Clothes processing equipment

By introducing atomizing components and a pre-water treatment module into the garment processing equipment, and utilizing active oxygen and softened water, the problem of poor washing and care effects of garment processing equipment has been solved, achieving better stain removal, sterilization, and prevention of pigment color bleeding, thus extending the service life of the equipment.

CN224227457UActive Publication Date: 2026-05-12HISENSE(SHANDONG)REFRIGERATOR CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HISENSE(SHANDONG)REFRIGERATOR CO LTD
Filing Date
2026-01-21
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

The washing and care effects of existing garment processing equipment need to be improved, especially in terms of stain removal, sterilization, and prevention of color bleeding.

Method used

Atomizing components are introduced into the garment processing equipment. The atomizing module atomizes the condensed water into water mist, and the pre-water treatment module oxidizes or softens the condensed water to generate active oxygen or soften the water, thereby improving the washing and care effect.

Benefits of technology

It achieves better stain removal, sterilization, and prevention of color bleeding, extends the service life of the atomizing module, and improves the care effect on clothing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides clothes treatment equipment which comprises an equipment body, an inner barrel, a drying assembly and an atomization assembly, the atomization assembly comprises a water collecting piece, an atomization module, a water inlet pipe, a driving piece and a front water treatment module, the water collecting piece is used for collecting condensate water, the atomization module is provided with an atomization cavity, a liquid inlet and an atomization opening, and the atomization module is used for generating water mist; the water inlet pipe is communicated with the liquid inlet and the water collecting piece, the driving piece is arranged on the water inlet pipe and can pump and drain condensate water in the water collecting piece into the atomization cavity, and the front water treatment module is communicated with the water inlet pipe and the atomization module and used for conducting water treatment on the condensate water. The water treatment comprises at least one of water softening treatment and oxidation treatment, so that the washing and protecting effect of the clothes treatment equipment is relatively good.
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Description

Technical Field

[0001] This application relates to the field of household appliance technology, and more particularly to a clothing processing device. Background Technology

[0002] Clothing handling equipment is a type of household appliance that has functions such as washing, drying, or conditioning, which can improve the quality of life for users.

[0003] Currently, garment processing equipment has a built-in rotating inner drum, which can perform washing or drying operations on the clothes inside. For example, after placing the clothes in the inner drum, water or detergent can be introduced into it, and the inner drum can rotate to tumble the clothes and liquid, thereby washing the clothes; or, hot air can be introduced into the inner drum to dry the clothes.

[0004] However, the washing and care effects of garment processing equipment still need to be improved. Utility Model Content

[0005] This application discloses a garment treatment device that can improve the washing and care effect of garments.

[0006] To achieve the above objectives, this application discloses a garment processing device, comprising: a device body, an inner drum, a drying component, and an atomizing component. The inner drum is rotatably disposed within the device body and has an inner cavity for drying garments.

[0007] The drying assembly includes an air duct, a heating unit, and a condensing unit. The air duct communicates with the inner cavity and is used for the flow of gas. The heating unit is located inside the air duct and is used to heat the gas flowing into the inner cavity. The condensing unit is located inside the air duct and is used to condense the gas flowing out of the inner cavity.

[0008] The atomizing assembly includes a water collection component, an atomizing module, a water inlet pipe, a drive component, and a pre-water treatment module. The water collection component is configured to collect condensate generated by the condensation gas from the condensation unit. The atomizing module has an atomizing chamber with a liquid inlet and an atomizing outlet, the atomizing outlet communicating with the inner cavity. The atomizing module is configured to atomize the liquid within the atomizing chamber to generate water mist, and then discharge the water mist into the inner cavity through the atomizing outlet. The water inlet pipe connects the liquid inlet and the water collection component. The drive component is located on the water inlet pipe and is configured to pump the condensate from the water collection component into the atomizing chamber through the water inlet pipe.

[0009] The pre-treatment water module, the inlet pipe, and the atomizing module are all connected and configured to treat the condensate so that the atomizing module atomizes the treated condensate. The water treatment includes at least one of water softening treatment and oxidation treatment.

[0010] With the above setup, the garment processing equipment uses an atomizing module to atomize condensed water to generate water mist, which then cares for the garments inside the drum. Furthermore, the condensed water undergoes pre-treatment by a water treatment module before flowing into the atomizing module, enabling the atomizing module to atomize the treated condensed water.

[0011] The pre-treatment water module oxidizes the condensate to produce active oxygen, while the atomization module atomizes the active oxygen-containing condensate and discharges it into the inner cavity. Thus, the active oxygen, through its strong oxidizing properties, decomposes stains on clothing, free pigments in the water, and pathogenic microorganisms, achieving functions such as stain removal, sterilization, and colorfastness prevention. The clothing treatment equipment provides excellent washing and care results.

[0012] The pre-water treatment module can also soften the condensate to reduce its hardness and decrease or even eliminate scale particles, preventing clothes from yellowing, hardening, or becoming rough to the touch. This results in better washing and care for clothes. Furthermore, it prevents scale buildup on the atomizing plate, thus avoiding problems such as decreased vibration frequency, poor mist output, or damage, extending the lifespan of the atomizing module.

[0013] Optionally, the pre-treatment water module includes an electrolysis unit and a scale inhibition unit. The electrolysis unit is configured to electrolyze the condensate to generate active oxygen, thereby oxidizing the condensate. The scale inhibition unit is configured to chelate with the condensate to soften the condensate.

[0014] With the above setup, the electrolysis unit can oxidize the condensate before it flows into the atomization module to generate active oxygen. The atomization module can then atomize the condensate containing active oxygen and discharge it into the inner cavity. Thus, the active oxygen can decompose stains on clothing, free pigments in the water, and pathogenic microorganisms through its strong oxidizing properties, achieving functions such as stain removal, sterilization, and colorfastness prevention, thereby improving the washing and care effect of the clothing treatment equipment.

[0015] The scale inhibition unit softens the condensate to reduce its hardness and minimize or eliminate scale particles, preventing clothes from yellowing, hardening, or becoming rough to the touch, thus improving the washing and care effect of the garment processing equipment. Furthermore, it prevents scale formation on the atomizing plate, avoiding problems such as decreased vibration frequency, poor mist output, or damage, thereby extending the lifespan of the atomizing module.

[0016] Optionally, the electrolysis unit includes a first housing, an anode structure, and a cathode structure. The first housing has an electrolysis chamber and a plurality of first water passage holes communicating with the electrolysis chamber. Condensate flows through the electrolysis chamber through the first water passage holes. The anode structure and the cathode structure are spaced apart within the electrolysis chamber. The anode structure is configured to be electrically connected to the positive electrode of an external circuit, and the cathode structure is configured to be electrically connected to the negative electrode of an external circuit. The anode structure and the cathode structure are used to electrolyze the condensate flowing through the electrolysis chamber to generate active oxygen.

[0017] With the above configuration, the anode and cathode structures can electrolyze the condensate flowing through the electrolysis chamber to generate active oxygen, and the atomizing module atomizes the condensate containing active oxygen and discharges it into the inner chamber, thereby improving the washing and care effect of the clothing treatment equipment.

[0018] Optionally, the scale inhibition unit includes a second housing and a scale inhibitor. The second housing has a scale inhibition cavity and a plurality of second water passages communicating with the scale inhibition cavity. Condensate flows through the scale inhibition cavity through the second water passages. The scale inhibitor is disposed in the scale inhibition cavity and is used to undergo a chelation reaction with the condensate.

[0019] With the above settings, the scale inhibitor can undergo a chelation reaction with the condensate in the scale inhibition chamber to soften the condensate, and the atomizing module can atomize the condensate with lower hardness and discharge it into the inner chamber, thereby improving the washing and care effect of the clothing treatment equipment.

[0020] Optionally, the pre-water treatment module is located in the water inlet pipe and between the water collection device and the atomizing module.

[0021] With the above setup, the pre-water treatment module can treat the condensate flowing from the inlet pipe to the atomizing module, thereby improving the washing and care effect of the garment processing equipment. Furthermore, the close proximity of the pre-water treatment module and the atomizing module ensures that the treated condensate flows into the atomizing module relatively quickly, thus guaranteeing the treatment effect and the washing and care effect of the garment processing equipment.

[0022] Optionally, the pre-treatment water module also includes a treatment housing with a water treatment chamber. The treatment housing is located in the water inlet pipe, and the water treatment chamber is connected to the water inlet pipe. The electrolysis unit and the scale inhibition unit are located inside the water treatment chamber.

[0023] With the above setup, the pre-water treatment module can treat the condensate in the water treatment chamber, enabling the atomizing module to atomize the treated condensate, thereby improving the washing and care effect of the garment processing equipment. Furthermore, the condensate in the inlet pipe can remain in the water treatment chamber for a period of time before flowing into the atomizing module, extending the water treatment time of the pre-water treatment module and thus ensuring the washing and care effect of the garment processing equipment.

[0024] Optionally, the main body of the equipment includes a base and a front support. The front support is located on the base, and the inner cylinder is rotatably located on the front support. The front support is provided with an inlet that communicates with the inner cavity. The atomizing module and the pre-water treatment module are both located on the front support and are located outside the inlet. In the height direction of the clothing processing equipment, the atomizing module is located above the pre-water treatment module.

[0025] With the above setup, the pre-water treatment module and the atomizing module are located close to each other, allowing the condensate after water treatment to flow into the atomizing module relatively quickly, thereby ensuring the treatment effect and the washing and care effect of the clothing treatment equipment.

[0026] Optionally, the pre-water treatment module is located inside the water collection unit and is used to treat the condensate inside the water collection unit.

[0027] Through the above configuration, the pre-water treatment module can treat the condensate in the water collection unit, enabling the atomizing module to atomize the treated condensate, thereby improving the washing and care effect of the garment processing equipment. Furthermore, when the water collection unit contains condensate, the pre-water treatment module can treat the condensate regardless of whether the atomizing module is operating, thus ensuring the treatment effect and the washing and care effect of the garment processing equipment. At the same time, placing the pre-water treatment module within the water collection unit reduces the space it occupies.

[0028] Optionally, the atomizing assembly also includes a return water pipe, the atomizing chamber having a liquid outlet, the return water pipe connecting the liquid outlet and the water collecting element, and configured to allow un-atomized condensate in the atomizing chamber to flow back to the water collecting element.

[0029] With the above setup, the return water pipe can discharge any un-atomized liquid from the atomizing module, ensuring its normal operation. Furthermore, compared to directly discharging condensate, guiding it back to the collection unit reduces the impact of the garment processing equipment on the external environment, helps maintain a clean and tidy environment, and allows for the reuse of condensate. Simultaneously, the return water pipe has a simple structure, achieving return without the need for other water storage components, reducing production costs and space requirements.

[0030] Optionally, the atomizing assembly also includes a liquid injection component, which is disposed in the return water pipe and located between the atomizing module and the water collecting component. The liquid injection component has a liquid injection chamber communicating with the return water pipe, and the liquid injection chamber has a liquid injection port communicating with the inner cavity. The liquid injection component is configured to add liquid into the liquid injection chamber through the liquid injection port so that the liquid in the liquid injection chamber flows into the water collecting component.

[0031] With the above settings, when there is no condensate or insufficient condensate in the water collection device, the user can add liquid to the water collection device through the liquid injection device, and then the driving device will draw the liquid to the atomizing module for atomization.

[0032] Users can also add laundry treatment liquid containing ingredients such as hypochlorous acid, silver ions, or plant extracts to the water collection device through the liquid injection device. The liquid containing the above ingredients is then atomized by the atomization module and discharged into the inner cavity to achieve sterilization and bacteriostasis functions, thereby improving the washing and care effect of the laundry treatment equipment. Attached Figure Description

[0033] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0034] Figure 1 This is a schematic diagram of the structure of a garment processing device in one embodiment of this application;

[0035] Figure 2 for Figure 1 Enlarged diagram of section A in the middle;

[0036] Figure 3 for Figure 2 A schematic diagram of the structure of the atomization module;

[0037] Figure 4 for Figure 3 Another structural diagram of the atomizing module shown;

[0038] Figure 5 for Figure 3 A cross-sectional view of the atomizing module shown;

[0039] Figure 6 for Figure 1 Enlarged diagram of section B;

[0040] Figure 7 This is a schematic diagram showing the connection relationship of the clothing processing equipment in one embodiment of this application;

[0041] Figure 8 This is a schematic diagram showing the connection relationship of the clothing processing equipment in another embodiment of this application;

[0042] Figure 9 This is a schematic diagram of the structure of the clothing processing device in another embodiment of this application;

[0043] Figure 10 This is a schematic diagram of the structure of an electrolysis unit in one embodiment of this application;

[0044] Figure 11 for Figure 10 Exploded view of the electrolysis unit shown;

[0045] Figure 12 for Figure 10 Another structural schematic diagram of the electrolysis unit shown;

[0046] Figure 13 This is a schematic diagram of the scale inhibition unit in one embodiment of this application;

[0047] Figure 14 for Figure 13 The exploded view of the scale inhibition unit is shown.

[0048] Explanation of key figure labels:

[0049] 10. Garment processing equipment;

[0050] 100. Main body of the equipment; 110. Front support; 111. Dispensing port; 120. Base; 200. Inner cylinder; 210. Inner cavity; 300. Atomizing component; 310. Water collection component; 320. Atomizing module; 321. Atomizing shell; 322. Atomizing chamber; 323. Liquid inlet; 324. Liquid outlet; 325. Atomizing port; 326. Atomizing plate; 331. Water inlet pipe; 332. Water return pipe; 340. Drive component; 350. Liquid injection component; 351. Injection... Liquid inlet; 360, pre-treatment water module; 360a, electrolysis unit; 360b, scale inhibition unit; 360c, treatment housing; 361, first housing; 3611, electrolysis chamber; 3612, first water passage hole; 362, anode structure; 363, cathode structure; 3631, water permeable hole; 364, electrical connection part; 365, electrolysis control board; 366, second housing; 3661, scale inhibition chamber; 3662, second water passage hole; 367, scale inhibitor. Detailed Implementation

[0051] 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. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0052] In this application, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," "horizontal," "lateral," and "longitudinal" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.

[0053] Furthermore, in addition to indicating location or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0054] Furthermore, the terms "installation," "setup," "equipped with," "connection," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0055] Furthermore, the terms "upper" and "lower," etc., are primarily used to distinguish different devices, components, or parts whose specific types and structures may be the same or different, and are not intended to indicate or imply the relative importance or quantity of the indicated devices, components, or parts. Unless otherwise stated, "multiple" means two or more.

[0056] As mentioned in the background section, garment care equipment is a household appliance with functions such as washing, drying, and garment care, which can improve users' quality of life. Currently, garment care equipment has a built-in rotating inner drum, which can perform washing or drying operations on the clothes inside. For example, after placing clothes in the inner drum, water or detergent can be introduced, and the drum can rotate to tumble the clothes and liquid, thus washing them; alternatively, hot air can be introduced into the inner drum to dry the clothes. However, the washing and care effects of garment care equipment still need improvement.

[0057] To address the aforementioned problems, this application provides a garment processing device to solve the issue that the washing and care effects of garment processing devices in related technologies still need to be improved.

[0058] Please refer to Figures 1 to 8 The clothing processing device 10 of this application embodiment includes: a device body 100, an inner drum 200, a drying component, and an atomizing component 300. The inner drum 200 is rotatably disposed on the device body 100 and has an inner cavity 210 for drying clothes.

[0059] The drying assembly includes an air duct, a heating unit, and a condensing unit. The air duct is connected to the inner cavity 210 and is used for the flow of gas. The heating unit is located inside the air duct and is used to heat the gas flowing into the inner cavity 210. The condensing unit is located inside the air duct and is used to condense the gas flowing out of the inner cavity 210.

[0060] The atomizing assembly 300 includes a water collection component 310, an atomizing module 320, a water inlet pipe 331, a drive component 340, and a pre-water treatment module 360. The water collection component 310 is configured to collect condensate generated by the condensation gas from the condensation unit. The atomizing module 320 has an atomizing chamber 322 with a liquid inlet 323 and an atomizing port 325. The atomizing port 325 communicates with the inner cavity 210. The atomizing module 320 is configured to atomize the liquid in the atomizing chamber 322 to generate water mist, and discharge the water mist into the inner cavity 210 through the atomizing port 325. The water inlet pipe 331 connects the liquid inlet 323 and the water collection component 310. The drive component 340 is located on the water inlet pipe 331 and is configured to pump the condensate from the water collection component 310 into the atomizing chamber 322 through the water inlet pipe 331.

[0061] The pre-water treatment module 360, the inlet pipe 331, and the atomizing module 320 are all connected and configured to treat the condensate so that the atomizing module 320 atomizes the treated condensate. The water treatment includes at least one of water softening treatment and oxidation treatment.

[0062] With the above configuration, the garment processing device 10 atomizes condensed water through the atomization module 320 to generate water mist, thereby treating the garments in the inner drum 200 with the water mist. Furthermore, the condensed water undergoes pre-treatment by the pre-water treatment module 360 ​​before flowing into the atomization module 320, so that the atomization module 320 atomizes the treated condensed water.

[0063] The pre-water treatment module 360 ​​oxidizes the condensate to generate active oxygen, and the atomization module 320 atomizes the condensate containing active oxygen and discharges it into the inner cavity 210. Thus, the active oxygen, through its strong oxidizing properties, decomposes stains on clothing, free pigments in the water, and pathogenic microorganisms, achieving functions such as stain removal, sterilization, and colorfastness prevention. The clothing treatment equipment 10 provides a good washing and care effect.

[0064] The pre-water treatment module 360 ​​can also soften the condensate to reduce its hardness and decrease or even eliminate scale particles, preventing clothes from yellowing, hardening, or becoming rough to the touch. This results in better washing and care for clothes in the garment treatment device 10. Furthermore, it prevents scale formation on the atomizing plate 326, thus avoiding problems such as decreased vibration frequency, poor mist output, or damage to the atomizing plate 326, extending the service life of the atomizing module 320.

[0065] The components and technical solutions of the garment processing device 10 of this application will be further described below with reference to specific embodiments and accompanying drawings.

[0066] The garment processing device 10 provided in this application embodiment may have at least one of the garment processing functions such as washing, drying, or conditioning. The garment processing device 10 can be used not only for processing garments, but also for processing other fabrics such as towels, sheets, and quilts. The following embodiments of this application will be described using the garment processing device 10 for processing garments as an example. Of course, the garment processing device 10 is not limited to processing garments.

[0067] Please refer to Figure 1 The garment processing device 10 includes a housing (not shown in the figure), which can be used to house, support and protect other components of the garment processing device 10. The front side of the housing may be provided with an openable door.

[0068] The garment processing equipment 10 also includes a main body 100, which may include a base 120 and a front support 110 disposed on the base 120. Both the base 120 and the front support 110 are located within the housing. The base 120 may be disposed near the bottom of the housing, and the front support 110 may be disposed near the front side of the housing and corresponding to the compartment door. Accordingly, the base 120 is located on the side of the front support 110 opposite to the compartment door.

[0069] The garment processing device 10 includes an inner drum 200, which is rotatably mounted on the main body 100 of the device. For example, the inner drum 200 may be mounted on the front support 110 and located above the base 120.

[0070] The inner drum 200 has an inner cavity 210, and the front support 110 is provided with a loading port 111 communicating with the inner cavity 210, through which the user can load and unload clothes from the inner cavity 210. The inner cavity 210 can be configured to allow liquid to flow in for washing clothes, or it can be configured to allow hot airflow to flow in for drying clothes. The inner drum 200 can rotate relative to the front support 110, causing the clothes to tumble, thereby speeding up the washing and drying process.

[0071] The garment processing equipment 10 also includes a drying assembly (not shown in the figure), which includes an air duct located inside the housing and outside the inner drum 200. For example, the air duct may be located on the side of the inner drum 200 or on the side away from the front support 110. The air duct communicates with the inner drum 200 to facilitate the flow of gas between the air duct and the inner cavity 210 of the inner drum 200.

[0072] The drying assembly also includes a heating unit disposed within the air duct and used to heat the flowing gas. After passing through the heating unit, the gas forms a hot airflow and flows into the inner cavity 210 to dry the clothes. In some examples, the heating unit may include a condenser, which can heat the gas in the air duct to form a hot airflow through a phase change of the internal refrigerant. In other examples, the heating unit may also include at least one of the following components with a heating function: a heating wire or a positive temperature coefficient (PTC) heater.

[0073] The drying assembly also includes a condensing unit, which is located within the air duct and used to condense the flowing gas. In the direction of gas flow within the air duct, the heating unit, inner cylinder 200, and condensing unit are arranged sequentially, with the inner cylinder 200 located between the heating unit and the condensing unit. Gas flowing out of the inner cavity 210 can pass through the condensing unit. During the drying process of clothes in the clothing handling equipment 10, the humidity of the hot airflow in the inner cavity 210 increases, forming a humid and hot airflow. The condensing unit can condense the humid and hot airflow flowing out of the inner cavity 210, causing the moisture in the airflow to condense into condensate, thereby reducing the humidity of the airflow. In some examples, the condensing unit may include an evaporator, which can condense the humid and hot airflow through a phase change of the internal refrigerant. In other examples, the condensing unit may also include other components with condensation functions, such as a condensing coil.

[0074] Please continue to refer to Figure 1 The clothing processing equipment 10 also includes an atomizing component 300, which includes a water collecting component 310. The water collecting component 310 is located on the main body of the equipment 100. For example, the water collecting component 310 can be installed on the base 120 and located on the side of the base 120 away from the inner cylinder 200, that is, below the base 120.

[0075] Correspondingly, in the height direction of the clothing processing equipment 10, the water collection component 310 is located below the front support 110 and the inner drum 200. The water collection component 310 may be provided with a water collection cavity, which can receive and contain the condensate generated by the condensing hot and humid airflow during the drying process, so that the user can reuse the condensate.

[0076] Please combine Figure 1 and Figure 2 The atomizing assembly 300 also includes an atomizing module 320, which is disposed on the device body 100. For example, the atomizing module 320 can be installed on the device body 100 by at least one of the following connection methods: bolt connection, magnetic connection, snap-fit ​​connection, or welding. Specifically, the atomizing module 320 can be disposed on the front support 110 and located on the side of the front support 110 away from the inner cylinder 200.

[0077] Please combine Figure 1 , Figure 3 , Figure 4 as well as Figure 5 The atomizing module 320 has an atomizing shell 321, which encloses an atomizing cavity 322. The atomizing cavity 322 has a liquid inlet 323, a liquid outlet 324, and an atomizing port 325. The atomizing module 320 can add liquid into the atomizing cavity 322 through the liquid inlet 323. The atomizing port 325 is configured to communicate with the inner cavity 210. The atomizing module 320 can atomize the liquid in the atomizing cavity 322 to produce water mist, and discharge the water mist into the inner cavity 210 through the atomizing port 325 to protect clothing. Unatomized liquid in the atomizing cavity 322 can be discharged from the liquid outlet 324.

[0078] The atomizing module 320 may further include an atomizing plate 326, which is sheet-shaped and disposed on the atomizing housing 321. The shape of the atomizing plate 326 can be adapted to fit the atomizing port 325 and cover the atomizing port 325. The atomizing plate 326 can atomize the liquid in the atomizing chamber 322 to form water mist, and discharge the water mist into the inner cavity 210 through the atomizing port 325.

[0079] The material used to fabricate the atomizing plate 326 may include at least one of piezoelectric ceramics, metals, and polymers. For example, the atomizing plate 326 may include an interconnected piezoelectric part and a vibrating part. The material used to fabricate the piezoelectric part may include piezoelectric ceramics, and the material used to fabricate the vibrating part may include metals such as stainless steel, nickel, or titanium alloys. The piezoelectric part is configured to be connected to a high-frequency alternating current to generate high-frequency vibration. The vibrating part has multiple micropores, and the pore size of the micropores may be in the range of 2-10 μm.

[0080] When the atomizing chamber 322 contains liquid, the piezoelectric part can drive the vibrating part to vibrate, causing the liquid to pass through the micropores of the vibrating part to form water mist, and the water mist is discharged into the inner cavity 210 through the atomizing port 325. The droplet size in the water mist can be mainly distributed in the micrometer (μm) scale range.

[0081] With the above settings, during the maintenance of clothing by the clothing treatment equipment 10, the atomizing plate 326 can atomize the liquid in the atomizing chamber 322 and generate water mist with small droplet size. The water mist enters the inner cavity 210 and can penetrate into the fiber gaps of the clothing to achieve effects such as stain removal, wrinkle removal, odor removal and fluffing of clothing. It can reduce or even avoid damage to clothing during the maintenance process, and can be applied to clothing of different fabrics or materials, thus improving the maintenance effect of the clothing treatment equipment 10.

[0082] In some implementations, the atomization module 320 may further include an atomization control board (not shown in the figure), which may be located on the atomization housing 321. The atomization control board may include an atomization controller, which may include at least one of a central processing unit (CPU), a system-on-chip (SOC), or an application-specific integrated circuit (ASIC). The atomization control board and the atomization controller may be electrically connected to the atomizing plate 326 to control the atomizing plate 326 to perform atomization.

[0083] Please combine Figure 1 , Figure 5 , Figure 6 as well as Figure 7 The atomizing component 300 also includes a water inlet pipe 331, which can be located on the main body 100 and connected between the water collection component 310 and the liquid inlet 323 of the atomizing module 320. For example, the water inlet pipe 331 can pass through the front support 110 to be connected to the water collection component 310 and the atomizing module 320 located on both sides of the front support 110, respectively.

[0084] It should be noted that, as Figure 8 As shown, a pre-water treatment module 360 ​​can also be provided between the water collection component 310 and the liquid inlet 323 of the atomizing module 320. Different sections of the water inlet pipe 331 can be connected between the water collection component 310 and the pre-water treatment module 360, as well as between the pre-water treatment module 360 ​​and the atomizing module 320, so that the water collection component 310, the pre-water treatment module 360 ​​and the atomizing module 320 are connected in sequence, and the water inlet pipe 331 is connected to the water collection component 310 and the atomizing module 320.

[0085] The atomizing assembly 300 also includes a drive unit 340, which is mounted on the water inlet pipe 331 and can pump condensate from the water collection unit 310 into the atomizing chamber 322 through the water inlet pipe 331. The drive unit 340 may include an electromagnetic pump, thereby reducing its size, facilitating assembly, and minimizing space occupation. Alternatively, the drive unit 340 may also include at least one of a peristaltic pump or a diaphragm pump.

[0086] With the above settings, the drive unit 340 can pump the condensate in the water collection unit 310 to the atomizing chamber 322 through the water inlet pipe 331 to supply water to the atomizing module 320, so that the atomizing module 320 can atomize the condensate and generate water mist. Thus, the atomizing module 320 can work continuously without the user having to add liquid to it, making the clothing care function automated, reducing the user's operational burden, and providing a better user experience.

[0087] In the example above, the connections between the drive unit 340 and the inlet pipe 331 are arranged along the extension direction of the inlet pipe 331. This can also be understood as the orientation of both the inlet and outlet ends of the drive unit 340 being consistent with the extension direction of the inlet pipe 331. This allows the inlet pipe 331 to be positioned as straight as possible, helping to prevent bending of the inlet pipe 331.

[0088] In some embodiments, the atomizing assembly 300 further includes a return water pipe 332, which can connect between the liquid outlet 324 of the atomizing module 320 and the water collection member 310, and is used to discharge un-atomized condensate in the atomizing chamber 322 into the water collection member 310. Exemplarily, the return water pipe 332 can pass through the front support 110 to connect with the water collection member 310 and the atomizing module 320 located on both sides of the front support 110, respectively. The return water pipe 332 and the inlet water pipe 331 can pass through the front support 110 through the same opening.

[0089] Through the above configuration, the return water pipe 332 can discharge the liquid that has not yet been atomized within the atomizing module 320, ensuring the normal operation of the atomizing module 320. Furthermore, compared to directly discharging the condensate, guiding the condensate back to the water collection unit 310 via the return water pipe 332 reduces the impact of the clothing processing equipment 10 on the external environment, helps maintain a clean and tidy environment for the clothing processing equipment 10, and allows for the reuse of the condensate. Simultaneously, the return water pipe 332 has a simple structure, achieving return without the need for other water storage components, reducing production costs and space requirements.

[0090] In the above example, the wall thickness of both the inlet pipe 331 and the return pipe 332 can be greater than 1.5mm, which can improve strength, extend service life, and help avoid problems such as poor water flow caused by bending at various connection points or at the position where the inlet pipe 331 and the return pipe 332 pass through the front support 110.

[0091] In some implementations, both the inlet pipe 331 and the return pipe 332 can be installed on the equipment body 100 by means of components such as cable ties or pipe clamps, or they can be installed on the equipment body 100 by at least one of other methods such as snap-fit ​​or adhesive.

[0092] For example, on the side of the front support 110 opposite to the base 120, at least a portion of the inlet pipe 331 and the return pipe 332 can be arranged side-by-side and in contact with each other. Cable ties or pipe clamps can be wrapped around the side-by-side inlet pipe 331 and return pipe 332 to fix them relatively. Thus, the inlet pipe 331 and return pipe 332 can be jointly fixed to the front support 110 without separate installation, thereby simplifying the installation structure, reducing the difficulty of assembly operations, and improving production efficiency.

[0093] Please refer to Figure 1 and Figure 9 The atomizing assembly 300 may further include a liquid injection component 350, which is disposed on the return water pipe 332 and may be located on the side of the front support 110 opposite to the base 120. In the extending direction of the return water pipe 332, the liquid injection component 350 may be located between the atomizing module 320 and the water collection component 310. For example, the return water pipe 332 may include at least two different pipe sections, one of which may connect between the liquid injection component 350 and the atomizing module 320, and the other of which may connect between the liquid injection component 350 and the water collection component 310. Thus, the atomizing module 320, the liquid injection component 350, and the water collection component 310 are sequentially connected in the extending direction of the return water pipe 332, and the liquid injection component 350 is located between the atomizing module 320 and the water collection component 310.

[0094] The liquid injection device 350 has an injection chamber and an injection port 351 communicating with the injection chamber. The liquid injection device 350 is configured to add liquid into the injection chamber through the injection port 351. The injection chamber is connected to the return water pipe 332, and the injection port 351 is configured to connect to the inner cavity 210. For example, the injection port 351 can be connected to the dispensing port 111, and then connected to the inner cavity 210 through the dispensing port 111. Thus, the user can add liquid into the injection chamber through the injection port 351, allowing the liquid in the injection chamber to flow into the water collection device 310. For example, the liquid injection device 350 can be located on the outer edge of the dispensing port 111 to facilitate the user adding liquid into the liquid injection device 350, improving the user experience.

[0095] With the above settings, when there is no condensate in the water collection device 310 or the condensate is insufficient (for example, after the clothing processing device 10 has not been used for a period of time), the user can add liquid to the water collection device 310 through the liquid injection device 350, and then the driving device 340 draws the liquid to the atomizing module 320 for atomization.

[0096] Users can also add hypochlorous acid (HClO) and silver ions (Ag) into the water collection device 310 through the injection device 350. +The laundry treatment liquid containing ingredients such as plant extracts is atomized by the atomization module 320 and discharged into the inner cavity 210 to achieve sterilization and bacteriostasis functions, thereby improving the washing and care effect of the laundry treatment equipment 10.

[0097] In the height direction of the garment processing device 10, the liquid injection component 350 can be located between the atomizing module 320 and the water collection component 310, and the liquid injection component 350 can be higher than the water collection component 310 and lower than the atomizing module 320. This facilitates the user to add liquid to the liquid injection component 350, and facilitates the flow of liquid from the liquid injection component 350 into the water collection component 310.

[0098] Please combine Figure 1 , Figure 2 , Figure 7 and Figure 8 The atomizing assembly 300 also includes a pre-water treatment module 360, which is configured to treat the condensate. The water collection unit 310, the pre-water treatment module 360, and the atomizing module 320 are interconnected, with the pre-water treatment module 360 ​​positioned closer to the water collection unit 310 than the atomizing module 320. Thus, the condensate, after being treated by the pre-water treatment module 360, flows into the atomizing module 320, whereby the atomizing module 320 atomizes the treated condensate.

[0099] The water treatment may include at least one of water softening treatment and oxidation treatment. That is, water treatment may include only water softening treatment or oxidation treatment, or water treatment may include both water softening treatment and oxidation treatment.

[0100] In one embodiment, water treatment may include oxidation treatment, and the pre-water treatment module 360 ​​may oxidize the condensate to generate reactive oxygen species (ROS). The reactive oxygen species have strong oxidizing properties and may include ozone (O3) and ozone ions (O3+). ﹣ Hydrogen peroxide (H2O2), hydrogen superoxide (HO2) ﹣ ), superoxide anion (O2) ﹣ ) or hydroxyl radical (OH) ﹣ At least one of the following:

[0101] With the above configuration, the pre-water treatment module 360 ​​can perform oxidation treatment to generate active oxygen before the condensate flows into the atomization module 320. The atomization module 320 can then atomize the condensate containing active oxygen and discharge it into the inner cavity 210. Thus, the active oxygen can decompose stains on clothing, free pigments in the water, and pathogenic microorganisms through its strong oxidizing properties, achieving functions such as stain removal, sterilization, and colorfastness prevention, thereby improving the washing and care effect of the clothing treatment equipment 10.

[0102] For some implementation methods, please refer to Figure 10 and Figure 11 The pre-treatment water module 360 ​​may include an electrolysis unit 360a, which is used to electrolyze condensate to generate active oxygen, thereby oxidizing the condensate.

[0103] For example, the electrolysis unit 360a may include a first housing 361, which has an electrolysis chamber 3611 and a plurality of first water passages 3612 communicating with the electrolysis chamber 3611, through which condensate can flow through the electrolysis chamber 3611. The electrolysis unit 360a may also include an anode structure 362 and a cathode structure 363 installed in the first housing 361, both located within the electrolysis chamber 3611 and spaced apart from each other.

[0104] The anode structure 362 is configured to be electrically connected to the positive terminal of the external circuit, and the cathode structure 363 is configured to be electrically connected to the negative terminal of the external circuit. Thus, the anode structure 362 and the cathode structure 363 can electrolyze the condensate in the electrolysis chamber 3611 to generate active oxygen.

[0105] Please refer to Figure 12 The electrolysis unit 360a may further include an electrical connection portion 364, which is mounted on the first housing 361 and is electrically connected to the anode structure 362 and the cathode structure 363, respectively. The electrical connection portion 364 is configured to be electrically connected to an external circuit to connect the anode structure 362 to the positive terminal of the external circuit and to connect the cathode structure 363 to the negative terminal of the external circuit.

[0106] In some examples, such as Figure 11 As shown, both the anode structure 362 and the cathode structure 363 can be plate-shaped and stacked. The cathode structure 363 can be provided with water-permeable holes 3631, which penetrate through the cathode structure 363 on both sides in the thickness direction to facilitate the flow of condensate.

[0107] The above-mentioned configuration increases the surface area of ​​the anode structure 362 and the cathode structure 363, which is beneficial to improving the electrolysis efficiency of the electrolysis unit 360a and the production of active oxygen, thereby enhancing the washing and care effect of the clothing treatment equipment 10. Furthermore, the condensate can flow more smoothly through the gap between the anode structure 362 and the cathode structure 363, and also more smoothly through the water permeable holes 3631 of the cathode structure 363, thereby improving the diffusion efficiency of active oxygen in the condensate and thus enhancing the washing and care effect of the clothing treatment equipment 10.

[0108] In some examples, at least two cathode structures 363 may be provided, and each cathode structure 363 may be disposed opposite to both sides of the anode structure 362. With the above arrangement, the anode structure 362 can cooperate with the cathode structures 363 on both sides to electrolyze condensate, thereby improving the electrolysis efficiency of the electrolysis unit 360a and the production of active oxygen, thus improving the washing and care effect of the clothing treatment equipment 10.

[0109] In the above example, the anode structure 362 can be made of titanium, and the cathode structure 363 can be made of 316L stainless steel. Furthermore, both the anode structure 362 and the cathode structure 363 can have a coating on their surfaces. The material used to form the coating can include at least one of tin dioxide, antimony, or nickel, and the coating can be formed on the anode structure 362 and the cathode structure 363 through a multi-coating and sintering process.

[0110] The above-mentioned configuration improves the corrosion resistance, conductivity, and service life of the anode structure 362 and cathode structure 363, ensuring a service life of no less than 2000 hours. Furthermore, it enhances the electrolysis efficiency and active oxygen production of the electrolysis unit 360a, ensuring an active oxygen production of no less than 80 mg / h.

[0111] Of course, in other examples, the anode structure 362, the cathode structure 363, and the coating can be made of other materials, and are not limited to the materials in the examples above.

[0112] In some implementation methods, please combine Figure 11 and Figure 12 The electrolysis unit 360a also includes an electrolysis control board 365, which can be mounted on the first housing 361 and located outside the electrolysis chamber 3611. An electrical connection portion 364 can be disposed on the electrolysis control board 365 and electrically connected to it. The electrolysis control board 365 is used to control and adjust the voltage applied to the anode structure 362 and the cathode structure 363 by the external circuit, thereby adjusting the rate at which the electrolysis unit 360a generates active oxygen, and thus adjusting the concentration of active oxygen in the condensate.

[0113] For example, the electrolysis control board 365 may be equipped with a control circuit, which can adjust the voltage applied by the external circuit. Alternatively, the electrolysis control board 365 may be equipped with an electrolysis controller, which may include at least one of a central processing unit, a system-on-a-chip, or an application-specific integrated circuit, and the electrolysis control board 365 can adjust the voltage applied by the external circuit through the electrolysis controller.

[0114] In one example, the electrolysis unit 360a may also include a water detector (not shown), which may be mounted on the first housing 361 and electrically connected to the electrolysis control board 365. The water detector can be used to detect the concentration of total dissolved solids (TDS) in the condensate. The electrolysis control board 365 can receive the detection results from the water detector and adjust the voltage applied to the anode structure 362 and the cathode structure 363 by the external circuit according to the detection results.

[0115] For example, when the water detector detects a high total dissolved solids concentration in the condensate, the electrolysis control board 365 can reduce the voltage applied to the anode structure 362 and the cathode structure 363 by the external circuit; when the water detector detects a low total dissolved solids concentration in the condensate, the electrolysis control board 365 can increase the voltage applied to the anode structure 362 and the cathode structure 363 by the external circuit. Thus, the electrolysis control board 365 can control the voltage applied to the anode structure 362 and the cathode structure 363 between 5-18V, thereby maintaining the current between the anode structure 362 and the cathode structure 363 at approximately 500mA.

[0116] Through the above settings, the electrolysis control board 365 can adjust the current between the anode structure 362 and the cathode structure 363 according to the water quality of the condensate, so that the electrolysis unit 360a can generate active oxygen at a relatively stable rate in condensate of different water qualities, thereby making the concentration of active oxygen in the condensate relatively stable. This avoids the problem of insufficient washing and care effect of the clothing treatment equipment 10 due to low active oxygen concentration, and avoids the problems of clothing fiber oxidation damage, shortened service life, or fading due to high active oxygen concentration.

[0117] For example, the electrolysis control board 365 can control the concentration of active oxygen in the condensate within the range of 0.4 to 0.6 mg / L. As a result, the stain removal rate of the garment treatment equipment 10 can be increased by about 20.39%, the colorfastness of mixed washing can be increased by about 85.9%, and the sterilization rate against microorganisms such as bacteria, fungi, or viruses can be greater than 99.99%.

[0118] In another embodiment, such as Figure 7 and Figure 8 As shown, water treatment can also include water softening treatment. The pre-treatment water module 360 ​​can soften the condensate to remove or reduce calcium ions (Ca) in the condensate. 2+ ) or magnesium ions (Mg 2+ This reduces the hardness of the condensate.

[0119] It is understandable that calcium and magnesium ions can react with carbonate ions (CO3-) in liquids.2- ) or sulfate (SO4) 2- These substances combine to form insoluble scale particles such as calcium carbonate (CaCO3) or magnesium sulfate (MgSO4). Scale particles can cause clothes to turn yellow and stiff, and have a poor feel, as well as reduce the washing and care effect of the clothing treatment equipment 10.

[0120] Therefore, please combine Figure 5 , Figure 7 and Figure 8 The pre-water treatment module 360 ​​softens the condensate, reducing or even eliminating scale particles to prevent clothes from yellowing, hardening, or becoming rough to the touch, thus improving the washing and care effect of the clothing treatment device 10. Furthermore, it prevents scale formation on the atomizing plate 326, avoiding problems such as decreased vibration frequency, poor mist output, or damage, thereby extending the service life of the atomizing module 320.

[0121] Accordingly, in some implementation methods, please combine Figure 7 , Figure 8 , Figure 13 and Figure 14 The pre-treatment water module 360 ​​may also include a scale inhibition unit 360b, which is used to chelate with condensate to soften the condensate.

[0122] For example, the scale inhibition unit 360b includes a second housing 366, which has a scale inhibition cavity 3661 and a plurality of second water passages 3662 communicating with the scale inhibition cavity 3661. Condensate can flow through the scale inhibition cavity 3661 through the second water passages 3662. The scale inhibition unit 360b also includes a scale inhibitor 367 located within the scale inhibition cavity 3661. The scale inhibitor 367 can be fixedly disposed within the scale inhibition cavity 3661, or it can be floatingly disposed within the scale inhibition cavity 3661. The scale inhibitor 367 is used to undergo a chelation reaction with the condensate flowing through the scale inhibition cavity 3661 to reduce or even remove calcium and magnesium ions in the condensate, thereby reducing the hardness of the condensate and achieving water softening treatment.

[0123] The scale inhibitor 367 can be made of at least one of high-strength polymer materials such as polycarboxylate polymers or aminomethylphosphonic acid chelating resins. When condensate flows through the scale inhibition chamber 3661, the scale inhibitor 367 can release carboxylate ions or phosphonate ions into the condensate. The ionic groups can chelate with calcium ions and magnesium ions to reduce or even remove calcium ions and magnesium ions, thereby reducing the hardness of the condensate and achieving water softening treatment.

[0124] Furthermore, the second water passage 3662 can slow down the rate at which condensate flows through the scale inhibition chamber 3661, so that the scale inhibitor 367 can fully chelate with the condensate, thereby ensuring the effect of water softening treatment and the washing and care effect of the clothing treatment equipment 10.

[0125] In some examples, the scale inhibitor 367 may have multiple micropores, which can be arranged relatively closely on the scale inhibitor 367, and the pore size of each micropore can be distributed in the micrometer or nanometer scale range. This slows down the rate at which the scale inhibitor 367 releases ionic groups, extending the service life of the scale inhibitor 367. Furthermore, the micropores allow the rate at which the scale inhibitor 367 releases ionic groups to adapt to different hardnesses of condensate. For example, when the concentration of calcium and magnesium ions in the condensate is high, resulting in high hardness, the micropores can increase the rate at which the scale inhibitor 367 releases ionic groups, ensuring the effectiveness of water softening treatment and the washing and conditioning effect of the clothing treatment equipment 10.

[0126] For example, the rate at which the scale inhibitor 367 releases ionic groups can vary from 0.2 to 1 parts per million (ppm) depending on the hardness of the condensate. Therefore, the scale inhibition unit 360b can achieve a scale inhibition rate of over 93% for condensate, an improvement rate of approximately 65% ​​for stiff clothing, an improvement rate of approximately 21% for yellowing clothing, and an increase in the washing efficiency of condensate by approximately 10.4%.

[0127] In the above embodiments, the pre-water treatment module 360 ​​may include an electrolysis unit 360a and a scale inhibition unit 360b.

[0128] In one embodiment, please combine Figure 1 and Figure 8 The pre-water treatment module 360 ​​can be disposed on and connected to the inlet pipe 331. In the extending direction of the inlet pipe 331, the pre-water treatment module 360 ​​can be located between the water collection component 310 and the atomizing module 320. Correspondingly, the pre-water treatment module 360 ​​can be installed on the main body 100 of the device, for example, on the side of the front support 110 away from the base 120, and located outside the dispensing port 111. In the height direction of the clothing processing device 10, the pre-water treatment module 360 ​​can be located above the atomizing module 320.

[0129] With the above configuration, the pre-water treatment module 360 ​​can treat the condensate flowing from the inlet pipe 331 to the atomizing module 320, thereby improving the washing and care effect of the clothing treatment device 10. Furthermore, the pre-water treatment module 360 ​​and the atomizing module 320 are located close to each other, allowing the treated condensate to flow into the atomizing module 320 relatively quickly, thus ensuring the treatment effect and the washing and care effect of the clothing treatment device 10.

[0130] To facilitate the housing or installation of the electrolysis unit 360a and the scale inhibition unit 360b in the pre-treatment water module 360, in some implementations, please refer to... Figure 1 , Figure 8 as well as Figure 9 The pre-treatment water module 360 ​​may further include a treatment housing 360c, which is located on the main body 100 of the device. For example, the treatment housing 360c may be located on the side of the front support 110 away from the base 120. The treatment housing 360c has a water treatment chamber that is connected to the inlet pipe 331. For example, the water treatment chamber may be connected between different sections of the inlet pipe 331 so that condensate in the inlet pipe 331 can flow through the water treatment chamber. The treatment housing 360c may be connected between the water collection component 310 and the atomizing module 320 so that condensate in the water collection component 310 flows into the atomizing module 320 after passing through the water treatment chamber. The electrolysis unit 360a and the scale inhibition unit 360b may be located within the water treatment chamber to treat the condensate within it.

[0131] Through the above configuration, the pre-water treatment module 360 ​​can treat the condensate in the water treatment chamber, so that the atomizing module 320 can atomize the treated condensate, thereby improving the washing and care effect of the clothing treatment device 10. Furthermore, before flowing into the atomizing module 320, the condensate in the inlet pipe 331 can remain in the water treatment chamber for a period of time, extending the water treatment time of the pre-water treatment module 360 ​​and thus ensuring the washing and care effect of the clothing treatment device 10.

[0132] In another embodiment, please combine Figure 1 , Figure 7 , Figure 10 and Figure 13 The pre-treatment water module 360 ​​can be located within the water collection unit 310 and is used to treat the condensate within the water collection unit 310. For example, both the electrolysis unit 360a and the scale inhibition unit 360b can be located within the water collection unit 310.

[0133] Through the above configuration, the pre-water treatment module 360 ​​can treat the condensate in the water collection unit 310, enabling the atomizing module 320 to atomize the treated condensate, thereby improving the washing and care effect of the clothing treatment device 10. Furthermore, when the water collection unit 310 contains condensate, the pre-water treatment module 360 ​​can treat the condensate regardless of whether the atomizing module 320 is operating, thus ensuring the treatment effect and the washing and care effect of the clothing treatment device 10. Simultaneously, the pre-water treatment module 360's placement within the water collection unit 310 reduces space requirements.

[0134] In the above embodiments, Figure 7 and Figure 8 This is only used to illustrate the connection relationship and overall layout between the components of the garment processing equipment 10, and does not constitute a limitation on the specific structure or size of the garment processing equipment 10.

[0135] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A garment processing device, characterized in that, include: Equipment body; The inner drum is rotatably disposed on the main body of the device, and the inner drum has an inner cavity for drying clothes; Drying assembly, the drying assembly comprising: An air duct, which communicates with the inner cavity and is used for the circulation of gas; A heating unit is disposed inside the air duct and is used to heat the gas flowing into the inner cavity; A condensation unit is disposed within the air duct and is used to condense the gas flowing out from the inner cavity; Atomizing component, the atomizing component comprising: A water collection device, configured to collect condensate produced by the condensation gas of the condensation unit; An atomizing module has an atomizing chamber, which has a liquid inlet and an atomizing outlet. The atomizing outlet is connected to the inner cavity. The atomizing module is configured to atomize the liquid in the atomizing chamber to generate water mist, and discharge the water mist into the inner cavity through the atomizing outlet. A water inlet pipe, which connects the liquid inlet and the water collection device; A driving component is disposed on the water inlet pipe and is configured to pump condensate from the water collection component into the atomizing chamber through the water inlet pipe. A pre-treatment water module is connected to the inlet pipe and the atomizing module, and is configured to treat condensate water so that the atomizing module atomizes the treated condensate water. The water treatment includes at least one of water softening treatment and oxidation treatment.

2. The garment processing equipment according to claim 1, characterized in that, The pre-treatment water module includes an electrolysis unit and a scale inhibition unit; The electrolysis unit is configured to electrolyze the condensate to generate active oxygen, thereby oxidizing the condensate. The scale inhibition unit is configured to chelate with the condensate to soften the condensate.

3. The garment processing equipment according to claim 2, characterized in that, The electrolysis unit includes a first shell, an anode structure, and a cathode structure. The first shell has an electrolysis chamber and a plurality of first water passage holes communicating with the electrolysis chamber. Condensate flows through the electrolysis chamber through the first water passage holes. The anode structure and the cathode structure are spaced apart within the electrolysis chamber. The anode structure is configured to be electrically connected to the positive terminal of an external circuit, and the cathode structure is configured to be electrically connected to the negative terminal of an external circuit. The anode structure and the cathode structure are used to electrolyze the condensate flowing through the electrolysis chamber to generate active oxygen.

4. The garment processing equipment according to claim 2, characterized in that, The scale inhibition unit includes a second housing and a scale inhibition body. The second housing has a scale inhibition cavity and a plurality of second water passages communicating with the scale inhibition cavity. Condensate flows through the scale inhibition cavity through the second water passages. The scale inhibition body is disposed in the scale inhibition cavity and is used to undergo a chelation reaction with the condensate.

5. The garment processing equipment according to any one of claims 2 to 4, characterized in that, The pre-treatment water module is located in the water inlet pipe and between the water collection component and the atomizing module.

6. The garment processing equipment according to claim 5, characterized in that, The pre-treatment water module further includes a treatment housing, which has a water treatment chamber. The treatment housing is located on the inlet pipe, and the water treatment chamber is connected to the inlet pipe. The electrolysis unit and the scale inhibition unit are located inside the water treatment chamber.

7. The garment processing equipment according to claim 6, characterized in that, The main body of the device includes a base and a front support. The front support is located on the base, and the inner cylinder is rotatably located on the front support. The front support is provided with a dispensing port that communicates with the inner cavity. Both the atomizing module and the pre-water treatment module are located on the front support and are situated outside the dispensing port; in the height direction of the clothing processing equipment, the atomizing module is located above the pre-water treatment module.

8. The garment processing apparatus according to any one of claims 1 to 4, characterized in that, The pre-treatment water module is located inside the water collection component and is used to treat the condensate water inside the water collection component.

9. The garment processing apparatus according to any one of claims 1 to 4, characterized in that, The atomizing assembly further includes a return water pipe, the atomizing chamber has a liquid outlet, the return water pipe is connected between the liquid outlet and the water collecting component, and is configured to allow un-atomized condensate in the atomizing chamber to flow back to the water collecting component.

10. The garment processing equipment according to claim 9, characterized in that, The atomizing component also includes a liquid injection component, which is disposed in the return water pipe and located between the atomizing module and the water collection component; The injection component has an injection chamber connected to the return water pipe, the injection chamber has an injection port connected to the inner cavity; the injection component is configured to add liquid into the injection chamber through the injection port, so that the liquid in the injection chamber flows into the water collection component.