Dust bag and dust collection base station
By designing a dust bag with two bag openings, the problem that the dust collection base station cannot collect dust on the handheld vacuum cleaner is solved, and automatic dust collection for cleaning robots and handheld vacuum cleaners is achieved, improving the user experience.
Patent Information
- Application Number
- CN202421568405.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-03
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2034-07-03
AI Technical Summary
The dust bags in the dust collection base station can only collect dust on the cleaning robot, but cannot collect dust on the handheld vacuum cleaner, resulting in users needing to manually handle the garbage from the handheld vacuum cleaner, which is time-consuming and labor-intensive and affects the user experience.
A dust bag is designed, including a bag body and a clamping member. Two bag openings are provided on the clamping member, which correspond to the first and second ports of the dust collection base station, allowing the dust bag to collect dust on the cleaning robot and the handheld vacuum cleaner at the same time.
By setting up the snap-on parts with two bag openings, the dust bag of the dust collection base station can not only collect dust on the cleaning robot, but also collect dust on the handheld vacuum cleaner, avoiding the need to manually dispose of garbage and improving the user experience.
Smart Images

Figure CN222917452U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of cleaning equipment, and particularly relates to a dust bag and a dust collection base station. Background Art
[0002] A dust collection base station is a device used in conjunction with a cleaning robot. Currently, the dust bag in the dust collection base station can only collect dust from the cleaning robot and cannot collect dust from a handheld vacuum cleaner. When the handheld vacuum cleaner is full of garbage, the user needs to manually dump the garbage, which is time-consuming and laborious, and the user's hands are easily exposed to the garbage, affecting the user experience. Summary of the Utility Model
[0003] In view of this, the purpose of this application is to provide a dust bag and a dust collection base station, aiming to solve the technical problem that the dust bag in the dust collection base station can only collect dust from the cleaning robot and cannot collect dust from the handheld vacuum cleaner.
[0004] To achieve the above purpose, the technical solution adopted in this application is as follows:
[0005] In a first aspect, an embodiment of this application provides a dust bag for a dust collection base station, including a bag body and a clamping member for clamping at the dust collection cavity of the dust collection base station. The clamping member is connected to the bag body, and two bag openings are provided on the clamping member, and the two bag openings are respectively communicated with the inside of the bag body;
[0006] When the dust bag is clamped at the dust collection cavity of the dust collection base station, the position of one of the bag openings corresponds to the position of the first through port in the dust collection base station for sucking dust from the cleaning robot, and the position of the other bag opening corresponds to the position of the second through port in the dust collection base station for sucking dust from the handheld vacuum cleaner.
[0007] In one of the embodiments of the first aspect, when the dust bag is clamped at the dust collection cavity of the dust collection base station, the bag opening located at the upper part of the clamping member is used to suck dust from the handheld vacuum cleaner, and the bag opening located at the lower part of the clamping member is used to suck dust from the cleaning robot.
[0008] In one of the embodiments of the first aspect, the two bag openings are arranged along the length direction of the clamping member, the diameter of the bag opening is D, and the length of the clamping member is L, satisfying: 1 / 6 ≤ D / L ≤ 1 / 2.5.
[0009] In one of the embodiments of the first aspect, the two bag openings are arranged along the length direction of the clamping member, and the length of the clamping member is L, satisfying: 120 mm ≤ L ≤ 180 mm.
[0010] In one embodiment of the first aspect, an active member is provided inside the snap member, and the active member can move relative to the snap member to a position where the two bag openings are exposed or a position where the two bag openings are closed.
[0011] In one embodiment of the first aspect, two through holes are provided on the active member. When the active member moves to a position where the two bag openings are exposed, the two through holes are respectively arranged corresponding to the positions of the two bag openings.
[0012] In one embodiment of the first aspect, the two through holes are arranged along the length direction of the active member, and the distance between the adjacent edges of the two through holes is greater than the diameter of the bag opening or the diameter of the through hole.
[0013] In one embodiment of the first aspect, both of the two bag openings are circular, and the distance between the centers of the two bag openings is S, satisfying: 40mm ≤ S ≤ 80mm.
[0014] In one embodiment of the first aspect, the diameter of the bag opening is D, satisfying: 25mm ≤ D ≤ 35mm.
[0015] In a second aspect, an embodiment of the present application further provides a dust collection base station, including a base station body and the dust bag in any of the above embodiments. The base station body defines a dust collection cavity, and a first through port and a second through port are provided inside the dust collection cavity, on the cavity wall of the dust collection cavity, or at a position close to the dust collection cavity. The first through port is used to suck dust from the cleaning robot, the second through port is used to suck dust from the handheld vacuum cleaner, and the dust bag is used to be snap-connected at the dust collection cavity.
[0016] The beneficial effects of the present application are as follows:
[0017] The present application provides a dust bag for a dust collection base station. When the first through port in the dust collection base station is communicated with one of the bag openings, the dust bag can collect dust for the cleaning robot. When the second through port in the dust collection base station is communicated with the other bag opening, the dust bag can collect dust for the handheld vacuum cleaner. Through the setting of the snap member with two bag openings, the dust bag in the dust collection base station can both collect dust for the cleaning robot and collect dust for the handheld vacuum cleaner, so that there is no need to manually handle the garbage of the handheld vacuum cleaner, improving the user experience.
[0018] To make the above objects, features, and advantages of the present application more obvious and understandable, the following specific preferred embodiments are given in conjunction with the accompanying drawings and are described in detail as follows. Description of the Drawings
[0019] To more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the accompanying drawings required in the embodiments. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as a limitation of the scope. For those of ordinary skill in the art, without creative efforts, other related drawings can also be obtained based on these drawings.
[0020] Figure 1 Shows a perspective structural schematic diagram of a dust collection base station in some embodiments of the present application;
[0021] Figure 2 Shows another perspective structural schematic diagram of a dust collection base station in some embodiments of the present application;
[0022] Figure 3 Shows Figure 2 The cross-sectional structural schematic diagram at A-A in;
[0023] Figure 4 Shows a perspective assembly structural schematic diagram of a dust collection bracket, control buttons and charging elements in some embodiments of the present application;
[0024] Figure 5 Shows another perspective assembly structural schematic diagram of a dust collection bracket, control buttons and charging elements in some embodiments of the present application;
[0025] Figure 6 Shows Figure 5 The cross-sectional structural schematic diagram at B-B in;
[0026] Figure 7 Shows the assembly structural schematic diagram of a dust collection bucket, a dust bag mounting member, a driving member and a switching member in some embodiments of the present application;
[0027] Figure 8 Shows Figure 7 The perspective exploded structural schematic diagram of;
[0028] Figure 9 Shows Figure 7 The other perspective exploded structural schematic diagram of;
[0029] Figure 10 Shows the assembly structural schematic diagram of a driving member and a switching member in some embodiments of the present application;
[0030] Figure 11 Shows a perspective structural schematic diagram of a dust bag in a state where two bag mouths are exposed by a movable member in some embodiments of the present application;
[0031] Figure 12 Shows a perspective structural schematic diagram of a dust bag in a state where two bag mouths are closed by a movable member in some embodiments of the present application;
[0032] Figure 13 Shows an exploded structural schematic diagram of a dust bag in some embodiments of the present application;
[0033] Figure 14 Shows a structural schematic diagram of another perspective of the dust bag in some embodiments of the present application.
[0034] Description of main component symbols:
[0035] 100 - Dust collection base station; 110 - Base station body; 111 - Outer shell; 1111 - First dust collection port; 112 - Dust collection bucket; 1121 - Dust collection chamber; 1122 - First through port; 1123 - Second through port; 113 - First dust collection pipe; 1131 - First dust collection channel; 114 - Dust bag mounting member; 1141 - Bracket body; 11411 - Second dust collection port; 11412 - Accommodating groove; 11413 - Guide block; 1142 - Second dust collection pipe; 11421 - Second dust collection channel; 115 - Dust bag installation part; 116 - Third detection part; 117 - Charging element; 118 - Control button; 120 - Suction device; 130 - Switching part; 131 - Opening part; 132 - Closing part; 140 - First detection part; 150 - Second detection part; 160 - Stopping part; 170 - Driving part; 180 - Control main board; 190 - Dust bag; 191 - Bag body; 192 - Clamping part; 1921 - Bag mouth; 193 - Movable part; 1931 - Through hole. Detailed description of specific embodiments
[0036] The embodiments of the present application will be described in detail below. The examples of the embodiments are shown in the drawings, where the same or similar reference numerals represent the same or similar elements or elements with the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are only used to explain the present application and should not be construed as a limitation of the present application.
[0037] In the description of the present application, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present application.
[0038] In addition, 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 quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of this application, "a plurality of" means two or more unless specifically defined otherwise.
[0039] In this application, unless otherwise clearly defined and limited, terms such as "installed", "connected", "coupled", "fixed", etc. shall be construed in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two components or the interaction relationship between two components. For those of ordinary skill in the art, the specific meanings of the above terms in this application can be understood according to specific circumstances.
[0040] In this application, unless otherwise clearly defined and limited, the first feature being "on" or "under" the second feature may be that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Moreover, the first feature being "above", "over" and "on top of" the second feature may be that the first feature is directly above or obliquely above the second feature, or merely indicates that the first feature has a higher horizontal height than the second feature. The first feature being "under", "beneath" and "underneath" the second feature may be that the first feature is directly below or obliquely below the second feature, or merely indicates that the first feature has a lower horizontal height than the second feature.
[0041] As Figure 1 shown, in a first aspect, an embodiment of the present application provides a dust collection base station 100, which relates to the technical field of cleaning equipment and is mainly applied in a cleaning system for dust collection of a cleaning robot or an intelligent cleaning device. The intelligent cleaning device includes a handheld vacuum cleaner, a pet hair remover, etc., and the cleaning robot includes a floor cleaning robot, a mopping and sweeping integrated robot, etc., which are not specifically limited herein.
[0042] As Figures 1 to 3 shown, the dust collection base station 100 provided in this embodiment includes: a base body 110 and a suction device 120.
[0043] Among them, the base station body 110 defines a dust collection chamber 1121, a first dust collection channel 1131, and a second dust collection channel 11421. The base station body 110 is provided with a first dust collection port 1111 communicating with one end of the first dust collection channel 1131, and a second dust collection port 11411 communicating with one end of the second dust collection channel 11421. One end of the first dust collection channel 1131 away from the first dust collection port 1111 or one end of the second dust collection channel 11421 away from the second dust collection port 11411 can communicate with the dust collection chamber 1121. The first dust collection port 1111 is used to connect with the cleaning robot, and the second dust collection port 11411 is used to connect with the intelligent cleaning device. The suction device 120 is arranged inside the base station body 110 and is located adjacent to the dust collection chamber 1121. The dust collection chamber 1121 is provided with a suction port. The suction device 120 is used to generate a suction airflow and suck the dust of the cleaning robot from the first dust collection port 1111 through the first dust collection channel 1131 into the dust collection chamber 1121, or suck the dust of the intelligent cleaning device from the second dust collection port 11411 through the second dust collection channel 11421 into the dust collection chamber 1121.
[0044] Exemplarily, the suction device 120 is a device such as a blower, a fan, an external suction pipeline, etc. that can generate a negative pressure suction force inside the dust collection chamber 1121, and no specific limitation is made here.
[0045] It should be mentioned that the current dust collection base station can only collect dust from the cleaning robot and cannot collect dust from other devices. For example, it cannot collect dust from intelligent cleaning devices such as handheld vacuum cleaners and pet hair suckers. When the internal of these intelligent cleaning devices is full of garbage, the user needs to manually dump the garbage, which is time-consuming and laborious, and the hands are easily in contact with the garbage, affecting the user experience.
[0046] However, in the dust collection base station 100 provided in this embodiment, due to the provision of the first dust collection channel 1131 and the second dust collection channel 11421, the first dust collection channel 1131 is used to connect with the cleaning robot through the first dust collection port 1111, and the second dust collection channel 11421 is used to connect with the intelligent cleaning device through the second dust collection port 11411. On this basis, a suction device 120 is arranged inside the base station body 110, and the suction device 120 can generate a suction airflow to realize sucking the dust of the cleaning robot from the first dust collection port 1111 through the first dust collection channel 1131 into the dust collection chamber 1121, or sucking the dust of the intelligent cleaning device from the second dust collection port 11411 through the second dust collection channel 11421 into the dust collection chamber 1121. Therefore, the dust collection base station 100 can not only collect dust from the cleaning robot but also collect dust from the intelligent cleaning device, so that there is no need to manually handle the garbage of the intelligent cleaning device, improving the user experience.
[0047] Such as Figure 3As shown, in one embodiment, the dust collection base station 100 further includes a switching member 130, which is movably disposed inside the dust collection chamber 1121, on the chamber wall of the dust collection chamber 1121, or at a position close to the dust collection chamber 1121. By controlling the movement of the switching member 130, the dust collection chamber 1121 can communicate with one of the first dust collection channel 1131 and the second dust collection channel 11421, and be separated from the other, so as to suck the dust of the cleaning robot or the intelligent cleaning device into the dust collection chamber 1121.
[0048] Exemplarily, the switching member 130 can be rotatably disposed inside the dust collection chamber 1121, on the chamber wall of the dust collection chamber 1121, or at a position close to the dust collection chamber 1121. Of course, the switching member 130 can also be slidably disposed inside the dust collection chamber 1121, on the chamber wall of the dust collection chamber 1121, or at a position close to the dust collection chamber 1121, so as to realize the linear sliding of the switching member 130 relative to the base body 110 of the station. The specific connection manner of the switching member 130 and the base body 110 of the station is not specifically limited herein. The chamber wall of the dust collection chamber 1121 can include the inner chamber wall or the outer chamber wall of the dust collection chamber 1121. The position close to the dust collection chamber 1121 can include a position close to the dust collection chamber 1121 and located outside the dust collection chamber 1121.
[0049] In this embodiment, by controlling the movement of the switching member 130 relative to the base body 110 of the station, the dust collection chamber 1121 can communicate with one of the first dust collection channel 1131 and the second dust collection channel 11421, and can be separated from the other of the first dust collection channel 1131 and the second dust collection channel 11421, so as to suck the dust of the cleaning robot or the intelligent cleaning device into the dust collection chamber 1121. For example, when the switching member 130 moves to the first preset position, the dust collection chamber 1121 communicates with the first dust collection channel 1131 and is separated from the second dust collection channel 11421. At this time, under the suction of the suction device 120, the dust collection base station 100 can suck the dust of the cleaning robot into the dust collection chamber 1121; when the switching member 130 moves to the second preset position, the dust collection chamber 1121 communicates with the second dust collection channel 11421 and is separated from the first dust collection channel 1131. At this time, under the suction of the suction device 120, the dust collection base station 100 can suck the dust in the intelligent cleaning device into the dust collection chamber 1121.
[0050] Such as Figure 7As shown, further, a first through port 1122 and a second through port 1123 are provided inside the dust collection chamber 1121, on the chamber wall of the dust collection chamber 1121, or at a position close to the dust collection chamber 1121. The first through port 1122 is located at one end of the first dust collection channel 1131 away from the first dust collection port 1111, and the second through port 1123 is located at one end of the second dust collection channel 11421 away from the second dust collection port 11411. By controlling the movement of the switching member 130, one of the first through port 1122 and the second through port 1123 is opened, and the other is closed, so as to connect the dust collection chamber 1121 with the first dust collection channel 1131 or the second dust collection channel 11421.
[0051] In this embodiment, due to the provision of the first through port 1122 and the second through port 1123, the first through port 1122 and the second through port 1123 are respectively connected to the dust collection chamber 1121. In this way, by controlling the movement of the switching member 130, one of the first through port 1122 and the second through port 1123 is opened, and the other of the first through port 1122 and the second through port 1123 is closed, so as to connect the dust collection chamber 1121 with the first dust collection channel 1131 or the second dust collection channel 11421, thereby realizing sucking the dust of the cleaning robot into the dust collection chamber 1121 through the first through port 1122 or sucking the dust of the intelligent cleaning device into the dust collection chamber 1121 through the second through port 1123.
[0052] As Figure 8 shown, furthermore, a first detection member 140 and / or a second detection member 150 are also provided inside the dust collection chamber 1121, on the chamber wall of the dust collection chamber 1121, or at a position close to the dust collection chamber 1121. The first detection member 140 is used to detect whether the switching member 130 moves to a position where the first through port 1122 is opened, and the second detection member 150 is used to detect whether the switching member 130 moves to a position where the second through port 1123 is opened.
[0053] In this embodiment, due to the provision of the first detection member 140, the first detection member 140 can detect whether the switching member 130 moves to a position where the first through port 1122 is opened, so as to judge whether the first dust collection channel 1131 is connected to the dust collection chamber 1121, facilitating subsequent sucking the dust of the cleaning robot into the dust collection chamber 1121 through the first dust collection channel 1131. Due to the provision of the second detection member 150, the second detection member 150 can detect whether the switching member 130 moves to a position where the second through port 1123 is opened, so as to judge whether the second dust collection channel 11421 is connected to the dust collection chamber 1121, facilitating subsequent sucking the dust of the intelligent cleaning device into the dust collection chamber 1121 through the second dust collection channel 11421.
[0054] As Figure 8As shown, further, the first detection member 140 and / or the second detection member 150 is a microswitch, and the first detection member 140 and the second detection member 150 are respectively located on opposite sides of the switching member 130.
[0055] In this embodiment, since the first detection member 140 and the second detection member 150 are respectively located on opposite sides of the switching member 130, and the first detection member 140 and the second detection member 150 are selected as microswitches, in this way, when the switching member 130 moves to the position where the first through port 1122 is opened, the switching member 130 just triggers the microswitch on one side to determine whether the first dust collection channel 1131 is communicated with the dust collection cavity 1121. When the switching member 130 moves to the position where the second through port 1123 is opened, the switching member 130 just triggers the microswitch on the other side to determine whether the second dust collection channel 11421 is communicated with the dust collection cavity 1121.
[0056] Of course, for the above embodiment, the first detection member 140 and the second detection member 150 can also be selected as photoelectric switches, opposed sensors, infrared sensors, etc., and specific limitations are not made here.
[0057] As Figure 9 shown, further, at least two blocking portions 160 are provided inside the dust collection cavity 1121, on the cavity wall of the dust collection cavity 1121 or at a position close to the dust collection cavity 1121. The at least two blocking portions 160 are used to abut against the switching member 130 to limit the movement stroke of the switching member 130.
[0058] Exemplarily, the number of the blocking portions 160 can be two, three, four, five, etc., and specific limitations are not made here.
[0059] In this embodiment, due to the provision of the blocking portion 160, the blocking portion 160 can abut against the switching member 130, thereby limiting the movement stroke of the switching member 130, and thus achieving the limiting effect on the switching member 130.
[0060] As Figure 3 、 Figure 7 and Figure 9 shown, further, a driving member 170 is connected to the switching member 130. The driving member 170 is used to drive the switching member 130 to move. A control main board 180 electrically connected to the driving member 170 is further provided inside the base body 110 of the base station. The control main board 180 is used to control the driving member 170 to drive the switching member 130 to move to the position where the first through port 1122 or the second through port 1123 is opened according to a preset control method, the combined state of the cleaning robot or the combined state of the intelligent cleaning device.
[0061] Exemplarily, the driving member 170 may be a driving motor, a driving motor, or other components capable of outputting torque, and specific limitations are not made here. The control main board 180 may be a printed circuit board (PCB) or a flexible printed circuit board (FPC).
[0062] In this embodiment, since the driving member 170 and the control main board 180 are provided, and the control main board 180 is electrically connected to the driving member 170, in this way, the control main board 180 can control the driving member 170 to drive the switching member 130 to move to the position where the first through port 1122 is opened or the position where the second through port 1123 is opened according to the set rules, so as to realize that the dust collection base station 100 automatically switches to collect dust from the cleaning robot or collect dust from the intelligent cleaning device. For example, when the first dust collection port 1111 is combined with the cleaning robot, the control main board 180 controls the driving member 170 to drive the switching member 130 to move to the position where the first through port 1122 is opened. At this time, the dust collection cavity 1121 is communicated with the first dust collection channel 1131, and the dust of the cleaning robot can be sucked in. When the second dust collection port 11411 is combined with the intelligent cleaning device, the control main board 180 controls the driving member 170 to drive the switching member 130 to move to the position where the second through port 1123 is opened. At this time, the dust collection cavity 1121 is communicated with the second dust collection channel 11421, and the dust of the intelligent cleaning device can be sucked in. Another example is that when the first dust collection port 1111 is combined with the cleaning robot and the second dust collection port 11411 is combined with the intelligent cleaning device, the control main board 180 can first control the driving member 170 to drive the switching member 130 to move to the position where the first through port 1122 is opened, and suck the dust of the cleaning robot into the dust collection cavity 1121 through the first dust collection channel 1131, and then control the driving member 170 to drive the switching member 130 to move to the position where the second through port 1123 is opened, and suck the dust of the intelligent cleaning device into the dust collection cavity 1121 through the second dust collection channel 11421.
[0063] Of course, for the above embodiment, the driving member 170 and the control main board 180 may also be cancelled, and the switching member 130 can be driven to rotate relative to the base body 110 manually, and the dust collection cavity 1121 can also be communicated with the first through port 1122 or the second through port 1123.
[0064] As Figure 7 、 Figure 8 and Figure 10 shown, further, at least one opening 131 and at least one closing portion 132 are provided on the switching member 130.
[0065] Exemplarily, the switching member 130 may be a plate-like structure. The opening 131 may be one, two, or more than two; the closing portion 132 may be one, two, or more than two.
[0066] In this embodiment, by providing the opening 131 and the closing portion 132 on the switching member 130, when the switching member 130 moves to the position where the first through port 1122 is opened, the opening 131 and the first through port 1122 are in communication with each other, and the closing portion 132 closes the second through port 1123. At this time, the dust collection chamber 1121 is in communication with the first dust collection channel 1131, and the dust collection chamber 1121 and the second dust collection channel 11421 are separated. At this time, the dust collection base 100 can suck the dust of the cleaning robot. When the switching member 130 moves to the position where the second through port 1123 is opened, the opening 131 and the second through port 1123 are in communication with each other, and the closing portion 132 closes the first through port 1122. At this time, the dust collection chamber 1121 is in communication with the second dust collection channel 11421, and the dust collection chamber 1121 and the first dust collection channel 1131 are separated. At this time, the dust collection base 100 can suck the dust of the intelligent cleaning device.
[0067] As Figure 10 shown, further, the driving member 170 is used to drive the switching member 130 to rotate to the position where the first through port 1122 is opened or the position where the second through port 1123 is opened. The opening 131 and the closing portion 132 are symmetrically arranged with the rotation axis of the switching member 130 as the center. In this way, when the driving member 170 drives the switching member 130 to rotate to the position where the opening 131 opens the first through port 1122, the closing portion 132 can just close the second through port 1123 to realize dust collection of the cleaning robot by the dust collection base 100. When the driving member 170 drives the switching member 130 to rotate to the position where the closing portion 132 closes the first through port 1122, the opening 131 can just open the second through port 1123 to realize dust collection of the intelligent cleaning device by the dust collection base 100.
[0068] As Figure 10 shown, further, there are two opening portions 131 and two closing portions 132 respectively. The two opening portions 131 are located on the same side, and the two closing portions 132 are located on the other side.
[0069] In this embodiment, since there are two opening portions 131 and two closing portions 132, when the switching member 130 rotates to the position where the first through port 1122 is opened, one of the opening portions 131 communicates with the first through port 1122, and one of the closing portions 132 closes the second through port 1123, so that the dust collection base station 100 can collect dust from the cleaning robot. When the switching member 130 rotates to the position where the second through port 1123 is opened, the other opening portion 131 communicates with the second through port 1123, and the other closing portion 132 closes the first through port 1122, so that the dust collection base station 100 can collect dust from the intelligent cleaning device.
[0070] As Figure 7 , Figure 8 and Figure 11 shown, further, a dust bag mounting member 115 is provided in the dust collection chamber 1121, the switching member 130 is disposed close to the dust bag mounting member 115, and the dust bag mounting member 115 is used for clamping a dust bag 190 having two bag openings 1921, so that the positions of the first through port 1122 and the second through port 1123 correspond to the positions of the two bag openings 1921 respectively.
[0071] In this embodiment, by providing the dust bag mounting member 115 in the dust collection chamber 1121, it is convenient to install the dust bag 190. Thus, when the first through port 1122 communicates with one of the bag openings 1921, under the suction of the suction device 120, the dust of the cleaning robot can enter the dust bag 190 sequentially through the first dust collection port 1111, the first dust collection channel 1131, the first through port 1122, and one of the bag openings 1921. When the second through port 1123 communicates with the other bag opening 1921, under the suction of the suction device 120, the dust of the intelligent cleaning device can enter the dust bag 190 sequentially through the second dust collection port 11411, the second dust collection channel 11421, the second through port 1123, and the other bag opening 1921.
[0072] As Figure 8 and Figure 9 shown, exemplarily, two stopping portions 160, a first detecting member 140, and a second detecting member 150 are all mounted on the dust bag mounting member 115, and the switching member 130 is located between the chamber wall of the dust collection chamber 1121 and the dust bag mounting member 115.
[0073] As Figure 2 and Figure 3 shown, in one embodiment, the first dust collection channel 1131 is located below the second dust collection channel 11421, so as to facilitate dust collection from the cleaning robot adjacent to the bottom of the dust collection base station 100.
[0074] Of course, in other embodiments, the first dust collection channel 1131 may also be located above the second dust collection channel 11421, and the relative positions of the first dust collection channel 1131 and the second dust collection channel 11421 are not specifically limited herein.
[0075] As Figures 4 to 6 shown, further, the base station body 110 includes a dust collection bracket 114. A second dust collection channel 11421 is provided inside the dust collection bracket 114. A second dust collection port 11411 is provided above the second dust collection channel 11421. The dust collection bracket 114 defines a receiving groove 11412, and the receiving groove 11412 communicates with the second dust collection port 11411 for placing a smart cleaning device, and the smart cleaning device may be a handheld vacuum cleaner.
[0076] In this embodiment, through the setting of the receiving groove 11412, it is convenient for the second dust collection port 11411 to be combined with the lower part of the handheld vacuum cleaner, so as to facilitate the placement of the handheld vacuum cleaner. In this way, the user does not need to bend down, and can normally stand to combine the second dust collection port 11411 with the lower part of the handheld vacuum cleaner, so that the dust of the handheld vacuum cleaner can be sucked into the dust collection cavity 1121 through the dust collection base 100.
[0077] As Figures 4 to 6 shown, furthermore, one of the inner wall of the receiving groove 11412 and the outer wall of the handheld vacuum cleaner is provided with a guiding groove, and the other is provided with a guiding block 11413. The guiding groove and the guiding block 11413 cooperate to enable the handheld vacuum cleaner to be installed in the receiving groove 11412.
[0078] In this embodiment, through the cooperation of the guiding block 11413 and the guiding groove, it is convenient to install the handheld vacuum cleaner, and the operation difficulty and operation efficiency of placing the handheld vacuum cleaner are improved.
[0079] As Figures 4 to 6 shown, still further, a third detection member 116 and / or a charging element 117 are provided near the receiving groove 11412. The third detection member 116 is used to cooperate with an induction member on the handheld vacuum cleaner to detect whether the handheld vacuum cleaner is placed at a preset position in the receiving groove 11412, and the charging element 117 is used to charge the handheld vacuum cleaner; and / or control buttons 118 are provided on the outer periphery of the dust collection bracket 114, and the control buttons 118 are used to pair the handheld vacuum cleaner or control the dust of the handheld vacuum cleaner to enter the dust collection cavity 1121.
[0080] Exemplarily, the third detection member 116 is a Hall sensor, and the sensing member is a magnet. Of course, it is also possible that the third detection member 116 is a radio frequency detector, and the sensing member is an electronic tag, so as to detect the relative position between the dust collection bracket 114 and the handheld vacuum cleaner by using radio frequency identification technology (RFID, Radio Frequency Identification). In addition, the charging element 117 can be a charging electrode plate, a charging socket, etc.
[0081] In this embodiment, since the third detection member 116 is provided near the accommodation groove 11412, the third detection member 116 can cooperate with the sensing member on the handheld vacuum cleaner to detect whether the handheld vacuum cleaner is placed at the preset position of the accommodation groove 11412, that is, to detect whether the handheld vacuum cleaner is placed in place, so as to improve the phenomenon of poor sealing caused by the handheld vacuum cleaner not being placed in place, and improve the dust collection effect of the dust collection base station 100 on the handheld vacuum cleaner. Since the charging element 117 is provided near the accommodation groove 11412, the charging element 117 can charge the handheld vacuum cleaner. In addition, since the control button 118 is provided on the outer periphery of the dust collection bracket 114, pressing and holding the control button 118 for a preset time (such as 5 s) can pair with the handheld vacuum cleaner, and pressing the control button 118 once (or pressing other times) can control the dust of the intelligent cleaning device to enter the dust collection cavity 1121.
[0082] As Figure 3 、 Figure 7 and Figure 8 shown, furthermore, the base body 110 further includes a housing 111, a dust collection bucket 112 and a first dust collection pipe 113. The dust collection bucket 112 and the first dust collection pipe 113 are respectively arranged inside the housing 111. The dust collection bucket 112 has a dust collection cavity 1121. A first dust collection port 1111 is opened below the housing 111. The first dust collection pipe 113 is connected to the dust collection bucket 112, and the first dust collection pipe 113 has a first dust collection channel 1131.
[0083] In this embodiment, under the action of the suction airflow generated by the suction device 120, the first dust collection pipe 113 can suck the dust of the cleaning robot from the first dust collection port 1111 into the dust collection cavity 1121 of the dust collection bucket 112.
[0084] Of course, for the above embodiment, the first dust collection pipe 113 can also be cancelled, and the first dust collection channel 1131 can be integrally formed directly inside the housing 111, which can also achieve dust collection for the cleaning robot.
[0085] As Figures 4 to 6As shown, further, the dust collection bracket 114 includes a bracket body 1141 and a second dust collection pipe 1142. A second dust collection port 11411 is provided on the bracket body 1141, and a receiving groove 11412 is defined. The second dust collection pipe 1142 passes through the inside of the bracket body 1141 and the outer shell 111, and is connected to the dust collection bucket 112. The second dust collection pipe 1142 has a second dust collection channel 11421.
[0086] In this embodiment, under the action of the suction air flow generated by the suction device 120, the second dust collection channel 11421 of the second dust collection pipe 1142 can suck the dust of the intelligent cleaning device from the second dust collection port 11411 into the dust collection cavity 1121 of the dust collection bucket 112.
[0087] Of course, for the above embodiment, the second dust collection pipe 1142 can also be cancelled, and the second dust collection channel 11421 can be integrally formed directly inside the bracket body 1141, which can also achieve dust collection for the intelligent cleaning device.
[0088] As Figure 11 and Figure 12 shown, in a second aspect, an embodiment of the present application provides a dust bag 190 for the dust collection base station 100, including a bag body 191 and a clamping member 192 for clamping at the dust collection cavity 1121 of the dust collection base station 100. The clamping member 192 is connected to the bag body 191, and two bag openings 1921 are provided on the clamping member 192. The two bag openings 1921 are respectively communicated with the inside of the bag body 191. When the dust bag 190 is clamped at the dust collection cavity 1121 of the dust collection base station 100, the position of one of the bag openings 1921 corresponds to the position of the first through port 1122 in the dust collection base station 100 for sucking dust from the cleaning robot, and the position of the other bag opening 1921 corresponds to the position of the second through port 1123 in the dust collection base station 100 for sucking dust from the handheld vacuum cleaner. The two bag openings 1921 can be distributed along the vertical direction, inclined direction or horizontal direction of the clamping member 192.
[0089] In this embodiment, through the setting of the clamping member 192 with two bag openings 1921, the dust bag 190 in the dust collection base station 100 can both collect dust for the cleaning robot and collect dust for the handheld vacuum cleaner, so that there is no need to manually handle the garbage of the handheld vacuum cleaner, improving the user experience. For example, when the first through port 1122 is communicated with one of the bag openings 1921, the dust bag 190 can collect dust for the cleaning robot. When the second through port 1123 is communicated with the other bag opening 1921, the dust bag 190 can collect dust for the handheld vacuum cleaner.
[0090] As Figure 14As shown, in one embodiment, when the dust bag 190 is snap - connected to the dust collection cavity 1121 of the dust collection base station 100, the bag mouth 1921 above the snap - connector 192 is used to suck dust from the handheld vacuum cleaner, and the bag mouth 1921 below the snap - connector 192 is used to suck dust from the cleaning robot.
[0091] Exemplarily, the two bag mouths 1921 are arranged along the length direction of the snap - connector 192. The diameter of the bag mouth 1921 is D, and the length of the snap - connector 192 is L, satisfying: 1 / 6 ≤ D / L ≤ 1 / 2.5, that is, the ratio of the diameter of the bag mouth 1921 to the length of the snap - connector 192 is between 1 / 6 and 1 / 2.5. Among them, D / L can be any value among 1 / 6, 1 / 5, 1 / 4, 1 / 3, 1 / 2.5 or any value within the range composed of any two of them, and no specific limitation is made here.
[0092] In this embodiment, through the bag mouth 1921 opened above the snap - connector 192, it is convenient to collect dust from the handheld vacuum cleaner. Through the bag mouth 1921 opened below the snap - connector 192, it is convenient to collect dust from the cleaning robot.
[0093] As Figure 14 shown, in one embodiment, the two bag mouths 1921 are arranged along the length direction of the snap - connector 192. The length of the snap - connector 192 is L, satisfying: 120mm ≤ L ≤ 180mm. This length direction can be the vertical direction, the inclined direction or the horizontal direction.
[0094] Exemplarily, the length L of the snap - connector 192 can be any value among 120mm, 125mm, 130mm, 132mm, 135.5mm, 140mm, 150mm, 160mm, 167mm, 170mm, 172mm, 179mm, 180mm or any value within the range composed of any two of them, and no specific limitation is made here.
[0095] In this embodiment, by controlling the length L of the snap - connector 192 within the range of 120mm - 180mm, it is convenient for the arrangement of the above - mentioned two bag mouths 1921.
[0096] As Figure 11 and Figure 12 shown, in one embodiment, a movable part 193 is provided inside the snap - connector 192. The movable part 193 can move relative to the snap - connector 192 to a position where the two bag mouths 1921 are exposed or to a position where the two bag mouths 1921 are closed.
[0097] It can be understood that when the dust bag 190 is snap-connected to the dust collection cavity 1121, the user can move the movable member 193 to a position where the two bag openings 1921 are exposed, so as to facilitate sucking the dust in the cleaning robot and the handheld vacuum cleaner. When disassembling the dust bag 190, the user can move the movable member 193 to a position where the two bag openings 1921 are closed, thereby preventing the dust sucked in the dust bag 190 from leaking.
[0098] As Figure 11 and Figure 13 shown, in one embodiment, two through holes 1931 are provided on the movable member 193. When the movable member 193 moves to a position where the two bag openings 1921 are exposed, the two through holes 1931 are respectively arranged corresponding to the positions of the two bag openings 1921, that is, each through hole 1931 communicates with one bag opening 1921, so that the dust bag 190 can suck dust through the bag opening 1921.
[0099] As Figure 13 shown, further, the two through holes 1931 are arranged along the length direction of the movable member 193, and the distance between the adjacent edges of the two through holes 1931 is greater than the diameter of the bag opening 1921 or the diameter of the through hole 1931. In this way, when the movable member 193 moves to a position where the two bag openings 1921 are closed, the two through holes 1931 can be respectively arranged in a staggered manner with the two bag openings 1921, that is, each through hole 1931 is completely staggered with one bag opening 1921. At this time, the through hole 1931 is completely separated from the bag opening 1921, and the dust in the dust bag 190 cannot leak out from the bag opening 1921.
[0100] As Figure 14 shown, in one embodiment, both of the two bag openings 1921 are circular, and the distance between the centers of the two bag openings 1921 is S, satisfying: 40 mm ≤ S ≤ 80 mm.
[0101] Exemplarily, the distance S between the centers of the two bag openings 1921 can be any value selected from 40 mm, 42 mm, 45 mm, 50 mm, 52 mm, 55 mm, 60 mm, 68 mm, 70 mm, 71 mm, 76 mm, 80 mm or any value within the range composed of any two of them.
[0102] In this embodiment, by controlling the distance S between the centers of the two bag openings 1921 within the range of 40 mm to 80 mm, the possibility that the dust sucked in by one bag opening 1921 enters the other bag opening 1921 can be reduced, and at the same time, the mutual interference of the airflows at the two bag openings 1921 can also be reduced, so that the dust bag 190 can suck the dust in the cleaning robot and the handheld vacuum cleaner more efficiently.
[0103] As Figure 14As shown, in one embodiment, the diameter of the bag opening 1921 is D, satisfying: 25 mm ≤ D ≤ 35 mm.
[0104] Exemplarily, the diameter D of the dust bag 190 can be selected as any value among 25 mm, 25.5 mm, 26 mm, 28 mm, 30 mm, 32 mm, 34 mm, 35 mm or any value within the range composed of any two of them.
[0105] In this embodiment, by controlling the diameter D of the bag opening 1921 within the range of 25 mm to 35 mm, the bag opening 1921 has a larger air inlet area, so that the dust bag 190 can suck dust more efficiently.
[0106] In a third aspect, an embodiment of the present application provides a cleaning system, including a cleaning robot, an intelligent cleaning device, and the dust collection base station 100 mentioned in any embodiment of the first aspect above. The dust collection base station 100 is used to be combined with the cleaning robot through the first dust collection port 1111 and is used to be combined with the intelligent cleaning device through the second dust collection port 11411.
[0107] It can be understood that since the cleaning system provided in this embodiment has the dust collection base station 100 in any embodiment of the first aspect above, it has all the beneficial effects of the dust collection base station 100, which will not be elaborated here one by one.
[0108] In the description of this specification, the description with reference to terms such as "one embodiment", "some embodiments", "example", "specific example", or "some examples" means that the specific 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 this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. In addition, without contradiction, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of different embodiments or examples.
[0109] Although the embodiments of the present application have been shown and described above, it can be understood that the above embodiments are exemplary and should not be construed as limiting the present application. Those of ordinary skill in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the present application.
Claims
1. A dust bag for a dust collection base station, characterized in that: It comprises a bag body and a clamping piece for clamping at the dust collecting chamber of the dust collecting base station, the clamping piece is connected to the bag body, and the clamping piece is provided with two bag openings, and the two bag openings are respectively connected to the interior of the bag body; When the dust bag is clamped at the dust collecting chamber of the dust collecting base station, the position of one of the bag openings corresponds to the position of a first opening in the dust collecting base station for sucking dust from a cleaning robot, and the position of the other bag opening corresponds to the position of a second opening in the dust collecting base station for sucking dust from a handheld vacuum cleaner.
2. The dust bag according to claim 1, characterized in that: When the dust bag is clamped on the dust collecting chamber of the dust collecting base station, the bag opening located at the upper part of the clamping member is used to absorb dust from the handheld vacuum cleaner, and the bag opening located at the lower part of the clamping member is used to absorb dust from the cleaning robot.
3. The dust bag according to claim 1, characterized in that: The two bag openings are arranged along the length direction of the clamping piece, the diameter of the bag opening is D, and the length of the clamping piece is L, satisfying: 1 / 6≤D / L≤1 / 2.
5.
4. The dust bag according to claim 1, characterized in that: The two bag openings are arranged along the length direction of the clamping piece, and the length of the clamping piece is L, which satisfies: 120mm≤L≤180mm.
5. The dust bag according to claim 1, characterized in that: A movable part is arranged inside the clamping part, and the movable part can move relative to the clamping part to a position where the two bag openings leak out or a position where the two bag openings are closed.
6. The dust bag according to claim 5, characterized in that: The movable member is provided with two through holes. When the movable member moves to a position where the two bag openings are exposed, the two through holes are respectively arranged corresponding to the positions of the two bag openings.
7. The dust bag according to claim 6, characterized in that: The two through holes are arranged along the length direction of the movable part, and the distance between the adjacent edges of the two through holes is greater than the diameter of the bag opening or the diameter of the through holes.
8. The dust bag according to claim 1, characterized in that: The two bag openings are both circular, and the distance between the centers of the two bag openings is S, satisfying: 40mm≤S≤80mm.
9. The dust bag according to claim 1, characterized in that: The diameter of the bag opening is D, which satisfies: 25mm≤D≤35mm.
10. A dust collection station, characterized in that: It comprises a base station body and a dust bag as described in any one of claims 1 to 9, wherein the base station body defines a dust collecting chamber, and a first opening and a second opening are provided inside the dust collecting chamber, on the chamber wall of the dust collecting chamber, or near the dust collecting chamber, wherein the first opening is used to absorb dust from a cleaning robot, and the second opening is used to absorb dust from a handheld vacuum cleaner, and the dust bag is used to be snapped into the dust collecting chamber.