Cleaning equipment and cleaning system

By installing an airflow generator inside the robot vacuum cleaner's casing that connects to the dustbin, the problem of low waste collection efficiency is solved, and the utilization rate of internal space and equipment performance are improved.

CN223994840UActive Publication Date: 2026-03-17BEIJING ROCKROBO TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-10
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing robotic vacuum cleaners have low efficiency in collecting garbage during the cleaning process and insufficient utilization of internal space, which affects the performance of the equipment.

Method used

An airflow generator is installed inside the casing of the robot vacuum cleaner, which is connected to the dustbin. It uses negative pressure to suck up the garbage, and the power supply compartment and circuit board components are arranged in a reasonable manner to improve space utilization.

Benefits of technology

It achieves efficient garbage collection, improving the utilization rate of the internal space and the overall performance of the sweeping robot.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides cleaning equipment and a cleaning system, and relates to the technical field of cleaning robots. The cleaning equipment can collect garbage on the surface to be cleaned. The cleaning equipment comprises a moving platform, a shell and an airflow generator. Wherein the shell is arranged on the moving platform, a containing cavity is formed in the shell, a dust box bin is arranged in the containing cavity, the containing cavity comprises a first containing area, and the first containing area is located on the front side of the dust box bin in the advancing direction of the cleaning equipment; the airflow generator is arranged in the first containing area, communicated with the dust box bin and used for generating negative pressure in the dust box bin.
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Description

Technical Field

[0001] This application relates to the field of cleaning robot technology, and more particularly to a cleaning device and cleaning system. Background Technology

[0002] With the development and advancement of technology, the application of robotic vacuum cleaners is becoming increasingly widespread. Also known as automatic cleaning robots, intelligent vacuum cleaners, or robotic vacuums, robotic vacuum cleaners are a type of smart home appliance. They are typically capable of autonomous movement and, using artificial intelligence, automatically clean floors and other surfaces within a room. While cleaning these surfaces, the robotic vacuum cleaner needs to collect any debris on the floor. Utility Model Content

[0003] This application provides a cleaning device and cleaning system capable of collecting garbage from surfaces to be cleaned.

[0004] On one hand, this application provides a cleaning device, which includes: a mobile platform, a housing, and an airflow generator. The housing is disposed on the mobile platform, and a receiving cavity is formed within the housing. The receiving cavity has a dustbin compartment, and the receiving cavity includes a first receiving area located in front of the dustbin compartment along the traveling direction of the cleaning device. The airflow generator is disposed in the first receiving area and communicates with the dustbin compartment to generate negative pressure within the dustbin compartment.

[0005] The cleaning equipment provided in this application incorporates an airflow generator within its housing, which is connected to the dustbin. This airflow generator creates negative pressure within the dustbin, facilitating the suction of debris into the dustbin and thus collecting it from the surface to be cleaned. Furthermore, positioning the airflow generator within the first accommodating area at the front of the dustbin reduces its impact on the space behind the dustbin. This allows for the placement of other components within the housing, improving the utilization of internal space and enabling the addition of additional components, thereby enhancing the overall performance of the cleaning equipment.

[0006] In one possible implementation of this application, the accommodating cavity has a power supply compartment located in the first accommodating area.

[0007] In one possible implementation of this application, the airflow generator and the power supply compartment are distributed in the first accommodating area along a first direction, and there is a gap between the airflow generator and the power supply compartment. The first direction is a direction perpendicular to both the direction of travel and the thickness direction of the cleaning equipment.

[0008] In one possible implementation of this application, the cleaning device further includes a circuit board, at least a portion of which is stacked with the airflow generator along the thickness direction of the cleaning device.

[0009] In one possible implementation of this application, the accommodating cavity has a heat dissipation channel, the first end of which is connected to the air outlet of the airflow generator, and the second end of which extends to the outside of the housing.

[0010] In one possible implementation of this application, the heat dissipation channel has a negative pressure gap, and the heat dissipation channel is connected to the accommodating cavity through the negative pressure gap.

[0011] In one possible implementation of this application, a portion of the heat dissipation channel passes through the power supply compartment, and the compartment wall of the power supply compartment is thermally connected to the channel wall of the heat dissipation channel, or the compartment wall is part of the channel wall.

[0012] In one possible implementation of this application, the second end of the heat dissipation channel forms an acute angle with the direction of travel, and the second end faces the rear end of the cleaning device.

[0013] In one possible implementation of this application, the housing includes a housing body and a buffer, the buffer being movably connected to the housing body, and at least a portion of a heat dissipation channel being formed between the housing body and the buffer, with the second end located at the rear end of the buffer along the direction of travel.

[0014] In one possible implementation of this application, the accommodating cavity further includes a second accommodating area located on the side of the dust box away from the first accommodating area, and the cleaning device further includes a distance detection component located in the second accommodating area.

[0015] In one possible implementation of this application, the cleaning equipment further includes a detection lifting mechanism disposed within the accommodating cavity, a distance detection component disposed within the detection lifting mechanism, and the detection lifting mechanism being able to drive the distance detection component to move along the thickness direction of the cleaning equipment.

[0016] In one possible implementation of this application, a viewing window is provided on the housing, and when the distance detection component descends into the accommodating cavity, the detection light of the distance detection component can pass through the viewing window.

[0017] In one possible implementation of this application, the distance detection component includes a lidar.

[0018] In one possible implementation of this application, the cleaning equipment further includes a cleaning lifting mechanism, which is connected to the cleaning component and is located in the second receiving area.

[0019] In one possible implementation of this application, there is an air intake channel between the airflow generator and the dust box, and the air inlet of the airflow generator is connected to the dust box through the air intake channel.

[0020] On the other hand, this application provides a cleaning system, which includes a base station and the cleaning equipment provided by any of the above. The base station is used to dock the cleaning equipment.

[0021] The cleaning system provided in this application includes any of the cleaning devices provided above, which can improve the utilization rate of the internal space of the cleaning device and facilitate the addition of components inside the cleaning device to improve the performance of the cleaning device, thereby improving the performance of the cleaning system. Attached Figure Description

[0022] Figure 1 A schematic diagram of the cleaning equipment provided in this application;

[0023] Figure 2 A rear view diagram of the cleaning equipment provided in this application.

[0024] Explanation of reference numerals in the attached figures:

[0025] 1-Shell body; 11-Accommodation cavity; 12-Dust box compartment; 13-Power supply compartment; 14-Viewing window; 2-Moving platform; 3-Airflow generator; 4-Distance detection component; 5-Heat dissipation channel; 51-First end; 52-Second end; 53-Negative pressure notch; 54-Compartment wall channel; 55-Shell wall channel; 6-Inlet channel; 7-Buffer; X-Travel direction; Y-First direction; Z-Thickness direction. Detailed Implementation

[0026] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the specific technical solutions of this application will be further described in detail below with reference to the accompanying drawings of the embodiments of this application. The following embodiments are used to illustrate this application, but are not intended to limit the scope of this application.

[0027] In the embodiments of this application, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of the embodiments of this application, unless otherwise stated, "multiple" means two or more.

[0028] Furthermore, in the embodiments of this application, directional terms such as "upper," "lower," "left," and "right" are defined relative to the positions in which the components are schematically placed in the accompanying drawings. It should be understood that these directional terms are relative concepts, used for relative description and clarification, and can change accordingly depending on the position of the components in the accompanying drawings.

[0029] In the embodiments of this application, unless otherwise explicitly specified and limited, the term "connection" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral part; it can be a direct connection or an indirect connection through an intermediate medium.

[0030] In embodiments of this application, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element.

[0031] In the embodiments of this application, the terms "exemplary" or "for example" are used to indicate that something is an example, illustration, or description. Any embodiment or design that is described as "exemplary" or "for example" in the embodiments of this application should not be construed as being more preferred or advantageous than other embodiments or design. Specifically, the use of the terms "exemplary" or "for example" is intended to present the relevant concepts in a specific manner.

[0032] This application provides a cleaning device, which can be a sweeping robot, a mopping robot, a sweeping and mopping robot, or other cleaning devices that meet the requirements.

[0033] For example, cleaning equipment includes, but is not limited to: a main body, a mobile platform, sensing components, control components, cleaning components, energy components, and human-machine interaction components. These components coordinate with each other to enable the cleaning equipment to move autonomously to perform its cleaning function. The functional elements constituting these components are integrated into the main body of the cleaning equipment. It is understood that the cleaning equipment can be a self-moving cleaning device, which is a device that automatically performs cleaning operations in a designated area without user intervention.

[0034] Reference Figure 1 and Figure 2 , Figure 1 This is a structural diagram of the cleaning equipment provided in this application. Figure 2This is a rear view of the cleaning equipment provided in this application. The cleaning equipment provided in this embodiment includes: a mobile platform 2, a housing, and an airflow generator 3. The housing is mounted on the mobile platform 2, and a receiving cavity 11 is formed within the housing. The receiving cavity 11 contains a dustbin 12, and the receiving cavity 11 includes a first receiving area located in front of the dustbin 12 along the traveling direction X of the cleaning equipment. The airflow generator 3 is located in the first receiving area and communicates with the dustbin 12 to generate negative pressure within the dustbin 12.

[0035] In this embodiment, the mobile platform 2 can generate movement to drive the cleaning equipment to move autonomously within the area to be cleaned. For example, the area to be cleaned can be the floor, carpet, etc. in a room.

[0036] For example, the mobile platform 2 may be a structure including three rollers arranged in a triangular pattern. A drive unit may be provided for one of the rollers to drive the roller to rotate, thereby moving the cleaning equipment.

[0037] In this embodiment, the housing can provide mounting points, support, and protection for other components in the cleaning equipment. The external shape and internal structure of the housing can be designed according to the shape and distribution of the other components in the cleaning equipment, so as to facilitate the installation of each component inside and outside the housing.

[0038] For example, such as Figure 1 As shown, the housing can be configured to include a main body 1 and a top cover (not shown). A cavity or bracket matching the moving platform 2 can be provided on the main body 1, allowing the moving platform 2 to be connected to the main body 1 and a portion of the moving platform 2 to be housed within the main body 1. A receiving cavity 11 can be formed within the main body 1, and a dustbin 12 can be provided within the receiving cavity 11. The opening of the dustbin 12 faces the bottom of the cleaning equipment. The shape of the dustbin 12 can be customized according to the shape of the dust box of the cleaning equipment to facilitate the installation of the dust box within the dustbin 12. For example, the dustbin 12 can be positioned within the receiving cavity 11 near the center of the main body 1, with its long axis perpendicular or nearly perpendicular to the traveling direction X of the cleaning equipment. The top cover can be fixedly connected to the opening of the main body 1 to cover the receiving cavity 11.

[0039] It should be noted that during operation, the cleaning equipment can be moved forward or backward via the mobile platform 2. For ease of understanding and description, the direction of travel X described in this embodiment represents the direction in which the cleaning equipment moves forward, so as to define and distinguish the front (front end) and rear (rear end) of the cleaning equipment and its components.

[0040] In another example, along the travel direction X of the cleaning equipment, the accommodating cavity 11 can be configured to include at least two accommodating areas. For instance, along a direction perpendicular to the travel direction X of the cleaning equipment, two rollers in the moving platform 2 can be respectively positioned on both sides of the dustbin 12. In this way, the accommodating cavity 11 can be divided into two accommodating areas by the dustbin 12 and the two rollers located on both sides of the dustbin 12. That is, along the travel direction X of the cleaning equipment, the area in the accommodating cavity 11 located in front of the dustbin 12 is the first accommodating area, and the area in the accommodating cavity 11 located behind the dustbin 12 is the second accommodating area.

[0041] In the embodiments of this application, such as Figure 1 As shown, the airflow generator 3 can accelerate the airflow speed around the cleaning equipment to create negative pressure in the area adjacent to the airflow generator 3. The airflow generator 3 can be placed in the first accommodating area, that is, the area within the accommodating cavity 11 near the front end of the cleaning equipment. For example, the airflow generator 3 can be an axial fan, a centrifugal fan, or a plasma fan.

[0042] For example, an air inlet channel 6 can be provided between the airflow generator 3 and the dustbin 12 to connect the air inlet of the airflow generator 3 to the dustbin 12. One end of the air inlet channel 6 can be connected to the air inlet of the airflow generator 3, for example, along the thickness direction Z of the cleaning equipment, the air inlet channel 6 can be connected to the upper end of the air inlet of the airflow generator 3. The other end of the air inlet channel 6 can be connected to the dustbin 12, for example, a notch matching the air inlet channel 6 can be provided on the wall of the dustbin 12, and the air inlet channel 6 can be sealed to the edge of the notch. In this way, during the operation of the airflow generator 3, the speed at which the air in the dustbin 12 flows into the air inlet channel 6 can be accelerated, thereby making the air pressure inside the dustbin 12 lower than the air pressure outside the dustbin 12, so that the debris can be sucked into the dust box located in the dustbin 12 through negative pressure.

[0043] The cleaning equipment provided in this application embodiment has an airflow generator 3 installed inside the housing and connected to the dust box 12. The airflow generator 3 can create negative pressure inside the dust box 12, facilitating the suction of debris into the dust box 12, thus collecting debris from the surface to be cleaned. Furthermore, placing the airflow generator 3 within the first accommodating area in front of the dust box 12 within the accommodating cavity 11 reduces the space occupied by the airflow generator 3 in the space behind the dust box 12 within the accommodating cavity 11. This allows for the placement of other components within the housing, improving the utilization rate of the internal space and facilitating the addition of other components, thereby enhancing the performance of the cleaning equipment.

[0044] In some possible embodiments of this application, such as Figure 1 As shown, the accommodating cavity 11 has a power supply compartment 13, which is located in the first accommodating area.

[0045] In this embodiment of the application, the cleaning equipment needs to be powered by electricity to operate the components in the cleaning equipment during the working process. Therefore, the cleaning equipment can be powered by a battery, such as a rechargeable battery (a battery that can be charged and discharged multiple times) or a regular battery.

[0046] For example, a power compartment 13 for installing a battery can be provided in the housing cavity 11. The shape of the power compartment 13 can be set according to the shape of the battery used. For example, the power compartment 13 can be set as a box-shaped structure with an approximate cuboid shape. The opening of the power compartment 13 is located on the surface of the housing facing the bottom of the cleaning device, and the cover of the power compartment 13 can be opened from the bottom of the cleaning device.

[0047] In another example, the power supply compartment 13 can be located in the first receiving area of ​​the receiving cavity 11, that is, in the area in the receiving cavity 11 located in front of the dust box compartment 12 along the traveling direction X of the cleaning equipment.

[0048] In the above embodiments, since a power supply compartment 13 is provided inside the accommodating cavity 11, batteries or other devices that provide power to the cleaning equipment can be installed inside the power supply compartment 13. Furthermore, the power supply compartment 13 can separate the inside of the accommodating cavity 11 from the outside of the accommodating cavity 11, which helps to reduce the risk of foreign objects entering the accommodating cavity 11.

[0049] In some possible embodiments of this application, such as Figure 1 As shown, the airflow generator 3 and the power supply compartment 13 are distributed in the first accommodating area along the first direction Y, and there is a gap between the airflow generator 3 and the power supply compartment 13. The first direction Y is a direction that is perpendicular to both the travel direction X and the thickness direction Z of the cleaning equipment.

[0050] In this embodiment, when both the power supply compartment 13 and the airflow generator 3 are disposed in the first accommodating area within the accommodating cavity 11, the power supply compartment 13 and the airflow generator 3 can be arranged along the first direction Y within the first accommodating area. Furthermore, a certain distance can be maintained between the power supply compartment 13 and the airflow generator 3. For example, the distance between the power supply compartment 13 and the airflow generator 3 along the first direction Y can be 10mm to 30mm.

[0051] For example, along the first direction Y, at least a portion of the orthographic projection of the airflow generator 3 onto the projection plane can coincide with the orthographic projection of the power supply compartment 13 onto the projection plane. This projection plane is a virtual plane parallel to the travel direction X and parallel to the thickness direction Z of the cleaning device.

[0052] In the above embodiments, since the airflow generator 3 and the power supply compartment 13 are distributed along the first direction Y within the first accommodating area, there is a large space near the front end of the cleaning equipment within the first accommodating area, which facilitates the placement of other components within the cleaning equipment within the first accommodating area. Furthermore, the gap between the airflow generator 3 and the power supply compartment 13 helps to accelerate the dissipation of heat generated by the battery and other components within the power supply compartment 13, as well as the heat generated by the airflow generator 3.

[0053] In some possible embodiments of this application, the cleaning device further includes a circuit board (not shown in the figure), at least a portion of which is stacked with the airflow generator 3 along the thickness direction Z of the cleaning device.

[0054] In this embodiment, the circuit board in the cleaning device can be placed within the first receiving area of ​​the receiving cavity 11. The shape of the circuit board can be set according to the shape of the remaining space within the first receiving area. For example, the circuit board can be set as an irregular polygon.

[0055] For example, along the thickness direction Z of the cleaning device, at least a portion of the circuit board can be positioned above the airflow generator 3, that is, at least a portion of the circuit board is stacked with the airflow generator 3.

[0056] In the above embodiments, by stacking at least a portion of the circuit board with the airflow generator 3 along the thickness direction Z of the cleaning device, the circuit board can be located within the first accommodating area, and the shape of the circuit board can be set according to the space within the first accommodating area, making it convenient to install the circuit board within the accommodating cavity 11. This also improves the compactness of the internal components of the cleaning device, which is beneficial to improving the space utilization of the accommodating cavity 11, thereby contributing to the thinning and miniaturization of the cleaning device.

[0057] In some possible embodiments of this application, such as Figure 1 As shown, the accommodating cavity 11 has a heat dissipation channel 5. The first end 51 of the heat dissipation channel 5 is connected to the air outlet of the airflow generator 3, and the second end 52 of the heat dissipation channel 5 extends to the outside of the housing.

[0058] In this embodiment of the application, when the airflow generator 3 generates negative pressure in the dust box 12, the airflow generator 3 needs to discharge the air it has drawn in. Therefore, a heat dissipation channel 5, which serves as an exhaust channel, can be provided to the airflow generator 3.

[0059] For example, the structure and shape of the heat dissipation channel 5 can be configured according to the space within the accommodating cavity 11. For instance, at least a portion of the heat dissipation channel 5 can be disposed within the gap between components located in the first accommodating area, and at least a portion of the heat dissipation channel 5 can be configured as a closed tube. The first end 51 of the heat dissipation channel 5 can be connected to the air outlet of the airflow generator 3, for example, by providing a sealing ring between the first end 51 of the heat dissipation channel 5 and the air outlet of the airflow generator 3 to seal the connection between the first end 51 of the heat dissipation channel 5 and the air outlet of the airflow generator 3. The second end 52 of the heat dissipation channel 5 can be disposed on the shell wall of the housing, so that the second end 52 of the heat dissipation channel 5 extends to the outside of the accommodating cavity 11.

[0060] In the above embodiment, since a heat dissipation channel 5 is provided in the accommodating cavity 11 and the first end 51 of the heat dissipation channel 5 is connected to the air outlet of the airflow generator 3, the airflow generator 3 can be formed through the heat dissipation channel 5, which facilitates the rapid guidance and discharge of the air drawn in by the airflow generator 3 to the outside of the accommodating cavity 11 by using the heat dissipation channel 5.

[0061] In some possible embodiments of this application, such as Figure 1 As shown, the heat dissipation channel 5 has a negative pressure notch 53, and the heat dissipation channel 5 is connected to the accommodating cavity 11 through the negative pressure notch 53.

[0062] In this embodiment, at least one negative pressure notch 53 can be provided on the channel wall of the heat dissipation channel 5 so that the heat dissipation channel 5 and the receiving cavity 11 are connected through the negative pressure notch 53. For example, the negative pressure notch 53 can be provided on the portion of the heat dissipation channel 5 located in the first receiving area, thereby connecting the heat dissipation channel 5 with the first receiving area.

[0063] For example, along the thickness direction Z of the cleaning device, the negative pressure notch 53 can be located on the side of the heat dissipation channel 5 facing the top of the cleaning device, or the negative pressure notch 53 can be located on the side of the heat dissipation channel 5 facing the center of the receiving cavity 11. Furthermore, the negative pressure notch 53 can be located in a region close to the edge of the receiving cavity 11; for example, the negative pressure notch 53 can have a distance of 2 mm to 20 mm between it and the shell wall of the housing.

[0064] In the above embodiment, since a negative pressure notch 53 is provided on the heat dissipation channel 5, the heat dissipation channel 5 can be connected to the accommodating cavity 11 through the negative pressure notch 53. In this way, when the high-velocity gas generated by the airflow generator 3 flows through the heat dissipation channel 5, the air pressure near the negative pressure notch 53 can be reduced, that is, the air pressure near the negative pressure notch 53 is less than the air pressure in other areas of the accommodating cavity 11. As a result, the air in the accommodating cavity 11 can flow towards the negative pressure notch 53 under the action of the pressure difference. In turn, the air around the circuit board can be discharged to the outside of the accommodating cavity 11 through the negative pressure notch 53 and the heat dissipation channel 5, which is beneficial to improving the heat dissipation efficiency of the circuit board.

[0065] In some possible embodiments of this application, such as Figure 1 As shown, a portion of the heat dissipation channel 5 passes through the power supply compartment 13, and the compartment wall of the power supply compartment 13 is heat-transfer connected to the channel wall of the heat dissipation channel 5, or the compartment wall is part of the channel wall.

[0066] In this embodiment, a portion of the heat dissipation channel 5 can be arranged adjacent to the power supply compartment 13 to absorb and accelerate the dissipation of heat generated by the battery or other components in the power supply compartment 13.

[0067] For example, a wall channel 54 matching the shape of the power supply compartment 13 can be provided. The wall channel 54 can be configured as a tubular structure, serving as part of the heat dissipation channel 5. For instance, the shape of the wall channel 54 can be set according to the shape of the gap between the power supply compartment 13 and other components adjacent to the power supply compartment 13. One end of the wall channel 54 can be configured to match the air outlet of the airflow generator 3, and this end of the wall channel 54 can be connected to the air outlet of the airflow generator 3 as the first end 51 of the heat dissipation channel 5.

[0068] In another example, the channel wall of the chamber wall 54 can be made to abut against the chamber wall of the power supply chamber 13. Alternatively, a thermally conductive material such as thermally conductive grease or silicone can be placed between the channel wall of the chamber wall 54 and the chamber wall of the power supply chamber 13 to allow the heat absorbed by the chamber wall of the power supply chamber 13 to be quickly transferred to the channel wall of the chamber wall 54. Alternatively, a notch matching the power supply chamber 13 can be provided on the chamber wall 54. This way, after the chamber wall 54 is installed in the first accommodating area, the chamber wall of the power supply chamber 13 can seal the notch on the chamber wall 54, meaning the chamber wall of the power supply chamber 13 becomes part of the channel wall of the chamber wall 54, forming a complete tubular structure. This allows the heat absorbed by the chamber wall of the power supply chamber 13 to be directly transferred to the heat dissipation channel 5.

[0069] In another example, a first through hole can be provided on the wall of the power supply compartment 13 near the compartment wall channel 54. Correspondingly, a second through hole corresponding to the first through hole can be provided on the channel wall of the compartment wall channel 54, so that the interior of the compartment wall channel 54 and the interior of the power supply compartment 13 are connected through the first and second through holes. In this case, the internal space of the power supply compartment 13 can also serve as part of the heat dissipation channel, and the airflow generated by the airflow generator 3 can drive the airflow within the power supply compartment 13 to flow rapidly.

[0070] In the above embodiments, since the channel wall of the heat dissipation channel 5 is heat-transferringly connected to the wall of the power compartment 13, or the wall of the power compartment 13 is part of the channel wall of the heat dissipation channel 5, the heat absorbed by the wall of the power compartment 13 can be quickly transferred to the heat dissipation channel 5, thereby accelerating the heat dissipation speed of the power compartment 13 and improving the heat dissipation efficiency of the battery in the power compartment 13.

[0071] In some possible embodiments of this application, such as Figure 1 As shown, the second end 52 of the heat dissipation channel 5 forms an acute angle C with the direction of travel X, and the second end 52 faces the rear end of the cleaning device.

[0072] In this embodiment, another part of the heat dissipation channel 5 can be formed between the shell wall of the housing and the external trim (e.g., a buffer) of the cleaning device. For example, there can be a gap between the buffer 7 of the cleaning device and the shell wall of the housing body 1. After the buffer, top cover, etc. are assembled onto the housing body 1, a shell wall channel 55 (e.g., a buffer) can be formed to enclose and form another part of the heat dissipation channel 5. Figure 1 The area shown by the blue dashed rectangle) and the space between the end of the bin wall channel 54 and the shell wall channel 55 can be spaced (e.g., ...). Figure 1 The area shown by the red dashed triangle can be considered as a negative pressure gap 53. Thus, the shell wall channel 55, the bin wall channel 54, and the negative pressure gap 53 together form the heat dissipation channel 5.

[0073] For example, when setting the shell wall channel 55, the end of the shell wall channel 55 away from the negative pressure gap 53 can be directed toward the rear end of the cleaning device. That is, the extension direction of the gap formed on the shell wall of the shell body 1 as the second end 52 of the heat dissipation channel 5 forms an acute angle C with the travel direction X of the cleaning device, and the extension direction of the gap is directed toward the rear end of the cleaning device, so that the second end 52 of the heat dissipation channel 5 is directed toward the rear end of the cleaning device.

[0074] In another example, the buffer 7 can be configured as a semi-annular structure that matches the shape of the housing body 1. The buffer 7 can be movably connected to the shell wall of the housing body 1 via an elastic element (e.g., a spring), and a sensor can be placed between the buffer 7 and the shell wall. Thus, when the cleaning equipment collides with an object, the buffer 7 will move relative to the housing body 1, triggering the sensor and allowing information about the collision to be obtained. Figure 1 As shown, the second end 52 of the heat dissipation channel 5 can be located at the rear end of the buffer 7 (the end of the buffer 7 closest to the rear end of the cleaning device). In this way, the airflow generated by the airflow generator 3 can be guided to the rear side of the cleaning device through the heat dissipation channel 5 and blown out towards the rear side of the cleaning device.

[0075] In the above embodiment, since the second end 52 of the heat dissipation channel 5 faces the rear end of the cleaning device, during the process of the airflow generator 3 generating airflow through the heat dissipation channel 5 and discharging it out of the accommodating cavity 11, the airflow can be blown out toward the rear end of the cleaning device in the direction of travel X, thereby reducing the risk that the airflow blown out from the heat dissipation channel 5 will blow the garbage to be cleaned in front of the cleaning device to outside the range that the cleaning device can clean.

[0076] In some possible embodiments of this application, such as Figure 1 and Figure 2 As shown, the accommodating cavity 11 also includes a second accommodating area, which is located on the side of the dust box 12 away from the first accommodating area. The cleaning device also includes a distance detection component 4, which is located in the second accommodating area.

[0077] In this embodiment, the area near the rear end of the cleaning device within the accommodating cavity 11 can be used as the second accommodating area. That is, along the traveling direction X of the cleaning device, the area located behind the dust box 12 within the accommodating cavity 11 is the second accommodating area. The first accommodating area and the second accommodating area are located on opposite sides of the dust box 12.

[0078] For example, the distance detection component 4 can be disposed in the second accommodating area. For instance, along the first direction Y, the distance detection component 4 can be located near the centerline of the accommodating cavity 11, and along the traveling direction X, the distance detection component 4 can be located in the area near the shell wall of the housing.

[0079] In another example, the distance detection component 4 can be a lidar, infrared ranging sensor, ultrasonic sensor, etc., which can measure the distance between the cleaning equipment and the items in the area to be cleaned by the reflection of light or sound waves.

[0080] In the above embodiment, since a distance detection component 4 is provided in the second accommodating area, during the operation of the cleaning equipment, the distance information between the items at the rear of the cleaning equipment and the cleaning equipment can be obtained through the distance detection component 4, thereby enabling the cleaning equipment to achieve efficient path planning and accurately avoid obstacles.

[0081] In some possible embodiments of this application, the cleaning device also includes a detection lifting mechanism disposed in the accommodating cavity 11, and a distance detection component 4 is disposed in the detection lifting mechanism. The detection lifting mechanism can drive the distance detection component 4 to move along the thickness direction Z of the cleaning device.

[0082] In this embodiment of the application, a detection lifting mechanism can be provided for the distance detection component 4, so that the distance detection component 4 can be lifted and lowered along the thickness direction Z of the cleaning equipment through the detection lifting mechanism.

[0083] For example, the detection lifting mechanism can use a matching screw and nut. The screw can be rotatably positioned within the second receiving area, and the drive motor can be connected to the screw drive. A groove can be provided on the nut sleeved on the screw to restrict the rotation of the nut. The distance detection component 4 is fixed on the nut. During the process of the drive motor driving the screw to rotate, the nut can move up and down along the axis of the screw, thereby driving the distance detection component 4 to move up and down along the thickness direction Z of the cleaning equipment.

[0084] In another example, the detection lifting mechanism can be a crank mechanism, cylinder, hydraulic cylinder, or other mechanism capable of generating linear motion. This application does not limit the specific structure of the detection lifting mechanism.

[0085] In the above embodiments, since a detection lifting mechanism is provided for the distance detection component 4, the distance detection component 4 can be moved along the thickness direction Z of the cleaning equipment to the outside of the cleaning equipment through the detection lifting mechanism, thereby reducing the obstruction of the distance detection component 4 and expanding the detection range of the distance detection component 4. When the cleaning equipment passes through a low space, the detection lifting mechanism can be used to move the distance detection component 4 into the receiving cavity 11, making it easier for the cleaning equipment to pass through the low space.

[0086] In some possible embodiments of this application, such as Figure 2 As shown, a viewing window 14 is provided on the housing. When the distance detection component 4 descends into the accommodating cavity 11, the detection light of the distance detection component 4 can pass through the viewing window 14.

[0087] In this embodiment, a viewing window 14 corresponding to the distance detection component 4 can be provided on the housing so that the detection light generated by the distance detection component 4 can be transmitted through the viewing window 14. For example, a through hole serving as the viewing window 14 can be provided on the housing wall, and the through hole on the housing wall corresponds to the position of the distance detection component 4 when it is in the receiving cavity 11. A lens can be provided on the viewing window 14 to seal the viewing window 14 without affecting the transmission of the detection light.

[0088] In the above embodiment, since a viewing window 14 corresponding to the distance detection component 4 is provided on the housing, the detection light generated by the distance detection component 4 can still be transmitted through the viewing window 14 when the distance detection component 4 descends into the receiving cavity 11. In this way, the distance detection component 4 can still work normally when the cleaning equipment passes through a low space.

[0089] In some possible embodiments of this application, the cleaning device further includes a cleaning lifting mechanism (not shown in the figure), which is connected to the cleaning component and is located in the second receiving area.

[0090] In this embodiment, cleaning components can be installed in the cleaning device. For example, two cleaning components can be installed at the bottom of the cleaning device, with the two cleaning components located at the rear end of the bottom of the cleaning device. The cleaning component can be a circular mop, and a drive motor can be installed on the cleaning component to drive the circular mop to rotate, thereby wiping the floor or other surfaces in the area to be cleaned.

[0091] For example, a cleaning lifting mechanism can be provided for the cleaning component. This mechanism can be located in the second receiving area and can employ a mechanism capable of generating linear motion, such as a guide rail and a chute. The cleaning component can be connected to the guide rail, which extends along the thickness direction Z of the cleaning equipment. Thus, the cleaning component can be moved along the thickness direction Z of the cleaning equipment via the cleaning lifting mechanism.

[0092] In the above embodiments, since a cleaning lifting mechanism is provided in the second accommodating area, the cleaning component can be driven to move along the thickness direction Z of the cleaning equipment through the cleaning lifting mechanism, thereby achieving separation of the cleaning component from the ground of the area to be cleaned or pressing it against the ground.

[0093] In addition, this application also provides a cleaning system, which includes a base station and the cleaning equipment provided in any of the above embodiments. The base station is used to dock the cleaning equipment.

[0094] In this embodiment, when the cleaning equipment starts working, it departs from the base station to perform the cleaning task. When the cleaning equipment performs charging or other operations, such as water replenishment, and / or washing, and / or dust collection, it returns to the base station to complete the charging and other operations.

[0095] The cleaning system provided in this application includes the cleaning equipment provided in any of the above embodiments. Therefore, it can improve the utilization rate of the internal space of the cleaning equipment and facilitate the addition of components inside the cleaning equipment to improve the performance of the cleaning equipment, thereby improving the performance of the cleaning system.

[0096] The above embodiments are merely illustrative of the technical solutions of this application and are not intended to limit it. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. These modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application, and all should be covered within the scope of the specification of this application. In particular, as long as there is no structural conflict, the various technical features mentioned in the embodiments can be combined in any way.

Claims

1. A cleaning apparatus, characterized by, The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device.

2. The cleaning apparatus of claim 1, wherein, The application relates to a cleaning device.

3. The cleaning apparatus of claim 2, wherein, The application relates to a cleaning device.

4. The cleaning apparatus of claim 2, wherein, The application relates to a cleaning device.

5. The cleaning apparatus of claim 2, wherein, The application relates to a cleaning device.

6. The cleaning apparatus of claim 5, wherein, The application relates to a cleaning device.

7. The cleaning apparatus of claim 5, wherein, The application relates to a cleaning device.

8. The cleaning apparatus of claim 5, wherein, The application relates to a cleaning device.

9. The cleaning apparatus of claim 5, wherein, The application relates to a cleaning device.

10. The cleaning apparatus according to any one of claims 1 to 9, characterized in that, The application relates to a cleaning device.

11. The cleaning apparatus of claim 10, wherein, The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. The application relates to a cleaning device. 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12. The cleaning apparatus of claim 11, wherein, A window (14) is arranged on the shell, and when the distance detection assembly (4) is lowered into the accommodating cavity (11), the detection light of the distance detection assembly (4) can pass through the window (14).

13. The cleaning apparatus of claim 11, wherein, The distance detection assembly (4) comprises a laser radar.

14. The cleaning apparatus of claim 10, wherein, A cleaning lifting mechanism is further included, which is connected with the cleaning member and arranged in the second accommodating area.

15. The cleaning apparatus according to any one of claims 1 to 9, wherein An air inlet channel (6) is arranged between the airflow generator (3) and the dust box bin (12), and the air inlet of the airflow generator (3) is in communication with the dust box bin (12) through the air inlet channel (6).

16. A cleaning system characterized by, The cleaning device comprises: The cleaning device according to any one of claims 1 to 15; A base station is arranged for parking the cleaning device.