Bucket-shaped screwing extrusion type wringing barrel
By designing a bucket-shaped, push-twist, and squeeze-type dehydration bucket, the problem of time-consuming and labor-intensive existing mop cleaning equipment is solved. It provides multiple dehydration methods, achieving a fast, convenient, and low-cost mop dehydration effect, and is suitable for various types of mops.
Patent Information
- Application Number
- CN202422901676.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-11-27
AI Technical Summary
Existing mop cleaning and drying equipment suffers from problems such as being time-consuming and labor-intensive, having limited applicability, complex structure, and high cost, especially in terms of its insufficient applicability to disc-shaped short-pile mop heads and large-area cleaning work.
Design a bucket-shaped press-twist squeezing drum. By installing toothed or plate-shaped guardrails with water leakage holes on the squeezing plate, a bucket-shaped squeezing chamber is formed. Combining pressing and rotation methods, multiple dehydration operations can be achieved, which is suitable for various types of mops.
It achieves fast, convenient, and low-cost dehydration of mops, is highly applicable, suitable for the general public and low-income groups, and has broad market prospects.
Smart Images

Figure CN223614778U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of daily cleaning products, and specifically relates to a bucket-shaped push-twist squeezing bucket. Background Technology
[0002] Mops are a common cleaning product used in daily life. During use, the mop head needs to be cleaned frequently. In the past, cleaning and drying the mop head required wringing it dry by hand, which was unhygienic and time-consuming. Currently, to solve the problem of cleaning and drying mops without getting them wet, common technologies include rotary wheel spin dryers, foot-operated wringers, and other types of wringers.
[0003] Spin-drying with a rotating wheel is only suitable for disc-shaped, short-pile mop heads. However, due to the short and sparse bristles, these heads are slow and inefficient. Furthermore, the disc shape limits cleaning access to narrow areas like corners, creating blind spots. Spin-drying also requires continuous pressing of the mop, which is time-consuming and laborious.
[0004] Foot-operated dehydration equipment is relatively complex in structure and expensive. It is prone to malfunction after a period of use. It also requires the use of both hands and feet, which is strenuous and not suitable for the elderly.
[0005] Other types of wrenches, due to their inherent limitations, are only suitable for use with single-layer cloth mops and are not suitable for large-area cleaning work.
[0006] The utility model patent with publication number CN210077585U, applied for by the inventor on March 21, 2019, basically solves the above problems. However, this solution still has shortcomings. It cannot perform pressing, wringing and dehydration treatment on the mop. Furthermore, due to wear and tear over time, water seepage may occur at the drive shaft. Utility Model Content
[0007] To address the aforementioned problems, this utility model provides a bucket-shaped press-and-twist squeeze-drying bin. Based on the original patent's two squeeze-drying plates arranged in a V-shape, two rows of toothed or plate-shaped drain covers are installed on the left and right sides of each squeeze-drying plate, from top to bottom, at approximately a 100-degree angle to the bottom of the bin. This transforms the original V-shaped squeeze-drying bin into a bucket-shaped squeeze-drying bin. During use, the mop is placed inside the squeeze-drying bin, allowing for multiple methods of dehydration through pressing and twisting.
[0008] This utility model is implemented as follows: a bucket-shaped push-twist squeezing bucket includes a bucket body, characterized in that the bucket body is provided with a first squeezing plate and a second squeezing plate, the first squeezing plate rotates relative to the second squeezing plate, a row of first toothed racks is provided on each side of the first squeezing plate, and a row of second toothed racks is provided on each side of the second squeezing plate, the first toothed racks and the second toothed racks are arranged opposite to each other.
[0009] Furthermore, the two rows of first toothed racks are arranged in an inverted V-shape with the larger top and smaller bottom relative to the first extrusion plate, and the two rows of second toothed racks are arranged in an inverted V-shape with the larger top and smaller bottom relative to the second extrusion plate.
[0010] Furthermore, the second squeezing plate is fixed inside the barrel.
[0011] Furthermore, the upper side of the two side walls of the barrel is provided with a second mounting through hole, the lower side of the two sides of the barrel is provided with a second mounting slot, the upper end of the two sides of the second squeezing plate is provided with a second mounting screw hole, the lower end of the second squeezing plate is inserted into the second mounting slot, and the upper end of the second squeezing plate is fixedly connected to the barrel by screws.
[0012] Furthermore, the lower end of the first squeezing plate is hinged to the barrel body; the first squeezing plate is disposed on one side of the second squeezing plate, forming a bucket-shaped structure with the second squeezing plate, the first rack and the second rack, which is larger at the top and smaller at the bottom.
[0013] Furthermore, the lower ends of both sides of the first extrusion plate are provided with mounting shafts, and the lower sides of both sides of the barrel are provided with first mounting shaft grooves. The mounting shaft is inserted into the first mounting shaft groove from the opening end of the first mounting shaft groove.
[0014] Furthermore, the first rack has a plurality of first teeth, the length of which gradually increases from bottom to top; the second rack has a plurality of second teeth, the length of which gradually increases from bottom to top.
[0015] Furthermore, the first extrusion plate is provided with a plurality of first water-permeable holes, and the second extrusion plate is provided with a plurality of second water-permeable holes.
[0016] Furthermore, the first extrusion plate is provided with an extrusion handle.
[0017] The beneficial effects of this invention are: it can dehydrate mops through various methods such as pressing and wringing, and the humidity of the dehydrated mop can be adjusted as needed. This product has a simple structure, is convenient and quick to use, has good results, low cost, and strong applicability, making it acceptable to the general public and low-income groups. It has good economic benefits and a broad market prospect.
[0018] The present invention will be explained in detail below with reference to the accompanying drawings and specific embodiments. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the structure of this utility model;
[0020] Figure 2 This is a schematic diagram of the barrel structure of this utility model;
[0021] Figure 3 This is a schematic diagram of the first extrusion plate structure of this utility model;
[0022] Figure 4 This is a schematic diagram of the structure of the second extrusion plate of this utility model.
[0023] In the figure: barrel body 1, extrusion handle 2, first mounting shaft groove 3, second mounting slot 4, second mounting through hole 5, first squeezing plate 21, second squeezing plate 22, first rack 23, mounting shaft 24, first water-permeable hole 25, second rack 26, second water-permeable hole 27, second mounting screw hole 28. Detailed Implementation
[0024] Example 1:
[0025] A bucket-shaped, press-and-squeeze type squeezing bucket, such as Figures 1-4 As shown, the device includes a barrel body 1, which is a rectangular parallelepiped with a stepped opening at the top. A first squeezing plate 21 and a second squeezing plate 22 are provided inside the barrel body 1, with the second squeezing plate 22 fixed within the barrel body 1. Second mounting through holes 5 are provided on the upper sides of both side walls of the barrel body 1, and second mounting slots 4 are provided on the lower sides of both sides of the barrel body 1. Second mounting screw holes 28 are provided on the upper ends of both sides of the second squeezing plate 22. The lower ends of the second squeezing plate 22 are inserted into the second mounting slots 4, and the upper ends of the second squeezing plate 22 are fixedly connected to the barrel body 1 by screws.
[0026] The first extrusion plate 21 has a row of first toothed racks 23 on each side, and the second extrusion plate 22 has a row of second toothed racks 26 on each side. The first toothed racks 23 and the second toothed racks 26 are arranged in a staggered manner and are all distributed inward to form a wrap-around extrusion chamber.
[0027] The first rack 23 has a plurality of first teeth, the length of which gradually increases from bottom to top; the second rack 26 has a plurality of second teeth, the length of which gradually increases from bottom to top.
[0028] The lower end of the first squeezing plate 21 is hinged to the barrel body 1, while the upper end is not fixed. The first squeezing plate 21 is disposed on one side of the second squeezing plate 22, forming a funnel-shaped squeezing chamber that is larger at the top and smaller at the bottom. The first squeezing plate 21 can rotate relative to the second squeezing plate 22. During rotation, the first rack 23 and the second rack 26 do not interfere with each other. The funnel-shaped squeezing chamber is named for its funnel-like internal shape. The funnel-shaped squeezing chamber has a large opening at the top, and the four walls are not perpendicular, having an inclination greater than 90 degrees. This causes the walls to converge towards the center as they descend, forming a funnel-shaped squeezing chamber with a large inner upper diameter and a small bottom diameter.
[0029] The first squeezing plate 21 has a squeezing handle 2 at the top, which is fixedly connected to the upper end of the first squeezing plate 21 by screws. The lower ends of both sides are provided with mounting shafts 24. The lower sides of the two side walls of the barrel 1 are provided with first mounting shaft grooves 3. The mounting shaft 24 is inserted into the first mounting shaft groove 3 from the opening end of the first mounting shaft groove 3. The mounting shaft groove 3 consists of two conical locking holes located on the barrel wall. The locking holes have a small opening and a large bottom. The cylindrical mounting shaft 24 at the bottom of the first squeezing plate 21 is inserted into the locking holes. Due to the small opening, the mounting shaft 24 is not easy to disengage but can rotate freely. Pulling the squeezing handle 2 at the upper end of the first squeezing plate 21 can make the first squeezing plate 21 swing radially. During this process, the position of the mounting shaft 24 at the bottom of the first squeezing plate 21 remains unchanged. When the first squeezing plate 21 swings to a certain amplitude, its rack contacts the second squeezing plate 22. The racks of the first squeezing plate 21 and the second squeezing plate 22 are staggered. When the first squeezing plate 21 swings, the first rack 23 and the second rack 26 on the second squeezing plate 22 do not interfere with each other.
[0030] The first squeezing plate 21 is provided with a plurality of first water-permeable holes 25, and the second squeezing plate 22 is provided with a plurality of second water-permeable holes 27.
[0031] This embodiment presents a bucket-shaped, push-to-squeeze type squeezing bucket, applicable to various types of mops. When dehydrating the mop head, the mop head is first placed between the bucket-shaped squeezing chamber formed by the first squeezing plate 21 and the second squeezing plate 22. Then, the squeezing handle 2 is pressed down, causing the first squeezing plate 21 to move towards the second squeezing plate 22. The space in the bucket-shaped squeezing chamber is continuously compressed. During the squeezing process, wastewater from the mop head flows out through the first and second water-permeable holes 25 and 27 on the first and second squeezing plates 21 and 22, and enters the bucket body 1 of the squeezing bucket.
[0032] Alternatively, the mop head can be wrung out by rotating the mop handle. When the mop handle is rotated, the mop head rotates accordingly. During this rotation, the cotton strips on the mop head are caught by the racks on the first squeezing plate 21 and the second squeezing plate 22. This prevents the cotton strips from rotating with the mop head. As the mop head continues to rotate, a squeezing force is generated between the cotton strips and the other parts of the mop head. Because the cotton strips are relatively stationary due to being caught by the racks on the first and second squeezing plates 21 and 22, while the other parts of the mop head continue to rotate, the purpose of wringing the mop dry is achieved.
[0033] Furthermore, you can place the mop head directly into the hopper, press it down while rotating the mop head. As the mop head rotates downwards, its volume gradually decreases from its initial larger size to the smaller lower half. As the volume of the mop head shrinks, the water in the mop head is squeezed out.
[0034] The above description is only used to illustrate the technical solution of this utility model and is not intended to limit it. Although this utility model has been described in detail with reference to the preferred arrangement, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model (such as the connection method, the shape of each element, etc.) without departing from the spirit and scope of the technical solution of this utility model.
Claims
1. A bucket-shaped, press-and-squeeze type squeezing bucket, comprising a bucket body (1), characterized in that, The barrel body (1) is provided with a first squeezing plate (21) and a second squeezing plate (22). The first squeezing plate (21) rotates relative to the second squeezing plate (22). A row of first racks (23) is provided on each side of the first squeezing plate (21), and a row of second racks (26) is provided on each side of the second squeezing plate (22). The first racks (23) and the second racks (26) are arranged alternately.
2. The bucket-shaped, screw-operated, squeezing bucket according to claim 1, characterized in that, The two rows of first toothed racks (23) are arranged in an inverted V-shape with the upper part larger than the lower part relative to the first extrusion plate (21), and the two rows of second toothed racks (26) are arranged in an inverted V-shape with the upper part larger than the lower part relative to the second extrusion plate (22).
3. The bucket-shaped, screw-operated, squeezing dryer according to claim 1, characterized in that, The second extrusion plate (22) is fixed inside the barrel (1).
4. The bucket-shaped, screw-operated, squeezing bucket according to claim 1, characterized in that, The upper side of the two side walls of the barrel (1) is provided with a second mounting through hole (5), the lower side of the two sides of the barrel (1) is provided with a second mounting slot (4), the upper end of the two sides of the second squeezing plate (22) is provided with a second mounting screw hole (28), the lower end of the second squeezing plate (22) is inserted into the second mounting slot (4), and the upper end of the second squeezing plate (22) is fixedly connected to the barrel (1) by screws.
5. The bucket-shaped, screw-operated, squeezing bucket according to claim 1, characterized in that, The lower end of the first squeezing plate (21) is hinged to the barrel body (1); the first squeezing plate (21) is disposed on one side of the second squeezing plate (22), forming a bucket-shaped structure with the second squeezing plate (22), the first toothed rack (23) and the second toothed rack (26) being larger at the top and smaller at the bottom.
6. The bucket-shaped, screw-operated, squeezing dryer according to claim 1, characterized in that, The lower ends of the first extrusion plate (21) are provided with mounting shafts (24), and the lower sides of the two side walls of the barrel (1) are provided with first mounting shaft grooves (3). The mounting shaft (24) is inserted into the first mounting shaft groove (3) from the opening end of the first mounting shaft groove (3).
7. The bucket-shaped, screw-operated, squeezing bucket according to claim 1, characterized in that, The first rack (23) has a plurality of first teeth, the length of which gradually increases from bottom to top; the second rack (26) has a plurality of second teeth, the length of which gradually increases from bottom to top.
8. The bucket-shaped, screw-operated, squeezing dryer according to claim 1, characterized in that, The first extrusion plate (21) is provided with a plurality of first water-permeable holes (25), and the second extrusion plate (22) is provided with a plurality of second water-permeable holes (27).
9. The bucket-shaped, screw-operated, squeezing bucket according to claim 1, characterized in that, The first extrusion plate (21) is provided with an extrusion handle (2).
Citation Information
Patent Citations
Lever traction multipurpose wringing barrel
CN210077585U