Laundry treating apparatus

CN224692410UActive Publication Date: 2026-08-28BEIJING XIAOMI MOBILE SOFTWARE CO LTD
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Patent Information

Application Number
CN202521870081.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-30
Publication Date
2026-08-28
Estimated Expiration
2035-08-30

AI Technical Summary

Technical Problem

[0003]相关技术中,电解装置通常安装在衣物处理设备的处理筒内,在处理筒内的进水达到一定高度并浸没电解装置时,电解装置才开始工作进行电解,导致电解效率较低

Benefits of technology

[0056] In this embodiment, by configuring the housing as a first housing and a second housing, it is convenient to install the electrolysis assembly inside the housing. The electrolysis assembly is suspended within the electrolysis channel by the engagement of one end of the first connector extending from the electrolysis channel with a third nut, and the engagement of one end of the second connector extending from the electrolysis channel with a fourth nut. This prevents the electrolysis assembly from contacting the inner wall of the housing, blocking stray current loops and extending the overall service life of the electrolysis device. By placing the ends of the first and second connectors extending from the electrolysis channel within the receiving cavity, wiring space is provided for the connection between the first terminal and the first connector, and the connection between the second terminal and the second connector, preventing accidental contact and external short circuits, and improving the reliability of the electrolysis device.

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Abstract

The utility model discloses a kind of clothes processing equipment, including cabinet, processing cylinder, material box and electrolytic device, the processing cylinder is located in the cabinet and has processing cavity;The material box is located in the cabinet, and the electrolytic device is located in the material box, and the electrolytic device has electrolytic flow channel, the material box has liquid inlet flow channel and liquid outlet flow channel, first water inlet and first water outlet that the material box is further equipped with and the electrolytic flow channel intercommunication, the first water inlet is communicated with water inlet valve by the liquid inlet flow channel, and the first water outlet is communicated with the processing cavity by the liquid outlet flow channel.This disclosure's clothes processing equipment can start electrolysis when water has not entered processing cavity, realizes overflow electrolysis, improves electrolytic efficiency.Simultaneously, it can also avoid electrolytic device and detergent contact and avoid lint on clothes adhere to electrolytic device, the electrolytic effect of electrolytic device is influenced, further improves electrolytic efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of clothing processing technology, specifically to a clothing processing device. Background Technology

[0002] Clothing treatment equipment such as washing machines and washer-dryer combos are typically equipped with electrolysis devices to electrolyze water in order to sterilize and disinfect the clothes in the treatment drum, increase the washing ratio, prevent color bleeding, bleach white clothes, and clean the drum. This generates hydroxyl radicals and / or ozone, which have strong oxidizing activity, in the treatment drum.

[0003] In related technologies, the electrolysis device is usually installed inside the processing drum of the garment processing equipment. The electrolysis device only starts to work and perform electrolysis when the water in the processing drum reaches a certain height and submerges the device, resulting in low electrolysis efficiency. Utility Model Content

[0004] This disclosure aims to at least partially address one of the technical problems in the related art.

[0005] Therefore, embodiments of this disclosure provide a garment processing device.

[0006] The garment processing device of this disclosure includes a housing, a processing cylinder, a material box, and an electrolysis device. The processing cylinder is disposed inside the housing and has a processing chamber. The material box is disposed in the housing, and the electrolysis device is disposed in the material box. The electrolysis device has an electrolysis channel. The material box has an inlet channel and an outlet channel. The material box is also provided with a first water inlet and a first water outlet communicating with the electrolysis channel. The first water inlet is connected to a water inlet valve through the inlet channel, and the first water outlet is connected to the processing chamber through the outlet channel.

[0007] In this embodiment of the garment processing equipment, the electrolysis device is no longer directly installed inside the processing drum, but rather located in the feed box. Therefore, electrolysis can begin before water enters the processing chamber, achieving flow-through electrolysis and improving electrolysis efficiency. Simultaneously, it avoids contact between the electrolysis device and detergent, and prevents lint from adhering to the electrolysis device, thus preventing it from affecting the electrolysis effect and further improving efficiency. Moreover, placing the electrolysis device in the feed box outside the processing drum allows for efficient use of the internal space, improving layout rationality and structural compactness.

[0008] In some embodiments, the material box is provided with a baffle plate, which separates the liquid inlet channel and the liquid outlet channel. That is, the manufacturing mold for the material box only needs to replace the insert corresponding to the baffle plate. This simple component allows one mold to manufacture two different material box products, increasing the mold's versatility, reducing mold opening costs, and lowering manufacturing costs.

[0009] In some embodiments, the connection between the liquid outlet channel and the liquid inlet channel includes a bend, the baffle plate is disposed at the bend, and the electrolysis device is disposed above the baffle plate. The electrolysis device of this disclosure can be disposed not only in a straight channel but also in a bent and extended channel, enabling it to adapt to different channel shapes and exhibiting strong compatibility.

[0010] In some embodiments, the detergent dispenser has a detergent chamber communicating with the liquid outlet channel for delivering detergent into the liquid outlet channel, so that the detergent mixes with the electrolyte flowing from the electrolysis channel within the liquid outlet channel. When the garment processing equipment is operating, the detergent in the detergent chamber is conveyed to the liquid outlet channel. The detergent mixes with the electrolyte flowing from the electrolysis channel of the electrolysis device within the liquid outlet channel, ensuring thorough mixing of the detergent with active substances such as hydroxyl radicals and / or ozone generated during electrolysis, before being conveyed to the processing drum, thereby achieving optimal cleaning results during garment processing. The mixed use of detergent and electrolyte can produce a synergistic effect, enhancing the cleaning effect and making it easier to remove stains and bacteria from clothing.

[0011] In some embodiments, the outlet channel is provided with a plurality of spaced-apart turbulence columns, which are used to agitate the detergent and electrolyte flowing within the outlet channel. When the detergent and electrolyte flow through these turbulence columns, the columns disrupt the laminar flow state of the fluid, generating turbulence. Turbulence facilitates more thorough mixing of the detergent and electrolyte, increases the contact area between them, and improves mixing efficiency.

[0012] In some embodiments, the material box includes a top cover and an upper box body, the top cover and the upper box body defining the inlet flow channel and the outlet flow channel. The modular design of the material box allows each part to be manufactured, installed, and maintained independently, improving the reliability and ease of use of the equipment. By dividing the material box into a top cover and an upper box body, space can be utilized more effectively while maintaining a clear and orderly internal structure.

[0013] In some embodiments, the detergent dispenser further includes a lower housing that, together with the upper housing, defines a detergent chamber. The modular design of the dispenser allows each part to be manufactured, installed, and maintained independently, improving the reliability and ease of use of the equipment. By dividing the dispenser into a top cover and an upper housing, space can be utilized more effectively while maintaining a clear and orderly internal structure.

[0014] In some embodiments, the electrolysis device is disposed on the top cover, and the first water inlet and the first water outlet are disposed on the top cover.

[0015] Because the material box has ultrasonic welded seams on its side, placing the electrolysis device on the top of the material box, compared to placing it on the side, avoids the electrolysis device affecting the ultrasonic welds and improves the welding reliability of the ultrasonic welds on the side of the material box. At the same time, it also reduces the space occupied by the electrolysis device on the side of the material box, avoiding interference with display components, electrical control components, and wiring terminals installed on the side of the material box. The first water inlet and the first water outlet are also located on the top cover. Since the top of the material box has ample installation space, it facilitates the installation of water pipes connecting to the second water inlet and the second water outlet, reducing the difficulty of connecting the water pipes.

[0016] In some embodiments, the surface of the top cover facing the upper box body is provided with a first rib, and the surface of the upper box body facing the top cover is provided with a second rib. The first rib and the second rib are opposite to each other to define the liquid inlet channel and the liquid outlet channel.

[0017] The first rib is integrally formed with the top cover, and the second rib is integrally formed with the upper box body. During assembly, simply attaching the top cover to the upper box body forms the inlet and outlet channels, simplifying the formation of these channels on the material box. This also simplifies the manufacturing of the top cover and upper box body, making assembly easier. Furthermore, the rib design enhances the structural strength of the material box, improving the durability of the equipment.

[0018] In some embodiments, the upper housing is provided with a detergent inlet communicating with the liquid outlet channel, and the container is equipped with a delivery pump. The inlet of the delivery pump is communicating with the detergent chamber, and the outlet of the delivery pump is communicating with the detergent inlet. The delivery pump can precisely control the delivery volume and delivery time of the detergent, ensuring an accurate mixing ratio of detergent and electrolyte. Precise control of the detergent delivery volume can reduce waste, lower costs, and reduce environmental impact.

[0019] In some embodiments, the material box is provided with a second water inlet and a second water outlet. The liquid inlet channel is connected to the water inlet valve through the second water inlet, and the liquid outlet channel is connected to the processing chamber through the second water outlet. This makes liquid inlet and outlet simple and convenient.

[0020] In some embodiments, the garment processing device further includes a reversing valve disposed in the housing, and there are multiple processing cylinders. The processing chambers of the multiple processing cylinders are connected to the liquid outlet channel through the reversing valve. The reversing valve is used to switch the communication between the processing chambers of the multiple processing cylinders and the liquid outlet channel.

[0021] The multi-drum configuration allows the equipment to handle multiple washing tasks simultaneously, improving its efficiency. The inlet and reversing valves provide greater flexibility in the washing program, allowing selection of different drums based on varying washing needs. Controlling water inlet and outlet optimizes water usage and reduces waste. Each drum can operate independently, with washing parameters adjusted according to different garment types and washing requirements, thus enhancing cleaning results. The reversing valves improve overall system reliability by preventing water from mistakenly entering or leaving the drums. Although the equipment features multiple drums, its efficient layout and design save space, making it suitable for both residential and commercial environments.

[0022] In some embodiments, the inlet valve is connected to the inlet channel via a first water pipe, and the reversing valve is connected to the outlet channel via a second water pipe. By providing a first water pipe and a second water pipe of a certain length, space utilization can be optimized, allowing the inlet valve and the reversing valve to be installed in different positions on the casing according to design requirements, making the equipment more compact and efficient.

[0023] In some embodiments, the plurality of processing cylinders includes a first processing cylinder, a second processing cylinder, and a third processing cylinder, wherein the second processing cylinder and the third processing cylinder are disposed above the first processing cylinder and spaced apart in the left-right direction. This ensures that the weight distribution of the second and third processing cylinders is uniform in the left-right direction, thereby improving the balance of the entire device in the left-right direction and reducing vibration and noise during operation.

[0024] In some embodiments, the second and third processing drums are symmetrical about a vertical plane passing through the axis of the first processing drum. Symmetrical design can reduce production costs because it reduces manufacturing complexity and allows the same components or molds to be used to produce both the second and third processing drums. Due to the structural symmetry, maintenance and component replacement are more efficient, and maintenance personnel can quickly locate and resolve problems. A symmetrical layout helps improve the overall structural strength of the washing machine, as symmetrical structures are generally more stable.

[0025] In some embodiments, the electrolysis device includes a housing and an electrolysis assembly. The housing has the electrolysis channel, and at least a portion of the electrolysis assembly is disposed within the electrolysis channel and is used to electrolyze the electrolyte within the electrolysis channel. In this embodiment, by disposing of the electrolysis assembly within the housing and utilizing the connection between the housing and the casing, the electrolysis device can be installed. By modularizing the electrolysis device, the ease of installation is improved.

[0026] In some embodiments, a third inlet and a third outlet are formed at both ends of the electrolysis channel, and the third inlet is at least partially offset from the electrolysis assembly in the axial direction of the third inlet. This can reduce or even avoid the impact of the water flowing in the electrolysis channel on the electrolysis assembly, preventing damage or surface material shedding from the electrolysis assembly and thus contaminating the electrolyte. This not only helps to improve the service life of the electrolysis assembly but also improves the electrolysis reliability of the electrolysis device.

[0027] In some embodiments, the third outlet and the electrolysis component are at least partially offset axially at the third outlet. This can reduce or even eliminate the impact of the electrolyte flowing in the electrolysis channel on the electrolysis component, preventing damage or surface material shedding from the electrolysis component and thus contaminating the electrolyte. This not only helps to improve the service life of the electrolysis component but also enhances the electrolysis reliability of the electrolysis device.

[0028] In some embodiments, a first connecting portion is provided on the outer side wall of the housing, the first connecting portion is provided with a first connecting hole, and a second connecting hole is provided on the top of the material box. The first connecting portion and the material box are connected by fasteners passing through the first connecting hole and the second connecting hole, making it simple and convenient to connect the electrolysis device and the material box.

[0029] In some embodiments, there are multiple first connecting portions, with at least two first connecting portions disposed opposite each other on both sides of the inlet channel and / or the outlet channel in the width direction. That is, the fasteners used to fix the electrolysis device can avoid occupying the internal space of the water channel by being located within the inlet channel and / or the outlet channel, reducing the impact of the fasteners on the water flow rate within the inlet channel and / or the outlet channel, and improving reliability.

[0030] In some embodiments, the electrolysis assembly includes a first electrode plate, a second electrode plate, a first connector, and a second connector. The first electrode plate and the second electrode plate are stacked in a first direction. The first connector and the second connector both pass through the first electrode plate and the second electrode plate along the first direction. One end of the first connector extends out of the electrolysis channel to form a first terminal. The first connector is in conductive contact with the first electrode plate. One end of the second connector extends out of the electrolysis channel to form a second terminal. The second connector is in conductive contact with the second electrode plate.

[0031] In this embodiment, by having both the first and second connectors pass through the first and second electrode plates along a first direction, installation of the first and second electrode plates is facilitated. One end of the first connector extends out of the electrolytic flow channel and connects to the first terminal, and one end of the second connector extends out of the electrolytic flow channel and connects to the second terminal. The first electrode plate is energized through conductive contact with the first connector, and the second electrode plate is energized through conductive contact with the second connector. Compared to related technologies that require separate clamping and energizing parts, the electrolysis assembly in this embodiment, through the first and second connectors, simultaneously energizes the first and second electrode plates while simultaneously fixing and installing them. This simplifies the structure of the electrolysis assembly, making it more streamlined and easier to install.

[0032] In some embodiments, both the first electrode sheet and the second electrode sheet include a substrate and a coating disposed on the substrate. The coating is disposed on both the surface of the substrate of the first electrode sheet facing the second electrode sheet and the surface facing away from the second electrode sheet, or the coating is disposed only on the surface of the substrate of the first electrode sheet facing the second electrode sheet. Thus, the coating reduces charge transfer impedance while preventing substrate exposure, thereby improving the stability and reliability of the electrolysis assembly.

[0033] In some embodiments, the coating is provided on both the surface of the second electrode substrate facing the first electrode and the surface away from the first electrode, or the coating is provided only on the surface of the second electrode substrate facing the first electrode. Thus, the coating reduces charge transfer impedance while preventing substrate exposure, thereby improving the stability and reliability of the electrolysis assembly.

[0034] In some embodiments, both the first electrode sheet and the second electrode sheet are horizontally arranged and stacked in the vertical direction.

[0035] By stacking the electrode sheets horizontally within the electrolysis channel, compared to vertically arranged electrodes, the height of the channel can be reduced, thereby decreasing the overall height of the electrolysis device. This saves on manufacturing material costs and space occupied in the height direction of the casing. Furthermore, the horizontal arrangement of both the first and second electrode sheets helps reduce the impact of the flowing water within the electrolysis channel on them, preventing deformation or even breakage due to impact and extending their service life.

[0036] In some embodiments, the electrolysis assembly further includes a proton exchange membrane disposed between the first electrode plate and the second electrode plate.

[0037] In this embodiment, a proton exchange membrane is provided between the first electrode sheet and the second electrode sheet. Since the proton exchange membrane is non-conductive and can transfer protons, it can prevent the first electrode sheet and the second electrode sheet from short-circuiting, reduce the distance between the first electrode sheet and the second electrode sheet, thereby reducing energy consumption and improving electrolysis efficiency.

[0038] In some embodiments, at least one of the first and second electrode plates is provided with a through hole extending along the first direction, so that the electrolyte entering the electrolysis channel can diffuse through the through hole to the space between the electrode plate and the proton exchange membrane. In this embodiment, by providing a through hole extending along the first direction on at least one of the first and second electrode plates, water in the electrolysis channel can diffuse to the space between the electrode plate and the proton exchange membrane, allowing the electrolysis reaction to continue and carrying away electrolysis products, thereby improving electrolysis efficiency.

[0039] In some embodiments, the electrolysis assembly further includes a first insulating pad and a second insulating pad, wherein the first insulating pad is disposed between the first connector and the second electrode plate to electrically isolate the first connector and the second electrode plate, and the second insulating pad is disposed between the second connector and the first electrode plate to electrically isolate the second connector and the first electrode plate.

[0040] In this embodiment, by setting a first insulating gasket between the first connector and the second electrode sheet, electrical isolation between the first connector and the second electrode sheet is achieved, so that the first connector is only electrically connected to the first electrode sheet. By setting a second insulating gasket between the second connector and the first electrode sheet, the second connector is only electrically connected to the second electrode sheet. This achieves electrical connection between the first connector and the first electrode sheet and between the second connector and the second electrode sheet, ensuring the normal progress of the electrolysis reaction.

[0041] In some embodiments, the electrolysis assembly further includes a first conductive pad and a second conductive pad, the first conductive pad being disposed around the first connector and in electrical contact with the first electrode sheet, and the second conductive pad being disposed around the second connector and in electrical contact with the second electrode sheet.

[0042] In this embodiment, by setting the first conductive pad and the second conductive pad, the contact area between the first connector and the first electrode sheet and the contact area between the second connector and the second electrode sheet are increased, thereby improving the conductivity between the first connector and the first electrode sheet and the conductivity between the second connector and the second electrode sheet.

[0043] In some embodiments, the electrolysis assembly further includes a first conductive end plate, which is disposed on the side of the first electrode sheet opposite to the second electrode sheet and is electrically connected to the first electrode sheet and the first connector.

[0044] In this embodiment, a first conductive end plate is provided on the side of the first electrode sheet away from the second electrode sheet, so that the first conductive end plate can evenly distribute the current to the first electrode sheet, avoiding local overload. Moreover, the first conductive end plate can disperse stress and provide protection for the first electrode sheet.

[0045] In some embodiments, the electrolysis assembly further includes a second conductive end plate, which is disposed on the side of the second electrode sheet opposite to the first electrode sheet and is electrically connected to the second electrode sheet and the second connector.

[0046] In this embodiment, a second conductive end plate is provided on the side of the second electrode sheet away from the first electrode sheet. This allows the second conductive end plate to distribute the current evenly to the second electrode sheet, avoiding local overload. Furthermore, the second conductive end plate can disperse stress and provide protection for the second electrode sheet.

[0047] In some embodiments, both the first connector and the second connector are bolts, and the electrolysis assembly further includes a first nut and a second nut. The first nut is fitted around the outer periphery of the first connector to press the first conductive gasket onto the first conductive end plate, and the second nut is fitted around the outer periphery of the second connector to press the second insulating gasket onto the first conductive end plate.

[0048] In this embodiment, the threaded engagement between the first nut and the first connector enables a tight connection between the first conductive gasket, the first conductive end plate, the first electrode plate, the proton exchange membrane, the second electrode plate, the second conductive end plate, and the first insulating gasket. The threaded engagement between the second nut and the second connector enables a tight connection between the second insulating gasket, the first conductive end plate, the first electrode plate, the proton exchange membrane, the second electrode plate, the second conductive end plate, and the second conductive gasket. This prevents misalignment under the impact of water flow and improves the structural stability of the electrolysis assembly.

[0049] In some embodiments, both the first insulating pad and the second insulating pad include a body portion and an annular flange portion, the annular flange portion being connected to the body portion, the body portion of the first insulating pad being sandwiched between the head of the first connector and the second conductive end plate, and the annular flange portion of the first insulating pad surrounding the first connector and extending through the second conductive end plate into the second electrode sheet.

[0050] The body portion of the second insulating gasket is sandwiched between the second nut and the first conductive end plate, and the annular flange portion of the second insulating gasket surrounds the second connector and extends through the first conductive end plate into the first electrode sheet.

[0051] In this embodiment, the end plate of the first insulating gasket achieves electrical isolation between the head of the first connector and the second conductive end plate in a first direction. The annular portion of the first insulating gasket achieves radial electrical isolation between the first connector and the second conductive end plate, as well as between the first connector and the second electrode plate, thereby achieving complete electrical isolation between the first connector and the second electrode plate. Similarly, the end plate of the second insulating gasket achieves electrical isolation between the second nut and the first conductive end plate in a first direction. The annular portion of the second insulating gasket achieves radial electrical isolation between the second connector and the first conductive end plate, as well as between the second connector and the first electrode plate, thereby achieving complete electrical isolation between the second connector and the first electrode plate.

[0052] In some embodiments, the housing includes a first housing and a second housing connected to define the electrolysis channel, and the first connector and the second connector are connected to the first housing.

[0053] In this embodiment, by configuring the housing as a first housing and a second housing, it is convenient to install the electrolysis component inside the housing. By suspending the electrolysis component within the electrolysis channel, contact between the electrolysis component and the inner wall of the housing is avoided, thus blocking stray current loops and extending the overall service life of the electrolysis device. By placing one end of the first connector and one end of the second connector extending from the electrolysis channel within the receiving cavity, wiring space is provided for the connection between the first terminal and the first connector, and the connection between the second terminal and the second connector, preventing accidental contact and external short circuits, and improving the reliability of the electrolysis device.

[0054] In some embodiments, at least one of the inner walls of the first shell and the second shell is provided with a baffle, the free end of which extends toward and is spaced apart from the adjacent electrode sheet. In this embodiment, the baffle concentrates the water in the electrolysis channel toward the connecting hole, which can increase the water flow rate, thereby increasing the diffusion rate of water in the electrolysis channel to the electrode sheet and the proton exchange membrane, and further improving the electrolysis efficiency.

[0055] In some embodiments, the electrolysis device further includes a third nut and a fourth nut, the third nut being fitted at one end of the first connector extending out of the electrolysis channel and the fourth nut being fitted at one end of the second connector extending out of the electrolysis channel, so as to suspend the electrolysis assembly within the electrolysis channel by means of the first connector and the second connector; the first shell has an outer peripheral flange defining a receiving cavity on the side opposite to the second shell, and one end of the first connector extending out of the electrolysis channel, one end of the second connector extending out of the electrolysis channel, the third nut and the fourth nut are located within the receiving cavity.

[0056] In this embodiment, by configuring the housing as a first housing and a second housing, it is convenient to install the electrolysis assembly inside the housing. The electrolysis assembly is suspended within the electrolysis channel by the engagement of one end of the first connector extending from the electrolysis channel with a third nut, and the engagement of one end of the second connector extending from the electrolysis channel with a fourth nut. This prevents the electrolysis assembly from contacting the inner wall of the housing, blocking stray current loops and extending the overall service life of the electrolysis device. By placing the ends of the first and second connectors extending from the electrolysis channel within the receiving cavity, wiring space is provided for the connection between the first terminal and the first connector, and the connection between the second terminal and the second connector, preventing accidental contact and external short circuits, and improving the reliability of the electrolysis device. Attached Figure Description

[0057] Figure 1 This is a schematic diagram of a garment processing device according to an embodiment of the present disclosure.

[0058] Figure 2 This is a schematic diagram of the electrolysis apparatus of this disclosure installed on the material box.

[0059] Figure 3 This is an exploded view of the material box according to an embodiment of this disclosure.

[0060] Figure 4 This is a schematic diagram of the upper box body according to an embodiment of the present disclosure.

[0061] Figure 5 This is a schematic diagram of the top cover structure according to an embodiment of the present disclosure.

[0062] Figure 6 This is a top view of the garment processing apparatus according to an embodiment of the present disclosure.

[0063] Figure 7 This is a cross-sectional view of a garment processing apparatus according to an embodiment of the present disclosure.

[0064] Figure 8 This is a front view of an electrolysis apparatus according to an embodiment of this disclosure.

[0065] Figure 9 This is a cross-sectional view of an electrolysis apparatus according to an embodiment of this disclosure.

[0066] Figure 10 This is a top view of an electrolysis apparatus according to an embodiment of the present disclosure.

[0067] Figure 11 This is a cross-sectional view of an electrolysis component according to an embodiment of this disclosure.

[0068] Figure 12 This is an exploded view of the electrolysis component according to an embodiment of the present disclosure.

[0069] Figure label:

[0070] 1. Processing cylinder; 101. Processing chamber; 102. First processing cylinder; 103. Second processing cylinder; 104. Third processing cylinder; 2. Material box; 201. Second water inlet; 202. Second water outlet; 203. Liquid inlet channel; 204. Liquid outlet channel; 205. Detergent chamber; 206. Turbulence column; 207. Top cover; 2071. First rib; 208. Upper box body; 2081. Second rib; 2082. Detergent inlet; 209. Lower box body; 210. Water baffle; 211. Bending section; 212. First water inlet; 213. First water outlet; 3. Electrolysis device; 31. Shell; 311. Third water inlet; 312. Third water outlet; 313. Electrolysis channel; 314. First shell; 3141. Outer peripheral flange; 3142. Receiving cavity; 315. Second shell; 316. Baffle; 317. First connecting part; 3171. First connecting hole; 32. Electrolysis assembly; 321. First electrode plate; 322. Second electrode plate; 323. First connector; 324. Second connector; 325. Proton exchange membrane; 326. Communicating hole; 3271. First insulating gasket; 3272. Second insulating gasket; 3273. First conductive gasket; 3274. Second conductive gasket; 3275. Body part; 3276. Annular flange part; 3281. First conductive end plate; 32811. First communicating groove; 3282. Second conductive end plate; 32821. Second communicating groove; 3291. First nut; 3292. Second nut; 331. Third nut; 332. Fourth nut; 34. Sealing ring; 4. Water inlet valve; 5. Reversing valve; 6. First water pipe; 7. Second water pipe; 8. Fastener. Detailed Implementation

[0071] Embodiments of this disclosure are described in detail below, with examples of these embodiments illustrated in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this disclosure, and should not be construed as limiting it.

[0072] like Figures 1 to 12 As shown, the garment processing equipment of this embodiment includes a housing, a processing cylinder 1, a material box 2, and an electrolysis device 3. The processing cylinder 1 is disposed inside the housing and has a processing chamber 101; the material box 2 is disposed in the housing, and the electrolysis device 3 is disposed in the material box 2. The electrolysis device 3 has an electrolysis channel 313, and the material box 2 has an inlet channel 203 and an outlet channel 204. The material box 2 is also provided with a first water inlet 212 and a first water outlet 213 communicating with the electrolysis channel 313. The first water inlet 212 is connected to a water inlet valve 4 through the inlet channel 203, and the first water outlet 213 is connected to the processing chamber 101 through the outlet channel 204.

[0073] When the clothing treatment device of this embodiment is in use, the water in the liquid inlet channel 203 enters the electrolysis channel 313 of the electrolysis device 3 through the first water inlet 212 on the material box 2, and electrolysis occurs in the electrolysis channel 313. Electrolysis produces an electrolyte containing strong oxidizing active products such as hydroxyl radicals and / or ozone. The electrolyte enters the liquid outlet channel 204 through the first water outlet 213 and then enters the treatment chamber 101 of the treatment cylinder 1 for sterilization and disinfection of clothing, increasing the washing ratio, and preventing color bleeding.

[0074] Since the electrolysis device 3 is no longer directly installed inside the treatment cylinder 1, but is located in the material box 2, electrolysis can begin before water enters the treatment chamber 101, achieving flow-through electrolysis and improving electrolysis efficiency. Simultaneously, it avoids contact between the electrolysis device 3 and detergent, and prevents lint from clothing from adhering to the electrolysis device 3, thus avoiding any impact on its electrolysis effect and further improving efficiency. Moreover, the electrolysis device 3's location in the material box 2 outside the treatment cylinder 1 allows for efficient use of the internal space, improving layout rationality and structural compactness.

[0075] In some embodiments, the material box 2 is provided with a baffle plate 210, which separates the liquid inlet channel 203 and the liquid outlet channel 204.

[0076] like Figure 4 As shown, it should be noted that during the manufacturing process, the flow channels on the material box 2 are integrally injection molded. During manufacturing, simply replacing the insert corresponding to the baffle 210 on the injection mold allows for the removal or addition of the baffle 210 between the inlet flow channel 203 and the outlet flow channel 204, enabling the connection or separation of the inlet and outlet flow channels 203 and 204. This allows the material box 2 to be suitable for different application scenarios. For example, for some garment processing equipment that does not have the electrolysis device 3, the insert corresponding to the baffle 210 can be directly removed from the mold, opening up the inlet and outlet flow channels 203 and 204. In other words, the manufacturing mold for the material box 2 only requires replacing the insert corresponding to the baffle 210. This simple component allows one mold to manufacture two different structures of material box 2 products, increasing the mold's versatility, reducing mold opening costs, and lowering manufacturing costs.

[0077] In some embodiments, the connection between the liquid outlet channel 204 and the liquid inlet channel 203 includes a bend 211, a baffle plate 210 is disposed at the bend 211, and the electrolysis device 3 is disposed above the baffle plate 210. Figure 4 As shown, the electrolysis device 3 of this embodiment can be installed not only in a straight water channel, but also in a bent and extended water channel, so that the electrolysis device 3 of this embodiment can adapt to different forms of water channels and has strong compatibility.

[0078] In some embodiments, the feed box 2 has a detergent chamber 205, which is connected to the liquid outlet channel 204 for delivering detergent into the liquid outlet channel 204 so that the detergent mixes with the electrolyte flowing out from the electrolysis channel 313 in the liquid outlet channel 204.

[0079] like Figure 7 and Figure 9 As shown, the detergent container 2 has a dedicated detergent chamber 205 for storing detergent. When the garment processing equipment is running, the detergent in the detergent chamber 205 is conveyed to the liquid outlet channel 204. In the liquid outlet channel 204, the detergent mixes with the electrolyte flowing from the electrolysis device 3, ensuring thorough mixing of the detergent with active substances such as hydroxyl radicals and / or ozone generated during electrolysis, before being conveyed to the processing drum 1, thus achieving optimal cleaning results during garment processing. The mixing of detergent and electrolyte produces a synergistic effect, enhancing the cleaning effect and making it easier to remove stains and bacteria from clothing.

[0080] In some embodiments, a plurality of spaced-apart turbulence columns 206 are provided in the liquid outlet channel 204, the turbulence columns 206 being used to agitate the detergent and electrolyte flowing in the liquid outlet channel 204.

[0081] like Figures 3 to 5 As shown, the turbulence columns 206 are spaced apart within the liquid outlet channel 204. When the detergent and electrolyte flow through these turbulence columns 206, the turbulence columns 206 break the laminar flow state of the fluid and generate turbulence. Turbulence helps the detergent and electrolyte mix more thoroughly, increases the contact area between them, and improves the mixing efficiency.

[0082] In some embodiments, the material box 2 includes a top cover 207 and an upper box body 208, the top cover 207 and the upper box body 208 defining an inlet channel 203 and an outlet channel 204. For example... Figure 3 As shown, the modular design of the material box 2 allows each part to be manufactured, installed, and maintained independently, improving the reliability and ease of use of the equipment. By dividing the material box 2 into a top cover 207 and an upper box body 208, space can be utilized more effectively while maintaining the clarity and orderliness of the internal structure of the material box 2.

[0083] In some embodiments, the detergent box 2 further includes a lower box body 209, and the upper box body 208 and the lower box body 209 define a detergent cavity 205. For example... Figure 3 As shown, the modular design of the material box 2 allows each part to be manufactured, installed, and maintained independently, further improving the reliability and ease of use of the equipment. By dividing the material box 2 into a top cover 207, an upper box body 208, and a lower box body 209, space can be utilized more effectively while maintaining the clarity and orderliness of the internal structure of the material box 2. Specifically, the top cover 207 and the upper box body 208 can be connected by ultrasonic welding.

[0084] In some embodiments, the electrolysis device 3 is disposed on the top cover 207, and the first water inlet 211 and the first water outlet 212 are disposed on the top cover 207.

[0085] like Figure 2 and Figure 3 As shown, since the side of the material box 2 has an ultrasonic weld, placing the electrolysis device 3 on the top of the material box 2, compared to placing it on the side, avoids the electrolysis device 3 affecting the ultrasonic weld, thus improving the welding reliability of the ultrasonic weld on the side of the material box 2. Simultaneously, it reduces the space occupied by the electrolysis device 3 on the side of the material box 2, preventing interference with display components, electrical control components, and wiring terminals installed on the side of the material box 2.

[0086] Furthermore, since the electrolysis device 3 is located at the top of the material box 2, the space above the material box 2 inside the housing can be fully utilized, thus avoiding an increase in the overall width of the material box 2 due to the electrolysis device 3 being installed on the side of the material box 2. Therefore, the width of the material box 2 can be set relatively small, and when the material box 2 is pulled out of the housing, positional interference between the material box 2 and the display on one side of the material box 2 on the housing can be avoided, improving the reliability of use.

[0087] The first water inlet 211 and the first water outlet 212 are also located on the top cover 207. Since the top of the material box 2 has a large installation space, it is convenient to install water pipes that are connected to the second water inlet 201 and the second water outlet 202 on the top of the material box 2, which reduces the difficulty of installing the water pipes.

[0088] In some embodiments, the surface of the top cover 207 facing the upper box body 208 is provided with a first rib 2071, and the surface of the upper box body 208 facing the top cover 207 is provided with a second rib 2081. The first rib 2071 and the second rib 2081 are opposite to define the inlet channel 203 and the outlet channel 204.

[0089] like Figure 4 and Figure 5 As shown, the surface of the top cover 207 facing the upper box body 208 is provided with a first rib 2071, while the surface of the upper box body 208 facing the top cover 207 is provided with a second rib 2081. These ribs are arranged opposite each other, jointly defining the space of the liquid inlet channel 203 and the liquid outlet channel 204. The first rib 2071 is integrally formed with the top cover 207, and the second rib 2081 is integrally formed with the upper box body 208. During assembly, simply placing the top cover 207 onto the upper box body 208 forms the liquid inlet channel 203 and the liquid outlet channel 204, simplifying the formation of the liquid inlet channel 203 and the liquid outlet channel 204 on the material box 2. This also facilitates the manufacturing of the top cover 207 and the upper box body 208, making assembly easier. Furthermore, the rib design enhances the structural strength of the material box 2 and improves the durability of the equipment.

[0090] In some embodiments, the upper box 208 is provided with a detergent inlet 2082 that communicates with the liquid outlet channel 204, and the material box 2 is provided with a delivery pump. The inlet of the delivery pump is communicated with the detergent chamber 205, and the outlet of the delivery pump is communicated with the detergent inlet 2082.

[0091] like Figure 3 and Figure 4 As shown, specifically, the upper housing 208 is provided with a detergent inlet 2082 that communicates with the liquid outlet channel 204, allowing detergent to be transported from the detergent chamber 205 to the liquid outlet channel 204 via a delivery pump, where it mixes with the electrolyte discharged into the liquid outlet channel 204 by the electrolysis device 3. The delivery pump can precisely control the amount and time of detergent delivery, ensuring an accurate mixing ratio of detergent and electrolyte. Precise control of the detergent delivery amount reduces waste, lowers costs, and minimizes environmental impact.

[0092] In some embodiments, the material box 2 is provided with a second water inlet 201 and a second water outlet 202. The liquid inlet channel 203 is connected to the water inlet valve 4 through the second water inlet 201, and the liquid outlet channel 204 is connected to the processing chamber 101 through the second water outlet 202. By providing the second water inlet 201 and the second water outlet 202 on the material box 2 to be connected to the water inlet valve 4 and the processing chamber 101 respectively, the liquid inlet channel 203 and the liquid outlet channel 204 can easily and conveniently allow liquid to enter and exit.

[0093] In some embodiments, the garment processing device further includes a reversing valve 5, which is disposed in the housing. There are multiple processing cylinders 1, and the processing chambers 101 of the multiple processing cylinders 1 are connected to the liquid outlet channel 204 through the reversing valve 5. The reversing valve 5 is used to switch the communication between the processing chambers 101 of the multiple processing cylinders 1 and the liquid outlet channel 204.

[0094] like Figure 1 As shown, the garment processing equipment includes multiple processing cylinders 1, each with a processing chamber 101. An inlet valve 4 and a reversing valve 5 are both located on the casing and are used to control the inlet and outlet paths of water. An inlet flow channel 203 is connected to the inlet valve 4, which controls the inflow of water to switch the water supply between different processing cylinders 1. The processing chambers 101 of the multiple processing cylinders 1 are connected to an outlet flow channel 204 via the reversing valve 5. The reversing valve 5 can switch the connection between the processing chambers 101 of different processing cylinders 1 and the outlet flow channel 204 as needed to control drainage.

[0095] The multi-drum configuration allows the equipment to handle multiple washing tasks simultaneously, improving its efficiency. The inlet valve 4 and reversing valve 5 provide greater flexibility in the washing program, allowing selection of different drums 1 based on varying washing needs. Controlling water inlet and outlet optimizes water usage and reduces waste. Each drum 1 can operate independently, with washing parameters adjusted according to different garment types and washing requirements, thus enhancing cleaning performance. The inlet valve 4 and reversing valve 5 improve the overall system reliability by preventing water from mistakenly entering or leaving the drums 1. Although the equipment has multiple drums 1, its rational layout and design save space, making it more suitable for residential or commercial environments.

[0096] In some embodiments, the inlet valve 4 is connected to the second inlet 201 via the first water pipe 6, and the reversing valve 5 is connected to the second outlet 202 via the second water pipe 7.

[0097] like Figure 1 As shown, the first water pipe 6 is connected to the inlet valve 4, allowing the inlet valve 4 to control the inflow of water, thereby controlling the inlet flow rate and pressure. The second water pipe 7 is connected to the reversing valve 5, allowing the reversing valve 5 to switch between different processing chambers 101 of the processing cylinder 1 and the second outlet 202 as needed, thereby controlling the drainage. By setting the first water pipe 6 and the second water pipe 7 with a certain length, space utilization can be optimized, allowing the inlet valve 4 and the reversing valve 5 to be installed in different positions on the casing according to design requirements, making the equipment more compact and efficient.

[0098] In some embodiments, the plurality of processing cylinders 1 include a first processing cylinder 102, a second processing cylinder 103 and a third processing cylinder 104. The second processing cylinder 103 and the third processing cylinder 104 are disposed above the first processing cylinder 102 and spaced apart in the left-right direction. The second processing cylinder 103 and the third processing cylinder 104 are symmetrical about a vertical plane passing through the axis of the first processing cylinder 102.

[0099] like Figure 1 As shown, the symmetrical design ensures a uniform weight distribution in the left-right direction for the second and third processing drums 103 and 104, thereby improving the overall balance of the device and reducing vibration and noise during operation. Furthermore, the symmetrical design reduces production costs because it decreases manufacturing complexity and allows for the production of both the second and third processing drums 103 and 104 using the same components or molds. Due to the structural symmetry, maintenance and component replacement are more efficient, allowing maintenance personnel to quickly locate and resolve problems. The symmetrical layout also contributes to improved structural strength of the entire washing machine, as symmetrical structures are generally more stable.

[0100] In some embodiments, the electrolysis device 3 includes a housing 31 and an electrolysis assembly 32. The housing 31 has an electrolysis channel 313. At least a portion of the electrolysis assembly 32 is disposed within the electrolysis channel 313 and is used to electrolyze the electrolyte within the electrolysis channel 313. Therefore, the electrolysis assembly 32 can perform flow-through electrolysis on the water flowing through the electrolysis channel 313, thereby improving the electrolysis efficiency.

[0101] In some embodiments, the electrolysis channel 313 has a third inlet 311 and a third outlet 312 formed at both ends, and the third inlet 311 and the electrolysis assembly 32 are at least partially misaligned in the axial direction of the third inlet 311.

[0102] Specifically, such as Figures 7-12 As shown, both the third inlet 311 and the third outlet 312 are located at the lower end of the housing 31. The third inlet 311 is located on one side of the electrolysis component 32, and the third outlet 312 is located on the other side of the electrolysis component 32, allowing the electrolysis component 32 to fully contact the water and improve electrolysis efficiency. The third inlet 311 is used to transport water to the electrolysis channel 313, where the electrolysis component 32 electrolyzes the water. The electrolyzed water is then output through the third outlet 312.

[0103] Since the third inlet 311 and the electrolysis component 32 are at least partially misaligned in the axial direction of the third inlet 311, when the third inlet 311 enters the electrolysis channel 313, the impact of the water flowing in the electrolysis channel 313 on the electrolysis component 32 can be reduced or even avoided. This prevents the electrolysis component 32 from being damaged or its surface material from falling off after being impacted, thus avoiding contamination of the electrolyte. This not only helps to improve the service life of the electrolysis component 32, but also helps to improve the electrolysis reliability of the electrolysis device 3.

[0104] In some embodiments, the third outlet 312 and the electrolysis assembly 32 are at least partially misaligned in the axial direction of the third outlet 312.

[0105] like Figure 9 As shown, since the third outlet 312 and the electrolysis component 32 are at least partially misaligned in the axial direction of the third outlet 312, when the electrolyte in the electrolysis channel 313 is discharged through the third inlet 311, the impact of the electrolyte flowing in the electrolysis channel 313 on the electrolysis component 32 can be reduced or even avoided. This prevents the electrolysis component 32 from being damaged or its surface material from falling off after being impacted, thus avoiding contamination of the electrolyte. This not only helps to improve the service life of the electrolysis component 32, but also helps to improve the electrolysis reliability of the electrolysis device 3.

[0106] In some embodiments, a first connecting portion 317 is provided on the outer side wall of the housing 31, and the first connecting portion 317 is provided with a first connecting hole 3171. A second connecting hole is provided on the top of the material box 2. The first connecting portion 317 and the material box 2 are connected by fasteners 8 passing through the first connecting hole 3171 and the second connecting hole. The connection between the first connecting portion 317 and the material box 2 by the fasteners 8 passing through the first connecting hole 3171 and the second connecting hole makes the connection between the electrolysis device 3 and the material box 2 simple and convenient.

[0107] In some embodiments, there are multiple first connecting portions 317, with at least two first connecting portions 317 disposed opposite each other on both sides of the inlet channel 203 and / or outlet channel 204 in the width direction. Specifically, as Figure 4 As shown, the fastener 8 is a screw, and there are four screws in total. The screws are arranged in pairs and opposite each other on both sides of the width direction of the inlet channel 203 and / or the outlet channel 204. In other words, the fastener 8 used to fix the electrolysis device 3 can avoid occupying the internal space of the channel by being located in the inlet channel 203 and / or the outlet channel 204, reduce the impact of the fastener 8 on the water flow rate in the channel, and improve the reliability of use.

[0108] In some embodiments, the electrolysis assembly 32 includes a first electrode plate 321, a second electrode plate 322, a first connector 323, and a second connector 324. The first electrode plate 321 and the second electrode plate 322 are stacked in a first direction. The first connector 323 and the second connector 324 both pass through the first electrode plate 321 and the second electrode plate 322 along the first direction. One end of the first connector 323 extends out of the electrolysis channel 313 to form a first terminal, and the first connector 323 is in conductive contact with the first electrode plate 321. One end of the second connector 324 extends out of the electrolysis channel 313 to form a second terminal, and the second connector 324 is in conductive contact with the second electrode plate 322.

[0109] In this embodiment, the first connector 323 and the second connector 324 are both inserted through the first electrode plate 321 and the second electrode plate 322 along the first direction, which facilitates the installation of the first electrode plate 321 and the second electrode plate 322. Moreover, one end of the first connector 323 extends out of the electrolysis channel 313 and connects to the first terminal, and one end of the second connector 324 extends out of the electrolysis channel 313 and connects to the second terminal. The first electrode plate 321 is energized through the conductive contact between the first connector 323 and the first electrode plate 321, and the second electrode plate 322 is energized through the conductive contact between the second connector 324 and the second electrode plate 322. Compared to the structure in related technologies that requires separate clamping and energizing parts, the electrolysis assembly 32 in this embodiment, through the provision of the first connector 323 and the second connector 324, achieves the simultaneous installation and fixation of the first electrode plate 321 and the second electrode plate 322, while also energizing the first electrode plate 321 and the second electrode plate 322 respectively. This simplifies the structure of the electrolysis assembly 32, making it simpler and easier to install.

[0110] Specifically, such as Figures 7 to 12 As shown, the first direction is consistent with the up and down direction. The first electrode plate 321 is located above the second electrode plate 322. The first connector 323 passes through the second electrode plate 322 and the first electrode plate 321 from bottom to top and then extends out of the electrolysis channel 313. The second connector 324 passes through the second electrode plate 322 and the first electrode plate 321 from bottom to top and then extends out of the electrolysis channel 313.

[0111] By extending the upper end of the first connector 323 out of the electrolysis channel 313 and connecting it to the first terminal, and extending the upper end of the second connector 324 out of the electrolysis channel 313 and connecting it to the second terminal, the upper end of the first connector 323 and the first terminal, as well as the upper end of the second connector 324 and the second terminal, are prevented from contacting the water in the electrolysis channel 313, thereby preventing short circuits caused by the impact of water flow and improving electrical safety.

[0112] Optionally, the axes of the first connector 323 and the second connector 324 are parallel to the axis of the fastener 8.

[0113] In some embodiments, the first electrode plate 321 and the second electrode plate 322 are both horizontally arranged and stacked in the vertical direction. Stacking the electrode plates horizontally within the electrolysis channel 313 reduces the height of the channel compared to vertically arranged electrodes, thereby reducing the overall height of the electrolysis device 3 and saving on manufacturing material costs and space occupied in the height direction of the casing. Furthermore, the horizontal arrangement of the first electrode plate 321 and the second electrode plate 322 helps reduce the impact of the water flowing within the electrolysis channel 313 on the first electrode plate 321 and the second electrode plate 322, preventing deformation or even damage due to impact and thus extending their service life.

[0114] In some embodiments, the electrolysis assembly 32 further includes a proton exchange membrane 325 disposed between the first electrode plate 321 and the second electrode plate 322.

[0115] In this embodiment, a proton membrane 325 is provided between the first electrode plate 321 and the second electrode plate 322. Since the proton membrane 325 is non-conductive and can transfer protons, it can prevent the first electrode plate 321 and the second electrode plate 322 from short-circuiting, reduce the distance between the first electrode plate 321 and the second electrode plate 322, thereby reducing energy consumption and improving electrolysis efficiency.

[0116] Specifically, such as Figure 11 and Figure 12 As shown, both the first connector 323 and the second connector 324 are inserted through the proton exchange membrane 325. The first electrode plate 321 is located above the proton exchange membrane 325, and the second electrode plate 322 is located below the proton exchange membrane 325. The proton exchange membrane 325 is used to separate the first electrode plate 321 and the second electrode plate 322.

[0117] When the electrolysis component 32 electrolyzes water, water molecules ionize to generate cations and anions. At least one of the cations and anions can migrate through the proton exchange membrane 325. For example, hydrogen ions can migrate through the proton exchange membrane 325, resulting in high-concentration cation regions and high-concentration anion regions forming on both sides of the proton exchange membrane 325 in the first direction, respectively. When the first electrode plate 321 is set as the anode and the second electrode plate 322 is set as the cathode, highly oxidizing hydroxyl radicals and / or ozone and other electrolysis products are generated on the surface of the anode, and hydrogen gas is generated on the surface of the cathode. The highly oxidizing hydroxyl radicals and / or ozone and other electrolysis products, as well as hydrogen gas, are directed to the processing chamber 101 by the water flow. Ozone and hydroxyl radicals are used to sterilize and disinfect clothing and decolorize dyes, while hydrogen gas enters the clothing fibers and explodes, adsorbs, and floats to the surface. This achieves the functions of sterilization, disinfection, and colorfastness prevention of clothing while improving the washing ratio of the clothing treatment equipment.

[0118] In some embodiments, at least one of the first electrode sheet 321 and the second electrode sheet 322 is provided with a through hole 326 extending in a first direction, so that the electrolyte entering the electrolysis channel 313 through the third water inlet 311 can diffuse through the through hole 326 to the space between the electrode sheet and the proton exchange membrane 325.

[0119] In this embodiment, at least one of the first electrode plates 321 and the second electrode plate 322 is provided with a through hole 326 extending in the first direction, so that water in the electrolysis channel 313 can diffuse between the electrode plate and the proton exchange membrane 325, so that the electrolysis reaction can continue and carry away the electrolysis products, thereby improving the electrolysis efficiency.

[0120] Specifically, such as Figure 11 and Figure 12 As shown, at least one of the first electrode sheet 321 and the second electrode sheet 322 is provided with a through hole 326 extending along the first direction. This can be understood as: the first electrode sheet 321 is provided with a through hole 326, or the second electrode sheet 322 is provided with a through hole 326, or both the first electrode sheet 321 and the second electrode sheet 322 are provided with a through hole 326.

[0121] Optionally, there may be one or more connecting holes 326, for example, there may be three connecting holes 326.

[0122] In some embodiments, the electrolysis assembly 32 further includes a first insulating pad 3271 and a second insulating pad 3272. The first insulating pad 3271 is disposed between the first connector 323 and the second electrode plate 322 to electrically isolate the first connector 323 and the second electrode plate 322. The second insulating pad 3272 is disposed between the second connector 324 and the first electrode plate 321 to electrically isolate the second connector 324 and the first electrode plate 321.

[0123] In this embodiment, by providing a first insulating gasket 3271 between the first connector 323 and the second electrode plate 322, electrical isolation between the first connector 323 and the second electrode plate 322 is achieved, so that the first connector 323 is only electrically connected to the first electrode plate 321. By using a second insulating gasket 3272 between the second connector 324 and the first electrode plate 321, the second connector 324 is only electrically connected to the second electrode plate 322. This achieves electrical connection between the first connector 323 and the first electrode plate 321, as well as between the second connector 324 and the second electrode plate 322, ensuring the normal progress of the electrolysis reaction.

[0124] Optionally, the first insulating pad 3271 is located below the second insulating pad 3272.

[0125] In some embodiments, such as Figures 8 to 12As shown, the electrolysis assembly 32 also includes a first conductive pad 3273 and a second conductive pad 3274. The first conductive pad 3273 is arranged around the first connector 323 and is in electrical contact with the first electrode plate 321. The second conductive pad 3274 is arranged around the second connector 324 and is in electrical contact with the second electrode plate 322. By providing the first conductive pad 3273 and the second conductive pad 3274, the contact area between the first connector 323 and the first electrode plate 321 and the contact area between the second connector 324 and the second electrode plate 322 are increased, thereby improving the conductivity efficiency between the first connector 323 and the first electrode plate 321 and between the second connector 324 and the second electrode plate 322.

[0126] Optionally, the first conductive pad 3273 is located above the second conductive pad 3274.

[0127] In some embodiments, the electrolysis assembly 32 further includes a first conductive end plate 3281, which is disposed on the side of the first electrode plate 321 opposite to the second electrode plate 322 and is electrically connected to the first electrode plate 321 and the first connector 323.

[0128] In this embodiment, a first conductive end plate 3281 is provided on the side of the first electrode plate 321 away from the second electrode plate 322, so that the first conductive end plate 3281 can evenly distribute the current to the first electrode plate 321, avoid local overload, and the first conductive end plate 3281 can disperse stress and protect the first electrode plate 321.

[0129] Optionally, such as Figure 11 and Figure 12 As shown, the first conductive end plate 3281 is located above and attached to the first electrode plate 321. A low-resistance busbar is formed between the first conductive end plate 3281 and the first electrode plate 321, which helps to reduce resistance. For example, the first conductive end plate 3281 is a titanium plate. The high conductivity of titanium plate can improve the conductivity efficiency.

[0130] Optionally, the first conductive end plate 3281 is provided with a first connecting groove 32811 corresponding to the connecting hole 326, to ensure that the water in the electrolysis channel 313 can diffuse between the first electrode plate 321 and the proton membrane 325.

[0131] In some embodiments, the electrolysis assembly 32 further includes a second conductive end plate 3282, which is disposed on the side of the second electrode sheet 322 away from the first electrode sheet 321 and is electrically connected to the second electrode sheet 322 and the second connector 324.

[0132] In this embodiment, by providing a second conductive end plate 3282 on the side of the second electrode plate 322 away from the first electrode plate 321, the second conductive end plate 3282 can evenly distribute the current to the second electrode plate 322, avoiding local overload. Moreover, the second conductive end plate 3282 can disperse stress and provide protection for the second electrode plate 322.

[0133] Optionally, such as Figure 9 and Figure 12 As shown, the second conductive end plate 3282 is located below and attached to the second electrode plate 322. A low-resistance busbar is formed between the second conductive end plate 3282 and the second electrode plate 322 to reduce resistance. For example, the second conductive end plate 3282 is a titanium plate. The high conductivity of titanium plate can improve conductivity efficiency.

[0134] Optionally, the second conductive end plate 3282 is provided with a second connecting groove 32821 corresponding to the connecting hole 326, to ensure that the water in the electrolysis channel 313 can diffuse between the second electrode plate 322 and the proton membrane 325.

[0135] In some embodiments, the first connector 323 and the second connector 324 are both bolts. The electrolysis assembly 32 also includes a first nut 3291 and a second nut 3292. The first nut 3291 is fitted around the outer periphery of the first connector 323 to press the first conductive pad 3273 onto the first conductive end plate 3281. The second nut 3292 is fitted around the outer periphery of the second connector 324 to press the second insulating pad 3272 onto the first conductive end plate 3281.

[0136] In this embodiment, the threaded engagement between the first nut 3291 and the first connector 323 achieves a tight connection between the first conductive pad 3273, the first conductive end plate 3281, the first electrode plate 321, the proton exchange membrane 325, the second electrode plate 322, the second conductive end plate 3282, and the first insulating pad 3271. The threaded engagement between the second nut 3292 and the second connector 324 achieves a tight connection between the second insulating pad 3272, the first conductive end plate 3281, the first electrode plate 321, the proton exchange membrane 325, the second electrode plate 322, the second conductive end plate 3282, and the second conductive pad 3274, preventing misalignment under the impact of water flow and improving the structural stability of the electrolysis assembly 32.

[0137] In some embodiments, both the first insulating pad 3271 and the second insulating pad 3272 include a body portion 3275 and an annular flange portion 3276. The annular flange portion 3276 is connected to the body portion 3275. The body portion 3275 of the first insulating pad 3271 is sandwiched between the head of the first connector 323 and the second conductive end plate 3282. The annular flange portion 3276 of the first insulating pad 3271 surrounds the first connector 323, passes through the second conductive end plate 3282, and extends into the second electrode sheet 322.

[0138] The body portion 3275 of the second insulating gasket 3272 is sandwiched between the second nut 3292 and the first conductive end plate 3281. The annular flange portion 3276 of the second insulating gasket 3272 surrounds the second connector 324 and extends through the first conductive end plate 3281 into the first electrode plate 321.

[0139] In this embodiment, the body portion 3275 of the first insulating pad 3271 abuts between the head of the first connector 323 and the second conductive end plate 3282 to electrically isolate the head of the first connector 323 from the second conductive end plate 3282 in a first direction. The annular flange portion 3276 of the first insulating pad 3271 surrounds the first connector 323 and extends through the second conductive end plate 3282 into the second electrode plate 322 to electrically isolate the first connector 323 from the second conductive end plate 3282 and from the second electrode plate 322 in the radial direction of the first connector 323, thereby achieving complete electrical isolation between the first connector 323 and the second electrode plate 322. By abutting the body portion 3275 of the second insulating gasket 3272 between the second nut 3292 and the first conductive end plate 3281, the second nut 3292 and the first conductive end plate 3281 are electrically isolated in a first direction. By surrounding the second connector 324 and passing through the first conductive end plate 3281 into the first electrode plate 321, the second connector 324 and the first conductive end plate 3281 are electrically isolated in the radial direction of the second connector 324, as well as the second connector 324 and the first electrode plate 321, thus achieving complete electrical isolation between the second connector 324 and the first electrode plate 321.

[0140] Specifically, the vertical dimension of the body portion 3275 is larger than that of the conductive pad in the vertical direction to ensure the insulating effect of the insulating pad. The annular flange portion 3276 of the first insulating pad 3271 extends from bottom to top through the second conductive end plate 3282 and into the second electrode plate 322. The annular flange portion 3276 of the second insulating pad 3272 extends from top to bottom through the first conductive end plate 3281 and into the first electrode plate 321.

[0141] In some embodiments, the first connector 323 is sequentially disposed on the first insulating pad 3271, the second conductive end plate 3282, the second electrode plate 322, the proton membrane 325, the first electrode plate 321, the first conductive end plate 3281, the first conductive pad 3273, and the first nut 3291.

[0142] The second connector 324 is sequentially inserted through the second conductive pad 3274, the second conductive end plate 3282, the second electrode plate 322, the proton membrane 325, the first electrode plate 321, the first conductive end plate 3281, the second insulating pad 3272, and the second nut 3292.

[0143] In this embodiment, the first connector 323 and the first nut 3291 enable the first insulating gasket 3271, the second conductive end plate 3282, the second electrode plate 322, the proton exchange membrane 325, the first electrode plate 321, the first conductive end plate 3281, and the first conductive gasket 3273 to form an integral structure. The second connector 324 and the second nut 3292 enable the second conductive gasket 3274, the second conductive end plate 3282, the second electrode plate 322, the proton exchange membrane 325, the first electrode plate 321, the first conductive end plate 3281, and the second insulating gasket 3272 to form an integral structure, which helps to improve the structural strength of the electrolysis assembly 32.

[0144] Specifically, such as Figures 9 to 12 As shown, the first connector 323 is sequentially inserted from bottom to top through the first insulating gasket 3271, the second conductive end plate 3282, the second electrode plate 322, the proton exchange membrane 325, the first electrode plate 321, the first conductive end plate 3281, the first conductive gasket 3273, and the first nut 3291, with the head of the first connector 323 abutting against the first insulating gasket 3271. The second connector 324 is sequentially inserted from bottom to top through the second conductive gasket 3274, the second conductive end plate 3282, the second electrode plate 322, the proton exchange membrane 325, the first electrode plate 321, the first conductive end plate 3281, the second insulating gasket 3272, and the second nut 3292, with the head of the second connector 324 abutting against the second conductive gasket 3274.

[0145] In some embodiments, the housing 31 includes a first housing 314 and a second housing 315, which are connected to define an electrolysis channel 313. A first connector 323 and a second connector 32) are connected to the first housing 314.

[0146] The electrolysis device 3 also includes a third nut 331 and a fourth nut 332. The third nut 331 is fitted into one end of the first connector 323 extending out of the electrolysis channel 313, and the fourth nut 332 is fitted into one end of the second connector 324 extending out of the electrolysis channel 313, so that the electrolysis assembly 32 is suspended in the electrolysis channel 313 by the first connector 323 and the second connector 324.

[0147] The first shell 314 has an outer peripheral flange 3141 defining the receiving cavity 3142 on the side opposite to the second shell 315. The first connector 323 extends out of one end of the electrolysis channel 313, the second connector 324 extends out of one end of the electrolysis channel 313, and the third nut 331 and the fourth nut 332 are located inside the receiving cavity 3142.

[0148] In this embodiment, by configuring the housing 31 as a first housing 314 and a second housing 315, it is convenient to install the electrolysis assembly 32 inside the housing 31. The electrolysis assembly 32 is suspended within the electrolysis channel 313 by one end of the first connector 323 extending out of the electrolysis channel 313 and engaging with the third nut 331, and by one end of the second connector 324 extending out of the electrolysis channel 313 and engaging with the fourth nut 332. This prevents the electrolysis assembly 32 from contacting the inner wall of the housing 31, blocking stray current loops and extending the overall service life of the electrolysis device 3. By placing one end of the first connector 323 extending out of the electrolysis channel 313 and one end of the second connector 324 extending out of the electrolysis channel 313 within the receiving cavity 3142, wiring space is provided for the connection between the first terminal and the first connector 323, and the connection between the second terminal and the second connector 324, preventing accidental contact and external short circuits, and improving the reliability of the electrolysis device 3.

[0149] Specifically, such as Figures 9 to 11 As shown, the first shell 314 is located above the second shell 315, and the third inlet 311 and the third outlet 312 are located on the second shell 315. The upper side of the first shell 314 is provided with an outer peripheral flange 3141.

[0150] Optionally, the electrolysis device 3 further includes two sealing rings 34. One sealing ring 34 is fitted on the first connector 323 and seals with the first shell 314, and the other sealing ring 34 is fitted on the second connector 324 and seals with the first shell 314.

[0151] In some embodiments, at least one of the inner walls of the first shell 314 and the second shell 315 is provided with a baffle 316. The free end of the baffle 316 extends toward the adjacent electrode sheet and is spaced apart from each other, for concentrating the electrolyte in the electrolysis channel 313 toward the connecting hole 326. By concentrating the water in the electrolysis channel 313 toward the connecting hole 326 through the baffle 316, the water flow velocity can be increased, thereby increasing the diffusion rate of water in the electrolysis channel 313 to the space between the electrode sheet and the proton exchange membrane 325, and further improving the electrolysis efficiency.

[0152] Specifically, such as Figure 9 As shown, at least one of the inner walls of the first shell 314 and the second shell 315 is provided with a baffle 316. This can be understood as: the inner wall of the first shell 314 is provided with a baffle 316, or the inner wall of the second shell 315 is provided with a baffle 316, or both the inner walls of the first shell 314 and the inner walls of the second shell 315 are provided with baffles 316. In this embodiment, both the inner walls of the first shell 314 and the inner walls of the second shell 315 are provided with baffles 316. The baffles 316 extend in the vertical direction, and there are three connecting holes 326. The connecting holes 326 are arranged opposite to one of the connecting holes 326 in the vertical direction and are located between the other two connecting holes 326.

[0153] In some embodiments, the first electrode sheet 321 and the second electrode sheet 322 both include a substrate and a coating disposed on the substrate. The coating is disposed on both the surface of the substrate of the first electrode sheet 321 facing the second electrode sheet 322 and the surface away from the second electrode sheet 322, or the coating is disposed only on the surface of the substrate of the first electrode sheet 321 facing the second electrode sheet 322.

[0154] In this embodiment, a coating is provided on both the surface of the substrate of the first electrode sheet 321 facing the second electrode sheet 322 and the surface away from the second electrode sheet 322, or a coating is provided only on the surface of the substrate of the first electrode sheet 321 facing the second electrode sheet 322. The coating reduces the charge transfer resistance and avoids substrate exposure, thereby improving the stability and reliability of the electrolysis assembly 32.

[0155] Optionally, the lower surface of the substrate of the first electrode sheet 321 is provided with a coating. Since the upper surface of the substrate of the first electrode sheet 321 is covered by the first conductive end plate 3281 and has no contact with the outside world, the upper surface of the substrate of the first electrode sheet 321 does not need to be provided with a coating, which helps to reduce manufacturing costs.

[0156] Optionally, the substrate of the first electrode 321 is a silicon substrate, and the coating of the first electrode 321 is a diamond coating.

[0157] In some embodiments, the substrate of the second electrode sheet 322 has a coating on both the surface facing the first electrode sheet 321 and the surface away from the first electrode sheet 321, or the substrate of the second electrode sheet 322 has a coating only on the surface facing the first electrode sheet 321.

[0158] In this embodiment, a coating is provided on both the surface of the substrate of the second electrode sheet 322 facing the first electrode sheet 321 and the surface away from the first electrode sheet 321, or a coating is provided only on the surface of the substrate of the second electrode sheet 322 facing the first electrode sheet 321. The coating reduces the charge transfer resistance and avoids substrate exposure, thereby improving the stability and reliability of the electrolysis assembly 32.

[0159] Optionally, the upper surface of the substrate of the second electrode sheet 322 is provided with a coating. Since the lower surface of the substrate of the second electrode sheet 322 is covered by the second conductive end plate 3282 and has no contact with the outside world, the lower surface of the substrate of the second electrode sheet 322 does not need to be provided with a coating, which helps to reduce manufacturing costs.

[0160] Optionally, the substrate of the second electrode sheet 322 is a silicon substrate, and the coating of the second electrode sheet 322 is a diamond coating. In the description of this disclosure, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing this disclosure and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this disclosure.

[0161] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this disclosure, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0162] In this disclosure, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a connection that allows communication between components; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this disclosure according to the specific circumstances.

[0163] In this disclosure, unless otherwise expressly specified and limited, "above" or "below" the second feature can mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0164] In this disclosure, the terms "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of this disclosure. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0165] Although embodiments of the present disclosure have been shown and described above, it is to be understood that the above embodiments are exemplary and should not be construed as limiting the present disclosure. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present disclosure.

Claims

1. A garment processing device, characterized in that, include: chassis; A processing cylinder, wherein the processing cylinder is disposed within the housing and has a processing cavity; The material box and the electrolysis device are provided. The material box is disposed in the housing and the electrolysis device is disposed in the material box. The electrolysis device has an electrolysis channel. The material box has an inlet channel and an outlet channel. The material box is also provided with a first water inlet and a first water outlet that are connected to the electrolysis channel. The first water inlet is connected to an inlet valve through the inlet channel and the first water outlet is connected to the processing chamber through the outlet channel.

2. The garment processing equipment according to claim 1, characterized in that, The material box is equipped with a baffle plate, which separates the liquid inlet channel and the liquid outlet channel.

3. The garment processing equipment according to claim 2, characterized in that, The connection between the liquid outlet channel and the liquid inlet channel includes a bend, the baffle plate is located at the bend, and the electrolysis device is located above the baffle plate.

4. The garment processing equipment according to claim 1, characterized in that, The feed box has a detergent chamber that is connected to the liquid outlet channel for delivering detergent into the liquid outlet channel so that the detergent mixes with the electrolyte flowing out from the electrolysis channel in the liquid outlet channel.

5. The garment processing equipment according to claim 4, characterized in that, The liquid outlet channel is provided with multiple spaced-apart turbulence columns, which are used to agitate the detergent and electrolyte flowing in the liquid outlet channel.

6. The garment processing equipment according to claim 1, characterized in that, The material box includes a top cover and an upper box body, the top cover and the upper box body defining the liquid inlet channel and the liquid outlet channel.

7. The garment processing equipment according to claim 6, characterized in that, The detergent box also includes a lower box body, which, together with the upper box body, defines a detergent cavity.

8. The garment processing equipment according to claim 6, characterized in that, The electrolysis device is located on the top cover, and the first water inlet and the first water outlet are located on the top cover.

9. The garment processing equipment according to claim 6, characterized in that, The surface of the top cover facing the upper box body is provided with a first rib, and the surface of the upper box body facing the top cover is provided with a second rib. The first rib and the second rib are opposite to each other to define the liquid inlet channel and the liquid outlet channel.

10. The garment processing equipment according to claim 6, characterized in that, The upper box is provided with a detergent inlet that communicates with the liquid outlet channel. The material box is provided with a delivery pump. The inlet of the delivery pump is communicated with the detergent chamber, and the outlet of the delivery pump is communicated with the detergent inlet.

11. The garment processing equipment according to claim 1, characterized in that, The material box is provided with a second water inlet and a second water outlet. The liquid inlet channel is connected to the water inlet valve through the second water inlet, and the liquid outlet channel is connected to the processing chamber through the second water outlet.

12. The garment processing equipment according to claim 1, characterized in that, The garment processing equipment also includes a reversing valve, which is located in the housing. There are multiple processing cylinders, and the processing chambers of the multiple processing cylinders are connected to the liquid outlet channel through the reversing valve. The reversing valve is used to switch the connection between the processing chambers of the multiple processing cylinders and the liquid outlet channel.

13. The garment processing equipment according to claim 12, characterized in that, The inlet valve is connected to the inlet channel via a first water pipe, and the reversing valve is connected to the outlet channel via a second water pipe.

14. The garment processing equipment according to claim 12, characterized in that, The plurality of processing cylinders include a first processing cylinder, a second processing cylinder, and a third processing cylinder, wherein the second processing cylinder and the third processing cylinder are disposed above the first processing cylinder and spaced apart in the left-right direction.

15. The garment processing equipment according to claim 14, characterized in that, The second processing cylinder and the third processing cylinder are symmetrical about a vertical plane passing through the axis of the first processing cylinder.

16. The garment processing equipment according to claim 1, characterized in that, The electrolysis device includes a housing and an electrolysis assembly. The housing has the electrolysis channel, and at least a portion of the electrolysis assembly is disposed within the electrolysis channel and is used to electrolyze the electrolyte within the electrolysis channel.

17. The garment processing equipment according to claim 16, characterized in that, The electrolysis channel has a third inlet and a third outlet at both ends. The third water inlet and the electrolysis assembly are at least partially offset axially in the third water inlet; and / or The third outlet and the electrolysis component are at least partially offset in the axial direction of the third outlet.

18. The garment processing equipment according to claim 16, characterized in that, The outer side wall of the housing is provided with a first connecting part, the first connecting part is provided with a first connecting hole, the top of the material box is provided with a second connecting hole, and the first connecting part and the material box are connected by fasteners passing through the first connecting hole and the second connecting hole.

19. The garment processing equipment according to claim 18, characterized in that, There are multiple first connecting parts, with at least two first connecting parts disposed opposite each other on both sides of the inlet channel and / or the outlet channel in the width direction.

20. The garment processing equipment according to claim 16, characterized in that, The electrolysis assembly includes a first electrode plate, a second electrode plate, a first connector, and a second connector. The first electrode plate and the second electrode plate are stacked in a first direction. The first connector and the second connector both pass through the first electrode plate and the second electrode plate along the first direction. One end of the first connector extends out of the electrolysis channel to form a first terminal. The first connector is in conductive contact with the first electrode plate. One end of the second connector extends out of the electrolysis channel to form a second terminal. The second connector is in conductive contact with the second electrode plate.

21. The garment processing equipment according to claim 20, characterized in that, Both the first electrode sheet and the second electrode sheet include a substrate and a coating disposed on the substrate. The coating is disposed on both the surface of the substrate of the first electrode sheet facing the second electrode sheet and the surface facing away from the second electrode sheet, or the coating is disposed only on the surface of the substrate of the first electrode sheet facing the second electrode sheet; and / or, The coating is provided on both the surface of the substrate of the second electrode sheet facing the first electrode sheet and the surface away from the first electrode sheet, or the coating is provided only on the surface of the substrate of the second electrode sheet facing the first electrode sheet.

22. The garment processing equipment according to claim 20, characterized in that, Both the first electrode sheet and the second electrode sheet are horizontally arranged and stacked in the vertical direction.

23. The garment processing equipment according to claim 20, characterized in that, The electrolysis assembly also includes a proton exchange membrane disposed between the first electrode plate and the second electrode plate.

24. The garment processing equipment according to claim 23, characterized in that, At least one of the first electrode sheet and the second electrode sheet is provided with a through hole extending along the first direction, so that the electrolyte entering the electrolysis channel can diffuse through the through hole to the space between the electrode sheet and the proton exchange membrane.

25. The garment processing equipment according to claim 20, characterized in that, The electrolysis assembly further includes a first insulating gasket and a second insulating gasket. The first insulating gasket is disposed between the first connector and the second electrode plate to electrically isolate the first connector and the second electrode plate. The second insulating gasket is disposed between the second connector and the first electrode plate to electrically isolate the second connector and the first electrode plate; and / or The electrolysis assembly further includes a first conductive pad and a second conductive pad. The first conductive pad is arranged around the first connector and in electrical contact with the first electrode sheet. The second conductive pad is arranged around the second connector and in electrical contact with the second electrode sheet.

26. The garment processing equipment according to claim 25, characterized in that, The electrolysis assembly further includes a first conductive end plate, which is disposed on the side of the first electrode sheet opposite to the second electrode sheet and electrically connected to the first electrode sheet and the first connector; and / or, the electrolysis assembly further includes a second conductive end plate, which is disposed on the side of the second electrode sheet opposite to the first electrode sheet and electrically connected to the second electrode sheet and the second connector.

27. The garment processing equipment according to claim 26, characterized in that, Both the first connector and the second connector are bolts. The electrolysis assembly also includes a first nut and a second nut. The first nut is fitted around the outer periphery of the first connector to press the first conductive gasket onto the first conductive end plate. The second nut is fitted around the outer periphery of the second connector to press the second insulating gasket onto the first conductive end plate.

28. The garment processing equipment according to claim 27, characterized in that, Both the first insulating pad and the second insulating pad include a body portion and an annular flange portion, the annular flange portion being connected to the body portion. The body portion of the first insulating pad is sandwiched between the head of the first connector and the second conductive end plate, and the annular flange portion of the first insulating pad surrounds the first connector and extends through the second conductive end plate into the second electrode sheet. The body portion of the second insulating gasket is sandwiched between the second nut and the first conductive end plate, and the annular flange portion of the second insulating gasket surrounds the second connector and extends through the first conductive end plate into the first electrode sheet.

29. The garment processing equipment according to claim 20, characterized in that, The housing includes a first housing and a second housing, which are connected to define the electrolysis flow channel, and the first connector and the second connector are connected to the first housing.

30. The garment processing equipment according to claim 29, characterized in that, At least one of the inner walls of the first shell and the second shell is provided with a baffle, the free end of the baffle extending toward the adjacent electrode sheet and spaced apart from each other.

31. The garment processing equipment according to claim 29, characterized in that, The electrolysis device further includes a third nut and a fourth nut. The third nut is engaged with one end of the first connector that extends out of the electrolysis channel, and the fourth nut is engaged with one end of the second connector that extends out of the electrolysis channel, so that the electrolysis assembly is suspended in the electrolysis channel by the first connector and the second connector. The first shell has an outer peripheral flange that defines the receiving cavity on the side opposite to the second shell. The first connector extends out of the electrolytic flow channel at one end, the second connector extends out of the electrolytic flow channel at one end, and the third nut and the fourth nut are located inside the receiving cavity.