Base station and cleaning system

By installing an antibacterial module in the dust collection duct of the sweeper base station and using a fan to drive gas circulation, the problem of easy contamination of the dust collection air path is solved, achieving a more comprehensive antibacterial effect and a healthier internal environment of the base station, thus improving the user experience.

CN224023466UActive Publication Date: 2026-03-24BEIJING XIAOMI MOBILE SOFTWARE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

The dust collection air path of existing robot vacuum cleaners is easily contaminated by garbage, resulting in poor antibacterial effect and affecting user health and user experience.

Method used

An antibacterial module is installed in the dust collection duct, and a fan drives the gas circulation to carry out antibacterial treatment, avoiding direct contact between the antibacterial module and the waste, thus enhancing the antibacterial effect.

Benefits of technology

It achieves comprehensive and thorough sterilization of the dust collection air path, ensuring a healthy internal environment for the base station and improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a base station and a cleaning system, and the base station comprises a housing which is provided with a dust collection cavity; the dust collection pipeline is communicated with the dust collection cavity; the fan is respectively communicated with the dust collection cavity and the dust collection pipeline, and the fan is used for driving gas to circularly flow in the dust collection cavity and the dust collection pipeline; and at least part of the antibacterial module is located in the dust collection pipeline. Through the arrangement, the bacteriostatic module is prevented from being in direct contact with garbage in the dust collection cavity or being covered by the garbage in the dust collection cavity, and the bacteriostatic effect can be improved; and under the driving action of the fan, the gas circularly flows in the dust collection cavity and the dust collection pipeline, so that the antibacterial module continuously performs antibacterial treatment on the gas in the dust collection cavity and the dust collection pipeline, the antibacterial effect is more comprehensive and thorough, the internal environment health of the base station is fully guaranteed, and the use experience of a user is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of cleaning equipment, in particular to a base station and a cleaning system. BACKGROUND

[0002] At present, the main machine of a cleaning device such as a sweeping robot basically has a sweeping and mopping function. During the working process, dust, hair and sewage are sucked into the dust collection box of the main machine of the sweeping robot. At the same time, in order to reduce the use cost of the user, the dust collection function of the base station of the sweeping robot is also becoming more and more popular. The base station will store the garbage collected by the main machine of the sweeping robot for a long time. The base station and the main machine of the sweeping robot will generate heat during work, which will cause the dust collection air path to be in a humid and warm environment for a long time, which is very easy to breed bacteria and produce odor, which will pollute the home environment and seriously reduce the user experience.

[0003] In the related art, some sweeping robots are provided with a bacteriostatic device. The bacteriostatic device is usually installed inside the dust collection container of the base station. The bacteriostatic device continuously releases bacteriostatic substances to inhibit bacteria in the dirt, dust, food residues and the like inside the container. Since the dust collection operation is very easy to pollute the entire dust collection air path, including the dust collection pipeline in and out, the dust bag of the main machine of the sweeping robot, the dust collection container of the base station, etc., the current design mainly inhibits bacteria in the dust collection container of the base station. The bacteriostatic device is easy to be polluted or covered by the garbage in the dust collection container, resulting in poor bacteriostatic effect on the entire dust collection air path. CONTENT OF THE UTILITY MODEL

[0004] In view of this, the present application provides a base station and a cleaning system for improving the bacteriostatic effect on the dust collection air path.

[0005] Specifically, the technical scheme includes the following:

[0006] In a first aspect, the present application provides a base station, which comprises:

[0007] a housing provided with a dust collection cavity;

[0008] a dust collection pipeline in communication with the dust collection cavity;

[0009] a fan in communication with the dust collection cavity and the dust collection pipeline respectively, the fan being configured to drive the circulation of gas in the dust collection cavity and the dust collection pipeline;

[0010] a bacteriostatic module located at least partially in the dust collection pipeline.

[0011] In an optional embodiment, the bacteriostatic module is one or more of a negative ion generator, a bactericidal agent sprayer, a bactericidal agent slow-release device and an ultraviolet lamp.

[0012] In an optional embodiment, the dust collection pipeline comprises a suction pipeline and a blowing pipeline, the suction pipeline and the blowing pipeline are connected with the dust collection cavity respectively, the air inlet end of the fan is connected with the dust collection cavity, and the air outlet end of the fan is communicated with the blowing pipeline.

[0013] In an optional embodiment, the bacteriostatic module comprises a body, an output line and a release tip, the body is mounted on the shell, two ends of the output line are connected with the body and the release tip respectively, and the release tip extends into the dust collection pipeline.

[0014] In an optional embodiment, the body is located at one side of the blowing pipeline, and the release tip extends into the blowing pipeline.

[0015] In an optional embodiment, the bacteriostatic module further comprises a mounting bracket, the mounting bracket is fixed on the outer wall of the blowing pipeline, and the end of the output line close to the release tip is inserted into the mounting bracket, so that the release tip extends into the blowing pipeline through the mounting bracket.

[0016] In an optional embodiment, the base station has a dust collection mode and a bacteriostatic mode, the fan is configured to switch between the dust collection mode and the bacteriostatic mode, and the bacteriostatic module is configured to be turned on at least in the bacteriostatic mode, wherein the power of the fan in the dust collection mode is greater than the power of the fan in the bacteriostatic mode.

[0017] In an optional embodiment, the base station further comprises a cover, the cover covers the opening of the dust collection cavity, and the cover is rotationally connected or detachably connected with the shell, so as to open or close the dust collection cavity.

[0018] In a second aspect, the application provides a cleaning system, which comprises a cleaning device and the base station provided in any one of the embodiments of the first aspect, and the cleaning device comprises a dust collection box which is adapted to be docked with the dust collection pipeline of the base station.

[0019] In an optional embodiment, the dust collection pipeline comprises a suction pipeline and a blowing pipeline, the suction pipeline and the blowing pipeline are connected with the dust collection cavity respectively, the air inlet end of the fan is connected with the dust collection cavity, and the air outlet end of the fan is communicated with the blowing pipeline.

[0020] The dust collection box is provided with an air inlet and an air outlet, the air inlet is used for docking with the blowing pipeline, and the air outlet is used for docking with the suction pipeline.

[0021] The beneficial effects of the technical solution provided in this application embodiment include at least the following: by at least partially placing the antibacterial module in the dust collection pipe, the antibacterial module can be prevented from directly contacting or being covered by the garbage in the dust collection chamber, which helps to improve the antibacterial effect; under the driving action of the fan, the gas circulates in the dust collection chamber and the dust collection pipe, so that the antibacterial module continuously performs antibacterial treatment on the gas in the dust collection chamber and the dust collection pipe, thereby making the antibacterial effect more comprehensive and thorough, fully ensuring the health of the base station's internal environment, and improving the user experience. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of this application, 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 application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 This is a schematic diagram of the base station structure provided in an embodiment of this application;

[0024] Figure 2 This is a schematic diagram of the base station structure after the cover is removed, as provided in an embodiment of this application.

[0025] Figure 3 This is one of the schematic diagrams of the airflow path between the base station and the cleaning device provided in the embodiments of this application;

[0026] Figure 4 This is a second schematic diagram of the airflow path between the base station and the cleaning device provided in the embodiments of this application;

[0027] Figure 5 This is a schematic diagram of the antibacterial module provided in an embodiment of this application.

[0028] The reference numerals in the figure indicate:

[0029] 1-Base station;

[0030] 11-Shell; 111-Dust collection chamber; 112-Receiving part; 12-Dust collection pipe; 121-Dust suction pipe; 122-Air blowing pipe; 13-Fan; 14-Antibacterial module; 141-Main body; 142-Output line; 143-Release tip; 144-Mounting bracket; 15-Cover;

[0031] 2-Cleaning device; 21-Dust collection box; 211-Air inlet; 212-Air outlet; 22-Dust inlet cover; 23-Filter.

[0032] The specific embodiments of the present application have been shown by the above drawings, and will be described in more detail hereinafter. These drawings and the written description are not intended to restrict the scope of the present application in any way, but to illustrate the concept of the present application by referring to specific embodiments. DETAILED DESCRIPTION

[0033] The technical solutions in the embodiments of the present application will be described clearly and completely in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work are within the scope of protection of the present application.

[0034] The positional nouns such as “upper”, “lower”, “lateral” and the like involved in the embodiments of the present application are generally based on the relative relationship of the positions shown in the drawings, and these positional nouns are only used to more clearly describe the structure and the relationship between the structures, and are not intended to describe absolute positions. When the product is placed in different attitudes, the positions may change, for example, “upper” and “lower” may be interchanged.

[0035] Unless otherwise defined, all the technical terms used in the embodiments of the present application have the same meanings as generally understood by those skilled in the art. Some technical terms appearing in the embodiments of the present application are explained below.

[0036] In order to make the technical solutions and advantages of the present application more clear, the embodiments of the present application will be further described in detail in combination with the drawings.

[0037] As shown in Figures 1 to 3 The embodiments of the present application provide a base station 1, which comprises a shell 11, a dust collection pipeline 12, a fan 13 and a bacterium inhibition module 14.

[0038] The shell 11 is provided with a dust collection cavity 111, the dust collection pipeline 12 is in communication with the dust collection cavity 111, the fan 13 is in communication with the dust collection cavity 111 and the dust collection pipeline 12 respectively, and the fan 13 is used to drive the circulation flow of gas in the dust collection cavity 111 and the dust collection pipeline 12. The bacterium inhibition module 14 is at least partially located in the dust collection pipeline 12.

[0039] Specifically, the base station 1 is adapted to be used in cooperation with a cleaning device 2, which includes but is not limited to a sweeping robot, a mopping robot, a scrubber, etc. The position of the base station 1 is fixed, and is used to charge, replenish water, empty a dust collection box 21, wash a mop cloth, etc. of the cleaning device 2. The cleaning device 2 can move in an environment, and can clean the ground, and can be charged, replenish water, maintained, etc. in the base station 1.

[0040] The dust collection pipe 12 is adapted to be docked with the dust collection box 21 of the cleaning device 2. Under the driving of the fan 13, the gas enters the dust collection box 21 of the cleaning device 2 and carries away the garbage in the dust collection box 21. The garbage is collected into the dust collection cavity 111 of the base station 1 through the dust collection pipe 12, so as to empty the dust collection box 21 of the cleaning device 2.

[0041] Optionally, as shown in Figure 1 or Figure 2 The shell 11 further includes a containing portion 112 at the bottom of the dust collection cavity 111. The containing portion 112 is arc-shaped and is adapted to the shape of the cylindrical cleaning device 2, so as to facilitate the cleaning device 2 to abut against the front of the containing portion 112. The dust collection pipe 12 passes through the containing portion 112, so as to be docked with the dust collection box 21 of the cleaning device 2.

[0042] In the related art, most of the base stations on the market are provided with a bacterium inhibition device in the dust collection cavity, so as to prevent the garbage in the dust collection cavity from producing odor or breeding bacteria. However, the design occupies the space of the dust collection cavity, affects the volume of the dust collection cavity, and the bacterium inhibition device is easily contacted or covered by the garbage in the dust collection cavity, so that the bacterium inhibition effect is poor and the entire dust collection air path cannot be comprehensively inhibited.

[0043] In the embodiment of the present application, the bacterium inhibition module 14 is at least partially arranged in the dust collection pipe 12, so as to avoid the bacterium inhibition module 14 being directly contacted or covered by the garbage in the dust collection cavity 111, which helps to improve the bacterium inhibition effect. Under the driving of the fan 13, the gas circulates in the dust collection cavity 111 and the dust collection pipe 12, so that the bacterium inhibition module 14 continuously inhibits the gas in the dust collection cavity 111 and the dust collection pipe 12, so that the bacterium inhibition effect is more comprehensive and thorough, which fully guarantees the healthy environment inside the base station 1 and is beneficial to improving the user experience.

[0044] It can be understood that the acting end of the bacterium inhibition module 14 is located in the dust collection pipe 12. The acting end is the part of the bacterium inhibition module 14 for generating bacterium inhibition substances or performing bacterium inhibition operations, so as to ensure the normal work of the bacterium inhibition module 14 and inhibit the bacterium in the dust collection cavity 111 and the dust collection pipe 12.

[0045] The bacterium inhibition module 14 can be an electrical device or a device without electricity.

[0046] In a specific embodiment, the bacterium inhibition module 14 is one or more of a negative ion generator, a bacterium removal agent sprayer, a bacterium removal agent slow-release device, and an ultraviolet lamp.

[0047] The negative ion generator generates a large number of negative oxygen ions by ionizing oxygen molecules in the air through the application of high voltage. These negative oxygen ions have high activity and can destroy the structure and function of bacteria by combining with the protein on the surface of the bacteria, changing its potential or destroying its cell wall. This effect makes the bacteria lose the ability to survive, thereby achieving the effect of inhibiting bacteria. At the same time, negative ions also have the effect of accelerating the settlement of dust in the air. Negative ions have a negative charge and can adsorb and carry away harmful substances such as particles and bacteria in the air. These particles and bacteria usually have a positive charge or are neutral, and are attracted to negative ions, thereby reducing their concentration and quantity in the air.

[0048] The bacteriostatic agent can be chlorine dioxide, ozone, sodium chloride, ammonium chloride solution spray, etc.

[0049] The bacteriostatic agent sprayer can atomize the liquid bacteriostatic agent into small particles, so that the disinfectant is more evenly distributed in the space.

[0050] The bacteriostatic agent slow-release device can continuously and slowly release the bacteriostatic agent over a period of time, so that the bacteriostatic agent covers a specific space and inhibits the growth of bacteria.

[0051] The ultraviolet light emitted by the ultraviolet lamp (especially the UVC wave band) can be absorbed by the DNA and RNA of microorganisms, causing changes in their molecular structure, thereby preventing the replication and reproduction of microorganisms. At the same time, when the ultraviolet light acts on the air, it can ionize oxygen, thereby generating ozone with strong oxidizing effect, effectively killing microorganisms.

[0052] Optionally, the number of bacteriostatic modules 14 is one or more. When there are multiple bacteriostatic modules 14, the multiple bacteriostatic modules 14 can be one of a negative ion generator, a bacteriostatic agent sprayer, a bacteriostatic agent slow-release device, and an ultraviolet lamp, or a combination of two or more (including two).

[0053] In one embodiment, as shown in Figure 2 or Figure 3 The dust collection pipeline 12 includes a dust suction pipeline 121 and a blowing pipeline 122, and the dust suction pipeline 121 and the blowing pipeline 122 are respectively connected with the dust collection cavity 111. The air inlet end of the fan 13 is connected with the dust collection cavity 111, and the air outlet end of the fan 13 is in communication with the blowing pipeline 122.

[0054] As shown in Figure 2 and Figure 3As shown, the dust suction pipe 121, the air blowing pipe 122 and the fan 13 are located at the back side of the housing 11, the dust suction pipe 121 and the air blowing pipe 122 are arranged along the width direction of the housing 11, and the fan 13 and the end of the dust suction pipe 121 for connecting with the dust collecting cavity 111 are arranged along the width direction of the housing 11, so as to avoid the garbage entering the dust collecting cavity 111 from being sucked into the air blowing pipe 122. It should be noted that the width direction of the housing 11 is the direction from the left end of the dust collecting cavity 111 to the right end of the dust collecting cavity 111. Figure 2

[0055] Please refer to Figure 3 and Figure 4 When the base station 1 collects dust, the fan 13 is started to form a negative pressure in the dust collecting cavity 111, and air flow is output from the air blowing pipe 122, enters the dust collecting box 21 of the cleaning device 2 from the air inlet 211 of the cleaning device 2, carries away the garbage in the dust collecting box 21, and collects the garbage into the dust collecting cavity 111 of the base station 1 through the air outlet 212 of the cleaning device 2 and the dust suction pipe 121. The air flow circulates along the air blowing pipe 122, the dust collecting box 21 of the cleaning device 2, the dust suction pipe 121 and the dust collecting cavity 111.

[0056] The action end of the bacteriostatic module 14 can extend into the air blowing pipe 122 or the dust suction pipe 121. Alternatively, when the number of the bacteriostatic modules 14 is multiple, the action end of a part of the bacteriostatic modules 14 extends into the air blowing pipe 122, and the action end of another part of the bacteriostatic modules 14 extends into the dust suction pipe 121, so as to further enhance the bacteriostatic effect.

[0057] For example, when the bacteriostatic module 14 is at least partially located in the air blowing pipe 122, under the action of the bacteriostatic module 14, the air flow in the air blowing pipe 122 carries the bacteriostatic substances such as negative ions, and flows in the air blowing pipe 122, the dust collecting box 21 of the cleaning device 2, the dust suction pipe 121 and the dust collecting cavity 111, so as to circulate the air flow carrying the bacteriostatic substances, and realize comprehensive and thorough bacteriostatic treatment.

[0058] By arranging the dust suction pipe 121 and the air blowing pipe 122, a dust collecting air path between the cleaning device 2 and the base station 1 is formed, so as to circulate the air flow carrying the bacteriostatic substances between the cleaning device 2 and the base station 1, and realize comprehensive and thorough bacteriostatic treatment.

[0059] In a specific embodiment, as shown in Figure 5 the bacteriostatic module 14 is a negative ion generator, the bacteriostatic module 14 includes a body 141, an output line 142 and a release tip 143, the body 141 is installed on the housing 11, two ends of the output line 142 are respectively connected with the body 141 and the release tip 143, and the release tip 143 extends into the dust collecting pipe 12.

[0060] As​Figure 5 As shown, one end of the output line 142 is connected to the body 141, and the other end is connected to the release tip 143. Specifically, the output line 142 is a high-voltage output line. The body 141 of the antibacterial module 14 is fixed to the back side of the housing 11. The body 141 includes a current conversion module, which is connected to a power supply. The current conversion module is used to convert the input DC or AC power into a negative DC high voltage. The output line 142 transmits the negative DC high voltage to the release tip 143, which is made of metal or carbon. The high DC high voltage of the release tip 143 generates a high corona discharge, which releases a large number of electrons at high speed. Since electrons cannot exist in the air for long, they are immediately captured by oxygen molecules in the air, thereby generating negative air ions.

[0061] By extending the release tip 143 into the dust collection pipe 12, the negative ions generated by the release tip 143 render bacteria in the dust collection pipe 12 unable to survive, and adsorb particles and bacteria, thereby achieving an antibacterial effect and accelerating the settling of dust.

[0062] In one specific embodiment, the body 141 is located on one side of the blower duct 122, and the release tip 143 extends into the blower duct 122.

[0063] like Figure 3 As shown, the antibacterial module 14 is located near the air duct 122 so that the air duct 122 can be inserted into the air duct 122.

[0064] In this embodiment, the airflow in the blower duct 122 carries negative ions and flows in the blower duct 122, the dust collection box 21 of the cleaning device 2, the suction duct 121 and the dust collection chamber 111, so that the airflow carrying antibacterial substances circulates and achieves comprehensive and thorough antibacterial treatment.

[0065] Furthermore, such as Figure 5 As shown, the antibacterial module 14 also includes a mounting bracket 144, which is fixed on the outer wall of the air blowing duct 122. One end of the output line 142 near the release tip 143 is inserted into the mounting bracket 144 so that the release tip 143 passes through the mounting bracket 144 and extends into the air blowing duct 122.

[0066] Mounting bracket 144 is fixed to the outer wall of air duct 122 by adhesive, snap-fit ​​or threaded connection. Output line 142 can be integrated with mounting bracket 144 or separately fixed with mounting bracket 144.

[0067] By setting the mounting bracket 144, the release tip 143 is prevented from shaking in the air duct 122, which improves the stability of the release tip 143. At the same time, it also provides a certain degree of protection for the output line 142, preventing the output line 142 from being damaged or broken due to excessive bending.

[0068] In one embodiment, the base station 1 has a dust collection mode and a bacteria inhibition mode, the fan 13 is configured to switch between the dust collection mode and the bacteria inhibition mode, and the bacteria inhibition module 14 is configured to be turned on at least in the bacteria inhibition mode, wherein the power of the fan 13 in the dust collection mode is greater than the power of the fan 13 in the bacteria inhibition mode.

[0069] Specifically, in the dust collection mode, the fan 13 is turned on, the bacteria inhibition module 14 is turned off, the operating power of the fan 13 is a first power, and the rotating speed of the fan 13 is a first rotating speed; in the bacteria inhibition mode, both the fan 13 and the bacteria inhibition module 14 are turned on, and the operating power of the fan 13 is a second power, and the rotating speed of the fan 13 is a second rotating speed, wherein the first power is greater than the second power, and the first rotating speed is greater than the second rotating speed.

[0070] In an optional embodiment, the bacteria inhibition module 14 can be turned on in the dust collection mode to perform bacteria inhibition operation while dust collection is performed, and can also be turned on in the bacteria inhibition mode.

[0071] In the dust collection mode, the fan 13 has a relatively large power and a relatively high rotating speed, which is used to quickly collect garbage in the dust collection box 21 of the cleaning device 2; in the bacteria inhibition mode, the fan 13 has a relatively small power and a relatively low rotating speed, which is conducive to the smooth circulation of the airflow carrying the bacteria inhibition substance in the dust collection air path, thereby improving the bacteria inhibition effect.

[0072] The user can select the working mode of the base station 1 through a mobile terminal or an interaction module of the base station 1, or the base station 1 automatically turns on the dust collection mode when the cleaning device 2 is docked in the base station 1, and switches to the bacteria inhibition mode after the dust collection mode is turned on for a predetermined time.

[0073] Alternatively, the dust collection mode and the bacteria inhibition mode can be turned on simultaneously, and when the dust collection mode and the bacteria inhibition mode are turned on simultaneously, the fan 13 operates at a first power and a first rotating speed, and the bacteria inhibition module 14 is turned on to perform bacteria inhibition treatment while quickly collecting garbage in the dust collection box 21 of the cleaning device 2.

[0074] In one embodiment, as shown in Figure 1 The base station 1 further includes a cover 15, which covers the opening of the dust collection cavity 111, and the cover 15 is rotationally connected or detachably connected to the shell 11, so as to open or close the dust collection cavity 111.

[0075] As shown in Figure 1 The opening of the dust collection cavity 111 is located on the front side of the shell 11, and when the cover 15 is arranged at the opening of the dust collection cavity 111, the front side of the dust collection cavity 111 can be closed.

[0076] By providing a rotatable or detachable connection between the cover 15 and the housing 11, the dust collection chamber 111 can be easily opened. Specifically, the dust collection chamber 111 contains a dust bag for collecting garbage. After opening the dust collection chamber 111, the dust bag can be removed to take out the garbage from the dust collection chamber 111, making it convenient to clean or replace the dust bag and prevent the garbage from contaminating the inside of the base station 1.

[0077] This application also provides a cleaning system, which includes a cleaning device 2 and a base station 1 provided in any of the above embodiments. The cleaning device 2 includes a dust collection box 21, which is adapted to connect with the dust collection pipe 12 of the base station 1.

[0078] Cleaning device 2 includes, but is not limited to, robot vacuum cleaners, robot mops, floor scrubbers, etc.

[0079] After the dust collection box 21 is connected to the dust collection pipe 12 of the base station 1, driven by the fan 13, the gas enters the dust collection box 21 of the cleaning device 2 and carries away the garbage in the dust collection box 21. The garbage is then collected into the dust collection chamber 111 of the base station 1 through the dust collection pipe 12, thereby emptying the dust collection box 21 of the cleaning device 2. The gas circulates in the dust collection chamber 111, the dust collection pipe 12, and the dust collection box 21, so that the antibacterial module 14 continuously performs antibacterial treatment on the gas in the dust collection chamber 111, the dust collection pipe 12, and the dust collection box 21, thereby making the antibacterial effect more comprehensive and thorough.

[0080] Furthermore, the dust collection duct 12 includes a suction duct 121 and a blowing duct 122, which are respectively connected to the dust collection chamber 111. The air inlet of the fan 13 is connected to the dust collection chamber 111, and the air outlet of the fan 13 is connected to the blowing duct 122. The dust collection box 21 is provided with an air inlet 211 and an air outlet 212. The air inlet 211 is used to connect with the blowing duct 122, and the air outlet 212 is used to connect with the suction duct 121.

[0081] like Figure 3 and Figure 4 As shown, when the base station 1 collects dust, the fan 13 starts, creating a negative pressure in the dust collection chamber 111, and outputs airflow to the blowing duct 122. The airflow enters the dust collection box 21 from the air inlet 211 of the cleaning device 2, carrying away the garbage in the dust collection box 21. The garbage is then collected into the dust collection chamber 111 of the base station 1 through the air outlet 212 of the cleaning device 2 and the suction duct 121. The airflow circulates along the blowing duct 122, the dust collection box 21 of the cleaning device 2, the suction duct 121, and the dust collection chamber 111.

[0082] For example, the air flow in the blowing pipe 122 carries the negative ions and other bacteriostatic substances under the action of the bacteriostatic module 14, and flows in the blowing pipe 122, the dust collecting box 21, the dust suction pipe 121 and the dust collecting cavity 111 of the cleaning device 2, so that the air flow carrying the bacteriostatic substances circulates and realizes comprehensive and thorough bacteriostatic treatment.

[0083] As shown in the drawings, Figure 4 The cleaning device 2 also includes oppositely arranged dust inlet covers 22 and filter screens 23, which are respectively installed on the front and rear sides of the cleaning device 2 to form a closed air path, so that the gas can enter the dust collecting box 21 from the air inlet 211 of the dust collecting box 21 and then flow out from the air outlet 212.

[0084] In this application, the terms "first" and "second" are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance. The term "a plurality of" refers to two or more, unless otherwise explicitly limited.

[0085] Other embodiments of the application will be apparent to those skilled in the art from consideration of the specification and practice of the application disclosed herein. The specification and examples given are intended as illustrative only and not limiting of the present application. The scope of the application is to be limited only by the appended claims.

[0086] It should be understood that the application is not limited to the precise construction that has been described above and shown in the drawings, and that various modifications and changes can be made without departing from the scope thereof. The scope of the application is limited only by the claims that follow.

Claims

1. A base station (1), characterized in that, The base station (1) includes: The housing (11) is provided with a dust collection chamber (111); Dust collection pipe (12) is connected to the dust collection chamber (111); A fan (13) is connected to the dust collection chamber (111) and the dust collection pipe (12) respectively. The fan (13) is used to drive the gas to circulate in the dust collection chamber (111) and the dust collection pipe (12). The antibacterial module (14) is located at least partially in the dust collection pipe (12).

2. The base station (1) according to claim 1, characterized in that, The antibacterial module (14) is one or more of the following: a negative ion generator, a disinfectant sprayer, a disinfectant slow-release device, and an ultraviolet lamp.

3. The base station (1) according to claim 1 or 2, characterized in that, The dust collection pipe (12) includes a dust suction pipe (121) and a blower pipe (122). The dust suction pipe (121) and the blower pipe (122) are respectively connected to the dust collection chamber (111). The air inlet of the fan (13) is connected to the dust collection chamber (111), and the air outlet of the fan (13) is connected to the blower pipe (122).

4. The base station (1) according to claim 3, characterized in that, The antibacterial module (14) includes a body (141), an output line (142), and a release tip (143). The body (141) is mounted on the housing (11). The two ends of the output line (142) are connected to the body (141) and the release tip (143) respectively. The release tip (143) extends into the dust collection pipe (12).

5. The base station (1) according to claim 4, characterized in that, The body (141) is located on one side of the air blowing duct (122), and the release tip (143) extends into the air blowing duct (122).

6. The base station (1) according to claim 5, characterized in that, The antibacterial module (14) also includes a mounting bracket (144), which is fixed on the outer wall of the air duct (122). One end of the output line (142) near the release tip (143) is inserted into the mounting bracket (144) so ​​that the release tip (143) passes through the mounting bracket (144) and extends into the air duct (122).

7. The base station (1) according to claim 1, characterized in that, The base station (1) has a dust collection mode and an antibacterial mode. The fan (13) is configured to switch between the dust collection mode and the antibacterial mode. The antibacterial module (14) is configured to be turned on at least in the antibacterial mode. The power of the fan (13) in the dust collection mode is greater than the power of the fan (13) in the antibacterial mode.

8. The base station (1) according to claim 1, characterized in that, The base station (1) also includes a cover (15) which covers the opening of the dust collection chamber (111). The cover (15) is rotatably or detachably connected to the housing (11) to open or close the dust collection chamber (111).

9. A cleaning system, characterized in that, The cleaning system includes a cleaning device (2) and a base station (1) according to any one of claims 1 to 8, wherein the cleaning device (2) includes a dust collection box (21) adapted to connect to the dust collection pipe (12) of the base station (1).

10. The cleaning system according to claim 9, characterized in that, The dust collection pipe (12) includes a dust suction pipe (121) and a blower pipe (122). The dust suction pipe (121) and the blower pipe (122) are respectively connected to the dust collection chamber (111). The air inlet of the fan (13) is connected to the dust collection chamber (111), and the air outlet of the fan (13) is connected to the blower pipe (122). The dust collection box (21) is provided with an air inlet (211) and an air outlet (212). The air inlet (211) is used to connect with the blowing pipe (122), and the air outlet (212) is used to connect with the suction pipe (121).