Mop bucket

By incorporating two water-squeezing structures that move in different directions in the mop bucket, the problem that existing mop buckets can only squeeze or clean one mop at a time is solved, improving the efficiency of use and user experience.

CN223041486UActive Publication Date: 2025-07-01XIAN AICHUANGJIA HELPER INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202421841986.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-31
Publication Date
2025-07-01
Estimated Expiration
2034-07-31

AI Technical Summary

Technical Problem

Existing mop buckets usually can only squeeze or clean one mop at a time, which is inefficient in use and poor user experience.

Method used

A mop bucket is designed with two water-squeezing structures built into it. The two water-squeezing structures are driven to move in different directions through the driving mechanism, so that the two mops can be squeezed or cleaned at the same time.

Benefits of technology

It improves the efficiency of water squeezing or cleaning, improves the user experience, and diversifies the use of the treatment chamber through the water squeezing structure in different directions of activity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a mop bucket which comprises a bucket body, a water squeezing structure and a driving mechanism, and a processing cavity is arranged in the bucket body. The water squeezing structure comprises a first water squeezing structure and a second water squeezing structure; the first water squeezing structure and the second water squeezing structure are arranged in the treatment cavity; the driving mechanism is used for driving the first water squeezing structure and the second water squeezing structure to move at the same time, and the moving directions of the first water squeezing structure and the second water squeezing structure are different so that water squeezing and / or squeezing can be conducted on the mop in the processing cavity. The mop bucket has the advantages that according to the mop bucket, the two water squeezing structures are adopted, the driving mechanism drives the two water squeezing structures to move in different directions, two mops can be squeezed or cleaned at the same time, the water squeezing or cleaning efficiency is improved, and the use experience is improved; and moreover, the two water squeezing structures are different in moving direction, so that the use modes of the treatment cavity can be diversified, and the use experience of the user is further improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of daily necessities, and more particularly to a mop bucket. Background Art

[0002] In the related art, some mop buckets are provided with a water squeezing member in the treatment cavity, and the mop is squeezed or cleaned by the water squeezing member. However, such a mop bucket can usually only squeeze or clean the mop in one treatment cavity at a time, and the use mode of the treatment cavity is single, resulting in low use efficiency of the mop bucket and poor user experience, and there is room for improvement. Summary of the Utility Model

[0003] The utility model aims to solve at least one of the technical problems existing in the prior art. To this end, an object of the utility model is to provide a mop bucket that can squeeze or clean two mops at the same time, improving the user experience.

[0004] The mop bucket according to an embodiment of the utility model includes: a bucket body, a treatment cavity is provided in the bucket body; a water squeezing structure, the water squeezing structure includes a first water squeezing structure and a second water squeezing structure; the first water squeezing structure and the second water squeezing structure are arranged in the treatment cavity; a driving mechanism, the driving mechanism is used to drive the first water squeezing structure and the second water squeezing structure to move simultaneously, and the moving directions of the first water squeezing structure and the second water squeezing structure are different, so as to be able to squeeze and / or extrude the mop in the treatment cavity.

[0005] Beneficial effects: For the mop bucket according to the utility model, by adopting the first water squeezing structure and the second water squeezing structure, and driving the two water squeezing structures to move in different directions through the driving mechanism, two mops can be squeezed or cleaned at the same time, improving the squeezing or cleaning efficiency and the user experience; moreover, since the moving directions of the two water squeezing structures are different, the use mode of the treatment cavity can be diversified, further improving the user experience.

[0006] The driving mechanism of the mop bucket according to an embodiment of the utility model includes a rotating structure; when the rotating structure rotates, it can drive the first water squeezing structure and the second water squeezing structure to move simultaneously.

[0007] Beneficial effects: Simple structure and convenient driving.

[0008] For the mop bucket according to the utility model, a rotating shaft is provided on the rotating structure; the rotating structure can rotate around the rotating shaft; both the first water squeezing structure and the second water squeezing structure are connected to the rotating structure, and the first water squeezing structure and the second water squeezing structure are respectively connected to both sides of the rotating shaft; when the rotating structure rotates, it can drive the first water squeezing structure and the second water squeezing structure to move simultaneously.

[0009] Beneficial effects: The overall structure is simple and the activity reliability is high.

[0010] For the mop bucket according to an embodiment of the present utility model, the mop bucket further includes a foot pedal structure, and the foot pedal structure is connected to the driving mechanism; both the first water squeezing structure and the second water squeezing structure include an initial position and a moving position; stepping on the foot pedal structure can drive the first water squeezing structure and the second water squeezing structure to move from their respective initial positions to the corresponding moving positions.

[0011] Beneficial effects: It is convenient to step on and relatively labor-saving, which can improve the user experience.

[0012] For the mop bucket according to an embodiment of the present utility model, stepping on the foot pedal structure causes the foot pedal structure to move in the vertical direction to drive the first water squeezing structure and the second water squeezing structure to move.

[0013] Beneficial effects: Stepping vertically is more convenient, facilitating the application of force, and conforming to the user's usage habits, which can improve the user experience.

[0014] For the mop bucket according to an embodiment of the present utility model, when the driving mechanism includes a rotating structure, the rotating structure is rotatably provided on the outer side surface of the bucket body; and one end of the rotating structure extends out of the outer side surface of the bucket body, and the foot pedal structure is connected to the extending end of the rotating structure; and / or, when the driving mechanism includes a rotating structure, the number of the rotating structures is set to two; the two rotating structures respectively drive both sides of each water squeezing structure; and the foot pedal structure is connected to both of the rotating structures.

[0015] Beneficial effects: Stepping on the foot pedal structure can drive the two water squeezing structures connected to the rotating structure to rotate, which is convenient to use and labor-saving in driving.

[0016] For the mop bucket according to an embodiment of the present utility model, at least one of the water squeezing structures is provided with a connecting member; an activity hole is formed on the side wall of the treatment cavity; the connecting member passes through the treatment cavity through the activity hole and is connected to the driving mechanism; so that the driving mechanism can drive the connecting member to move, and further drive the water squeezing structure to move.

[0017] Beneficial effects: By providing the connecting member, the water squeezing structure can be placed in the water-containing treatment cavity, and is connected to the driving mechanism through the connecting member, which can not only realize the driven movement, but also prevent the water in the treatment cavity from flowing out.

[0018] The mop bucket according to an embodiment of the present invention, a partition part is arranged inside the bucket body, and the partition part divides the inside of the bucket body into the treatment cavity and the partition cavity; the movable hole is arranged on the partition part, and the movable hole communicates the partition cavity and the treatment cavity; a driving hole is arranged on the bucket body, and the driving hole communicates the partition cavity with the outside of the bucket body; the connecting piece includes a first movable part, a transmission part and a second movable part which are connected in sequence; the first movable part is connected to the water squeezing structure; the transmission part is movably arranged in the partition cavity; the second movable part extends out through the driving hole and is connected to the driving mechanism, so that the driving mechanism can drive the connecting piece to move, and further drive the water squeezing structure to move.

[0019] Beneficial effects: The treatment cavity can hold water to clean the mop with water. The treatment cavity can be relatively isolated from the partition cavity to prevent the water in the treatment cavity from flowing into the partition cavity; prevent the treatment cavity from leaking water.

[0020] The mop bucket according to an embodiment of the present invention, a water storage area is provided in the treatment cavity; the position of the movable hole is higher than the height of the water storage area; or, the position of the movable hole is lower than or flush with the height of the water storage area, and a sealing structure is arranged at the movable hole; the sealing structure is used to seal the movable hole; the sealing structure is connected to the connecting piece; when the connecting piece moves in the movable hole, it can drive the sealing structure to move, and the sealing structure always seals the movable hole during the movement process.

[0021] Beneficial effects: Prevent the water in the treatment cavity from flowing into the partition cavity; prevent the treatment cavity from leaking water.

[0022] The mop bucket according to an embodiment of the present invention, relative to the movable hole, the driving hole is arranged at a position close to the bottom of the bucket body; the transmission part includes a transmission rod, and the transmission rod extends in the depth direction of the bucket body; and / or, the partition part includes a first partition board and a second partition board, and the first partition board, the second partition board and the inner wall of the bucket body enclose the partition cavity; and / or, the water squeezing structure includes a water squeezing frame, and a water squeezing piece is arranged on the water squeezing frame; the water squeezing frame extends in the depth direction of the bucket body, and the connecting piece is arranged on the side of the water squeezing frame.

[0023] Beneficial effects: Reduce the probability of the water in the treatment cavity flowing out, and the stepping structure can be set lower, so that the user does not need to lift the leg when using, which is more convenient to use.

[0024] The mop bucket according to an embodiment of the present invention, the mop bucket further includes a guiding structure, and the guiding structure is used to guide the movement of the first water squeezing structure and / or the second water squeezing structure to ensure the consistency and stability of the movement direction of the first water squeezing structure and / or the second water squeezing structure.

[0025] Beneficial effects: Under the action of the guiding structure, the stability of the water squeezing structure during movement is improved, the probability of the water squeezing structure shaking is reduced, and thus the cleaning effect on the mop is improved.

[0026] For the mop bucket according to an embodiment of the present utility model, when an activity hole is provided on the side wall of the treatment cavity, the activity hole forms the guiding structure; and / or when a driving hole is provided on the bucket body, the driving hole forms the guiding structure.

[0027] Beneficial effects: The guiding of the movement of the water squeezing structure is realized, and the stability of the movement of the water squeezing structure is improved.

[0028] For the mop bucket according to an embodiment of the present utility model, the driving mechanism further includes a reset structure; the reset structure is used to drive the first water squeezing structure and / or the second water squeezing structure to return from the activity position to the initial position.

[0029] Beneficial effects: The water squeezing structure can return to the initial position under the action of the reset structure, making it more convenient and labor-saving to use and improving the use experience.

[0030] For the mop bucket according to an embodiment of the present utility model, the reset structure includes an elastic member; an installation part is provided on the side wall of the bucket body; one end of the elastic member is connected to the installation part, and the other end is connected to the first water squeezing structure and / or the second water squeezing structure; when a partition part is provided in the bucket body, the installation part is provided on the partition part.

[0031] Beneficial effects: Avoid the elastic member being damaged due to contact with the water in the treatment cavity, etc., and improve the service life of the elastic member.

[0032] For the mop bucket according to an embodiment of the present utility model, the number of the treatment cavities is set to at least two, and the first water squeezing structure and / or the second water squeezing structure is provided in each treatment cavity; and / or when a driving hole is provided on the bucket body, the driving hole extends in the vertical direction; and / or when an activity hole is provided on the side wall of the treatment cavity, the activity hole extends in the vertical direction; and / or when the driving mechanism includes a rotating structure; and when a connecting member is provided on each water squeezing structure, a connecting hole or a connecting groove is provided on the rotating structure; the connecting member can be movably inserted into the connecting hole or the connecting groove; and / or when the driving mechanism includes a rotating structure, the number of the rotating structures is set to two; the two rotating structures are respectively provided on two opposite side surfaces of the bucket body.

[0033] Beneficial effects: Improve the stability of the movement of the water squeezing structure.

[0034] Additional aspects and advantages of the present utility model will be given in part in the following description, become apparent in part from the following description, or be understood through the practice of the present utility model. Brief Description of the Drawings

[0035] The above and / or additional aspects and advantages of the present utility model will become apparent and be readily understood from the description of the embodiments in conjunction with the following drawings, wherein:

[0036] Figure 1 is a schematic diagram of the cooperation between a mop and a mop bucket according to an embodiment of the present utility model;

[0037] Figure 2 is a partial structural schematic diagram of the mop bucket according to an embodiment of the present utility model;

[0038] Figure 3 is Figure 2 an enlarged view of the circled area A in

[0039] Figure 4 is Figure 2 a top view of the structure shown;

[0040] Figure 5 is a sectional view taken along the line B-B in Figure 4 ;

[0041] Figure 6 is a sectional view taken along the line C-C in Figure 4 ;

[0042] Figure 7 is a structural schematic diagram of the barrel body according to an embodiment of the present utility model;

[0043] Figure 8 is a schematic diagram of the cooperation between the water squeezing structure and the driving mechanism according to an embodiment of the present utility model.

[0044] Reference Numerals:

[0045] mop bucket 100, mop 200,

[0046] barrel body 10, treatment chamber 101, partition chamber 102, movable hole 103, driving hole 104, partition part 11, first partition plate 111, second partition plate 112, installation part 12, support structure 13, limit hole 131,

[0047] water squeezing structure 20, water squeezing frame 201, water squeezing member 202, connecting shaft 203, first water squeezing structure 21, second water squeezing structure 22, connecting member 23, first movable part 231, transmission part 232, second movable part 233,

[0048] driving mechanism 30, rotating structure 31, connecting hole 311, rotating shaft 32, elastic member 33,

[0049] Foot pedal structure 40, fixing structure 50. Specific embodiments

[0050] Embodiments of the present invention will be described in detail below. Examples of the embodiments are shown in the drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary only for explaining the present invention and should not be construed as limiting the present invention.

[0051] In the description of the present invention, 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", "axial", "radial", "circumferential", etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as limiting the present invention. In addition, features defined as "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present invention, unless otherwise specified, the meaning of "a plurality" is two or more.

[0052] In the description of the present invention, it should be noted that unless otherwise clearly defined and limited, the terms "mounted", "connected" and "connected" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the internal communication of two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0053] Next, refer to Figures 1-8 Describe the mop bucket 100 according to an embodiment of the present invention.

[0054] As Figures 1-8As shown in the figure, the mop bucket 100 according to an embodiment of the present invention includes: a bucket body 10, a water squeezing structure 20, and a driving mechanism 30. A processing cavity 101 is provided inside the bucket body 10; the water squeezing structure 20 includes a first water squeezing structure 21 and a second water squeezing structure 22; the first water squeezing structure 21 and the second water squeezing structure 22 are arranged inside the processing cavity 101; the driving mechanism 30 is used to drive the first water squeezing structure 21 and the second water squeezing structure 22 to move simultaneously, and the moving directions of the first water squeezing structure 21 and the second water squeezing structure 22 are different, so as to be able to squeeze water and / or extrude the mop 200 inside the processing cavity 101. Among them, the two water squeezing structures 20 can adopt the same structure, which can reduce the types of parts, facilitate mold manufacturing, and also facilitate the assembly of the mop bucket 100; the two water squeezing structures 20 can also adopt different structures, such as different structures like water squeezing rollers, scraping bars, etc.; by adopting different structures, different actions or forces can be applied to the mop 200. For example, the frictional forces of the two water squeezing structures 20 are different, so that different forces of water squeezing can be applied to the mop 200, enabling the user to rotate different water squeezing structures for use according to needs. The number of the first water squeezing structures 21 can be set to one, or can be set to more than two, and the number is not limited; the number of the second water squeezing structures 22 can be set to one, or can be set to more than two, and the number is not limited. The first water squeezing structure 21 and the second water squeezing structure 22 can be arranged in the same processing cavity, or can be respectively arranged in different processing cavities; any number of the first water squeezing structures 21 or the second water squeezing structures 22 can be arranged in the same processing cavity.

[0055] For the mop bucket 100 according to an embodiment of the present invention, by adopting two water squeezing structures 20 and driving the two water squeezing structures 20 to move in different directions through the driving mechanism 30, two mops 200 can be squeezed or cleaned simultaneously, improving the water squeezing or cleaning efficiency and the use experience; moreover, since the moving directions of the two water squeezing structures 20 are different, the usage modes of the processing cavity 101 can be diversified, further improving the user's use experience. For example, a water squeezing structure 20 with a smaller frictional force can be adopted when squeezing water; a water squeezing structure with a larger frictional force can be adopted when cleaning.

[0056] As Figure 2 As shown in the figure, in some embodiments, the driving mechanism 30 includes a rotating structure 31; the rotation of the rotating structure 31 can simultaneously drive the first water squeezing structure 21 and the second water squeezing structure 22 to move. That is to say, by rotating the rotating mechanism, the driving of the two water squeezing structures 20 is realized, thereby facilitating driving the first water squeezing structure 21 and the second water squeezing structure 22 to have different moving directions, with a simple structure and convenient driving.

[0057] Of course, the driving mechanism 30 may also include a translation structure. When the translation structure translates, it drives the two water squeezing structures 20 to move at the same time. For example, the driving mechanism 30 may also be a connecting rod structure or the like. When the connecting rod structure translates, it drives the two water squeezing structures 20 to move at the same time.

[0058] As Figure 2 shown, in some embodiments, a rotating shaft 32 is provided on the rotating structure 31; the rotating structure 31 can rotate around the rotating shaft 32; both the first water squeezing structure 21 and the second water squeezing structure 22 are connected to the rotating structure 31, and the first water squeezing structure 21 and the second water squeezing structure 22 are respectively connected to both sides of the rotating shaft 32. When the rotating structure 31 rotates, it can drive the first water squeezing structure 21 and the second water squeezing structure 22 to move at the same time. Since the two water squeezing structures 20 are located on both sides of the rotating shaft 32, when the rotating structure 31 rotates and drives the first water squeezing structure 21 to move downward, the second water squeezing structure 22 will move upward. When the rotating structure 31 rotates and drives the first water squeezing structure 21 to move upward, the second water squeezing structure 22 will move downward. The two water squeezing structures 20 have different moving directions, and the overall structure is simple and the moving reliability is high. The first water squeezing structure 21 and the second water squeezing structure 22 can be driven by the rotating structure 31 to move in opposite directions.

[0059] As Figure 2 and Figure 8 shown, in some embodiments, the mop bucket 100 further includes a foot pedal structure 40, and the foot pedal structure 40 is connected to the driving mechanism 30; both the first water squeezing structure 21 and the second water squeezing structure 22 include an initial position and a moving position; stepping on the foot pedal structure 40 can drive the first water squeezing structure 21 and the second water squeezing structure 22 to move from their respective initial positions to the corresponding moving positions. That is to say, the driving mechanism 30 can move when the foot pedal structure 40 is driven, and the rotating structure 31 rotates to drive the two water squeezing structures 20 to move. Here, the foot pedal structure 40 being driven can be the user stepping on it, which is convenient and labor-saving, and can improve the user experience. When the user washes the mop, there is no need to drive it by hand and no need to bend down, making it easier and more labor-saving for the user.

[0060] Among them, the initial positions of the first water squeezing structure 21 and the second water squeezing structure 22 may be at different heights. The initial position of the first water squeezing structure 21 may be higher than the moving position of the first water squeezing structure 21, the initial position of the second water squeezing structure 22 may be lower than the moving position of the second water squeezing structure 22, and the initial position of the first water squeezing structure 21 and the moving position of the second water squeezing structure 22 may be at the same height.

[0061] In some other examples, the driving mechanism 30 is connected to a pressing structure, and the two water squeezing structures 20 can be driven to move by manually operating the pressing structure.

[0062] In some embodiments, step on the pedal structure 40 so that the pedal structure 40 moves in the vertical direction to drive the first water squeezing structure 21 and the second water squeezing structure 22 to move. It is convenient to step on and relatively labor-saving, thereby improving the user experience.

[0063] In some examples, the pedal structure 40 is located on the front side of the mop bucket 100. The rear side of the mop bucket 100 also has a protruding fixing structure 50. The fixing structure 50 can be fixed at a position, or the user can step on the fixing structure 50 with one foot and step on the pedal structure 40 with the other foot to make the pedal structure 40 move, so as to drive the first water squeezing structure 21 and the second water squeezing structure 22 to move. Under the action of the fixing structure 50, the stability of the mop bucket 100 is improved, and the probability of the mop bucket 100 tipping over is reduced. Of course, an anti-tipping structure such as a suction cup can also be provided at the bottom of the mop bucket 100.

[0064] As Figure 2 shown, in some embodiments, the rotating structure 31 is rotatably arranged on the outer side surface of the barrel body 10; and one end of the rotating structure 31 extends out of the outer side surface of the barrel body 10, and the pedal structure 40 is connected to the extending end of the rotating structure 31. Thus, by stepping on the pedal structure 40 connected to one end of the rotating structure 31, the two water squeezing structures 20 connected to the rotating structure 31 can be driven to rotate, which is convenient to use.

[0065] As Figure 8 shown, in some embodiments, the driving mechanism 30 includes two rotating structures 31. The two rotating structures 31 are arranged on the left and right sides of the barrel body 10. The two rotating structures 31 respectively drive both sides of each water squeezing structure 20. The pedal structure 40 is connected to both of the two rotating structures 31. Both sides of each water squeezing structure 20 are driven by the two rotating structures 31, which can improve the reliability of the movement of the water squeezing structure 20 and reduce the probability of the water squeezing structure 20 tilting and flipping; the two rotating structures 31 are connected by one pedal structure 40, which can ensure the synchronism of the rotation of the two rotating structures 31, and further improve the stability of the movement of the water squeezing structure 20.

[0066] As Figure 5 and Figure 8 shown, in some embodiments, a connecting member 23 is provided on at least one water squeezing structure 20; a moving hole 103 is formed in the side wall of the processing cavity 101; the connecting member 23 passes through the processing cavity 101 through the moving hole 103, and the connecting member 23 is connected to the driving mechanism 30 so that the driving mechanism 30 can drive the connecting member 23 to move, and further drive the water squeezing structure 20 to move.

[0067] That is to say, the driving mechanism 30 can directly drive the water squeezing structure 20 to move, or drive the water squeezing structure 20 to move by driving the connecting member 23. By providing the connecting member 23, the water squeezing structure 20 can be placed in the treatment chamber 101 filled with water and connected to the driving mechanism 30 through the connecting member 23, so that the water squeezing structure 20 can be driven to move and the water in the treatment chamber 101 will not flow out.

[0068] As Figure 2 and Figure 7 shown, in some embodiments, a partition 11 is provided in the barrel body 10. The partition 11 divides the interior of the barrel body 10 into a treatment chamber 101 and a partition chamber 102, so that water can be accommodated in the treatment chamber 101 to clean the mop 200 with water. An activity hole 103 is provided on the partition 11. The activity hole 103 communicates the partition chamber 102 and the treatment chamber 101. A driving hole 104 is provided on the barrel body 10. The driving hole 104 communicates the partition chamber 102 with the outside of the barrel body 10.

[0069] The connecting member 23 includes a first moving part 231, a transmission part 232 and a second moving part 233. The first moving part 231, the transmission part 232 and the second moving part 233 are connected in sequence. The first moving part 231 can pass through the activity hole 103. The first moving part 231 is connected to the water squeezing structure 20. The transmission part 232 is movably arranged in the partition chamber 102. The second moving part 233 extends out through the driving hole 104. The second moving part 233 is connected to the driving mechanism 30, so that the driving mechanism 30 can drive the connecting member 23 to move, and further drive the water squeezing structure 20 to move. Thus, a part of the connecting member 23 is arranged in the partition chamber 102, and the treatment chamber 101 can be relatively isolated from the partition chamber 102 to prevent the water in the treatment chamber 101 from flowing into the partition chamber 102.

[0070] In some embodiments, there is a water storage area in the treatment chamber 101, and the position of the activity hole 103 is higher than the height of the water storage area, thus preventing the water in the treatment chamber 101 from flowing into the partition chamber 102.

[0071] In other embodiments, the position of the activity hole 103 is lower than or flush with the height of the water storage area, and a sealing structure is provided at the activity hole 103. The sealing structure is connected to the connecting member 23. The sealing structure is used to seal the activity hole 103. When the connecting member 23 moves in the activity hole 103, it can drive the sealing structure to move, so that the sealing structure always seals the activity hole 103 during the movement process, preventing the water in the treatment chamber 101 from flowing into the partition chamber 102. Here, the sealing structure can be a flexible structure or a deformable structure with folds to ensure that the sealing structure can move and seal the activity hole 103.

[0072] As Figure 7As shown, in some embodiments, the driving hole 104 is provided on the barrel body 10, and in the up and down direction, the driving hole 104 is closer to the bottom of the barrel body 10 relative to the movable hole 103. The transmission part 232 includes a transmission rod that extends in the depth direction of the barrel body 10. Thus, the upper end of the transmission rod is connected to the first movable part 231, the first movable part 231 is connected to the upper part of the water squeezing structure 20, the lower end of the transmission rod can be connected to the second movable part 233, and the second movable part 233 is connected to the driving mechanism 30. Thus, the driving mechanism 30 can be connected to the upper part of the water squeezing structure 20 to drive the water squeezing structure 20 to move up and down, reducing the probability of water flowing out of the treatment chamber 101.

[0073] As Figure 2 , Figure 3 and Figure 7 As shown, in some embodiments, the partition part 11 includes a first partition board 111 and a second partition board 112. The first partition board 111, the second partition board 112, and the inner wall of the barrel body 10 enclose a partition chamber 102, thus forming the partition chamber 102 and relatively separating the partition chamber 102 from the treatment chamber 101.

[0074] As Figure 3 and Figure 8 As shown, in some embodiments, the water squeezing structure 20 includes a water squeezing frame 201, and water squeezing members 202 are provided on the water squeezing frame 201; the water squeezing frame 201 extends in the depth direction of the barrel body 10 (such as the up and down direction shown in Figure 8 ). The water squeezing members 202 can include multiple ones, and each water squeezing member 202 extends in the left and right direction. The connecting member 23 is arranged on the side surface of the water squeezing frame 201 (such as the left and right sides shown in Figure 8 ). When driven by the driving mechanism 30, the water squeezing members 202 move up and down under the drive of the connecting member 23 to realize water squeezing and / or cleaning of the mop 200. The overall structure is compact and reasonable, and the mop 200 can be effectively cleaned.

[0075] In some embodiments, the mop bucket 100 further includes a guiding structure for guiding the movement of the first water squeezing structure 21 and also for guiding the movement of the second water squeezing structure 22. Under the action of the guiding structure, the stability of the movement of the water squeezing structure 20 is improved, the probability of the water squeezing structure 20 shaking is reduced, and further the cleaning effect on the mop 200 is improved.

[0076] As Figure 7 and Figure 8As shown, in some embodiments, a movable hole 103 is formed in the side wall of the processing chamber 101. The movable hole 103 forms a guiding structure. The movable hole 103 can be an oblong hole. The first movable part 231 is inserted into the movable hole 103. Thus, when the first movable part 231 moves, the first movable part 231 can only move along the extending direction of the movable hole 103, thereby guiding the movement of the connecting part 23. The connecting part 23 is connected to the water squeezing structure 20, thereby realizing the guiding of the movement of the water squeezing structure 20 and improving the stability of the movement of the water squeezing structure 20.

[0077] As Figure 7 and Figure 8 As shown, in some embodiments, a driving hole 104 is provided on the barrel body 10. The driving hole 104 forms a guiding structure. The driving hole 104 can be an oblong hole. The second movable part 233 is inserted into the driving hole 104. When the second movable part 233 moves, the second movable part 233 can only move along the extending direction of the driving hole 104, thereby guiding the movement of the connecting part 23. The connecting part 23 is connected to the water squeezing structure 20, thereby realizing the guiding of the movement of the water squeezing structure 20 and improving the stability of the movement of the water squeezing structure 20; or a part of the water squeezing structure 20 is directly inserted into the driving hole 104. When the water squeezing structure 20 moves, the water squeezing structure 20 can only move along the extending direction of the driving hole 104, thereby guiding the movement of the water squeezing structure 20 and improving the stability of the movement of the water squeezing structure 20.

[0078] In some embodiments, the driving mechanism 30 further includes a reset structure; the reset structure is used to drive the first water squeezing structure 21 to return from the movable position to the initial position, and the reset structure can also drive the second water squeezing structure 22 to return from the movable position to the initial position.

[0079] In some examples, the first water squeezing structure 21 and the second water squeezing structure 22 are linked. For example, the two are connected by a rotating structure 31 and can be linked. The reset structure is connected to one of the water squeezing structures 20. Under the action of the reset structure, the first water squeezing structure 21 is driven to return from the movable position to the initial position. Since the two water squeezing structures 20 are linked, the second water squeezing structure 22 can be synchronously driven to return from the movable position to the initial position.

[0080] In some specific examples, when the user steps down on the foot pedal structure 40, the first water squeezing structure 21 moves downward, and at the same time, the second water squeezing structure 22 moves upward. After the user releases the force, the first water squeezing structure 21 moves upward under the action of the reset structure. At this time, under the connection of the rotating structure 31, the second water squeezing structure 22 moves downward. Thus, the user only needs to apply a stepping force, and the water squeezing structure 20 can move in the reverse direction under the action of the reset structure, which is more convenient and labor-saving to use and improves the use experience.

[0081] As Figure 3 andFigure 8 As shown, in some examples, the reset structure includes an elastic member 33. An installation portion 12 is provided on the side wall of the barrel body 10. One end of the elastic member 33 is connected to the installation portion 12, and the other end is connected to the first water squeezing structure 21 and / or the second water squeezing structure 22. Under the action of the elastic member 33, the water squeezing structure 20 can be driven to return from the active position to the initial position when the user releases the force. Here, the elastic member 33 can be a compression spring or a tension spring.

[0082] In some examples, a partition portion 11 is provided in the barrel body 10. The partition portion 11 divides the inside of the barrel body 10 into a processing chamber 101 and a partition chamber 102. An installation portion 12 is provided on the partition portion 11. Here, the installation portion 12 can be located in the partition chamber 102, which can prevent the elastic member 33 from contacting the water in the processing chamber 101 and causing damage to the elastic member 33, etc., and improve the service life of the elastic member 33.

[0083] As Figure 2 shown, in some embodiments, the number of the processing chambers 101 is set to at least two. A first water squeezing structure 21 is provided in each processing chamber 101, or a second water squeezing structure 22 is provided in each processing chamber 101, or two water squeezing structures 20 are provided in each processing chamber 101. Here, one of the two processing chambers 101 can be used for cleaning and the other for dehydration, or both processing chambers 101 can be used for cleaning, or both processing chambers 101 can be used for dehydration. The use of the processing chamber 101 is not limited here.

[0084] As Figure 7 shown, in some embodiments, a driving hole 104 is provided on the barrel body 10. The driving hole 104 communicates the partition chamber 102 with the outside of the barrel body 10. The second movable portion 233 of the connecting member 23 passes through the driving hole 104, or the driving hole 104 communicates the processing chamber 101 with the outside of the barrel body 10. The movable shaft of the water squeezing structure 20 passes through the driving hole 104. The driving hole 104 extends in the vertical direction. When the driving mechanism 30 drives the water squeezing structure 20 to move, the movable shaft or the second movable portion 233 can only move in the vertical direction. Thus, the water squeezing structure 20 moves in the vertical direction, so as to clean the mop 200 placed in the mop bucket 100.

[0085] In some examples, the driving hole 104 is located at a position near the bottom of the barrel body 10. A support structure 13 is further provided in the barrel body 10. A limiting hole 131 is provided on the support structure 13. The upper part of the water squeezing structure 20 cooperates with the limiting hole 131. The limiting hole 131 extends in the vertical direction. Thus, under the action of the limiting hole 131 and the driving hole 104, the water squeezing structure 20 moves in the vertical direction, improving the stability of the movement of the water squeezing structure 20.

[0086] As Figure 7As shown, in some embodiments, a movable hole 103 is formed in the side wall of the processing chamber 101. The movable hole 103 extends in the vertical direction. The first movable portion 231 of the connecting member 23 passes through the movable hole 103, or the movable shaft of the water squeezing structure 20 passes through the movable hole 103. When the driving mechanism 30 drives the water squeezing structure 20 to move, the movable shaft or the first movable portion 231 can only move in the vertical direction, thereby enabling the water squeezing structure 20 to move in the vertical direction, so as to clean the mop 200 placed in the mop bucket 100.

[0087] In some examples, the driving hole 104 is located near the bottom of the barrel body 10, and the movable hole 103 is located near the top of the barrel body 10 of the partition portion 11. The first movable portion 231 on the upper part of the connecting member 23 cooperates with the movable hole 103, and the second movable portion 233 on the lower part of the connecting member 23 cooperates with the driving hole 104. Thus, under the action of the movable hole 103 and the driving hole 104, the water squeezing structure 20 moves in the vertical direction, improving the stability of the movement of the water squeezing structure 20.

[0088] As Figure 8 shown, in some embodiments, the driving mechanism 30 includes a rotating structure 31. A connecting hole 311 or a connecting groove is provided on the rotating structure 31. A connecting member 23 is provided on the water squeezing structure 20. The connecting member 23 can movably extend into the connecting hole 311 or the connecting groove. The connecting hole 311 can be an oblong hole, and the connecting groove can extend along the length direction of the rotating structure 31. Thus, when the rotating structure 31 drives the connecting member 23 to move, the connecting member 23 can move vertically. At the same time, since the rotating structure 31 rotates along the rotating shaft 32, the connecting member 23 can move relative to the connecting hole 311 or the connecting groove, making the movement of the water squeezing structure 20 and the rotating structure 31 smoother, reducing interference, and improving the reliability of the structure.

[0089] In some other embodiments, the water squeezing structure 20 has a connecting shaft 203. The connecting shaft 203 can movably extend into the connecting hole 311 or the connecting groove. When the rotating structure 31 drives the water squeezing structure 20 to move, the connecting shaft 203 can move vertically. At the same time, since the rotating structure 31 rotates along the rotating shaft 32, the connecting shaft 203 can move relative to the connecting hole 311 or the connecting groove, making the movement of the water squeezing structure 20 and the rotating structure 31 smoother, reducing interference, and improving the reliability of the structure.

[0090] As Figure 5 and Figure 8 shown, in some embodiments, the driving mechanism 30 includes two rotating structures 31. The two rotating structures 31 are respectively arranged on two opposite side surfaces of the barrel body 10, as Figure 5As shown in the figure, two rotating structures 31 are arranged on the left and right sides of the barrel body 10. The two rotating structures 31 respectively drive the left and right sides of each water squeezing structure 20. The two sides of each water squeezing structure 20 are driven by the two rotating structures 31, which can improve the reliability of the movement of the water squeezing structure 20 and reduce the probability of the water squeezing structure 20 tilting and flipping; the two rotating structures 31 are linked, which can ensure the synchronism of the rotation of the two rotating structures 31, and further improve the stability of the movement of the water squeezing structure 20.

[0091] In some specific embodiments, the barrel body 10 has two processing chambers 101, namely a first processing chamber 101 and a second processing chamber 101. The two processing chambers 101 are completely isolated. One water squeezing structure 20 is arranged in each processing chamber 101, namely a first water squeezing structure 21 and a second water squeezing structure 22. The first water squeezing structure 21 is arranged in the first processing chamber 101, and the second water squeezing structure 22 is arranged in the second processing chamber 101. Each water squeezing structure 20 includes a water squeezing frame 201 and a water squeezing member 202.

[0092] A partition part 11 is further arranged in the barrel body 10. The partition part 11 divides a partition chamber 102. The partition chamber 102 is communicated with the first processing chamber 101 through a movable hole 103. The first water squeezing structure 21 is connected with a connecting member 23. The connecting member 23 includes a first movable part 231, a transmission part 232 and a second movable part 233. The first movable part 231 passes through the movable hole 103 and is connected with the first water squeezing structure 21. The transmission part 232 is arranged in the partition chamber 102. The second movable part 233 passes through the driving hole 104 of the barrel body 10 and is connected with the driving mechanism 30. An installation part 12 is further arranged on the partition part 11. The installation part 12 can be a convex column protruding from the partition part 11 in the horizontal direction. An elastic member 33 is arranged on the installation part 12. The elastic member 33 is connected with the first movable part 231.

[0093] Among them, the connecting member 23 can be integrally formed with the first water squeezing structure 21.

[0094] The driving mechanism 30 includes two rotating structures 31. The two rotating structures 31 are connected through a foot-operated structure 40. When the user steps on the foot pedal downward, the rotating structure 31 rotates clockwise. The second movable part 233 of the connecting member 23 moves downward. The acting force is transmitted to the water squeezing frame 201 of the first water squeezing structure 21 through the transmission part 232 and the first movable part 231. Then, the water squeezing frame 201 of the first water squeezing structure 21 drives the water squeezing member 202 to move downward. At the same time, the water squeezing frame 201 of the second water squeezing structure 22 drives the water squeezing member 202 to move upward. At this time, the elastic member 33 is stretched to store energy.

[0095] After the user releases the force, the elastic member 33 releases the force. The first water squeezing structure 21 and the connecting member 23 move upward under the action of the elastic member 33, and drive the water squeezing member 202 to move in the same direction. At this time, the water squeezing frame 201 of the second water squeezing structure 22 drives the water squeezing member 202 to move downward until it returns to the initial position, so as to facilitate the user's operation again.

[0096] When it is necessary to clean or dehydrate the mops 200 in the two treatment chambers 101 at the same time, the user only needs to continuously step on the foot-operated structure 40, and the water squeezing members 202 of the first water squeezing structure 21 and the second water squeezing structure 22 move simultaneously and in opposite directions.

[0097] Among them, the first treatment chamber 101 can store cleaning water, the second treatment chamber 101 can be a cavity, the mop 200 inserted into the first treatment chamber 101 can be cleaned in this chamber, and the mop 200 inserted into the second treatment chamber 101 can be dehydrated in this chamber.

[0098] The other components and operations of the mop bucket 100 according to the embodiments of the present invention are known to those of ordinary skill in the art and will not be described in detail here. Among them, the up-down direction, left-right direction, and front-back direction are based on the up-down direction, left-right direction, and front-back direction shown in the figure.

[0099] In the description of the present invention, unless otherwise clearly defined and limited, the first feature being "above" or "below" the second feature may include direct contact between the first and second features, or may include indirect contact between the first and second features through additional features therebetween. Moreover, the first feature being "above", "above", and "above" the second feature includes the first feature being directly above and obliquely above the second feature, or simply indicating that the horizontal height of the first feature is higher than that of the second feature.

[0100] In the description of this specification, the description of reference terms such as "one embodiment", "some embodiments", "illustrative embodiments", "examples", "specific examples", or "some examples" means that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic descriptions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.

[0101] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and purposes of the present invention. The scope of the present invention is defined by the claims and their equivalents.

Claims

1. A mop bucket, characterized in that: include: A barrel body, wherein a processing chamber is arranged in the barrel body; A water squeezing structure, the water squeezing structure comprising a first water squeezing structure and a second water squeezing structure; The first water squeezing structure and the second water squeezing structure are arranged in the processing chamber; A driving mechanism is used to drive the first water squeezing structure and the second water squeezing structure to move simultaneously, and the first water squeezing structure and the second water squeezing structure have different moving directions, so as to squeeze water and / or press the mop in the processing chamber.

2. The mop bucket according to claim 1, characterized in that: The driving mechanism comprises a rotating structure; the rotating structure can simultaneously drive the first water squeezing structure and the second water squeezing structure to move.

3. The mop bucket according to claim 2, characterized in that: A rotating shaft is provided on the rotating structure; the rotating structure can rotate around the rotating shaft; the first water squeezing structure and the second water squeezing structure are both connected to the rotating structure, and the first water squeezing structure and the second water squeezing structure are respectively located on both sides of the rotating shaft; when the rotating structure rotates, it can simultaneously drive the first water squeezing structure and the second water squeezing structure to move.

4. The mop bucket according to any one of claims 1 to 3, characterized in that: The mop bucket also includes a pedal structure, which is connected to the driving mechanism; the first water squeezing structure and the second water squeezing structure both include an initial position and an active position; stepping on the pedal structure can drive the first water squeezing structure and the second water squeezing structure to move from their respective initial positions to the corresponding active positions.

5. The mop bucket according to claim 4, characterized in that: The pedal structure is stepped on to move the pedal structure in a vertical direction, so as to drive the first water squeezing structure and the second water squeezing structure to move.

6. The mop bucket according to claim 4, characterized in that: When the driving mechanism includes a rotating structure, the rotating structure is rotatably disposed on the outer side of the barrel body; and one end of the rotating structure extends out of the outer side of the barrel body, and the pedal structure is connected to the extended end of the rotating structure; And / or, when the driving mechanism includes a rotating structure, the number of the rotating structures is set to two; the two rotating structures respectively drive two sides of each water squeezing structure; and the pedal structure is connected to both of the two rotating structures.

7. The mop bucket according to any one of claims 1-3, 5-6, characterized in that: At least one of the water squeezing structures is provided with a connecting piece; a movable hole is opened on the side wall of the processing chamber; the connecting piece passes through the processing chamber through the movable hole and is connected to the driving mechanism; so that the driving mechanism can drive the connecting piece to move, and then drive the water squeezing structure to move.

8. The mop bucket according to claim 7, characterized in that: A partition is provided in the barrel body, and the partition divides the barrel body into the processing chamber and the partition chamber; the movable hole is provided on the partition, and the movable hole connects the partition chamber and the processing chamber; a driving hole is provided on the barrel body, and the driving hole connects the partition chamber with the outside of the barrel body; the connecting piece includes a first movable part, a transmission part and a second movable part which are connected in sequence; the first movable part is connected to the water squeezing structure; the transmission part is movably provided in the partition chamber; the second movable part extends out through the driving hole and is connected to the driving mechanism, so that the driving mechanism can drive the connecting piece to move, and then drive the water squeezing structure to move.

9. The mop bucket according to claim 7, characterized in that: The processing chamber has a water storage area; the movable hole is located at a higher level than the water storage area; Alternatively, the position of the movable hole is lower than or flush with the height of the water storage area, and a sealing structure is provided at the movable hole; the sealing structure is used to seal the movable hole; the sealing structure is connected to the connecting piece; the connecting piece can drive the sealing structure to move when it moves in the movable hole, and the sealing structure always seals the movable hole during the movement.

10. The mop bucket according to claim 8, characterized in that: Relative to the movable hole, the driving hole is arranged at a position close to the bottom of the barrel body; the transmission part comprises a transmission rod, and the transmission rod extends in the depth direction of the barrel body; And / or, the partition portion includes a first partition plate and a second partition plate, and the first partition plate, the second partition plate and the inner wall of the barrel body enclose the partition cavity; And / or, the water squeezing structure comprises a water squeezing frame, on which a water squeezing member is arranged; the water squeezing frame extends in the depth direction of the barrel body, and the connecting member is arranged on a side of the water squeezing frame.

11. The mop bucket according to any one of claims 1-3, 5-6, 8-9, characterized in that: The mop bucket further comprises a guide structure, and the guide structure is used to guide the movement of the first water squeezing structure and / or the second water squeezing structure.

12. The mop bucket according to claim 11, characterized in that: When a movable hole is opened on the side wall of the processing chamber, the movable hole forms the guide structure; And / or, when a driving hole is provided on the barrel body, the driving hole forms the guiding structure.

13. The mop bucket according to any one of claims 5-6, 8-10, 12, characterized in that: The driving mechanism also includes a reset structure; when the first water squeezing structure and the second water squeezing structure both include an initial position and an active position, the reset structure is used to drive the first water squeezing structure and / or the second water squeezing structure to return from the active position to the initial position.

14. The mop bucket according to claim 13, characterized in that: The reset structure includes an elastic member; a mounting portion is provided on the side wall of the barrel body; one end of the elastic member is connected to the mounting portion, and the other end is connected to the first water squeezing structure and / or the second water squeezing structure; when a partition is provided in the barrel body, the mounting portion is provided on the partition.

15. The mop bucket according to any one of claims 1-3, 5-6, 8-10, 12, and 14, characterized in that: The number of the processing chambers is set to be at least two, and the first water squeezing structure and / or the second water squeezing structure is arranged in each of the processing chambers; and / or, when a driving hole is provided on the barrel body, the driving hole extends in a vertical direction; and / or, when a movable hole is provided on the side wall of the processing chamber, the movable hole extends in a vertical direction; And / or, when the driving mechanism includes a rotating structure; and each of the water squeezing structures is provided with a connecting member, the rotating structure is provided with a connecting hole or a connecting groove; and the connecting member can movably extend into the connecting hole or the connecting groove; And / or, when the driving mechanism includes a rotating structure, the number of the rotating structures is set to two; the two rotating structures are respectively arranged on two opposite sides of the barrel body.