Mop cleaning assembly

CN224612576UActive Publication Date: 2026-08-11XIAN AICHUANGJIA HELPER INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-31
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0003]有鉴于此,本实用新型提供了一种拖把清洗组件,以解决目前用户使用净污分离拖把桶清洁拖把时,无法区分拖把处于清洗状态还是甩水状态的问题

Benefits of technology

[0016] Beneficial effects: By installing a connector at one end of the centrifugal device that is movably connected to the rotating part, it is ensured that when the rotational speed of the rotating part reaches the speed required for the water-throwing operation, the connector rotates under the action of centrifugal force and collides with the feedback part multiple times, thus ensuring that the feedback effect is generated smoothly.

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Abstract

This utility model relates to the field of cleaning appliance technology and discloses a mop cleaning assembly. The mop cleaning assembly includes: a rotating mop, comprising a mop handle and a mop disc, the mop handle driving the mop disc to rotate; a mop bucket, equipped with a rotating component, a centrifugal device, and a feedback component. The rotating component is rotatably disposed within the mop bucket, and the mop disc can extend into the mop bucket and be connected to the rotating component via a transmission connection; the centrifugal device is disposed within the rotating component, and there is a gap between the end of the centrifugal device and the feedback component. In this utility model, when the rotating mop extends into the mop bucket and drives the rotating component to rotate, thereby performing cleaning or wringing operations at different speeds, the centrifugal device disposed within the mop bucket can move relative to the rotating component under the action of centrifugal force as the rotating component rotates. This causes multiple impacts with the feedback component when the speed is sufficiently high, thus producing a feedback effect and reminding the user that the mop is currently in a high-speed wringing state.
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Description

Technical Field

[0001] This utility model relates to the field of cleaning appliance technology, specifically to a mop cleaning component. Background Technology

[0002] Currently used mop buckets that separate clean and dirty parts can switch between washing and wringing states by controlling the mop's rotation speed within the bucket. However, users cannot easily distinguish whether the mop is in washing or wringing mode at the current speed, resulting in a poor user experience. Utility Model Content

[0003] In view of this, the present invention provides a mop cleaning component to solve the problem that users cannot distinguish whether the mop is in the cleaning state or the wringing state when cleaning the mop with a clean and dirty separation mop bucket.

[0004] This utility model provides a mop cleaning component, including:

[0005] A rotary mop includes a mop handle and a mop disc, wherein the mop handle is driven to rotate the mop disc;

[0006] A mop bucket includes a rotating component, a centrifugal device, and a feedback component. The rotating component is rotatably disposed inside the mop bucket, and the mop disc can extend into the mop bucket and be connected to the rotating component in a transmission manner. The centrifugal device is disposed on the rotating component, and there is a gap between the end of the centrifugal device and the feedback component.

[0007] The rotation of the mop disc drives the rotation of the rotating component, which in turn drives the centrifugal device to rotate. The end of the centrifugal device moves relative to the rotating component under the action of centrifugal force, so that the distance between the end of the centrifugal device and the feedback component gradually decreases as the rotation speed of the rotating component increases.

[0008] When the rotational speed of the rotating component increases to the point that the rotational path of the end of the centrifuge device interferes with the feedback component, the end of the centrifuge device will collide with the feedback component multiple times as the rotating component rotates.

[0009] Beneficial Effects: This utility model provides a mop cleaning component. When the rotating mop is inserted into the mop bucket, it drives the rotating component to rotate, thus performing cleaning or wringing operations at different speeds. The centrifugal device located in the mop bucket moves relative to the rotating component under the action of centrifugal force. As the rotational speed of the rotating component increases, the distance between the end of the centrifugal device and the feedback component decreases. Therefore, at a sufficiently high speed, the end of the centrifugal device collides with the feedback component multiple times, thus producing a feedback effect to remind the user that the mop is currently in a high-speed wringing state. Of course, when the rotating mop is inserted into the mop bucket for cleaning, and the end of the centrifugal device does not collide with the feedback component and no feedback effect is produced, the user can also know that the mop is currently in a low-speed cleaning state.

[0010] The specific forms in which the end of the centrifugal device impacts the feedback component multiple times to produce a feedback effect include, but are not limited to: first, producing a sound through impact that is heard by the user; second, producing vibration through impact and transmitting it to the rotating mop via the rotating component, so that the user's hand holding the rotating mop feels the vibration.

[0011] In one optional embodiment, the centrifugal device is fixedly connected to the rotating component. When the mop disc rotates, it drives the rotating component to rotate, which in turn drives the centrifugal device to rotate. The centrifugal device moves relative to the rotating component under the action of centrifugal force.

[0012] Beneficial effects: The centrifuge device is fixedly connected to the rotating component so that the centrifuge device can rotate synchronously with the rotation of the rotating component. The rotation of the rotating component causes the centrifuge device to move relative to the rotating component under the action of centrifugal force, which simplifies the structure of the centrifuge device.

[0013] In one optional embodiment, the centrifuge device includes a connector, one end of which is movably connected to the rotating member;

[0014] The rotation of the mop disc drives the rotation of the rotating component, which in turn drives the centrifugal device to rotate. The connecting component moves relative to the rotating component under the action of centrifugal force, so that the distance between the connecting component and the feedback component gradually decreases as the rotation speed of the rotating component increases.

[0015] When the rotational speed of the rotating component increases to the point that the rotational path of the connecting component interferes with the feedback component, the connecting component and the feedback component collide multiple times as the rotating component rotates.

[0016] Beneficial effects: By installing a connector at one end of the centrifugal device that is movably connected to the rotating part, it is ensured that when the rotational speed of the rotating part reaches the speed required for the water-throwing operation, the connector rotates under the action of centrifugal force and collides with the feedback part multiple times, thus ensuring that the feedback effect is generated smoothly.

[0017] In one optional embodiment, the centrifuge device further includes an abutment member, one end of which is movably connected to the rotating member, and the other end of which is connected to the abutment member;

[0018] When the rotational speed of the rotating component increases to the point that the connecting component rotates, thereby causing the rotational path of the abutment component to interfere with the feedback component, the abutment component and the feedback component will collide multiple times as the rotating component rotates.

[0019] Beneficial effect: By setting an abutment at the end of the connector, the abutment can be driven by the connector to impact the feedback component multiple times, further ensuring that the feedback effect is generated smoothly.

[0020] In one optional embodiment, the centrifugal device is provided with a fixing part on its outer periphery, the fixing part is fixedly connected to the mop bucket, and the feedback element is provided on the fixing part.

[0021] Beneficial effects: A fixing part that is fixedly connected to the mop bucket is set on the outer periphery of the centrifuge device, thereby providing an installation position for the feedback component and ensuring that the feedback component is fixedly set on the outer periphery of the centrifuge device, thus ensuring that the feedback component can be stably impacted by the centrifuge device to produce a feedback effect.

[0022] In one alternative embodiment, the feedback element is a protrusion protruding from the fixing portion and / or a groove formed on the fixing portion;

[0023] When the mop handle drives the mop disc to rotate at a first speed, it drives the rotating component to rotate, thereby driving the centrifugal device to abut against the protrusion and / or the groove to produce a sound.

[0024] When the mop handle drives the mop disc to switch from a first rotation speed to a second speed, the mop disc drives the rotating component to rotate at the second speed, thereby separating the centrifugal device from the protrusion and / or the groove.

[0025] Beneficial effect: The centrifugal device makes a sound by abutting against the protrusions on the fixed part and the grooves on the fixed part, so that the user can quickly receive feedback through hearing to understand the cleaning status of the rotating mop.

[0026] In one optional embodiment, the fixing part is a sleeve fitted around the outer periphery of the centrifugal device, the sleeve is fixedly connected to the mop bucket, and the protrusions and / or the grooves are evenly distributed along the inner wall of the sleeve.

[0027] When the mop handle drives the mop disc to rotate at a first speed, it drives the rotating component to rotate, thereby driving the centrifugal device to rotate along the inner wall of the sleeve, and then rotates along the surface of the protrusion and / or the groove to produce a sound.

[0028] When the mop handle drives the mop disc to switch from a first rotation speed to a second speed, the mop disc drives the rotating component to rotate at the second speed, thereby separating the centrifugal device from the inner wall of the sleeve, and then from the protrusion and / or the groove surface.

[0029] Beneficial effects: The sleeve fitted around the periphery of the centrifugal device provides an installation position for the feedback components, which are designed as protrusions and grooves, while improving the tightness of the components in the mop bucket.

[0030] In one optional embodiment, the mop bucket is further provided with:

[0031] The support base is sleeved on the outer circumference of the rotating component and rotates coaxially with the rotating component. When the mop handle drives the mop disc to rotate, it can drive the rotating component to rotate synchronously with the support base.

[0032] A water pump is movably connected to the support base and has a spray nozzle facing the mop tray.

[0033] A clutch device is provided between the support base and the water pump, enabling the support base and the water pump to be in an engaged state and a disengaged state, respectively.

[0034] When the mop handle drives the mop disc to rotate at a second speed, thereby causing the rotating component and the support base to rotate simultaneously, the clutch engages the support base and the water pump, thereby driving the water pump to spray water from the mop bucket onto the mop disc through the spray nozzle.

[0035] When the mop handle drives the mop disc to rotate from the second speed to the first speed, the clutch device separates the support base from the water pump, causing the water pump to stop working.

[0036] Beneficial effects: The mop bucket is equipped with a support base, a water pump, and a clutch device to work with the mop handle to achieve the washing and wringing operations of the rotating mop.

[0037] In one optional embodiment, the clutch device includes a first clutch component disposed on the support base and a second clutch component disposed on the water pump;

[0038] When the mop handle drives the mop disc to rotate at a second speed, thereby causing the rotating component and the support base to rotate simultaneously, the first clutch and the second clutch engage, thereby driving the water pump to spray water from the mop bucket onto the mop disc through the spray nozzle.

[0039] When the mop handle drives the mop disc to rotate from the second speed to the first speed, the first clutch and the second clutch separate, causing the support base to separate from the water pump, thereby stopping the water pump from working.

[0040] Beneficial effects: By engaging and disengaging the first and second clutch components in the clutch device, the support fixed to the rotating component engages or disengages with the water pump, thereby enabling the washing and spin-drying operations of the rotating mop.

[0041] In one optional embodiment, the water pump is fitted with a water guide shell, and the water guide shell extends toward the mop head with a water guide pipe, and the water nozzle is located at the top of the water guide pipe.

[0042] Beneficial effects: The water guide shell can be set up and the water guide pipe can be used to guide the clean water drawn out by the water pump through centrifugal force, so that the clean water is concentrated and sprayed onto the mop head through the spray nozzle at the top of the water guide pipe, thereby improving cleaning efficiency. Attached Figure Description

[0043] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0044] Figure 1 A schematic diagram of the structure of a cleaning assembly provided by this utility model;

[0045] Figure 2 A partial cross-sectional view of a cleaning assembly provided by this utility model;

[0046] Figure 3 A schematic diagram of the structure of the mop bucket provided by this utility model;

[0047] Figure 4 An exploded view of the mop bucket provided by this utility model;

[0048] Figure 5 A partial exploded view of the centrifuge device and sleeve provided by this utility model;

[0049] Figure 6A schematic diagram of the centrifuge device provided by this utility model;

[0050] Figure 7 A schematic diagram of the internal structure of the sleeve provided by this utility model;

[0051] Figure 8 A schematic diagram of the rotating component, support base, water pump, and clutch device provided by this utility model;

[0052] Figure 9 Exploded view of the rotating component, support base, water pump, and clutch device provided by this utility model.

[0053] Explanation of reference numerals in the attached figures:

[0054] 1. Spin mop; 101. Mop handle; 102. Mop disc;

[0055] 2. Mop bucket; 201. Clean water chamber; 202. Waste water chamber;

[0056] 3. Rotating parts;

[0057] 4. Centrifuge unit; 401. Connecting component; 402. Abutment component; 403. Mounting ring;

[0058] 5. Sleeve; 501. Feedback component; 5011. Protrusion; 5012. Groove;

[0059] 6. Support base;

[0060] 7. Water pump; 701. Blade;

[0061] 8. Clutch device; 801. First clutch element; 802. Second clutch element; 803. Protruding tooth; 804. Recess;

[0062] 9. Water guide shell; 901. Water guide pipe; 9011. Spray nozzle;

[0063] 10. Mounting base;

[0064] 11. Reset component;

[0065] 12. Placement platform; 1201. Scraper. Detailed Implementation

[0066] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0067] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0068] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" 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 of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0069] Furthermore, the technical features involved in the different embodiments of this utility model described below can be combined with each other as long as they do not conflict with each other.

[0070] The following is combined Figures 1-9 The following describes embodiments of the present invention.

[0071] According to an embodiment of the present invention, a mop cleaning assembly is provided, such as... Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 As shown, it includes: a rotating mop 1, a mop bucket 2, and is equipped with a rotating component 3, a centrifugal device 4, and a feedback component 501.

[0072] The rotary mop 1 includes a mop handle 101 and a mop disc 102. The mop handle 101 drives the mop disc 102 to rotate. The mop bucket 2 is provided with a rotating component 3, a centrifugal device 4, and a feedback device 501. The rotating component 3 is rotatably disposed inside the mop bucket 2, and the mop disc 102 can extend into the mop bucket 2 and be connected to the rotating component 3 for transmission. The centrifugal device 4 is disposed on the rotating component 3, and there is a gap between the end of the centrifugal device 4 and the feedback device 501. The rotation of the mop disc 102 drives the rotating component 3 to rotate, and the rotation of the rotating component 3 drives the centrifugal device 4 to rotate. The end of the centrifugal device 4 moves relative to the rotating component 3 under the action of centrifugal force, so that the distance between the end of the centrifugal device 4 and the feedback device 501 gradually decreases as the rotation speed of the rotating component 3 increases. When the rotation speed of the rotating component 3 increases to the point that the rotation path of the end of the centrifugal device 4 interferes with the feedback device 501, the end of the centrifugal device 4 and the feedback device 501 collide multiple times as the rotating component 3 rotates.

[0073] In the above embodiment, when the rotating mop 1 extends into the mop bucket 2 and drives the rotating component 3 to rotate, thereby performing cleaning or wringing operations at different speeds, the centrifugal device 4 installed in the mop bucket 2 can move relative to the rotating component 3 under the action of centrifugal force as the rotating component 3 rotates. As the rotational speed of the rotating component 3 increases, the distance between the end of the centrifugal device 4 and the feedback component 501 decreases. Thus, when the speed is high enough, the end of the centrifugal device 4 impacts the feedback component 501 multiple times, thereby generating a feedback effect and reminding the user that the mop is currently in a high-speed wringing state. Of course, when the rotating mop 1 extends into the mop bucket 2 for cleaning, and the end of the centrifugal device 4 does not impact the feedback component 501 and no feedback effect is generated, the user can also know that the mop is currently in a low-speed cleaning state.

[0074] The specific forms of feedback effect produced by the end of the centrifugal device 4 impacting the feedback component 501 multiple times include, but are not limited to: first, producing sound through impact that can be heard by the user; second, producing vibration through impact and transmitting it to the rotating mop 1 via the rotating component 3, so that the user's hand holding the rotating mop 1 can feel the vibration.

[0075] Specifically, when the mop bucket 2 is used in conjunction with the spin mop 1, the mop handle 101 of the spin mop 1 is directly driven by the user or indirectly driven by an external auxiliary structure of the motor roller assembly, thereby driving the mop disc 102 to rotate. While the mop handle 101 drives the mop disc 102 to rotate, the mop disc 102 forms a transmission connection with the rotating component 3 in the mop bucket 2, thus causing the rotating component 3 in the mop bucket 2 to rotate under its own power. The mop bucket 2, which is a clean and dirty separation mop bucket, has a water pumping device that can cooperate with or separate from the rotating part 3 through centrifugal action. When the rotation speed of the rotating mop 1 is low, the centrifugal force between the rotating part 3 and the water pumping device is small, so it can cooperate with the water pumping device to perform water pumping operation, thereby cleaning the mop disc 102. When the rotation speed of the rotating mop 1 is high, the centrifugal force between the rotating part 3 and the water pumping device is large, so it can disengage from the water pumping device to stop pumping water and drive the rotating mop 1 to spin freely, thereby spinning water off the mop disc 102.

[0076] Furthermore, a centrifugal device 4, capable of moving relative to the rotating component 3 under centrifugal force, is installed in the mop bucket 2. This utilizes the design principle of coordinating cleaning and wringing operations under varying centrifugal force in the mop bucket 2. Feedback is generated by feedback components 501 spaced apart from the centrifugal device 4. Specifically, when the rotating mop 1 drives the rotating component 3 to rotate, the centrifugal device 4 moves away from the rotating component 3 and closer to the feedback component 501 under the action of centrifugal force. As the rotation speed of the rotating mop 1 increases to the speed required for wringing, the end of the centrifugal device 4 comes into contact with the feedback component 501, causing interference between the rotation path of the end of the centrifugal device 4 and the feedback component 501. This results in multiple impacts between the end of the centrifugal device 4 and the feedback component 501, generating a feedback effect.

[0077] In some embodiments, such as Figure 4 , Figure 5 As shown, the centrifugal device 4 is fixedly connected to the rotating part 3. When the mop disc 102 rotates, it drives the rotating part 3 to rotate, and the rotating part 3 rotates, which in turn drives the centrifugal device 4 to rotate. The centrifugal device 4 moves relative to the rotating part 3 under the action of centrifugal force.

[0078] In the above embodiment, the centrifugal device 4 is fixedly connected to the rotating member 3 so that the centrifugal device 4 can rotate synchronously with the rotation of the rotating member 3. The rotation of the rotating member 3 causes the centrifugal device 4 to be subjected to centrifugal force and move relative to the rotating member 3, thus simplifying the structure of the centrifugal device 4.

[0079] Specifically, a mounting base 10 is fixedly provided on the periphery of the rotating component 3, and a mounting ring 403 is provided on the centrifugal device 4. The centrifugal device 4 is sleeved on the mounting base 10 through the mounting ring 403 so that the centrifugal device 4 can rotate synchronously with the rotating component 3. Under the action of centrifugal force, the centrifugal device 4 moves relative to the rotating component 3. That is, under the action of centrifugal force, the end of the centrifugal device 4 moves away from the mounting base 10 on the periphery of the rotating component 3 and moves closer to the feedback component 501. When the rotation speed of the rotating component 3 reaches the speed required for the water-throwing operation, the end of the centrifugal device 4 collides with the feedback component 501 multiple times.

[0080] Furthermore, this embodiment does not limit the specific construction of the part of the centrifugal device 4 that moves relative to the rotating member 3 under centrifugal force. It can be configured as a spring piece fixedly connected to the mounting ring 403, a thin sheet movably connected to the mounting ring 403, etc.

[0081] In some embodiments, such as Figure 4 , Figure 5 , Figure 6 As shown, the centrifugal device 4 includes a connector 401, one end of which is movably connected to the rotating member 3. The rotation of the mop disc 102 drives the rotating member 3 to rotate, which in turn drives the centrifugal device 4 to rotate. Under the action of centrifugal force, the connector 401 moves relative to the rotating member 3, causing the distance between the connector 401 and the feedback member 501 to gradually decrease as the rotation speed of the rotating member 3 increases. When the rotation speed of the rotating member 3 increases to the point that the rotation path of the connector 401 interferes with the feedback member 501, the connector 401 and the feedback member 501 collide multiple times as the rotating member 3 rotates.

[0082] In the above embodiment, a connector 401 is provided in the centrifugal device 4, which is movably connected to the rotating part 3 at one end, so as to ensure that when the rotation speed of the rotating part 3 reaches the speed required for the water-throwing operation, the connector 401 rotates under the action of centrifugal force and collides with the feedback part 501 multiple times, so as to ensure that the feedback effect is generated smoothly.

[0083] Specifically, in this embodiment, a connector 401 is rotatably connected to the mounting ring 403 of the centrifugal device 4. When the rotation speed of the rotating member 3 reaches the speed required for the water-throwing operation, the connector 401 rotates away from the mounting ring 403 to the maximum position. The rotation path of the connector 401 interferes with the feedback member 501, so that the connector 401 and the feedback member 501 collide multiple times as the rotating member 3 rotates.

[0084] In some embodiments, such as Figure 4 , Figure 5 , Figure 6As shown, the centrifuge device 4 also includes an abutment 402. One end of the connector 401 is movably connected to the rotating member 3, and the other end is connected to the abutment 402. When the rotation speed of the rotating member 3 increases to the point that the connector 401 rotates, thereby causing the rotation path of the abutment 402 to interfere with the feedback member 501, the abutment 402 and the feedback member 501 will collide multiple times as the rotating member 3 rotates.

[0085] In the above embodiment, an abutment 402 is provided at the end of the connector 401 so that the abutment 402 can be driven by the connector 401 to impact the feedback member 501 multiple times, thereby further ensuring that the feedback effect is generated smoothly.

[0086] Specifically, in this embodiment, one end of the connector 401 is rotatably connected to the mounting ring 403, and the other end is connected to the abutment 402, which is a spherical boss. When the rotation speed of the rotating member 3 reaches the speed required for the water-throwing operation, the connector 401 rotates away from the mounting ring 403 to the maximum position. The rotation path of the abutment 402 on the connector 401 interferes with the feedback member 501, so that as the rotating member 3 rotates, the abutment 402 on the connector 401 and the feedback member 501 collide multiple times.

[0087] In this embodiment, two connectors 401 are rotatably connected to the mounting ring 403 of the centrifugal device 4, and each connector 401 is provided with an abutment 402 constructed as a spherical boss. As an alternative implementation, one, three or even more connectors 401 may be provided.

[0088] In addition, when the part of the centrifuge device 4 that is movable relative to the rotating part 3 under centrifugal force is constructed as a spring piece fixedly connected to the mounting ring 403, the centrifuge device 4 is constructed as follows: one or more spring pieces are fixedly connected to one end of the mounting ring of the centrifuge device 4, and a spherical boss is connected to the other end of the spring piece.

[0089] In some embodiments, such as Figure 4 , Figure 5 As shown, the centrifugal device 4 has a fixing part on its outer periphery, which is fixedly connected to the mop bucket 2, and the feedback component 501 is provided on the fixing part.

[0090] In the above embodiment, a fixing part that is fixedly connected to the mop bucket 2 is provided on the outer periphery of the centrifugal device 4, thereby providing an installation position for the feedback component 501, ensuring that the feedback component 501 is fixedly installed on the outer periphery of the centrifugal device 4, thereby ensuring that the feedback component 501 can stably be impacted by the centrifugal device 4 to generate a feedback effect.

[0091] Specifically, since the mop bucket 2 does not move or rotate when the rotating mop 1 is cleaning, the fixing part is fixedly connected to the mop bucket 2. This provides an installation position for the feedback component 501 while ensuring that the feedback component 501 on the fixing part does not move or rotate, thus ensuring the fixity of the setting position of the feedback component 501.

[0092] Furthermore, this embodiment does not limit the specific structural form of the fixing part, which can be the inner peripheral wall plate of the mop bucket 2, the partition between the clean water chamber 201 and the wastewater chamber 202 in the mop bucket 2, a separately provided sleeve or tube, etc.

[0093] In some embodiments, such as Figure 4 , Figure 5 , Figure 7 As shown, the feedback element 501 is a protrusion 5011 protruding from the fixing part and / or a groove 5012 formed on the fixing part; when the mop handle 101 drives the mop disc 102 to rotate at a first speed, it drives the rotating element 3 to rotate, thereby driving the centrifugal device 4 to abut against the protrusion 5011 and / or the groove 5012 to produce a sound; when the mop handle 101 drives the mop disc 102 to switch from the first speed to the second speed, the mop disc 102 drives the rotating element 3 to rotate at the second speed, thereby causing the centrifugal device 4 to separate from the protrusion 5011 and / or the groove 5012.

[0094] In the above embodiment, the centrifugal device 4 makes a sound by abutting against the protrusion 5011 protruding from the fixed part and the groove 5012 opened on the fixed part, so that the user can quickly receive feedback through hearing to understand the current cleaning status of the rotating mop 1.

[0095] Specifically, the first speed is greater than the second speed. When the mop handle 101 drives the mop disc 102 to rotate at the first speed, the mop disc 102 performs a water-spinning operation; when the mop handle 101 drives the mop disc 102 to rotate at the second speed, the mop disc 102 performs a cleaning operation. When the mop handle 101 drives the mop disc 102 to switch from the first speed to the second speed, the centrifugal force on the centrifugal device 4 decreases due to the reduced speed, thereby causing the centrifugal device 4 to separate from the protrusion 5011 and the groove 5012.

[0096] In some embodiments, such as Figure 4 , Figure 5 , Figure 7As shown, the fixing part is a sleeve 5 sleeved around the outer periphery of the centrifugal device 4. The sleeve 5 is fixedly connected to the mop bucket 2. The protrusions 5011 and / or grooves 5012 are evenly distributed along the inner wall of the sleeve 5. When the mop handle 101 drives the mop disc 102 to rotate at a first speed, it drives the rotating component 3 to rotate, thereby driving the centrifugal device 4 to rotate along the inner wall of the sleeve 5, and then rotates along the surface of the protrusions 5011 and / or grooves 5012 to produce a sound. When the mop handle 101 drives the mop disc 102 to switch from the first speed to the second speed, the mop disc 102 drives the rotating component 3 to rotate at the second speed, thereby separating the centrifugal device 4 from the inner wall of the sleeve 5, and then from the surface of the protrusions 5011 and / or grooves 5012.

[0097] In the above embodiment, a sleeve 5 is provided around the centrifugal device 4 to provide an installation position for the feedback component 501, which is provided with protrusions 5011 and grooves 5012, while improving the tightness of the component structure in the mop bucket 2.

[0098] Specifically, the sleeve 5, as a separately designed structural component, can be fixedly connected to the mop bucket 2 to maintain a fixed position. Since the mop bucket 2 itself does not move or rotate when the mop 1 is rotating for cleaning, fixing the sleeve 5 to the mop bucket 2 provides an installation position for the feedback component 501 while ensuring that the feedback component 501 on the sleeve 5 does not move or rotate, thus ensuring the fixed position of the feedback component 501. Furthermore, the feedback component 501 does not need to be located in a distant position such as the inner circumferential wall plate of the mop bucket 2 or the partition between the clean water chamber 201 and the wastewater chamber 202 in the mop bucket 2. The end of the centrifugal device 4 also does not need to be designed to be too long to match the distant location of the feedback component 501. The end of the centrifugal device 4 only needs to cooperate with the sleeve 5 located close to its outer periphery, thereby improving the tightness of the component structure in the mop bucket 2.

[0099] Furthermore, in this embodiment, the protrusions 5011 and the grooves 5012 are spaced apart, and the portion between two protrusions 5011 forms a groove 5012. Specifically, this embodiment is designed with three protrusions 5011 and three grooves 5012.

[0100] In some embodiments, such as Figure 2 , Figure 4 , Figure 8 As shown, the mop bucket 2 is also equipped with: a support base 6, a water pump 7, and a clutch device 8.

[0101] The support base 6 is sleeved on the outer periphery of the rotating member 3 and rotates coaxially with the rotating member 3. When the mop handle 101 drives the mop disc 102 to rotate, it can drive the rotating member 3 and the support base 6 to rotate synchronously. The water pump 7 is movably connected to the support base 6 and has a spray nozzle 9011 in the direction facing the mop disc 102. The clutch device 8 is located between the support base 6 and the water pump 7 and allows the support base 6 and the water pump 7 to have an engaged state and a disengaged state. When the mop handle 101 drives the mop disc 102 to rotate at a second speed, so as to drive the rotating member 3 and the support base 6 to rotate simultaneously, the clutch device 8 engages the support base 6 and the water pump 7, thereby driving the water pump 7 to spray the water in the mop bucket 2 onto the mop disc 102 through the spray nozzle 9011. When the mop handle 101 drives the mop disc 102 to rotate from the second speed to the first speed, the clutch device 8 disengages the support base 6 and the water pump 7, so that the water pump 7 stops working.

[0102] In the above embodiment, a support base 6, a water pump 7, and a clutch device 8 are provided in the mop bucket 2 to cooperate with the mop handle 101 to realize the cleaning and wringing operations of the rotating mop 1.

[0103] Specifically, the first speed is greater than the second speed. When the mop handle 101 drives the mop disc 102 to rotate at the second speed, causing the rotating component 3 and the support base 6 to rotate simultaneously, the clutch device 8 engages the support base 6 and the water pump 7, thereby driving the water pump 7 to spray water from the mop bucket 2 onto the mop disc 102 through the spray nozzle 9011 to clean the rotating mop 1. When the mop handle 101 drives the mop disc 102 to rotate from the second speed to the first speed, the clutch device 8 disengages the support base 6 and the water pump 7, causing the water pump 7 to stop working and stop spraying water onto the mop disc 102. At the same time, the mop disc 102 is driven to rotate freely along with the rotating component 3 and the support base 6 to spin water off the rotating mop 1.

[0104] In some embodiments, such as Figure 2 , Figure 4 , Figure 8 , Figure 9 As shown, the clutch device 8 includes a first clutch 801 mounted on the support base 6 and a second clutch 802 mounted on the water pump 7. When the mop handle 101 drives the mop disc 102 to rotate at a second speed, thereby causing the rotating component 3 and the support base 6 to rotate simultaneously, the first clutch 801 and the second clutch 802 engage, thereby driving the water pump 7 to spray water from the mop bucket 2 onto the mop disc 102 through the spray nozzle 9011. When the mop handle 101 drives the mop disc 102 to rotate from the second speed to the first speed, the first clutch 801 and the second clutch 802 disengage, causing the support base 6 to separate from the water pump 7, thereby stopping the water pump 7 from working.

[0105] In the above embodiment, the engagement and disengagement between the first clutch 801 and the second clutch 802 in the clutch device 8 enable the support seat 6 fixed to the rotating part 3 to engage or disengage with the water pump 7, thereby realizing the cleaning and spin-drying operations of the rotating mop 1.

[0106] Specifically, the clutch device 8 uses a first clutch 801 and a second clutch 802 to switch between the engagement and disengagement states of the support seat 6 on the rotating component 3 and the water pump 7. In the engagement state, the centrifugal force generated by the rotation of the water pump 7 is used to draw water from the mop bucket 2 and spray it onto the mop disc 102 for cleaning. In the disengagement state, the mop disc 102 is driven to rotate freely along with the rotating component 3 and the support seat 6, causing the water pump 7 to stop drawing water and the mop disc 102 to shake off water under the action of centrifugal force.

[0107] Furthermore, the first clutch 801 and the second clutch 802 utilize the snap-fit ​​engagement and disengagement between the protruding teeth 803 and the recesses 804 to achieve the engagement and disengagement between the support seat 6 on the rotating member 3 and the water pump 7. Specifically, one or more sets of snap-fit ​​structures formed by the protruding teeth 803 and the recesses 804 are provided between the first clutch 801 and the second clutch 802, and are respectively located at the edges of the first clutch 801 and the second clutch 802 that are close to each other, so that the protruding teeth 803 can extend into the recesses 804 for engagement.

[0108] Furthermore, a reset member 11 is provided between the first clutch 801 and the second clutch 802. The two ends of the reset member 11 are respectively fixedly connected to the bottom wall of the first clutch 801 and the inner wall of the second clutch 802. When the rotating mop 1 drives the rotating member 3 to rotate at the second speed, the reset member 11 releases energy and contracts, causing the second clutch 802 to move upward toward the first clutch 801 and abut against the first clutch 801, so that the first clutch 801 and the second clutch 802 are engaged, so that the support seat 6 on the rotating member 3 drives the water pump 7 to rotate. When the rotating mop 1 drives the rotating member 3 to increase from the second speed to the first speed, the first clutch 801 squeezes the second clutch 802, and the reset member 11 stores energy and extends, causing the second clutch 802 to move downward away from the first clutch 801, so that the first clutch 801 disengages from the second clutch 802, and the support seat 6 on the rotating member 3 disengages from the water pump 7.

[0109] Furthermore, the water pump 7 is shaped like a downward-facing trumpet to enhance the centrifugal force generated by its rotation. The water pump 7 is equipped with turbine-shaped blades 701 to further enhance the pumping effect.

[0110] Furthermore, the rotating component 3 is provided with a slot, and the support base 6 is provided with a buckle. The rotating component 3 and the support base 6 are fixedly connected by the snap-fit ​​of the slot and the buckle, so that the support base 6 can rotate synchronously with the rotating component 3.

[0111] In some embodiments, such as Figure 2 , Figure 3 , Figure 4 As shown, the water pump 7 is fitted with a water guide shell 9, and the water guide shell 9 extends toward the mop head 102 with a water guide pipe 901. The water nozzle 9011 is located at the top of the water guide pipe 901.

[0112] In the above embodiment, a water guide shell 9 is provided, and the water guide pipe 901 can guide the clean water drawn out by the water pump 7 through centrifugal force, so that the clean water is concentrated and sprayed onto the mop plate 102 through the spray nozzle 9011 at the top of the water guide pipe 901, thereby improving the cleaning efficiency.

[0113] Specifically, the mop bucket 2 has a clean water chamber 201 located in the inner ring and a wastewater chamber 202 located in the outer ring. The rotating part 3, centrifugal device 4, sleeve 5, support base 6, water pump 7, clutch device 8, water guide shell 9, mounting base 10 and reset part 11 are all located in the clean water chamber 201. The water guide shell 9 is sleeved on the outer periphery of the water pump 7. Above the water guide shell 9 is a placement platform 12 for placing the mop disc 102 of the rotating mop 1. The water guide pipe 901 extends to the placement platform 12 and communicates with the scraper 1201 on the placement platform 12. The rotating component 3 is driven by the mop disc 102 of the rotating mop 1 to drive the water pump 7 to rotate, so as to spray the clean water in the clean water chamber 201 in the mop bucket 2 onto the mop disc 102 on the platform 12 through the water guide pipe 901. At the same time, the scraper 1201 scrapes and cleans the mop disc 102. The cleaned wastewater can be thrown into the wastewater chamber 202 of the outer ring under the action of centrifugal force. Similarly, the wastewater thrown by the mop disc 102 in the future is also thrown into the wastewater chamber 202 of the outer ring under the action of centrifugal force.

[0114] Furthermore, in this embodiment, the water guide shell 9 is fixedly disposed on the bottom wall of the mop bucket 2, and the sleeve 5 is fixedly connected to the upper part of the water guide shell 9, thereby having a fixed position relative to the mop bucket 2.

[0115] Although embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations all fall within the scope defined by this application.

Claims

1. A mop cleaning assembly, characterized in that, include: A rotating mop (1) includes a mop handle (101) and a mop disc (102), wherein the mop handle (101) is driven to rotate the mop disc (102); The mop bucket (2) is provided with a rotating part (3), a centrifugal device (4) and a feedback device (501). The rotating part (3) is rotatably disposed inside the mop bucket (2), and the mop disc (102) can extend into the mop bucket (2) and be connected to the rotating part (3) in a transmission manner. The centrifugal device (4) is disposed on the rotating part (3), and there is a gap between the end of the centrifugal device (4) and the feedback device (501). The rotation of the mop disc (102) drives the rotation of the rotating component (3), and the rotation of the rotating component (3) drives the centrifugal device (4) to rotate. The end of the centrifugal device (4) moves relative to the rotating component (3) under the action of centrifugal force, so that the distance between the end of the centrifugal device (4) and the feedback component (501) gradually decreases as the rotation speed of the rotating component (3) increases. When the rotation speed of the rotating component (3) increases to the point that the rotation path of the end of the centrifugal device (4) interferes with the feedback component (501), the end of the centrifugal device (4) and the feedback component (501) collide multiple times as the rotating component (3) rotates.

2. The mop cleaning assembly according to claim 1, characterized in that, The centrifugal device (4) is fixedly connected to the rotating part (3). When the mop disc (102) rotates, it drives the rotating part (3) to rotate. The rotating part (3) rotates, which in turn drives the centrifugal device (4) to rotate. The centrifugal device (4) moves relative to the rotating part (3) under the action of centrifugal force.

3. The mop cleaning assembly according to claim 2, characterized in that, The centrifugal device (4) includes a connector (401), one end of which is movably connected to the rotating member (3); The rotation of the mop disc (102) drives the rotation of the rotating component (3), the rotation of the rotating component (3) drives the centrifugal device (4) to rotate, and the connecting component (401) moves relative to the rotating component (3) under the action of centrifugal force, so that the distance between the connecting component (401) and the feedback component (501) gradually decreases as the rotation speed of the rotating component (3) increases; When the rotation speed of the rotating member (3) increases to the point that the rotation path of the connecting member (401) interferes with the feedback member (501), the connecting member (401) and the feedback member (501) collide multiple times as the rotating member (3) rotates.

4. The mop cleaning assembly according to claim 3, characterized in that, The centrifuge device (4) further includes an abutment (402), one end of the connector (401) is movably connected to the rotating member (3), and the other end is connected to the abutment (402); When the rotation speed of the rotating member (3) increases to the point that the connecting member (401) rotates, thereby causing the rotation path of the abutting member (402) to interfere with the feedback member (501), the abutting member (402) and the feedback member (501) will collide multiple times as the rotating member (3) rotates.

5. The mop cleaning assembly according to any one of claims 1-4, characterized in that, The centrifugal device (4) has a fixing part on its outer periphery, the fixing part is fixedly connected to the mop bucket (2), and the feedback element (501) is provided on the fixing part.

6. The mop cleaning assembly according to claim 5, characterized in that, The feedback element (501) is a protrusion (5011) protruding from the fixing part and / or a groove (5012) formed on the fixing part; When the mop handle (101) drives the mop disc (102) to rotate at a first speed, it drives the rotating part (3) to rotate, thereby driving the centrifugal device (4) to abut against the protrusion (5011) and / or the groove (5012) to make a sound. When the mop handle (101) drives the mop disc (102) to switch from a first rotation speed to a second speed, the mop disc (102) drives the rotating component (3) to rotate at the second speed, thereby separating the centrifugal device (4) from the protrusion (5011) and / or the groove (5012).

7. The mop cleaning assembly according to claim 6, characterized in that, The fixing part is a sleeve (5) sleeved on the outer periphery of the centrifugal device (4). The sleeve (5) is fixedly connected to the mop bucket (2). The protrusion (5011) and / or the groove (5012) are evenly distributed along the inner wall of the sleeve (5). When the mop handle (101) drives the mop disc (102) to rotate at a first speed, it drives the rotating part (3) to rotate, thereby driving the centrifugal device (4) to rotate along the inner wall of the sleeve (5), and then rotates along the surface of the protrusion (5011) and / or the groove (5012) to make a sound. When the mop handle (101) drives the mop disc (102) to switch from the first speed to the second speed, the mop disc (102) drives the rotating component (3) to rotate at the second speed, thereby separating the centrifugal device (4) from the inner wall of the sleeve (5), and then from the surface of the protrusion (5011) and / or the groove (5012).

8. The mop cleaning assembly according to any one of claims 1-4, 6, and 7, characterized in that, The mop bucket (2) is also equipped with: The support base (6) is sleeved on the outer periphery of the rotating part (3) and rotates coaxially with the rotating part (3). When the mop handle (101) drives the mop disc (102) to rotate, it can drive the rotating part (3) and the support base (6) to rotate synchronously. A water pump (7) is movably connected to the support base (6) and has a water nozzle (9011) in the direction facing the mop disc (102); A clutch device (8) is provided between the support base (6) and the water pump (7) to enable the support base (6) and the water pump (7) to be in an engaged state and a disengaged state; When the mop handle (101) drives the mop disc (102) to rotate at a second speed, thereby causing the rotating part (3) and the support base (6) to rotate simultaneously, the clutch device (8) engages the support base (6) and the water pump (7), thereby driving the water pump (7) to spray the water in the mop bucket (2) onto the mop disc (102) through the spray nozzle (9011); When the mop handle (101) drives the mop disc (102) to rotate from the second speed to the first speed, the clutch device (8) separates the support base (6) from the water pump (7), causing the water pump (7) to stop working.

9. The mop cleaning assembly according to claim 8, characterized in that, The clutch device (8) includes a first clutch component (801) disposed on the support base (6) and a second clutch component (802) disposed on the water pump (7); When the mop handle (101) drives the mop disc (102) to rotate at a second speed, thereby causing the rotating part (3) and the support base (6) to rotate simultaneously, the first clutch (801) and the second clutch (802) engage, thereby driving the water pump (7) to spray the water in the mop bucket (2) onto the mop disc (102) through the spray nozzle (9011); When the mop handle (101) drives the mop disc (102) to rotate from the second speed to the first speed, the first clutch (801) and the second clutch (802) separate, causing the support base (6) to separate from the water pump (7), thereby causing the water pump (7) to stop working.

10. The mop cleaning assembly according to claim 9, characterized in that, The water pump (7) is fitted with a water guide shell (9), and the water guide shell (9) extends toward the mop disc (102) with a water guide pipe (901). The water nozzle (9011) is located at the top of the water guide pipe (901).