Bacteriostatic mechanism, waterway system, base station and cleaning system
By introducing an antibacterial mechanism into the base station, antibacterial ion balls or rings are used to treat water, solving the problem of difficult sterilization in the base station. This enables the antibacterial or sterilization of the parts to be cleaned by the cleaning robot, improving the user experience and simplifying the replacement process of the antibacterial mechanism.
Patent Information
- Application Number
- CN202421985985.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-15
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2034-08-15
AI Technical Summary
Existing base stations are unable to effectively sterilize the items to be cleaned by cleaning robots, affecting the user experience.
An antibacterial mechanism, including a shell and an antibacterial structure, is introduced into the base station and configured to be detachably connected to the target structural components of the water system. The water is treated with antibacterial ion balls or antibacterial ion rings to prevent bacteria from multiplying in the cleaning system and the water system.
It achieves antibacterial or sterilization of the parts to be cleaned by the cleaning robot, preventing bacteria from multiplying in the cleaning system and water system, improving the user experience, and the antibacterial mechanism is detachable and replaceable to ensure the antibacterial effect.
Smart Images

Figure CN223682468U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of base stations, in particular to a bacteriostatic mechanism, a waterway system, a base station and a cleaning system. BACKGROUND
[0002] The base station is an auxiliary use device of a cleaning robot. After the cleaning robot runs for a period of time, the cleaning robot enters the base station to perform charging, cleaning, sewage discharge or clean water supplement and the like, so as to ensure that the cleaning robot can work for a long time. However, in the related art, the base station is difficult to sterilize the cleaning object to be cleaned when performing the cleaning operation on the cleaning object to be cleaned, and the function is relatively single, which affects the user experience. CONTENT OF THE UTILITY MODEL
[0003] The present application provides a bacteriostatic mechanism, a waterway system, a base station and a cleaning system, which aims to expand the function of the base station and improve the user experience.
[0004] The present application provides a bacteriostatic mechanism applied to a base station, the bacteriostatic mechanism comprising:
[0005] An outer shell is formed with a liquid flow channel;
[0006] A bacteriostatic structure is arranged in the liquid flow channel;
[0007] The outer shell is configured to be detachably connected with a target structural part of a waterway system of the base station, and the waterway system is used to connect a cleaning system of the base station to deliver water to the cleaning system.
[0008] In the bacteriostatic mechanism of the present application, the bacteriostatic mechanism is configured to be arranged in the target structural part, and the target structural part includes at least a part of at least one of the following components: a water treatment device, a cut-off valve, a water tank, an adapter, a control box and a delivery pipeline of the waterway system.
[0009] In the bacteriostatic mechanism of the present application, the outer shell comprises:
[0010] A first shell part;
[0011] A second shell part is detachably connected with the first shell part, and the first shell part and the second shell part cooperate to form the liquid flow channel.
[0012] In the bacteriostatic mechanism of the present application, the shape of the outer side wall of the first shell part and / or the second shell part comprises a polygon.
[0013] In the bacterium-inhibiting mechanism, the shell is configured to be connected in series with the target structure, and the target structure comprises at least one part of at least one component of a water treatment device, a cut-off valve, a water tank, an adapter, a control box, and a conveying pipeline of the water system.
[0014] In the bacterium-inhibiting mechanism, the bacterium-inhibiting mechanism is located downstream of the target structure in the water flow direction, and the target structure comprises a cut-off valve or a control box of the water system; and / or
[0015] The bacterium-inhibiting mechanism is located upstream of the target structure in the water flow direction, and the target structure comprises an adapter of the water system.
[0016] In the bacterium-inhibiting mechanism, the shell is connected with the target structure in a threaded manner, and water flowing out of the bacterium-inhibiting mechanism can flow into the target structure.
[0017] In the bacterium-inhibiting mechanism, a first sealing body is arranged at a threaded connection position of the shell and the target structure, the first sealing body can be compressed when the shell and the target structure are connected in place, and the first sealing body is not compressed when the shell and the target structure are not threaded.
[0018] In the bacterium-inhibiting mechanism, the target structure is formed with a first connecting portion and a second connecting portion, the first connecting portion is arranged in the second connecting portion, the liquid outlet sub-flow channel and other parts of the liquid flow channel are respectively configured to be connected to the first connecting portion and the second connecting portion, a first sealing body is arranged at a connection position of the first connecting portion and the liquid outlet sub-flow channel, and a second sealing body is arranged at a connection position of the second connecting portion and the shell.
[0019] In the bacterium-inhibiting mechanism, the first sealing body and the second sealing body are arranged in the shell.
[0020] In the bacterium-inhibiting mechanism, the target structure is located downstream of the bacterium-inhibiting mechanism or the bacterium-inhibiting structure in the water flow direction; and the water system further comprises:
[0021] A filtering structure is arranged in the target structure and used for filtering water flowing through the target structure.
[0022] In the bacterium-inhibiting mechanism, the shell is provided with a clamping portion, the target structure is formed with a matching portion, and the clamping portion can be clamped and matched with the matching portion when the shell and the target structure are connected in place.
[0023] In the bacterium-inhibiting mechanism, one of the engaging part and the cooperating part comprises a clamping protrusion, and the other comprises a clamping slot, and the clamping slot is formed with a slot and a spring wall, and the slot is communicated with the clamping slot.
[0024] In the bacterium-inhibiting mechanism, the liquid flow channel comprises a liquid inlet, a hollow cavity and a liquid outlet sub-flow channel, the liquid inlet is communicated with the hollow cavity, the hollow cavity is communicated with the liquid outlet sub-flow channel through a communication port, the bacterium-inhibiting structure is arranged in the hollow cavity, the liquid inlet and the liquid outlet of the liquid outlet sub-flow channel are arranged on the same side of the shell, and the communication port is arranged on the side of the liquid outlet sub-flow channel away from the liquid inlet.
[0025] In the bacterium-inhibiting mechanism, the bacterium-inhibiting structure comprises at least one of a bacterium-inhibiting ion ball, a bacterium-inhibiting ion ring and a bacterium-inhibiting ion generator, and / or the shape of the bacterium-inhibiting structure comprises a ring shape.
[0026] In the bacterium-inhibiting mechanism, the bacterium-inhibiting structure comprises:
[0027] The bacterium-inhibiting shell is formed with a communication hole and a containing cavity, and the communication hole is used for communicating the outside of the bacterium-inhibiting shell and the containing cavity.
[0028] The bacterium-inhibiting ion ball is arranged in the bacterium-inhibiting shell.
[0029] In the bacterium-inhibiting mechanism, the bacterium-inhibiting mechanism further comprises:
[0030] The filter is arranged upstream or downstream of the bacterium-inhibiting structure in the water flow direction.
[0031] The application also provides a water system of a base station, comprising:
[0032] The target structure has a liquid inlet and a liquid outlet.
[0033] The bacterium-inhibiting mechanism described in any one of the above is connected with the target structure, and the liquid inlet or the liquid outlet is communicated with the liquid flow channel.
[0034] The application also provides a water system of a base station, comprising:
[0035] The pipeline mechanism is configured to connect a cleaning system of a base station to at least deliver water to the cleaning system.
[0036] The bacterium-inhibiting mechanism described in any one of the above is connected with the target structure of the pipeline mechanism, and can inhibit bacteria in water flowing through the pipeline mechanism.
[0037] In the water route system of the embodiment of the present application, the space for placing the bacterium-inhibiting mechanism of the target structure is a relatively closed space.
[0038] In the water route system of the embodiment of the present application, the target structure comprises a water treatment device, and the bacterium-inhibiting mechanism is arranged in the water treatment device.
[0039] A housing, in which the bacterium-inhibiting mechanism is arranged;
[0040] A water treatment assembly arranged in the housing, and the water treatment assembly comprises at least one of a scale-inhibiting assembly and a filtering assembly, the scale-inhibiting assembly is used for performing scale removal treatment on water flowing through the housing, and the filtering assembly is used for performing filtering on water flowing through the housing.
[0041] In the water route system of the embodiment of the present application, the target structure comprises a water treatment device, and the bacterium-inhibiting mechanism is arranged in the water treatment device.
[0042] A shut-off valve, and the water treatment device is arranged between an external water source and the shut-off valve.
[0043] In the water route system of the embodiment of the present application, the pipeline mechanism comprises:
[0044] A shut-off valve, and the bacterium-inhibiting mechanism is located upstream or downstream of the shut-off valve in a water flow direction.
[0045] In the water route system of the embodiment of the present application, the pipeline mechanism comprises:
[0046] A shut-off valve;
[0047] A conveying pipeline in communication with the shut-off valve, and the bacterium-inhibiting mechanism is arranged in the shut-off valve or the conveying pipeline.
[0048] In the water route system of the embodiment of the present application, the bacterium-inhibiting mechanism comprises:
[0049] An outer shell formed with a liquid flow channel;
[0050] A bacterium-inhibiting structure arranged in the liquid flow channel.
[0051] The embodiment of the present application further provides a base station, comprising:
[0052] A base station body; and
[0053] The water route system in any of the above is arranged in the base station body.
[0054] The embodiment of the present application further provides a cleaning system, comprising:
[0055] A cleaning robot; and
[0056] The base station described above is used for maintaining the cleaning robot.
[0057] The antibacterial mechanism, water system, base station, and cleaning system provided in this application embodiment allow the antibacterial mechanism to contact the water flowing through the base station's water system. This enables the antibacterial mechanism to inhibit bacteria growth in the water before it enters the cleaning system, preventing bacteria from multiplying inside the cleaning system and / or on the inner walls of pipes downstream of the antibacterial mechanism in the water system. This avoids the odor and mold growth caused by bacteria in the water system and / or cleaning system, thereby reducing the frequency of user maintenance and replacement of the water system and / or cleaning system. The antibacterial mechanism also allows the base station to not only clean the parts to be cleaned by the cleaning robot but also to inhibit or sterilize them, making the base station more versatile and improving the user experience. Furthermore, because the antibacterial mechanism can be detachably connected to the target structural components of the water system, the assembly and disassembly of the antibacterial mechanism to the target structural components are convenient. Once the antibacterial mechanism reaches its usage limit, it can be replaced to ensure its antibacterial effect.
[0058] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and do not limit the disclosure of the embodiments of this application. Attached Figure Description
[0059] To more clearly illustrate the technical solutions of the embodiments of this application, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0060] Figure 1 This is a partial structural schematic diagram of a water system provided in one embodiment of this application;
[0061] Figure 2 This is a partial structural schematic diagram of a water system provided in one embodiment of this application;
[0062] Figure 3 This is a schematic diagram of the antibacterial mechanism provided in one embodiment of this application;
[0063] Figure 4 This is a schematic diagram of the antibacterial mechanism provided in one embodiment of this application;
[0064] Figure 5 This is a partially exploded schematic diagram of a water system provided in one embodiment of this application;
[0065] Figure 6 This is a schematic diagram of the antibacterial structure provided in one embodiment of this application;
[0066] Figure 7 is a structural diagram of a bacteriostatic structure provided by an embodiment of the present application.
[0067] Figure 8 is a structural diagram of a bacteriostatic structure provided by an embodiment of the present application.
[0068] Legend of reference signs:
[0069] 100, a bacteriostatic mechanism;
[0070] 10, a shell; 11, a liquid flow channel; 111, a liquid inlet; 112, a hollow cavity; 113, a liquid outlet sub-flow channel; 1131, a liquid outlet; 114, a communication port; 12, a first shell part; 13, a second shell part; 14, a clamping part;
[0071] 20, a bacteriostatic structure; 21, a bacteriostatic shell; 211, a communication hole; 212, a containing cavity; 22, a bacteriostatic ion ball; 31, a first sealing body; 32, a second sealing body; 40, a filter;
[0072] 200, a target structure; 201, a first connecting part; 202, a second connecting part; 203, a matching part; 2031, a slot; 2032, a resilient wall; 204, a liquid inlet; 205, a liquid outlet; 206, a shell; 207, a water treatment assembly; 208, a water passing space; 209, a water inlet;
[0073] 300, a filter structure; 400, a pipeline mechanism. DETAILED DESCRIPTION
[0074] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are 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 the other embodiments obtained by those skilled in the art without creative work fall within the protection scope of the present application.
[0075] In the description of the present application, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "a plurality of" is two or more, unless otherwise explicitly specified.
[0076] It should also be understood that the terms used in the specification of the present application are only for the purpose of describing specific embodiments and are not intended to limit the present application. As used in the specification and the appended claims of the present application, the singular forms "a", "an" and "the" are intended to include the plural forms unless the context clearly indicates otherwise.
[0077] It should be further understood that the term "and / or" used in the specification and the appended claims of the present application means any combination of one or more of the associated listed items and all possible combinations thereof.
[0078] Some embodiments of the present application will be described in detail below with reference to the accompanying drawings. The following embodiments and features in the embodiments can be combined with each other without conflict.
[0079] Please refer to Figure 1 The embodiments of the present application provide a bacteriostatic mechanism 100 applied to a base station, the bacteriostatic mechanism 100 comprising a shell 10 and a bacteriostatic structure 20, the shell 10 being formed with a liquid flow channel 11, and the bacteriostatic structure 20 being arranged in the liquid flow channel 11; wherein the shell 10 is configured to be detachably connected with a target structure 200 of a waterway system of the base station, and the waterway system is used to connect a cleaning system (not shown in the figure) of the base station to deliver water to the cleaning system.
[0080] The bacteriostatic mechanism 100 of the above embodiment can be in contact with water flowing through the waterway system of the base station, so that the bacteriostatic mechanism 100 can bacteriostasis the water before entering the cleaning system, thereby preventing bacteria from breeding on the inner wall of the cleaning system and / or the pipeline downstream of the bacteriostatic mechanism 100 in the waterway system, avoiding the odor and mildew caused by the bacteria in the waterway system and / or the cleaning system, thereby reducing the frequency of user maintenance and replacement of the waterway system and / or the cleaning system. The bacteriostatic mechanism 100 can also be used to bacteriostasis or sterilize the cleaning robot. When the bacteriostatic mechanism releases bacteriostatic components (such as bacteriostatic ions), the bacteriostatic components can follow the water to the cleaning object, and the bacteriostatic components carried by the water flowing into the cleaning object can effectively bacteriostasis or sterilize the cleaning object, making the function of the base station more diversified and improving the user experience. In addition, the bacteriostatic mechanism 100 includes a shell 10 and a bacteriostatic structure 20, and the bacteriostatic structure 20 is arranged in the liquid flow channel 11 of the shell 10, so that the bacteriostatic mechanism 100 can become an independent module, which provides a guarantee for convenient and rapid replacement of the bacteriostatic mechanism 100, and the bacteriostatic mechanism 100 has better compatibility. In addition, since the bacteriostatic mechanism 100 can be detachably connected with the target structure 200 of the waterway system, the bacteriostatic mechanism 100 and the target structure 200 are convenient to disassemble and assemble, and the bacteriostatic mechanism 100 can be replaced when it reaches the upper limit of use, thereby ensuring the bacteriostatic effect of the bacteriostatic mechanism 100.
[0081] Exemplarily, the cleaning robot can include at least one of a scrubber, a scrubber vehicle, a water suction machine, a cleaning machine, a sweeper, a mopper, and a sweeper-mopper integrated machine, etc.
[0082] Exemplarily, the base station body (not shown in the figure) of the base station is formed with a cleaning system for receiving clean water to clean the cleaning object of the cleaning robot and to discharge the sewage generated by the cleaning. The cleaning object of the cleaning robot includes but is not limited to a wiping object. Exemplarily, the cleaning system includes a water outlet or a spray port, which is communicated with the waterway system, and the waterway system can deliver water to the water outlet or the spray port to deliver clean water to the cleaning robot, the cleaning object and / or the preset cleaning area.
[0083] Please refer to Figure 2In some embodiments, the bacteriostatic mechanism 100 is configured to be arranged in a target structure 200, which includes at least a portion of at least one of the following components: a water treatment device of a water system, a stop valve, a water tank, an adapter, a control box, a conveying pipeline. When water flows through the target structure 200, the bacteriostatic mechanism 100 can perform bacteriostatic treatment on the water to prevent bacteria from proliferating on the inner wall of the target structure 200 and / or the inner wall of the pipeline located after the target structure 200, causing the target structure 200 and the pipeline to mildew and emit a foul odor; the bacteriostatic mechanism 100 can also protect the target structure 200 and the pipeline located after the target structure 200 in the water system to a certain extent. For example, the target structure 200 includes at least one of the following components: a stop valve, an adapter, and a conveying pipeline. For another example, the target structure 200 includes at least a portion of a water tank. In some embodiments, the water tank can also be omitted, i.e., no water tank is provided, and water from a water source is directly conveyed to a water outlet or a spray outlet of a cleaning system through a pipeline.
[0084] For example, the shell 10 is used to form a liquid flow channel 11 to provide a place for the bacteriostatic structure 20, i.e., a place for bacteriostatic treatment of water, so that the water is treated by the bacteriostatic structure 20 before it flows out of the shell 10 or the liquid flow channel 11. In other embodiments, in addition to providing a place for bacteriostatic treatment of water, the shell 10 can also provide a place for other water treatment (such as filtration, scale removal treatment, and / or heating, etc.) of water.
[0085] For example, in addition to the bacteriostatic structure 20 and the water treatment component, no other components are arranged in the shell 10. The water treatment component can include at least one of the following: a scale inhibition assembly and a filter assembly. The scale inhibition assembly is used to perform scale removal treatment on water in the liquid flow channel 11, and the filter assembly is used to filter water in the liquid flow channel 11. The water treatment device can treat water flowing through the water treatment device to improve water quality.
[0086] For example, in addition to the bacteriostatic structure 20, no other components are arranged in the shell 10. In other embodiments, in addition to the bacteriostatic structure 20, other components can also be arranged in the shell 10.
[0087] For example, in addition to the liquid inlet 111 and the liquid outlet 1131 of the liquid sub-flow channel 113, no other openings or openings are arranged in the shell 10. In other embodiments, in addition to the liquid inlet 111 and the liquid outlet 1131 of the liquid sub-flow channel 113, other openings or openings can also be arranged in the shell 10, such as liquid communication ports, gas communication ports, or connection ports, etc.
[0088] Please refer to Figure 1In some embodiments, the shell 10 comprises a first shell part 12 and a second shell part 13, the second shell part 13 is detachably connected with the first shell part 12, and the first shell part 12 and the second shell part 13 cooperate to form the liquid flow channel 11. The detachable connection between the first shell part 12 and the second shell part 13 facilitates the placement or replacement of the bacteriostatic structure 20. After the bacteriostatic structure 20 reaches the upper limit of use, the first shell part 12 and the second shell part 13 can be detached to facilitate the replacement of the bacteriostatic structure 20 in the shell 10, without the need to replace the shell 10, which is conducive to reducing costs. Exemplarily, the detachable connection between the first shell part 12 and the second shell part 13 includes at least one of the following: threaded connection, buckle connection, magnetic attraction connection, screw locking connection, etc.
[0089] In another embodiment, the shell 10 comprises a first shell part 12 and a second shell part 13, the second shell part 13 is fixedly connected with the first shell part 12, and the first shell part 12 and the second shell part 13 cooperate to form the liquid flow channel 11. After the bacteriostatic structure 20 reaches the upper limit of use, the entire bacteriostatic mechanism 100 can be replaced, which is faster and more convenient.
[0090] Please refer to Figure 3 In some embodiments, the shape of the outer side wall of the first shell part 12 and / or the second shell part 13 comprises a polygon. When it is necessary to open or detach the first shell part 12 and / or the second shell part 13, the user can hold the outer side wall of the polygon without slipping easily, so that the arrangement of the polygon facilitates the user to unscrew the first shell part 12 or the second shell part 13, thereby facilitating the quick replacement of the bacteriostatic structure 20 in the shell 10. For example, the cross-sectional shape of the outer side wall of the outer side wall of the first shell part 12 and / or the second shell part 13 comprises a triangle, a quadrilateral, a pentagon, a hexagon or any other suitable polygon. Exemplarily, please refer to Figure 3 , the shape of the outer side wall of the second shell part 13 comprises a polygon. In other embodiments, the shape of the outer side wall of the first shell part 12 and / or the second shell part 13 can also be a non-polygon, which is not limited here.
[0091] Please refer to Figure 1 In some embodiments, the shell 10 is configured to be connected in series with a target structure 200, and the target structure 200 comprises at least a portion of at least one of the following components: a water treatment device of a water system, a stop valve, a water tank, an adapter, a control box or a conveying pipeline. The bacteriostatic mechanism 100 has good adaptability, flexible installation and good compatibility. Exemplarily, the shell 10 is configured to be connected in series with the target structure 200, at least including: the shell 10 is connected with the target structure 200, and in the water flow direction, the end of the target structure 200 away from the shell 10 is located upstream of the shell 10; the shell 10 is connected with the target structure 200, and in the water flow direction, the end of the target structure 200 away from the shell 10 is located downstream of the shell 10.
[0092] In some embodiments, the antibacterial mechanism 100 is located downstream of the target structure 200 in the direction of water flow. The target structure 200 includes a shut-off valve or control box of the water system. The antibacterial mechanism 100 can inhibit bacteria in the water flowing out of the shut-off valve or control box, thereby preventing bacteria from multiplying on the inner wall of the pipe after the shut-off valve or control box, which would lead to mold and odor; it also provides a certain degree of protection for the pipe in the water system located after the shut-off valve or control box.
[0093] In some embodiments, the antibacterial mechanism 100 is located upstream of the target structure 200 in the direction of water flow, and the target structure 200 includes a water system adapter. Before flowing through the adapter, the water first flows through the antibacterial mechanism 100, which inhibits bacterial growth in the water, thereby preventing bacteria from multiplying on the inner walls of the adapter and the pipes downstream of the adapter, thus preventing mold and odor. This provides a certain degree of protection for the adapter and the pipes downstream of the adapter in the water system.
[0094] Please see Figure 1 and Figure 4 In some embodiments, the liquid flow channel 11 includes an inlet 111, a hollow cavity 112, and an outlet sub-flow channel 113. The inlet 111 communicates with the hollow cavity 112, and the hollow cavity 112 communicates with the outlet sub-flow channel 113 through a connecting port 114. The antibacterial structure 20 is disposed within the hollow cavity 112. The liquid outlets 1131 of the inlet 111 and the outlet sub-flow channel 113 are located on the same side of the outer shell 10, and the connecting port 114 is located on the side of the outlet sub-flow channel 113 away from the inlet 111. This facilitates increasing the flow channel length of the liquid flow channel 11 within a limited space, increasing the contact probability between the antibacterial mechanism 100 and the water in the liquid flow channel 11, thereby improving the antibacterial effect of the antibacterial mechanism 100. In other embodiments, the inlet 111 and the outlet 1131 of the outlet sub-flow channel 113 may not be located on the same side of the outer shell 10.
[0095] Please see Figure 1 and Figure 4 In some embodiments, the outer casing 10 is threadedly connected to the target structural member 200, allowing water flowing from the antibacterial mechanism 100 to flow into the target structural member 200. This threaded connection method is simple in structure and can provide a certain degree of self-locking, preventing the antibacterial mechanism 100 from easily loosening from the target structural member 200 during installation and after assembly, thus ensuring a reliable connection between the outer casing 10 and the target structural member 200. For example, the outer casing 10 has an external thread, and the target structural member 200 has an internal thread adapted to the external thread; or, the outer casing 10 has an internal thread, and the target structural member 200 has an external thread adapted to the internal thread.
[0096] Please see Figure 1 andFigure 5 In some embodiments, the housing 10 is provided with a first seal 31 at the threaded connection with the target structure 200, which can be compressed when the housing 10 is connected to the target structure 200 in place, and is not compressed when the housing 10 is not threaded with the target structure 200. After the part of the antibacterial mechanism 100 is put into the target structure 200 and before external force is applied to the antibacterial mechanism 100 and / or the target structure 200, the threads of the target structure 200 can limit the antibacterial mechanism 100, so that the target structure 200 and the antibacterial mechanism 100 cannot be further close to each other before external force is applied to the target structure 200 and / or the antibacterial mechanism 100, and the first seal 31 is not compressed at this time. At this time, if further external force is applied to the antibacterial mechanism 100 and / or the target structure 200, such as rotating the antibacterial mechanism 100, the threads of the antibacterial mechanism 100 can start to engage with the threads of the target structure 200, and the antibacterial mechanism 100 moves towards the target structure 200 under the action of the threads of the two, and the first seal 31 is compressed and participates in sealing at this time. Due to the effect of thread reinforcement, the assembly process of the antibacterial mechanism 100 and the target structure 200 is relatively easy.
[0097] Please refer to Figure 1 In some embodiments, the target structure 200 is formed with a first connecting part 201 and a second connecting part 202, the first connecting part 201 is arranged in the second connecting part 202, the liquid outlet sub-flow passage 113 and other parts of the liquid flow passage 11 are respectively arranged to be connected to the first connecting part 201 and the second connecting part 202, the first connecting part 201 is provided with a first seal 31 at the connection with the liquid outlet sub-flow passage 113, and the second connecting part 202 is provided with a second seal 32 at the connection with the housing 10. The first seal 31 and the second seal 32 can make the antibacterial mechanism 100 and the target structure 200 double-sealed, effectively improving the sealing effect between the antibacterial mechanism 100 and the target structure 200, and preventing water leakage at the connection between the antibacterial mechanism 100 and the target structure 200. Please refer to Figure 1In some embodiments, the second connecting part 202 is sleeved on the first connecting part 201, the second connecting part 202 is arranged apart from the first connecting part 201 to form a water passing space 208, and the water passing space 208 is communicated with the liquid inlet 111 of the liquid flow channel. The first sealing body 31 can seal the liquid outlet sub-flow channel 113 and the first connecting part 201, so as to prevent water from flowing out of the liquid outlet sub-flow channel 113 and leaking outwards to the water passing space 208 through the gap between the first connecting part 201 and the liquid outlet sub-flow channel 113. The second sealing body 32 can seal the connection between the shell 10 and the second connecting part 202, so as to prevent water in the water passing space 208 from leaking outwards through the gap between the shell 10 and the second connecting part 202. Exemplarily, the target structure 200 is formed with a water inlet 209, the water inlet 209 is communicated with the water passing space 208, and water can flow into the liquid flow channel 11 through the water inlet 209, the water passing space 208 and the liquid inlet 111.
[0098] In some embodiments, the first sealing body 31 and the second sealing body 32 are arranged on the shell 10, so that the sealing effect can be improved, and the position error caused by the assembly of the bacterium inhibition mechanism 100 and the target structure 200 does not affect the sealing effect. Exemplarily, the first sealing body 31 and the second sealing body 32 are both sealing rings, such as O-shaped sealing rings. The first sealing body 31 and / or the second sealing body 32 can be fixed on the shell 10 by means of adhesive connection, clamping and the like.
[0099] Please refer to Figure 1 In some embodiments, the target structure 200 is located downstream of the bacterium inhibition mechanism 100 or the bacterium inhibition structure 20 along the water flow direction; the waterway system further comprises a filtering structure 300 arranged in the target structure 200, and the filtering structure 300 is used for filtering water flowing out of the target structure 200 or water flowing through the bacterium inhibition structure 20. After the water flows through the bacterium inhibition mechanism 100 or the bacterium inhibition structure 20 and then flows to the target structure 200, the filtering structure 300 can filter the water, so as to filter the debris generated after the bacterium inhibition mechanism 100 or the bacterium inhibition structure 20 is aged, and filter foreign matters possibly entering the bacterium inhibition mechanism 100 and / or the target structure 200 during the process of installing or replacing the bacterium inhibition mechanism 100 or the bacterium inhibition structure 20, so as to protect the pipeline located behind the target structure 200. Exemplarily, the filtering structure 300 comprises at least one of the following: a filtering sponge, a filtering screen and the like.
[0100] Please refer to Figure 4 and Figure 5In some embodiments, the shell 10 is provided with a clamping portion 14, and the target structure 200 is formed with a matching portion 203; when the shell 10 and the target structure 200 are connected in place, the clamping portion 14 can be clamped with the matching portion 203. When the bacteriostatic mechanism 100 and the target structure 200 are connected in place, the clamping portion 14 can be clamped with the matching portion 203, so that the connection between the bacteriostatic mechanism 100 and the target structure 200 is reliable and stable, preventing the bacteriostatic mechanism 100 and the target structure 200 from being easily loosened after being connected in place.
[0101] Please refer to Figure 4 and Figure 5 In some embodiments, one of the clamping portion 14 and the matching portion 203 includes a clamping protrusion, and the other includes a clamping slot, and the clamping slot is formed with a slot 2031 and a resilient wall 2032, and the slot 2031 communicates with the clamping slot. When the bacteriostatic mechanism 100 is screwed in, it rotates and moves downward at the same time, and the resilient wall 2032 is deformed by being pressed down. When the clamping protrusion enters the clamping slot, the resilient wall 2032 will pop up, providing a sense of being in place and reminding the user to assemble in place. At the same time, the resilient wall 2032 pops up to form an obstacle, preventing the bacteriostatic mechanism 100 from loosening. For example, please refer to Figure 4 and Figure 5 The clamping portion 14 includes a clamping protrusion, and the matching portion 203 includes a clamping slot.
[0102] In some embodiments, the bacteriostatic structure 20 includes at least one of the following: bacteriostatic ion ball particles, bacteriostatic ion rings, and bacteriostatic ion generators. It can be understood that the bacteriostatic ion ball particles, the bacteriostatic ion rings, or the bacteriostatic ion generators can release bacteriostatic ions into the environment, so that the bacteriostatic ions can bacteriostatic the environment where the bacteriostatic mechanism 100 is located. In addition, the bacteriostatic ions released by the bacteriostatic structure 20 follow the water and flow towards the pipeline located downstream of the bacteriostatic structure 20, so as to bacteriostatic the pipeline located downstream of the bacteriostatic mechanism 100 (such as the pipeline located downstream of the bacteriostatic structure 20 in the water system and / or the clean water system). For example, the bacteriostatic ions can include at least one of the following: silver ions, copper ions, zinc ions, etc.
[0103] Please refer to Figure 1 or Figure 6 In some embodiments, the shape of the bacteriostatic structure 20 includes a ring shape, and the middle part of the ring-shaped bacteriostatic structure 20 is hollow, which can be used to pass through other pipelines or components of the water system, which is beneficial to make the structure of the water system more compact, reduce the overall occupied volume, and realize the miniaturization design of the product. For example, when the bacteriostatic mechanism 100 does not include the shell 10, the bacteriostatic material can be made into a ring-shaped bacteriostatic structure 20. For another example, when the bacteriostatic structure 20 includes the shell 10, the overall shape of the bacteriostatic structure 20 can be made into a ring shape. In other embodiments, the shape of the bacteriostatic structure 20 can also be non-ring-shaped, such as a columnar shape, other regular shapes, or irregular shapes, etc.
[0104] Referring to Figure 7 In some embodiments, the bacteriostatic structure 20 comprises a bacteriostatic shell 21 and a bacteriostatic ion ball 22, the bacteriostatic shell 21 is formed with a communication hole 211 and a containing cavity 212, the bacteriostatic ion ball 22 is arranged in the bacteriostatic shell 21; the communication hole 211 is used for communicating the bacteriostatic shell 21 outside and the containing cavity 212, so that water can enter the containing cavity 212 and the water in the containing cavity 212 can flow out, thereby ensuring that water can contact the bacteriostatic ion ball 22 in the containing cavity 212 to achieve bacteriostasis. Arranging the bacteriostatic ion ball 22 in the bacteriostatic shell 21 facilitates quick installation or replacement of the bacteriostatic structure 20.
[0105] Referring to Figure 8 In some embodiments, the bacteriostatic mechanism 100 further comprises a filter 40, the filter 40 is arranged upstream or downstream of the bacteriostatic structure 20 along the water flow direction. For example, the filter 40 is arranged downstream of the bacteriostatic structure 20 along the water flow direction, the water flowing out of the bacteriostatic structure 20 can flow through the filter 40, so that the filter 40 can filter the debris generated due to aging of the bacteriostatic structure 20, and filter foreign matter that may enter the housing 10 during installation or replacement of the bacteriostatic structure 20, thereby protecting the pipeline located after the bacteriostatic mechanism 100. For another example, the filter 40 is arranged upstream of the bacteriostatic structure 20 along the water flow direction, the water filtered by the filter 40 flows through the bacteriostatic structure 20 again, thereby filtering the debris and / or foreign matter located upstream of the bacteriostatic structure 20, thereby protecting the bacteriostatic structure 20 and the pipeline located after the bacteriostatic mechanism 100. Exemplarily, the filter 40 comprises at least one of the following: a filter sponge, a filter screen.
[0106] It can be understood that Figure 1 And Figure 8 The red dashed arrow in the figure indicates the water flow direction, which is only illustrative, and the present application is not limited thereto. During application or design, it can be changed according to actual needs.
[0107] Figure 1 , Figure 2 , Figure 5 , Figure 8 The structure and / or shape of the bacteriostatic mechanism 100 or the bacteriostatic structure 20 in the figure is only illustrative, and the present application is not limited thereto. The structure and / or shape of the bacteriostatic mechanism 100 or the bacteriostatic structure 20 can be changed according to actual needs.
[0108] Referring to Figure 1The waterway system of the above-mentioned embodiments can be used in combination with the base station of the above-mentioned embodiments.
[0109] The waterway system of the above-mentioned embodiments can be used in combination with the base station of the above-mentioned embodiments.
[0110] The waterway system of the above-mentioned embodiments can be used in combination with the base station of the above-mentioned embodiments.
[0111] The waterway system of the above-mentioned embodiments can be used in combination with the base station of the above-mentioned embodiments. Figure 2 The waterway system of the above-mentioned embodiments can be used in combination with the base station of the above-mentioned embodiments.
[0112] The waterway system of the above-mentioned embodiments, since the waterway system comprises the bacterium inhibition mechanism 100 capable of contacting the water flowing through the pipeline mechanism 400, so that the bacterium inhibition mechanism 100 can inhibit the bacterium of the water before entering the cleaning system, thereby preventing the bacterium from breeding in the interior of the cleaning system or on the inner wall of the pipeline downstream of the bacterium inhibition mechanism 100, avoiding the odor and mildew caused by the bacterium in the pipeline mechanism 400 and / or the cleaning system, thereby reducing the frequency of user maintenance, replacement of the pipeline mechanism 400 and / or the cleaning system; and the bacterium inhibition mechanism 100 can also inhibit the bacterium of the cleaning robot to be cleaned, expand the function of the base station, and improve the user experience.
[0113] Exemplarily, the bacterium inhibition mechanism 100 comprises the bacterium inhibition mechanism 100 of any one of the above-mentioned embodiments. The pipeline mechanism 400 comprises the pipeline mechanism 400 of any one of the above-mentioned embodiments. The target structure 200 comprises the target structure 200 of any one of the above-mentioned embodiments. The cleaning system comprises the cleaning system of any one of the above-mentioned embodiments.
[0114] Exemplarily, the bacterium inhibition mechanism 100 can omit the shell 10 and only comprise the bacterium inhibition mechanism 20 of any one of the above-mentioned embodiments.
[0115] In some embodiments, the space for placing the bacterium inhibition mechanism 100 in the target structure 200 is a relatively closed space. It can be understood that the relatively closed space means that, except that the liquid inlet 204 and the liquid outlet 205 of the target structure 200 are open to the outside, the other outer contour of the target structure 200 is closed, and the target structure 200 is arranged in the relatively closed space. In this way, the sealing difficulty can be reduced as much as possible, the complex design of sealing is avoided, the overall reliability is improved, and it is ensured that the water will not leak when flowing through the waterway system.
[0116] Please refer to Figure 2In some embodiments, the target structure 200 comprises a water treatment device, the water treatment device comprises a housing 206 and a water treatment assembly 207, and the bacterium inhibition mechanism 100 is arranged in the housing 206; the water treatment assembly 207 is arranged in the housing 206; the water treatment assembly 207 comprises at least one of a scale inhibition assembly and a filter assembly, the scale inhibition assembly is used for performing scale inhibition treatment on water flowing through the housing 206, and the filter assembly is used for performing filtration on water flowing through the housing 206. The water treatment device can treat water flowing through the water treatment device to improve water quality. The bacterium inhibition mechanism 100 is arranged in the water treatment device, so that water can realize the functions of bacterium inhibition and water quality improvement during the process of flowing through the water treatment device, the functions of the water treatment device are diversified, and the size and structure of the waterway system are small and simple in the case of realizing the two functions. Exemplarily, the scale inhibition assembly comprises a scale inhibition gem. The filter assembly comprises a filter. Exemplarily, the water treatment assembly 207 comprises the filter assembly, and the bacterium inhibition mechanism 100 is arranged in the filter assembly, so that no additional structure for mounting the bacterium inhibition mechanism 100 is needed, and the structure and size of the waterway system are facilitated to be simplified.
[0117] In some embodiments, the target structure 200 comprises a water treatment device, and the bacterium inhibition mechanism 100 is arranged in the water treatment device; the pipeline mechanism 400 further comprises a stop valve, and the water treatment device is arranged between an external water source and the stop valve. When water flows through the water treatment device, the bacterium inhibition mechanism 100 can perform bacterium inhibition treatment on the water, prevent bacteria from breeding on the inner wall of the water treatment device, and prevent bacteria from breeding on the inner wall of the stop valve and other pipelines located after the water treatment device, thereby preventing the stop valve and the other pipelines from being mildewed and smelly; the water treatment device, the stop valve and the other pipelines located after the water treatment device are protected to the greatest extent; and the bacterium inhibition mechanism 100 can also perform bacterium inhibition protection on the cleaning robot.
[0118] In some embodiments, the pipeline mechanism 400 comprises a stop valve, and the bacterium inhibition mechanism 100 is located upstream or downstream of the stop valve in the water flow direction. For example, the bacterium inhibition mechanism 100 is located upstream of the stop valve in the water flow direction, water flows through the bacterium inhibition mechanism 100 and then flows to the stop valve, so that the water is subjected to bacterium inhibition treatment by the bacterium inhibition mechanism 100 before flowing through the stop valve; the bacterium inhibition mechanism 100 performs bacterium inhibition on the water and / or the environment in which the bacterium inhibition mechanism 100 is located before the water flows through the stop valve, so as to prevent bacteria from breeding on the inner wall of the stop valve and the inner wall of the pipeline located after the stop valve, thereby preventing the stop valve and the pipeline located after the stop valve from being mildewed and smelly, protecting the stop valve, the pipeline located after the stop valve and the waterway system to the greatest extent; and the bacterium inhibition mechanism 100 can also perform bacterium inhibition protection on the cleaning robot. For another example, the bacterium inhibition mechanism 100 is located downstream of the stop valve in the water flow direction, and the bacterium inhibition mechanism 100 can perform bacterium inhibition on water flowing out of the stop valve.
[0119] In some embodiments, the pipeline mechanism 400 comprises a shut-off valve and a conveying pipeline in communication with the shut-off valve, and the bacterium inhibition mechanism 100 is arranged in the shut-off valve or the conveying pipeline. When water flows through the shut-off valve or the conveying pipeline, the bacterium inhibition mechanism 100 can perform bacterium inhibition treatment on the water, prevent bacteria from breeding on the inner wall of the shut-off valve or the conveying pipeline, and prevent bacteria from breeding on the inner wall of the pipeline after the shut-off valve or the conveying pipeline, causing the pipeline to be mildewed and smelly; the shut-off valve or the conveying pipeline, and the pipeline after the shut-off valve or the conveying pipeline are protected to a certain extent; and the bacterium inhibition mechanism 100 can also perform bacterium inhibition protection on the cleaning robot.
[0120] Please refer to Figure 1 In some embodiments, the bacterium inhibition mechanism 100 comprises a shell 10 and a bacterium inhibition structure 20, the shell 10 is formed with a liquid flow channel 11, and the bacterium inhibition structure 20 is arranged in the liquid flow channel 11. The bacterium inhibition structure 20 is arranged in the liquid flow channel 11 of the shell 10, so that the bacterium inhibition mechanism 100 can become an independent module, which provides a guarantee for convenient and rapid replacement of the bacterium inhibition mechanism 100, and the compatibility of the bacterium inhibition mechanism 100 is better. Exemplarily, the shell 10 comprises the shell 10 of any one of the above embodiments, and the bacterium inhibition structure 20 comprises the bacterium inhibition structure 20 of any one of the above embodiments.
[0121] The embodiments of the present application also provide a base station comprising a base station body and the waterway system of any one of the above embodiments, and the waterway system is arranged in the base station body.
[0122] Exemplarily, the base station comprises the base station of any one of the above embodiments. The base station body comprises the base station body of any one of the above embodiments.
[0123] The embodiments of the present application also provide a cleaning system comprising a cleaning robot and the base station of any one of the above embodiments, and the base station is used for maintaining the cleaning robot.
[0124] Exemplarily, the cleaning robot comprises the cleaning robot of any one of the above embodiments.
[0125] In the description of the present application, it should be noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connecting", "mechanically coupled", "coupled" should be understood in a broad sense, for example, can be fixedly connected, can be detachably connected, or integrally connected. It can be a mechanical connection or an electrical connection. It can be directly connected or indirectly connected through an intermediate medium. It can be the communication inside two elements or the interaction relationship between two elements. The mechanical coupling or coupling of two components includes direct coupling and indirect coupling, for example, direct fixed connection, connection through a transmission mechanism, etc. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0126] In the present application, unless specifically defined otherwise, the phrase "on" or "under" a first feature with respect to a second feature can include that the first and second features are in direct contact, or that the first and second features are not in direct contact but are in contact through another feature between them. Also, the phrase "on", "above", and "on top of" a first feature with respect to a second feature includes that the first feature is directly above and obliquely above the second feature, or simply means that the first feature is horizontally higher than the second feature. The phrase "under", "below", and "underneath" a first feature with respect to a second feature includes that the first feature is directly below and obliquely below the second feature, or simply means that the first feature is horizontally lower than the second feature.
[0127] The above disclosure provides many different embodiments or examples for implementing different structures of the present application. For the purpose of simplification, the components and arrangements of specific examples are described in the above. Of course, they are only examples, and the purpose is not to limit the present application. In addition, the present application can repeatedly refer to numbers and / or letters in different examples, and such repetition is for the purpose of simplification and clarity, which itself does not indicate the relationship between the various embodiments and / or arrangements discussed. In addition, the present application provides examples of various specific processes and materials, but those skilled in the art can realize the application of other processes and / or the use of other materials.
[0128] In the description of the present application, the description of the terms "one embodiment", "some embodiments", "exemplary embodiment", "example", "specific example", or "some examples" means that the specific method steps, features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In the present application, the exemplary description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific method steps, features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0129] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto, and any skilled person in the art can easily think of various equivalent modifications or replacements within the technical scope disclosed by the present application, and these modifications or replacements should be included in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A bacteria-inhibiting mechanism applied to a base station, characterized by, The bacteriostatic mechanism comprises: a housing formed with a liquid flow channel; a bacteriostatic structure arranged in the liquid flow channel; wherein the housing is configured to be detachably connected with a target structure of a waterway system of the base station, the waterway system being used to connect a cleaning system of the base station to deliver water to the cleaning system.
2. The germ inhibiting mechanism of claim 1, wherein, The bacteriostatic mechanism is configured to be arranged in the target structure, the target structure comprising at least a portion of at least one of the following components: a water treatment device, a shutoff valve, a water tank, an adapter, a control box, a delivery pipeline of the waterway system.
3. The germ inhibiting mechanism of claim 1, wherein, The housing comprises: a first housing part; a second housing part detachably connected with the first housing part, the first housing part and the second housing part cooperating to form the liquid flow channel.
4. The germ inhibiting mechanism of claim 3, wherein, The shape of the outer side wall of the first housing part and / or the second housing part comprises a polygon.
5. The germ inhibiting mechanism of claim 1, wherein The housing is configured to be connected in series with the target structure, the target structure comprising at least a portion of at least one of the following components: a water treatment device, a shutoff valve, a water tank, an adapter, a control box, a delivery pipeline of the waterway system.
6. The germ inhibiting mechanism of claim 5, wherein, The bacteriostatic mechanism is located downstream of the target structure in the water flow direction, the target structure comprising a shutoff valve or a control box of the waterway system; and / or The bacteriostatic mechanism is located upstream of the target structure in the water flow direction, the target structure comprising an adapter of the waterway system.
7. The germ inhibiting mechanism of claim 5, wherein, The housing is threadedly connected with the target structure, and water flowing out of the bacteriostatic mechanism can flow into the target structure.
8. The germ inhibiting mechanism of claim 7, wherein, A first sealing body is arranged at the threadedly connected position of the housing and the target structure, the first sealing body being compressed when the housing and the target structure are connected in place, and the first sealing body not being compressed when the housing and the target structure are not threadedly connected.
9. The germ inhibiting mechanism of claim 5, wherein, The target structure is formed with a first connecting part and a second connecting part, the first connecting part being arranged in the second connecting part, a liquid outlet sub-flow channel and other parts of the liquid flow channel being configured to be connected to the first connecting part and the second connecting part respectively, a first sealing body being arranged at the connecting position of the first connecting part and the liquid outlet sub-flow channel, and a second sealing body being arranged at the connecting position of the second connecting part and the housing.
10. The germ inhibiting mechanism of claim 9, wherein, The first sealing body and the second sealing body are both arranged in the housing.
11. The germ inhibiting mechanism of claim 5, wherein, The target structure is located downstream of the bacteriostatic mechanism or the bacteriostatic structure in the water flow direction; the waterway system further comprises: a filtering structure arranged in the target structure and used to filter water flowing through the target structure.
12. The germ inhibiting mechanism of claim 5, wherein, The housing is provided with a clamping part, and the target structure is formed with a cooperating part; when the housing and the target structure are connected in place, the clamping part can be clamped and cooperated with the cooperating part.
13. The germ inhibiting mechanism of claim 12, wherein, One of the clamping part and the cooperating part comprises a clamping protrusion, and the other comprises a clamping groove, the clamping groove being formed with a slot and a resilient wall, the slot being in communication with the clamping groove.
14. The germ barrier mechanism according to any one of claims 1-13, wherein, The liquid flow channel comprises a liquid inlet, a hollow cavity and a liquid outlet sub-flow channel, the liquid inlet is communicated with the hollow cavity, the hollow cavity is communicated with the liquid outlet sub-flow channel through a communication port, the bacteriostatic structure is arranged in the hollow cavity, the liquid inlet and the liquid outlet of the liquid outlet sub-flow channel are arranged on the same side of the shell, and the communication port is arranged on the side of the liquid outlet sub-flow channel away from the liquid inlet.
15. The germ barrier mechanism according to any one of claims 1-13, wherein, The bacteriostatic structure comprises at least one of the following: bacteriostatic ion ball particles, bacteriostatic ion rings, and bacteriostatic ion generators; and / or the shape of the bacteriostatic structure comprises a ring shape.
16. The germ-inhibiting mechanism according to any one of claims 1 to 13, characterized in that The bacteriostatic structure comprises: A bacteriostatic shell is formed with a communication hole and a receiving cavity, the communication hole is used to communicate outside the bacteriostatic shell and the receiving cavity; A bacteriostatic ion ball is arranged in the bacteriostatic shell.
17. The germ inhibiting mechanism according to any one of claims 1-13, characterized in that The bacteriostatic mechanism further comprises: A filter is arranged upstream or downstream of the bacteriostatic structure along the water flow direction.
18. A waterway system of a base station, characterized by, Comprise: A target structure has a liquid inlet and a liquid outlet; And The bacteriostatic mechanism of any one of claims 1-17 is connected to the target structure, and the liquid inlet or the liquid outlet is communicated with the liquid flow channel.
19. A waterway system of a base station, characterized by, Comprise: A pipeline mechanism is configured to connect a cleaning system of a base station to at least deliver water to the cleaning system; The bacteriostatic mechanism of any one of claims 1-17 is connected to the target structure of the pipeline mechanism, and can bacteriostasis to the water flowing through the pipeline mechanism.
20. The water routing system of claim 19, wherein, The space for placing the bacteriostatic mechanism of the target structure is a relatively closed space.
21. The water routing system of claim 19, wherein, The target structure comprises a water treatment device, and the water treatment device comprises: A shell, the bacteriostatic mechanism is arranged in the shell; A water treatment assembly is arranged in the shell; the water treatment assembly comprises at least one of the following: a scale inhibition assembly and a filter assembly, the scale inhibition assembly is used for scale removal treatment to water flowing through the shell, and the filter assembly is used for filtering water flowing through the shell.
22. The water routing system of claim 19, wherein, The target structure comprises a water treatment device, and the bacteriostatic mechanism is arranged in the water treatment device; the pipeline mechanism further comprises: A stop valve, and the water treatment device is arranged between an external water source and the stop valve.
23. The water routing system of claim 19, wherein, The pipeline mechanism comprises: A stop valve, and the bacteriostatic mechanism is arranged upstream or downstream of the stop valve in the water flow direction.
24. The water routing system of claim 19, wherein, The pipeline mechanism comprises: A stop valve; A delivery pipeline is communicated with the stop valve, and the bacteriostatic mechanism is arranged in the stop valve or the delivery pipeline.
25. The waterway system of any of claims 19-24, wherein, The bacteriostatic mechanism comprises: A shell is formed with a liquid flow channel; A bacteriostatic structure is arranged in the liquid flow channel.
26. A base station, characterized by Comprise: A base station body; And The waterway system of any one of claims 18-25 is arranged in the base station body.
27. A cleaning system characterized by, Comprise: A cleaning robot; And The base station of claim 26 is used for maintaining the cleaning robot.