Mop wringing frame and mop
By designing a rotatable wiper component and a multi-wiping section structure, the problem of poor water squeezing effect caused by a fixed wiper blade is solved, achieving more efficient water squeezing and a longer equipment life.
Patent Information
- Application Number
- CN202422117322.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-30
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-08-30
AI Technical Summary
In existing mop wringing mechanisms, the squeegee is fixed in place, resulting in poor wringing performance and a bad user experience.
Design a mop wringer frame with a rotatable squeegee connected to it. The squeegee can rotate according to the direction of the mop board's movement to adjust the angle of the squeegee. Through multiple squeegee parts and a rolling cooperation structure, the wringing efficiency and stability are improved.
It improves the wringing effect, reduces residual water on the mop board, extends the service life of the equipment, and enhances the user experience.
Smart Images

Figure CN223541888U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mop cleaning technology, specifically to a mop wringer and a mop. Background Technology
[0002] After washing, mops need to be squeezed out of excess water using a wringer. Existing wringers typically have a fixed squeegee; the mop head passes through the wringer and is squeezed against the squeegee to expel excess water. However, in existing wringers, the squeegee is often stationary, only able to squeeze the mop head at a fixed angle. This results in poor water extraction and a subpar user experience. Utility Model Content
[0003] The problem solved by this invention is that in existing water-squeezing structures, the squeegee is often fixed and can only squeeze the mop board at a fixed angle, which results in poor water-squeezing effect and a poor user experience.
[0004] To solve the above problems, this utility model provides a mop wringer, which includes: a squeegee frame and a connecting frame, with a wringing space formed between the squeegee frame and the connecting frame for the mop board to pass through; a squeegee component, which is rotatably connected to the squeegee frame and includes a first squeegee part facing the wringing space; when the mop board enters the wringing space and moves, the squeegee component is driven to rotate along the moving direction of the mop board, and the first squeegee part is pressed against the mop board.
[0005] Compared to existing technologies, the technical advantages of this solution are as follows: The squeegee is rotatably connected to the squeegee frame. When the mop board enters the wringing space and moves, it drives the squeegee to rotate along the direction of the mop board's movement. This squeezing method allows the first squeegee section to adjust its relative angle according to the shape and movement trajectory of the mop board, resulting in a closer contact angle between the first squeegee section and the mop board. This effectively improves the wringing effect and reduces residual water on the mop board. Simultaneously, the squeezing between the squeegee and the mop board reduces fixed friction points, lowering the wear rate of both the squeegee and the mop board, thereby improving the overall durability of the wringer frame and extending its service life.
[0006] Furthermore, the wiper component includes: a base plate, one side of which is provided with a first wiping part; a balancing part, which is provided on the other side of the base plate and rolls in cooperation with the bottom wall of the wiper frame; when the wiper component rotates to the point where one end of the base plate abuts against the bottom wall of the wiper frame, the wiper component stops rotating.
[0007] Compared with existing technologies, the technical effects achieved by this solution are as follows: the balancing mechanism ensures the squeegee remains stable during rotation, reducing wobbling and friction, thus guaranteeing the squeegee's effective squeezing and cleaning of the mop cloth. By using one end of the base plate to abut against the bottom wall of the squeegee holder as a stopping point for rotation, the squeegee stops after reaching a predetermined angle during rotation, achieving precise squeezing control of the mop cloth.
[0008] Furthermore, a rotating shaft is provided on the base plate, and a mounting groove is provided on the side wall of the wiper frame. The rotating shaft is rotatably fitted into the mounting groove so that the wiper component is rotatably connected to the wiper frame.
[0009] Compared with existing technologies, the technical advantages achieved by this solution are as follows: the fit between the rotating shaft and the mounting groove ensures the stability of the wiper components during rotation, preventing poor wiping performance or equipment damage caused by loosening or misalignment. This robust connection method enhances the structural strength and service life of the entire wringer frame.
[0010] Furthermore, the wiper frame is provided with a second wiping section, which is parallel to and spaced apart from the wiper component.
[0011] Compared with existing technologies, the technical effects achieved by this solution are as follows: the addition of a second wiping section forms a dual-wiping structure. When the mop blade passes through the squeezing space, it is squeezed by both the first and second wiping sections, improving squeezing efficiency. Since the first and second wiping sections share the squeezing work, the burden on a single wiping component is reduced, thus effectively extending the service life of the wiping component.
[0012] Furthermore, the second wiper part is integrally formed with the wiper frame, and the second wiper part is a protruding structure formed by the inner wall of the wiper frame extending towards the squeezing space.
[0013] Compared with existing technologies, the technical effects achieved by this solution are as follows: the second wiper unit is integrally molded with the wiper frame, making the entire wiper frame structure more stable. This integral molding avoids loosening or detachment problems caused by prolonged use or frequent operation, thus enhancing the overall stability of the wiper frame. Furthermore, the integral molding simplifies the structure of the wringer frame and improves its overall compactness.
[0014] Furthermore, the bottom wall of the wiper frame is provided with a first drainage groove and a second drainage groove. The first drainage groove corresponds to the position of the wiper component, and the second drainage groove corresponds to the position of the second wiper part.
[0015] Compared with existing technologies, the technical effects achieved by this solution are as follows: The design of the first and second drainage channels allows water squeezed out by the squeegee and the second squeegee section when they press against the mop blade to be discharged through the drainage channels, preventing water accumulation and retention on the squeegee frame. Furthermore, since the first drainage channel corresponds to the squeegee and the second drainage channel corresponds to the second squeegee section, it ensures that water squeezed out when the mop blade passes through the squeegee frame, whether it is the squeegee or the second squeegee section in contact, can be effectively collected and discharged.
[0016] Furthermore, the wiper frame is provided with wiper teeth, which are arranged parallel to the wiper components and are located at one end of the wiper frame.
[0017] Compared with existing technologies, the technical effect achieved by this solution is that the scraping teeth can more effectively remove residues from the mop board, thereby improving the overall cleaning effect.
[0018] Furthermore, the mop wringer includes: a roller shaft, which is rotatably connected to the side of the squeegee frame near the wringing space and is arranged parallel to the squeegee; when the mop plate enters the wringing space and moves, the mop plate and the roller shaft roll into contact.
[0019] Compared to existing technologies, the technical advantages of this solution are as follows: Due to the presence of the rolling shaft, the mop board moves more smoothly within the wringing space, eliminating the need to overcome significant friction. This allows the mop board to pass through the wringing area more quickly, improving wringing efficiency. The rolling shaft design reduces frictional resistance between the mop board and the squeegee during wringing. Compared to sliding contact, the rolling action reduces friction and wear, thereby extending the lifespan of both the mop board and the squeegee.
[0020] Furthermore, a roller is provided on the side of the connecting frame near the squeezing space; when the mop board enters the squeezing space and moves, the mop board and the roller roll together.
[0021] Compared to existing technologies, the technical benefits of this solution are as follows: the rolling action of the rollers makes the mop board move more smoothly within the wringing space. Users can easily wring out the mop without having to push it forcefully, thus improving wringing efficiency and enhancing the user experience.
[0022] This utility model also provides a mop, which includes a mop wringer as described in any of the above solutions.
[0023] By adopting the technical solution of this utility model, the following technical effects can be achieved:
[0024] The squeegee is rotatably connected to the squeegee holder. When the mop board enters the wringing space and moves, it drives the squeegee to rotate along the direction of the mop board's movement. This squeezing method allows the first squeegee part to adjust its relative angle according to the shape and movement trajectory of the mop board, thus making the contact angle between the first squeegee part and the mop board more closely fit, effectively improving the wringing effect and reducing the amount of water remaining on the mop board. Attached Figure Description
[0025] Figure 1 A schematic diagram of the structure of the mop provided in this embodiment of the utility model;
[0026] Figure 2 for Figure 1 Enlarged view of point A in the middle;
[0027] Figure 3 This is a schematic diagram of the structure of the wiper frame provided in an embodiment of the present utility model;
[0028] Figure 4 A partial structural schematic diagram of the mop wringer provided in an embodiment of this utility model;
[0029] Figure 5 A cross-sectional view of a mop wringer provided in an embodiment of this utility model;
[0030] Figure 6 This is a schematic diagram of the structure of the wiper component provided in an embodiment of the present utility model.
[0031] Explanation of reference numerals in the attached figures:
[0032] 100, Squeegee frame; 110, Squeegee space; 120, Second squeegee section; 130, First drain groove; 140, Second drain groove; 150, Squeegee teeth; 200, Connecting frame; 210, Roller; 220, Connecting rod; 300, Squeegee component; 310, First squeegee section; 320, Base plate; 330, Balancing section; 340, Rotating shaft; 400, Rolling shaft; 500, Mop handle; 600, Mop board. Detailed Implementation
[0033] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.
[0034] This utility model provides a mop wringer, such as Figure 2 , Figure 3 and Figure 4As shown, the mop wringer includes: a squeegee frame 100 and a connecting frame 200, with a wringing space 110 formed between the squeegee frame 100 and the connecting frame 200 for the mop board 600 to pass through; a squeegee 300, which is rotatably connected to the squeegee frame 100, and includes a first squeegee portion 310 facing the wringing space 110; when the mop board 600 enters the wringing space 110 and moves, the squeegee 300 is driven to rotate along the moving direction of the mop board 600, and the first squeegee portion 310 is pressed and engaged with the mop board 600.
[0035] Specifically, such as Figure 1 As shown, the mop includes a mop handle 500 and a mop board 600. The mop board 600 can rotate relative to one end of the mop handle 500. A mop cloth is provided on one side of the mop board 600. After the mop is washed with clean water, the mop cloth needs to be wrung out and cleaned by the wringer on the mop board. The mop board 600 is rotated to be parallel to the mop handle 500. At this time, the mop board 600 and the wringer space 110 are parallel, and the mop board 600 can perform the wringing and cleaning work through the wringer space 110.
[0036] Specifically, a squeegee 300 is rotatably connected to the squeegee frame 100. The squeegee 300 includes a first squeegee section 310 facing the wringing space 110. When the mop board 600 enters the wringing space 110, the side of the mop board 600 with the mop cloth corresponds to the first squeegee section 310.
[0037] Specifically, such as Figure 5 As shown, when the mop board 600 enters the wringing space 110 and comes into contact with the squeegee 300, since the squeegee 300 is rotatably connected to the squeegee frame 100, the squeegee 300 rotates in the direction of the mop board 600's movement under the drive of the mop board 600. This allows the first squeegee part 310 of the squeegee 300 to adjust its relative angle according to the moving trajectory of the mop board 600, thereby making the contact angle between the first squeegee part 310 and the mop board 600 more closely fit, effectively improving the wringing effect.
[0038] Furthermore, such as Figure 6 As shown, the wiper component 300 includes: a base plate 320, with a first wiping section 310 on one side of the base plate 320; and a balancing section 330, which is located on the other side of the base plate 320 and rolls in cooperation with the bottom wall of the wiper frame 100. When the wiper component 300 rotates to the point where one end of the base plate 320 abuts against the bottom wall of the wiper frame 100, the wiper component 300 stops rotating.
[0039] Specifically, when the wiper 300 rotates in the direction of the mop board 600 under the drive of the mop board 600, one end of the base plate 320 abuts against the bottom wall of the wiper frame 100, keeping the wiper 300 stationary.
[0040] It should be noted that by setting the height of the wiper component 300 and the width of the base plate 320, it can be determined that the wiper component 300 will stop after reaching a predetermined angle during rotation, thereby achieving precise squeezing control.
[0041] Furthermore, a rotating shaft 340 is provided on the base plate 320, and a mounting groove is provided on the side wall of the wiper frame 100. The rotating shaft 340 is rotatably fitted into the mounting groove so that the wiper component 300 is rotatably connected to the wiper frame 100.
[0042] Specifically, the fit between the rotating shaft 340 and the mounting groove ensures the stability of the wiper 300 during rotation, preventing poor wiping performance or equipment damage due to loosening or misalignment.
[0043] Furthermore, the wiper frame 100 is provided with a second wiper part 120, which is parallel to and spaced apart from the wiper component 300.
[0044] Specifically, such as Figure 3 and 5 As shown, the squeegee frame 100 is provided with a second squeegee part 120, which is arranged parallel to the squeegee component 300. During the reciprocating process, the mop plate 600 squeezes the second squeegee part 120 and the squeegee component 300 in turn, thereby squeezing out the water from the mop.
[0045] Furthermore, the second wiper part 120 is integrally formed with the wiper frame 100, and the second wiper part 120 is a protruding structure formed by the wiper frame 100 extending towards the squeezing space 110.
[0046] Furthermore, such as Figure 3 As shown, the bottom wall of the wiper frame 100 is provided with a first drainage groove 130 and a second drainage groove 140. The first drainage groove 130 corresponds to the position of the wiper component 300, and the second drainage groove 140 corresponds to the position of the second wiper part 120.
[0047] Furthermore, the wiper frame 100 is provided with wiper teeth 150, which are arranged parallel to the wiper component 300 and are located at one end of the wiper frame 100.
[0048] Specifically, one end of the squeegee 100 is equipped with squeegee 150, which is used to remove stains from the mop, thereby improving the overall cleaning effect.
[0049] Furthermore, the mop wringer includes a roller shaft 400, which is rotatably connected to the side of the squeegee 100 near the wringing space 110 and is arranged parallel to the squeegee 300; when the mop plate 600 enters the wringing space 110 and moves, the mop plate 600 and the roller shaft 400 roll in cooperation.
[0050] Preferred, such as Figure 5 As shown, the squeegee 150, second squeegee 120, squeegee 300, and roller shaft 400 are arranged sequentially in the squeegee frame 100. The first direction is from the squeegee 150 to the second squeegee 120, squeegee 300, and roller shaft 400, and the second direction is from the roller shaft 400 to the squeegee 300, second squeegee 150, and squeegee 150. When the mop plate 600 passes through the wringing space 110 for the first time to wring water, it passes through the squeegee 150, second squeegee 120, squeegee 300, and roller shaft 400 in the first direction. At this time, the mop cloth on the mop plate 600 first passes through the squeegee 150 to remove dirt from the mop cloth, then passes through the second squeegee 120 and squeegee 300 in sequence to wring water, and finally rolls in cooperation with the roller shaft 400. Afterwards, the mop board 600 alternately passes through the wringing space 110 in the second direction and the first direction to wring out the mop multiple times.
[0051] It needs to be explained, such as Figure 5 As shown, Figure 5 As can be seen, the scraper teeth 150, the second scraper part 120, and the roller shaft 400 are at the same horizontal height. When the mop plate 600 passes through the wringing space 110, its height is the same as that of the scraper teeth 150, the second scraper part 120, and the roller shaft 400. Furthermore, when the mop plate 600 drives the squeegee 300, the squeegee 300 rotates in the direction of the mop plate 600's movement. At this time, the first scraper part 310 of the squeegee 300 is at the same horizontal height as the scraper teeth 150, the second scraper part 120, and the roller shaft 400, thereby ensuring that the mop plate 600 can fully contact the scraper teeth 150, the second scraper part 120, the squeegee 300, and the roller shaft 400 when passing through the wringing space 110.
[0052] Furthermore, a roller 210 is provided on the side of the connecting frame 200 near the squeezing space 110; when the mop plate 600 enters the squeezing space 110 and moves, the mop plate 600 and the roller 210 roll together.
[0053] This embodiment also provides a mop, which includes a mop wringer as described in any of the above technical solutions.
[0054] Specifically, one end of the connecting frame 200 is provided with a connecting rod 220, which is slidably connected to the mop handle 500 so that the mop wringer can move relative to the mop handle 500 along its axial direction.
[0055] While the present invention has been disclosed above, it is not limited thereto. Any person skilled in the art can make various modifications and alterations without departing from the spirit and scope of the present invention; therefore, the scope of protection of the present invention should be determined by the scope defined in the claims.
Claims
1. A mop wringer, characterized in that, The mop wringer includes: The squeegee (100) and the connecting frame (200) form a squeezing space (110) between the squeegee (100) and the connecting frame (200) for the mop board (600) to pass through. Wiper (300), the wiper (300) is rotatably connected to the wiper frame (100), the wiper (300) includes a first wiping portion (310) disposed toward the squeezing space (110); When the mop plate (600) enters the wringing space (110) and moves, the squeegee (300) is driven to rotate along the moving direction of the mop plate (600), and the first squeegee (310) is pressed and engaged with the mop plate (600). The mop wringer includes: A rolling shaft (400) is rotatably connected to the wiper frame (100) on the side near the squeezing space (110) and is arranged parallel to the wiper component (300); When the mop plate (600) enters the wringing space (110) and moves, the mop plate (600) rolls in cooperation with the rolling shaft (400).
2. The mop wringer according to claim 1, characterized in that, The wiper component (300) includes: The base plate (320) has the first squeegee part (310) on one side. A balancing part (330) is provided on the other side of the base plate (320), and the balancing part (330) rolls in cooperation with the bottom wall of the wiper frame (100); When the wiper (300) rotates to the point where one end of the base plate (320) abuts against the bottom wall of the wiper frame (100), the wiper (300) stops rotating.
3. The mop wringer according to claim 2, characterized in that, The base plate (320) is provided with a rotating shaft (340), and the side wall of the wiper frame (100) is provided with a mounting groove. The rotating shaft (340) is rotatably fitted into the mounting groove so that the wiper component (300) is rotatably connected to the wiper frame (100).
4. The mop wringer according to claim 1, characterized in that, The wiper frame (100) is provided with a second wiper section (120), which is parallel to and spaced apart from the wiper component (300).
5. The mop wringer according to claim 4, characterized in that, The second wiper part (120) is integrally formed with the wiper frame (100), and the second wiper part (120) is a protruding structure formed by the wiper frame (100) extending towards the squeezing space (110).
6. The mop wringer according to claim 4, characterized in that, The bottom wall of the wiper frame (100) is provided with a first drainage groove (130) and a second drainage groove (140). The first drainage groove (130) corresponds to the position of the wiper component (300), and the second drainage groove (140) corresponds to the position of the second wiper part (120).
7. The mop wringer according to any one of claims 1 to 6, characterized in that, The wiper frame (100) is provided with scraper teeth (150), the scraper teeth (150) are arranged parallel to the wiper component (300), and the scraper teeth (150) are located at one end of the wiper frame (100).
8. The mop wringer according to claim 1, characterized in that, A roller (210) is provided on the side of the connecting frame (200) near the squeezing space (110). When the mop plate (600) enters the squeezing space (110) and moves, the mop plate (600) rolls in cooperation with the roller (210).
9. A mop, characterized in that, Includes a mop wringer as described in any one of claims 1 to 8.