Shoe washing machine
Patent Information
- Application Number
- CN202521573842.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-25
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-07-25
AI Technical Summary
[0003]常规的洗鞋机往往体积较大且通透性较差,不方便用户直接直观的看到整个清洗过程,无法直观地了解洗涤效果;同时,当洗鞋机高速旋转(例如脱水时)时,滚筒会产生高速转动,当鞋体放置不均时筒体容易出现不规则甩动,甚至产生意外损伤,安全性较低
[0027]Through the above technical solution, this utility model embodiment provides a shoe washing machine, which has a cleaning power mechanism on the main control base and a receiving opening on the main control base. The cleaning receiving device is detachably installed in the receiving opening and has a storage chamber capable of accommodating the shoe body. The cleaning power mechanism is connected to the cleaning receiving device and partially extends into the storage chamber, thereby cleaning the shoe body. A protective cover is also provided on the main control base. When closed, the protective cover can cover the receiving opening, thereby enclosing the cleaning receiving device and improving overall safety and quietness. Furthermore, at least a portion of the sidewall of the storage chamber is transparent and forms a first observation window. At least a portion of the sidewall of the protective cover is also transparent and forms a second observation window. When closed, the first observation window corresponds to the second observation window, allowing the user to observe the cleaning process in real time through the second observation window and the first observation window. Compared with the prior art, the shoe washing machine provided in this utility model embodiment can see the entire cleaning process in real time and intuitively, increasing the visibility of the shoe washing machine, reducing the risk of accidental damage caused by the high-speed rotation of the device, increasing the safety of the shoe washing machine, and the protective cover can also block noise and improve quietness.
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Figure CN224748018U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of washing equipment technology, and more specifically, to a shoe washing machine. Background Technology
[0002] As people's living standards continue to improve, their demands for cleaning results are also increasing. Shoes are an indispensable part of people's lives. Due to rapid economic development, the materials used to make shoes have become more diverse, and the styles are becoming more numerous, thus increasing the difficulty of cleaning them.
[0003] Conventional shoe washing machines are often large and have poor ventilation, making it inconvenient for users to directly and intuitively see the entire washing process and understand the washing effect. At the same time, when the shoe washing machine rotates at high speed (such as during spin-drying), the drum will rotate at high speed. If the shoes are not placed evenly, the drum is prone to irregular swinging and may even cause accidental damage, resulting in low safety. Utility Model Content
[0004] The purpose of this application is to provide a shoe washing machine that allows for real-time and intuitive viewing of the entire cleaning process, increasing the machine's visibility and reducing the risk of accidental damage and operating noise during high-speed rotation, thereby enhancing its safety and quietness.
[0005] To achieve the above objectives, the embodiments of this utility model are implemented through the following solutions:
[0006] In a first aspect, this utility model provides a shoe washing machine, comprising:
[0007] The main control unit is equipped with a cleaning power mechanism, and the main control unit has an opening in the middle.
[0008] A cleaning receiving device is detachably disposed within a receiving opening and has a storage chamber for receiving the shoe body, wherein at least a portion of the sidewall of the storage chamber is transparent and forms a first observation window, and a cleaning power mechanism is configured to be connected to the cleaning receiving device and partially extend into the storage chamber to clean the shoe body.
[0009] A protective cover is movably mounted on the main control unit and configured to cover the receiving opening in the closed state to house the cleaning receiving device. At least a portion of the sidewalls of the protective cover are transparent and form observation windows. The second observation window is configured to at least partially correspond to and overlap with the first observation window in the closed state of the protective cover.
[0010] In an optional embodiment, the main control base includes a base platform, a support frame, and a top frame. The support frame is connected to one side edge of the base platform, and the top frame is connected to the top of the support frame and is disposed opposite to the base platform. The top frame, the base platform, and the support frame surround and form a receiving opening. The cleaning power mechanism is disposed on the base platform and / or the top frame. The cleaning receiving device is detachably disposed on the base platform. The protective cover is movably disposed on the base platform and is configured to slide between the support frame and the receiving opening.
[0011] In an optional embodiment, the edge of the base platform and / or the edge of the top frame are provided with a groove, the groove extending to the support frame, and the end of the protective cover is slidably received in the groove.
[0012] In an optional embodiment, the protective cover is made of a transparent material, and the support frame is provided with a relief groove for accommodating the protective cover, with a slide extending into the relief groove.
[0013] In an optional embodiment, the support frame is semi-cylindrical, the protective cover is semi-cylindrical, and the protective cover is spliced with the support frame to form a cylindrical structure when the protective cover is closed to accommodate the opening.
[0014] In an optional embodiment, the support frame includes a first movable frame and a second movable frame. The first movable frame is connected to one side edge of the base platform, and the second movable frame is connected to one side edge of the top frame. The second movable frame is movably mounted on the first movable frame and is configured to be movable relative to the second movable frame in the vertical direction to adjust the opening height of the accommodating opening.
[0015] In an optional embodiment, the cleaning power mechanism includes an ultrasonic cleaning component, a dehydration power component, and a water injection component. The water injection component is mounted on the top frame and configured to inject water into the storage chamber. The dehydration power component is mounted on the base platform and is connected to the cleaning container via a drive mechanism, configured to drive the cleaning container to rotate. The ultrasonic cleaning component is mounted in the top frame and / or support frame and partially extends into the storage chamber, configured to drive the cleaning water in the storage chamber to vibrate.
[0016] In an optional embodiment, the ultrasonic cleaning assembly includes an ultrasonic generator and a transducer probe. The ultrasonic generator is disposed within a support frame or top frame, and the transducer probe is connected to the ultrasonic generator and extends partially into the storage chamber.
[0017] In an optional embodiment, the dehydration power assembly includes a dehydration drive and a dehydration shaft. The dehydration shaft is rotatably mounted on a base platform. The dehydration drive is disposed within the base platform and is drive-connected to the dehydration shaft. The dehydration shaft is drive-connected to a cleaning container and is configured to drive the cleaning container to rotate.
[0018] In an optional embodiment, the water injection assembly includes a water inlet valve and a water inlet pipe. The water inlet valve is mounted on the top frame, and one end of the water inlet pipe is connected to the water inlet valve, while the other end is connected to the storage chamber.
[0019] In an optional embodiment, the cleaning power mechanism further includes a drying and sterilization component disposed within the top frame. The drying and sterilization component is configured to inject hot air into the storage chamber for drying and to sterilize the storage chamber.
[0020] In an optional embodiment, the drying and sterilization component includes a fan, a heating module, and a hot air duct. The fan is mounted on the top frame, one end of the hot air duct is connected to the fan, and the other end is connected to the storage chamber. The heating module is located at the air outlet of the fan.
[0021] In an optional embodiment, the bottom of the washing container is provided with an exhaust port that is selectively connected to the storage chamber and is configured to discharge the gas in the storage chamber during drying.
[0022] In an optional embodiment, an operation panel is also provided on the top frame. The operation panel has a built-in control module. The control module is communicatively connected to the ultrasonic cleaning component, the dehydration power component, the water injection component, and the drying and sterilization component. The operation panel is configured to control the start and stop of the ultrasonic cleaning component, the dehydration power component, the water injection component, and the drying and sterilization component through the control module.
[0023] In an optional embodiment, the cleaning container includes a container tube made of a transparent material and having at least two storage chambers inside.
[0024] In an optional embodiment, the two ends of the receiving cylinder are respectively provided with a first opening and a second opening, both of which are in communication with at least one storage chamber. A bottom cover is provided at the first opening, which is detachably rotatably connected to the base platform. A top cover is provided at the second opening, which is detachably rotatably connected to the top frame.
[0025] In an optional embodiment, a drain pipe is also provided on the base platform. One end of the drain pipe is connected to the bottom cover and communicates with the storage chamber, and the other end is connected to the bottom of the base platform. The drain pipe is configured to drain dirty water from the storage chamber after washing.
[0026] In an optional embodiment, a porous partition is provided inside the receiving tube, the porous partition being located in the middle of the receiving tube and dividing the interior of the receiving tube into two storage chambers.
[0027] Through the above technical solution, this utility model embodiment provides a shoe washing machine, which has a cleaning power mechanism on the main control base and a receiving opening on the main control base. The cleaning receiving device is detachably installed in the receiving opening and has a storage chamber capable of accommodating the shoe body. The cleaning power mechanism is connected to the cleaning receiving device and partially extends into the storage chamber, thereby cleaning the shoe body. A protective cover is also provided on the main control base. When closed, the protective cover can cover the receiving opening, thereby enclosing the cleaning receiving device and improving overall safety and quietness. Furthermore, at least a portion of the sidewall of the storage chamber is transparent and forms a first observation window. At least a portion of the sidewall of the protective cover is also transparent and forms a second observation window. When closed, the first observation window corresponds to the second observation window, allowing the user to observe the cleaning process in real time through the second observation window and the first observation window. Compared with the prior art, the shoe washing machine provided in this utility model embodiment can see the entire cleaning process in real time and intuitively, increasing the visibility of the shoe washing machine, reducing the risk of accidental damage caused by the high-speed rotation of the device, increasing the safety of the shoe washing machine, and the protective cover can also block noise and improve quietness.
[0028] Other features and advantages of this application will be described in detail in the following detailed description section. Attached Figure Description
[0029] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0030] Figure 1 A schematic diagram of the overall structure of the shoe washing machine provided in the embodiment of this application from a first-view perspective;
[0031] Figure 2 A schematic diagram of the overall structure of the shoe washing machine provided in the embodiment of this application from a second perspective;
[0032] Figure 3 An exploded view of the shoe washing machine provided in an embodiment of this application from a second perspective.
[0033] Figure 4 This is a cross-sectional view of the overall structure of the shoe washing machine provided in the embodiments of this application from a third-person perspective;
[0034] Figure 5 This is a schematic diagram of the shoe washing machine in other preferred embodiments of this application;
[0035] Figure 6 for Figure 4 First partial structural sectional view in the image;
[0036] Figure 7 for Figure 4 The second partial structural sectional view in the image;
[0037] Figure 8 for Figure 3 Control panel diagram;
[0038] Figure 9 for Figure 2 Schematic diagram of the structure of the cleaning and containing device;
[0039] Figure 10 for Figure 2 Cross-sectional view of the cleaning and containing device.
[0040] icon:
[0041] 100-Shoe washing machine; 110-Main control unit; 111-Accommodation opening; 112-Base platform; 113-Support frame; 114-Top frame; 115-First movable frame; 116-Second movable frame; 117-Operation panel; 118-Control module; 120-Washing container; 121-Storage chamber; 122-Exhaust vent; 123-Drain pipe; 124-Accommodation cylinder; 125-First opening; 126-Second opening; 127-Bottom cover; 128-Top cover; 129-Porous partition Plate; 130-Protective cover; 131-Slide groove; 133-Leaving groove; 140-Cleaning power mechanism; 150-Ultrasonic cleaning component; 151-Ultrasonic generator; 153-Voscillator probe; 160-Dehydration power component; 161-Dehydration drive component; 163-Dehydration shaft; 170-Water injection component; 171-Water inlet valve; 173-Water inlet pipe; 180-Drying and sterilization component; 181-Fan; 182-Heating module; 183-Hot air duct; 184-Ultraviolet sterilization module. Detailed Implementation
[0042] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. The components of the embodiments of this application described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0043] In the description of this application, it should be noted that the terms "inner" and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product is in use. They are used only for the convenience of describing this application and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application. Furthermore, the terms "first," "second," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0044] In the description of this application, it should also be noted that, unless otherwise expressly specified and limited, the terms "setup" and "connection" 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 connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0045] As disclosed in the background section, existing shoe washing machines typically use a pulsator roller with added brush heads to clean the shoes, resulting in poor cleaning performance. Furthermore, their complex structure makes it difficult to monitor the cleaning process in real time due to the poor permeability between the roller and the outer casing. Additionally, during the spin-drying process, the high-speed rotation of the roller can cause irregular swaying when the shoes are unevenly placed, increasing the risk of accidental damage when the lid is opened for inspection, thus reducing safety. Moreover, existing shoe washing machines are structurally complex and occupy a large area.
[0046] To address the aforementioned problems, this utility model provides a novel shoe washing machine. The specific structure and working principle of the shoe washing machine are described in detail below.
[0047] See Figures 1 to 4 This utility model provides a shoe washing machine 100 that allows for real-time and intuitive monitoring of the entire washing process, increasing the visibility of the shoe washing machine 100. It also reduces the risk of accidental damage and operating noise caused by high-speed rotation, improving the safety and quietness of the shoe washing machine 100. Furthermore, it offers better cleaning results, integrates washing and drying functions, has a simple structure, and occupies less space.
[0048] The shoe washing machine 100 provided in this embodiment includes a main control base 110, a cleaning and receiving device 120, and a protective cover 130. A cleaning power mechanism 140 is disposed on the main control base 110, and a receiving opening 111 is provided in the middle of the main control base 110. The cleaning and receiving device 120 is detachably disposed within the receiving opening 111 and has a storage chamber 121 for receiving shoes. At least a portion of the sidewalls of the storage chamber 121 is transparent, forming a first observation window. The cleaning power mechanism 140 is configured to connect to the cleaning and receiving device 120 and partially extend into the storage chamber 121 to clean the shoes. The protective cover 130 is movably mounted on the main control base 110 and is configured to cover the receiving opening 111 in the closed state to enclose the cleaning receiving device 120. At least a portion of the sidewalls of the protective cover 130 are transparent and form a second observation window, which is configured to at least partially correspond to and overlap with the first observation window in the closed state of the protective cover 130.
[0049] It should be noted that the protective cover 130 has a closed state and an open state, which can be switched freely between the closed and open states automatically or manually. When the protective cover 130 is in the closed state, it covers the receiving opening 111, thus enclosing the cleaning receiving device 120 and providing additional protection to prevent accidental damage. When the protective cover 130 is in the open state, it fully exposes the receiving opening 111, facilitating the installation or removal of the cleaning receiving device 120.
[0050] In actual use, the shoe body can first be placed into the storage chamber 121 of the cleaning container 120, then the cleaning container 120 is installed on the main control base 110, and then the protective cover 130 is closed so that the first observation window corresponds to the second observation window. Finally, the cleaning power mechanism 140 cleans the shoe body. Because the first and second observation windows correspond, the user can observe the inside of the storage chamber 121 through the two transparent observation windows during the actual cleaning process, and see the entire cleaning process in real time and intuitively, increasing the visibility of the shoe washing machine 100. Furthermore, due to the protective function of the protective cover 130, there is no need to worry about accidental damage during observation, reducing the risk of accidental damage caused by the high-speed rotation of the device and increasing the safety of the shoe washing machine 100.
[0051] The main control base 110 includes a base platform 112, a support frame 113, and a top frame 114. The support frame 113 is connected to one edge of the base platform 112, and the top frame 114 is connected to the top of the support frame 113 and is disposed opposite to the base platform 112. The top frame 114, the base platform 112, and the support frame 113 form an accommodating opening 111. A cleaning power mechanism 140 is disposed on the base platform 112 and / or the top frame 114. A cleaning accommodating device 120 is detachably disposed on the base platform 112. A protective cover 130 is movably disposed on the base platform 112 and configured to slide between the support frame 113 and the accommodating opening 111. Specifically, the base platform 112, the support frame 113, and the top frame 114 can be integrally disposed and covered by a shell. In terms of appearance, both the base platform 112 and the top frame 114 can be cylindrical, and the cleaning power mechanism 140 can be disposed on the base platform 112 and the top frame 114. The base 112 has a tabletop for supporting the cleaning container. The space between the tabletop and the top frame 114 is configured as a receiving opening 111. The receiving opening 111 can accommodate the cleaning container 120 and realize the functions of cleaning, spin-drying, drying and sterilization through the cleaning power mechanism 140. The specific functions are described later.
[0052] In some embodiments, the edges of the base 112 and / or the top frame 114 are provided with grooves 131, which extend to the support frame 113. The end of the protective cover 130 is slidably accommodated in the grooves 131. Specifically, in this embodiment, the grooves 131 can be provided on the edges of the base 112, extending into the support frame 113. The bottom end of the protective cover 130 is slidably accommodated in the grooves 131, thereby allowing switching between a closed state and an open state. The sliding of the protective cover 130 can be manually operated, and the grooves 131 have a certain damping, so the protective cover 130 will not slide freely without external force, ensuring the stability of the protective cover 130 during use. Of course, in other preferred embodiments of this invention, the edge of the top frame 114 can also be provided with a groove 131, allowing the protective cover 130 to slide simultaneously with both the top frame 114 and the base 112, further improving the structural stability of the protective cover 130.
[0053] In some embodiments, the protective cover 130 is made of a transparent material, allowing the second observation window to extend to the entire sidewall of the protective cover 130. The support frame 113 is provided with a recess 133 for accommodating the protective cover 130, and a sliding groove 131 extends into the recess 133. Preferably, the protective cover 130 can be made of explosion-proof glass or transparent acrylic sheet. The shape of the recess 133 on the support frame 113 is adapted to the shape of the protective cover 130, allowing the protective cover 130 to slide into the recess 133 when open, ensuring overall consistency and aesthetics. Specifically, in this embodiment, the recess 133 is located on the outside of the support frame 113, allowing the sliding groove 131 to extend directly to the outer edge of the support frame 113. This allows the protective cover 130 to fit snugly against the outside of the support frame 113 when open, resulting in higher visibility and easier manual operation. Of course, in other preferred embodiments of this utility model, the clearance groove 133 can also be set inside the support frame 113, so that the protective cover 130 can be retracted inside the support frame 113 when the receiving opening 111 is opened, thus achieving concealment.
[0054] In some embodiments, the support frame 113 is semi-cylindrical, and the protective cover 130 is semi-cylindrical. When the protective cover 130 is closed to accommodate the opening 111, it is joined with the support frame 113 to form a cylindrical structure. Specifically, in the closed state, the protective cover 130 and the support frame 113 are joined to form a cylindrical structure, and the top frame 114 and the base platform 112 are also cylindrical structures. This improves the overall integrity and aesthetics of the device. The semi-cylindrical support frame 113 also precisely accommodates the semi-cylindrical protective cover 130 when open, preventing the protective cover 130 from interfering with the assembly and disassembly of the cleaning container 120.
[0055] See Figure 5In some embodiments, the support frame 113 includes a first movable frame 115 and a second movable frame 116. The first movable frame 115 is connected to one side edge of the base platform 112, and the second movable frame 116 is connected to one side edge of the top frame 114. The second movable frame 116 is movably mounted on the first movable frame 115 and is configured to move relative to the first movable frame 115 in the vertical direction to adjust the opening height of the receiving opening 111. Specifically, the first movable frame 115 is located at the bottom of the second movable frame 116, and the first movable frame 115 and the second movable frame 116 can be movably mounted through a sleeve structure. In practical use, the second movable frame 116 can be raised first, increasing the opening height of the receiving opening 111 and expanding its range to facilitate the installation of the cleaning receiving device 120. Once the cleaning receiving device 120 is in place, the second movable frame 116 can be lowered to restore the opening height of the receiving opening 111 to match the height of the cleaning receiving device 120, thus allowing the top frame 114 to press down on and fix the cleaning receiving device 120. During disassembly, the second movable frame 116 can also be raised first to facilitate the removal of the cleaning receiving device 120. By employing the movable assembly of the first movable frame 115 and the second movable frame 116, interference from the top frame 114 can be minimized, making the assembly and disassembly of the cleaning receiving device 120 more convenient and faster.
[0056] It should be noted that the lifting and lowering actions of the second movable frame 116 can be achieved manually or through a lifting drive component (such as a hydraulic cylinder), and no specific limitation is made here.
[0057] See Figure 6 and Figure 7Furthermore, the cleaning power mechanism 140 includes an ultrasonic cleaning assembly 150, a dehydration power assembly 160, and a water injection assembly 170. The water injection assembly 170 is mounted on the top frame 114 and configured to inject water into the storage chamber 121. The dehydration power assembly 160 is mounted on the base platform 112 and is connected to the cleaning container 120 via a transmission connection, configured to drive the cleaning container 120 to rotate. The ultrasonic cleaning assembly 150 is mounted in the top frame 114 and / or the base platform 112 and partially extends into the storage chamber 121, configured to vibrate the cleaning water in the storage chamber 121. Specifically, there can be two ultrasonic cleaning assemblies 150, one mounted in the top frame 114 and the other mounted in the base platform 112, so that they can extend into the storage chamber 121 from the upper and lower ends respectively and provide a vibration cleaning function to the cleaning water in the storage chamber 121. Meanwhile, the ultrasonic cleaning component 150 is used to clean the shoe body, resulting in better cleaning. The ultrasonic cleaning component 150 is separately positioned outside the cleaning container, preventing dirt from directly entering its interior and extending its service life. The dehydration power component 160 is located within the base platform 112, ensuring more stable and reliable dehydration. The water injection component 170 is located on the top frame 114, facilitating water injection while ensuring the required water volume is achieved in the storage chamber 121.
[0058] In some embodiments, the ultrasonic cleaning assembly 150 includes an ultrasonic generator 151 and a transducer probe 153. The ultrasonic generator 151 is disposed within the base 112 or the top frame 114, and the transducer probe 153 is connected to the ultrasonic generator 151 and partially extends into the storage chamber 121. Specifically, the transducer probe 153 may be provided with multiple ultrasonic oscillating plates. The installation angles and positions of the multiple ultrasonic oscillating plates are different, so that the cleaning water generates a uniform impact force in all directions, thus better cleaning all parts of the shoe. The liquid entering the transducer probe 153 generates countless tiny vacuum bubbles under the high-speed oscillation of the multiple ultrasonic oscillating plates, creating a cavitation effect. When these countless tiny vacuum bubbles burst under pressure, they generate a powerful impact force, breaking up and peeling off the dirt attached to the surface of the shoe and the crevices, achieving a thorough cleaning effect.
[0059] In some embodiments, the dehydration power assembly 160 includes a dehydration drive 161 and a dehydration shaft 163. The dehydration shaft 163 is rotatably mounted on a base 112. The dehydration drive 161 is disposed within the base 112 and is driveably connected to the dehydration shaft 163. The dehydration shaft 163 is driveably connected to a cleaning container 120 and configured to drive the cleaning container 120 to rotate. Specifically, the dehydration drive 161 may be a servo dehydration motor. The output shaft of the servo motor is provided with a first pulley, and the dehydration shaft 163 is provided with a second pulley. The first pulley and the second pulley are connected by a belt, thereby realizing the transmission between the motor and the dehydration shaft 163.
[0060] In some embodiments, the water injection assembly 170 includes an inlet valve 171 and an inlet pipe 173. The inlet valve 171 is mounted on the top frame 114, and one end of the inlet pipe 173 is connected to the inlet valve 171, while the other end connects to the storage chamber 121. Specifically, the inlet valve can be connected to an external water pipe to control the water injection volume. Furthermore, a water level monitor can be installed on the top frame 114 to monitor the water level in the storage chamber 121. When the water level reaches a preset value, the inlet valve 171 can be closed.
[0061] Furthermore, the cleaning power mechanism 140 also includes a drying and sterilization component 180, which is disposed within the top frame 114. The drying and sterilization component 180 is configured to inject hot air into the storage chamber 121 for drying and to sterilize the storage chamber 121. Specifically, the drying and sterilization component 180 can achieve both drying and sterilization functions, integrating washing, drying, and sterilization into one device, greatly meeting people's daily needs and making the overall device more versatile and providing a better user experience. In this embodiment, drying can be performed using hot air and sterilization using blue light. In other preferred embodiments of this invention, the hot air temperature can be increased to directly sterilize using high temperature.
[0062] In some embodiments, the drying and sterilization assembly 180 includes a fan 181, a heating module 182, a hot air duct 183, and an ultraviolet sterilization module 184. The fan 181 is mounted on the top frame 114. One end of the hot air duct 183 is connected to the fan 181, and the other end is connected to the storage chamber 121. The heating module 182 is located at the air outlet of the fan 181, and the ultraviolet sterilization module 184 is connected in series at the air outlet of the hot air duct 183. Specifically, the ultraviolet sterilization module 184 is located on the top wall of the storage chamber 121, enabling direct sterilization of the storage chamber 121. The heating module 182 can be a resistance wire heating structure, which can quickly heat the air sent into the hot air duct 183 by the fan 181 and then introduce it into the storage chamber 121 through the hot air duct 183 to achieve drying.
[0063] In some embodiments, the bottom of the cleaning container 120 is provided with an exhaust port 122, which is selectively connected to the storage chamber 121 and configured to discharge gas from the storage chamber 121 during drying. Specifically, the exhaust port 122 may be provided with an exhaust valve, which opens only during drying to balance the air pressure inside the storage chamber 121. During cleaning, the exhaust valve can be closed to prevent water leakage.
[0064] In some embodiments, a drain pipe 123 is also provided on the base 112. One end of the drain pipe 123 is connected to the bottom cover 127 and communicates with the storage chamber 121, and the other end is connected to the bottom of the base 112. The drain pipe 123 is configured to drain dirty water from the storage chamber 121 after washing. Specifically, a drain valve is provided on the drain pipe 123 to control the timing of drainage, and the drain pipe 123 can be built into the base 112, thereby making the overall appearance more concise.
[0065] See Figure 3 and Figure 8 In some embodiments, the top frame 114 is also equipped with an operation panel 117, which has a built-in control module 118. The control module 118 is communicatively connected to the ultrasonic cleaning assembly 150, the dehydration power assembly 160, the water injection assembly 170, and the drying and sterilization assembly 180. The operation panel 117 is configured to control the start and stop of the ultrasonic cleaning assembly 150, the dehydration power assembly 160, the water injection assembly 170, and the drying and sterilization assembly 180 through the control module 118. Specifically, the operation panel 117 may be equipped with a water inlet button, a drain button, a washing button, a spin-drying button, a drying and sterilization button, and a speed setting. The water inlet button is communicatively connected to the water inlet valve 171 through the control module 118 to control the entry of clean water into the storage chamber 121. The drain button is connected to the drain valve on the drain pipe 123 through the control module 118 to control the discharge of wastewater from the storage chamber 121. The washing button and the ultrasonic generator 151 are communicatively connected via the control module 118. When washing is required, the ultrasonic generator 151 is activated. The spin-dry button is connected to the spin-dry motor and controls its rotation. The drying and sterilization button is communicatively connected to the drying and sterilization assembly 180 via the control module 118 and controls whether drying and sterilization are required. Alternatively, this embodiment can also include a fully automatic button, which automatically performs the washing, spin-drying, drying, and sterilization process without human intervention.
[0066] See Figure 9 and Figure 10 In some embodiments, the cleaning container 120 includes a container cylinder 124 made of a transparent material and having at least two storage chambers 121 formed inside, such that the first viewing window extends to the entire sidewall of the storage chamber 121. Specifically, the container cylinder 124 is cylindrical and made of transparent acrylic material, and has multiple storage chambers 121 formed inside, enabling the simultaneous cleaning of multiple shoes. To suit cleaning habits, this embodiment of the invention preferably arranges two storage chambers 121 inside the container cylinder 124, thereby enabling the simultaneous cleaning of a pair of shoes.
[0067] In some embodiments, the two ends of the receiving cylinder 124 are respectively provided with a first opening 125 and a second opening 126, both of which are connected to at least one storage chamber 121. A bottom cover 127 is provided at the first opening 125, and the bottom cover 127 is detachably rotatably connected to the base platform 112. A top cover 128 is provided at the second opening 126, and the top cover 128 is detachably rotatably connected to the top frame 114. Specifically, both the top cover 128 and the bottom cover 127 are rotatably connected structures. The top cover 128 is rotatably connected to the top frame 114, and the bottom cover 127 is drively connected to the dehydration shaft 163. At the same time, the bottom side of the receiving cylinder 124 is detachably connected to the bottom cover 127. Therefore, the bottom cover 127 can be rotated by the dehydration shaft 163, which in turn drives the receiving cylinder 124 to rotate.
[0068] Furthermore, the bottom cover 127 has external threads around its periphery and an additional sealing ring, while the inner side of the bottom end of the receiving cylinder 124 has internal threads, allowing the receiving cylinder 124 and the bottom cover 127 to be threadedly assembled, ensuring the transmission effect between the two. The sealing ring design also ensures the sealing of the first opening 125, preventing water leakage.
[0069] In some embodiments, a perforated partition 129 is provided inside the receiving cylinder 124. The perforated partition 129 is located in the middle of the receiving cylinder 124 and divides the interior of the receiving cylinder 124 into two storage chambers 121. Specifically, the perforated partition 129 can be a stainless steel perforated plate, and it precisely divides the interior of the receiving cylinder 124 into two storage chambers 121 with the same upper and lower volume. The volume of the two storage chambers 121 can be perfectly adapted to a shoe body, so that two shoes can be washed at the same time.
[0070] In summary, this utility model embodiment provides a shoe washing machine 100, which has a cleaning power mechanism 140 on a main control base 110 and a receiving opening 111 on the main control base 110. A cleaning receiving device 120 is detachably disposed within the receiving opening 111 and has a storage chamber 121 capable of accommodating shoes. The cleaning power mechanism 140 is connected to the cleaning receiving device 120 and partially extends into the storage chamber 121, thereby cleaning the shoes. A protective cover 130 is also provided on the main control base 110. When closed, the protective cover 130 can cover the receiving opening 111, thus enclosing the cleaning receiving device 120 and improving overall safety. Furthermore, at least a portion of the sidewall of the storage chamber 121 is transparent and forms a first observation window. At least a portion of the sidewall of the protective cover 130 is also transparent and forms a second observation window. When closed, the first and second observation windows correspond, allowing the user to observe the cleaning process in real time through both the first and second observation windows. Compared with the prior art, the shoe washing machine 100 provided in this embodiment of the utility model can see the entire cleaning process in real time and intuitively, which increases the visibility of the shoe washing machine 100, and can reduce the risk of accidental damage and working noise caused by the high-speed rotation of the device, thereby improving the safety and quietness of the shoe washing machine 100.
[0071] It should be noted that, where there is no conflict, the features in the embodiments of this application can be combined with each other.
[0072] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A shoe washing machine, characterized in that, include: A main control base (110) is provided with a cleaning power mechanism (140), and a receiving opening (111) is provided in the middle of the main control base (110); A cleaning receiving device (120) is detachably disposed within the receiving opening (111) and has a storage chamber (121) for receiving the shoe body. At least a portion of the sidewall of the storage chamber (121) is transparent and forms a first observation window. The cleaning power mechanism (140) is configured to connect to the cleaning receiving device (120) and partially extend into the storage chamber (121) to clean the shoe body. A protective cover (130) is movably disposed on the main control base (110) and configured to cover the receiving opening (111) in a closed state to enclose the cleaning receiving device (120). At least a portion of the sidewall of the protective cover (130) is transparent and forms a second observation window, which is configured to at least partially correspond to and overlap with the first observation window in the closed state of the protective cover.
2. The shoe washing machine according to claim 1, characterized in that, The main control base (110) includes a base platform (112), a support frame (113), and a top frame (114). The support frame (113) is connected to one side edge of the base platform (112), and the top frame (114) is connected to the top of the support frame (113) and is arranged opposite to the base platform (112). The top frame (114), the base platform (112), and the support frame (113) surround and form the receiving opening (111). The cleaning power mechanism (140) is disposed on the base platform (112) and / or the top frame (114). The cleaning receiving device (120) is detachably disposed on the base platform (112). The protective cover (130) is movably disposed on the base platform (112) and is configured to move between the support frame (113) and the receiving opening (111).
3. The shoe washing machine according to claim 2, characterized in that, The edge of the base platform (112) and / or the edge of the top frame (114) are provided with a sliding groove (131), the sliding groove (131) extends to the support frame (113), and the end of the protective cover (130) is slidably accommodated in the sliding groove (131).
4. The shoe washing machine according to claim 3, characterized in that, The protective cover (130) is made of transparent material, and the support frame (113) is provided with a relief groove (133) for accommodating the protective cover (130), and the slide (131) extends into the relief groove (133).
5. The shoe washing machine according to claim 2, characterized in that, The support frame (113) is semi-cylindrical, and the protective cover (130) is semi-cylindrical. The protective cover (130) is joined with the support frame (113) to form a cylindrical structure when the receiving opening (111) is closed.
6. The shoe washing machine according to claim 2, characterized in that, The support frame (113) includes a first movable frame (115) and a second movable frame (116). The first movable frame (115) is connected to one side edge of the base platform (112), and the second movable frame (116) is connected to one side edge of the top frame (114). The second movable frame (116) is movably mounted on the first movable frame (115) and is configured to be able to move relative to the second movable frame (116) in the vertical direction to adjust the opening height of the receiving opening (111).
7. The shoe washing machine according to claim 2, characterized in that, The cleaning power mechanism (140) includes an ultrasonic cleaning assembly (150), a dehydration power assembly (160), and a water injection assembly (170). The water injection assembly (170) is disposed on the top frame (114) and configured to inject water into the storage chamber (121). The dehydration power assembly (160) is disposed on the base platform (112) and is connected to the cleaning receiving device (120) via a transmission connection. It is configured to drive the cleaning receiving device (120) to rotate. The ultrasonic cleaning assembly (150) is disposed in the top frame (114) and / or the base platform (112) and extends partially into the storage chamber (121). It is configured to drive the cleaning water in the storage chamber (121) to vibrate.
8. The shoe washing machine according to claim 7, characterized in that, The ultrasonic cleaning assembly (150) includes an ultrasonic generator (151) and a transducer probe (153). The ultrasonic generator (151) is disposed in the support frame (113) or the base platform (112). The transducer probe (153) is connected to the ultrasonic generator (151) and extends partially into the storage chamber (121).
9. The shoe washing machine according to claim 7, characterized in that, The dehydration power assembly (160) includes a dehydration drive (161) and a dehydration shaft (163). The dehydration shaft (163) is rotatably mounted on the base platform (112). The dehydration drive (161) is disposed within the base platform (112) and is drive-connected to the dehydration shaft (163). The dehydration shaft (163) is drive-connected to the cleaning container (120) and is configured to drive the cleaning container (120) to rotate.
10. The shoe washing machine according to claim 7, characterized in that, The water injection assembly (170) includes a water inlet valve (171) and a water inlet pipe (173). The water inlet valve (171) is mounted on the top frame (114). One end of the water inlet pipe (173) is connected to the water inlet valve (171), and the other end is connected to the storage chamber (121).
11. The shoe washing machine according to claim 7, characterized in that, The cleaning power mechanism (140) further includes a drying and sterilization component (180), which is disposed in the top frame (114). The drying and sterilization component (180) is configured to inject hot air into the storage chamber (121) for drying and to sterilize the storage chamber (121).
12. The shoe washing machine according to claim 11, characterized in that, The drying and sterilization component (180) includes a fan (181), a heating module (182), and a hot air duct (183). The fan (181) is mounted on the top frame (114). One end of the hot air duct (183) is connected to the fan (181), and the other end is connected to the storage chamber (121). The heating module (182) is located at the air outlet of the fan (181).
13. The shoe washing machine according to claim 11, characterized in that, The bottom of the cleaning container (120) is provided with an exhaust port (122), which is selectively connected to the storage chamber (121) and is configured to discharge the gas in the storage chamber (121) during drying.
14. The shoe washing machine according to claim 11, characterized in that, The top frame (114) is also provided with an operation panel (117), which has a built-in control module (118). The control module (118) is communicatively connected to the ultrasonic cleaning component (150), the dehydration power component (160), the water injection component (170), and the drying and sterilization component (180). The operation panel (117) is configured to control the start and stop of the ultrasonic cleaning component (150), the dehydration power component (160), the water injection component (170), and the drying and sterilization component (180) through the control module (118).
15. The shoe washing machine according to claim 2, characterized in that, The cleaning container (120) includes a container (124) made of a transparent material and having at least two storage chambers (121) formed inside.
16. The shoe washing machine according to claim 15, characterized in that, The two ends of the receiving tube (124) are respectively provided with a first opening (125) and a second opening (126). The first opening (125) and the second opening (126) are both connected to at least one of the storage chambers (121). A bottom cover (127) is provided at the first opening (125), and the bottom cover (127) is detachably rotatably connected to the base platform (112). A top cover (128) is provided at the second opening (126), and the top cover (128) is detachably rotatably connected to the top frame (114).
17. The shoe washing machine according to claim 16, characterized in that, The base platform (112) is also provided with a drain pipe (123). One end of the drain pipe (123) is connected to the bottom cover (127) and communicates with the storage chamber (121). The other end is connected to the bottom of the base platform (112). The drain pipe (123) is configured to drain the dirty water after washing in the storage chamber (121).
18. The shoe washing machine according to claim 15, characterized in that, The container (124) is provided with a porous partition (129), which is located in the middle of the container (124) and divides the interior of the container (124) into two storage chambers (121).