Cleaning system

By using high-temperature resistant materials and electromagnetic wave drying components, the problem of squeegee deformation under high-temperature conditions has been solved, achieving stable adhesion between the squeegee and the cleaning surface, thus improving the cleaning effect and extending the service life of the squeegee.

CN224166239UActive Publication Date: 2026-04-28FOSHAN SHUIBAODUN TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FOSHAN SHUIBAODUN TECH CO LTD
Filing Date
2025-05-15
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing floor scrubber blades are prone to deformation under high-temperature drying conditions, leading to reduced sealing and affecting cleaning performance.

Method used

High-temperature resistant materials such as thermoplastic polyurethane rubber, fluororubber, polyimide scraper strips, or modified silicone composite scraper strips are used, and a heat-resistant layer is covered on the surface of the scraper strip. The roller brush is then dried at high temperature using an electromagnetic wave drying assembly.

Benefits of technology

Ensure the squeegee maintains structural stability in high-temperature environments, guarantees good adhesion to the cleaning surface, improves cleaning reliability and wiping performance, and extends the squeegee's lifespan.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a cleaning system which comprises a cleaning device, the cleaning device comprises a floor brush, the floor brush comprises a rolling brush and a scraping strip, and the scraping strip is arranged on the front side and / or the rear side of the rolling brush; the cleaning equipment selectively moves to the base station, a drying assembly is arranged in the base station, and the drying assembly is suitable for selectively performing drying work on the rolling brush after the cleaning equipment moves to the base station; wherein the scraping strip is configured to bear the drying temperature of 70 DEG C or above. Therefore, by arranging the cleaning system, the structural stability of the scraping strip can be kept in a high-temperature environment, the risk that the scraping strip is softened or deformed due to high temperature is avoided, and therefore it is guaranteed that the scraping strip and the cleaning face can be well attached for a long time, the water scraping effect of the scraping strip is guaranteed, and the cleaning reliability is improved.
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Description

Technical Field

[0001] This utility model relates to the field of cleaning equipment technology, and in particular to a cleaning system. Background Technology

[0002] With the development of technology and the improvement of people's living standards, cleaning equipment is increasingly used in people's lives. The use of cleaning equipment greatly reduces the burden of manpower. Taking floor scrubbers as an example, after completing the cleaning work and being placed back at the base station, the floor scrubber performs a self-cleaning action. In addition, the base station of the floor scrubber is usually equipped with a drying device, which can be used to dry the residual moisture on the roller brush or squeegee to prevent bacterial growth and odor.

[0003] In related technologies, floor scrubbers on the market are usually equipped with front and rear squeegees for cleaning the floor and removing wastewater. These squeegees are generally made of silicone (because silicone has good elasticity and sealing properties). However, when the drying temperature of the drying device is high, the silicone squeegee is easily deformed due to prolonged high-temperature baking, which reduces the seal between the squeegee and the floor, thus affecting the cleaning effect. Utility Model Content

[0004] This invention aims to solve at least one of the technical problems existing in the prior art. Therefore, one objective of this invention is to provide a cleaning system that enables the squeegee to maintain structural stability in high-temperature environments, avoiding the risk of softening or deformation due to high temperatures, thereby ensuring that the squeegee and the cleaning surface maintain good adhesion over a long period.

[0005] A cleaning system according to a first aspect of the present invention includes: a cleaning device, the cleaning device including a floor brush, the floor brush including a roller brush and a scraper, the scraper being disposed on the front side and / or rear side of the roller brush; a base station, the cleaning device selectively moving to the base station, the base station being provided with a drying assembly, the drying assembly being adapted to selectively perform drying work on the roller brush after the cleaning device moves to the base station; wherein the scraper is constructed to withstand a drying temperature of 70°C or higher.

[0006] Therefore, by setting up this cleaning system, the squeegee can maintain structural stability in high-temperature environments, avoiding the risk of softening or deformation of the squeegee due to high temperatures. This ensures that the squeegee and the cleaning surface can maintain good adhesion for a long time, thereby ensuring the squeegee's water-scraping effect and improving cleaning reliability.

[0007] In some examples of this utility model, the scraper is constructed to withstand drying temperatures above 100°C.

[0008] In some examples of this invention, the scraper is constructed as one of a thermoplastic polyurethane rubber scraper, a fluororubber scraper, a polyimide scraper, and a modified silicone composite scraper.

[0009] In some examples of this utility model, the scraper includes: a scraper body; a heat-resistant layer, the heat-resistant layer covering the outer surface of the scraper body, the heat-resistant layer being constructed to withstand drying temperatures above 70°C.

[0010] In some examples of this invention, the heat-resistant layer is constructed as either a ceramic layer or a polymer composite material layer that can withstand drying temperatures above 70°C.

[0011] In some examples of this invention, the polymer composite layer is one of a polyimide layer, a polybenzimidazole layer, an organosilicon polymer layer, a polytetrafluoroethylene layer, and an epoxy-phenolic layer.

[0012] In some examples of this utility model, the base station includes: a housing having a window; the drying assembly includes: an electromagnetic wave transmitter disposed within the housing, wherein the electromagnetic waves emitted by the electromagnetic wave transmitter are adapted to propagate through the window to the roller brush to perform drying work on the roller brush.

[0013] In some examples of this utility model, the base station further includes: a guide air duct, which is disposed between the window and the electromagnetic wave transmitter, and the length direction of the guide air duct is the same as the length direction of the ground brush.

[0014] In some examples of this invention, the electromagnetic wave transmitter is one of an infrared transmitter and a microwave transmitter.

[0015] In some examples of this utility model, the electromagnetic wave transmitter further includes: multiple sets of radiation plates, which are spaced apart along the front-to-back direction, and after the cleaning equipment moves to the base station, the multiple sets of radiation plates are located below the roller brush.

[0016] In some examples of this utility model, the scraper is disposed on the front and rear sides of the roller brush, the distance between the scraper on the front side and the scraper on the rear side is L1, the distance between the two radial plates that are furthest apart in the front-rear direction is L2, the diameter of the roller brush is D, and L and D satisfy the relationship: D≤L2<L1.

[0017] In some examples of this invention, the drying assembly further includes a reflector plate disposed on the side of the electromagnetic wave transmitter away from the roller brush, for reflecting electromagnetic waves toward the side facing the roller brush.

[0018] In some examples of this utility model, the reflector is one of a mirrored aluminum alloy plate and a gold-plated reflector.

[0019] In some examples of this utility model, the base station further includes a fan disposed on the side of the electromagnetic wave transmitter away from the roller brush for supplying air toward the electromagnetic wave transmitter.

[0020] In some examples of this utility model, the base station further includes a heat sink disposed on the side of the electromagnetic wave transmitter away from the roller brush, for dissipating heat from the electromagnetic wave transmitter.

[0021] In some examples of this utility model, the base station further includes a quartz glass plate disposed in the window.

[0022] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0023] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:

[0024] Figure 1 This is a schematic diagram of the structure of the cleaning equipment according to an embodiment of the present utility model;

[0025] Figure 2 This is a side view of a cleaning device according to an embodiment of the present utility model;

[0026] Figure 3 This is a schematic diagram of the base station structure according to an embodiment of the present utility model;

[0027] Figure 4 This is a top view schematic diagram of a portion of the structure of a base station according to an embodiment of the present utility model;

[0028] Figure 5 This is a side view schematic diagram of a portion of the structure of a base station according to an embodiment of the present utility model.

[0029] Figure label:

[0030] 100. Cleaning equipment; 200. Base station;

[0031] 10. Floor brush; 11. Roller brush; 12. Scraper; 20. Drying assembly; 21. Electromagnetic wave transmitter;

[0032] 201. Housing; 2011. Window; 2012. Quartz glass plate; 202. Airflow duct; 203. Reflector;

[0033] 204. Fan. Detailed Implementation

[0034] The embodiments of the present invention are described in detail below. The embodiments described with reference to the accompanying drawings are exemplary. The embodiments of the present invention are described in detail below.

[0035] The following is for reference. Figures 1-5 The cleaning system according to the present invention can maintain the structural stability of the scraper 12 in a high-temperature environment, avoid the risk of softening or deformation of the scraper 12 due to high temperature, and thus ensure that the scraper 12 and the cleaning surface can maintain a good fit for a long time.

[0036] Combination Figures 1-5 As shown, a cleaning device 100 and a base station 200 are provided according to a first aspect embodiment of the present invention. The cleaning device 100 refers to a machine that directly participates in the cleaning process, such as a floor scrubber; while the base station 200 can provide the cleaning device 100 with functions such as storage, charging, automatic water or detergent replenishment, wastewater discharge, and cleaning of the roller brush 11, and is not limited thereto. In summary, by combining the cleaning device 100 with the base station 200, not only can the efficiency of cleaning work be improved, but the need for manual intervention can also be reduced, making the entire cleaning process more intelligent and convenient.

[0037] Specifically, the cleaning device 100 includes a floor brush 10, which includes a roller brush 11 and a scraper 12. The scraper 12 is disposed on the front and / or rear side of the roller brush 11. The cleaning device 100 is selectively moved to the base station 200. A drying assembly 20 is disposed in the base station 200. The drying assembly 20 is adapted to selectively perform drying work on the roller brush 11 after the cleaning device 100 moves to the base station 200.

[0038] Specifically, the roller brush 11 directly contacts the cleaning surface (such as the ground) through rotational motion, which helps it remove stains, dust and debris attached to the ground by using the friction of its own bristles; the scraper 12 generates friction by contacting the surface to be cleaned, and when the scraper 12 moves along the surface to be cleaned, the scraper 12 scrapes away the dirt (such as dust, water stains, etc.) on the surface to be cleaned.

[0039] Furthermore, the cleaning device 100 can be moved to and docked with the base station 200 as needed. The base station 200 is equipped with a drying component 20 for drying the roller brush 11. For example, when the cleaning device 100 finishes its cleaning work, it can be automatically or manually placed at the base station 200. At this time, the base station 200 can first clean the roller brush 11. After cleaning the roller brush 11, the drying component 20 can then dry the roller brush 11 at high temperature. This can prevent residual moisture on the roller brush 11 or the scraper 12, thereby preventing bacterial growth and odor.

[0040] Specifically, the scraper 12 is designed to withstand drying temperatures above 70°C. This arrangement effectively ensures that the scraper 12 maintains structural stability even in high-temperature environments above 70°C (i.e., the high-temperature environment formed during the drying process of the drying component 20 on the roller brush 11). This avoids the risk of softening or deformation of the scraper 12 due to prolonged exposure to high temperatures, thereby ensuring that the scraper 12 maintains good adhesion to the cleaning surface for a long time. This, in turn, ensures the reliability of the scraper 12 in removing wastewater and extends the service life of the scraper 12.

[0041] Therefore, by setting up this cleaning system, the squeegee 12 can maintain structural stability in high-temperature environments, avoiding the risk of softening or deformation of the squeegee 12 due to high temperatures, thereby ensuring that the squeegee 12 and the cleaning surface can maintain good adhesion for a long time, thus ensuring the water-scraping effect of the squeegee 12 and improving cleaning reliability.

[0042] According to some optional embodiments of the present invention, combined with Figure 1 and Figure 2 As shown, the scraper 12 is constructed to withstand drying temperatures above 100°C. As arranged as above, it can further ensure that the scraper 12 can withstand higher temperature environments without softening or deforming. This is beneficial for the drying assembly 20 to dissipate higher temperatures to dry the roller brush 11, thereby increasing the drying speed of the drying assembly 20 on the roller brush 11 and thus improving the drying effect.

[0043] According to some optional embodiments of the present invention, the scraper 12 is constructed as one of a thermoplastic polyurethane rubber scraper, a fluororubber scraper, a polyimide scraper, and a modified silicone composite scraper.

[0044] For example, thermoplastic polyurethane rubber scrapers have strong wear resistance, tear resistance, flexibility, elasticity, oil resistance, and chemical resistance. This allows them to remain undeformed at high temperatures and make them more suitable for applications requiring long-term contact and scraping of hard or rough surfaces (such as floors). They can also better adapt to surfaces of different shapes, effectively ensuring that the scraper 12 fits tightly to the cleaning surface. Furthermore, they have good resistance to various greases and chemicals, improving their working stability in different environments, thereby enhancing the practicality and reliability of the scraper 12.

[0045] For example, fluororubber scraper strips have strong weather resistance, low air permeability, chemical resistance and high temperature stability. This allows them to remain undeformed in higher temperature environments and maintain good physical and mechanical properties when exposed to outdoor environments for a long time. They also have a good barrier effect on gases and liquids, thereby improving the service life and performance of the scraper strip 12.

[0046] For example, polyimide scrapers can be used over a wide temperature range, maintaining stable structural performance from extremely low temperatures to temperatures exceeding 400°C, thus effectively improving the practicality of the scraper 12 and enhancing its compatibility with different drying components 20. Furthermore, polyimide scrapers possess good mechanical properties, which improves the structural reliability of the scraper 12; moreover, polyimide scrapers have good self-lubricating properties, reducing the coefficient of friction and extending the service life of the scraper 12.

[0047] For example, modified silicone composite materials are produced by specifically treating the base silicone or adding other substances to improve its properties to meet specific application requirements. This modification can be achieved in various ways, including physical methods (such as adding fillers, blending techniques, surfactant treatment, and plasma treatment) and chemical methods (such as crosslinking modification, graft copolymerization, and organosilicon modification). Modified silicone composite squeegees possess good flexibility, resilience, high-temperature resistance, and waterproof and moisture-proof properties. This allows the squeegee 12 to remain undeformed at high temperatures, better adapt to surfaces of different shapes, effectively ensure a tight fit between the squeegee 12 and the cleaning surface, and make it suitable for humid or water-rich working environments, thereby improving the practicality and reliability of the squeegee 12.

[0048] According to some optional embodiments of the present invention, the scraper 12 includes a scraper body and a heat-resistant layer. The heat-resistant layer covers the outer surface of the scraper body and is constructed to withstand drying temperatures above 70°C.

[0049] The scraper body mainly serves as the load-bearing structural component of the outer contour of the scraper 12. The heat-resistant layer is applied and covers the outer surface of the scraper body. The heat-resistant layer can play a heat insulation role, thereby isolating the scraper body from the outside world, thus reducing the surface temperature of the scraper body and improving the working stability of the scraper body. The heat-resistant layer can also form a physical barrier on the surface of the scraper body, thereby slowing down the aging rate of the scraper body and extending the service life of the scraper 12.

[0050] Specifically, the heat-resistant layer is constructed as either a ceramic layer or a polymer composite material layer that can withstand drying temperatures above 70°C.

[0051] For example, due to the good high-temperature resistance and wear resistance of ceramic materials, the above arrangement can help it withstand higher temperature environments and is more suitable for applications requiring long-term contact and scraping of hard or rough surfaces (such as floors), thereby improving the practicality and reliability of the heat-resistant layer. Moreover, because ceramics have low thermal conductivity, the ceramic layer can prevent external heat from being transferred to the scraper body, thereby improving the working stability of the scraper 12 in high-temperature environments.

[0052] For example, due to their good impact resistance and corrosion resistance, polymer composite materials can absorb a large amount of energy without cracking, thereby improving the structural reliability of the heat-resistant layer. They also have good resistance to water, salt spray, and chemicals, thus extending the service life of the heat-resistant layer and reducing maintenance costs. Moreover, polymer composite materials can be processed through various molding processes (such as injection molding, extrusion, and compression molding), easily forming complex shapes and structures to meet diverse design requirements, thereby improving the processing convenience of the heat-resistant layer.

[0053] Furthermore, the polymer composite layer is one of the following: a polyimide layer, a polybenzimidazole layer, an organosilicon polymer layer, a polytetrafluoroethylene layer, and an epoxy-phenolic layer.

[0054] For example, the polyimide layer has good heat resistance and mechanical strength, which helps the heat-resistant layer maintain good mechanical properties at higher temperatures, thereby ensuring the structural stability of the heat-resistant layer in high-temperature environments.

[0055] For example, because polybenzimidazole has good high-temperature resistance, mechanical properties, chemical corrosion resistance, and self-lubricating properties, the polyimide layer can ensure that the heat-resistant layer maintains good structural strength and toughness at high temperatures, and also has strong resistance to a variety of chemicals, thereby improving the structural stability of the heat-resistant layer in different environments. Furthermore, because polybenzimidazole has good self-lubricating properties, it helps to reduce the coefficient of friction of the heat-resistant layer, thus extending its service life.

[0056] For example, because silicone polymers have good flexibility and resilience, the silicone polymer layer can better adapt to surfaces of different shapes, thereby effectively ensuring that the heat-resistant layer can be tightly bonded to the cleaning surface, thus ensuring the cleaning effect of the scraper 12; moreover, silicone polymers also have a wide operating temperature range, which can ensure structural stability at higher temperatures.

[0057] For example, because polytetrafluoroethylene (PTFE) has good non-adhesive properties and a low coefficient of friction, its surface is smooth and does not easily adhere to substances, providing good sliding performance. This reduces the frictional resistance between the heat-resistant layer and the cleaning surface during the cleaning process of the scraper 12, thereby improving the cleaning smoothness of the scraper 12. Moreover, PTFE has a wide operating temperature range, which ensures structural stability at higher temperatures.

[0058] For example, since epoxy-phenolic resin has good heat resistance and mechanical properties, this helps the heat-resistant layer maintain good mechanical properties at higher temperatures, thereby ensuring the structural stability of the heat-resistant layer in high-temperature environments.

[0059] According to some optional embodiments of the present invention, combined with Figure 3 and Figure 4 As shown, the base station 200 includes a housing 201, which has a window 2011; the drying assembly 20 includes an electromagnetic wave transmitter 21, which is disposed inside the housing 201. The electromagnetic waves emitted by the electromagnetic wave transmitter 21 are suitable for propagating through the window 2011 to the roller brush 11 to perform drying work on the roller brush 11.

[0060] Among them, the housing 201 is the main structural component of the outer contour of the base station 200. The housing 201 can protect the related internal structures. The housing 201 has a window 2011, which allows the electromagnetic waves emitted by the electromagnetic wave transmitter 21 inside the housing 201 to pass smoothly out of the housing 201 through the window 2011, avoiding the problem of electromagnetic wave blockage, thereby improving the rationality of the design.

[0061] In addition, after the electromagnetic wave transmitter 21 emits electromagnetic waves, the electromagnetic waves pass through the window 2011 on the housing 201 and then propagate to the roller brush 11. The electromagnetic waves can directly act on the water molecules or other absorbing media on the surface and inside of the roller brush 11, causing them to heat up rapidly, thereby accelerating the evaporation process and effectively improving the drying effect. Moreover, the electromagnetic waves have strong penetrating power and can penetrate deep into the inside of the roller brush 11 for heating, avoiding the problem that the surface may be overheated while the inside is not dry, which may be caused by traditional surface heating methods, thus ensuring the drying uniformity of the entire roller brush 11.

[0062] Specifically, in combination Figure 3 and Figure 5 As shown, the base station 200 also includes a guide air duct 202, which is disposed between the window 2011 and the electromagnetic wave transmitter 21. The length direction of the guide air duct 202 is the same as the length direction of the ground brush 10.

[0063] Understandably, the airflow guide duct 202 can be used to guide the airflow direction. By placing the airflow guide duct 202 between the window 2011 and the electromagnetic wave transmitter 21, the heat emitted by the electromagnetic wave transmitter 21 can be converted into a heat flow, thereby accelerating the drying speed and increasing the drying coverage area, thus improving drying efficiency. The length direction of the airflow guide duct 202 is consistent with the length direction of the floor brush 10. This arrangement allows for a more scientific and orderly relative arrangement between the airflow guide duct 202 and the housing 201, facilitating production alignment and improving manufacturing efficiency.

[0064] Furthermore, the electromagnetic wave transmitter 21 is one of an infrared transmitter and a microwave transmitter.

[0065] For example, infrared emitters can generate and emit infrared radiation (infrared radiation is located outside the red light of the visible spectrum, with wavelengths ranging from approximately 780 nanometers to 3 micrometers, matching the absorption peaks of water molecules). The infrared radiation emitted by the emitter can be effectively absorbed by water and converted into heat energy, thereby improving heating and drying efficiency; moreover, infrared heaters typically have faster start-up times and temperature regulation speeds, thus improving the response speed of the heating and drying process. In summary, this method can effectively dry the heated roller brush 11 while preventing high-temperature damage to other components (because infrared radiation primarily heats water molecules, not the surrounding air or equipment).

[0066] For example, a microwave transmitter can generate and emit microwaves (microwaves are a segment of the electromagnetic spectrum with frequencies between 300 MHz and 300 GHz, corresponding to wavelengths ranging from 1 millimeter to 1 meter). The microwave transmitter can directly act on water molecules and other polar molecules, causing them to vibrate and generate heat, thus achieving internal heating and avoiding external overheating that may occur with traditional heating methods, thereby improving heating uniformity. Compared to traditional heating methods (such as heating wires), because the energy of the microwave transmitter is directly transferred to the roller brush 11 rather than the entire ground brush 10 or the surrounding air, the heating and drying efficiency of the roller brush 11 is improved.

[0067] Specifically, the electromagnetic wave transmitter 21 also includes multiple sets of radiating plates, which are spaced apart along the front-to-back direction. After the cleaning equipment 100 moves to the base station 200, the multiple sets of radiating plates are located below the roller brush 11.

[0068] Understandably, after the cleaning equipment 100 moves to the base station 200, the radiating plate is located between the roller brush 11 and the electromagnetic wave transmitter 21. On the one hand, the radiating plate can isolate the electromagnetic wave transmitter 21 from the roller brush 11, thereby preventing the roller brush 11 from directly contacting the electromagnetic wave transmitter 21. This effectively prevents water stains and dirt on the roller brush 11 from entering the electromagnetic wave transmitter 21, thus avoiding damage to the electromagnetic wave transmitter 21 and improving the protection of the electromagnetic wave transmitter 21.

[0069] In this process, the surface of the radiant plate is first heated to a certain temperature by the electromagnetic waves emitted by the electromagnetic wave transmitter 21, and then releases heat towards the side of the roller brush 11 in the form of infrared radiation. This can further improve the heating uniformity of the roller brush 11 and avoid the cold air flow problem that may be caused by the traditional convection heating system, thus reducing the problem of uneven heating.

[0070] For example, the radiation plate can be in the shape of a convex lens. A convex lens-shaped radiation plate can focus the passing light so that the electromagnetic waves passing through the radiation plate can be focused and projected onto the roller brush 11. This can effectively increase the amount of electromagnetic waves projected onto the roller brush 11, reduce the waste of electromagnetic waves, and thus effectively improve the utilization rate of electromagnetic waves and improve the drying efficiency of the electromagnetic wave transmitter 21 on the roller brush 11.

[0071] Furthermore, combined Figure 1 and Figure 2 As shown, scraper 12 is disposed on the front and rear sides of roller brush 11. The distance between the front scraper 12 and the rear scraper 12 is L1. The distance between the two radial plates that are furthest apart in the front-rear direction is L2. The diameter of roller brush 11 is D. L and D satisfy the relationship: D≤L2<L1.

[0072] In other words, the diameter of the roller brush 11 does not exceed the distance between the two farthest radiant plates in the front-to-back direction. This ensures that the electromagnetic waves released by the radiant plates can cover the entire roller brush 11, thereby improving the heating uniformity of the roller brush 11 and reducing the risk of local overheating. Moreover, the distance between the two farthest radiant plates in the front-to-back direction is less than the distance between the front scraper 12 and the rear scraper 12. This ensures that the roller brush 11 is effectively dried, while also preventing or reducing the propagation of electromagnetic waves released by the radiant plates to the scraper 12, thereby reducing the impact of direct heating of the scraper 12 and extending the service life of the scraper 12.

[0073] Specifically, in combination Figures 3-5 As shown, the drying assembly 20 also includes a reflector 203, which is disposed on the side of the electromagnetic wave transmitter 21 away from the roller brush 11, for reflecting electromagnetic waves to the side facing the roller brush 11.

[0074] It is understandable that the electromagnetic waves generated by the side of the electromagnetic wave transmitter 21 facing away from the roller brush 11 can be projected onto the reflector 203 and reflected back to the roller brush 11 by the reflector 203 to dry the roller brush 11. This can effectively increase the number of electromagnetic waves projected onto the roller brush 11, effectively reduce or avoid the waste of electromagnetic waves, thereby effectively improving the utilization rate of electromagnetic waves and improving the cleaning and drying efficiency of the roller brush 11 by the base station 200.

[0075] Optionally, the reflector 203 has a curved surface structure at least on the side facing the electromagnetic wave transmitter 21, and the reflector 203 can be concave in the direction away from the electromagnetic wave transmitter 21, that is, the side of the reflector 203 facing the electromagnetic wave transmitter 21 is a concave surface. During the reflection of electromagnetic waves, the curved reflector 203 can concentrate the reflected electromagnetic waves, allowing them to be focused and projected onto the roller brush 11. This effectively reduces or avoids heat dissipation from the electromagnetic waves, effectively prevents electromagnetic wave loss, improves the utilization rate of the electromagnetic waves, and thus effectively enhances the heating and drying efficiency of the electromagnetic wave heater.

[0076] Furthermore, the reflector 203 is one of a mirrored aluminum alloy plate and a gold-plated reflector.

[0077] For example, mirrored aluminum alloy plates can provide high light reflectivity (for visible light) or infrared reflectivity (for thermal radiation), typically reaching 85% to 95% or more. Moreover, the cost of mirrored aluminum alloy plates is relatively low. As shown above, this arrangement can improve the practicality and economy of reflector 203.

[0078] For example, gold-plated reflectors have extremely high infrared reflectivity, which can reach over 98%, thereby effectively increasing heat emissivity and heating efficiency. Moreover, gold-plated reflectors also have excellent mechanical stability and durability, ensuring that reflector 203 can maintain a high level of performance even after long-term use.

[0079] Specifically, in combination Figures 3-5 As shown, the base station 200 also includes a fan 204, which is disposed on the side of the electromagnetic wave transmitter 21 away from the roller brush 11, for supplying air toward the electromagnetic wave transmitter 21.

[0080] Understandably, the fan 204 blows air towards the electromagnetic wave transmitter 21. This airflow causes airflow around the transmitter 21, carrying away the heat generated by the transmitter and transporting it to the brush 11, thus drying the brush 11. The fan 204's ability to circulate air around the transmitter 21 and brush 11 improves heat flow, effectively enhancing the contact between the heat and the brush 11, reducing heat loss, and thus significantly improving the drying effect of the base station 200 and the brush 11.

[0081] Furthermore, the base station 200 also includes a heat sink, which is disposed on the side of the electromagnetic wave transmitter 21 away from the roller brush 11, for dissipating heat from the electromagnetic wave transmitter 21.

[0082] In other words, the heat sink is located on the side of the electromagnetic wave transmitter 21 away from the roller brush 11. This way, without interfering with the normal electromagnetic wave emission of the electromagnetic wave transmitter 21 to the roller brush 11 for drying, it can also effectively absorb the heat emitted from the side of the electromagnetic wave transmitter 21 away from the roller brush 11, thereby improving the heat dissipation effect of the overall equipment and preventing the cleaning equipment 100 from being damaged by heat.

[0083] Specifically, in combination Figures 3-5 As shown, the base station 200 also includes a quartz glass plate 2012, which is disposed in the window 2011.

[0084] Understandably, the quartz glass plate 2012 is a transparent material made of extremely pure silicon dioxide (SiO2). Quartz glass plate 2012 possesses good thermal stability (quartz glass can operate at extreme temperatures; its softening point is approximately 1730°C, and it can be used for extended periods in environments up to 1100°C without deformation or damage), thus improving its structural stability in high-temperature environments. Quartz glass plate 2012 also has high mechanical strength, thereby enhancing its structural reliability. Furthermore, the quartz glass plate 2012 allows only electromagnetic waves to penetrate to the roller brush 11 area, thus preventing heat leakage and protecting the cleaning equipment 100 from the risk of thermal damage.

[0085] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to 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 utility model.

[0086] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; 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; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0087] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example.

[0088] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.

Claims

1. A cleaning system, characterized in that, include: A cleaning device (100) includes a floor brush (10), the floor brush (10) includes a roller brush (11) and a scraper (12), the scraper (12) being disposed on the front and / or rear side of the roller brush (11); A base station (200), wherein the cleaning device (100) is selectively moved to the base station (200), and a drying assembly (20) is provided in the base station (200), the drying assembly (20) being adapted to selectively perform drying work on the roller brush (11) after the cleaning device (100) moves to the base station (200); The scraper (12) is constructed to withstand a drying temperature of 70°C or higher.

2. The cleaning system according to claim 1, characterized in that, The scraper (12) is constructed to withstand a drying temperature of 100°C or higher.

3. The cleaning system according to claim 1, characterized in that, The scraper (12) is constructed as one of a thermoplastic polyurethane rubber scraper, a fluororubber scraper, a polyimide scraper, and a modified silicone composite scraper.

4. The cleaning system according to claim 1, characterized in that, The scraper (12) includes: Squeegee body; A heat-resistant layer covers the outer surface of the scraper body, and the heat-resistant layer is constructed to withstand drying temperatures above 70°C.

5. The cleaning system according to claim 4, characterized in that, The heat-resistant layer is constructed as either a ceramic layer or a polymer composite material layer that can withstand drying temperatures above 70°C.

6. The cleaning system according to claim 5, characterized in that, The polymer composite layer is one of the following: a polyimide layer, a polybenzimidazole layer, an organosilicon polymer layer, a polytetrafluoroethylene layer, and an epoxy-phenolic layer.

7. The cleaning system according to any one of claims 1-6, characterized in that, The base station (200) includes: The housing (201) is provided with a window (2011); The drying assembly (20) includes: An electromagnetic wave transmitter (21) is disposed inside the housing (201). The electromagnetic waves emitted by the electromagnetic wave transmitter (21) are adapted to propagate through the window (2011) to the roller brush (11) to perform a drying operation on the roller brush (11).

8. The cleaning system according to claim 7, characterized in that, The base station (200) also includes: A guide air duct (202) is provided between the window (2011) and the electromagnetic wave transmitter (21). The length direction of the guide air duct (202) is the same as the length direction of the floor brush (10).

9. The cleaning system according to claim 7, characterized in that, The electromagnetic wave transmitter (21) is one of an infrared transmitter and a microwave transmitter.

10. The cleaning system according to claim 7, characterized in that, The electromagnetic wave transmitter (21) also includes: Multiple sets of radiating plates are spaced apart along the front-to-back direction. After the cleaning equipment (100) moves to the base station (200), the multiple sets of radiating plates are located below the roller brush (11).

11. The cleaning system according to claim 10, characterized in that, The scraper (12) is disposed on the front and rear sides of the roller brush (11). The distance between the scraper (12) on the front side and the scraper (12) on the rear side is L1. The distance between the two radial plates that are furthest apart in the front-rear direction is L2. The diameter of the roller brush (11) is D. L and D satisfy the relationship: D≤L2<L1.

12. The cleaning system according to claim 7, characterized in that, The drying assembly (20) also includes: A reflector (203) is disposed on the side of the electromagnetic wave transmitter (21) away from the roller brush (11) to reflect electromagnetic waves toward the side facing the roller brush (11).

13. The cleaning system according to claim 12, characterized in that, The reflector (203) is one of a mirrored aluminum alloy plate and a gold-plated reflector.

14. The cleaning system according to claim 7, characterized in that, The base station (200) also includes: A fan (204) is disposed on the side of the electromagnetic wave transmitter (21) away from the roller brush (11) for supplying air toward the electromagnetic wave transmitter (21).

15. The cleaning system according to claim 7, characterized in that, The base station (200) also includes: A heat sink is disposed on the side of the electromagnetic wave transmitter (21) away from the roller brush (11) for dissipating heat from the electromagnetic wave transmitter (21).

16. The cleaning system according to claim 7, characterized in that, The base station (200) also includes: Quartz glass plate (2012), the quartz glass plate (2012) is disposed in the window (2011).