Clothes treatment equipment with atomization device
By incorporating an atomizing device into the door glass assembly, combined with a one-way valve and pin socket design, the problems of inconvenient water injection and complex structure in existing garment processing equipment have been solved. This has resulted in convenient water injection and stable atomization, improving user experience and equipment operational reliability.
Patent Information
- Application Number
- CN202520175851.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2024-01-31
- Filing Date
- 2025-01-27
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2035-01-27
AI Technical Summary
Existing garment processing equipment has a complex atomization device that is inconvenient to fill with water, which affects user experience and equipment production efficiency.
The atomizing device is installed on the door glass assembly. The water storage box is connected to the atomizing nozzle through a one-way valve. The pin socket design ensures a secure connection. The handle is easy to operate. The connection cover prevents contamination. The nozzle is located at the top of the door glass assembly.
The simplified equipment structure improves the convenience of water injection and equipment stability, ensures reliable spraying of atomized water vapor, and enhances user experience and equipment operation safety.
Smart Images

Figure CN223706052U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to clothes processing technical field, especially a clothes processing equipment with atomization device. BACKGROUND
[0002] With the continuous improvement of people's living standards, higher requirements are put forward for the function and use experience of clothes processing equipment. In the clothes processing process, static electricity generated by clothes is a common problem. Static electricity not only causes clothes to absorb dander, affecting the cleanliness of clothes, but also may bring users an uncomfortable use experience.
[0003] In order to solve this problem, the clothes processing equipment in the prior art adopts a series of innovative designs. One common solution is to set an ultrasonic atomizer in the clothes processing equipment.
[0004] The clothes processing equipment in the prior art generally sets the ultrasonic atomizer on the side wall of the clothes feeding port and sets the water collecting box on the top of the clothes processing equipment. The ultrasonic atomizer and the water collecting box are connected through a pipeline. When working, the ultrasonic atomizer sprays atomized water vapor into the barrel. These atomized water vapor contact with the dried clothes, which can lead the static electricity on the clothes to be discharged through the water vapor, thereby effectively removing the static electricity on the clothes. The removal of static electricity facilitates the separation of dander and clothes, thereby improving the cleanliness of clothes and the collection effect of dander, and significantly improving the use experience of users. For example, a similar technical solution is disclosed in patent CN219709887U. This way solves the problems of static electricity and dander of clothes well.
[0005] However, this setting method still has certain limitations. Since the water collecting box is located at the top of the clothes processing equipment, this design brings inconvenience to users in actual use. When users fill water into the water collecting box, they may need to use other tools or lift their bodies, which increases the difficulty and inconvenience of operation. At the same time, this setting has a large number of parts and a complex structure, which is not conducive to the production, manufacturing and assembly of the equipment. Therefore, it is necessary to further improve and optimize the existing clothes processing equipment to solve the problems of inconvenient water filling and complex structure, and improve the use convenience and satisfaction of users. UTILITY MODEL CONTENT
[0006] Therefore, the utility model aims to provide a clothes processing equipment with an atomization device to solve the problems of inconvenient water filling and complex structure of the existing clothes processing equipment with an atomization device.
[0007] To achieve the above-mentioned purpose, the technical scheme of the utility model is as follows:
[0008] A garment processing device with an atomizing device includes a housing assembly, a tub assembly, and a front sealing door. The housing assembly includes a front support that forms a garment loading port at the opening of the tub assembly. The front sealing door has a glass panel that can seal the garment loading port. The glass panel is equipped with a water storage box that can be removed from the glass panel. The water storage box is connected to a first atomizing nozzle via a one-way valve. The first atomizing nozzle can spray atomized water vapor into the washing tub of the tub assembly.
[0009] This application places the atomizing device on the door glass assembly, allowing users to conveniently add water to the water storage box, while saving internal space, simplifying the structure of the equipment, and ensuring the reliability of the atomizing device spraying atomized water vapor into the washing tub of the tub assembly.
[0010] Furthermore, the door glass assembly is provided with a first receiving groove, and the water storage box can be guided from top to bottom into the first receiving groove.
[0011] The first receiving tank provides a stable guiding position, ensuring that the water storage box can be accurately and securely assembled in place, preventing displacement or loosening of the water storage box during use due to instability, and ensuring the long-term stability of the equipment.
[0012] Furthermore, the first receiving tank and the water storage box are connected by a one-way valve with pins and sockets for one-way flow.
[0013] This design ensures that the water flow can only be unidirectional, effectively avoiding potential water leakage problems when the water storage box is connected to the first atomizing nozzle, and increasing the sealing of the equipment and the accuracy of water flow control.
[0014] Furthermore, the pin is disposed in the first receiving groove, and the socket is disposed at the bottom of the water storage box. After the water storage box is assembled into the first receiving groove, the pin can be inserted into the socket and unidirectionally guide the water in the water storage box to the first atomizing nozzle.
[0015] This design provides a stable support for the connection between the water storage box and the first receiving tank, making the connection between the water storage box and the first receiving tank tighter and less prone to loosening or falling off, thus avoiding the problem of unreliable connection that may occur during use.
[0016] Furthermore, a handle is provided at the top of the water storage box.
[0017] This design makes it easier for users to install and remove the water tank, allowing them to easily lift it and improving the user experience.
[0018] Furthermore, the upper end of the water storage box is provided with a water inlet port, and a connecting cover is provided at the position of the water inlet port, the connecting cover being able to seal the water inlet port.
[0019] The connecting cap can seal the water inlet, preventing dust, debris, and other contaminants from entering the water storage box. This helps maintain the cleanliness of the water source inside the storage box and prevents the water quality from being polluted by the outside world.
[0020] Furthermore, the first atomizing nozzle is disposed on the door glass assembly.
[0021] This design saves internal space, avoids taking up too much space inside the device, makes the internal structure more compact, improves the rationality of the design, and makes the overall device more aesthetically pleasing.
[0022] Furthermore, the first atomizing nozzle is disposed at the upper end of the door glass assembly.
[0023] This setting allows for more effective spraying of atomized water vapor throughout the entire washing tub, enabling the atomized water vapor to quickly diffuse and evenly cover all parts of the clothes, ensuring the penetration effect of the atomized water vapor and avoiding concentration in only one area, thus improving the treatment effect.
[0024] Compared with existing technologies, the clothing treatment device with atomizing device described in this utility model has the following advantages:
[0025] The clothing processing equipment with an atomizing device described in this utility model has the atomizing device installed on the door glass assembly. This facilitates the user's water filling operation and also ensures the reliability of the atomizing device spraying steam into the washing tub of the tub assembly. Attached Figure Description
[0026] The accompanying drawings, which form part of this utility model, are used to provide a further understanding of the utility model. The illustrative embodiments of the utility model and their descriptions are used to explain the utility model and do not constitute an undue limitation of the utility model. In the drawings:
[0027] Figure 1 This is a schematic diagram of the structure of the steam generating device described in this embodiment of the invention installed on a clothing processing device;
[0028] Figure 2 This is a schematic diagram of the structure in which the water inlet is located on the front support according to an embodiment of the present invention;
[0029] Figure 3 This is a schematic diagram of the structure of the heating device described in this utility model embodiment when it is used in a clothing processing device;
[0030] Figure 4This is a second-view structural diagram of the heating device described in this embodiment of the present invention within a clothing processing device;
[0031] Figure 5 This is a third-view structural diagram of the heating device described in this embodiment of the present invention within a clothing processing device;
[0032] Figure 6 This is a schematic diagram of the clothing treatment device with atomizing device described in an embodiment of the present invention;
[0033] Figure 7 for Figure 6 A magnified schematic diagram of a portion of the K-section;
[0034] Figure 8 This is a schematic diagram of the structure of the atomizing device installed on the front sealing door according to an embodiment of the present invention;
[0035] Figure 9 for Figure 8 Schematic diagram of the cross-sectional structure of AA;
[0036] Figure 10 This is a schematic diagram of the atomizing device installed on the front sealing door according to an embodiment of the present invention from a second perspective.
[0037] Figure 11 for Figure 10 Schematic diagram of the cross-sectional structure of BB;
[0038] Figure 12 This is an exploded structural diagram of the water storage box and the front sealing door described in an embodiment of the present utility model;
[0039] Figure 13 This is a schematic diagram of the electrical control board in the door glass assembly described in this embodiment of the utility model;
[0040] Figure 14 This is a schematic diagram showing the layout of the atomizing device on the front support according to an embodiment of the present invention.
[0041] Explanation of reference numerals in the attached figures:
[0042] 1. Support base; 101. Water storage tank; 102. Overflow pipe; 103. Water supply pipe; 104. Heating chamber; 2. Water pump; 3. Water level sensor; 4. Second filter structure; 5. Heater; 501. Steam exhaust pipe; 6. Water inlet pipe; 7. Condensate box bracket; 701. Water inlet tank; 702. First filter structure; 8. Circulating air duct cover; 9. Support base cover; 901. Terminal block; 10. Front support; 11. Sealing cover; 13. Water inlet. 14. Water pipe; 15. Steam nozzle; 16. Filter box; 17. Water inlet; 18. Clothes inlet; 19. Baffle; 20. Water storage box; 2001. Handle; 2002. Water inlet port; 2003. Connecting cover; 21. One-way valve; 22. Second atomizing nozzle; 23. Front panel; 24. Front sealing door; 25. Door glass assembly; 2501. First receiving tank; 26. First atomizing nozzle; 27. Washing tub; 100. Heating device. Detailed Implementation
[0043] To make the technical means and objectives and effects of this utility model easier to understand, the embodiments of this utility model will be described in detail below with reference to specific figures.
[0044] It should be noted that all directional and positional terms used in this utility model, such as "up," "down," "left," "right," "front," "back," "vertical," "horizontal," "inner," "outer," "top," "lower," "lateral," "longitudinal," and "center," are only used to explain the relative positional relationships and connection arrangements between components in a specific state (as shown in the accompanying drawings). They are merely for the convenience of describing this utility model and do not require that this utility model be constructed and operated in a specific orientation; therefore, they should not be construed as limitations on this utility model. Furthermore, descriptions involving "first," "second," etc., in this utility model are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated.
[0045] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection; 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 utility model based on the specific circumstances.
[0046] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0047] Example 1
[0048] like Figures 1-5 As shown, this embodiment provides a steam generating device, including:
[0049] Water inlet 17 is provided on the front support 10. The front support 10 is provided with a clothes loading port 18, which is connected to the washing tub 27 and is used to load clothes. The water inlet 17 is located on the side wall of the clothes loading port 18.
[0050] The heating device 100 is connected to the water inlet 17 via the water inlet pipe 13. The heating device 100 can store and heat the water injected through the water inlet 17 to generate steam, and spray the steam into the washing tub 27.
[0051] This application places the water inlet 17 on the side wall of the clothing inlet 18, which can both hide or expose the water inlet 17 by opening and closing the upper sealing door, improving the overall aesthetics, and at the same time lowering the position of the water inlet 17 in the steam generator, making it easier for users to add water to the heating device 100 and improving the convenience of user operation.
[0052] As a preferred example of this application, a filter box 16 is provided on the bottom wall of the clothing inlet 18, and the water inlet 17 is located on one side of the filter box 16.
[0053] This setup separates the water inlet 17 of the heating device 100 from the filter box 16 on the front support 10, and uses the area near the filter box 16 on the front support 10 as the design location of the water inlet 17. By making reasonable use of the structural components on the front support 10, the water inlet 17 can be exposed when the door on the front support 10 is opened. This setup can make full use of the space on the front support 10 and also make it convenient for the user to fill water into the water inlet 17.
[0054] As a preferred example of this application, the heating device 100 is provided with a water storage tank 101, and the water inlet 17 is positioned higher than the water storage tank 101.
[0055] The position of the water inlet 17 is higher than that of the water storage tank 101, which simplifies the water flow path, avoids unnecessary pipes or complex water flow structures, and improves the structural compactness of the equipment. The injected water can flow smoothly into the water storage tank 101 by gravity, and users can more intuitively observe the water level when adding water, avoiding the risk of water overflow.
[0056] As a preferred example of this application, the water inlet 17 is provided with a sealing cap 11, which is used to seal the water inlet 17.
[0057] This design further ensures the reliability of water injection, preventing foreign objects from entering the heating device 100 through the water inlet 17, damaging the heating device 100 or affecting the steam quality. At the same time, it effectively prevents water from splashing out of the heating device 100, reducing electrical safety hazards.
[0058] As a preferred example of this application, the water inlet 17 is provided with a third filter structure to prevent clothing from entering the water inlet 17.
[0059] The third filtration structure can effectively filter out impurities in the water, preventing them from entering the water storage tank 101 or the heating device 100. This avoids the heating device from being blocked, corroded, or damaged by impurities, ensuring the long-term stable operation of the equipment. In addition, this design can also prevent clothing from entering the heating device 100 during the water filling process, thus improving the reliability of the heating device 100.
[0060] As a preferred example of this application, the garment processing equipment includes a heat pump system and a circulating air duct cover 8 configured in conjunction with the heat pump system. The heat pump system includes a condenser, which is disposed within the circulating air duct formed by the circulating air duct cover 8. The steam generated by the heating device 100 is directly input into the washing tub 27 or input into the washing tub 27 through the circulating air duct.
[0061] This design can effectively shorten the steam transmission distance, reduce heat loss, and enable steam to reach the washing tub 27 quickly and efficiently, thereby improving the heating effect, reducing heating time, and increasing overall work efficiency.
[0062] A steam discharge pipe 501 is provided at the steam outlet of the heating device 100. One end of the steam discharge pipe 501 is connected to the heating device 100, and the other end is connected to the inner side of the circulating air duct cover plate 8. The connection point between the steam discharge pipe 501 and the circulating air duct cover plate 8 is located on the downstream side of the condenser.
[0063] The "downstream side" refers to the point where the air in the circulating air duct first passes through the condenser before reaching the connection point between the steam exhaust pipe 501 and the circulating air duct cover plate 8. In the prior art, even when a steam generation structure is incorporated into clothing processing equipment, the generated steam is typically discharged independently into the clothing drying chamber. This arrangement has two drawbacks: firstly, the steam carries some unevaporated water droplets, which, if directly delivered to the clothing surface, will form water stains, affecting the drying effect and potentially damaging the clothing; secondly, the long steam transport distance results in a significant drop in steam temperature, causing water to precipitate and form water droplets, which easily form water stains on the clothing, affecting the drying effect and potentially damaging the clothing. In this application, the circulating air duct cover plate 8 is used to form a circulating air duct. Since the heating device 100 is set on the circulating air duct cover plate 8, the steam discharge pipe 501 can pass through the circulating air duct cover plate 8 to transport steam into the circulating air duct, which greatly shortens the transport distance. On the other hand, when the steam discharge pipe 501 discharges steam into the circulating air duct cover plate 8, there is also high-temperature dry drying gas in the circulating air duct, which further heats the steam and converts the water droplets contained in it into steam, significantly reducing the water content of the steam, thereby avoiding the formation of water stains on the clothes and significantly improving the drying effect of the clothes.
[0064] As a preferred example of this application, the front support 10 is provided with a steam nozzle 15, which is located above the clothes loading port 18. The steam nozzle 15 is connected to the heating device 100 through a water pipe 14 and can spray the steam generated by the heating device 100 onto the washing tub 27.
[0065] The steam nozzle 15 atomizes steam into fine water vapor particles, allowing the steam to diffuse more evenly inside the washing tub 27. This ensures that the steam reaches every corner of the clothes, making the treatment more uniform and effectively removing wrinkles, odors, or stains. Because the atomized steam particles can quickly contact and evaporate on the surface of the clothes, water droplets are prevented from condensing on the surface, improving the drying effect and efficiency of the steam.
[0066] As a preferred example of this application, the heating device 100 includes a support base 1, which is provided with a water storage tank 101 and a heating tank 104. A water supply pipe 103 is provided between the water storage tank 101 and the heating tank 104, and the water supply pipe 103 is used to transport water in the water storage tank 101 to the heating tank 104. A heater 5 is provided in the heating tank 104, and the heater 5 is used to heat the water to form steam. The water storage tank 101 is used to store water. The water in the water storage tank 101 is transported to the heating tank 104 and heated to form steam. The steam is transported into the clothing processing equipment to eliminate wrinkles on the clothes when drying them. The support base cover plate 9 is installed in the support base 1, so that the water storage tank 101 and the heating tank 104 each form an independent sealed space.
[0067] By setting up the heating device 100, steam is delivered into the clothing processing equipment. Since the steam contains a certain amount of moisture, it can achieve a certain ironing effect, thereby eliminating wrinkles on the clothes and allowing the dried clothes to be worn directly, thus improving the user experience.
[0068] The water storage tank 101 is used to centrally store water, while the heating tank 104 is used to heat the water. This partitioned setup can effectively manage the water source and the heating process, making the overall structure of the heating device 100 simpler and more efficient.
[0069] Preferably, a water pump 2 is also provided in the heating chamber 104. The inlet of the water pump 2 is connected to the water supply pipe 103, and the outlet of the water pump 2 is connected to the heater 5. Specifically, the specific structure of the heater 5 can refer to the structure of heating water to generate steam in the prior art, and will not be described in detail here. The water pump 2 is used to drive water from the water storage tank 101 into the heating chamber 104, thereby improving the steam generation efficiency.
[0070] As one optional embodiment, a second filter structure 4 is provided at the inlet of the water storage tank 101. The second filter structure 4 is used to filter the water entering the water storage tank 101. Preferably, the second filter structure 4 is also provided at the connection between the water supply pipe 103 and the water storage tank 101. This allows the second filter structure 4 to filter the water entering and leaving the water storage tank 101, ensuring the normal operation of the heater 5. Optionally, the second filter structure 4 is a filter sponge.
[0071] In one embodiment of this utility model, a water level sensor 3 is also provided in the water storage tank 101, which is used to detect the water level in the water storage tank 101. Optionally, the water level sensor 3 is linked with an alarm device to remind the user when the water level is low or when the water level is full.
[0072] In one preferred embodiment, an overflow pipe 102 is also provided on the water storage tank 101, which is used to drain excess water from the water storage tank 101. When the user fills in water, there may be a situation where too much water is added. At this time, the overflow pipe 102 can drain the excess water to ensure the normal operation of the steam ironing system.
[0073] As one optional embodiment, the support base cover plate 9 is fixedly connected to the support base 1 via a screw connection structure and a snap-fit structure. The snap-fit structure, once engaged, allows the screw connection structure to automatically align, thereby improving assembly speed and increasing production efficiency.
[0074] In one preferred embodiment, a terminal block 901 is provided on the upper side of the support cover plate 9 near the heating chamber 104. The terminal block 901 is used for wiring the heater 5 and the water pump 2 to the outside. The terminal block 901 facilitates quick connection of external wiring, thereby improving assembly speed.
[0075] As an embodiment of this utility model, the garment processing equipment further includes a retractable condensate box bracket 7. A water inlet trough 701 is provided on the condensate box bracket 7. The bottom of the water inlet trough 701 is connected to one end of a water inlet pipe 6, and the other end of the water inlet pipe 6 is connected to a water storage tank 101. In the prior art, some garment processing equipment uses condensate from its condensate box as a water source for its steam generation structure. Since a lot of lint is generated during garment drying, the condensate also contains a lot of lint. This lint entering the steam generation structure will seriously affect its normal operation, resulting in a high failure rate of the steam generation structure. The condensate box bracket 7 is used to detachably mount the condensate box. When water needs to be added to the water storage tank 101, the condensate box bracket 7 is pulled out, the condensate box is removed, and then purified water is injected into the water inlet tank 701. The connection point between the water inlet pipe 6 and the water inlet tank 701 has a significant drop, resulting in a lower water level for the water pump 2. This lower water level ensures that there is less residual water in the water storage tank 101 after each filling, reducing the risk of long-term residual water accumulation and odor, which could affect clothing. It should be noted that when the condensate box is mounted on the condensate box bracket 7, it covers the water inlet tank 701. This design makes the structure more compact and prevents debris from entering the water inlet tank 701, ensuring the normal operation of the heating device 100.
[0076] In one preferred embodiment, a first filter structure 702 is provided at the connection point between the water inlet tank 701 and the water inlet pipe 6. The first filter structure 702 is used to filter the water entering the water storage tank 101 to prevent impurities from entering the water storage tank 101. Optionally, the first filter structure 702 can be a filter screen, a sponge, or other structure capable of filtering impurities in the water.
[0077] Example 2
[0078] like Figures 6-13 As shown, this utility model discloses a clothing processing device with an atomizing device, including a box assembly, a tub assembly, and a front sealing door 24. The box assembly includes a front support 10, which forms a clothing inlet 18 at the opening of the tub assembly. The door glass assembly 25 of the front sealing door 24 can seal and cover the clothing inlet 18. A water storage box 20 is provided on the door glass assembly 25. The water storage box 20 can be removed relative to the door glass assembly 25. When the water storage box 20 is installed in the door glass assembly 25, it is connected to a first atomizing nozzle 26 through a one-way valve 21. The first atomizing nozzle 26 can spray atomized water vapor into the washing tub 27 of the tub assembly.
[0079] This application places the atomizing device on the door glass assembly 25. When the door glass assembly 25 is opened, the user can conveniently add water to the water storage box 20. At the same time, this arrangement, which places the atomizing device on the door glass assembly 25, saves internal space, simplifies the structure of the equipment, facilitates the maintenance or repair of the atomizing device, and ensures the reliability of the atomizing device spraying atomized water vapor into the washing tub 27 of the tub assembly.
[0080] As a preferred example of this application, a first receiving groove 2501 is provided on the door glass assembly 25, and the water storage box 20 can be guided from top to bottom into the first receiving groove 2501.
[0081] The first receiving tank 2501 provides a stable guiding position, ensuring that the water storage box 20 can be accurately and firmly assembled in place, avoiding displacement or loosening of the water storage box 20 due to instability during use, and ensuring the long-term stability of the equipment.
[0082] As a preferred example of this application, the first receiving tank 2501 is connected to the water storage box 20 via a one-way valve 21 that allows one-way conduction through a pin and socket.
[0083] The unidirectional design consisting of the pin and socket ensures that the water flow can only flow in one direction, effectively avoiding water leakage problems that may occur when the water storage box 20 is connected to the first atomizing nozzle 26, and increasing the sealing performance and water flow control accuracy of the device. On the other hand, by directly combining the water storage box 20 with the one-way valve 21 and the first receiving groove 2501, the structure of the atomizing device is simplified, saving space and making the device more compact.
[0084] As a preferred example of this application, the pin is disposed in the first receiving groove 2501, and the socket is disposed at the bottom of the water storage box 20. After the water storage box 20 is assembled into the first receiving groove 2501, the pin can be inserted into the socket and unidirectionally guide the water in the water storage box 20 to the first atomizing nozzle 26.
[0085] The design of the pin insertion socket provides a solid support for the connection between the water storage box 20 and the first receiving groove 2501, making the connection between the water storage box 20 and the first receiving groove 2501 tighter and less prone to loosening or falling off, thus avoiding the problem of unreliable connection during use. Moreover, this design ensures that the water flows in only one direction, which helps to prevent the water from flowing backward or leaking outside the water storage box 20, which not only improves the safety of the equipment, but also avoids water overflow or equipment damage caused by backflow.
[0086] As a preferred example of this application, the water storage box 20 is provided with a handle 2001 at its upper end.
[0087] The design of the handle 2001 makes it more convenient for users to install and remove the water storage box 20. Users can easily lift the water storage box 20 without directly touching the main body of the water storage box 20, avoiding operational difficulties caused by the weight or slipperiness of the water storage box 20. Especially for operations that require regular water filling or cleaning, the handle can greatly simplify these steps.
[0088] As a preferred example of this application, the upper end of the water storage box 20 is provided with a water inlet port 2002, and a connecting cover 2003 is provided at the position of the water inlet port 2002, the connecting cover 2003 being able to cover the water inlet port 2002.
[0089] The connecting cover 2003 can seal the water inlet port 2002 to prevent dust, debris and other contaminants from entering the water storage box 20. This helps to keep the water source in the water storage box 20 clean and avoid water quality being contaminated by the outside. At the same time, the sealing effect of the connecting cover 2003 can effectively prevent water in the water storage box 20 from overflowing or leaking. When the water storage box 20 moves or vibrates, the sealed water inlet port 2002 can prevent water in the water storage box 20 from leaking out, thereby ensuring the cleanliness and waterproofness of the equipment during use.
[0090] As a preferred example of this application, the first atomizing nozzle 26 is disposed on the door glass assembly 25.
[0091] This design makes it easier for users to inspect and clean the nozzles during equipment use. Users can more easily identify whether the nozzles are clogged or malfunctioning, thus enabling timely maintenance. On the other hand, this design saves internal space, avoids taking up more space inside the equipment, makes the internal structure of the equipment more compact, helps improve the rationality of the design, and makes the overall equipment more aesthetically pleasing.
[0092] As a preferred example of this application, the first atomizing nozzle 26 is disposed at the upper end of the door glass assembly 25.
[0093] This setup allows for more effective spraying of atomized water vapor throughout the entire washing tub 27, enabling the atomized water vapor to quickly diffuse and evenly cover all parts of the clothes, ensuring the penetration effect of the atomized water vapor and avoiding concentration in only one area, thus improving the treatment effect. At the same time, positioning the first atomizing nozzle 26 at the top of the door glass assembly 25 makes it easier for users to operate and maintain the equipment when cleaning, facilitating the inspection and cleaning of the nozzle and preventing the nozzle from being clogged by debris or dirt.
[0094] The clothing treatment device with an atomizing device disclosed in this application has the atomizing device installed on the door glass assembly 25, which facilitates the user's water filling operation and also ensures the reliability of the atomizing device spraying steam into the washing tub 27 of the tub assembly.
[0095] like Figure 14 As shown, the atomizing device described in this application can also be disposed between the front support 10 and the front panel 23. The atomizing device includes a water storage box 20, a one-way valve 21, and a second atomizing nozzle 22 arranged in sequence. A baffle 19 is provided on the front support 10 to form a clothing loading port 18. The water storage box 20 is disposed on the side of the baffle 19 away from the clothing loading port 18 and can be removed relative to the baffle 19.
[0096] As a preferred example of this application, the water storage box 20 can be pressed open relative to the baffle 19, and the water storage box 20 is connected to the one-way valve 21 and the one-way valve 21 and the second atomizing nozzle 22 through a connecting pipe.
[0097] This design prevents water in the water storage box 20 from dripping out of the second atomizing nozzle 22.
[0098] As an example of this application, the atomizing device is an ultrasonic atomizing device.
[0099] The garment processing equipment disclosed in this embodiment includes a steam generator as described in Embodiment 1.
[0100] The garment processing equipment is a clothes dryer or a washer-dryer combo, etc. The steam generator is used to deliver steam to the garments during the drying process to remove wrinkles and achieve a certain ironing effect.
[0101] It should be noted that the clothing processing equipment is a heat pump type clothing processing equipment, which includes a heat pump system. The heat pump system includes a compressor, evaporator, expansion valve, condenser and other structures. The specific connection method can refer to the existing technology, and will not be described in detail here.
[0102] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A clothing treatment device with an atomizing mechanism, characterized in that, The device includes a housing assembly, a tub assembly, and a front sealing door (24). The housing assembly includes a front support (10), which forms a clothing inlet (18) at the opening of the tub assembly. The door glass assembly (25) of the front sealing door (24) can seal and cover the clothing inlet (18). The door glass assembly (25) is provided with a water storage box (20), which can be removed relative to the door glass assembly (25). The water storage box (20) is connected to a first atomizing nozzle (26) through a one-way valve (21). The first atomizing nozzle (26) can spray atomized water vapor into the washing tub (27) of the tub assembly.
2. The clothing treatment device with an atomizing device according to claim 1, characterized in that, The door glass assembly (25) is provided with a first receiving groove (2501), and the water storage box (20) can be guided from top to bottom and extended into the first receiving groove (2501).
3. The clothing treatment device with an atomizing device according to claim 2, characterized in that, The first receiving tank (2501) is connected to the water storage box (20) through a one-way valve (21) with a pin and socket for one-way conduction.
4. The clothing treatment device with an atomizing device according to claim 3, characterized in that, The pin is disposed in the first receiving groove (2501), and the socket is disposed at the bottom of the water storage box (20). After the water storage box (20) is assembled into the first receiving groove (2501), the pin can be inserted into the socket and the water in the water storage box (20) is unidirectionally guided to the first atomizing nozzle (26).
5. The clothing treatment device with an atomizing device according to claim 4, characterized in that, The water storage box (20) is provided with a handle (2001) at the top.
6. The clothing treatment device with an atomizing device according to claim 5, characterized in that, The water storage box (20) is provided with a water inlet port (2002) at the upper end, and a connecting cover (2003) is provided at the position of the water inlet port (2002), and the connecting cover (2003) can cover the water inlet port (2002).
7. The clothing treatment device with an atomizing device according to claim 1, characterized in that, The first atomizing nozzle (26) is disposed on the door glass assembly (25).
8. The clothing treatment device with an atomizing device according to claim 7, characterized in that, The first atomizing nozzle (26) is disposed at the upper end of the door glass assembly (25).