roller brushes and cleaning equipment
By combining electrostatic adsorption and cleaning components on the roller brush, the problem of existing cleaning equipment's inability to remove fine hairs from bed sheets is solved, achieving a more efficient cleaning effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- KINGCLEAN ELECTRIC CO LTD
- Filing Date
- 2025-06-20
- Publication Date
- 2026-05-26
AI Technical Summary
Existing cleaning equipment is ineffective at removing pet hair from bed sheets, especially fine and soft hair, resulting in incomplete cleaning.
Design a roller brush including a roller component, a cleaning component, and an electrostatic adsorption component. The roller component has connecting parts at both ends, the cleaning component extends axially, and the electrostatic adsorption component is located between adjacent cleaning components. The surface is cleaned by electrostatic adsorption and mechanical action.
The improved cleaning capabilities of the cleaning equipment effectively remove hair from bed sheets, enhancing the user experience.
Smart Images

Figure CN224269191U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of cleaning equipment technology, and in particular to a roller brush and cleaning equipment. Background Technology
[0002] As people's living standards improve, more and more families are keeping pets. While pets bring companionship and joy, they also bring some cleaning problems, among which pet hair residue on bed sheets is a major concern for many pet owners. Currently, the pet cleaning market is expanding rapidly, and various cleaning devices are emerging one after another. However, existing devices have revealed many shortcomings when dealing with pet hair on bed sheets.
[0003] For example, vacuum cleaners are common cleaning devices that perform reasonably well when cleaning large areas of dust and debris, but they struggle to handle pet hair on bed sheets. Many vacuum cleaners have limited cleaning power and cannot completely remove hair tightly entangled in the sheet fibers. Especially for fine and soft hair, even increasing the suction power is futile, and a considerable amount of hair will still stubbornly remain on the sheets. Utility Model Content
[0004] Therefore, it is necessary to provide a roller brush to address the above-mentioned problems.
[0005] A roller brush includes:
[0006] A roller assembly, comprising: a first connector, a second connector, and a shaft body, wherein the first connector and the second connector are respectively disposed at both ends of the shaft body along the axial direction of the shaft body;
[0007] At least two cleaning components are provided on the shaft body and extend along the axial direction of the shaft body;
[0008] At least one electrostatic adsorption element is disposed on the shaft body and located between two adjacent cleaning elements.
[0009] The aforementioned roller brush includes a roller assembly, at least two cleaning components, and at least one electrostatic adsorption component. A first connecting component and a second connecting component are respectively disposed at both ends of the main shaft assembly, allowing the two ends of the roller brush to be assembled into the cleaning equipment via the first and second connecting components, thereby improving the rotational stability of the roller brush.
[0010] The electrostatic adsorption component generates static electricity through friction with the surface to be cleaned, and cleans the surface by electrostatic adsorption; the cleaning component cleans the surface through mechanical action. Furthermore, by arranging the electrostatic adsorption component between two adjacent cleaning components, the axial cleaning blind spot caused by the gap between adjacent cleaning components is effectively eliminated, thus significantly increasing the effective cleaning area of the roller brush according to this application.
[0011] Therefore, for cleaning equipment equipped with the roller brush of this application, the cleaning ability of the cleaning equipment is improved, enabling the cleaning equipment to effectively clean the surface to be cleaned, thereby improving the user experience.
[0012] In one embodiment, the shaft body component includes: at least two first shafts and at least one second shaft, each second shaft being disposed between every two first shafts;
[0013] The cleaning component is located on the first shaft.
[0014] The electrostatic adsorption component is detachably assembled to the second shaft.
[0015] In one embodiment, the outer peripheral surface of the second shaft is provided with an installation space, and the electrostatic adsorption component is assembled in the installation space.
[0016] In one embodiment, the outer peripheral surface of the second shaft is provided with two first limiting stops, which are spaced apart along the axial direction of the second shaft to form an installation space.
[0017] In one embodiment, the cleaning member includes at least one cleaning portion that protrudes outward from the first shaft and extends axially along the first shaft.
[0018] In one embodiment, the cleaning component further includes a sleeve portion, the cleaning portion being disposed on the outer periphery of the sleeve portion, and the sleeve portion being fitted with a roller component.
[0019] In one embodiment, the cleaning part is a comb body and / or a protrusion.
[0020] In one embodiment, the cleaning part comprises a comb body and a protrusion;
[0021] The radial dimension of the end of the comb body away from the roller is D1; the radial dimension of the end of the protrusion away from the roller is D2; the radial dimension of the end of the electrostatic adsorption component away from the roller is D3.
[0022] The following relationship is satisfied: D3 < D1 < D2.
[0023] In one embodiment, the following relationship is satisfied: 8mm≤D2-D3≤12mm.
[0024] In one embodiment, the cleaning part comprises a comb body and a protrusion;
[0025] The radial dimension of the end of the comb body away from the roller is D1; the radial dimension of the end of the protrusion away from the roller is D2; the radial dimension of the end of the electrostatic adsorption component away from the roller is D3.
[0026] The following relationship is satisfied: D3 < D2 < D1.
[0027] In one embodiment, the following relationship is satisfied: 8mm≤D1-D3≤12mm.
[0028] In one embodiment, the comb body, the protrusion, and the electrostatic adsorption element are all made of nylon material;
[0029] The comb body includes multiple comb teeth, which are arranged sequentially at intervals along the axial direction of the roller component.
[0030] The protrusion includes multiple bristles and / or down, which are arranged closely in sequence along the axial direction of the roller.
[0031] The electrostatic adsorption component includes multiple bristles and / or fluff;
[0032] Among them, the density of bristles and / or down in the electrostatic adsorption component is greater than the density of bristles and / or down in the protrusion, and the density of bristles and / or down in the protrusion is greater than the density of comb teeth in the comb body.
[0033] In one embodiment, the comb body, the protrusion, and the electrostatic adsorption component are all made of nylon material;
[0034] The comb body includes multiple comb teeth, which are arranged sequentially at intervals along the axial direction of the roller component.
[0035] The protrusion includes multiple bristles and / or down, which are arranged closely in sequence along the axial direction of the roller.
[0036] The electrostatic adsorption component includes multiple bristles and / or fluff;
[0037] Among them, the diameter of the bristles and / or down in the electrostatic adsorption component is smaller than the density of the bristles and / or down in the protrusion, and the diameter of the bristles and / or down in the electrostatic adsorption component is smaller than the diameter of the comb teeth.
[0038] In one embodiment, the flange of the second shaft is provided with at least one receiving notch for receiving the cleaning part.
[0039] In one embodiment, the width of the notch is greater than the thickness of the cleaning section.
[0040] In one embodiment, the outer peripheral surface of the second shaft is provided with two first limiting stops, and the two first limiting stops are spaced apart along the axial direction of the second shaft to form an installation space, and the electrostatic adsorption component is assembled in the installation space.
[0041] The second shaft is also provided with a guide member, which is connected between the flange and the first limiting stop edge, and along the circumference of the second shaft, the guide member is located between two adjacent receiving notches.
[0042] In one embodiment, the radial dimension of the end of the electrostatic adsorption member away from the roller member is D3, and the radial dimension of the first limiting stop edge away from the end of the roller member is D4, satisfying the relationship: D3≥D4.
[0043] In one embodiment, the second shaft includes: an assembly wheel body and an annular mounting body, the annular mounting body being sleeved on the assembly wheel body;
[0044] Along the axial direction of the assembly wheel body, both ends of the assembly wheel body are connected to a first shaft body, and the annular mounting body is provided with an installation space and a receiving notch.
[0045] In one embodiment, the assembly wheel body is provided with a screw hole, and the annular mounting body is provided with a corresponding countersunk hole, and the countersunk hole is located within the mounting space;
[0046] The second shaft also includes a screw, which is adapted to pass through a countersunk hole for screwing into a threaded hole.
[0047] In one embodiment, the annular mounting body includes: a first mounting body and a second mounting body, wherein the first mounting body and the second mounting body are fixedly assembled to the mounting wheel body;
[0048] The inner wall of the first mounting body and / or the inner wall of the second mounting body are provided with one of the axial limiting groove and the axial limiting protrusion, and the assembly wheel body is provided with the other of the axial limiting groove and the axial limiting protrusion. The axial limiting protrusion is suitable for assembly into the axial limiting groove.
[0049] The first mounting body has one of a positioning groove and a positioning protrusion, and the second mounting body has the other of a positioning groove and a positioning protrusion.
[0050] In one embodiment, the inner walls of the first mounting body and the inner walls of the second mounting body are both provided with a second limiting stop and a third limiting stop, and along the axial direction of the annular mounting body, the second limiting stop and the third limiting stop form an axial limiting groove at intervals.
[0051] The second and / or third limiting edges are provided with circumferential limiting protrusions, and the assembly wheel body is provided with circumferential limiting grooves. The circumferential limiting protrusions are adapted to be assembled in the circumferential limiting grooves.
[0052] In one embodiment, along the circumference of the annular mounting body, a corresponding second limiting edge is provided to form a clamping space, and along the axial direction of the annular mounting body, a third limiting edge is provided outside the second limiting edge.
[0053] The assembly wheel body is provided with circumferential baffles, which extend along the axial direction of the assembly wheel body to connect between two adjacent axial limiting protrusions, and the circumferential baffles are located within the clamping space.
[0054] In one embodiment, the second shaft is a one-piece molded part.
[0055] This application further proposes a cleaning device, which includes:
[0056] The housing includes a main body and a brush part, the brush part being provided with a roller brush cavity and an anti-rolling component;
[0057] A waste storage component is provided in the main body, and a negative pressure channel in the main body connects the roller brush chamber and the waste chamber of the waste storage component;
[0058] A negative pressure generator is located in the main body and is configured to drive fluid to flow along the negative pressure channel from the roller brush chamber to the waste chamber.
[0059] In some of the embodiments described above, the roller brush is assembled in the roller brush cavity, and along the axial direction of the roller brush, the electrostatic adsorption element is located between two adjacent anti-rolling elements.
[0060] In one embodiment, the negative pressure channel includes an upstream channel segment and a downstream channel segment;
[0061] The upstream channel section connects the roller brush chamber and the sludge chamber, and the suction port of the upstream channel section is positioned opposite the electrostatic adsorption component in the direction of fluid flow.
[0062] The downstream channel section connects the waste chamber and the negative pressure generator.
[0063] In one embodiment, the cleaning device further includes a lamp assembly comprising an ultraviolet lamp core, the lamp assembly being disposed at the bottom of the housing.
[0064] In one embodiment, the lower boundary of the electrostatic adsorption element is located below the anti-rolling element in the height direction of the housing.
[0065] In one embodiment, the main body is provided with a handle.
[0066] In one embodiment, in the direction of movement of the cleaning device, the distance between the midpoint of the handle and the electrostatic adsorption element is L1, and the length of the handle is L2, satisfying the relationship: L1 < 2L2. Attached Figure Description
[0067] Figure 1 This is a bottom view of a cleaning device according to an embodiment of this application.
[0068] Figure 2 This is a cross-sectional view of a cleaning device according to an embodiment of this application.
[0069] Figure 3 This is a cross-sectional view of a cleaning device according to an embodiment of this application.
[0070] Figure 4This is a perspective view of a roller brush according to an embodiment of this application.
[0071] Figure 5 This is an exploded view of a roller brush according to an embodiment of this application.
[0072] Figure 6 This is a side view of a roller brush according to an embodiment of this application.
[0073] Figure 7 for Figure 6 Cross-sectional view at point AA.
[0074] Figure 8 This is a perspective view of a cleaning component according to an embodiment of this application.
[0075] Figure 9 This is an exploded view of a roller component according to an embodiment of this application.
[0076] Figure 10 for Figure 9 Enlarged view of point A in the middle.
[0077] Figure 11 This is a perspective view of a ring-shaped mounting body according to an embodiment of this application.
[0078] Figure 12 This is an exploded view of a ring-shaped mounting body according to an embodiment of this application.
[0079] Figure 13 This is an exploded view of a roller component according to another embodiment of this application.
[0080] Figure label:
[0081] 100. Roller brush; 1. Roller assembly; 11. First connecting piece; 12. Second connecting piece; 13. Shaft body assembly; 131. First shaft body; 1310. Fixing groove; 132. Second shaft body; 132a. Installation space; 132b. Flanged edge; 132c. Accommodating notch; 132d. First limiting stop edge; 132e. Guide component; 1321. Assembly wheel body; 13210. Threaded hole; 1322. Annular mounting body; 13220. Countersunk hole; 13221. First mounting body; 13222. Second mounting body; 13223. Screw; 141. Axial limiting groove; 1411. Second limiting stop edge; 1412. Third limiting stop edge; 142. Axial limiting protrusion; 151 1. Positioning groove; 152. Positioning protrusion; 161. Circumferential limiting protrusion; 162. Circumferential limiting groove; 171. Circumferential baffle; 172. Clamping space; 2. Cleaning component; 20. Cleaning section; 21. Comb body; 211. Comb teeth; 22. Protrusion; 23. Sleeve; 3. Electrostatic adsorption component; 200. Cleaning equipment; 201. Housing; 2011. Main body; 20110. Handle; 2013. Negative pressure channel; 2013a. Upstream channel section; 2013b. Downstream channel section; 2012. Brush section; 20120. Roller brush chamber; 20121. Anti-rolling component; 202. Sewage storage component; 2020. Sewage chamber; 203. Negative pressure generator; 204. Lamp assembly. Detailed Implementation
[0082] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.
[0083] In the description of this application, it should be understood that if terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" appear, these terms indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.
[0084] Furthermore, where the terms "first" and "second" appear, these terms are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, where the term "multiple" appears, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.
[0085] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0086] In this application, unless otherwise expressly specified and limited, the use of descriptions such as "above" or "below" the second feature indicates that the first and second features are in direct contact or indirect contact via an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. Similarly, "below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0087] It should be noted that if an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. If an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. If so, the terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used in this application are for illustrative purposes only and do not represent the only possible implementation.
[0088] See Figure 1 and Figure 2As shown, the roller brush 100 according to this application includes a roller component 1, at least two cleaning components 2, and at least one electrostatic adsorption component 3. The roller component 1 includes a first connecting member 11, a second connecting member 12, and a shaft body component 13. Along the axial direction of the shaft body component 13, the first connecting member 11 and the second connecting member 12 are respectively disposed at both ends of the shaft body component 13. The cleaning components 2 are disposed on the shaft body component 13 and extend along the axial direction of the shaft body component 13. The electrostatic adsorption component 3 is disposed on the shaft body component 13 and located between two adjacent cleaning components 2.
[0089] For example, in combination Figures 3 to 5 As shown, in some embodiments of this application, the application of the roller brush 100 to the cleaning device 200 is used as an example for illustration, but this application is not limited to this, and the roller brush 100 can also be applied to other devices that require the roller brush 100. For example... Figures 3 to 5 As shown, the cleaning device 200 may include a housing 201, within which a roller brush cavity 20120 is provided, and a roller brush 100 is assembled in the roller brush cavity 20120. The cleaning device 200 may also include a drive mechanism, which may include a drive shaft and a driven shaft. The drive shaft is drivenly connected to one of the first connecting member 11 and the second connecting member 12, and the driven shaft is drivenly connected to the other of the first connecting member 11 and the second connecting member 12. The drive shaft and the driven shaft are used to connect the roller member 1 together, so that during the process of the drive shaft driving the roller member 1 to rotate, the roller member 1 rotates around its own central axis, that is, the roller brush 100 rotates within the roller brush cavity 20120 under the driving action of the drive mechanism.
[0090] For example, see Figure 4 As shown, in one embodiment, each cleaning member 2 includes a plurality of cleaning portions 20, and the cleaning portions 20 protrude outward from the roller member 1 in the radial direction. The plurality of cleaning portions 20 include comb body portions 21 and protrusions 22. It should be understood that the comb body portion 21 may include a plurality of comb teeth 211, which are arranged sequentially along the axial direction of the roller member 1, i.e., the comb body portion 21 extends along the axial direction of the roller member 1, and adjacent comb teeth 211 are spaced apart in the extending direction of the comb body portion 21. The protrusions 22 are constructed as elongated strips, extending along the axial direction of the roller member 1, and adjacent comb body portions 21 and protrusions 22 are spaced apart in the circumferential direction of the roller brush 100.
[0091] For more details, please refer to Figure 4As shown, in this embodiment, each cleaning component 2 is provided with six cleaning parts 20, of which three cleaning parts 20 are comb parts 21 and the other three cleaning parts 20 are protrusions 22. The multiple comb parts 21 and multiple protrusions 22 are arranged alternately in the circumferential direction of the roller component 1. It can also be understood that in the circumferential direction of the roller component 1, a protrusion 22 is provided between two adjacent comb parts 21, or a comb part 21 is provided between two adjacent protrusions 22.
[0092] For example, let's take the application of the roller brush 100 in this embodiment to the cleaning equipment 200 for cleaning bed sheets as an example. First, in conjunction with... Figures 3 to 5 As shown, the cleaning device 200 may include a housing 201, a waste storage unit 202, and a negative pressure generator 203. The housing 201 may include a main body 2011 and a brush unit 2012. The waste storage unit 202 and the negative pressure generator 203 are both disposed in the main body 2011. The brush unit 2012 is provided with a roller brush chamber 20120 and an anti-rolling member 20121, with the anti-rolling member 20121 disposed at the suction inlet of the roller brush chamber 20120. A negative pressure channel 2013 is provided within the main body 2011, connecting the roller brush chamber 20120 and the waste chamber 2020 of the waste storage unit 202. The negative pressure generator 203 is configured to drive fluid to flow along the negative pressure channel 2013 from the roller brush chamber 20120 to the waste chamber 2020.
[0093] When the cleaning equipment 200 is in operation, the negative pressure generator 203 generates a negative pressure airflow to drive gas from the outside of the roller brush chamber 20120 into the roller brush chamber 20120, and then flows along the negative pressure channel 2013 to the dirt chamber 2020. Based on this, the roller brush 100 can rotate using the negative pressure airflow generated by the negative pressure generator 203. Alternatively, the roller brush 100 can also rotate using the driving method mentioned above, that is, by driving the roller brush 100 to rotate through the driving mechanism of the cleaning equipment.
[0094] During the rotation of the roller brush 100, the electrostatic adsorption element 3 undergoes continuous circular motion. The moving electrostatic adsorption element 3 generates static electricity through friction with the surface to be cleaned (e.g., a bed sheet). This causes fine particles (e.g., dust, hair) on the surface to be cleaned to be adsorbed onto the electrostatic adsorption element 3 due to electrostatic attraction. Simultaneously, when the cleaning equipment 200 is in operation, the negative pressure generator 203 generates negative pressure, causing gas to flow from the outside of the roller brush chamber 20120 into the roller brush chamber 20120, and then flow along the negative pressure channel 2013 towards the dirt chamber 2020. Therefore, the fine particles adsorbed by the electrostatic adsorption element 3 due to electrostatic attraction are ultimately drawn into the dirt chamber 2020 by the flow of gas due to the negative pressure. It should be understood that... (See also...) Figures 1 to 3As shown, in some embodiments of this application, a negative pressure channel 2013 is provided within the housing 201 of the cleaning device 200. The cleaning device 200 also includes a negative pressure generator 203, which drives airflow along the negative pressure channel 2013 to transport the adsorbed material to the waste chamber 2020. The negative pressure channel 2013 includes an upstream channel section 2013a and a downstream channel section 2013b. The upstream channel section 2013a connects the roller brush chamber 20120 and the waste chamber 2020, while the downstream channel section 2013b connects the waste chamber 2020 and the negative pressure generator 203. Thus, when the negative pressure generator 203 is in operation, the driving gas first flows into the brush chamber 20120 from the outside, and then sequentially flows along the upstream channel section 2013a, the waste chamber 2020, and the downstream channel section 2013b. When the particulate matter flowing with the airflow passes through the waste chamber 2020, the waste storage member 202 can intercept the particulate matter in the waste chamber 2020, and only allow gas to flow from the waste chamber 2020 into the downstream channel section 2013b. Furthermore, along the extension direction of the upstream channel section 2013a, the suction port of the upstream channel section 2013a is positioned opposite to the electrostatic adsorption member 3 in the direction of fluid flow, thus more effectively utilizing the negative pressure airflow to absorb the material gathered on the electrostatic adsorption member 3, thereby improving the cleaning ability of the cleaning equipment 200.
[0095] Regarding the electrostatic adsorption element 3, it should be further noted that it can be made of a relatively soft material (e.g., soft bristles, fabric, felt, fine hair, or pile). For example, the softness can be determined based on the pliability of the bristles or pile used. The shape and size of the bristles and / or pile can be selected based on the desired application. The length can be between 0.5 mm and 10 mm (e.g., 2 mm to 5 mm), and the diameter can be between 0.01 mm and 0.04 mm (e.g., 0.01 mm to 0.03 mm). For example, the bristles and / or pile can have a length of 3 mm and a diameter of 0.02 mm. The bristles and / or pile can have any shape. For example, the bristles and / or pile can be straight, curved, and / or have a composite shape. According to one embodiment, the bristles and / or pile can have a generally U-shaped and / or Y-shaped shape. U-shaped and / or Y-shaped bristles and / or down increase the number of contact points with the surface to be cleaned (e.g., bed sheets), thus enhancing the friction between the electrostatic adsorption element 3 and the surface to be cleaned, thereby generating static electricity. The bristles and / or down can be made of any material, such as, but not limited to, nylon 6 (also known as polyamide 6) or nylon-66 (also known as polyadiohexylenediamine).
[0096] During the rotation of the roller brush 100, the protrusions 22 continuously "beat" the bed sheet, causing objects (such as dust, hair, fleas, etc.) attached to the bed sheet to separate from it. Since the roller brush 100 is continuously rotating, the elongated, sheet-like protrusions 22 act as "fan blades," blowing the detached objects towards the suction inlet of the upstream channel section 2013a of the cleaning device 200. Simultaneously, the negative pressure channel 2013 of the cleaning device 200 is under negative pressure, drawing objects into the negative pressure channel 2013 and transporting them to the waste chamber 2020.
[0097] Since the comb body 21 includes multiple comb teeth 211, and adjacent comb teeth 211 are spaced apart, when the roller brush 100 is rotating and comes into contact with soft, fine materials such as hair, the comb body 21 wraps around the soft, fine materials such as hair, causing them to adhere to the roller brush 100. Furthermore, since the comb body 21 and protrusions 22 are spaced apart along the circumference of the roller brush 100, the protrusions 22 provide support for the soft, fine materials such as hair adhering to the roller brush 100 in the radial direction of the roller brush 100, thereby preventing the soft, fine materials such as hair from sticking to the root of the comb body 21. Thus, when cleaning the soft, fine materials such as hair wrapped around the roller brush 100, the user can easily remove the soft, fine materials such as hair from the roller brush 100 by inserting their fingers into the space formed between the comb body 21 and the protrusions 22. Alternatively, users can use tools such as scissors to cut soft, fine materials such as hair through the space formed between the comb body 21 and the protrusion 22, thus easily cleaning away soft, fine materials such as hair entangled in the roller brush 100. It is also worth noting that as the roller brush 100 rotates, the comb body 21 extends deep into the bed sheet, effectively scraping away soft, fine materials such as hair attached to the bed sheet.
[0098] It should be noted that in the above embodiments, the cleaning component 2 includes multiple cleaning parts 20, some of which are comb parts 21 and others are protrusions 22, but this application is not limited to this. For example, the cleaning component 2 can be constructed as an adhesive roll, the outer surface of which has an adhesive layer. During the rotation of the roller brush 100, the cleaning component 2 adheres to the substance on the surface to be cleaned (e.g., a bed sheet), thereby achieving the effect of cleaning the surface. Of course, for the cleaning component 2 of this application, the specific configuration of the cleaning component 2 is not limited to the two types mentioned above, and the specific configuration of the cleaning component 2 can be adjusted according to actual needs.
[0099] In summary, the roller brush 100 according to this application includes a roller component 1, at least two cleaning components 2, and at least one electrostatic adsorption component 3. The roller component 1 includes a first connecting member 11, a second connecting member 12, and a shaft body component 13. The first connecting member 11 and the second connecting member 12 are respectively disposed at both ends of the shaft body component 13, so that both ends of the roller brush 100 are respectively connected to the cleaning device 200 via the first connecting member 11 and the second connecting member 12, thereby improving the rotational stability of the roller brush 100.
[0100] Cleaning element 2 is disposed on the shaft body 13 and extends axially along the shaft body 13, while electrostatic adsorption element 3 is disposed on the shaft body 13 and located between two adjacent cleaning elements 2. Thus, the electrostatic adsorption element 3 generates static electricity through friction with the surface to be cleaned, cleaning the surface by electrostatic adsorption; the cleaning element 2 cleans the surface by mechanical action. It should be further noted that arranging the electrostatic adsorption element 3 between two adjacent cleaning elements 2 effectively eliminates the axial cleaning blind spot caused by the interval between two adjacent cleaning elements 2, effectively increasing the effective cleaning area of the roller brush 100 according to this application.
[0101] Therefore, for the cleaning equipment 200 equipped with the roller brush 100 of this application, the cleaning ability of the cleaning equipment 200 is improved, enabling the cleaning equipment 200 to effectively clean the surface to be cleaned, thereby improving the user experience.
[0102] See Figure 2 As shown, in some embodiments of this application, the shaft body 13 may include at least two first shafts 131 and at least one second shaft 132, with each second shaft 132 disposed between every two first shafts 131. In other words, the second shaft 132 is connected between two adjacent first shafts 131. The cleaning component 2 is disposed on the first shaft 131, and the electrostatic adsorption component 3 is detachably assembled to the second shaft 132. Thus, when both the cleaning component 2 and the electrostatic adsorption component 3 are disposed on the shaft body 13, the electrostatic adsorption component 3 is located between two adjacent cleaning components 2 in the axial direction of the shaft body 13. In addition, since the electrostatic adsorption component 3 is detachably assembled to the second shaft 132, that is, the electrostatic adsorption component 3 is detachably assembled to the roller component 1. This facilitates the disassembly and replacement of the electrostatic adsorption component 3.
[0103] For example, see Figure 7 and Figure 9 As shown, in some embodiments of this application, a shaft body 13 includes two first shafts 131 and one second shaft 132, with the two first shafts 131 respectively connected to both ends of the second shaft 132 to form the shaft body 13. Additionally, please refer to... Figure 2 , Figure 3 and Figure 5As shown, the second shaft 132 is provided with an installation space 132a, and the electrostatic adsorption component 3 is assembled in the installation space 132a, thereby achieving the effect of assembling the electrostatic adsorption component 3 onto the shaft body 13, that is, achieving the effect of assembling the electrostatic adsorption component 3 onto the roller component 1. Additionally, two cleaning components 2 are respectively sleeved on the two first shafts 131, thereby positioning the electrostatic adsorption component 3 between two sets of combined structures (each set of combined structures includes at least one comb body portion 21 and at least one protrusion portion 22).
[0104] For example, in some embodiments of this application, the first connector 11 is integrally formed with the connected first shaft 131 and / or the second connector 12 is integrally formed with the connected first shaft 131. For instance, in one embodiment of this application, the first connector 11 is integrally formed with the connected first shaft 131, and the second connector 12 is integrally formed with the connected first shaft 131. This improves the connection reliability between the first connector 11 and the connected first shaft 131, and also improves the connection reliability between the second connector 12 and the connected first shaft 131. It should be understood that the first connector 11 and the second connector 12 are used for transmission connection to the drive mechanism of the cleaning device 200, thereby achieving the effect of the roller brush 100 rotating. With the improved connection reliability between the first connector 11 and the connected first shaft 131, and with the improved connection reliability between the second connector 12 and the connected first shaft 131, the roller brush 100 has higher reliability during long-term use, which is beneficial for extending the service life of the roller brush 100.
[0105] See Figure 9 As shown, in some embodiments of this application, the peripheral wall of the first shaft 131 is provided with a fixing groove 1310, and part of the structure of the sleeve portion 23 of the cleaning component 2 is adapted to extend into the fixing groove 1310, so as to improve the assembly stability of the cleaning component 2 and the first shaft 131 and reduce the risk of the cleaning component 2 moving relative to the first shaft 131 (e.g., rotating, moving).
[0106] It should be further noted that in the above embodiments, the first shaft 131 and the cleaning component 2 are two independent parts, which are assembled into one unit through a subsequent assembly process. However, this application is not limited to this. For example, in some other embodiments of this application, the cleaning component 2 can be formed on the pre-made first shaft 131 by injection molding. During the injection molding process, the flowing plastic material is better injected into the fixing groove 1310, so that the cleaning component 2 and the first shaft 131 have a stronger adhesive force, and the connection between the cleaning component 2 and the first shaft 131 is more reliable.
[0107] See Figure 3As shown, in some embodiments of this application, the outer peripheral surface of the second shaft 132 is provided with two first limiting flanges 132d, which are spaced apart along the axial direction of the second shaft 132 to form an installation space 132a. When the electrostatic adsorption component 3 is assembled in the installation space 132a, the two first limiting flanges 132d can abut and limit the two sides of the electrostatic adsorption component 3 along the axial direction of the roller component 1. Since the roller brush 100 needs to rotate at high speed during the operation of the cleaning equipment 200, the two first limiting flanges 132d together restrict the installation space 132a, which has a groove structure. When the electrostatic adsorption component 3 is assembled in the installation space 132a, the first limiting flanges 132d effectively limit the electrostatic adsorption component 3 to prevent the electrostatic adsorption component 3 from moving along the axial direction of the roller component 1, thus ensuring the assembly stability of the electrostatic adsorption component 3.
[0108] See Figure 4 As shown, in some embodiments of this application, the roller brush 100 further includes at least one cleaning portion 20, which protrudes outward from the roller member 1 and extends axially along the roller member 1. It can also be understood that the cleaning portion 20 is disposed on the outer periphery of the roller member 1, and extends radially and axially along the roller member 1.
[0109] For example, see Figure 4 As shown, for example, during the cleaning process of the cleaning device 200 for cleaning bed sheets, the roller brush 100 is in a rotating state. When the cleaning part 20, which protrudes from the roller 1, is in contact with the bed sheet, it is equivalent to continuously "patting" the bed sheet. This "patting" causes objects (such as dust, hair, fleas, etc.) attached to the bed sheet to separate from it. At the same time, the negative pressure channel 2013 of the cleaning device 200 is in a negative pressure state, drawing objects into the negative pressure channel 2013 and transporting them to the soiling chamber 2020 through the negative pressure channel 2013. Therefore, the roller brush 100 according to this application is provided with a cleaning part 20 and an electrostatic adsorption component 3, so that the cleaning device 200 can effectively clean the bed sheet and other surfaces awaiting cleaning, improving the cleaning ability of the cleaning device 200 and thus enhancing the user experience.
[0110] See Figures 4 to 6 ,as well as Figure 8 As shown, in some embodiments of this application, the cleaning part 20 is a comb body 21 and / or a protrusion 22. It can also be understood that in one embodiment, the cleaning part 20 may only be a comb body 21; or in another embodiment, the cleaning part 20 may only be a protrusion 22; or in yet another embodiment, the cleaning part 20 may be both a comb body 21 and a protrusion 22. For example, see [reference needed]. Figures 4 to 6 ,as well as Figure 8As shown, in some embodiments of this application, the cleaning part 20 is of two types: comb body part 21 and protrusion part 22.
[0111] See Figures 4 to 6 ,as well as Figure 8 As shown, in some embodiments of this application, the comb body 21 includes a plurality of comb teeth 211, which are arranged sequentially along the axial direction of the roller member 1. That is, the comb body 21 extends along the axial direction of the roller member 1, and adjacent comb teeth 211 are spaced apart in the extending direction of the comb body 21. The protrusion 22 is constructed as an elongated strip, which extends along the axial direction of the roller member 1, and adjacent comb body parts 21 and protrusions 22 are spaced apart in the circumferential direction of the brush 100.
[0112] For example, see Figures 4 to 6 ,as well as Figure 8 As shown, in one embodiment of this application, the roller brush 100 is provided with six comb sections 21 and six protrusions 22. Every three comb sections 21 and every three protrusions 22 are divided into a group of combined structures, and the six comb sections 21 and six protrusions 22 are divided into two groups of combined structures. Along the axial direction of the roller 1, the two groups of combined structures are respectively arranged on both sides of the roller 1, and an electrostatic adsorption member 3 is provided between the two groups of combined structures. In each group of combined structures, a protrusion 22 is provided between two adjacent comb sections 21, or it can be understood that a comb section 21 is provided between two adjacent protrusions 22.
[0113] During the cleaning process of the cleaning equipment 200, the roller brush 100 is in a rotating state, and the protrusions 22 continuously "beat" the bed sheet, causing objects (such as dust, hair, fleas, etc.) attached to the bed sheet to separate from it. Because the roller brush 100 is continuously rotating, the elongated, sheet-like protrusions 22 act as "fan blades," blowing the detached objects towards the suction inlet of the upstream channel section 2013a. Simultaneously, the negative pressure channel 2013 of the cleaning equipment 200 is under negative pressure, drawing objects into the negative pressure channel 2013 and transporting them to the waste chamber 2020.
[0114] Since the comb body 21 includes multiple comb teeth 211, and adjacent comb teeth 211 are spaced apart, when the roller brush 100 is rotating and comes into contact with soft, fine materials such as hair, the comb body 21 wraps around the soft, fine materials such as hair, causing them to adhere to the roller brush 100. Furthermore, since the comb body 21 and protrusions 22 are spaced apart along the circumference of the roller brush 100, the protrusions 22 provide support for the soft, fine materials such as hair adhering to the roller brush 100 in the radial direction of the roller brush 100, thereby preventing the soft, fine materials such as hair from sticking to the root of the comb body 21. Thus, when cleaning the soft, fine materials such as hair wrapped around the roller brush 100, the user can easily remove the soft, fine materials such as hair from the roller brush 100 by inserting their fingers into the space formed between the comb body 21 and the protrusions 22. Alternatively, users can use tools such as scissors to cut soft, fine materials such as hair through the space formed between the comb body 21 and the protrusion 22, thus easily cleaning away soft, fine materials such as hair entangled in the roller brush 100. It is also worth noting that as the roller brush 100 rotates, the comb body 21 extends deep into the bed sheet, effectively scraping away soft, fine materials such as hair attached to the bed sheet.
[0115] Therefore, the roller brush 100 according to this application is provided with a comb body 21, a protrusion 22 and an electrostatic adsorption member 3, so that the cleaning device 200 equipped with the roller brush 100 of this application can effectively clean the bed sheet, improve the cleaning ability of the cleaning device 200, and thus improve the user experience.
[0116] See Figure 6 As shown, in some embodiments of this application, the radial dimension of the end of the comb body 21 away from the roller member 1 is D1, the radial dimension of the end of the protrusion 22 away from the roller member 1 is D2, and the radial dimension of the end of the electrostatic adsorption member 3 away from the roller member 1 is D3, satisfying the relationship: D3 < D1 < D2.
[0117] For example, in one embodiment of this application, D2 = 33 mm, D1 = 31 mm, and D3 = 29 mm. Since D2 > D1 > D3, during the rotation of the roller brush 100, the part of the roller brush 100 that first contacts the bed sheet is the protrusion 22, thereby "beating" the bed sheet through the protrusion 22 to promote the separation of objects attached to the bed sheet (such as dust, hair, fleas, etc.) from the bed sheet. Along the radial direction of the roller brush 100, the end of the protrusion 22 away from the roller 1 can deform. This reduces the resistance to the rotation of the roller brush 100 while ensuring that the protrusion 22 effectively beats the bed sheet, so that the roller brush 100 has a higher rotation speed. During the rotation of the roller brush 100, the protrusion 22 generates a large blowing force, which is beneficial for the protrusion 22 to blow the objects detached from the bed sheet toward the suction port of the upstream channel section 2013a. Furthermore, since the end of the protrusion 22 away from the roller 1 can deform, the radial dimension of the protrusion 22 in the deformed state is smaller than the radial dimension of the comb body 21, so that the comb body 21 can extend into the deep layer of the bed sheet, thereby enabling the comb body 21 to effectively scrape away soft and fine materials such as hair attached to the bed sheet.
[0118] In addition, along the radial direction of the roller brush 100, the end of the comb body 21 away from the roller member 1 can deform. This not only avoids hard contact between the comb body 21 and the deep area of the bed sheet, thereby reducing the resistance during the rotation of the roller brush 100, but also reduces the distance between the electrostatic adsorption member 3 and the hair attached to it. This is conducive to the generation of static electricity between the electrostatic adsorption member 3 and the hair, so that the electrostatic adsorption member 3 can adsorb the hair.
[0119] Therefore, according to the roller brush 100 of this application, since D2 > D1 > D3, the protrusion 22 contacts the bed sheet first, followed by the comb body 21, and then the electrostatic adsorption member 3. This facilitates the effective and thorough cleaning of the bed sheet by the roller brush 100, so that the cleaning device 200 equipped with the roller brush 100 of this application has a high cleaning ability, thereby improving the user experience.
[0120] In some of the above embodiments, the relationship D2 > D1 > D3 is used as an example for illustration, but this application is not limited thereto. For example, in other embodiments of this application, the relationship D1 > D2 > D3 is satisfied. For example, in one embodiment of this application, D1 = 35 mm, D2 = 33 mm, and D3 = 29 mm. Since D1 > D2 > D3, during the rotation of the roller brush 100, the part of the roller brush 100 that first contacts the bed sheet is the comb body 21. During the contact with the bed sheet, the comb body 21 can not only "beat" the bed sheet to promote the separation of objects (such as dust, hair, fleas, etc.) attached to the bed sheet from the bed sheet, but also better "grab" fine filamentous objects such as hair on the bed sheet.
[0121] It should also be noted that in some embodiments of this application, the dimensional relationship between the comb body 21, the protrusion 22, and the electrostatic adsorption member 3 satisfies the following formula: D3 < D1 < D2, and also satisfies the following formula: 8 mm ≤ D2 - D3 ≤ 12 mm. That is, in the radial direction of the roller brush 100, the distance between the radial dimension of the end of the protrusion 22 away from the roller 1 and the radial dimension of the end of the electrostatic adsorption member 3 away from the roller 1 is controlled within the range of 8 mm to 12 mm. Of course, it can also be understood that the distance between the radial dimension of the end of the electrostatic adsorption member 3 away from the roller 1 and the outer contour of the roller brush 100 in the radial direction is controlled within the range of 8 mm to 12 mm. This ensures that the electrostatic adsorption member 3 remains in contact with the surface to be cleaned (e.g., a bed sheet), thereby facilitating effective electrostatic adsorption by the electrostatic adsorption member 3. For example, the difference between D2 and D3 can be 8 mm, 8.5 mm, 9 mm, 9.5 mm, 10 mm, 10.5 mm, 11 mm, 11.5 mm, 12 mm, or 12.5 mm.
[0122] Alternatively, in some embodiments of this application, the dimensional relationship between the comb body 21, the protrusion 22, and the electrostatic adsorption member 3 satisfies the following formula: D3 < D2 < D1, and also satisfies the following formula: 8 mm ≤ D1 - D3 ≤ 12 mm. That is, in the radial direction of the roller brush 100, the distance between the radial dimension of the end of the comb body 21 away from the roller member 1 and the radial dimension of the end of the electrostatic adsorption member 3 away from the roller member 1 is controlled within the range of 8 mm to 12 mm. Of course, it can also be understood that the distance between the radial dimension of the end of the electrostatic adsorption member 3 away from the roller member 1 and the outer contour of the roller brush 100 in the radial direction is controlled within the range of 8 mm to 12 mm. This ensures that the electrostatic adsorption member 3 remains in contact with the surface to be cleaned (e.g., a bed sheet), thereby facilitating effective electrostatic adsorption by the electrostatic adsorption member 3. For example, the difference between D2 and D3 can be 8 mm, 8.5 mm, 9 mm, 9.5 mm, 10 mm, 10.5 mm, 11 mm, 11.5 mm, 12 mm, or 12.5 mm.
[0123] Furthermore, it should be noted that the radial dimension (D3) of the end of the electrostatic adsorption component 3 furthest from the roller component 1 is greater than or equal to the maximum outer contour of the roller component 1 in the radial direction. That is, in the radial direction of the roller brush 100, the outer peripheral surface of the electrostatic adsorption component 3 is flush with the outermost outer peripheral surface of the roller component 1, or the outer peripheral surface of the electrostatic adsorption component 3 protrudes beyond the outermost outer peripheral surface of the roller component 1. This avoids the situation where the roller component 1 prevents the electrostatic adsorption component 3 from maintaining contact with the surface to be cleaned (e.g., a bed sheet), thus facilitating effective electrostatic adsorption by the electrostatic adsorption component 3.
[0124] For example, see Figure 5 As shown in the figure, in one embodiment of this application, the electrostatic adsorption member 3 is disposed in the mounting space 132a defined by the two first limiting edges 132d in the roller member 1. See also... Figure 6As shown, when the electrostatic adsorption component 3 is assembled on the roller component 1, the radial dimension of the end of the electrostatic adsorption component 3 furthest from the roller component 1 in the radial direction is D3, and the radial dimension of the first limiting stop 132d furthest from the end of the roller component 1 is D4, satisfying the relationship: D3 ≥ D4. This can also be understood as: when D3 = D4, the outer circumferential surface of the electrostatic adsorption component 3 is flush with the outer circumferential surface of the first limiting stop 132d in the radial direction; when D3 > D4, the outer circumferential surface of the electrostatic adsorption component 3 protrudes beyond the outer circumferential surface of the first limiting stop 132d in the radial direction. Thus, in the radial direction of the roller brush 100, since the radial dimension of the end of the electrostatic adsorption component 3 furthest from the roller component 1 is greater than or equal to the radial dimension of the end of the first limiting stop 132d furthest from the roller component 1, the electrostatic adsorption component 3 remains in contact with the surface to be cleaned (e.g., a bed sheet), thereby facilitating effective electrostatic adsorption by the electrostatic adsorption component 3.
[0125] In some embodiments of this application, the comb body 21, the protrusion 22, and the electrostatic adsorption member 3 can all be made of relatively soft materials, such as nylon 6 (also known as polyamide 6) or nylon-66 (also known as polyadiohexylenediamine).
[0126] The specific structures of the protrusions 22 and the electrostatic adsorption element 3 can be soft bristles, fabric, felt, fine hair, or pile. The softness can be determined based on the pliability of the bristles or pile used. The shape and size of the bristles and / or pile can be selected based on the desired application. In one embodiment, the density of the bristles and / or pile in the electrostatic adsorption element 3 is greater than the density of the bristles and / or pile in the protrusions 22, and the density of the bristles and / or pile in the protrusions 22 is greater than the density of the comb teeth 211 in the comb body 21. Furthermore, the diameter of the bristles and / or pile in the electrostatic adsorption element 3 is smaller than the density of the bristles and / or pile in the protrusions 22, and the diameter of the bristles and / or pile in the electrostatic adsorption element 3 is smaller than the diameter of the comb teeth 211.
[0127] More specifically, for example, in some embodiments, the length of the bristles or down in the electrostatic adsorption element 3 may be between 0.5 mm and 10 mm (e.g., 2 mm to 5 mm), and the diameter may be between 0.01 mm and 0.04 mm (e.g., 0.01 mm to 0.03 mm). According to some embodiments, the bristles and / or down may have a length of 3 mm and a diameter of 0.02 mm. The bristles and / or down may have any shape. For example, the bristles and / or down may be straight, curved, and / or may have a composite shape.
[0128] According to one embodiment, the bristles and / or down may have a generally U-shaped and / or Y-shaped shape. The U-shaped and / or Y-shaped bristles and / or down increase the number of contact points with the surface to be cleaned (e.g., a bed sheet), thus enhancing the friction between the electrostatic adsorption element 3 and the surface to be cleaned, thereby generating static electricity. Of course, the bristles and / or down can also be made of other materials.
[0129] It should be further noted that, in one of the above embodiments, the density of the bristles and / or down in the electrostatic adsorption member 3 is greater than the density of the bristles and / or down in the protrusion 22, and the density of the bristles and / or down in the protrusion 22 is greater than the density of the comb teeth 211 in the comb body 21. Furthermore, the diameter of the bristles and / or down in the electrostatic adsorption member 3 is smaller than the density of the bristles and / or down in the protrusion 22, and the diameter of the bristles and / or down in the electrostatic adsorption member 3 is smaller than the diameter of the comb teeth 211. This design facilitates the concentration of static electricity in the electrostatic adsorption member 3.
[0130] See Figure 5 , Figure 7 and Figure 8 As shown, in some embodiments of this application, the roller brush 100 includes a cleaning member 2, the cleaning member 2 includes a sleeve portion 23, and the cleaning portion 20 (i.e., the comb portion 21 and / or the protrusion portion 22) of the roller brush 100 is disposed on the outer periphery of the sleeve portion 23. The sleeve portion 23 is adapted to sleeve the roller member 1, so that the cleaning member 2 is sleeved on the outside of the roller member 1.
[0131] For example, see Figure 4 and Figure 5 ,as well as Figure 7 and Figure 8 As shown, in some embodiments of this application, the roller brush 100 is provided with two cleaning components 2, each of which includes a sleeve portion 23, three comb portions 21, and three protrusions 22. The three comb portions 21 and three protrusions 22 are all fixedly disposed on the outer peripheral surface of the sleeve portion 23. Since the sleeve portion 23 is a hollow cylindrical structure and is suitable for fitting onto the roller component 1, the cleaning component 2 can be fitted and assembled onto the roller component 1. By providing the sleeve portion 23, and with both the comb portions 21 and the protrusions 22 disposed on the sleeve portion 23, when the comb portions 21 and / or the protrusions 22 are damaged, replacing the cleaning component 2 will achieve the effect of replacing the damaged comb portions 21 and / or the protrusions 22.
[0132] Additionally, it should be noted that the cleaning component 2 can be a one-piece molded part or a two-piece molded part. For example, in some embodiments of this application, the comb body 21 and the protrusion 22 need to meet the requirement of deformability. Therefore, in the process of manufacturing the cleaning component 2, the sleeve part 23 can be molded in one piece using a material with high plasticity, and then the comb body 21 and the protrusion 22 can be molded in a second time on the outer peripheral surface of the sleeve part 23 using a material with deformability (such as elastic plastic, for example, polyester material).
[0133] In some other embodiments of this application, the comb body 21 and the protrusion 22 can be directly formed on the outer peripheral surface of the roller 1. It can also be understood that the root of the comb body 21 and the root of the protrusion 22 are directly connected to the outer peripheral surface of the roller 1. For example, the comb body 21 and the protrusion 22 can be formed on the outer surface of the manufactured roller 1 using an injection molding process.
[0134] Combination Figure 2 , Figure 3 and Figure 9 As shown, the flange 132b of the second shaft 132 is provided with at least one receiving notch 132c, which is used to receive the cleaning part 20 (i.e., the comb part 21 and / or the protrusion 22) so that at least a portion of the cleaning part 20 near the second shaft 132 is located in the receiving notch 132c in the axial direction of the roller brush 100.
[0135] For example, see Figure 6 As shown in some embodiments of this application, each cleaning component 2 is provided with three protrusions 22, and the flange 132b of the second shaft 132 can be provided with three receiving notches 132c. When the cleaning component 2 is assembled to the first shaft 131, the three protrusions 22 correspond one-to-one with the three receiving notches 132c. In the radial direction of the roller brush 100, the sleeve portion 23 is located inside the flange 132b. By providing receiving notches 132c for receiving the protrusions 22 in the flange 132b, a portion of the structure of the protrusions 22 overlaps with the flange 132b along the circumference of the roller brush 100. With this design, soft and fine materials such as hair are prevented from getting caught in the inner side of the flange 132b during the rotation of the roller brush 100. For example, soft and fine materials such as hair are prevented from getting caught in the gap between the flange 132b and the sleeve portion 23, so that soft and fine materials such as hair can be wrapped around the outer side of the flange 132b and / or the upper end of the protrusion 22, so that the user can clean up soft and fine materials such as hair.
[0136] Furthermore, since the flange 132b is provided with a receiving notch 132c for accommodating the protrusion 22, a portion of the protrusion 22 overlaps with the second shaft 132 in the axial direction of the roller brush 100. This can also be understood as a portion of the protrusion 22 being embedded within the second shaft 132 in the axial direction of the roller brush 100. This facilitates the gathering of soft, fine materials such as hair towards the second shaft 132 during the rotation of the roller brush 100 to clean the surface. It should be understood that... (Refer to...) Figure 1 As shown, in some embodiments of this application, when the roller brush 100 is applied to the cleaning device 200, the second shaft 132 is positioned directly opposite the suction port of the upstream channel section 2013a. Since the roller brush 100 according to this application is advantageous in gathering soft and slender materials such as hair at the second shaft 132, it is beneficial for soft and slender materials such as hair to be drawn into the negative pressure channel 2013 from the suction port of the upstream channel section 2013a, thereby improving the cleaning ability of the cleaning device 200.
[0137] Combination Figure 2 As shown, in some embodiments of this application, the width of the receiving notch 132c along the circumferential direction of the second axis 132 (i.e., the circumferential direction of the roller brush 100) is greater than the thickness of the cleaning part 20. This design allows the cleaning part 20 to have a certain swing angle during the rotation of the roller brush 100, which is beneficial for changing the radial dimension of the cleaning part 20 and avoids wear caused by excessive swinging of the cleaning part 20. In other words, the receiving notch 132c can effectively control the swing amplitude of the cleaning part 20, improving its durability.
[0138] See Figure 3 As shown, in some embodiments of this application, the outer peripheral surface of the second shaft 132 is provided with two first limiting flanges 132d, which are spaced apart along the axial direction of the second shaft 132 to form an installation space 132a. When the electrostatic adsorption component 3 is assembled in the installation space 132a, the two first limiting flanges 132d can abut and limit the two sides of the electrostatic adsorption component 3 along the axial direction of the roller component 1. Since the roller brush 100 needs to rotate at high speed during the operation of the cleaning equipment 200, the two first limiting flanges 132d together restrict the installation space 132a, which has a groove structure. When the electrostatic adsorption component 3 is assembled in the installation space 132a, the first limiting flanges 132d effectively limit the electrostatic adsorption component 3 to prevent the electrostatic adsorption component 3 from moving along the axial direction of the roller component 1, thus ensuring the assembly stability of the electrostatic adsorption component 3.
[0139] See Figure 3As shown, in some embodiments of this application, the second shaft 132 is further provided with a guide 132e, which connects the flange 132b and the first limiting stop 132d, and is located between two adjacent receiving notches 132c along the circumference of the second shaft 132. It should be further noted that, referring to... Figure 2 As shown, the receiving notch 132c is used to receive the protrusion 22, thus forming a wavy space above the flange 132b. This reduces the adhesion of soft, slender materials such as hair, preventing them from wrapping around the second shaft 132. Under the negative pressure of the negative pressure channel 2013, the soft, slender materials are drawn from the suction port of the upstream channel section 2013a through the negative pressure channel 2013 into the dirt chamber 2020 of the cleaning device 200. It is worth noting that in one embodiment of this application, taking the guide member 132e as a triangular plate as an example, the inclined side of the guide member 132e guides the soft, slender materials such as hair, causing them to slide radially inwards in the second shaft 132, which helps reduce the adhesion of the soft, slender materials.
[0140] Combination Figures 7 to 9 As shown, in some embodiments of this application, the second shaft 132 includes an assembly wheel 1321 and an annular mounting body 1322, with the annular mounting body 1322 sleeved on the assembly wheel 1321. Along the axial direction of the assembly wheel 1321, both ends of the assembly wheel 1321 are connected to the first shaft 131, and the annular mounting body 1322 is provided with an installation space 132a and a receiving notch 132c.
[0141] For example, in some embodiments of this application, see [reference]. Figure 7 As shown, the assembly wheel body 1321 and the two first shaft bodies 131 are integrally formed parts, meaning the two first shaft bodies 131 are permanently fixedly connected to both ends of the assembly wheel body 1321. Figure 9 and Figure 10 As shown, the annular mounting body 1322 includes a first mounting body 13221 and a second mounting body 13222. The main structure of the first mounting body 13221 and the second mounting body 13222 is arc-shaped. The first mounting body 13221 and the second mounting body 13222 are both fixedly assembled to the assembly wheel body 1321, so that the first mounting body 13221 and the second mounting body 13222 are combined to form an annular mounting body 1322, which is sleeved on the assembly wheel body 1321.
[0142] For example, when the roller brush 100 rotates to clean hair on the bed sheet, the hair can move through the protrusion 22 to the annular mounting body 1322, be transferred by the guide 132e, and then be attracted by the electrostatic adsorption member 3.
[0143] See Figure 9 As shown, the outer peripheral surface of the annular mounting body 1322 is provided with two first limiting flanges 132d with annular structure. Along the axial direction of the annular mounting body 1322, the two annular mounting bodies 1322 are spaced apart to form an installation space 132a. The installation space 132a is used to assemble the electrostatic adsorption component 3, that is, the electrostatic adsorption component 3 is suitable for assembly on the annular mounting body 1322, thereby realizing the effect of assembling the annular mounting body 1322 on the roller component 1.
[0144] In addition, combined Figures 9 to 12 As shown, the assembly wheel body 1321 is provided with a screw hole 13210, and the annular mounting body 1322 is provided with a corresponding countersunk hole 13220, which is located within the mounting space 132a. The second shaft body 132 also includes a screw 13223, which is adapted to pass through the countersunk hole 13220 to be screwed into the screw hole 13210. Thus, the annular mounting body 1322 is fixedly assembled to the assembly wheel body 1321 by the screw 13223. It is worth noting that by setting the position of the screw hole 13210 within the mounting space 132a, when the electrostatic adsorption component 3 is assembled within the mounting space 132a, the electrostatic adsorption component 3 covers the screw 13223, which not only improves the aesthetics but also avoids the accumulation of dust and debris at the countersunk hole 13220.
[0145] See Figure 9 As shown, in some embodiments of this application, along the axial direction of the annular mounting body 1322, both sides of the annular mounting body 1322 are provided with a flange 132b with a circular structure. The axial direction of the flange 132b extends along the axial direction of the annular mounting body 1322, and three sequentially arranged receiving notches 132c are also provided in the circumferential direction of each flange 132b. The receiving notches 132c are used to receive the protrusion 22.
[0146] See Figure 10 As shown, in some embodiments of this application, the first mounting body 13221 is provided with one of the positioning groove 151 and the positioning protrusion 152, and the second mounting body 13222 is provided with the other of the positioning groove 151 and the positioning protrusion 152.
[0147] For example, see Figure 7As shown, along the extension direction of the first mounting body 13221, which is constructed in an arc shape, positioning protrusions 152 are provided at both ends of the first mounting body 13221. Additionally, along the extension direction of the second mounting body 13222, which is also constructed in an arc shape, positioning grooves 151 are provided at both ends of the second mounting body 13222. When the first mounting body 13221 and the second mounting body 13222 are assembled to form an annular mounting body 1322, the positioning protrusions 152 are adapted to extend into the positioning grooves 151. The positioning protrusions 152 and the positioning grooves 151 achieve the positioning and assembly effect of the first mounting body 13221 and the second mounting body 13222, thereby improving the assembly accuracy of the first mounting body 13221 and the second mounting body 13222.
[0148] For example, both the first mounting body 13221 and the second mounting body 13222 are fixedly assembled to the assembly wheel body 1321 by bolts. During the assembly of the annular mounting body 1322 to the assembly wheel body 1321, the operator can first assemble and fix the first mounting body 13221 to the assembly wheel body 1321. Then, during the assembly of the second mounting body 13222 to the assembly wheel body 1321 and its engagement with the first mounting body 13221, the positioning protrusion 152 and the positioning groove 151 provide a positioning fit, thereby limiting the relative positional relationship between the first mounting body 13221 and the second mounting body 13222. This allows for quick positioning of the mounting holes in the second mounting body 13222 and the assembly wheel body 1321, facilitating the bolt assembly and fixing of the second mounting body 13222 to the assembly wheel body 1321. In addition, the first mounting body 13221 and the second mounting body 13222 are fixedly connected by screws, which not only simplifies the structural design of the first mounting body 13221 and the second mounting body 13222, but also facilitates the molding of the first mounting body 13221 and the second mounting body 13222.
[0149] Combination Figures 7 to 10 As shown, in some embodiments of this application, the inner wall of the first mounting body 13221 and / or the inner wall of the second mounting body 13222 is provided with one of the axial limiting groove 141 and the axial limiting protrusion 142, and the assembly wheel body 1321 is provided with the other of the axial limiting groove 141 and the axial limiting protrusion 142. The axial limiting protrusion 142 is adapted to be assembled in the axial limiting groove 141.
[0150] For example, see Figure 8 and Figure 10As shown, in one embodiment of this application, both the inner wall of the first mounting body 13221 and the inner wall of the second mounting body 13222 are provided with axial limiting grooves 141. The axial limiting grooves 141 of the first mounting body 13221 extend in the extending direction, and the axial limiting grooves 141 of the second mounting body 13222 also extend in the extending direction. Additionally, the outer circumferential surface of the assembly wheel 1321 is provided with an annular axial limiting protrusion 142, which extends circumferentially along the assembly wheel 1321.
[0151] When the first mounting body 13221 is assembled onto the assembly wheel body 1321, the axial limiting protrusion 142 provided on the assembly wheel body 1321 is adapted to extend into the axial limiting groove 141 provided on the first mounting body 13221, and in the axial direction of the assembly wheel body 1321, the groove wall of the axial limiting groove 141 is adapted to abut against and limit the axial limiting protrusion 142, thereby achieving the effect of axial upper limit engagement between the first mounting body 13221 and the assembly wheel body 1321 on the second shaft body 132. Similarly, by providing the axial limiting groove 141 on the second mounting body 13222, the second mounting body 13222 and the assembly wheel body 1321 achieve the effect of axial upper limit engagement between the second mounting body 13222 and the assembly wheel body 1321 on the second shaft body 132 when the second mounting body 13222 is assembled onto the assembly wheel body 1321. Since both the first mounting body 13221 and the second mounting body 13222 are provided with axial limiting grooves 141, the assembly stability of the assembly wheel body 1321 and the annular mounting body 1322 is further improved.
[0152] Combination Figure 7 and Figure 8 As shown, in some embodiments of this application, the inner walls of the first mounting body 13221 and the second mounting body 13222 are provided with a second limiting stop 1411 and a third limiting stop 1412. Along the axial direction of the annular mounting body 1322, the second limiting stop 1411 and the third limiting stop 1412 form an axial limiting groove 141 at intervals. It can also be understood that the second limiting stop 1411 and the third limiting stop 1412 are respectively constructed as the two side walls of the axial limiting groove 141.
[0153] Additionally, the second limiting stop 1411 and / or the third limiting stop 1412 are provided with circumferential limiting protrusions 161, and the mounting wheel body 1321 is provided with circumferential limiting grooves 162. The circumferential limiting protrusions 161 are adapted to be fitted into the circumferential limiting grooves 162. For example, see [reference needed]. Figure 5 and Figure 7As shown, in one embodiment of this application, the second limiting stop 1411 is provided with a circumferential limiting protrusion 161. The circumferential limiting protrusion 161 extends radially along the annular mounting body 1322. In this way, when the annular mounting body 1322 and the mounting wheel body 1321 are assembled and engaged, since the circumferential limiting protrusion 161 is located in the circumferential limiting groove 162, the circumferential limiting protrusion 161 and the circumferential limiting groove 162 abut and limit the engagement, thereby achieving the effect of circumferential limiting engagement between the annular mounting body 1322 and the mounting wheel body 1321 on the second shaft body 132.
[0154] Combination Figure 7 and Figure 8 As shown, in some embodiments of this application, along the circumference of the annular mounting body 1322, correspondingly provided second limiting flanges 1411 form clamping spaces 172 at intervals, and along the axial direction of the annular mounting body 1322, third limiting flanges 1412 are provided outside the second limiting flanges 1411. The assembly wheel body 1321 is provided with circumferential baffles 171, which extend along the axial direction of the assembly wheel body 1321 to connect between two adjacent axial limiting protrusions 142, and the circumferential baffles 171 are disposed within the clamping spaces 172.
[0155] For example, in combination Figure 7 and Figure 8 As shown, in one embodiment of this application, along the circumferential direction of the annular mounting body 1322, the second limiting stop 1411 disposed on the first mounting body 13221 and the second limiting stop 1411 disposed on the second mounting body 13222 are correspondingly adjacent, and in the circumferential direction of the annular mounting body 1322, the two adjacent second limiting stop 1411 are spaced apart, so that the two adjacent second limiting stop 1411 form a clamping space 172. Furthermore, in the assembly wheel body 1321, the assembly wheel body 1321 is provided with a circumferential baffle 171, the circumferential baffle 171 is constructed as a strip, and the circumferential baffle 171 extends along the axial direction of the assembly wheel body 1321. In this assembled state, with the annular mounting body 1322 and the assembly wheel body 1321 in place, the circumferential stop 171 is located within the clamping space 172. Since the circumferential stop 171 is sandwiched between two adjacent second limiting edges 1411 in the circumferential direction of the annular mounting body 1322, the two second limiting edges 1411 abut against the circumferential stop 171, thereby achieving the effect of upper-limiting engagement between the annular mounting body 1322 and the assembly wheel body 1321 in the circumferential direction of the second shaft body 132. Furthermore, along the axial direction of the annular mounting body 1322, a third limiting edge 1412 is disposed outside the second limiting edges 1411 to prevent interference between the third limiting edge 1412 and the circumferential stop 171.
[0156] See Figure 9As shown, in some embodiments of this application, the second shaft 132 is a one-piece molded part, and the second shaft 132 is provided with an installation space 132a and a flange 132b, and a receiving notch 132c is provided in the flange 132b. See also... Figure 9 As shown, the first shaft 131 and the second shaft 132 can be separate components, and the first shaft 131 and the second shaft 132 can be assembled by a plug-in connection. However, this application is not limited to this; for example, see [reference needed]. Figure 3 As shown, the first shaft 131 and the second shaft 132 are a single piece.
[0157] See Figures 1 to 4 As shown, a cleaning device 200 according to some embodiments of this application includes a housing 201, a waste storage unit 202, a negative pressure generator 203, and a roller brush 100. The housing 201 includes a main body 2011 and a brush portion 2012. The waste storage unit 202 and the negative pressure generator 203 are both disposed in the main body 2011. The brush portion 2012 is provided with a roller brush cavity 20120 and an anti-rolling member 20121, with the anti-rolling member 20121 disposed at the suction inlet of the roller brush cavity 20120. A negative pressure channel 2013 is provided within the main body 2011, connecting the roller brush cavity 20120 and the waste cavity 2020 of the waste storage unit 202. The negative pressure generator 203 is configured to drive fluid to flow along the negative pressure channel 2013 from the roller brush cavity 20120 to the waste cavity 2020. The roller brush 100 is assembled in the roller brush cavity 20120, and along the axial direction of the roller brush 100, the electrostatic adsorption component 3 is located between two adjacent anti-rolling components 20121.
[0158] For example, see Figures 1 to 4 As shown, in some embodiments of this application, when the cleaning device 200 is in operation, the roller brush 100 rotates in a self-rotating manner within the roller brush cavity 20120. For example, the roller brush 100 can be rotated using the negative pressure airflow generated by the negative pressure generator 203 (when the negative pressure generator 203 is working, the airflow flows from the outside of the roller brush cavity 20120 into the roller brush cavity 20120 and flows along the negative pressure channel 2013 to the dirt cavity 2020). Alternatively, the cleaning device 200 may also include a drive mechanism, which is connected to the roller 1 of the roller brush 100 in a driving manner, so that the roller brush 100 rotates in a self-rotating manner within the roller brush cavity 20120 under the driving action of the drive mechanism.
[0159] Because the electrostatic adsorption element 3 is located on the roller 1, the roller brush 100, in its rotating state, causes the electrostatic adsorption element 3 to continuously move in a circular motion. The moving electrostatic adsorption element 3 generates static electricity through friction with the surface to be cleaned (e.g., a bed sheet), causing fine particles (e.g., dust, hair) on the surface to be cleaned to be adsorbed onto the electrostatic adsorption element 3 due to electrostatic adsorption force. Simultaneously, when the cleaning equipment 200 is in operation, the negative pressure generator 203 generates negative pressure, causing gas to flow from the outside of the roller brush cavity 20120 into the roller brush cavity 20120, and then flow along the negative pressure channel 2013 towards the dirt chamber 2020. Therefore, the fine particles adsorbed by the electrostatic adsorption element 3 due to electrostatic adsorption force eventually flow into the dirt chamber 2020 along with the gas flowing due to the negative pressure.
[0160] For example, see Figure 1 As shown, in one embodiment of this application, the brush portion 2012 has four anti-rolling members 20121 disposed on the inlet side of the roller brush cavity 20120. The anti-rolling members 20121 can be constructed as baffles. When the negative pressure generator 203 generates negative pressure airflow, the anti-rolling members 20121 can effectively prevent objects such as bed sheets from being sucked into the roller brush cavity 20120, thereby preventing bed sheets and other objects from rolling around on the roller brush 100. In addition, combined with Figures 1 to 3 As shown, when the roller brush 100 is assembled inside the roller brush cavity 20120, the electrostatic adsorption component 3 is located between two adjacent anti-rolling components 20121 in the axial direction of the roller brush 100, thus reducing the influence of the anti-rolling component 20121 on the electrostatic effect. It should be understood that, since the outer diameter of the electrostatic adsorption component 3 is non-deformable and relatively large, if the electrostatic adsorption component 3 and the anti-rolling component 20121 overlap in the axial direction, large particles can easily get stuck between the two (i.e., the electrostatic adsorption component 3 and the anti-rolling component 20121).
[0161] In summary, the cleaning device 200 according to this application includes a housing 201, a waste storage unit 202, a negative pressure generator 203, and a roller brush 100. The brush portion 2012 of the housing 201 is provided with a roller brush cavity 20120 and an anti-rolling member 20121 located at its suction inlet. The roller brush 100 is assembled within the roller brush cavity 20120, and the electrostatic adsorption member 3 on its roller 1 is axially positioned between two adjacent anti-rolling members 20121. During operation, the rotation of the roller brush 100 causes the electrostatic adsorption member 3 to generate static electricity through friction, adsorbing fine particles; the negative pressure generator 203 drives airflow along the negative pressure channel 2013 to transport the adsorbed material to the waste storage cavity 2020. The anti-rolling member 20121 prevents objects from being sucked into the roller brush cavity 20120, and the electrostatic adsorption member 3 and the anti-rolling member 20121 are offset axially to avoid large particles getting stuck. Therefore, the cleaning equipment 200 according to this application not only has better cleaning capabilities, but also ensures the reliability of the cleaning equipment 200 in use, thereby improving the user experience.
[0162] See Figures 1 to 3 As shown, in some embodiments of this application, the negative pressure channel 2013 includes an upstream channel section 2013a and a downstream channel section 2013b. The upstream channel section 2013a connects the brush chamber 20120 and the waste chamber 2020, while the downstream channel section 2013b connects the waste chamber 2020 and the negative pressure generator 203. Thus, when the negative pressure generator 203 is in operation, the driving gas first flows into the brush chamber 20120 from the outside, and then sequentially flows along the upstream channel section 2013a, the waste chamber 2020, and the downstream channel section 2013b. When the particulate matter flowing with the airflow passes through the waste chamber 2020, the waste storage device 202 can intercept the particulate matter in the waste chamber 2020 and only allow gas to flow from the waste chamber 2020 into the downstream channel section 2013b. Furthermore, along the extension direction of the upstream channel section 2013a, the suction port of the upstream channel section 2013a is positioned opposite to the electrostatic adsorption component 3 in the direction of fluid flow. This allows for more effective use of negative pressure airflow to draw in the substances gathered on the electrostatic adsorption component 3, thereby enhancing the cleaning capability of the cleaning equipment 200.
[0163] See Figure 1 As shown, in some embodiments of this application, the cleaning device 200 may further include a lamp assembly 204 disposed at the bottom of the housing 201. The lamp assembly 204 includes at least an ultraviolet (UV) lamp core configured to emit UV light for disinfection. For example, the UV lamp core emits UV light to disinfect and sterilize bed sheets, and can also disinfect mites in the bed sheets. Additionally, the lamp assembly 204 may also include an LED lighting core configured for illumination.
[0164] See Figure 3 As shown, in some embodiments of this application, the lower boundary of the electrostatic adsorption member 3 is located below the anti-rolling member 20121 in the height direction of the housing 201. In other words, the electrostatic adsorption member 3 protrudes outward from the anti-rolling member 20121 in the height direction of the housing 201. This ensures that the electrostatic adsorption member 3 is in contact with the surface to be cleaned (such as a bed sheet) when the cleaning device 200 is placed on it. That is, the electrostatic adsorption member 3 provides support for the housing 201 in the height direction. Thus, during the movement of the cleaning device 200, the electrostatic adsorption member 3 acts as a wheel, thereby reducing the driving force required for the user to move the cleaning device 200.
[0165] See Figure 3As shown, in some embodiments of this application, the main body 2011 is provided with a handle 20110. This allows the user to grip the cleaning device 200 via the handle 20110. This facilitates picking up the cleaning device 200 and allows the user to move the cleaning device 200 across the surface to be cleaned.
[0166] See Figure 3 As shown, in some embodiments of this application, in the moving direction of the cleaning device 200, the distance between the midpoint of the handle 20110 and the electrostatic adsorption member 3 is L1, and the length of the handle 20110 is L2, satisfying the relationship: L1 < 2L2. For example, see [reference needed]. Figure 3 As shown, the cleaning device 200 moves along the length of the housing 201. Thus, it can also be understood that in the length of the housing 201, the distance between the midpoint of the handle 20110 and the electrostatic adsorption component 3 is L1, and the length of the handle 20110 is L2, satisfying the relationship: L1 < 2L2.
[0167] For details, please refer to Figure 3 As shown, the handle 20110 is equivalent to the lever arm through which the user applies operating force, and the electrostatic adsorption component 3 is the fulcrum where the device contacts the ground. The distance L1 between the midpoint of the handle 20110 and the electrostatic adsorption component 3 in the direction of movement of the cleaning device 200 is equivalent to the lever arm length from the fulcrum (i.e., the electrostatic adsorption component 3) to the point of force application (i.e., the handle 20110). By setting L1 < 2L2, the lever arm length is effectively controlled. According to the lever principle (torque equals the product of force and lever arm), under the same pushing / pulling force, the shorter the lever arm (i.e., the distance L1 between the midpoint of the handle 20110 and the electrostatic adsorption component 3 in the direction of movement of the cleaning device 200), the smaller the torque the user needs to overcome. Thus, it requires less effort from the user when holding the handle 20110 to drive the cleaning device 200.
[0168] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0169] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.
Claims
1. A rolling brush characterized by, include: A roller assembly, comprising: a first connector, a second connector, and a shaft body, wherein the first connector and the second connector are respectively disposed at both ends of the shaft body along the axial direction of the shaft body; At least two cleaning components are disposed on the shaft body and extend along the axial direction of the shaft body; At least one electrostatic adsorption element is disposed on the shaft body and located between two adjacent cleaning elements.
2. The roll brush of claim 1, wherein, The shaft body component includes: at least two first shafts and at least one second shaft, with each second shaft disposed between every two first shafts; The cleaning component is disposed on the first shaft; The electrostatic adsorption component is detachably assembled to the second shaft.
3. The roll brush of claim 2, wherein, The outer circumferential surface of the second shaft is provided with an installation space, and the electrostatic adsorption component is assembled in the installation space.
4. The roll brush of claim 3, wherein, The outer peripheral surface of the second shaft is provided with two first limiting stops, which are spaced apart along the axial direction of the second shaft to form the installation space.
5. The roller brush according to claim 2, characterized in that, The cleaning component includes at least one cleaning part that protrudes outward from the first shaft and extends axially along the first shaft.
6. The roller brush according to claim 5, characterized in that, The cleaning component further includes a sleeve portion, which is disposed on the outer periphery of the sleeve portion, and the sleeve portion sleeves the roller component.
7. The roller brush according to claim 5, characterized in that, The cleaning part is the comb body and / or the protrusion.
8. The roller brush according to claim 7, characterized in that, The cleaning part comprises the comb body and the protrusion. The radial dimension of the end of the comb body away from the roller is D1; the radial dimension of the end of the protrusion away from the roller is D2; the radial dimension of the end of the electrostatic adsorption component away from the roller is D3. The following relationship is satisfied: D3 < D1 < D2.
9. The roller brush according to claim 8, characterized in that, The following relationship is satisfied: 8mm≤D2-D3≤12mm. Preferably, the cleaning part comprises the comb body and the protrusion. The radial dimension of the end of the comb body away from the roller is D1; the radial dimension of the end of the protrusion away from the roller is D2; the radial dimension of the end of the electrostatic adsorption component away from the roller is D3. The following relationship is satisfied: D3 < D2 < D1. Preferably, the following relationship is satisfied: 8mm≤D1-D3≤12mm. Preferably, the comb body, the protrusion, and the electrostatic adsorption component are all made of nylon material; The comb body includes multiple comb teeth, which are arranged at intervals along the axial direction of the roller. The protrusion includes a plurality of bristles and / or down, which are arranged in close succession along the axial direction of the roller. The electrostatic adsorption element includes multiple brush bristles and / or fluff; Wherein, the density of the bristles and / or the down in the electrostatic adsorption component is greater than the density of the bristles and / or the down in the protrusion, and the density of the bristles and / or the down in the protrusion is greater than the density of the comb teeth in the comb body. Preferably, the comb body, the protrusion, and the electrostatic adsorption component are all made of nylon material; The comb body includes multiple comb teeth, which are arranged at intervals along the axial direction of the roller. The protrusion includes a plurality of bristles and / or down, which are arranged in close succession along the axial direction of the roller. The electrostatic adsorption element includes multiple brush bristles and / or fluff; Wherein, the diameter of the bristles and / or the down in the electrostatic adsorption component is smaller than the density of the bristles and / or the down in the protrusion, and the diameter of the bristles and / or the down in the electrostatic adsorption component is smaller than the diameter of the comb teeth. Preferably, the flange of the second shaft is provided with at least one receiving notch for receiving the cleaning part. Preferably, the width of the receiving notch is greater than the thickness of the cleaning part. Preferably, the outer peripheral surface of the second shaft is provided with two first limiting stops, and the two first limiting stops are spaced apart along the axial direction of the second shaft to form an installation space, and the electrostatic adsorption component is assembled in the installation space; The second shaft is also provided with a guide member, which is connected between the flange and the first limiting stop edge, and is located between two adjacent receiving notches along the circumference of the second shaft. Preferably, the radial dimension of the end of the electrostatic adsorption component away from the roller component is D3, and the radial dimension of the first limiting stop edge away from the end of the roller component is D4, satisfying the relationship: D3≥D4. Preferably, the second shaft body includes: an assembly wheel body and an annular mounting body, wherein the annular mounting body is sleeved on the assembly wheel body; Along the axial direction of the assembly wheel body, both ends of the assembly wheel body are connected to the first shaft body, and the annular mounting body is provided with the mounting space and the receiving notch. Preferably, the assembly wheel body is provided with a screw hole, the annular mounting body is provided with a corresponding countersunk hole, and the countersunk hole is located within the mounting space; The second shaft also includes a screw adapted to pass through the countersunk hole for screwing into the threaded hole. Preferably, the annular mounting body includes: a first mounting body and a second mounting body, wherein the first mounting body and the second mounting body are fixedly assembled to the mounting wheel body; The inner wall of the first mounting body and / or the inner wall of the second mounting body is provided with one of an axial limiting groove and an axial limiting protrusion, and the assembly wheel is provided with the other of the axial limiting groove and the axial limiting protrusion, and the axial limiting protrusion is adapted to be assembled into the axial limiting groove. The first mounting body is provided with one of the positioning groove and the positioning protrusion, and the second mounting body is provided with the other of the positioning groove and the positioning protrusion. Preferably, the inner walls of the first mounting body and the second mounting body are both provided with a second limiting stop and a third limiting stop, and the second limiting stop and the third limiting stop are spaced apart to form the axial limiting groove along the axial direction of the annular mounting body; The second limiting stop and / or the third limiting stop are provided with circumferential limiting protrusions, and the assembly wheel is provided with circumferential limiting grooves. The circumferential limiting protrusions are adapted to be assembled in the circumferential limiting grooves. Preferably, along the circumference of the annular mounting body, the corresponding second limiting edge forms a clamping space at intervals, and along the axial direction of the annular mounting body, the third limiting edge is disposed outside the second limiting edge; The assembly wheel body is provided with a circumferential stop rib, which extends along the axial direction of the assembly wheel body to connect between two adjacent axial limiting protrusions, and the circumferential stop rib is disposed within the clamping space. Preferably, the second shaft is a one-piece molded part.
10. A cleaning device, characterized in that, include: A housing, comprising a main body and a brush portion, wherein the brush portion is provided with a roller brush cavity and an anti-rolling component; A waste storage device is disposed in the main body, and a negative pressure channel in the main body connects the roller brush chamber and the waste chamber of the waste storage device; A negative pressure generator is disposed in the main body and is configured to drive fluid to flow along the negative pressure channel from the roller brush chamber to the waste chamber. According to any one of claims 1 to 9, the roller brush is assembled in the roller brush cavity, and along the axial direction of the roller brush, the electrostatic adsorption element is located between two adjacent anti-rolling elements. Preferably, the negative pressure channel includes an upstream channel segment and a downstream channel segment; The upstream channel section connects the roller brush chamber and the dirt chamber, and the suction port of the upstream channel section is positioned opposite to the electrostatic adsorption element in the direction of fluid flow. The downstream channel section connects the waste chamber and the negative pressure generator. Preferably, it further includes: a lamp assembly, the lamp assembly including an ultraviolet lamp core, the lamp assembly being disposed at the bottom of the housing. Preferably, in the height direction of the housing, the lower boundary of the electrostatic adsorption element is located below the anti-rolling element. Preferably, the main body is provided with a handle. Preferably, in the direction of movement of the cleaning device, the distance between the midpoint of the handle and the electrostatic adsorption component is L1, and the length of the handle is L2, satisfying the relationship: L1 < 2L2.