Intelligent mop cleaning monitoring system
The intelligent mop cleaning monitoring system uses RFID tags and control modules to identify the cleaning and usage of mops, solving the problem of inadequate supervision of mop cleaning and usage areas, and realizing intelligent management of mops and improvement of public environmental hygiene.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 谭军
- Filing Date
- 2024-12-22
- Publication Date
- 2026-06-23
Smart Images

Figure CN122263928A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of cleaning management technology, specifically providing an intelligent mop cleaning monitoring system. Background Technology
[0002] As society continues to progress, people's requirements for public environmental hygiene are increasing. Mops are cleaning products that are frequently used in public places. Whether it is a mop used in a station or hotel, or a mop used in a kitchen or restaurant, mops are basically cleaned and managed manually.
[0003] The existing technology has the following shortcomings: mops are cleaned and managed manually. If violations such as not cleaning mops, not replacing mops, or using mops indiscriminately in different areas occur, it is difficult for managers and the public to supervise in a timely and effective manner. Mops can easily become a source of bacteria in public places, endangering public environmental hygiene and safety. There is also a problem of inadequate supervision of mop cleaning and use.
[0004] Accordingly, there is a need in the field for a new device to solve the above problems. Summary of the Invention In order to solve the above-mentioned technical problems in the prior art, namely the problem of inadequate supervision of mop cleaning and usage areas, the present invention provides a smart mop cleaning monitoring system.
[0005] The technical solution adopted by the present invention to solve the above-mentioned technical problems is as follows: a smart mop cleaning monitoring system, characterized in that the smart mop cleaning monitoring system includes a mop, a mop cleaning device, a monitoring unit and an RFID reader;
[0006] The mop includes a mop cloth, and the mop cloth is equipped with an RFID tag;
[0007] The mop cleaning device is equipped with a cleaning chamber and a first RFID reader. The cleaning chamber can accommodate the mop cloth. The mop cleaning device is used to clean the mop cloth and monitor the cleaning status of the mop cloth.
[0008] The monitoring unit includes a second RFID reader, which is used to monitor the area where the mop is used.
[0009] In the preferred embodiment of the above-mentioned intelligent mop cleaning monitoring system, the RFID reader is used to identify and read the RFID tag and transmit the cleaning and usage information of the mop to the control module.
[0010] In the preferred technical solution of the above-mentioned intelligent mop cleaning monitoring system, the control module includes a processing module and a storage module for storing executable instructions of the processing module, and the storage module stores preset cleaning and usage information of the mop.
[0011] In the preferred technical solution of the above-mentioned intelligent mop cleaning monitoring system, the monitoring unit is set at the monitoring point in the area to be cleaned, and the monitoring unit is equipped with a display screen for displaying the cleaning and usage information of the mop.
[0012] In the preferred technical solution of the above-mentioned intelligent mop cleaning monitoring system, the control module is communicatively connected to the first RFID reader, the second RFID reader, and the display.
[0013] In a preferred embodiment of the above-mentioned intelligent mop cleaning and monitoring system, the mop cleaning device includes a horizontal mop cleaning device, and the intelligent mop cleaning and monitoring system includes a horizontal scrubbing frame, a guide, a limiting device, a drive mechanism, and a cleaning tank. The cleaning tank can accommodate the horizontal scrubbing frame and washing water. The guide is installed at the bottom of the cleaning tank. The limiting device is used to limit the upward movement height of the mop board. The drive mechanism drives the horizontal scrubbing frame to reciprocate within the cleaning tank. The horizontal scrubbing frame is used to squeeze the mop cloth.
[0014] In a preferred embodiment of the above-mentioned intelligent mop cleaning monitoring system, the mop cleaning device includes a vertical mop cleaning device, which includes a vertical scrubbing frame, a guide, a drive mechanism, and a cleaning tank. The cleaning tank can hold the vertical scrubbing frame and washing water. The guide is installed inside the cleaning tank. The drive mechanism drives the vertical scrubbing frame to reciprocate within the cleaning tank. The vertical scrubbing frame is used to squeeze the mop cloth.
[0015] In a preferred embodiment of the above-mentioned intelligent mop cleaning and monitoring system, the mop cleaning device includes a pulsator washing machine, which is used to clean the mop cloth removed from the mop board.
[0016] In the preferred embodiment of the above-mentioned intelligent mop cleaning and monitoring system, the mop cleaning device further includes a drying module, which is used to dry and disinfect the mop cloth.
[0017] Those skilled in the art will understand that, in the preferred embodiment of the present invention, the mop includes a mop cloth, the mop cloth is equipped with an RFID tag, an RFID reader identifies and reads the RFID tag, the mop cleaning device is equipped with a cleaning chamber and a first RFID reader, the mop cleaning device is used to clean the mop cloth and monitor the cleaning status of the mop cloth, a monitoring unit is set in the area to be cleaned, the monitoring unit is equipped with a second RFID reader, and the monitoring unit is used to monitor the area where the mop cloth is used. The present invention intelligently identifies, cleans, and monitors the cleaning and usage status of the mop, realizing intelligent management of mop cleaning and the area of use. Attached Figure Description
[0018] Preferred embodiments of the present invention will now be described with reference to the accompanying drawings, in which:
[0019] Figure 1 This is a schematic diagram of the structure for removing the mop in the horizontal mop cleaning device according to Embodiment 1 of the present invention;
[0020] Figure 2 This is a schematic diagram of the horizontal mop cleaning device according to Embodiment 1 of the present invention;
[0021] Figure 3 This is a schematic diagram of the internal structure of the horizontal mop cleaning device according to Embodiment 1 of the present invention.
[0022] Figure 4 This is a partial structural schematic diagram of the horizontal mop cleaning device according to Embodiment 1 of the present invention;
[0023] Figure 5 This is a schematic diagram of the horizontal scrubbing rack according to Embodiment 1 of the present invention;
[0024] Figure 6 This is a schematic diagram of the structure of the mop on the horizontal scrubbing frame according to Embodiment 1 of the present invention;
[0025] Figure 7 This is a schematic diagram of the limiting device according to Embodiment 1 of the present invention;
[0026] Figure 8 This is a schematic diagram of the intelligent mop cleaning and monitoring system according to Embodiment 1 of the present invention;
[0027] Figure 9 This is a partial structural cross-sectional view of the monitoring unit according to Embodiment 1 of the present invention;
[0028] Figure 10 This is a schematic diagram of the vertical mop cleaning device according to Embodiment 2 of the present invention;
[0029] Figure 11 This is a schematic diagram of the structure of the mop inserted into the cleaning chamber in Embodiment 2 of the present invention;
[0030] Figure 12This is a schematic diagram of the internal structure of the mop vertical cleaning device according to Embodiment 2 of the present invention;
[0031] Figure 13 This is a partial structural schematic diagram of the mop vertical cleaning device according to Embodiment 2 of the present invention;
[0032] Figure 14 This is a schematic diagram of the vertical scrubbing rack according to Embodiment 2 of the present invention;
[0033] Figure 15 This is a schematic diagram of the structure of the mop according to Embodiment 2 of the present invention;
[0034] Figure 16 This is a schematic diagram of the mop in a set position according to Embodiment 2 of the present invention;
[0035] Figure 17 This is a schematic diagram of the vertical scrubbing rack and telescopic assembly according to Embodiment 2 of the present invention;
[0036] List of reference numerals in the accompanying drawings of Embodiment 1:
[0037] 10. Cleaning tank; 11. Lid; 12. Opening; 13. Cleaning chamber; 15. Lid notch;
[0038] 20. Mop; 21. Mop board; 22. Mop cloth; 23. Mop handle;
[0039] 380. Horizontal mop cleaning device; 30. Horizontal scrubbing frame; 31. Scrubbing board; 32. Connecting plate; 33. Lifting assembly; 34. Scraper strip; 35. Empty trough; 321. Slide trough; 331. Pulley;
[0040] 40. Guide component; 41. First step; 42. Second step;
[0041] 50. Limiting device; 51. Limiting motor; 52. Motor gear; 53. Rack; 54. Transmission gear; 55. Rotating shaft; 56. Limiting block;
[0042] 60. Drive mechanism; 61. Drive motor; 62. Lead screw; 63. Lead screw nut; 64. Sliding connector;
[0043] 70. Drying module; 71. Water inlet valve; 72. Drain valve; 73. First RFID reader;
[0044] 91. First display; 92. Monitoring unit; 921. Monitoring box; 922. Second display; 923. Second RFID reader;
[0045] List of reference numerals in the accompanying drawings for Embodiment 2:
[0046] 10. Cleaning tank; 11. Lid; 12. Inlet / outlet; 13. Cleaning chamber; 15. Lid notch;
[0047] 20. Mop; 21. Mop board; 22. Mop cloth; 23. Mop handle; 211. Limiting groove;
[0048] 390. Mop upright cleaning device; 370. Upright scrubbing frame; 31. Scrubbing board; 32. Connecting plate; 33. Lifting assembly; 34. Scraper strip; 375. Moving assembly; 36. Telescopic assembly; 321. Slide groove; 331. Pulley; 3751. Roller; 361. Telescopic rod; 362. Elastic element; 363. Telescopic base;
[0049] 40. Guide component; 41. First step; 42. Second step;
[0050] 570. Limiting component; 571. Limiting wheel; 572. Limiting seat;
[0051] 60. Drive mechanism; 61. Drive motor; 62. Lead screw; 63. Lead screw nut; 64. Sliding connector;
[0052] 70. Drying module; 71. Water inlet valve; 72. Drain valve; 73. First RFID reader;
[0053] 91. First display. Detailed Implementation
[0054] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be further described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Unless otherwise specified, the following embodiments and features can be combined with each other.
[0055] Therefore, those skilled in the art should understand that the embodiments of the present invention provided in the following figures are only for explaining the technical principles of the present invention and are not intended to limit the scope of protection of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.
[0056] It should be noted that in the description of this invention, terms such as "center," "upper," "lower," "left," "right," "inner," and "outer," which indicate direction or positional relationships, are based on the direction or positional relationships shown in the accompanying drawings. These are used merely for ease of description and do not indicate or imply that the device or element must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0057] Furthermore, terms such as "horizontal," "flat," "vertical," and "suspended" do not imply that components must be absolutely horizontal or suspended, but rather that they can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," and does not mean that the structure must be completely horizontal, but can be slightly tilted.
[0058] Furthermore, it should be noted that, in the description of this invention, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" 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 direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0059] Example 1
[0060] like Figure 1-3 and Figure 8As shown, the intelligent mop cleaning monitoring system of Embodiment 1 of the present invention includes a mop, a mop cleaning device (not shown in the figure), a monitoring unit 92, and an RFID reader (not shown in the figure). The mop 20 includes a mop board 21, a mop cloth 22, and a mop handle 23. The mop cloth 22 is disposed on the bottom surface of the mop board 21, and the mop handle 23 is rotatably connected to the top surface of the mop board 21. The mop cloth 22 is provided with an RFID tag (not shown in the figure). The mop cleaning device is disposed in the cleaning work room, and several monitoring units 92 are disposed at different monitoring points in the area to be cleaned. Furthermore, the mop cleaning device in this embodiment is specifically a horizontal mop cleaning device 380. The horizontal mop cleaning device 380 is equipped with a first RFID reader 73, a first display 91, and a control module (not shown in the figure). The horizontal mop cleaning device 380 is used to clean the mop cloth 22 and monitor the cleaning status of the mop cloth 22. The monitoring unit 92 is equipped with a second display 922, a second RFID reader 923, and a wireless module (not shown in the figure). The wireless module is wirelessly connected to the control module and / or a smart terminal. The second RFID reader 923 is used to monitor the usage area and usage status of the mop cloth 22. Furthermore, the RFID reader is used to identify and read the RFID tags on the mop cloth 22, thereby monitoring the cleaning and usage status of the mop cloth 22. The control module is communicatively connected to the first display 91, the second display 922, the first RFID reader 73, and the second RFID reader 923. The control module includes a processing module (not shown in the figure) and a storage module (not shown in the figure) for storing executable instructions from the processing module. The storage module stores preset cleaning and usage information for the mop 22 (ID number, cleaning time, usage time, usage area, usage location, replacement time, and other relevant management information). Furthermore, when the mop 22 is being cleaned and / or used, the RFID reader can automatically and wirelessly identify and read the RFID tag on the mop 22 without contact, and transmit the cleaning and usage information of the mop 22 (ID number, cleaning time, usage time, usage area, usage location, replacement time, etc.) to the control module. The control module compares the relevant information of the mop 22 to determine whether the mop 22 is being cleaned or used according to management regulations. The judgment result information and work instructions are transmitted to the first display 91, the second display 922 and the management terminal. The first display 91 and the second display 922 display the judgment result information and work instructions. The control module controls the cleaning device to execute the corresponding cleaning and disinfection work instructions. It can not only remind cleaning staff to clean and replace the mop 22 in time, but also monitor the cleaning and use of the mop 22. This allows managers and the public to supervise the cleaning and use of the mop 22 in a timely and effective manner, enabling managers to accurately grasp the cleaning work data of the mop 22, realize the intelligent management of the mop 20, and improve the public environmental hygiene and safety.
[0061] Furthermore, those skilled in the art will understand that RFID tags are electronic tags, which consist of a microchip and a radio antenna. They store unique data and transmit it to an RFID reader. This is a non-contact automatic identification technology that uses radio frequency signals to identify target objects and obtain data information without human intervention. RFID tags are small, have good signal penetration, and can be placed at any suitable location on an item. In this embodiment, the RFID tag can be attached to the surface of the mop 22, sewn inside the mop 22, or in any other feasible location.
[0062] Furthermore, those skilled in the art will understand that they can establish a communication connection between the control module and the smart terminal as needed. The smart terminal's database stores preset cleaning and usage information for each mop 22 (including the ID number of the mop 22, cleaning time, usage time, usage area, usage location, replacement time, and other specified requirements). When the smart terminal receives and stores the mop 22 cleaning and usage information transmitted by the control module, it retrieves the relevant information of the corresponding mop 22 from the database for comparison to determine whether it meets the preset requirements. The judgment result and work instructions are then sent to the control module and other management terminals. Other management terminals can be mobile terminal devices such as mobile phones or tablets, or terminal devices such as computers, allowing managers to accurately grasp the cleaning work data of the mop 22 and realize intelligent management of the mop 20 cleaning and usage.
[0063] like Figure 9 As shown, the monitoring unit 92 includes a monitoring box 921, a second display 922, a second RFID reader 923, and a wireless module. The second display 922 is located on the outside of the monitoring box 921. When the second RFID reader 923 reads and identifies the ID number in the RFID tag on the mop 22, the wireless module transmits the usage information of the mop 22 (ID number, usage time, usage area, usage location, etc.) to the control module.
[0064] Furthermore, those skilled in the art will understand that the second RFID reader can be connected to the control module via a cable.
[0065] like Figure 1-4 As shown, the horizontal mop cleaning device 380 includes a cleaning tank 10, a horizontal scrubbing frame 30, a guide 40, a limiting device 50, a drive mechanism 60, a first RFID reader 73, a first display 91, a drying module (not shown in the figure), and a control module. The control module is electrically connected to the drive mechanism 60, the drying module, the water inlet valve 71, and the drain valve 72.
[0066] like Figure 1-4 and Figure 6As shown, the washing tank 10 is provided with a washing chamber 13, which can accommodate the horizontal scrubbing rack 30 and washing water. The washing chamber 13 is provided with an opening 12, which is located at the top of the washing chamber 13. Furthermore, a cover 11 is provided at the opening 12, and a cover notch 15 is provided on one side of the cover 11. When the mop 20 is placed into the washing chamber 13 through the opening 12 and the cover 11 is closed, the mop handle 23 passes through the cover notch 15 and is placed against the side of the opening 12. At this time, the cover 11 can close the opening 12.
[0067] like Figure 1-4 As shown, a horizontal scrubbing rack 30, guide members 40, limiting devices 50 and a drive mechanism 60 are arranged inside the cleaning chamber 13. Two rows of guide members 40 are arranged at the bottom of the cleaning chamber 13, and two sets of limiting devices 50 are respectively arranged on the front and rear sides inside the cleaning chamber 13. The drive mechanism 60 is slidably connected to the horizontal scrubbing rack 30.
[0068] like Figure 3-6 As shown, the mop cloth 22 on the bottom surface of the mop 20 rests on the horizontal scrubbing frame 30, which includes a scrubbing plate 31, a connecting plate 32, and a lifting assembly 33. Further, the connecting plate 32 is installed on one side of the scrubbing plate 31 and has a groove 321. Further, the scrubbing plate 31 has continuously spaced raised scraping strips 34 and slots 35, with the raised scraping strips 34 contacting the mop cloth 22 on the bottom surface of the mop 20. Further, two rows of lifting assemblies 33 are arranged below the scrubbing plate 31, and each lifting assembly 33 has pulleys 331 that contact the bottom of the cleaning chamber 13.
[0069] Furthermore, those skilled in the art will understand that the horizontal scrubbing frame 30 moves back and forth a greater distance along the length of the mop 22 than the interval between the two scraping strips 34. This allows the horizontal scrubbing frame 30 to scrub and squeeze the mop 22 more thoroughly, thereby improving the cleaning effect.
[0070] Furthermore, those skilled in the art will understand that the scrubbing plate 31 can be any other feasible scrubbing plate. For example, the scrubbing plate has continuously spaced protrusions and grooves, without empty slots.
[0071] Furthermore, those skilled in the art will understand that the lifting assembly 33 can be any other feasible lifting assembly. For example, a lifting assembly equipped with ball bearings.
[0072] like Figure 3-6As shown, the guide member 40 is provided with a first step 41 and a second step 42 of different heights. Two rows of guide members 40 protrude from the bottom of the cleaning chamber 13, and the guide members 40 are configured correspondingly with the lifting assembly 33. The pulley 331 on the lifting assembly 33 moves up the first step 41 or the second step 42, causing the horizontal scrubbing frame 30 to move towards the mop 22. The scraping strip 34 on the horizontal scrubbing frame 30 applies pressure to the mop 22 on the bottom surface of the mop 20.
[0073] Furthermore, those skilled in the art will understand that the guide 40 can be configured as a multi-level step at different heights. When the lifting component 33 of the horizontal scrubbing frame 30 moves up to the step at different heights, the scraping strip 34 on the horizontal scrubbing frame 30 applies different levels of squeezing force to the mop cloth 22 on the bottom surface of the mop 20, so that the mop cloth 22 achieves different levels of scrubbing or dehydration effects, providing cleaning staff with mops 20 with different scrubbing intensities or different humidity levels, thereby improving the user experience.
[0074] Furthermore, those skilled in the art will understand that the guide 40 can be any other feasible guide. For example, a downwardly recessed guide can be provided at the bottom of the cleaning chamber 13.
[0075] like Figure 3-4 , Figure 6-7 As shown, the limiting device 50 includes a limiting motor 51, a motor gear 52, a rack 53, a transmission gear 54, a rotating shaft 55, and a limiting block 56. The limiting motor 51 is connected to the motor gear 52, the motor gear 52 meshes with the rack 53, the rack 53 meshes with the transmission gear 54, and the transmission gear 54 is connected to the limiting block 56 via the rotating shaft 55. When the mop 20 is placed flat on the horizontal scrubbing rack 30 through the opening 12, the limiting motor 51 drives the limiting block 56 to rotate into position, and the limiting block 56 locks onto the mop plate 21, thus limiting the upward movement height of the mop 20.
[0076] Furthermore, those skilled in the art can also install multiple sets of limiting devices 50 at any feasible location on the cleaning chamber 13 as needed. For example, four sets of limiting devices 50 can be installed on the four sides inside the cleaning chamber 13.
[0077] Furthermore, those skilled in the art will understand that the limiting device 50 can be engaged at any feasible position on the mop 20. For example, the side surface of the mop plate 21 is provided with multiple limiting grooves. When the motor drives the limiting block 56 to rotate into position, the limiting block 56 is engaged in the limiting groove on the side surface of the mop plate 21.
[0078] Furthermore, those skilled in the art will understand that the limiting device 50 can be any other feasible limiting device. For example, a limiting device composed of a linear motor, a slide rail, a slider, and a limiting block.
[0079] like Figure 3 , Figure 6 As shown, the drive mechanism 60 includes a drive motor 61, a lead screw 62, a lead screw nut 63, and a sliding connector 64. The drive motor 61 is connected to the lead screw 62, the lead screw 62 meshes with the lead screw nut 63, and the lead screw nut 63 is connected to the sliding connector 64. When the drive motor 61 drives the lead screw 62 to rotate, the lead screw nut 63 drives the sliding connector 64 to move laterally, and the sliding connector 64 drives the horizontal scrubbing frame 30 to reciprocate along the length of the mop 22. The horizontal scrubbing frame 30 scrubs and squeezes the mop 22.
[0080] like Figure 3 , Figure 5-6 As shown, the sliding connector 64 on the drive mechanism 60 passes through the slide groove 321 on the connecting plate 32 and is slidably connected to the connecting plate 32. The sliding connector 64 on the drive mechanism 60 can slide up and down within the slide groove 321.
[0081] Furthermore, those skilled in the art will understand that the drive mechanism 60 can be any other feasible drive mechanism. For example, a drive mechanism consisting of a drive motor, gears, racks, and sliding connectors.
[0082] Furthermore, those skilled in the art will understand that the sliding connection between the drive mechanism 60 and the horizontal washing rack 30 can be achieved using any other feasible sliding connection method. For example, the horizontal washing rack 30 and the drive mechanism 60 can be slidably connected via a sliding connecting rod device.
[0083] Furthermore, those skilled in the art can also install the drive mechanism 60 at any feasible location on the washing tank 10 as needed. For example, it can be installed below the horizontal scrubbing rack 30.
[0084] like Figure 3 As shown, the horizontal mop cleaning device 380 is equipped with a drying module 70, an inlet valve 71, and a drain valve 72. Further, the drain valve 72 is used to open or close the drain outlet at the bottom of the cleaning chamber 13. The drying module 70 includes a heater (not shown), a fan (not shown), a temperature sensor (not shown), and a humidity sensor (not shown). The fan draws outside air into the cleaning chamber 13, and the heater heats the air, creating a dry, hot airflow within the cleaning chamber 13. This dry, hot airflow evaporates moisture from the mop cloth 22, thus creating a humid, hot airflow, which is then discharged from the cleaning chamber 13, thereby drying and disinfecting the mop cloth 22.
[0085] The following is combined Figure 1-9 The first embodiment of the present invention will be further described below.
[0086] The cleaning staff opens the cover 11 on the cleaning tank 10, places the mop 20 flat on the horizontal scrubbing rack 30 through the opening 12, and places the mop handle 23 through the notch 15 in the cover against the side of the opening 12. Then, the cover 11 is closed, sealing the opening 12. Next, the cleaning staff starts the washing and dehydration program. The first RFID reader 73 automatically and wirelessly identifies and reads the RFID tag on the mop 22, transmitting the information to the control module and / or smart terminal. The control module controls the cleaning device to execute the corresponding washing and drying commands. The limit motor 51 rotates forward, driving the limit block 56 to rotate forward into position. The limit block 56 locks onto the mop plate 21, limiting the upward movement height of the mop 20. The drain valve 72 closes, and the water inlet valve 71 automatically opens, injecting washing water into the cleaning chamber 13. Once the washing water reaches the set water level, the water inlet valve 71 closes.
[0087] Preferably, the set water level in the washing chamber 13 is flush with the top surface of the mop 22, which is pressed flat on the bottom surface of the mop 20 on the horizontal scrubbing frame 30. This ensures the cleaning efficiency of the mop 22 and saves water consumption.
[0088] First-stage scrubbing: The drive motor 61 rotates forward, driving the lead screw 62 to rotate forward as well. The lead screw nut 63 drives the sliding connector 64 to move laterally, which in turn drives the horizontal scrubbing frame 30 to move along the length of the mop 22. When the pulley 331 on the lifting assembly 33 moves onto the first step 41, the scraping strip 34 on the horizontal scrubbing frame 30 applies pressure to the mop 22. The horizontal scrubbing frame 30 continues to move along the length of the mop 22, and the scraping strip 34 scrubs the mop 22 on the bottom surface of the mop 20. When the pulley 331 on the lifting assembly 33 moves to the end of the first step 41, the drive motor 61 reverses, driving the horizontal scrubbing frame 30 to move in the opposite direction, and the scraping strip 34 scrubs the mop 22 in the opposite direction. This process is repeated until the dirt on the mop 22 is scraped off by the scraping strip 34 and falls into the cleaning chamber 13 through the empty groove 35, completing the first-stage scrubbing.
[0089] Second-stage scrubbing: At this time, the pulley 331 on the lifting assembly 33 moves to the end of the first step 41, the drive motor 61 continues to rotate forward, and the horizontal scrubbing frame 30 moves along the length of the mop 22. When the pulley 331 on the lifting assembly 33 moves up to the second step 42, the scraping strip 34 applies greater pressure to the mop 22, and the horizontal scrubbing frame 30 continues to move along the length of the mop 22, with the scraping strip 34 scrubbing and squeezing the mop 22 with even greater force. When the pulley 331 on the lifting assembly 33 moves to the end of the second step 42, the drive motor 61 reverses, driving the horizontal scrubbing frame 30 to move in the opposite direction, and the scraping strip 34 scrubs the mop 22 in the opposite direction. This process is repeated, and the dirt on the mop 22 is scraped off by the scraping strip 34 and falls into the cleaning chamber 13 through the empty groove 35, completing the second-stage scrubbing.
[0090] Preferably, the horizontal scrubbing frame 30 moves along the length of the mop 22. When the pulley 331 on the lifting assembly 33 moves from the starting position to the end of the first step 41, the drive motor 61 continues to rotate forward. When the pulley 331 on the lifting assembly 33 moves to the end of the second step 42, the drive motor 61 reverses, causing the horizontal scrubbing frame 30 to move in the opposite direction, and the pulley 331 on the lifting assembly 33 moves back to the starting position. This process is repeated, and the scrubbing strip 34 applies continuous and varying pressure to the mop 22, which helps to improve the cleaning effect.
[0091] First stage of dehydration: Drain valve 72 opens, and washing water is discharged from cleaning chamber 13. At this time, pulley 331 on lifting assembly 33 moves to the starting position, drive motor 61 rotates forward, and horizontal scrubbing frame 30 moves along the length of mop 22. When pulley 331 on lifting assembly 33 moves onto the first step 41, scraping strip 34 applies pressure to mop 22, and horizontal scrubbing frame 30 continues to move along the length of mop 22, with scraping strip 34 squeezing and dehydrating mop 22. When pulley 331 on lifting assembly 33 moves to the end of the first step 41, drive motor 61 reverses, driving horizontal scrubbing frame 30 to move in the opposite direction, with scraping strip 34 squeezing and dehydrating mop 22 in the opposite direction. This process is repeated until the washing water on mop 22 is squeezed off and discharged from cleaning chamber 13 through drain valve 72, completing the first stage of dehydration.
[0092] Second stage of dehydration: At this time, the pulley 331 on the lifting assembly 33 moves to the end of the first step 41, the drive motor 61 rotates forward, the horizontal scrubbing frame 30 moves along the length of the mop 22, the pulley 331 on the lifting assembly 33 moves onto the second step 42 of the guide 40, the scraping strip 34 applies greater pressure to the mop 22, the horizontal scrubbing frame 30 continues to move along the length of the mop 22, and the scraping strip 34 applies greater pressure to the mop 22 for dehydration; when the pulley 331 on the lifting assembly 33 moves to the end of the second step 42, the drive motor 61 reverses, driving the horizontal scrubbing frame 30 to move in the opposite direction, and the scraping strip 34 applies reverse pressure to the mop 22 for dehydration, and so on, the washing water on the mop 22 is squeezed off and discharged from the washing chamber 13 through the drain valve 72, and the second stage of dehydration is completed.
[0093] Preferably, the horizontal scrubbing frame 30 moves along the length of the mop 22. When the pulley 331 on the lifting assembly 33 moves from the starting position to the end of the first step 41, the drive motor 61 continues to rotate forward. When the pulley 331 on the lifting assembly 33 continues to move to the end of the second step 42, the drive motor 61 reverses, causing the horizontal scrubbing frame 30 to move in the opposite direction, and the pulley 331 on the lifting assembly 33 moves back to the starting position. This process is repeated, and the scraping strip 34 applies continuous and varying pressure to the mop 22 for dehydration, which helps to improve the dehydration effect.
[0094] The drive motor 61 reverses, and the horizontal scrubbing rack 30 moves to the starting position. At this time, the washing water in the washing chamber 13 has been drained, and the drain valve 72 is closed.
[0095] Drying process: The heater and fan on the drying module 70 are automatically turned on. The fan introduces outside air into the cleaning chamber 13, which makes the air in the cleaning chamber 13 form a dry and hot airflow. The dry and hot airflow evaporates the moisture on the mop 22, thus forming a humid and hot airflow, which is then discharged from the cleaning chamber 13, thereby drying and disinfecting the mop 22.
[0096] During the heater's operation, the heater automatically shuts off when the temperature sensor detects that the temperature inside the cleaning chamber 13 is higher than the preset threshold; and automatically turns on when the temperature sensor detects that the gas temperature is lower than the preset threshold.
[0097] When the humidity sensor detects that the moisture content in the air inside the cleaning chamber 13 is lower than the preset threshold, the fan and heater automatically shut off, the cleaning and drying process is completed, the limit motor 51 reverses and drives the limit block 56 to reverse into place, the limit block 56 moves away from the mop board 21, and the cleaning and drying process is completed.
[0098] Finally, the cleaning staff opens the cover 11 and takes out the cleaned, dried, and disinfected mop 20 for cleaning. The first RFID reader 73 identifies the RFID tag on the mop 22 to obtain the information that the mop 22 has left the cleaning tank 10, and transmits the mop's usage information (ID number, usage time, etc.) to the control module and / or smart terminal. The control module and / or smart terminal receive and store the cleaning and disinfection information of the mop 22, and retrieves the corresponding relevant information from the database based on the ID number of the mop 22 for comparison to determine whether it meets the cleaning and disinfection requirements. The judgment result and work instructions are then displayed on the first display 91.
[0099] Using the monitoring process:
[0100] Several monitoring units 92 are set up at different monitoring points in the area to be cleaned. Cleaning staff use mops 22 to clean the area. The second RFID reader 923 on the monitoring unit 92 identifies the RFID tag on the mop 22. The monitoring unit 92 transmits the usage information of the mop 22 (ID number, usage time, usage area, usage location, etc.) to the control module. The control module and / or smart terminal receive and store the usage information of the mop 22, and retrieve the relevant information of the corresponding mop 22 from the database for comparison to determine whether it meets the preset requirements. The judgment result and work instructions are sent to the mop horizontal cleaning device 380 and other management terminals. The judgment result and specified information are displayed on the first display 91 and the second display 922 respectively, allowing managers and the public to monitor the cleaning and use of the mop 22 in a timely and effective manner, realizing intelligent management of mop cleaning and disinfection and the usage area, preventing cross-infection incidents, and improving public environmental hygiene and safety.
[0101] Example 2
[0102] The difference between Embodiment 2 and Embodiment 1 lies in the structure of the mop cleaning device. Embodiment 2 of this invention uses a vertical mop cleaning device 390. The following description, in conjunction with the appendix... Figure 10-17 The mop vertical cleaning device 390 of Embodiment 2 of the present invention will be further described.
[0103] like Figure 10-11 and Figure 15 As shown, the intelligent mop cleaning device of Embodiment 1 of the present invention includes a mop 20 and a vertical mop cleaning device 390. The mop 20 includes a mop board 21, a mop cloth 22 and a mop handle 23. The mop cloth 22 is disposed on the bottom surface of the mop board 21, and the mop handle 23 is rotatably connected to the top surface of the mop board 21. A limit groove 211 is provided on the top surface of the mop board 21.
[0104] like Figure 10-13 As shown, the mop vertical cleaning device includes a cleaning tank 10, a vertical scrubbing frame 370, a guide 40, a limiting component 570, a telescopic assembly 36, a drive mechanism 60, a first RFID reader 73, a first display 91, a drying module (not shown in the figure), and a control module (not shown in the figure). The control module is electrically connected to the drive mechanism 60, the drying module, the water inlet valve 71, and the drain valve 72, and is communicatively connected to the first display 91 and the first RFID reader 73.
[0105] like Figure 10-13As shown, the washing tank 10 is provided with a washing chamber 13, which can accommodate the vertical scrubbing rack 370 and washing water. The washing chamber 13 is provided with an inlet and outlet 12, which are located at the top of the washing chamber 13. Furthermore, a cover 11 is provided at the inlet and outlet 12, and a cover notch 15 is provided on one side of the cover 11. When the mop 20 is inserted into the set position in the washing chamber 13 through the inlet and outlet 12 and the cover 11 is closed, the mop handle 23 passes through the cover notch 15 and is placed against the side of the inlet and outlet 12. At this time, the cover 11 can close the inlet and outlet 12. A water inlet valve 71 is provided at the water inlet, and a drain valve 72 is provided at the drain outlet. The drain valve 72 is used to open or close the drain outlet.
[0106] Furthermore, those skilled in the art can also position the water inlet and drain outlet at any feasible location on the cleaning chamber 13 as needed. For example, the water inlet can be located in the middle of the side chamber of the cleaning chamber 13; and the drain outlet can be located at the lower part of the side of the cleaning chamber 13.
[0107] like Figure 9-11 As shown, a vertical scrubbing frame 370, a guide member 40, a limiting member 570, a telescopic assembly 36, and a drive mechanism 60 are disposed in the cleaning chamber 13. The guide member 40 and the limiting member 570 are respectively disposed on opposite side walls inside the cleaning chamber 13, the telescopic assembly 36 is disposed on the side of the vertical scrubbing frame 370, and the drive mechanism 60 is slidably connected to the vertical scrubbing frame 370.
[0108] like Figure 12-14 As shown, the vertical scrubbing rack 370 includes a scrubbing plate 31, a connecting plate 32, a lifting assembly 33, and a moving assembly 375. Further, the connecting plate 32 is installed on one side of the scrubbing plate 31, and a sliding groove 321 is provided on the connecting plate 32. Further, the side of the scrubbing plate 31 facing the mop 22 has continuously spaced raised scraping strips 34 that contact the mop 22. Further, the side of the scrubbing plate 31 facing the guide member 40 has two rows of lifting assemblies 33, and the lifting assemblies 33 are equipped with pulleys 331 that contact the inner wall of the cleaning chamber 13. Further, the lower part of the scrubbing plate 31 has a moving assembly 375, and the rollers 3751 on the moving assembly 375 contact the bottom of the cleaning chamber 13.
[0109] Furthermore, those skilled in the art will understand that the vertical scrubbing frame 370 moves back and forth a distance greater than the interval between the two scraping strips 34 along the length of the mop 22. This allows the vertical scrubbing frame 370 to scrub and squeeze the mop 22 more thoroughly, improving the cleaning effect.
[0110] Furthermore, those skilled in the art will understand that the scrubbing board 31 can be any other feasible scrubbing board. For example, a scrubbing frame with raised ridges and grooves.
[0111] Furthermore, those skilled in the art will understand that the lifting assembly 33 can be any other feasible lifting assembly. For example, a lifting assembly equipped with ball bearings.
[0112] Furthermore, those skilled in the art will understand that the moving component 375 can be any other feasible moving component. For example, a moving component equipped with balls.
[0113] like Figure 12-13 , Figure 17 As shown, the guide member 40 is provided with a first step 41 and a second step 42 of different heights. Two rows of guide members 40 protrude from the side wall of the cleaning chamber 13, and the guide members 40 are correspondingly configured with the lifting assembly 33. The pulley 331 on the lifting assembly 33 moves up the first step 41 or the second step 42, causing the vertical scrubbing frame 370 to move towards the mop 22. The scraping strip 34 on the vertical scrubbing frame 370 applies pressure to the mop 22 on the mop 20.
[0114] Furthermore, those skilled in the art will understand that the guide 40 can be configured as a multi-level step at different heights. When the lifting component 33 of the vertical scrubbing frame 370 moves up to the step at different heights, the scraping strip 34 on the vertical scrubbing frame 370 applies different levels of squeezing force to the mop 22 on the mop 20, so that the mop 22 obtains different levels of scrubbing or dehydration effects, providing cleaning staff with mops 20 with different scrubbing intensities or different humidity levels, thereby improving the user experience.
[0115] Furthermore, those skilled in the art will understand that the guide 40 can be any other feasible guide. For example, an outwardly recessed guide can be provided on the inner wall of the cleaning chamber 13.
[0116] like Figure 11-12 , Figure 16-17 As shown, the limiting member 570 includes a limiting wheel 571 and a limiting seat 572. The limiting member 570 is installed on the inner wall of the cleaning chamber 13. The limiting wheel 571 contacts the mop plate 21 on the mop 20, and the upper end of the limiting seat 572 contacts the mop 20 to limit the mop 20 to a set position.
[0117] Furthermore, those skilled in the art will understand that the limiting member 570 can be any other feasible limiting member. For example, a limiting member with balls or a limiting member without limiting wheels.
[0118] like Figure 12 , Figure 17As shown, the telescopic assembly 36 includes a telescopic rod 361, an elastic element 362, and a telescopic base 363. The telescopic base 363 and the scraping strip 34 are installed on the same side of the vertical scrubbing frame 370. The telescopic rod 361 contacts the inner wall of the cleaning chamber 13. The elastic element 362 opens the gap between the vertical scrubbing frame 370 and the limiting element 570 to accommodate the mop 20 inserted vertically.
[0119] Furthermore, those skilled in the art will understand that the telescopic component 36 can be any other feasible telescopic component. For example, a telescopic component equipped with pulleys or a telescopic component equipped with ball bearings.
[0120] Furthermore, those skilled in the art will understand that the telescopic assembly 36 can be installed at any feasible location within the cleaning chamber 13. For example, the telescopic base 363 is installed on the inner wall of the cleaning chamber 13.
[0121] like Figure 12 As shown, the drive mechanism 60 includes a drive motor 61, a lead screw 62, a lead screw nut 63, and a sliding connector 64. The drive motor 61 is connected to the lead screw 62, the lead screw 62 meshes with the lead screw nut 63, and the lead screw nut 63 is connected to the sliding connector 64. When the drive motor 61 drives the lead screw 62 to rotate, the lead screw nut 63 drives the sliding connector 64 to move laterally, and the sliding connector 64 drives the vertical scrubbing frame 370 to reciprocate along the length of the mop 22. The vertical scrubbing frame 370 reciprocates and scrubs the mop 22.
[0122] like Figure 12 and Figure 14 As shown, the sliding connector 64 on the drive mechanism 60 passes through the groove 321 on the connecting plate 32 and is slidably connected to the connecting plate 32. The sliding connector 64 on the drive mechanism 60 can slide within the groove 321.
[0123] Furthermore, those skilled in the art will understand that the drive mechanism 60 can be any other feasible drive mechanism. For example, a drive mechanism consisting of a drive motor, gears, racks, and sliding connectors.
[0124] Furthermore, those skilled in the art will understand that the sliding connection between the drive mechanism 60 and the upright washing rack 370 can be achieved using any other feasible sliding connection method. For example, the upright washing rack 370 and the drive mechanism 60 can be slidably connected via a sliding connecting rod device.
[0125] like Figure 12As shown, the mop upright cleaning device 390 is equipped with a drying module 70, a water inlet valve 71, and a drain valve 72. Further, the drain valve 72 is used to open or close the drain outlet at the bottom of the cleaning chamber 13. The drying module 70 includes a heater (not shown), a fan (not shown), a temperature sensor (not shown), and a humidity sensor (not shown). The fan draws outside air into the cleaning chamber 13, and the heater heats the air, creating a dry, hot airflow within the cleaning chamber 13. This dry, hot airflow evaporates moisture from the mop cloth 22, thus creating a humid, hot airflow, which is then discharged from the cleaning chamber 13, thereby drying and disinfecting the mop cloth 22.
[0126] Example 3
[0127] The difference between Embodiment 3 and Embodiment 1 is that the mop cleaning devices in the two embodiments have different structures. The mop cleaning device in Embodiment 3 of the present invention is a pulsator washing machine, which includes an RFID reader and a control module. The pulsator washing machine is used to clean the mop cloth removed from the mop board. The rest of the working method is the same as that in Embodiment 1.
[0128] Furthermore, those skilled in the art will understand that the mop cleaning device can be any other feasible mop cleaning device. For example, the mop cleaning device is a drum washing machine, which includes an RFID reader and a control module, and is used to clean the mop cloth removed from the mop board.
[0129] Based on the above description, this invention enables intelligent identification, automatic cleaning, and monitoring of mop cleaning and usage areas, thereby achieving intelligent management of mop cleaning and usage areas, preventing cross-infection incidents, and improving public environmental hygiene and safety.
[0130] Finally, it should be noted that while the preferred embodiments of the present invention have been described above in conjunction with the accompanying drawings, it will be readily understood by those skilled in the art that the scope of protection of the present invention is obviously not limited to these specific embodiments. Without departing from the principles of the present invention, those skilled in the art can make equivalent changes or substitutions to the relevant technical features, and the technical solutions resulting from these changes or substitutions will all fall within the scope of protection of the present invention.
Claims
1. A smart mop cleaning monitoring system, characterized in that, The intelligent mop cleaning and monitoring system includes a mop, a mop cleaning device, a monitoring unit, and an RFID reader. The mop includes a mop cloth, and the mop cloth is equipped with the RFID tag; The mop cleaning device is equipped with a cleaning chamber and a first RFID reader. The cleaning chamber can accommodate the mop cloth. The mop cleaning device is used to clean the mop cloth and monitor the cleaning status of the mop cloth. The monitoring unit includes a second RFID reader, which is used to monitor the area where the mop is used.
2. The intelligent mop cleaning monitoring system according to claim 1, characterized in that, The RFID reader is used to identify and read the RFID tag and transmit the cleaning and usage information of the mop to the control module.
3. The intelligent mop cleaning monitoring system according to claim 1 or 2, characterized in that, The control module includes a processing module and a storage module for storing executable instructions of the processing module. The storage module stores preset cleaning and usage information of the mop.
4. The intelligent mop cleaning monitoring system according to claim 1, characterized in that, The monitoring unit is installed at the monitoring point in the area to be cleaned, and the monitoring unit is equipped with a display screen for displaying the cleaning and usage information of the mop.
5. The intelligent mop cleaning monitoring system according to claims 1 and 4, characterized in that, The control module is communicatively connected to the first RFID reader, the second RFID reader, and the display.
6. The intelligent mop cleaning monitoring system according to claim 1, characterized in that, The mop cleaning device includes a horizontal mop cleaning unit, and the intelligent mop cleaning monitoring system includes a horizontal scrubbing frame, a guide, a limiting device, a drive mechanism, and a cleaning tank. The cleaning tank can hold the horizontal scrubbing frame and washing water. The guide is installed at the bottom of the cleaning tank. The limiting device is used to limit the upward movement height of the mop board. The drive mechanism drives the horizontal scrubbing frame to reciprocate within the cleaning tank. The horizontal scrubbing frame is used to squeeze the mop cloth.
7. The intelligent mop cleaning monitoring system according to claim 1, characterized in that, The mop cleaning device includes a vertical mop cleaning device, which includes a vertical scrubbing frame, a guide, a drive mechanism, and a cleaning tank. The cleaning tank can hold the vertical scrubbing frame and washing water. The guide is installed inside the cleaning tank. The drive mechanism drives the vertical scrubbing frame to reciprocate within the cleaning tank. The vertical scrubbing frame is used to squeeze the mop cloth.
8. The intelligent mop cleaning monitoring system according to claim 1, characterized in that, The mop cleaning device includes a pulsator washing machine for cleaning the mop cloth removed from the mop board.
9. The intelligent mop cleaning monitoring system according to claim 1, characterized in that, The mop cleaning device also includes a drying module, which is used to dry and disinfect the mop.