Self-cleaning multifunctional mop bucket
By designing separate clean water and wastewater compartments in the mop bucket and utilizing water supply and drainage mechanisms to achieve automatic separation of clean water and wastewater, the problem of time-consuming and laborious cleaning and wringing of flat mops is solved, improving cleaning efficiency and convenience.
Patent Information
- Application Number
- PCT/CN2025/094130
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-11-29
- Filing Date
- 2025-05-11
- Publication Date
- 2026-02-19
AI Technical Summary
The existing flat mop has a time-consuming and labor-intensive cleaning and wringing process, and the clean water area and dirty water area are not effectively separated, resulting in the problem of the clean water becoming dirty.
Design a self-cleaning multi-functional mop bucket, which includes separate clean water and wastewater tanks. It uses a water supply mechanism and a drainage mechanism to achieve automatic separation and discharge of clean water and wastewater. The up and down movement of the mop drives the piston and drive component to achieve the spraying of clean water and the isolation and discharge of wastewater.
It achieves automatic separation of clean water and wastewater, reduces repetitive washing and dehydration operations, and improves cleaning efficiency and convenience.
Smart Images

Figure CN2025094130_19022026_PF_FP_ABST
Abstract
Description
Self-cleaning multifunctional mop bucket TECHNICAL FIELD
[0001] The present application relates to the field of cleaning tools, in particular to a self-cleaning multifunctional mop bucket. BACKGROUND
[0002] Cleaning is a necessary work in daily life, and how to make cleaning effective and fast is the development direction of cleaning tools. The flat mop includes a mop rod and a flat mop head hinged together, and a flat mop wiping material is fixed on the flat mop head by a sleeving, pasting or buckling manner; when in use, the wiping material on the flat mop can be fully attached to the ground, which is very convenient for cleaning the ground; and the wiping material is also convenient to take off or place in the bucket for cleaning, so it is favored by people, but the operation convenience of the flat mop and the cleaning of the flat mop have always been a production problem.
[0003] Most of the cleaning and dewatering of the flat mop on the market adopts the method of using a clean water area to clean the mop, and using a water squeezing mechanism arranged on the mop rod to squeeze and clean the wiping material on the flat mop by relative squeezing movement between the water squeezing mechanism and the flat mop after cleaning is completed. In addition, a water squeezing device and a water scraping strip are directly arranged in the bucket to remove dirt on the mop head while squeezing water, thereby improving the dirt removal effect. However, it is found that this method needs to be cleaned and then dewatered, which leads to frequent repeated washing and dewatering process, time-consuming and laborious, and the clean water area and the sewage area are not distinguished, so that the clean water becomes sewage after the first cleaning is completed. SUMMARY
[0004] To solve the above technical problems, one technical scheme adopted by the present application is:
[0005] A self-cleaning multifunctional mop bucket, comprising a bucket body, the bucket body is provided with a separate clean water bin and a sewage bin, one of the clean water bin and the sewage bin is provided with a water supply mechanism;
[0006] The water supply mechanism comprises a water inlet channel, a water outlet channel and a water supply structure communicated with the water inlet channel and the water outlet channel, the water supply structure comprises a water storage pipe and a water outlet driving assembly, the water outlet driving assembly is installed on the water storage pipe, and the driving force generated by the contact between the mop and the water outlet driving assembly when the mop moves up and down can pump the clean water in the water inlet channel to the water storage pipe and then discharge it through the water outlet channel.
[0007] Further, the contact is friction, and the driving force generated by the friction between the mop cloth and the water outlet driving assembly when the mop moves up and down.
[0008] Further, the water outlet driving assembly comprises a piston and a driving member, the piston is connected with the driving member through a connecting member, the piston is located in the water storage pipe, and the mop can drive the driving member to rotate on the water storage pipe.
[0009] Further, the piston can also be a vane pump or a gear pump.
[0010] Further, the connecting member comprises a connecting rod and a crank, the crank is connected with the driving member, one end of the connecting rod is hingedly connected with the piston, and the other end of the connecting rod is rotationally connected with the crank, when the driving member rotates, the crank drives the connecting rod to move upward / downward.
[0011] Further, the water supply structure further comprises a water inlet pipe communicated with the water inlet channel and a water outlet pipe communicated with the water outlet channel, and the water inlet pipe, the water storage pipe and the water outlet pipe are communicated with each other.
[0012] Further, the water inlet pipe is provided with a first blocking member at one end close to the water outlet pipe, the water outlet pipe is provided with a second blocking member at one end close to the water inlet pipe, when the driving member drives the piston to move upward, the second blocking member is pressed downward and is limited to stop, the first blocking member is forced to open upward, and the clean water is sucked in, when the driving member drives the piston to move downward, the first blocking member is pressed downward and is limited to stop, the second blocking member is pressed to open upward, and the clean water is sprayed from the water outlet pipe.
[0013] Further, the sewage bin is provided with a sewage separation area, and the mop moves up and down in the sewage separation area.
[0014] Further, the sewage bin is provided with a cleaning mechanism, and the cleaning mechanism is located at the water outlet of the water outlet channel.
[0015] Further, the cleaning mechanism comprises a cleaning member and a plurality of water injection ports, and the water injection ports are communicated with the water outlet.
[0016] Further, a bucket cover is installed at the upper end of the bucket body, the bucket cover is fixedly connected with a support member, a water scraping member is slidingly connected with the support member, a plurality of rollers for guiding the mop are arranged on the support member and are rotationally connected with the support member, at least one inclined sliding rail is further arranged on the support member, the water scraping member slides on the sliding rail, a plurality of through holes for guiding sewage are arranged on the water scraping member, and the water outlet of the through holes flows into the sewage bin.
[0017] Further, the sewage bin is provided with a water outlet.
[0018] Further, the bucket cover is further provided with two groups of guide grooves, the positions of the two groups of guide grooves correspond to the cleaning area and the wiping area respectively, the mop is provided with a guide block sliding in the guide grooves, when the guide block on the mop enters the guide grooves, the mop can slide up and down along the guide grooves.
[0019] Further, the sewage isolation area is provided with a drainage mechanism, the drainage mechanism is used for draining the residual water in the sewage isolation area to the sewage bin.
[0020] Further, the drainage mechanism comprises a water inlet, a water outlet and a drainage structure communicating with the water inlet and the water outlet, the drainage structure comprises a water storage pipe and a cylinder driving assembly, the cylinder driving assembly is installed on the water storage pipe, when wiping, the driving force generated by the friction between the up and down movement of the mop and the cylinder driving assembly can pump the residual water in the water inlet to the water storage pipe and then drain the residual water to the sewage bin through the water outlet.
[0021] Further, the water inlet channel can be double channels, one group of channels communicates with the clean water bin, and the other group of channels is connected with the sewage isolation area; the water outlet channel is double channels, one group of channels is used for draining the clean water entered by the water inlet channel communicating with the clean water bin, and the other group of channels is used for draining the sewage entered by the water inlet channel communicating with the sewage isolation area.
[0022] The beneficial effects of the present application are as follows:
[0023] 1. In actual operation, when the driving part of the water supply mechanism drives the piston to move upward, the first blocking part is upwardly pressed and limited to stop, the second blocking part is upwardly pressed and opened, and the clean water is sucked in, when the driving part drives the piston to move downward, the second blocking part is downwardly pressed and limited to stop, the first blocking part is upwardly pressed and opened, and the clean water is sprayed from the water spraying pipe, and the driving part can independently drain water by the up and down movement of the mop, and the bucket is divided into a clean water bin and a sewage bin, so that the clean water and the sewage are automatically separated, and the use is convenient.
[0024] 2. The sewage bin is further provided with a separate sewage isolation area, the sewage isolation area can accommodate the up and down movement of the mop, and the sewage bin can be isolated in the sewage isolation area, when the mop is wiped up and down, the mop enters the sewage isolation area, so that the clean mop is prevented from being contaminated by the sewage in the sewage bin. BRIEF DESCRIPTION OF DRAWINGS
[0025] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or the prior art description. Obviously, the drawings in the following description only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.
[0026] Fig. 1 is a schematic diagram of the overall structure of the present application;
[0027] Fig. 2 is a schematic diagram of a sectional structure of the present application;
[0028] Fig. 3 is a schematic diagram of a squeezing part of the present application;
[0029] Fig. 4 is a schematic diagram of a half-section of Fig. 3 of the present application;
[0030] Fig. 5 is a schematic diagram of a driving part of the present application;
[0031] Fig. 6 is a schematic diagram of a cleaning part of the present application;
[0032] Fig. 7 is a schematic diagram of a bucket cover of the present application;
[0033] Fig. 8 is a schematic diagram of a water flow direction of the present application;
[0034] Fig. 9 is a schematic diagram of a drainage mechanism of the present application;
[0035] BRIEF DESCRIPTION OF THE DRAWINGS 1, bucket body; 11, clean water bin; 111, drainage port; 12, sewage bin; 121, cleaning mechanism; 1211, cleaning part; 1212, water spraying port; 13, water supply mechanism; 131, water inlet channel; 1311, water inlet pipe; 1312, first blocking part; 132, water outlet channel; 1321, water outlet pipe; 1322, second blocking part; 133, water supply structure; 1331, water storage pipe; 1332, water outlet driving assembly; 13321, piston; 13322, driving part; 13323, connecting part; 133231, crank; 133232, connecting rod; 14, sewage separation area; 141, drainage mechanism; 141-1, water inlet port; 141-2, water outlet port; 141-3, drainage structure; 141-31, water storage pipe; 141-32, cylinder driving assembly; 2, bucket cover; 21, supporting part; 211, roller; 212, slide rail; 22, water scraping part; 23, guide groove. DETAILED DESCRIPTION
[0036] The preferred embodiments of the present application will be described in detail below with reference to the drawings, so that the advantages and features of the present application can be more easily understood by those skilled in the art, and the scope of protection of the present application can be more clearly defined.
[0037] Specific embodiment 1:
[0038] The utility model provides a self-cleaning multifunctional mop bucket, which comprises a bucket body 1, the bucket body 1 is equipped with independent clean water bin 11 and sewage bin 12, one of the clean water bin 11 and the sewage bin 12 is equipped with water supply mechanism 13, specifically, the sewage bin 12 is equipped with a pollution separation area 14, and the mop moves up and down in the pollution separation area 14, specifically, the sewage bin 12 is equipped with a cleaning mechanism 121, and the cleaning mechanism 121 is located at the water outlet of the water outlet channel 132, specifically, the cleaning mechanism 121 comprises a cleaning piece 1211 and a plurality of water injection ports 1212, the water injection ports 1212 are communicated with the water outlet, specifically, the sewage bin is equipped with a water outlet 111, specifically, the pollution separation area 14 is equipped with a drainage mechanism 141, the drainage mechanism 141 is used for draining residual water in the pollution separation area 14 to the sewage bin 12, the drainage mechanism 141 comprises a water inlet 141-1, a water outlet 141-2 and a drainage structure 141-3 communicated with the water inlet 141-1 and the water outlet 141-2, the drainage structure 141-3 comprises a water storage pipe 141-31 and a cylinder driving assembly 141-32, the cylinder driving assembly 141-32 is installed on the water storage pipe 141-31, when the mop is scraped and dried, the driving force generated by the contact between the up-and-down movement of the mop and the cylinder driving assembly 141-32 can pump the residual water in the water inlet 141-1 to the water storage pipe 141-31 and then discharge the residual water to the sewage bin 12 through the water outlet 141-2, and in the embodiment, the contact is friction, and the driving force generated by the friction between the mop cloth and the water outlet driving assembly 1332 when the mop moves up and down.
[0039] In other embodiments, the water inlet channel 131 can also be a double channel, one group of channels is communicated with the clean water bin 11, and the other group of channels is connected with the pollution separation area 14, the water outlet channel 132 is a double channel, one group of channels is used for discharging clean water entered by the water inlet channel 131 communicated with the clean water bin 11, and the other group of channels is used for discharging sewage entered by the water inlet channel 131 communicated with the pollution separation area 14, when the mop slides up and down on the cleaning area, the cleaning mechanism can be driven to clean and discharge the residual water in the pollution separation area 14 at the same time.
[0040] The water supply mechanism 13 comprises a water inlet channel 131, a water outlet channel 132, and a water supply structure 133 communicating with the water inlet channel 131 and the water outlet channel 132, the water supply structure 133 comprising a water storage pipe 1331 and a water outlet driving assembly 1332, the water outlet driving assembly 1332 being installed on the water storage pipe 1331, the driving force generated by the friction between the mop and the water outlet driving assembly 1332 when the mop moves up and down can drive the clean water in the water inlet channel 131 to the water storage pipe 1331 and then discharged through the water outlet channel 132. Specifically, the water outlet driving assembly 1332 comprises a piston 13321 and a driving piece 13322, the piston 13321 is connected with the driving piece 13322 through a connecting piece 13323, the piston 13321 is located in the water storage pipe 1331, and the mop can drive the driving piece 13322 to rotate on the water storage pipe 1331. Specifically, the connecting piece 13323 comprises a connecting rod 133232 and a crank 133231, the crank 133231 is connected with the driving piece 13322, one end of the connecting rod 133232 is hinged with the piston 13321, and the other end is rotatably connected with the crank 133231, when the driving piece 13322 rotates, the crank 133231 drives the connecting rod 133231 to move upward / downward. Specifically, the water supply structure 133 further comprises a water inlet pipe 1311 communicating with the water inlet channel 131, and a water outlet pipe 1321 communicating with the water outlet channel 132, the water inlet pipe 1311, the water storage pipe 1331 and the water outlet pipe 1321 communicate with each other. Specifically, the water inlet pipe 1311 is provided with a first blocking piece 1312 at one end close to the water outlet pipe 1321, and the water outlet pipe 1321 is provided with a second blocking piece 1322 at one end close to the water inlet pipe 1311, when the driving piece 13322 drives the piston 13321 to move upward, the second blocking piece 1322 is pressed downward and limited, the first blocking piece 1312 is forced to open upward, and the clean water is sucked in, when the driving piece 13322 drives the piston 13321 to move downward, the first blocking piece 1312 is pressed downward and limited, the second blocking piece 1322 is pressed to open upward, and the clean water is sprayed from the water outlet pipe 1321. In other embodiments, the piston 13321 can also be a vane pump or a gear pump.
[0041] Specific, the bucket body 1 upper end is provided with a bucket cover 2, the bucket cover 2 is fixedly connected with a support 21, the support 21 is slidably connected with a water scraping member 22, the support 21 is provided with a plurality of rollers 211 for guiding and sliding the mop, the roller 211 is rotatably connected with the support 21, the support 21 is further provided with at least one inclined slide rail 212, the water scraping member 22 slides on the slide rail 212, the water scraping member 22 is provided with a plurality of through holes for guiding sewage, and the water outlet of the through hole flows into the sewage bin 12. Specifically, the bucket cover 2 is further provided with two groups of guide grooves 23, and the positions of the two groups of guide grooves 23 correspond to the cleaning area and the water scraping area respectively, the mop is provided with a guide block that slides in the guide groove 23, when the guide block on the mop enters the guide groove 23, the mop can slide up and down along the guide groove 23.
[0042] Principle of use:
[0043] When the mop is placed in the cleaning area, the mop slides up and down, and the mop cloth and the gear are driven to rotate by friction, thereby driving the piston to move up and down to draw water from the clean water bin and spray it from the water outlet pipe for cleaning the mop.
[0044] When the mop is placed in the water scraping area, the mop slides up and down, the water scraping member can scrape the water on the mop cloth and guide it into the sewage bin, however, there will still be a small amount of splashing water or residual water on the mop cloth that will flow into the sewage bin, so the sewage bin is also provided with a drainage mechanism, which can also be driven to rotate by the friction between the mop cloth and the gear when the mop slides up and down to dry, thereby driving the piston to move up and down to suck and discharge the water in the sewage bin into the sewage bin.
[0045] The above is only an embodiment of the present application, and does not limit the patent scope of the present application, any equivalent structural transformation using the content of the present application specification and drawings, or direct or indirect application in other related technical fields, are also included in the patent protection scope of the present application.
Claims
1. A self-cleaning multi-functional mop bucket characterized by: The bucket (1) is provided with independent fresh water bin (11) and sewage bin (12), one of which is provided with water supply mechanism (13); The water supply mechanism (13) comprises water inlet channel (131), water outlet channel (132) and water supply structure (133) communicated with the water inlet channel (131) and the water outlet channel (132), the water supply structure (133) comprises water storage pipe (1331) and water outlet driving assembly (1332), the water outlet driving assembly (1332) is installed on the water storage pipe (1331), the driving force generated by the contact between the mop and the water outlet driving assembly (1332) when the mop moves up and down can pump the fresh water in the water inlet channel (131) to the water storage pipe (1331) and then discharge it through the water outlet channel (132).
2. A self-cleaning multi-functional mop bucket as claimed in claim 1, wherein: The contact is friction, and the driving force generated by the friction between the mop cloth and the water outlet driving assembly (1332) when the mop moves up and down.
3. A self-cleaning multi-functional mop bucket as claimed in claim 2, wherein: The water outlet driving assembly (1332) comprises piston (13321) and driving piece (13322), the piston (13321) is connected with the driving piece (13322) through connecting piece (13323), the piston (13321) is located in the water storage pipe (1331), and the mop can drive the driving piece (13322) to rotate on the water storage pipe (1331).
4. A self-cleaning multi-functional mop bucket as claimed in claim 3, wherein: The piston (13321) can also be a vane pump or a gear pump.
5. A self-cleaning multi-functional mop bucket as claimed in claim 3, wherein: The connecting piece (13323) comprises connecting rod (133232) and crank (133231), the crank (133231) is connected with the driving piece (13322), one end of the connecting rod (133232) is hinged with the piston (13321), and the other end is rotationally connected with the crank (133231), when the driving piece (13322) rotates, the crank (133231) drives the connecting rod (133231) to move upward / downward.
6. A self-cleaning multi-functional mop bucket as claimed in claim 2, wherein: The water supply structure (133) further comprises water inlet pipe (1311) communicated with the water inlet channel (131) and water outlet pipe (1321) communicated with the water outlet channel (132), and the water inlet pipe (1311), the water storage pipe (1331) and the water outlet pipe (1321) are communicated with each other.
7. A self cleaning multi-functional mop bucket as claimed in claim 2 wherein: The water inlet pipe (1311) is provided with first blocking piece (1312) at one end close to the water outlet pipe (1321), and the water outlet pipe (1321) is provided with second blocking piece (1322) at one end close to the water inlet pipe (1311), when the driving piece (13322) drives the piston (13321) to move upward, the second blocking piece (1322) is pressed downward and limited to stop, the first blocking piece (1312) is forced to open upward, and the fresh water is sucked in, when the driving piece (13322) drives the piston (13321) to move downward, the first blocking piece (1312) is pressed downward and limited to stop, the second blocking piece (1322) is pressed to open upward, and the fresh water is sprayed from the water outlet pipe (1321).
8. A self-cleaning multi-functional mop bucket as claimed in claim 2, wherein: The sewage bin (12) is provided with a pollution separation area (14), and the mop moves up and down in the pollution separation area (14).
9. A self cleaning multi-functional mop bucket as claimed in claim 2 wherein: The sewage bin (12) is provided with a cleaning mechanism (121), and the cleaning mechanism (121) is located at the water outlet of the water outlet channel (132).
10. A self cleaning multi-functional mop bucket as claimed in claim 9 wherein: The cleaning mechanism (121) comprises a cleaning piece (1211) and a plurality of water injection ports (1212), and the water injection ports (1212) are communicated with the water outlet.
11. A self cleaning multi-functional mop bucket as claimed in claim 2 wherein: A bucket cover (2) is mounted on the upper end of the bucket body (1), the bucket cover (2) is fixedly connected with a support (21), the support (21) is slidably connected with a water scraping piece (22), a plurality of rollers (211) for guiding the mop are arranged on the support (21), the rollers (211) are rotatably connected with the support (21), at least one inclined sliding rail (212) is arranged on the support (21), the water scraping piece (22) slides on the sliding rail (212), a plurality of through holes for guiding sewage are arranged on the water scraping piece (22), and the water outlet of the through holes flows into the sewage bin (12).
12. A self cleaning multi-functional mop bucket as claimed in claim 2 wherein: The sewage bin is provided with a drain (111).
13. A self cleaning multi-functional mop bucket as claimed in claim 2 wherein: Two groups of guide grooves (23) are further arranged on the bucket cover (2), the positions of the two groups of guide grooves (23) correspond to the cleaning area and the water scraping area respectively, a guide block that slides in the guide groove (23) is arranged on the mop, and when the guide block on the mop enters the guide groove (23), the mop can slide up and down along the guide groove (23).
14. A self cleaning multi-functional mop bucket as claimed in claim 8, wherein: The pollution separation area (14) is provided with a drainage mechanism (141), and the drainage mechanism (141) is used for draining residual water in the pollution separation area (14) to the sewage bin (12).
15. A self cleaning multi-functional mop bucket as claimed in claim 14 wherein: The drainage mechanism (141) comprises a water inlet (141-1), a water outlet (141-2) and a drainage structure (141-3) communicated with the water inlet (141-1) and the water outlet (141-2), the drainage structure (141-3) comprises a water storage pipe (141-31) and a cylinder driving assembly (141-32), the cylinder driving assembly (141-32) is mounted on the water storage pipe (141-31), when the mop moves up and down to generate a driving force by rubbing the cylinder driving assembly (141-32) during the scraping, the residual water in the water inlet (141-1) can be pumped to the water storage pipe (141-31) and then drained to the sewage bin (12) through the water outlet (141-2).
16. A self cleaning multi-functional mop bucket as claimed in claim 8, wherein: The water inlet channel (131) can also be a double channel, one group of channels are communicated with the clean water bin (11), and the other group of channels are connected with the pollution separation area (14); the water outlet channel (132) is a double channel, one group of channels are used for draining clean water entered by the water inlet channel (131) communicated with the clean water bin (11), and the other group of channels are used for draining sewage entered by the water inlet channel (131) communicated with the pollution separation area (14).
Citation Information
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