of the second elastic member 54 may abut against the second pressing arm 531. The other end of the second elastic member 54 may abut against the top surface of the motor shaft 3. When the second pressing member 53 is pressed, the second pressing arm 531 moves downward, thereby compressing the second elastic member 54. The second pressing arm 531 opens the second locking hole 521, thereby allowing the motor shaft 3 to separate from the second locking hole 521. When the second pressing member 53 is released, the second elastic member 54 may drive the second pressing member 53 to move upward, thereby completing the reset of the second pressing member 53. Thus, the elastic force of the second elastic member 54 can automatically complete the reset of the second pressing member, and can support the second pressing member 53 to protrude from the top surface of the second locking member 52 when not pressed.
[0120] In some embodiments, a second limiting cavity 5311 is recessed upward on the bottom surface of the second pressing arm 531. The second limiting cavity 5311 extends vertically. The upper end of the second elastic member 54 can extend into the second limiting cavity 5311, so that when the second pressing member 53 is pressed, the second pressing arm 531 can compress the second elastic member 54. When the second pressing member 53 is released, the end of the second elastic member 54 extending into the second limiting cavity 5311 can drive the second pressing member 53 to slide upward. Through the mechanical cooperation of the second limiting cavity 5311 and the second elastic member 54 and the elastic action of the second elastic member 54, the reliability and repeatability of the pressing operation are ensured.
[0121] Although the present invention has been described with reference to several typical embodiments, it should be understood that the terminology used is descriptive and exemplary, and not restrictive. Since the present invention can be embodied in many forms without departing from the spirit or essence of the invention, it should be understood that the above embodiments are not limited to any of the foregoing details, but should be interpreted broadly within the spirit and scope defined by the appended claims. Therefore, all variations and modifications falling within the scope of the claims or their equivalents should be covered by the appended claims.
Claims
1.A laundry treating apparatus, characterized by, The utility model provides a clothes treatment device, comprising: a cabinet configured as an external housing of the clothes treatment device; a drum assembly provided in the cabinet, the drum assembly internally provided with a clothes treatment cavity; a pulsator disc provided in the clothes treatment cavity, a top surface of the pulsator disc downwardly concave provided with a mounting cavity; a motor shaft rotatably provided at a bottom of the drum assembly, an upper end of the motor shaft fixed with the pulsator disc; a stirring assembly, a bottom of the stirring assembly inserted into the mounting cavity, the bottom of the stirring assembly provided with a first clamping hole; wherein, the top end of the motor shaft inserted into the mounting cavity and the first clamping hole to limit the bottom of the stirring assembly in the mounting cavity. 2.The laundry treating apparatus of claim 1, wherein The bottom of the stirring assembly is detachably mounted in the mounting cavity; when the bottom of the stirring assembly is inserted into the mounting cavity, the top end of the motor shaft can be inserted into the first clamping hole. 3.The laundry treating apparatus of claim 2, wherein The bottom surface of the stirring assembly is downwardly convex provided with a positioning column; the bottom wall of the mounting cavity is downwardly concave provided with a positioning groove corresponding to the positioning column; when the bottom of the stirring assembly is inserted into the mounting cavity, the positioning column is inserted and positioned in the positioning groove. 4.The laundry treating apparatus of claim 3, wherein The positioning groove is provided with a plurality of positioning grooves circumferentially spaced and arranged around the side of the motor shaft; the positioning column is provided with a plurality of positioning columns corresponding to the plurality of positioning grooves. 5.The laundry treating apparatus according to claim 2, wherein, The stirring assembly comprises: a stirring piece, a bottom of the stirring piece inserted into the mounting cavity, an outer peripheral wall of the stirring piece provided with stirring blades, an inner portion of the stirring piece provided with a filter cavity, the outer peripheral wall of the stirring piece provided with a filter hole communicating the filter cavity and the clothes treatment cavity; a first clamping piece provided at the bottom of the stirring piece, the first clamping hole provided in the first clamping piece; when the stirring piece is inserted into the mounting cavity, the top end of the motor shaft can be inserted into the stirring piece and the first clamping hole. 6.The laundry treating apparatus according to claim 5, wherein, The stirring assembly further comprises: a first pressing piece movably provided at the top of the first clamping piece, the bottom of the first pressing piece having a downwardly extending first extrusion arm; the top of the first pressing piece is pressed to enable the first extrusion arm to be inserted into the first clamping hole and to spread the inner wall of the first clamping hole. 7.The laundry treating apparatus according to claim 6, wherein, The first clamping hole comprises a first hole section and a second hole section connected in sequence, the hole diameter of the first hole section gradually decreases in the upward direction, and the hole diameter of the second hole section gradually increases in the upward direction; when the bottom of the stirring piece is inserted into the mounting cavity, the top end of the motor shaft can be inserted into the first hole section through the second hole section. 8.The laundry treating apparatus according to claim 6, wherein, the top of the stirring piece is provided with an opening communicating the filter cavity; the first clamping piece is provided at the bottom of the filter cavity, the top of the first pressing piece protrudes from the top surface of the first clamping piece and is exposed to the filter cavity. 9.The laundry treating apparatus according to claim 8, wherein, An elastic member is arranged between the first pressing arm and the motor shaft, one end of the elastic member abutting against the first pressing arm, and the other end of the elastic member abutting against the motor shaft; the elastic member is used to drive the first pressing member to move upward, so that the top of the first pressing member protrudes from the top surface of the first clamping member. 10.The laundry treating apparatus according to claim 2, wherein, The laundry treatment apparatus further comprises: A pulsator cover assembly is detachably covered at the mounting cavity; the pulsator cover assembly comprises: A cover is covered at the mounting cavity; A second clamping member extends into the mounting cavity; a second clamping hole is formed in the interior of the second clamping member; A second pressing member is movably arranged at the top of the second clamping member; the bottom of the second pressing member has a second pressing arm extending downward; When the cover is covered at the mounting cavity, the top end of the motor shaft can extend into the second clamping hole; The top of the second pressing member is used to be pressed, so that the second pressing arm can extend into the second clamping hole and support the inner wall of the second clamping hole.