Mop

By designing a water squeezing frame with a limiting part and a limiting piece on the flat mop, the problem of the water squeezing structure shaking during use or storage is solved, the water squeezing frame is stably fixed, and the user experience is improved.

CN223403806UActive Publication Date: 2025-10-03NINGBO EAST ENVIRONMENTAL PROTECTION MACHINERY CO LTD
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Patent Information

Application Number
CN202422117327.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-30
Publication Date
2025-10-03
Estimated Expiration
2034-08-30

AI Technical Summary

Technical Problem

The water squeezing structure of the existing flat mop lacks an effective fixing mechanism after use, which causes it to shake easily during mopping or storage, affecting the user experience.

Method used

A water squeezing frame with a first limiting portion and a second limiting portion is designed. Combined with the limiting piece on the mop rod, the stability of the water squeezing frame is ensured by switching between a storage position and a working position.

Benefits of technology

It effectively solves the problem of shaking of the water squeezing structure when the mop is used or stored, provides a stable fixing mechanism, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a mop, which comprises a mop rod, a mop handle and a mop handle, the mop plate is movably connected to one end of the mop rod; the two opposite ends of the water squeezing frame are provided with a first limiting part and a second limiting part, and the water squeezing frame moves relative to the mop rod so that the water squeezing frame can be switched between the containing position and the working position; when the water squeezing frame is located at the storage position, the water squeezing frame limits relative movement of the mop plate and the mop rod, and the limiting piece is matched with the first limiting part so that the water squeezing frame can be limited to the storage position. When the water squeezing frame is located at the working position, the mop plate and the mop rod can move relatively, and the limiting piece is matched with the second limiting part so that the water squeezing frame can be limited to the working position. The utility model solves the problem that after the water squeezing operation is completed, the water squeezing structure often lacks an effective fixing mechanism, so that the water squeezing structure shakes along the mop rod when the mop is used for mopping or is stored, and the user experience is influenced.
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Description

Technical Field

[0001] The utility model relates to the technical field of mops, in particular to a mop. Background Art

[0002] In daily life, flat mops are commonly used cleaning tools, and their convenience and efficiency are widely recognized. Flat mops generally include a mop plate, a mop handle, and a water squeezing structure for squeezing out excess water.

[0003] In the prior art, a water squeezing mechanism is mounted on a mop handle and slides along the axial direction of the mop handle to squeeze water from the mop material on the mop plate. After the squeezing operation is completed, the water squeezing mechanism often lacks an effective fixing mechanism, causing it to move along the mop handle when the mop is mopping or stored, affecting the user experience. Utility Model Content

[0004] The problem solved by the present invention is that after the squeezing operation is completed, the squeezing structure often lacks an effective fixing mechanism, causing it to swing along the mop rod when the mop is mopping the floor or being stored, affecting the user experience.

[0005] To solve the above-mentioned problem, the utility model provides a mop, which includes: a mop rod, on which a limiting member is provided; a mop plate, which is movably connected to one end of the mop rod; and a water wringing frame, wherein a first limiting portion and a second limiting portion are provided at opposite ends of the water wringing frame, and the water wringing frame moves relative to the mop rod to enable the water wringing frame to switch between a storage position and a working position; wherein, when the water wringing frame is in the storage position, the water wringing frame limits the relative movement of the mop plate and the mop rod, and the limiting member cooperates with the first limiting portion to limit the water wringing frame to the storage position; when the water wringing frame is in the working position, the mop plate and the mop rod can move relative to each other, and the limiting member cooperates with the second limiting portion to limit the water wringing frame to the working position.

[0006] Compared with the prior art, the technical effect achieved by adopting this technical solution is that, through the wringing frame with a first limiting portion and a second limiting portion, and the limiting member on the mop rod, the problem of the wringing structure being prone to shaking when the mop is mopping or stored is effectively solved. Specifically, when the wringing frame is in the storage position, it limits the relative movement of the mop plate and the mop rod, thereby ensuring that the mop plate remains stable when the mop is not in use. In the storage position, the first limiting portion of the wringing frame cooperates with the limiting member on the mop rod to form a stable fixed structure, ensuring that the wringing frame does not move arbitrarily. When the wringing frame moves along the mop rod to the working position, the wringing frame releases the restriction between the mop plate and the mop rod, allowing the mop plate and the mop rod to move relative to each other for mopping operations. The second limiting portion of the wringing frame cooperates with the limiting member on the mop rod to ensure that the wringing frame remains stable in the working position and does not slide or fall off due to improper operation.

[0007] Furthermore, the water squeezing rack includes: a connecting rod, at least a portion of which is sleeved on the mop rod, and the connecting rod is slidingly connected to the mop rod; a first limiting portion is provided on the inner wall of the connecting rod, and a limiting member is provided in the middle of the mop rod, and the limiting member is located between the inner wall of the connecting rod and the mop rod.

[0008] Compared with the existing technology, this technical solution achieves the following technical effects: the first stopper on the inner wall of the connecting rod cooperates with the stopper in the middle of the mop handle to ensure that the wringing rack is fixed in the storage position. When operating, the user only needs to slide the wringing rack to the corresponding position to achieve the fixed position without additional adjustment.

[0009] Furthermore, the first limiting portion is a boss structure formed on the inner wall of the connecting rod, and the limiting member is provided with a slope structure that matches the boss structure; when the water squeezing rack moves to the storage position, the boss structure abuts against the engaging surface of the slope structure.

[0010] Compared with existing technologies, this technical solution achieves the following technical effects: the combination of the boss structure and the inclined surface structure provides a stable fixing mechanism for the wringing rack in the storage position. When the wringing rack moves to the storage position, the boss structure abuts the engaging surface of the inclined surface structure, forming a stable locking state, effectively preventing the wringing rack from moving during storage and improving the user experience.

[0011] Furthermore, the water squeezing rack includes: a water squeezing body, which is arranged at one end of a connecting rod, and the connecting rod drives the water squeezing body to move along the axial direction of the mop rod; wherein, the water squeezing body is provided with a through hole for slidingly cooperating with the mop rod, and the side wall of the through hole is provided with a second limiting portion.

[0012] Compared with existing technologies, this technical solution achieves the following technical benefits: the water-extracting body is provided with a through-hole that slides with the mop handle, allowing the water-extracting body to move conveniently along the axial direction of the mop handle. The second stopper cooperates with the stopper on the mop handle to effectively prevent the water-extracting body from shaking or shifting during sliding, providing users with a more stable and reliable operating experience.

[0013] Furthermore, the second limiting portion includes a groove structure, and the limiting member is provided with a protruding structure that matches the groove structure; when the water squeezing frame moves to the working position, the protruding structure is embedded in the groove structure.

[0014] Compared with existing technologies, this solution achieves the following technical benefits: the precise fit between the groove and protrusion allows the protrusion to fit securely within the groove when the wringer frame moves to its operating position, creating a secure, locked position. This design effectively prevents accidental sliding or displacement of the wringer frame during operation, improving the stability and reliability of the mop.

[0015] Furthermore, a channel for the protruding structure to enter the groove structure is provided on one side of the groove structure close to the connecting rod; when the water squeezing rack moves from the storage position to the working position, the protruding structure enters the groove structure from the channel.

[0016] Compared with the existing technology, the technical effect achieved by adopting this technical solution is that by setting the channel, the protruding structure can be accurately positioned when entering the groove structure, thereby ensuring the accuracy and reliability of the water squeezing rack during movement.

[0017] Furthermore, the mop includes: the mop includes a mop cloth, and the two ends of the mop board are respectively provided with a first fixed end and a second fixed end, and the mop cloth is sleeved on one side of the mop board through the first fixed end and the second fixed end; wherein, the first fixed end is a bendable structure.

[0018] Compared with the existing technology, the technical effect achieved by adopting this technical solution is as follows: the mop cloth is sleeved on the mop board through the first fixed end and the second fixed end, wherein the first fixed tube is a bendable structure. When the mop cloth needs to be removed and installed, the first fixed end is bent to easily remove and install the mop cloth.

[0019] Furthermore, the first fixed end is flexibly connected to the mop board via a flexible structure, and the first fixed end can be bent relative to the mop board.

[0020] Compared with the prior art, the technical effect achieved by adopting this technical solution is that the first fixed end can bend and restore relative to the mop plate through the flexible structure.

[0021] Furthermore, the squeezing rack is provided with a squeezing space for the mop board to pass through, and a scraper and scraping teeth are provided in the squeezing space; when the mop board passes through the squeezing space, the scraper and scraping teeth squeeze water from the mop cloth to clean it.

[0022] Compared with the existing technology, the technical effect achieved by adopting this technical solution is that the design of the scraper can effectively remove the residual water on the mop cloth. The scraping teeth can scrape off the dirt on the mop cloth to ensure that the mop cloth remains clean.

[0023] Furthermore, the hand-held portion is threadedly connected to one end of the mop rod.

[0024] Compared with the existing technology, the technical effect achieved by adopting this technical solution is that the threaded connection can provide a stable connection effect, ensuring that the handheld part and the mop rod will not loosen or fall off during the cleaning process.

[0025] After adopting the technical solution of the utility model, the following technical effects can be achieved:

[0026] (1) The squeezing frame with the first limiting portion and the second limiting portion, as well as the limiting member on the mop rod, effectively solves the problem that the squeezing structure is easy to shake when the mop is mopping or stored.

[0027] (2) The first fixed tube is a bendable structure. When the mop cloth needs to be disassembled and installed, the first fixed end is bent to easily disassemble and install the mop cloth. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 A schematic structural diagram of a mop provided by an embodiment of the present utility model, wherein the water squeezing frame is in the storage position;

[0029] Figure 2 A schematic structural diagram of a mop provided by an embodiment of the utility model, wherein the water squeezing frame is in a working position;

[0030] Figure 3 A schematic structural diagram of a mop provided by an embodiment of the utility model, wherein the water squeezing frame is hidden;

[0031] Figure 4 for Figure 3 Enlarged view of point A in the middle;

[0032] Figure 5 A schematic diagram showing the internal structure of the water squeezing frame when the water squeezing frame is in the working position;

[0033] Figure 6 for Figure 5 Enlarged view of point B in the middle;

[0034] Figure 7 A top view of the mop provided by an embodiment of the utility model, wherein the water squeeze frame is in the working position;

[0035] Figure 8 for Figure 7 Cross-sectional view at CC;

[0036] Figure 9 for Figure 8 Enlarged view of point D in the middle;

[0037] Figure 10 This is a structural schematic diagram of a mop plate provided in an embodiment of the utility model.

[0038] Description of reference numerals:

[0039] 100, mop handle; 110, limiter; 111, inclined surface structure; 1111, engaging surface; 112, protruding structure; 120, hand-held portion;

[0040] 200, mop plate; 210, first fixed end; 211, flexible structure; 220, second fixed end;

[0041] 300, water squeezing frame; 310, connecting rod; 311, first limiting portion; 320, water squeezing body; 321, second limiting portion; 322, groove structure; 323, channel; 330, water squeezing space. DETAILED DESCRIPTION

[0042] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.

[0043] like Figure 1 and Figure 2 As shown, this embodiment provides a mop, which includes: a mop rod 100, on which a limiter 110 is provided; a mop plate 200, which is movably connected to one end of the mop rod 100; and a water squeezing frame 300, on which a first limiter 311 and a second limiter 321 are provided at opposite ends. The water squeezing frame 300 moves relative to the mop rod 100 to switch between a storage position and a working position. ; Among them, when the water squeezing rack 300 is in the storage position, the water squeezing rack 300 limits the relative movement of the mop plate 200 and the mop rod 100, and the limiting member 110 cooperates with the first limiting portion 311 to limit the water squeezing rack 300 to the storage position; when the water squeezing rack 300 is in the working position, the mop plate 200 and the mop rod 100 can move relative to each other, and the limiting member 110 cooperates with the second limiting portion 321 to limit the water squeezing rack 300 to the working position.

[0044] Specifically, such as Figure 1 As shown, Figure 1 The squeezing frame 300 is in the storage position. In this case, the mop plate 200 is arranged parallel to the mop rod 100 and is placed in the squeezing space 330 of the squeezing frame 300. The squeezing space 330 restricts the relative movement of the mop plate 200 and the mop rod 100.

[0045] Specifically, such as Figure 2 As shown, Figure 2 The squeezing frame 300 is in the working position. At this time, the squeezing frame 300 moves along the axis of the mop rod 100 and separates the mop plate 200 from the squeezing space 330. Since there is no squeezing space 330, the mop plate 200 can move relative to the mop rod 100.

[0046] Specifically, the water squeezing rack 300 is movable between a working position and a storage position. When the water squeezing rack 300 needs to be moved from the working position to the storage position, the mop plate 200 needs to be placed parallel to the mop rod 100, and then the water squeezing rack 300 needs to be moved so that the mop plate 200 enters the water squeezing space 330, thereby completing the movement of the water squeezing rack 300.

[0047] Furthermore, the water squeezing rack 300 includes: a connecting rod 310, at least a portion of which is sleeved on the mop rod 100, and the connecting rod 310 is slidably connected to the mop rod 100; a first limiting portion 311 is provided on the inner wall of the connecting rod 310, and a limiting member 110 is provided in the middle of the mop rod 100, and the limiting member 110 is located between the inner wall of the connecting rod 310 and the mop rod 100.

[0048] Specifically, such as Figure 3 and Figure 4 As shown, the limiting member 110 is provided at the middle portion of the connecting rod 310. The position of the limiting member 110 ensures that at least when the mop plate 200 is parallel to the mop rod 100, the limiting member 110 maintains a certain distance from the mop plate 200, so as to prevent the mop plate 200 from leaving the water squeezing space 330 when the squeezing rack 300 moves to the position of the limiting member 110.

[0049] Furthermore, the first limiting portion 311 is a boss structure formed on the inner wall of the connecting rod 310, and the limiting member 110 is provided with a slope structure 111 that matches the boss structure; when the water squeezing rack 300 moves to the storage position, the boss structure abuts against the engaging surface 1111 of the slope structure 111.

[0050] Specifically, such as Figure 9 As shown, a boss structure is formed on the inner wall of the connecting rod 310 . When the water squeezing rack 300 moves from the storage position to the working position, the boss structure abuts against the engaging surface 1111 of the inclined structure 111 to limit the movement of the water squeezing rack 300 .

[0051] Furthermore, the water squeezing frame 300 includes: a water squeezing body 320, which is arranged at one end of the connecting rod 310, and the connecting rod 310 drives the water squeezing body 320 to move along the axial direction of the mop rod 100; wherein, the water squeezing body 320 is provided with a through hole for slidingly engaging with the mop rod 100, and the side wall of the through hole is provided with a second limiting portion 321.

[0052] Furthermore, the second limiting portion 321 includes a groove structure 322 , and the limiting member 110 is provided with a protruding structure 112 that matches the groove structure 322 ; when the water squeezing rack 300 moves to the working position, the protruding structure 112 is embedded in the groove structure 322 .

[0053] Specifically, such as Figure 5 and Figure 6 As shown, when the water squeezing rack 300 moves to the working position, the protruding structure 112 is embedded in the groove structure 322. When the water squeezing rack 300 moves from the working position to the storage position, a thrust is applied to the connecting rod to make the protruding structure 112 disengage from the groove structure 322, thereby releasing the engagement between the protruding structure 112 and the groove structure 322.

[0054] Furthermore, a channel 323 is provided on one side of the groove structure 322 close to the connecting rod 310 for the protruding structure 112 to enter the groove structure 322 ; when the water squeezing rack 300 moves from the storage position to the working position, the protruding structure 112 enters the groove structure 322 from the channel 323 .

[0055] Furthermore, the mop includes a mop cloth, and the two ends of the mop board 200 are respectively provided with a first fixed end 210 and a second fixed end 220, and the mop cloth is sleeved on one side of the mop board 200 through the first fixed end 210 and the second fixed end 220; wherein, the first fixed end 210 is a bendable structure.

[0056] Furthermore, the first fixed end 210 is flexibly connected to the mop plate 200 via the flexible structure 211 , and the first fixed end 210 can be bent relative to the mop plate 200 .

[0057] Specifically, such as Figure 10 As shown, the mop cloth passes through the first fixed end 210 and the second fixed end 220. When the mop cloth needs to be installed or removed, the first fixed end 210 is bent along the flexible structure 211 so that the mop cloth can be installed or removed from the first fixed end 210, thereby completing the operation.

[0058] Furthermore, the squeezing rack 300 is provided with a squeezing space 330 for the mop plate 200 to pass through, and a scraper and scraping teeth are provided in the squeezing space 330; when the mop plate 200 passes through the squeezing space 330, the scraper and scraping teeth squeeze water from the mop cloth to clean it.

[0059] Furthermore, the hand-held portion 120 is threadedly connected to one end of the mop rod 100 .

[0060] Specifically, such as Figure 7 and Figure 8 As shown, in this embodiment, one end of the mop rod 100 is threadedly connected to the handle 120, and the other end of the mop rod 100 is connected to the mop plate 200. The mop rod 100 is provided with a connecting rod 310 and a water-squeezing frame 300 at one end of the mop plate 200. When the water-squeezing frame 300 is in the storage position, a portion of the connecting rod 310 is sleeved on the mop rod 100. When the water-squeezing frame 300 moves from the storage position to the working position, the connecting rod 310 and the water-squeezing frame 300 move along the axis of the mop rod 100, and the through hole provided in the water-squeezing frame 300 passes through the mop rod 100, so that the water-squeezing frame 300 is also sleeved on the mop rod 100.

[0061] Although the present invention is disclosed as above, it is not limited thereto. Any person skilled in the art may make various changes and modifications without departing from the spirit and scope of the present invention. Therefore, the scope of protection of the present invention shall be subject to the scope defined by the claims.

Claims

1. A mop, characterized in that: The mop comprises: A mop rod (100), wherein a limiting member (110) is provided on the mop rod (100); a mop plate (200), the mop plate (200) being movably connected to one end of the mop rod (100); a water squeezing frame (300), wherein a first limiting portion (311) and a second limiting portion (321) are provided at opposite ends of the water squeezing frame (300), and the water squeezing frame (300) moves relative to the mop rod (100) so as to switch the water squeezing frame (300) between a storage position and a working position; When the water squeezing rack (300) is in the storage position, the water squeezing rack (300) limits the relative movement of the mop plate (200) and the mop rod (100), and the limiting member (110) cooperates with the first limiting portion (311) to limit the water squeezing rack (300) to the storage position; When the water squeezing rack (300) is in the working position, the mop plate (200) and the mop rod (100) can move relative to each other, and the limiting member (110) cooperates with the second limiting portion (321) to limit the water squeezing rack (300) to the working position.

2. The mop according to claim 1, characterized in that The water squeezing rack (300) comprises: a connecting rod (310), at least a portion of the connecting rod (310) being sleeved on the mop rod (100), and the connecting rod (310) being slidably connected to the mop rod (100); The inner wall of the connecting rod (310) is provided with a first limiting portion (311), the middle portion of the mop rod (100) is provided with the limiting member (110), and the limiting member (110) is located between the inner wall of the connecting rod (310) and the mop rod (100).

3. The mop according to claim 2, characterized in that: The first limiting portion (311) is a boss structure formed on the inner wall of the connecting rod (310), and the limiting member (110) is provided with an inclined surface structure (111) that matches the boss structure. When the water squeezing rack (300) moves to the storage position, the boss structure abuts against the engaging surface (1111) of the inclined surface structure (111).

4. The mop according to claim 2, characterized in that: The water squeezing rack (300) comprises: a water squeezing body (320), the water squeezing body (320) being arranged at one end of the connecting rod (310), and the connecting rod (310) driving the water squeezing body (320) to move along the axial direction of the mop rod (100); The water squeezing body (320) is provided with a through hole for slidingly cooperating with the mop rod (100), and a second limiting portion (321) is provided on the side wall of the through hole.

5. The mop according to claim 4, characterized in that: The second limiting portion (321) includes a groove structure (322), and the limiting member (110) is provided with a protruding structure (112) that matches the groove structure (322); When the water squeezing rack (300) moves to the working position, the protruding structure (112) is embedded in the groove structure (322).

6. The mop according to claim 5, characterized in that: A channel (323) for the protruding structure (112) to enter the groove structure (322) is provided on a side of the groove structure (322) close to the connecting rod (310); When the water squeezing rack (300) moves from the storage position to the working position, the protruding structure (112) enters the groove structure (322) from the channel (323).

7. The mop according to claim 1, characterized in that The mop comprises a mop cloth, and the two ends of the mop plate (200) are respectively provided with a first fixed end (210) and a second fixed end (220), and the mop cloth is sleeved on one side of the mop plate (200) through the first fixed end (210) and the second fixed end (220); Wherein, the first fixed end (210) is a bendable structure.

8. The mop according to claim 7, characterized in that: The first fixed end (210) is flexibly connected to the mop plate (200) via a flexible structure (211), and the first fixed end (210) can be bent relative to the mop plate (200).

9. The mop according to claim 7, characterized in that: The water squeezing frame (300) is provided with a water squeezing space (330) for the mop plate (200) to pass through, and a water scraping plate and scraping teeth are provided in the water squeezing space (330); When the mop plate (200) passes through the water squeezing space (330), the water scraper and the scraping teeth squeeze water out of the mop cloth for cleaning.

10. The mop according to claim 4, characterized in that A hand-held portion (120) is threadedly connected to one end of the mop rod (100).