A laundry treating apparatus
By detachably installing an atomizing device on the inner drum lifting rib of the garment processing equipment and powering it with an electrical connection cable, the problem of inconvenience in adding liquid to the atomizing device is solved, achieving uniform water mist coverage and improving the reliability of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- HISENSE(SHANDONG)REFRIGERATOR CO LTD
- Filing Date
- 2025-12-30
- Publication Date
- 2026-05-08
AI Technical Summary
Adding liquid to the atomizing device is inconvenient and affects the user experience.
A garment processing device has been designed. The inner drum is provided with lifting ribs. The atomizing device is detachably connected to the lifting ribs through the mounting structure. The atomizing device can rotate with the inner drum and can conveniently add liquid into the atomizing chamber through the liquid inlet. The atomizing device is connected to an external circuit through an electrical connection wire.
It improves the user experience, ensures that the water mist evenly covers the clothes, reduces damage, is suitable for different fabrics, reduces the difficulty of maintenance and the probability of failure, and improves the reliability and cost-effectiveness of the equipment.
Smart Images

Figure CN121428796B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electrical technology, and in particular to a garment processing device. Background Technology
[0002] Clothing drying equipment is a type of household appliance that can quickly dry clothes, improving users' quality of life.
[0003] Current garment drying equipment incorporates a built-in atomizing device and a rotating inner drum. Garments can be dried within the drum, which rotates to tumble the clothes, thus accelerating the drying process and improving the drying effect. The atomizing device atomizes liquid and generates a water mist within the drum to care for the garments.
[0004] However, adding liquid to the atomizing device is inconvenient and affects the user experience. Summary of the Invention
[0005] This application discloses a clothing treatment device that allows for easy addition of liquid to the atomizing device, thereby improving the user experience.
[0006] To achieve the above objectives, this application discloses a garment processing device, comprising: a main body, an inner drum, a drying assembly, and an atomizing device. The inner drum is rotatably mounted on the main body and has a drying chamber for drying garments. The inner drum has lifting ribs located within the drying chamber and extending along its rotation axis. The drying assembly includes an air duct, a condenser, and an evaporator. The air duct communicates with the drying chamber and is used for the flow of gas. The condenser is located within the air duct and is used to heat the gas flowing into the drying chamber. The evaporator is located within the air duct and is used to condense the gas flowing out of the drying chamber.
[0007] The atomizing device is used to generate water mist. The atomizing device has an atomizing chamber, which has a liquid inlet and an atomizing outlet. The atomizing outlet is configured to communicate with a drying chamber. The atomizing device is configured to add liquid into the atomizing chamber through the liquid inlet and discharge water mist into the drying chamber through the atomizing outlet.
[0008] The mounting structure is provided at least in the inner cylinder and is configured to correspond to the atomizing device, and the mounting structure is detachably connected to the corresponding atomizing device.
[0009] The installation structure includes a first mounting groove for the lifting rib, an atomizing device located inside the first mounting groove, and an atomizing port located on the outer surface of the lifting rib.
[0010] With the above settings, the atomizing device can discharge water mist into the drying chamber to maintain clothes, achieving effects such as stain removal, wrinkle removal, odor removal, and fluffing of clothes. It can reduce or even avoid damage to clothes during the maintenance process and can be applied to clothes of different fabrics or materials.
[0011] Furthermore, the atomizing device is detachably mounted on the inner cylinder via a mounting structure, allowing users to easily remove the atomizing device and conveniently add liquid to the atomizing chamber through the liquid filling port, thus improving the user experience.
[0012] Meanwhile, the atomizing device rotates with the inner drum, spraying water mist onto the clothes at different angles. This ensures the water mist covers the clothes more evenly and quickly, avoiding the problem of uneven drying caused by a fixed atomizing device. This improves the care effect on various fabrics, including thick garments, effectively removing wrinkles, stains, odors, and fluffing up clothes. The atomizing device's location on the lifting ribs also reduces or eliminates its space occupation within the drying chamber, thus optimizing the structure of the garment processing equipment and simplifying the inner drum's design, making maintenance easier.
[0013] Optionally, the lifting rib is provided with a clearance groove communicating with the first mounting groove, and the surface of the atomizing device corresponding to the first mounting groove is provided with a quick-release protrusion. When the atomizing device is located in the first mounting groove, the quick-release protrusion is located in the clearance groove. The quick-release protrusion is configured to be able to move relative to the drying chamber to disengage from the clearance groove and drive the atomizing device away from the first mounting groove.
[0014] With the above configuration, users can remove the atomizing device from the first mounting slot by operating the quick-release protrusion, which facilitates the disassembly and assembly of the atomizing device and the addition of liquid to the atomizing chamber through the liquid filling port, thus improving the user experience.
[0015] Optionally, the garment handling equipment also includes a winding structure and an electrical connection wire. The winding structure is located on the main body of the equipment and outside the inner drum. The winding structure has a winding shaft parallel to the rotation axis of the inner drum. The electrical connection wire is connected to the atomizing device and wound around the winding shaft. The winding shaft is configured to rotate when the inner drum rotates to release or retract the electrical connection wire.
[0016] With the above configuration, the winding shaft can rotate with the inner drum and release or retract the electrical connection wire, so that the electrical connection wire remains connected to the atomizing device located in the inner drum. This helps to avoid situations such as knotting, short circuit, breakage, or fatigue damage to the internal conductor due to pulling of the electrical connection wire, thereby reducing the probability of failure of the garment processing equipment and improving the reliability and service life of the garment processing equipment.
[0017] Furthermore, compared to wireless connections, atomizing devices can be more stably connected to external circuits via electrical cables, which can reduce costs, improve power supply efficiency, and reduce electromagnetic compatibility requirements, thus improving the cost-effectiveness of clothing processing equipment.
[0018] Optionally, the mounting structure also includes a second mounting slot disposed in the main body of the device, and at least two atomizing devices are provided, with different atomizing devices respectively disposed in the first mounting slot and the second mounting slot.
[0019] The above settings improve the garment care effect of the garment treatment equipment, and users can add liquid to any atomizing device to care for their clothes, thus enhancing the user experience.
[0020] Optionally, the main body of the equipment includes a base and a front support. The front support is located on the base, the inner cylinder is rotatably located on the front support, and the second mounting groove is located on the front support, with the opening of the second mounting groove facing the inside of the drying chamber.
[0021] With the above-described design, the atomizing device is detachably mounted on the front support via the second mounting slot, allowing users to easily remove the device for inspection or replacement, thus reducing maintenance costs for the garment processing equipment. Furthermore, users can conveniently add liquid to the atomizing chamber through the filling port, improving the user experience. Simultaneously, the second mounting slot is easy to manufacture, further reducing the cost of the garment processing equipment. Additionally, the placement of the atomizing device within the second mounting slot avoids affecting the appearance of the garment processing equipment, resulting in a cleaner and more streamlined look.
[0022] Optionally, the front support is provided with a magnetic element for magnetically adsorbing the atomizing device to prevent the atomizing device from leaving the second mounting slot.
[0023] With the above configuration, the magnetic component uses its own magnetism to attract the atomizing device, thereby detachably fixing the atomizing device in the second mounting slot. This makes it easy for users to assemble and disassemble the atomizing device, and also makes it easy to add liquid into the atomizing chamber through the liquid filling port, thus improving the user experience.
[0024] Optionally, the atomizing device corresponding to the second mounting slot also has an isolation chamber, with an atomizing port connecting the atomizing chamber and the isolation chamber. The isolation chamber has a mist exhaust port, which is spaced apart from the atomizing port. The atomizing device includes an atomizing plate, which is disposed in the isolation chamber. The atomizing plate is located between the atomizing port and the mist exhaust port and covers the atomizing port and the mist exhaust port. The atomizing plate is used to atomize the liquid in the atomizing chamber to form water mist and discharge the water mist from the atomizing chamber through the atomizing port and the mist exhaust port. The atomizing plate is provided with a connection terminal, which is configured to be electrically connected to an external circuit through the connection terminal. The connection terminal is located in the isolation chamber.
[0025] With the above configuration, the atomizing plate can atomize the liquid in the atomizing chamber into water mist through the atomizing port, and then discharge the water mist into the drying chamber through the mist exhaust port. Furthermore, the water mist or liquid in the atomizing chamber cannot enter the isolation chamber, preventing the connection terminals or other circuit structures in the isolation chamber from coming into contact with water, thereby preventing electric shock to the user and improving the safety of the user when disassembling and assembling the atomizing device.
[0026] With the above configuration, the atomizing device is detachably mounted on the lifting rib via the first mounting slot, making it easy for the user to remove the atomizing device and conveniently add liquid into the atomizing chamber through the liquid filling port, thus improving the user experience.
[0027] Optionally, the mounting structure has a first conductive part, and the atomizing device has a second conductive part. When the atomizing device is mounted on the mounting structure, the first conductive part and the second conductive part are electrically connected.
[0028] With the above configuration, the atomizing plate can be electrically connected to an external circuit through the first conductive part and the second conductive part, thereby enabling it to supply power to the atomizing device or control the operation of the atomizing device.
[0029] Optionally, the garment treatment device also includes a liquid injection box having a liquid injection chamber having a liquid injection port and a connecting port. The liquid injection box is configured to add liquid into the liquid injection chamber through the liquid injection port, and the connecting port is configured to communicate with the liquid injection port to add the liquid in the liquid injection chamber into the atomizing chamber.
[0030] With the above settings, users can easily add different liquids such as water, fabric fragrance, disinfectant, or antistatic agent to the atomizing device as needed through the liquid inlet of the liquid box without disassembling the atomizing device. This improves the user experience, enhances the garment care effect of the garment treatment equipment, and meets the user's different garment care needs.
[0031] Optionally, the main body of the equipment is provided with a third mounting slot and an openable and closable liquid injection channel. The first end of the liquid injection channel is connected to the third mounting slot, and the second end of the liquid injection channel is connected to the liquid filling port. The liquid injection box is detachably installed in the third mounting slot. When the liquid injection box is located in the third mounting slot, the connecting port and the first end of the liquid injection channel are connected, and the liquid injection channel is opened.
[0032] With the above-described design, the liquid injection box is detachably mounted to the main body of the device via the third mounting slot. This allows users to easily remove the box and conveniently add liquid to both the injection box and the atomizing device, improving the user experience and increasing usage frequency. Furthermore, it facilitates cleaning of the injection box, reducing the probability of malfunctions due to scale buildup, and makes it easier for users to inspect or replace parts, thus lowering the maintenance costs of the garment processing 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 This is a schematic diagram of the structure of the clothing processing device in another embodiment of this application;
[0036] Figure 3 This is a schematic diagram of the structure of the clothing processing device in another embodiment of this application;
[0037] Figure 4 for Figure 2 Another structural schematic diagram of the garment processing equipment shown;
[0038] Figure 5 for Figure 2 Exploded view of the garment processing equipment shown;
[0039] Figure 6 for Figure 5 A cross-sectional view of the atomizing device in the garment processing equipment shown.
[0040] Figure 7 for Figure 3 Another structural schematic diagram of the garment processing equipment shown;
[0041] Figure 8 for Figure 7 Enlarged diagram of section B in the middle;
[0042] Figure 9 for Figure 3 A schematic diagram of the atomizing device in the clothing processing equipment shown.
[0043] Figure 10 for Figure 9 A cross-sectional view of the atomizing device shown along the CC direction;
[0044] Figure 11 for Figure 9 Another structural schematic diagram of the atomizing device shown;
[0045] Figure 12 for Figure 3 Another structural schematic diagram of the garment processing equipment shown.
[0046] Figure 13 for Figure 2 Enlarged diagram of section A in the middle;
[0047] Figure 14 for Figure 1 Exploded view of the garment processing equipment shown;
[0048] Figure 15 for Figure 14Enlarged schematic diagram of section D in the middle;
[0049] Figure 16 for Figure 1 The diagram shows the structure of the liquid injection box in the garment processing equipment.
[0050] Explanation of key figure labels:
[0051] 10-Clothing processing equipment; 100-Equipment body; 110-Front panel; 120-Front support; 121-Feeding port; 122-Magnetic component; 123-Mounting frame; 130-Base; 140-Back plate; 150-Third mounting slot; 151-Second snap-fit structure; 152-Slide groove; 200-Inner drum; 210-Drying chamber; 220-Lifting rib; 221-Allowing groove; 300-Atomizing device; 310-Shell; 311-Atomizing chamber; 312-Atomizing port; 313-Liquid filling port; 314-Sealing cover; 315-Isolation chamber; 3 16-Mist outlet; 320-Atomizing plate; 330-Quick release protrusion; 340-Second conductive part; 400-Mounting structure; 410-Second mounting groove; 420-First mounting groove; 430-First conductive part; 500-Winding structure; 510-Winding shaft; 511-First shaft section; 512-Second shaft section; 520-Electrical connection wire; 600-Injection box; 610-Injection chamber; 611-Injection port; 612-Connecting port; 620-Slider; 630-First snap-fit structure; 640-Viewing window; 700-Injection channel; 710-Valve body. Detailed Implementation
[0052] As mentioned in the background section, garment drying equipment is a household appliance that can quickly dry clothes, improving users' quality of life. Currently, garment drying equipment includes a built-in atomizing device and a rotating inner drum. Clothes are dried within the drum, which rotates to tumble the clothes, thus accelerating the drying process and improving the drying effect. The atomizing device atomizes liquid and produces a water mist within the drum to care for the clothes. However, adding liquid to the atomizing device is inconvenient, affecting the user experience.
[0053] To address the aforementioned issues, this application provides a garment processing device to resolve the problem in the related art where adding liquid to the atomizing device is inconvenient and affects the user experience.
[0054] Please refer to Figures 1 to 12The clothing processing device 10 of this application embodiment includes: a device body 100, an inner drum 200, a drying assembly, an atomizing device 300, and a mounting structure 400. The inner drum 200 is rotatably disposed on the device body 100 and has a drying chamber 210 for drying clothing. The inner drum 200 is provided with lifting ribs 220, which are located within the drying chamber 210 and extend along the rotation axis of the inner drum 200. The drying assembly includes an air duct, a condenser, and an evaporator. The air duct communicates with the drying chamber 210 and is used for the flow of gas. The condenser is disposed within the air duct and is used to heat the gas flowing into the drying chamber 210. The evaporator is disposed within the air duct and is used to condense the gas flowing out of the drying chamber 210.
[0055] The atomizing device 300 is used to generate water mist. The atomizing device 300 has an atomizing chamber 311, which has a liquid inlet 313 and an atomizing port 312. The atomizing port 312 is configured to communicate with the drying chamber 210. The atomizing device 300 is configured to add liquid into the atomizing chamber 311 through the liquid inlet 313 and discharge water mist into the drying chamber 210 through the atomizing port 312.
[0056] The mounting structure 400 is at least disposed in the inner cylinder 200, and the mounting structure 400 is configured to correspond to the atomizing device 300, and the mounting structure 400 is detachably connected to the corresponding atomizing device 300. The mounting structure 400 includes a first mounting groove 420 disposed in the lifting rib 220, the atomizing device 300 is located within the first mounting groove 420, and the atomizing port 312 is located on the outer surface of the lifting rib 220.
[0057] With the above settings, the atomizing device 300 can discharge water mist into the drying chamber 210 to maintain clothes, achieving effects such as stain removal, wrinkle removal, odor removal, and fluffing of clothes. It can reduce or even avoid damage to clothes during the maintenance process and can be applied to clothes of different fabrics or materials.
[0058] Furthermore, the atomizing device 300 is detachably mounted on at least one of the main body 100 or the inner cylinder 200 via the mounting structure 400, so that the user can remove the atomizing device 300 and conveniently add liquid to the atomizing chamber 311 through the liquid filling port 313, thereby improving the user experience.
[0059] Meanwhile, the atomizing device 300 rotates with the inner drum 200 to spray water mist onto the clothes at different angles, ensuring a more even and rapid coverage. This avoids the problem of uneven care caused by the atomizing device 300 being located in a fixed position, resulting in some areas of the clothes being overly wet or dry. This improves the care effect on various fabrics, including thick clothing, and effectively removes wrinkles, stains, odors, and fluffs up the clothes. The atomizing device 300 is located on the lifting rib 220, which also reduces or eliminates the space occupied by the atomizing device 300 within the drying chamber 210. This optimizes the structure of the clothing processing equipment 10, making the structural design of the inner drum 200 simpler and reducing the difficulty of maintenance.
[0060] 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.
[0061] The garment processing device 10 provided in this application embodiment can have at least one of the garment processing functions such as drying, cleaning, care, or maintenance. 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 use the garment processing device 10 for processing garments as an example, but of course, the application of the garment processing device 10 is not limited to garments.
[0062] Please refer to Figure 1 The garment processing device 10 includes a device body 100, which may include a housing. The housing may be used to house, support and protect other components of the garment processing device 10. For example, the housing may include a front panel 110, which may be located on the front side of the garment processing device 10, and the front panel 110 may be provided with an openable and closable door (not shown in the figure).
[0063] Please combine Figure 1 and Figure 2 The main body 100 of the equipment may further include a base 130 and a front support 120 disposed on the base 130. Both the base 130 and the front support 120 may be located inside the housing. The base 130 may be disposed near the bottom of the housing, and the front support 120 may be disposed on the side of the base 130 near the front panel 110, so as to correspond to the door. Correspondingly, the base 130 is located on the side of the front support 120 opposite to the front panel 110.
[0064] Please combine Figure 1 , Figure 2 as well as Figure 3The garment handling device 10 includes an inner drum 200, which is rotatably disposed on the device body 100. For example, the inner drum 200 may be disposed on the front support 120 and located above the base 130. In some examples, the device body 100 may also include a back plate 140, which may be disposed on the opposite side of the base 130 relative to the front support 120, and the inner drum 200 may be disposed between the back plate 140 and the front support 120.
[0065] The inner drum 200 has a drying chamber 210, and the front support 120 is provided with a loading port 121 that communicates with the drying chamber 210, allowing users to load and unload clothes from the drying chamber 210 through the loading port 121. The drying chamber 210 is configured to allow hot airflow to pass through it to dry clothes, and the inner drum 200 can also rotate relative to the front support 120 to tumble the clothes, thereby accelerating the drying speed and improving the drying effect.
[0066] In some implementations, such as Figure 3 As shown, the inner cylinder 200 has lifting ribs 220, which are located within the drying chamber 210 and on the inner wall of the inner cylinder 200. The lifting ribs 220 protrude from the inner wall of the inner cylinder 200 and extend along the rotation axis of the inner cylinder 200. Therefore, during the drying process of the clothes handling equipment 10, the lifting ribs 220 rotate with the inner cylinder 200 and lift the clothes in the drying chamber 210 to a certain height before releasing them, thus preventing clothes from piling up and improving the drying efficiency and effect of the clothes handling equipment 10. Two lifting ribs 220 can be provided, and the two lifting ribs 220 can be arranged opposite each other on both sides of the drying chamber 210.
[0067] The garment handling 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 back panel 140 opposite to the inner drum 200. The air duct communicates with the inner drum 200 to facilitate the flow of gas between the air duct and the inner drum 200.
[0068] The drying assembly also includes a condenser located in the air duct. The gas in the air duct enters the drying chamber 210 after passing through the condenser. The condenser can heat the gas in the air duct through the phase change of the internal refrigerant to form a hot airflow that flows into the drying chamber 210, thereby drying the clothes.
[0069] The drying assembly also includes an evaporator located within an air duct. The evaporator is arranged in the same direction as the condenser within the air duct, allowing gas flowing out of the drying chamber 210 to pass through the evaporator. During the drying process of the clothes handling equipment 10, the humidity of the hot airflow within the drying chamber 210 increases. The evaporator can condense the humid hot airflow flowing out of the drying chamber 210 through the phase change of the internal refrigerant, thereby reducing the humidity of the airflow.
[0070] Please refer to Figure 4 , Figure 5 as well as Figure 6 The garment processing equipment 10 also includes an atomizing device 300, which has a housing 310 that encloses an atomizing chamber 311. The atomizing chamber 311 has a liquid inlet 313 and an atomizing outlet 312, both of which can be circular or nearly circular, and the atomizing outlet 312 is configured to communicate with the drying chamber 210. The user can add liquid to the atomizing chamber 311 through the liquid inlet 313, and the atomizing device 300 can atomize the liquid to form a water mist, which is then discharged into the drying chamber 210 through the atomizing outlet 312 to protect the garments.
[0071] For example, users can add different liquids such as water, clothing fragrance, antibacterial liquid or antistatic agent into the atomizing chamber 311 to achieve a variety of maintenance functions such as silk color restoration, leather brightening, mink fur nourishment, essential oil fragrance protection, wool stiffening, and down fluffing, and meet the maintenance needs of different types of fabrics.
[0072] In the above example, the liquid filling port 313 may be provided with an openable and closable sealing cover 314 so that the user can add liquid into the atomizing chamber 311, and the sealing cover 314 can prevent the atomizing device 300 from leaking liquid, thus improving the user experience.
[0073] The atomizing device 300 may further include an atomizing plate 320, which is sheet-shaped and disposed in the housing 310. The atomizing plate 320 may be circular or nearly circular to fit the atomizing port 312 and cover the atomizing port 312. The atomizing plate 320 can atomize the liquid in the atomizing chamber 311 to form water mist, and discharge the water mist into the drying chamber 210 through the atomizing port 312.
[0074] The material used to fabricate the atomizing plate 320 may include at least one of piezoelectric ceramics, metals, and polymers. For example, the atomizing plate 320 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.
[0075] When liquids such as water are injected into the atomizing chamber 311 through the liquid inlet 313, 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 drying chamber 210 through the atomizing port 312. The droplet size in the water mist can be mainly distributed in the micrometer (μm) scale range.
[0076] With the above settings, during the care and maintenance of clothing by the clothing treatment equipment 10, the atomizing plate 320 can atomize the liquid in the atomizing chamber 311 and generate water mist with small droplet size. The water mist enters the drying chamber 210 and can penetrate into the gaps between the fibers of the clothing to achieve effects such as stain removal, wrinkle removal, odor removal and fluffing of the clothing. It can reduce or even avoid damage to the clothing during the maintenance process and can be applied to clothing of different fabrics or materials.
[0077] In one embodiment, please continue to refer to Figure 6 The atomizing device 300 may also include an isolation chamber 315, which is formed by separating the isolation chamber 315 and the atomizing chamber 311 through a portion of the housing 310. The atomizing port 312 is located inside the housing 310 and connects the atomizing chamber 311 and the isolation chamber 315. The isolation chamber 315 has a mist exhaust port 316, which is located on the outer surface of the housing 310 and corresponds to the atomizing port 312. The mist exhaust port 316 is configured to communicate with the drying chamber 210 of the inner cylinder 200.
[0078] The atomizing plate 320 can be disposed within the isolation chamber 315 and located between the atomizing port 312 and the exhaust port 316, thereby covering the atomizing port 312 and the exhaust port 316. The atomizing plate 320 is also provided with a connection terminal, which allows it to be electrically connected to an external circuit, enabling it to vibrate and generate water mist under the drive of the external circuit. The connection terminal is located at the circumferential edge of the atomizing plate 320 and within the isolation chamber 315.
[0079] With the above configuration, the atomizing plate 320 can atomize the liquid in the atomizing chamber 311 into water mist through the atomizing port 312, and discharge the water mist into the drying chamber 210 through the mist discharge port 316. Furthermore, the water mist or liquid in the atomizing chamber 311 cannot enter the isolation chamber 315, preventing the connection terminals or other circuit structures in the isolation chamber 315 from coming into contact with water, thereby preventing electric shock to the user and improving the safety of the user when disassembling and assembling the atomizing device 300.
[0080] Please refer to Figure 7 and Figure 8 The garment processing equipment 10 also includes an installation structure 400, which is at least provided in the inner drum 200 and is correspondingly provided with the atomizing device 300, and the installation structure 400 is detachably connected to the corresponding atomizing device 300.
[0081] The above-mentioned design allows users to easily remove the atomizing device 300 and conveniently add liquid into the atomizing chamber 311 through the liquid filling port 313, thus improving the user experience.
[0082] In one embodiment, the mounting structure 400 may include a first mounting groove 420, which is disposed on the lifting rib 220. For example, the first mounting groove 420 may be disposed near the middle of the lifting rib 220 in the extending direction. The atomizing device 300 is detachably disposed within the first mounting groove 420. Exemplarily, the atomizing device 300 may be detachably mounted within the first mounting groove 420 by at least one of the following connection methods: magnetic connection, snap-fit connection, or bolt connection. The shape of the first mounting groove 420 may be adapted to the shape of the housing 310 of the atomizing device 300 so that the atomizing device 300 can be embedded within the first mounting groove 420.
[0083] Please combine Figure 8 , Figure 9 and Figure 10 The opening of the first mounting groove 420 faces the inside of the drying chamber 210. When the atomizing device 300 is installed in the first mounting groove 420, the housing 310 can form at least part of the outer surface of the lifting rib 220 to improve the visual effect of the clothing processing equipment 10. The atomizing port 312 can be provided on the part of the housing 310 that forms the outer surface of the lifting rib 220 so that it can communicate with the drying chamber 210 and allow the atomizing device 300 to discharge water mist into the drying chamber 210 through the atomizing port 312.
[0084] When the atomizing device 300 is installed in the first mounting groove 420, the liquid inlet 313 can face the groove wall of the first mounting groove 420 to prevent the sealing cap 314 on the liquid inlet 313 from loosening during the rotation of the atomizing device 300 with the inner cylinder 200, thereby preventing the atomizing device 300 from leaking liquid and improving the user experience.
[0085] With the above configuration, the atomizing device 300 is detachably mounted on the lifting rib 220 via the first mounting groove 420, so that the user can remove the atomizing device 300 and conveniently add liquid into the atomizing chamber 311 through the liquid filling port 313, thereby improving the user's experience.
[0086] Furthermore, the atomizing device 300 can rotate with the inner drum 200 to spray water mist onto the clothes at different angles, so that the water mist can cover the clothes more evenly and quickly. This avoids the problem of uneven care effect caused by the atomizing device 300 being set in a fixed position, which would result in the clothes being too wet or dry in some places. It improves the care effect on various fabrics, including thick clothes, and can better achieve the effects of wrinkle removal, stain removal, odor removal and fluffing of clothes.
[0087] Meanwhile, the atomizing device 300 is located on the lifting rib 220, which can reduce or even avoid the space occupied by the atomizing device 300 in the drying chamber 210. This optimizes the structure of the clothing processing equipment 10, making the structural design in the inner drum 200 simpler and helping to reduce the difficulty of maintenance.
[0088] In the example where there are two lifting ribs 220, there can also be two atomizing devices 300, and each atomizing device 300 can be respectively installed in the first mounting groove 420 on the two lifting ribs 220.
[0089] In some implementation methods, please refer to Figure 8 and Figure 11 The lifting rib 220 is provided with a clearance groove 221 that communicates with the first mounting groove 420. For example, the clearance groove 221 can communicate with the side wall of the first mounting groove 420. The atomizing device 300 is provided with a quick-release protrusion 330 protruding from the surface of the housing 310. The quick-release protrusion 330 is correspondingly provided with the clearance groove 221, and when the atomizing device 300 is installed in the first mounting groove 420, the quick-release protrusion 330 is located in the clearance groove 221. The quick-release protrusion 330 can move into the drying chamber 210 to leave the clearance groove 221, and drive the atomizing device 300 away from the first mounting groove 420.
[0090] With the above settings, users can remove the atomizing device 300 from the first mounting slot 420 by operating the quick-release protrusion 330, which facilitates the disassembly and assembly of the atomizing device 300 and the addition of liquid to the atomizing chamber 311 through the liquid filling port 313, thus improving the user experience.
[0091] In some implementation methods, please refer to Figure 12 The garment processing equipment 10 may also include a winding structure 500, which is located on the main body 100 and outside the inner drum 200. For example, the winding structure 500 may be connected between the front support 120 and the back plate 140. The winding structure 500 has a winding shaft 510 parallel to the rotation axis of the inner drum 200. The winding shaft 510 may rotate relative to the main body 100. For example, the winding shaft 510 may be rotatably connected to the main body 100 via a structure such as a bearing or a spiral spring.
[0092] The garment processing device 10 also includes an electrical connection wire 520 wound on a shaft, the electrical connection wire 520 being configured to pass through the inner drum 200 and be electrically connected to the atomizing device 300, so that the garment processing device 10 can supply power to the atomizing device 300 or control the operation of the atomizing device 300 through the electrical connection wire 520.
[0093] The winding spool 510 is configured to rotate as the inner cylinder 200 rotates to release or retract the electrical connection wire 520. For example, as the atomizing device 300 rotates with the inner cylinder 200 and moves away from the winding spool 510, the winding spool 510 can rotate and release the wound electrical connection wire 520. As another example, as the atomizing device 300 rotates with the inner cylinder 200 and moves closer to the winding spool 510, the winding spool 510 can rotate and retract the electrical connection wire 520 so that the retracted electrical connection wire 520 is rewound onto the winding spool 510.
[0094] With the above configuration, the winding shaft 510 can rotate with the inner cylinder 200 and release or retract the electrical connection wire 520, so that the electrical connection wire 520 remains connected to the atomizing device 300. This helps to avoid situations such as the electrical connection wire 520 getting tangled, short-circuited, broken, or fatigue damage to the internal conductor due to being pulled, thereby reducing the probability of failure of the clothing processing equipment 10 and improving the reliability and service life of the clothing processing equipment 10.
[0095] Furthermore, compared to wireless connection, the atomizing device 300 can be more stably connected to the external circuit via the electrical connection cable 520, which can reduce costs, improve power supply efficiency, and reduce electromagnetic compatibility requirements, thus improving the cost-effectiveness of the garment processing equipment 10.
[0096] In the example where two atomizing devices 300 are provided, the winding shaft 510 may include a first shaft segment 511 and a second shaft segment 512 connected to each other. Two electrical connecting wires 520 may be provided, each wound around the first shaft segment 511 and the second shaft segment 512 respectively, and connected to different atomizing devices 300. Thus, when the inner cylinder 200 rotates, one of the first shaft segment 511 and the second shaft segment 512 can release the electrical connecting wire 520, while the other can retract it.
[0097] Since the atomizing device 300 is located on the lifting rib 220, and the lifting rib 220 generates a certain centrifugal force as the inner cylinder 200 rotates, the liquid may not be able to contact the atomizing plate 320 under the action of centrifugal force, causing the atomizing device 300 to fail to continuously produce mist. Therefore, in the above embodiment, the atomizing chamber 311 may be provided with a liquid storage chamber and an anti-backflow structure, and the atomizing plate 320 is located in the liquid storage chamber. The anti-backflow structure is configured to guide the liquid in the atomizing chamber 311 to the liquid storage chamber, so that the liquid can always accumulate in the area near the atomizing plate 320. At the same time, when the amount of liquid in the atomizing chamber 311 is small, the anti-backflow structure prevents the backflow of liquid in the liquid storage chamber, so that the atomizing plate 320 can always contact the liquid in the liquid storage chamber during the rotation of the inner cylinder 200, thereby ensuring that the atomizing device 300 continuously produces water mist. The anti-backflow structure may include a one-way valve or a diaphragm that can undergo elastic deformation.
[0098] Alternatively, a pressure element may also be provided inside the atomizing chamber 311. This pressure element can pressurize the atomizing chamber 311, allowing the liquid inside to contact the atomizing plate 320 under pressure, thus ensuring that the atomizing device 300 continuously produces water mist. For example, the pressure element may include a miniature air pump, which can be connected to the atomizing chamber 311 and can introduce gas into the atomizing chamber 311 to achieve pressurization.
[0099] Alternatively, a piston structure can be provided inside the atomizing chamber 311. The piston structure may include a piston rod and a piston head connected to each other. The piston rod may be located on the inner wall of the atomizing chamber 311, and the piston head may be slidably connected to the inner wall of the atomizing chamber 311 and be able to move relative to the housing 310 along the extension direction of the piston rod to change the volume of the atomizing chamber 311. As the liquid in the atomizing chamber 311 gradually decreases as the atomizing device 300 operates, the piston head can move and reduce the volume of the atomizing chamber 311 to keep the liquid in the atomizing chamber 311 in contact with the atomizing plate 320 and ensure that the atomizing device 300 continuously generates water mist.
[0100] In another embodiment, such as Figure 5 As shown, the mounting structure 400 also includes a second mounting groove 410 disposed in the device body 100, and at least two atomizing devices 300 are provided, with different atomizing devices 300 respectively disposed in the first mounting groove 420 and the second mounting groove 410.
[0101] For example, two atomizing devices 300 can be provided, one of which is detachably installed in the first mounting slot 420, and the other is detachably installed in the second mounting slot 410. This increases the number of atomizing devices 300, improves the garment care effect of the garment treatment equipment 10, and allows the user to add liquid to either atomizing device 300 to care for the garment, thus enhancing the user experience.
[0102] like Figure 5 As shown, the second mounting groove 410 is provided on the front support 120, for example, it can be provided on the side of the front support 120 near the inner cylinder 200 and the base 130. The atomizing device 300 is detachably provided in the second mounting groove 410. The shape of the second mounting groove 410 can be adapted to the shape of the housing 310 of the atomizing device 300 so that the atomizing device 300 can be embedded in the second mounting groove 410.
[0103] The opening of the second mounting slot 410 faces the inside of the drying chamber 210. When the atomizing device 300 is installed in the second mounting slot 410, the atomizing port 312 faces the outside of the second mounting slot 410 to connect with the drying chamber 210, so that the atomizing device 300 can discharge water mist into the drying chamber 210 through the atomizing port 312.
[0104] Furthermore, when the atomizing device 300 is installed in the second mounting slot 410, the liquid inlet 313 can face the wall of the second mounting slot 410 to prevent the sealing cap 314 on the liquid inlet 313 from becoming loose, thereby preventing the atomizing device 300 from leaking liquid and improving the user experience.
[0105] With the above-described configuration, the atomizing device 300 is detachably mounted on the front support 120 via the second mounting slot 410, facilitating user removal for inspection or replacement, thus reducing the maintenance cost of the garment processing equipment 10. Furthermore, users can conveniently add liquid to the atomizing chamber 311 through the liquid inlet 313, improving the user experience. Simultaneously, the second mounting slot 410 is easy to manufacture, helping to reduce the production cost of the garment processing equipment 10. Moreover, the placement of the atomizing device 300 within the second mounting slot 410 avoids affecting the appearance of the garment processing equipment 10, resulting in a cleaner and more streamlined appearance.
[0106] In the above example, the second mounting slot 410 can be located on the outer edge of the dispensing port 121. This places the atomizing device 300 close to the compartment door, facilitating user assembly and disassembly of the atomizing device 300 and allowing for easy addition of liquid to the atomizing chamber 311 via the liquid filling port 313, thus improving the user experience.
[0107] In some implementations, such as Figure 13 As shown, a magnetic component 122 is provided on the front support 120. The magnetic component 122 is used to attract the atomizing device 300 by its own magnetism, so as to restrict the atomizing device 300 from leaving the second mounting groove 410 and fix the atomizing device 300 in the second mounting groove 410.
[0108] For example, the magnetic component 122 can be a permanent magnet, and the material used to make the magnetic component 122 can include at least one of permanent magnet materials such as ferrite, neodymium iron boron, or AlNiCo. Alternatively, the magnetic component 122 can be an electromagnet, which can be electrically connected to an external circuit to generate magnetism, and the material used to make the magnetic component 122 can include at least one of materials such as copper, aluminum, or silicon steel.
[0109] In some examples, the atomizing device 300 may have an adsorption element corresponding to the magnetic element 122. The adsorption element may include a magnet or metal, etc., so that it can be adsorbed by the magnetic element 122 and the atomizing device 300 can be adsorbed by the magnetic element 122 into the second mounting groove 410.
[0110] In other examples, at least part of the housing 310 of the atomizing device 300 may be made of at least one of the metal materials such as iron, cobalt or nickel, thereby allowing the adsorption element to fix the atomizing device 300 in the second mounting groove 410 through the adsorption housing 310.
[0111] With the above configuration, the magnetic component 122 magnetically attracts the atomizing device 300 to detachably fix the atomizing device 300 in the second mounting slot 410, thereby facilitating the user's disassembly and assembly of the atomizing device 300 and the addition of liquid to the atomizing chamber 311 through the liquid inlet 313, thus improving the user's experience.
[0112] In the above implementation, the magnetic component 122 can be disposed outside the second mounting groove 410. For example, the magnetic component 122 can be located on the side of the front support 120 opposite to the inner cylinder 200 and the base 130 relative to the second mounting groove 410. For example, a mounting bracket 123 can be provided on the front support 120, located on the side of the front support 120 opposite to the inner cylinder 200, and correspondingly disposed with respect to the second mounting groove 410. The magnetic component 122 can be disposed on the first mounting bracket 123, for example, on at least a portion of the structure of the first mounting bracket 123 corresponding to the bottom of the second mounting groove 410. Alternatively, the magnetic component 122 can also be disposed inside the second mounting groove 410.
[0113] In other implementations, the atomizing device 300 can also be detachably installed in the second mounting slot 410 by at least one of other connection methods such as snap-fit connection or bolt connection.
[0114] In one embodiment, the mounting structure 400 may have a first conductive portion 430 configured to be electrically connected to an external circuit. For example, the first conductive portion 430 may be connected to an electrical connection line 520. In an example where the mounting structure 400 includes a second mounting groove 410, such as... Figure 5 As shown, the first conductive part 430 can be disposed on the mounting bracket 123 and extend through the device body 100 into the second mounting groove 410. In an example where the mounting structure 400 includes the first mounting groove 420, such as... Figure 8 As shown, the first conductive part 430 may be disposed on the inner wall of the first mounting groove 420.
[0115] The atomizing device 300 may have a second conductive portion 340 corresponding to the first conductive portion 430. The second conductive portion 340 may be disposed on the surface of the housing 310 of the atomizing device 300, and the second conductive portion 340 is configured to be electrically connected to the atomizing plate 320. For example, as Figure 6 As shown, the second conductive part 340 can pass through the housing 310 and extend into the isolation cavity 315, so that it can be electrically connected to the connection terminal of the atomizing plate 320 through a structure such as a wire.
[0116] When the atomizing device 300 is installed on the mounting structure 400, the first conductive part 430 can contact the second conductive part 340 so that the atomizing plate 320 can be electrically connected to the external circuit, thereby enabling the atomizing device 300 to be powered or the atomizing device 300 to be controlled to operate.
[0117] In the above example, both the first conductive part 430 and the second conductive part 340 can be made of at least one of the metals with good conductivity, such as copper, stainless steel, or noble metal alloys. Both the first conductive part 430 and the second conductive part 340 can include at least one of the structures such as conductive inserts, conductive pins, or conductive probes.
[0118] In one embodiment, please refer to Figure 14 , Figure 15 as well as Figure 16 The garment processing device 10 may also include a liquid injection box 600, which may be located on the main body 100 of the device, for example, on the upper part of the front panel 110. The liquid injection box 600 has a liquid injection chamber 610 inside, which includes a liquid injection port 611 and a connecting port 612. The user can add liquid into the liquid injection chamber 610 through the liquid injection port 611. The connecting port 612 can be connected to the liquid inlet 313 of the atomizing device 300 to add the liquid in the liquid injection chamber 610 into the atomizing chamber 311 and enable the atomizing device 300 to generate water mist.
[0119] With the above settings, users can conveniently add different liquids such as water, clothing fragrance, disinfectant or antistatic agent to the atomizing device 300 as needed through the liquid inlet 611 of the liquid inlet box 600 without disassembling the atomizing device 300. This improves the user experience, enhances the clothing care effect of the clothing treatment equipment 10 on clothing, and meets the user's care needs for different types of clothing.
[0120] In the above example, the injection port 611 may be provided with an openable and closable injection cap, so that the user can add liquid into the injection chamber 610, and the injection cap can prevent the injection box 600 from leaking, thus improving the user experience.
[0121] In some implementations, the main body 100 may be provided with a third mounting groove 150, which may be located on the side of the front panel 110 opposite to the inner cylinder 200 and the front support 120. The main body 100 also provides an openable and closable liquid injection channel 700, for example, the liquid injection channel 700 may be located on the front support 120 and between the front support 120 and the front panel 110. The first end of the liquid injection channel 700 is connected to the third mounting groove 150 and is correspondingly provided with the connecting port 612, and the second end of the liquid injection channel 700 is connected to the liquid filling port 313.
[0122] The injection box 600 is detachably installed in the third mounting slot 150. The shape of the third mounting slot 150 can be adapted to the shape of the injection box 600 so that the injection box 600 can be embedded in the third mounting slot 150. When the injection box 600 is located in the third mounting slot 150, the connecting port 612 and the first end of the injection channel 700 are connected, and the injection channel 700 is open so that the liquid in the injection chamber 610 can be added to the atomizing chamber 311.
[0123] With the above-described configuration, the liquid injection box 600 is detachably mounted on the main body 100 of the device via the third mounting slot 150, allowing users to easily remove the liquid injection box 600 and conveniently add liquid to the liquid injection box 600 and the atomizing device 300. This improves the user experience and increases the frequency of use. Furthermore, it facilitates cleaning of the liquid injection box 600, reducing the probability of malfunctions due to scale buildup, and makes it easier for users to inspect or replace parts, thus lowering the maintenance costs of the clothing processing equipment 10.
[0124] In the above embodiment, a sliding groove 152 may be provided on the wall of the third mounting groove 150. The sliding groove 152 extends along the bottom of the third mounting groove 150 towards the opening of the third mounting groove 150. A slider 620 adapted to the sliding groove 152 may be provided on the liquid injection box 600. The slider 620 is configured to slide in contact with the wall of the sliding groove 152 and can slide along the extension direction of the sliding groove 152, so as to facilitate the user to disassemble and assemble the liquid injection box 600, thereby making it easier to add liquid to the liquid injection box 600 and the atomizing device 300, and improving the user experience.
[0125] In one example, the injection box 600 may be provided with a first snap-fit structure 630, and the third mounting slot 150 may be provided with a second snap-fit structure 151 corresponding to the first snap-fit structure 630. The first snap-fit structure 630 can snap onto the second snap-fit structure 151 to detachably install the injection box 600 into the third mounting slot 150.
[0126] The second locking structure 151 can undergo elastic deformation to engage with the first locking structure 630 through its own elastic force. When the first locking structure 630 moves toward the second locking structure 151, the first locking structure 630 can drive the second locking structure 151 to undergo elastic deformation and release the first locking structure 630. Therefore, the user can easily remove the liquid injection box 600 from the third mounting slot 150 by pressing it into the third mounting slot 150, facilitating the addition of liquid to the liquid injection box 600 and the atomizing device 300, thus improving the user experience.
[0127] At this time, the second locking structure 151 can be configured as a press-type elastic self-locking mechanism, and can alternately lock or unlock with each external press. When pressure is applied to the injection box 600 in the third mounting groove 150, the injection box 600 will also drive the second locking structure 151 to change its locking state. The second locking structure 151 can be any type of press-type elastic self-locking mechanism commonly used in the prior art, and the specific structure of the second locking structure 151 is not limited here.
[0128] In other examples, the injection box 600 can also be detachably installed in the third mounting slot 150 by at least one of the following connection methods: magnetic connection or bolt connection.
[0129] In some implementations, a valve body 710 may be provided at the first end of the injection channel 700. The valve body 710 is used to open or close the injection channel 700. When the injection box 600 is installed in the third mounting slot 150, the injection box 600 can be inserted into the valve body 710 to connect the communication port 612 to the valve body 710. The valve body 710 is configured to open when connected to the injection box 600, so that the liquid in the injection chamber 610 can be added to the atomizing chamber 311 through the communication port 612. When the injection box 600 is removed from the third mounting slot 150, the valve body 710 closes the injection channel 700. Through the above settings, leakage of the injection channel 700 can be avoided, improving the user experience.
[0130] In some examples, a viewing window 640 may be provided on the surface of the injection box 600 facing the outer side of the third mounting groove 150. The viewing window 640 may be made of at least one transparent material such as plastic or glass. This allows the user to observe the liquid level in the injection chamber 610 through the viewing window 640, facilitating the determination of the atomizing device 300's operating status and whether liquid needs to be added to the injection box 600, thus improving the user experience.
[0131] In other examples, a prompting module may be provided on the surface of the liquid filling box 600 facing outward from the third mounting slot 150. The prompting module may include a light-emitting diode (LED) or a display screen. The prompting module is configured to display liquid level information within the liquid filling chamber 610, allowing the user to determine the operating status of the atomizing device 300 and whether liquid needs to be added to the liquid filling box 600, thus improving the user experience. Furthermore, the display module also enhances the visual appeal of the garment processing device 10.
[0132] In the above example, the liquid injection box 600 can be positioned close to the atomizing device 300 to shorten the length of the liquid injection channel 700 and reduce the loss of liquids such as clothing fragrance, disinfectant or antistatic agent in the liquid injection chamber 610, thereby improving the utilization rate of the liquid.
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 a drying chamber for drying clothes; The inner cylinder is provided with lifting ribs, which are located inside the drying chamber and extend along the rotation axis of the inner cylinder; Drying assembly, the drying assembly comprising: An air duct, which is connected to the drying chamber and is used for the circulation of gas; A condenser is disposed in the air duct and is used to heat the gas flowing into the drying chamber; An evaporator, located within the air duct, is used to condense the gas flowing out of the drying chamber; An atomizing device is provided for generating water mist. The atomizing device has an atomizing chamber, which has a liquid inlet and an atomizing outlet. The atomizing outlet is configured to communicate with the drying chamber. The atomizing device is configured to add liquid into the atomizing chamber through the liquid inlet and discharge water mist into the drying chamber through the atomizing outlet. The mounting structure is at least disposed in the inner cylinder and configured to correspond to the atomizing device, and the mounting structure is detachably connected to the corresponding atomizing device; wherein, the mounting structure includes a first mounting groove disposed in the lifting rib, the atomizing device is located in the first mounting groove, and the atomizing port is located on the outer surface of the lifting rib; The device includes a winding structure and an electrical connection wire. The winding structure is located on the main body of the device and outside the inner cylinder. The winding structure has a winding shaft parallel to the rotation axis of the inner cylinder. The electrical connection wire is connected to the atomizing device and wound around the winding shaft. The winding shaft is configured to rotate as the inner cylinder rotates to release or retract the electrical connection wire.
2. The garment processing equipment according to claim 1, characterized in that, The lifting rib is provided with a clearance groove that communicates with the first mounting groove; The surface of the atomizing device corresponding to the first mounting slot is provided with a quick-release protrusion. When the atomizing device is located in the first mounting slot, the quick-release protrusion is located in the clearance slot. The quick-release protrusion is configured to move relative to the drying chamber to disengage from the clearance slot and drive the atomizing device away from the first mounting slot.
3. The garment processing equipment according to claim 1 or 2, characterized in that, The mounting structure also includes a second mounting groove disposed in the main body of the equipment; The atomizing device is provided in at least two, and different atomizing devices are respectively disposed in the first mounting slot and the second mounting slot.
4. The garment processing equipment according to claim 3, characterized in that, The main body of the equipment includes a base and a front support, the front support is disposed on the base, and the inner cylinder is rotatably disposed on the front support; The second mounting groove is located on the front support, and the opening of the second mounting groove faces the inside of the drying chamber.
5. The garment processing equipment according to claim 4, characterized in that, The front support is provided with a magnetic component, which is used to magnetically attract the atomizing device to prevent the atomizing device from leaving the second mounting slot.
6. The garment processing equipment according to claim 4, characterized in that, The atomizing device corresponding to the second mounting slot also has an isolation chamber, the atomizing port is connected between the atomizing chamber and the isolation chamber, the isolation chamber has a mist exhaust port, and the mist exhaust port is spaced apart from the atomizing port; The atomizing device includes an atomizing plate disposed within the isolation chamber; the atomizing plate is located between the atomizing port and the mist exhaust port, and covers the atomizing port and the mist exhaust port; the atomizing plate is used to atomize the liquid in the atomizing chamber to form water mist, and discharge the water mist from the atomizing chamber through the atomizing port and the mist exhaust port. The atomizing plate is provided with a connection terminal, and the atomizing plate is configured to be electrically connected to an external circuit through the connection terminal, which is located inside the isolation cavity.
7. The garment processing equipment according to claim 1 or 2, characterized in that, The mounting structure has a first conductive part, and the atomizing device has a second conductive part. When the atomizing device is mounted on the mounting structure, the first conductive part and the second conductive part are electrically connected.
8. The garment processing equipment according to claim 1 or 2, characterized in that, The garment processing device further includes a liquid injection box, which has a liquid injection chamber, and the liquid injection chamber has a liquid injection port and a connecting port; The injection box is configured to add liquid into the injection chamber through the injection port, and the connecting port is configured to communicate with the liquid filling port to add the liquid in the injection chamber into the atomizing chamber.
9. The garment processing equipment according to claim 8, characterized in that, The main body of the device is provided with a third mounting groove and an openable and closable liquid injection channel. The first end of the liquid injection channel is connected to the third mounting groove, and the second end of the liquid injection channel is connected to the liquid filling port. The injection box is detachably installed in the third mounting slot. When the injection box is located in the third mounting slot, the connecting port and the first end of the injection channel are connected, and the injection channel is opened.
Citation Information
Patent Citations
Clothes processing equipment
CN118007387A