Cleaning system

By using a shared heating element in the cleaning system to achieve self-cleaning and drying functions, the problems of complex structure and high energy consumption in existing technologies are solved, resulting in cost reduction and improved user experience.

CN224193403UActive Publication Date: 2026-05-05FOSHAN SHUIBAODUN TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FOSHAN SHUIBAODUN TECH CO LTD
Filing Date
2025-04-18
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

Existing cleaning equipment base stations require separate heating components to achieve hot water self-cleaning and drying functions, resulting in complex structures, large space occupation, cumbersome electrical control interaction, and increased energy consumption and manufacturing costs.

Method used

The cleaning system uses a shared heating element to achieve self-cleaning and drying functions. The heating element heats the cleaning fluid for cleaning in the cleaning state and dries the floor brushes in the drying state, simplifying the structure and allowing for the sharing of a heating element.

Benefits of technology

It reduces manufacturing costs, improves cleaning performance and user experience, reduces noise interference, simplifies the structure, and reduces maintenance complexity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a cleaning system. The cleaning system comprises cleaning equipment, a base station and a heating assembly. The cleaning equipment comprises a floor brush assembly, and the floor brush assembly comprises a shell and a floor brush piece arranged on the shell. The base station is provided with a containing groove, and the containing groove can contain cleaning liquid used for cleaning the floor brush piece. The base station is used for placing cleaning equipment, and at least part of the floor brush piece is located in the containing groove. The heating assembly is arranged on the inner wall of the containing groove. The cleaning system has a cleaning state and a drying state. When the cleaning system is in the cleaning state, the heating assembly heats the cleaning liquid in the containing groove. When the cleaning system is in the drying state, the floor brush piece abuts against the heating assembly so that the floor brush piece can be dried through the heating assembly. The cleaning system shares the heating assembly to achieve self-cleaning and drying functions, the structure is simple, and the manufacturing cost is effectively reduced.
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Description

Technical Field

[0001] This disclosure relates to the field of cleaning system technology, and in particular to a cleaning system. Background Technology

[0002] With the development of technology and the improvement of people's living standards, cleaning equipment is increasingly being used in various fields. Cleaning equipment (such as robot vacuum cleaners, floor scrubbers, etc.) can free people from tedious cleaning work, keep the home and office environment clean, and allow people to enjoy more free time, which is why they are favored by people.

[0003] In related technologies, floor scrubbers and other cleaning equipment are generally equipped with cleaning components such as roller brushes or cleaning discs. When the cleaning equipment returns to the base station, the base station can perform hot water self-cleaning and drying of the cleaning components. However, currently, the hot water self-cleaning and drying functions require separate heating components and independent control logic, resulting in a complex base station structure, large footprint, cumbersome electrical control interaction, and increased energy consumption and manufacturing costs. Utility Model Content

[0004] In view of this, the present disclosure provides a cleaning system that uses a common heating component to achieve self-cleaning and drying functions, which has a simple structure and effectively reduces manufacturing costs.

[0005] Specifically, this disclosure is achieved through the following technical solution:

[0006] According to a first aspect of the present disclosure, a cleaning system is provided, comprising a cleaning device, a base station, and a heating component. The cleaning device includes a floor brush assembly, which includes a housing and floor brush members mounted on the housing. The base station has a receiving groove capable of containing cleaning fluid for cleaning the floor brush members. The base station is used to house the cleaning device, and at least a portion of the floor brush members are located within the receiving groove. The heating component is disposed on the inner wall of the receiving groove. The cleaning system has a cleaning state and a drying state. When the cleaning system is in the cleaning state, the heating component heats the cleaning fluid in the receiving groove. When the cleaning system is in the drying state, the floor brush members abut against the heating component to dry the floor brush members.

[0007] The technical solutions provided by the embodiments of this disclosure have at least the following beneficial effects:

[0008] After the cleaning system completes its cleaning work, the cleaning equipment returns and is placed at the base station. The cleaning system can then activate both cleaning and drying modes to clean and dry the floor brushes. In cleaning mode, the heating element heats the cleaning solution in the receiving tank, where at least some of the floor brushes are located. The heated cleaning solution cleans the brushes within the tank. Heating the cleaning solution improves cleaning effectiveness and achieves sterilization. After cleaning the floor brushes, the system switches to drying mode. The floor brushes then come into contact with the heating element, which is activated to iron them dry, preventing them from remaining damp and promoting bacterial growth. Using the heating element to iron the brushes reduces noise during drying, improving the user experience. This cleaning system uses a shared heating element for both self-cleaning and drying, simplifying its structure and effectively reducing manufacturing costs.

[0009] The technical solution of this disclosure will be further explained below:

[0010] In one embodiment, the floor brush includes a roller brush rotatably connected to the housing. The roller brush rotates relative to the housing when the cleaning system is in a washing state and / or a drying state.

[0011] In one embodiment, when the cleaning system is in the drying state, the heating element is located below the roller brush. Alternatively, the heating element is located to the side of the roller brush.

[0012] In one embodiment, the base station also includes an inlet ramp spaced apart from the receiving slot, through which the cleaning device can be pushed into the base station to place the cleaning device on the base station.

[0013] In one embodiment, the cleaning system can automatically switch to the drying state after the cleaning state is completed.

[0014] In one embodiment, the heating assembly includes a heating element and a heat-conducting element, the heating element being connected to the heat-conducting element. When the cleaning system is in a drying state, the floor brush abuts against the heat-conducting element to dry the floor brush through the heat-conducting element.

[0015] In one embodiment, the heating assembly further includes a seal surrounding the heat-conducting element, and the inner wall of the receiving groove is provided with a mounting groove, through which the heat-conducting element is mounted on the inner wall of the receiving groove. The seal is sandwiched between the inner wall of the receiving groove and the heat-conducting element.

[0016] In one embodiment, the heat-conducting element includes an abutting surface that abuts against the floor brush element and a heat-conducting surface disposed opposite to the abutting surface, and a heating element is mounted on the heat-conducting surface to provide heat to the heat-conducting element.

[0017] In one embodiment, the floor brush includes a roller brush with an abutment surface that is an arcuate surface adapted to the roller brush.

[0018] In one embodiment, the cleaning system further includes a control device. The cleaning system also includes a temperature sensor for detecting the temperature of the cleaning fluid in the receiving tank. The temperature sensor is connected to a heating assembly via the control device, so that the control device controls the heating assembly based on the temperature detected by the temperature sensor. And / or, the cleaning system further includes a humidity sensor for detecting the humidity of the floor brush. The humidity sensor is connected to the heating assembly via the control device, so that the control device controls the heating assembly based on the humidity detected by the humidity sensor.

[0019] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and are not intended to limit this disclosure. Attached Figure Description

[0020] The accompanying drawings, which form part of this disclosure, are used to provide a further understanding of this disclosure. The illustrative embodiments of this disclosure and their descriptions are used to explain this disclosure and do not constitute an undue limitation of this disclosure.

[0021] To more clearly illustrate the technical solutions in the embodiments of this disclosure, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this disclosure. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0022] Figure 1 This is a schematic diagram of the structure of a cleaning system shown in one embodiment.

[0023] Figure 2 for Figure 1 The diagram shows the structural structure of the cleaning equipment in the cleaning system.

[0024] Figure 3 for Figure 2 The diagram shows the structure of the floor brush assembly of the cleaning equipment.

[0025] Figure 4 for Figure 1 The diagram shows the structure of the base station of the cleaning system.

[0026] Figure 5 for Figure 4 The diagram shows a cross-sectional structure of the base station.

[0027] Figure 6 for Figure 5 The diagram shows a partially enlarged view of the base station structure.

[0028] Explanation of reference numerals in the attached figures:

[0029] 10. Cleaning system; 100. Cleaning equipment; 110. Floor brush assembly; 111. Housing; 112. Floor brush component; 120. Main unit; 101. Roller brush; 200. Base station; 210. Receiving groove; 211. Mounting groove; 220. Guide slope; 230. Bearing surface; 240. Slot; 300. Heating assembly; 310. Heating element; 320. Heat-conducting element; 321. Contact surface; 322. Heat-conducting surface; 330. Sealing element. Detailed Implementation

[0030] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description, in conjunction with the accompanying drawings and specific embodiments, further illustrates this application. It should be understood that the specific embodiments described herein are merely illustrative and do not limit the scope of protection of this application.

[0031] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein in the specification of this application is for the purpose of describing particular embodiments only and is not intended to be limiting of this application.

[0032] With the development of technology and the improvement of people's living standards, cleaning equipment is increasingly being used in various fields. Cleaning equipment (such as robot vacuum cleaners, floor scrubbers, etc.) can free people from tedious cleaning work, keep the home and office environment clean, and allow people to enjoy more free time, which is why they are favored by people.

[0033] In related technologies, floor scrubbers and other cleaning equipment are generally equipped with cleaning components such as roller brushes or cleaning discs. When the cleaning equipment returns to the base station, the base station can perform hot water self-cleaning and drying of the cleaning components. Currently, some floor scrubber base stations are equipped with drying and hot water self-cleaning functions, but these are usually implemented using independent components: Drying function: mainly uses a combination of heating wires and fans to dry the roller brush through hot air circulation. Hot water self-cleaning function: heats the water in real time during the self-cleaning process, or preheats and stores water before rinsing the roller brush to improve the cleaning effect. The hot water self-cleaning function and drying function require separate heating components and independent control logic, resulting in a complex base station structure, large footprint, cumbersome electrical control interaction, and increased energy consumption and manufacturing costs.

[0034] Based on this, the present disclosure provides a cleaning system 10, which uses a heating component 300 to achieve self-cleaning and drying functions. The system has a simple structure and effectively reduces manufacturing costs.

[0035] like Figure 1As shown, in some embodiments, a cleaning system 10 is provided, which includes a cleaning device 100 and a base station 200. The base station 200 is used to place the cleaning device 100. After the cleaning device 100 is placed on the base station 200, the base station 200 can charge the cleaning device 100, perform self-cleaning, and dry the cleaning device 100.

[0036] In practical applications, the cleaning equipment 100 can operate in a vertical state, a horizontal state, or a state that can switch between vertical and horizontal; the cleaning equipment 100 can be operated by the user to achieve handheld movement, or it can achieve autonomous path planning movement under the coordinated action of a pre-set control program and related drives; and so on, without any restrictions.

[0037] like Figure 2 As shown, in some embodiments, the cleaning device 100 includes a floor brush assembly 110, a main body 120, and a control device (not shown). The main body 120 is connected to the cleaning brush assembly, and the control device is disposed on the main body 120 and / or the cleaning brush assembly. Specifically, the cleaning device 100 can be a sweeping robot, a mopping robot, or a floor scrubber, etc.

[0038] It should be noted that the control device can be located on the main unit 120, on the cleaning brush device, or on both the main unit 120 and the cleaning brush device. The control device can be used to control, coordinate, and manage the operation of each device of the cleaning equipment 100, ensuring that the cleaning equipment 100 can complete the cleaning task efficiently and accurately.

[0039] The cleaning device 100 can clean the surface to be cleaned using the floor brush assembly 110. The surface to be cleaned can be, but is not limited to, floors, stairs, glass, etc.

[0040] like Figure 3 as well as Figure 4 As shown, in some embodiments, the cleaning system 10 further includes a heating component 300. The floor brush assembly 110 includes a housing 111 and a floor brush component 112 mounted on the housing 111. The base station 200 is provided with a receiving groove 210 capable of containing cleaning fluid for cleaning the floor brush component 112. When the cleaning device 100 is placed on the base station 200, at least a portion of the floor brush component 112 is located within the receiving groove 210. The heating component 300 is disposed on the inner wall of the receiving groove 210. The cleaning system 10 has a cleaning state and a drying state. When the cleaning system 10 is in the cleaning state, the heating component 300 heats the cleaning fluid in the receiving groove 210. When the cleaning system 10 is in the drying state, the floor brush component 112 abuts against the heating component 300 to dry the floor brush component 112.

[0041] Thus, after the cleaning system 10 completes its cleaning work, the cleaning equipment 100 returns and is placed at the base station 200. The cleaning system 10 can then activate both the cleaning and drying states to clean and dry the floor brush components 112. When the cleaning system 10 is in the cleaning state, the heating component 300 heats the cleaning fluid in the receiving tank 210, and at least a portion of the floor brush components 112 are located within the receiving tank 210, so that the heated cleaning fluid cleans the floor brush components 112 located within the receiving tank 210. Heating the cleaning fluid improves the cleaning effect and achieves sterilization and disinfection. After the cleaning system 10 has finished cleaning the floor brush components 112, the cleaning system can switch to the drying state. At this time, the floor brush components 112 come into contact with the heating component 300, and by activating the heating component 300, the floor brush components 112 are ironed dry, preventing the floor brush components 112 from remaining damp for a long time, which could lead to bacterial growth. Compared to drying with hot air, ironing the floor brush 112 using the heating element 300 effectively reduces noise and improves the user experience. This cleaning system 10 uses the heating element 300 for both self-cleaning and drying, simplifying its structure, reducing maintenance costs and operational complexity, and minimizing noise interference, thus effectively lowering manufacturing costs.

[0042] It should be noted that the types of floor brush components 112 include, but are not limited to, one or more of the following: side brushes, roller brushes 101, cleaning cloths, etc.

[0043] It should be noted that there are several ways to implement cleaning solutions, including water or a mixture of water and cleaning agent.

[0044] When cleaning the floor brush 112, you can directly use hot water to clean the floor brush 112; or you can first use a mixture of hot water and detergent to clean the floor brush 112, and finally use hot water to clean the floor brush 112. This method can improve the cleaning effect of the floor brush 112.

[0045] It should be noted that the heating component 300 can be implemented in various ways, including PTC (Positive Temperature Coefficient thermistor), etc.

[0046] like Figure 3As shown, in some embodiments, the floor brush 112 includes a roller brush 101, which is rotatably connected to the housing 111. When the cleaning system 10 is in a cleaning state and / or a drying state, the roller brush 101 rotates relative to the housing 111. Thus, when the cleaning device 100 performs cleaning operations, the roller brush 101 rolls to clean the surface to be cleaned. When the cleaning system 10 is in a cleaning state, the rotation of the roller brush 101 facilitates a more thorough cleaning of the roller brush 101. Similarly, when the cleaning system 10 is in a drying state, the rotation of the roller brush 101 allows the heating element 300 to come into contact with various positions of the roller brush 101, ensuring thorough ironing and improving the reliability of both the cleaning and drying processes.

[0047] In some embodiments, when the cleaning system 10 is in a cleaning state and / or a drying state, the roller brush 101 rotates alternately in both directions. This can further improve the cleaning efficiency and effectiveness, as well as the drying efficiency and effectiveness, of the roller brush 101.

[0048] Furthermore, the roller brush motor operates at 100% duty cycle, that is, at maximum voltage or current, so that the roller brush 101 reaches the maximum speed or maximum torque and rotates alternately in both directions.

[0049] like Figure 1 as well as Figure 4 As shown, in some embodiments, when the cleaning system 10 is in the drying state, the heating component 300 is located below the roller brush 101. Thus, when the cleaning device 100 is placed on the base station 200, at least a portion of the roller brush 101 is located in the receiving groove 210 and can abut against the heating component 300 located below the roller brush 101, thereby drying the roller brush 101 by the heating component 300.

[0050] Of course, in other embodiments, when the cleaning system 10 is in the drying state, the heating component 300 may also be located on the side of the roller brush 101.

[0051] Understandably, when the cleaning system 10 is in the drying state, the heating component 300 can also be located in other positions on the roller brush 101, as long as the heating component 300 can make contact with the roller. Further examples will not be provided here.

[0052] like Figure 4 as well as Figure 5As shown, in some embodiments, the base station 200 further includes an inlet ramp 220 spaced apart from the receiving slot 210, through which the cleaning device 100 can be pushed into the base station 200 for placement. Thus, when it is necessary to place the cleaning device 100 in the base station 200, the user can push the cleaning device 100 into the base station 200 through the inlet ramp 220 for placement.

[0053] In existing technologies, the cleaning device 100 is typically placed on the base station 200 by a user lifting it. However, the solution disclosed herein uses a user-pushing method to place the cleaning device 100 on the base station 200. This method is more labor-saving and improves the user experience compared to the user lifting the cleaning device 100.

[0054] It should be noted that the inclined surface 220 and the receiving groove 210 can be arranged to be adjacent to each other, or there can be a bearing surface 230 between the inclined surface 220 and the receiving groove 210.

[0055] like Figure 4 as well as Figure 5 As shown, in some embodiments, a bearing surface 230 is also provided between the guide slope 220 and the receiving groove 210. In this way, when the cleaning device 100 is placed on the base station 200, the bearing surface 230 can serve to support the cleaning device 100 and prevent the cleaning device 100 from moving when placed on the base station 200.

[0056] like Figure 4 as well as Figure 5 As shown, in some embodiments, the base station 200 is provided with multiple slots 240, and the cleaning device 100 is provided with multiple buckles (not shown) that are adapted to the slots 240. When the cleaning device 100 is placed on the base station 200, the slots 240 and the buckles engage to fix the cleaning device 100 to the base station 200.

[0057] In some embodiments, the cleaning system 10 can automatically switch to the drying state after the cleaning state is completed. Thus, when the base station 200 finishes cleaning the roller brush 101 of the cleaning device 100, that is, after the cleaning state of the cleaning system 10 is completed, the cleaning system 10 can automatically switch to the drying state to dry the cleaned roller brush 101 in a timely manner, so as to prevent the roller brush 101 from being in a humid environment and breeding bacteria.

[0058] It should be noted that there are several ways to automatically switch to the drying state, including but not limited to setting a program to use the controller to control the cleaning system 10 to automatically switch to the drying state after the cleaning state is completed.

[0059] Of course, in some embodiments, users can also choose to enter the drying state.

[0060] like Figure 5 as well as Figure 6 As shown, in some embodiments, the heating assembly 300 includes a heating element 310 and a heat-conducting element 320. The heating element 310 is connected to the heat-conducting element 320. When the cleaning system 10 is in a drying state, the floor brush 112 abuts against the heat-conducting element 320 to dry the floor brush 112 through the heat-conducting element 320. Thus, when the heating assembly 300 heats the cleaning liquid in the receiving tank 210 and dries the roller brush 101, the heating element 310 is activated to generate heat, which is then generated through the heat-conducting element 320 to heat the cleaning liquid in the receiving tank 210. When the cleaning system 10 is in a drying state, the floor brush 112 abuts against the heat-conducting element 320 to dry the floor brush 112 through the heat-conducting element 320. By using the heating element 310 to transfer heat to the heat-conducting element 320, and then using the heat-conducting element 320 to dry the floor brush 112, the heat can be more evenly distributed on the heat-conducting element 320, thus improving the drying effect of the floor brush 112.

[0061] In related technologies, since the heating component 300 is disposed on the inner wall of the receiving tank 210, and the receiving tank 210 can be used to hold the cleaning fluid for cleaning the floor brush 112, sealing treatment is required to prevent leakage of the cleaning fluid in the receiving tank 210.

[0062] like Figure 5 as well as Figure 6 As shown, in some embodiments, the heating assembly 300 further includes a sealing member 330 surrounding the heat-conducting member 320. The inner wall of the receiving groove 210 is provided with a mounting groove 211, through which the heat-conducting member 320 is mounted on the inner wall of the receiving groove 210. The sealing member 330 is sandwiched between the inner wall of the receiving groove 210 and the heat-conducting member 320. Thus, the heating assembly 300 can be mounted on the inner wall of the receiving groove 210 through the mounting groove 211, which helps improve assembly efficiency. When the heating component 300 is installed, the sealing element 330 is used to surround the heat-conducting element 320. After the heat-conducting element 320 is installed into the mounting groove 211, the sealing element 330 can be sandwiched between the inner wall of the receiving groove 210 and the heat-conducting element 320. The sealing element 330 can fill the gap between the heat-conducting element 320 and the inner wall of the receiving groove 210, thereby ensuring the sealing of the heating component 300 installed into the inner wall of the receiving groove 210 and preventing the cleaning fluid in the receiving groove 210 from leaking.

[0063] like Figure 5 as well as Figure 6As shown, in some embodiments, the heat-conducting element 320 includes an abutment surface 321 that abuts against the floor brush 112 and a heat-conducting surface 322 disposed opposite to the abutment surface 321. The heating element 310 is mounted on the heat-conducting surface 322 to provide heat to the heat-conducting element 320. Thus, when the cleaning system 10 is in the drying state, the floor brush 112 abuts against the abutment surface 321 of the heat-conducting element 320, and the heating element 310 is placed on the heat-conducting surface 322 so that the heat from the heating element 310 is transferred to the heat-conducting element 320 through the heat-conducting surface 322, and then the heat-conducting element 320 transfers heat to the floor brush 112 through the abutment surface 321 to iron the floor brush 112. Similarly, when the cleaning system 10 is in the washing state, the heat-conducting element 320 transfers heat to the cleaning liquid in the receiving tank 210 through the abutment surface 321, thereby heating the cleaning liquid. The structure of this heating assembly 300 is simple.

[0064] In some embodiments, the contact surface 321 is an arc-shaped surface adapted to the roller brush 101. Thus, when the roller brush 101 is dried using the heating assembly 300, the roller brush 101 engages with the arc-shaped contact surface 321 to iron it dry using the heat generated by the contact surface 321. The arc-shaped contact surface 321 better adapts to the shape of the roller brush 101, thereby improving the drying effect and efficiency of the roller brush 101.

[0065] In some embodiments, the cleaning system 10 further includes a temperature sensor (not shown) for detecting the temperature of the cleaning fluid in the receiving tank 210. The temperature sensor is connected to the heating assembly 300 via a control device, so that the control device controls the heating assembly 300 based on the temperature detected by the temperature sensor. Thus, by using the temperature sensor to detect the temperature of the cleaning fluid in the receiving tank 210, the control device can flexibly control the power of the heating assembly 300 based on the temperature of the cleaning fluid detected by the temperature sensor, thereby controlling the temperature of the cleaning fluid and the heating rate.

[0066] In some embodiments, the cleaning system 10 further includes a humidity detector (not shown) for detecting the humidity of the floor brush 112. The humidity detector is connected to the heating assembly 300 via a control device, so that the control device controls the heating assembly 300 based on the humidity detected by the humidity detector. Thus, by using the humidity detector to detect the humidity of the floor brush 112, the control device can flexibly control the power of the heating assembly 300 based on the humidity detected by the humidity detector, thereby flexibly drying the floor brush 112. Furthermore, the humidity detector can also determine whether drying is complete based on the humidity of the floor brush 112, thereby determining whether the heating assembly 300 should be turned on or off.

[0067] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0068] The above embodiments are merely illustrative of several implementation methods of this disclosure, and their descriptions are relatively specific and detailed. However, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the inventive concept of this disclosure, and these modifications and improvements all fall within the protection scope of this disclosure.

Claims

1. A cleaning system, characterized in that, include: Cleaning equipment, including a floor brush assembly, the floor brush assembly including a housing and a floor brush component mounted on the housing; The base station is provided with a receiving tank capable of holding cleaning fluid for cleaning the floor brush components; the base station is used to place the cleaning equipment, and at least a portion of the floor brush components are located within the receiving tank; as well as A heating element is disposed on the inner wall of the receiving groove; The cleaning system has a cleaning state and a drying state. When the cleaning system is in the cleaning state, the heating component heats the cleaning liquid in the receiving tank. When the cleaning system is in the drying state, the floor brush abuts against the heating component to dry the floor brush through the heating component.

2. The cleaning system according to claim 1, characterized in that, The floor brush includes a roller brush, which is rotatably connected to the housing; when the cleaning system is in the cleaning state and / or the cleaning system is in the drying state, the roller brush rotates relative to the housing.

3. The cleaning system according to claim 2, characterized in that, When the cleaning system is in the drying state, the heating component is located below the roller brush; or, the heating component is located to the side of the roller brush.

4. The cleaning system according to claim 1, characterized in that, The base station also includes an inlet ramp spaced apart from the receiving slot, through which the cleaning device can be pushed into the base station so that the cleaning device is placed in the base station.

5. The cleaning system according to claim 1, characterized in that, Once the cleaning process is complete, the cleaning system can automatically switch to the drying process.

6. The cleaning system according to claim 1, characterized in that, The heating component includes a heating element and a heat-conducting element. The heating element is connected to the heat-conducting element. When the cleaning system is in the drying state, the floor brush abuts against the heat-conducting element to dry the floor brush through the heat-conducting element.

7. The cleaning system according to claim 6, characterized in that, The heating assembly further includes a sealing member surrounding the heat-conducting element, the inner wall of the receiving groove is provided with a mounting groove, the heat-conducting element is installed on the inner wall of the receiving groove through the mounting groove; and the sealing member is sandwiched between the inner wall of the receiving groove and the heat-conducting element.

8. The cleaning system according to claim 6, characterized in that, The heat-conducting component includes an abutting surface that abuts against the floor brush component and a heat-conducting surface disposed opposite to the abutting surface. The heating element is installed on the heat-conducting surface to provide heat to the heat-conducting component.

9. The cleaning system according to claim 8, characterized in that, The floor brush component includes a roller brush, and the contact surface is an arc-shaped surface adapted to the roller brush.

10. The cleaning system according to any one of claims 1 to 9, characterized in that, The cleaning system further includes a control device; the cleaning system also includes a temperature sensor for detecting the temperature of the cleaning fluid in the receiving tank; the temperature sensor is connected to the heating assembly via the control device, so that the control device controls the heating assembly based on the temperature of the temperature sensor; and / or, the cleaning system further includes a humidity sensor for detecting the humidity of the floor brush; the humidity sensor is connected to the heating assembly via the control device, so that the control device controls the heating assembly based on the humidity of the humidity sensor.