Disinfecting device and air treatment device
By integrating the atomizing plate and electrolysis components into the water storage box in the disinfection device, a sodium hypochlorite solution is generated for air and object disinfection. This solves the problems of bacterial and viral hazards and large device size and high cost in existing technologies, and achieves efficient and low-cost sterilization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- MIDEA GROUP CO LTD
- Filing Date
- 2021-11-25
- Publication Date
- 2026-04-21
AI Technical Summary
In existing technologies, bacteria and viruses can easily attach to objects and remain in the air for a long time, endangering human health. Furthermore, existing disinfection devices occupy a large space and are costly.
A disinfection device has been designed, including a water storage box, an atomizing component, and a preparation component. The atomizing plate is located inside the water storage box, and the electrolysis component extends into the water storage box. Sodium hypochlorite solution is generated through atomization and electrolysis of the liquid to sterilize and disinfect the air and objects. The device has a compact structure, which reduces the space occupied and production costs.
It achieves efficient sterilization and disinfection of air and objects, reduces the space occupied and production cost of disinfection devices, ensures user health, and reduces energy consumption through flexible adjustment of electrolysis time and liquid concentration.
Smart Images

Figure CN116164376B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of air handling equipment technology, and more specifically, to a disinfection device and an air handling equipment. Background Technology
[0002] In related technologies, bacteria and viruses can attach to objects and exist in the air for a long time. They can easily enter the human body and seriously endanger human health. Summary of the Invention
[0003] The present invention aims to at least solve one of the technical problems existing in the prior art. Therefore, one object of the present invention is to provide a disinfection device that can effectively sterilize and disinfect air or objects, while occupying little space and having low production costs.
[0004] Another object of the present invention is to provide an air handling device having the above-mentioned disinfection device.
[0005] According to an embodiment of the present invention, a disinfection device includes: a water storage box; an atomizing component connected to the water storage box and including an atomizing plate, at least a portion of which is located within the water storage box; and a preparation component including a preparation housing and an electrolysis component, the preparation housing having an atomizing channel communicating with the water storage box, and the electrolysis component being disposed on the preparation housing and extending into the water storage box.
[0006] According to the disinfection device of the present invention, at least a portion of the atomizing plate is located inside the water storage box, and the electrolysis component extends into the water storage box, which facilitates the atomization and electrolysis of the liquid in the water storage box. This allows the gas flowing out from the atomization channel to diffuse into the air, effectively sterilizing and disinfecting the air or objects, ensuring the health of users. Furthermore, the ability to electrolyze and atomize the liquid within the water storage box facilitates the miniaturization of the disinfection device, reduces its space occupation, and lowers production costs.
[0007] In addition, the disinfection device according to the above embodiments of the present invention may also have the following additional technical features:
[0008] According to some embodiments of the disinfection device of the present invention, the electrolysis component includes: a first conductor and a second conductor spaced apart, the first conductor and the second conductor being disposed on the preparation shell, one end of the first conductor and one end of the second conductor being adapted to be electrically connected to a power supply device, and the other ends of the first conductor and the second conductor extending into the water storage box; a first electrode and a second electrode for electrolysis and arranged opposite to each other, the first electrode being connected to the other end of the first conductor, and the second electrode being connected to the other end of the second conductor.
[0009] According to some embodiments of the present invention, the prepared housing has a partition disposed between the first conductor and the second conductor.
[0010] According to some embodiments of the present invention, the first conductor and the second conductor are parallel, the first electrode and the second electrode are stacked in a direction perpendicular to the first conductor, and the first electrode is located on the side of the second conductor closer to the preparation shell. The first electrode has a first clearance notch, the second electrode has a second clearance notch, the second clearance notch is opposite to the connection position of the first electrode and the first conductor, and the second conductor passes through the first clearance notch to connect with the second electrode.
[0011] According to some embodiments of the present invention, the electrolysis component further includes a fixing frame, the fixing frame comprising: a first frame and a second frame, both the first frame and the second frame being formed in annular shape and arranged in the arrangement direction of the first electrode and the second electrode, the first frame and the second frame being connected to define an annular protective space, the outer edges of the first electrode and the second electrode being located within the protective space.
[0012] According to some embodiments of the present invention, the disinfection device further includes: a water tank, the water tank being adapted to communicate with the water storage box for replenishing the water storage box with liquid.
[0013] According to some embodiments of the present invention, the water tank has an outlet, a connecting component is provided at the outlet, and the water storage box has an inlet. When the outlet and the inlet are connected, the connecting component opens the outlet. When the outlet is disconnected from the inlet, the connecting component blocks the outlet.
[0014] According to some embodiments of the present invention, a top post is provided inside the water inlet, and the connecting assembly includes: a fixing plate that blocks the water outlet and has a water outlet hole; a rubber plug located on the side of the fixing plate near the center of the water tank; a plunger movably disposed on the fixing plate, with one end of the plunger on the side of the fixing plate near the center of the water tank connected to the rubber plug; and a water tank elastic member connected between the fixing plate and the end of the plunger on the side of the fixing plate away from the center of the water tank to drive the plunger to move away from the center of the water tank. When the water outlet is separated from the water inlet, the rubber plug blocks the water outlet. When the water outlet is connected to the water inlet, the top post contacts the plunger and drives the plunger to move towards the center of the water tank. The outer periphery of the rubber plug and the inner wall of the water outlet define a water outlet channel.
[0015] According to some embodiments of the present invention, the disinfection device further includes: a disinfection housing, wherein the water storage box, the atomizing component, and the preparation component are disposed within the disinfection housing, and the water tank is detachably disposed on the disinfection housing.
[0016] According to some embodiments of the present invention, the water storage box is provided with an atomizing net, which is disposed on the side of the atomizing plate facing the inside of the water storage box.
[0017] According to some embodiments of the present invention, the inner wall of the water storage box is provided with a groove, the bottom wall of the groove is provided with an atomizing port, the atomizing plate is provided at the atomizing port, and the atomizing mesh is provided at the opening of the groove to block the opening of the groove.
[0018] According to some embodiments of the present invention, the groove includes a first groove provided on the inner wall of the water storage box and a second groove provided on the bottom wall of the first groove, the atomizing port is provided on the bottom wall of the second groove, and the atomizing mesh is provided in the first groove.
[0019] According to some embodiments of the present invention, in the direction from the first groove to the second groove, the inner wall of the second groove is inclined toward the center of the second groove.
[0020] According to some embodiments of the present invention, the atomizing assembly further includes an atomizing plate mounting base, the atomizing plate being disposed on the atomizing plate mounting base, the atomizing plate mounting base being located on the side of the atomizing plate away from the center of the water storage box, the atomizing plate mounting base being connected to the water storage box, and a sealing gasket being provided between the atomizing plate mounting base and the water storage box.
[0021] According to some embodiments of the present invention, the water storage box has an atomizing port, the height of the edge portion of the atomizing plate is greater than the height of the center portion of the atomizing plate, the center portion is opposite to the atomizing port, and the outer wall surface of the water storage box is provided with an installation groove for accommodating the edge portion and the sealing gasket.
[0022] According to some embodiments of the present invention, the disinfection device further includes: a delivery pipe, one end of which is connected to the atomizing channel; and a nozzle assembly, which is connected to the other end of the delivery pipe.
[0023] According to some embodiments of the present invention, the disinfection device further includes a pressurization component, the pressurization component comprising: a pressurization housing connected to the preparation housing, the pressurization housing having an atomization discharge channel and an atomization outlet communicating with the atomization discharge channel, the atomization discharge channel communicating with the atomization channel, and the delivery pipe communicating with the atomization outlet; and a fan disposed on the pressurization housing, the fan being used to blow gas in the atomization discharge channel toward the atomization outlet.
[0024] According to some embodiments of the present invention, the outer wall of the preparation shell has a recessed portion, which extends through the preparation shell in the direction from the water storage box to the pressurization shell. A mounting plate is provided at one end of the recess near the water storage box. The electrolysis component is disposed on the mounting plate. A baffle is provided on the pressurization shell to block the end of the recess near the pressurization shell. A fan is disposed on the baffle and located within the recessed portion, and the fan's outlet is disposed on the baffle.
[0025] According to some embodiments of the present invention, the atomization outlet is located at one end of the pressurizing housing away from the preparation housing, and the inner wall of the atomization discharge channel has a guide surface near the atomization outlet, wherein the guide surface is inclined toward the center of the atomization outlet in the direction from the preparation housing to the pressurizing housing.
[0026] An air handling device according to an embodiment of the present invention includes: a housing; a disinfection device according to an embodiment of the present invention, wherein the disinfection device is disposed within the housing, and the housing has a spray port communicating with the atomizing channel; and an air handling assembly disposed within the housing, wherein the air handling assembly is at least one of a purification assembly, a humidification assembly, and a fresh air assembly.
[0027] According to some embodiments of the present invention, the disinfection device further includes a delivery pipe and a nozzle assembly. One end of the delivery pipe is connected to the atomization channel, and the nozzle assembly is connected to the other end of the delivery pipe. When the nozzle assembly is connected to the other end of the delivery pipe, the nozzle assembly is fixed inside the housing and is opposite to and connected to the spray port.
[0028] According to some embodiments of the present invention, the disinfection device further includes a water tank, which is adapted to communicate with the water storage box for replenishing the water storage box with liquid. The water tank is detachably mounted on the housing.
[0029] According to some embodiments of the present invention, a rolling wheel is provided at the bottom of the housing.
[0030] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0031] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0032] Figure 1 This is a partial cross-sectional view of an air handling apparatus according to an embodiment of the present invention;
[0033] Figure 2 yes Figure 1 The center circle shows an enlarged structural diagram at point A.
[0034] Figure 3 This is a partial cross-sectional view of the air handling apparatus according to an embodiment of the present invention from another angle;
[0035] Figure 4 This is a schematic diagram of the structure of an air handling device according to an embodiment of the present invention (wherein the water outlet and the water inlet are connected);
[0036] Figure 5 This is a schematic diagram of the structure of an air handling device according to an embodiment of the present invention (wherein the water outlet is separate from the water inlet);
[0037] Figure 6 This is a schematic diagram of the structure of the disinfection device according to an embodiment of the present invention;
[0038] Figure 7 This is an exploded view of the disinfection device according to an embodiment of the present invention;
[0039] Figure 8 This is an exploded view of the disinfection device according to an embodiment of the present invention from another angle;
[0040] Figure 9 yes Figure 8 The enlarged structural diagram at point B is shown in the middle circle.
[0041] Figure 10 This is a partial cross-sectional view of a disinfection device according to an embodiment of the present invention (wherein the outlet and the inlet are connected);
[0042] Figure 11 yes Figure 10 The enlarged structural diagram at point C is shown in the middle circle.
[0043] Figure 12 This is a partial cross-sectional view of a disinfection device according to an embodiment of the present invention (wherein the outlet is separate from the inlet);
[0044] Figure 13 This is a schematic diagram of the fabrication component from one angle according to an embodiment of the present invention;
[0045] Figure 14 This is a schematic diagram of the fabrication component from another angle according to an embodiment of the present invention;
[0046] Figure 15 This is a cross-sectional view of the preparation component according to an embodiment of the present invention;
[0047] Figure 16 This is a cross-sectional view of the preparation component according to an embodiment of the present invention from another angle;
[0048] Figure 17 This is an exploded view of the preparation components according to an embodiment of the present invention;
[0049] Figure 18 This is a schematic diagram of the structure of the housing at one angle according to an embodiment of the present invention;
[0050] Figure 19 This is a structural schematic diagram of the housing from another angle according to an embodiment of the present invention;
[0051] Figure 20 This is an assembly diagram of the first electrode and the second electrode according to an embodiment of the present invention;
[0052] Figure 21 This is an exploded view of the first electrode and the second electrode according to an embodiment of the present invention;
[0053] Figure 22 This is an assembly diagram of the water storage box and the atomizing component according to an embodiment of the present invention;
[0054] Figure 23 This is an exploded view of the water storage box and atomizing component according to an embodiment of the present invention;
[0055] Figure 24 This is a cross-sectional view of the water storage box and atomizing component according to an embodiment of the present invention;
[0056] Figure 25 This is a structural schematic diagram of a water storage box from one angle according to an embodiment of the present invention;
[0057] Figure 26 This is a structural schematic diagram of the water storage box from another angle according to an embodiment of the present invention;
[0058] Figure 27 This is a structural schematic diagram of the water storage box from another angle according to an embodiment of the present invention;
[0059] Figure 28 This is a cross-sectional view of a water storage box according to an embodiment of the present invention;
[0060] Figure 29 This is a partial structural schematic diagram of an atomizing component according to an embodiment of the present invention;
[0061] Figure 30 This is a structural schematic diagram of the booster assembly from one angle according to an embodiment of the present invention;
[0062] Figure 31 This is a structural schematic diagram of the booster assembly from another angle according to an embodiment of the present invention;
[0063] Figure 32 This is a cross-sectional view of the booster assembly according to an embodiment of the present invention;
[0064] Figure 33 This is a schematic diagram of the nozzle assembly according to an embodiment of the present invention;
[0065] Figure 34 This is an exploded view of a nozzle assembly according to an embodiment of the present invention;
[0066] Figure 35 This is an exploded view of the nozzle assembly according to an embodiment of the present invention from another angle;
[0067] Figure 36 This is a cross-sectional view of a nozzle assembly according to an embodiment of the present invention (wherein the adjustment plate is located in a first position);
[0068] Figure 37 This is a cross-sectional view of a nozzle assembly according to an embodiment of the present invention (wherein the adjustment plate is located in the second position).
[0069] Figure label:
[0070] 100 disinfection devices; 200 air handling units;
[0071] Water storage box 10; water inlet 11; atomizing mesh 12; groove 13; mounting groove 14; slot 15; mounting hole 16; cover plate 17; top column 111; water inlet 112; atomizing port 131; first groove 132; second groove 133; first mounting groove 141; second mounting groove 142;
[0072] Atomizing component 20; Atomizing plate 21; Atomizing plate mounting base 22; Sealing gasket 23;
[0073] Component 30; Housing 31; Electrolysis component 32; Atomization channel 311; Partition 312; Recess 313; Mounting plate 314; Protrusion 315; Insertion block 316; Extension 317;
[0074] First conductor 41; Second conductor 42; First electrode 43; Second electrode 44; Fixing frame 45; Fastener 46; First clearance notch 431; First connecting hole 432; Second clearance notch 441; Second connecting hole 442; First frame 451; Second frame 452; Protective space 453; Positioning post 454; Limiting part 455; Positioning hole 456;
[0075] Water tank 50; water outlet 51; connecting component 52; water outlet channel 53; fixing plate 521; water outlet hole 522; rubber stopper 523; plunger 524; water tank elastic element 525;
[0076] 60mm pipeline;
[0077] Spray head assembly 70; Nozzle 71; Adjusting plate 72; Spray head mounting base 73; Spray head elastic element 74; Guide rod 75; Spray chamber 711; Spray inlet 712; Spray outlet 713; First section 714; Second section 715; Mounting lug 716; Limiting protrusion 717; Through hole 721; Adjusting plate connecting hole 722; Blocking part 723; Spray clearance port 731; Limiting element 751;
[0078] 80; 81; 811; 812; 813; 814; 815; 82; 821; 821;
[0079] 90. Housing; 91. Injection nozzle; 92. Roller; 93. Base component. Detailed Implementation
[0080] Embodiments of the present invention are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0081] In the description of this invention, "first feature" and "second feature" may include one or more of the features, "multiple" means two or more, "above" or "below" the second feature may include the first and second features being in direct contact, or the first and second features being in contact through another feature between them, and "above," "over," and "on top" the second feature may include the first feature being directly above or diagonally above the second feature, or simply indicate that the first feature is at a higher horizontal level than the second feature.
[0082] The disinfection device 100 according to an embodiment of the present invention is described below with reference to the accompanying drawings.
[0083] Reference Figures 1-8 As shown, the disinfection device 100 according to an embodiment of the present invention may include: a water storage box 10 and an atomizing component 20.
[0084] Specifically, the atomizing component 20 is connected to the water storage box 10, and the atomizing component 20 may include an atomizing plate 21. At least a portion of the atomizing plate 21 may be located inside the water storage box 10, enabling the atomizing plate 21 to atomize the liquid inside the water storage box 10. The gas formed after the liquid is atomized is easily diffused into the air, effectively disinfecting bacteria, mold, etc., in the air and on attached objects, resulting in better and more comprehensive sterilization. Moreover, when using the same amount of liquid, it can achieve sterilization over a wider area, which helps to reduce usage costs. For example, the atomizing plate 21 can be an ultrasonic atomizing plate.
[0085] In addition, such as Figure 7 and Figure 8 As shown, the disinfection device 100 may further include a preparation component 30, which includes a preparation shell 31 and an electrolysis component 32. The electrolysis component 32 is disposed on the preparation shell 31 and extends into the water storage box 10. The electrolysis component 32 can electrolyze the liquid in the water storage box 10, giving the liquid a better sterilization effect, thereby achieving better disinfection and sterilization of air and objects. Furthermore, the preparation shell 31 has an atomization channel 311, which is connected to the water storage box 10. The electrolyzed liquid can be atomized through the atomizing plate 21 and flows out of the water storage box 10 through the atomization channel 311. The outflowing gas facilitates the sterilization and disinfection of objects or air, ensuring the health of users.
[0086] Meanwhile, by connecting the atomizing component 20 to the water storage box 10 and the atomizing channel 311 to the water storage box 10, the structure of the disinfection device 100 can be made more compact, and the electrolysis and atomization of the liquid can be achieved only in the water storage box 10. This reduces the space and structure required for separate electrolysis and atomization, which is conducive to miniaturization of the disinfection device 100, reducing the space occupied by the disinfection device 100 and lowering production costs.
[0087] In some embodiments, the liquid can be saline solution. The electrolysis component 32 can electrolyze the saline solution to generate a sodium hypochlorite solution, thus realizing the preparation of the sodium hypochlorite solution. The atomizing plate 21 can atomize the sodium hypochlorite solution, and the atomized sodium hypochlorite solution can flow out through the atomization channel 311 to sterilize and disinfect objects or air, reducing the cost of using sodium hypochlorite solution for direct disinfection. It is also convenient to obtain and helps reduce the user's expenses. Of course, the type of liquid is not limited to this; for example, the liquid can also be a disinfectant.
[0088] In some embodiments, the electrolysis time of the electrolysis component 32 can be flexibly set according to actual conditions. For example, when the liquid concentration is high, the electrolysis component 32 can electrolyze the liquid in a shorter time to obtain a sodium hypochlorite solution that meets the usage requirements; when the liquid concentration is low, the electrolysis component 32 can electrolyze the liquid in a longer time to obtain a sodium hypochlorite solution that meets the usage requirements. Different electrolysis times can be set according to different liquid concentrations, which helps to reduce the energy consumption of the disinfection device 100 while meeting usage requirements.
[0089] In some embodiments, the order of electrolysis by the electrolysis component 32 and atomization by the atomizing plate 21 can be selected according to the actual situation. For example, when the liquid concentration is low, the liquid in the water storage box 10 can be electrolyzed by the electrolysis component 32 first, and then atomized by the atomizing plate 21 to ensure the sterilization effect; or, the liquid in the water storage box 10 can be electrolyzed and atomized simultaneously by the electrolysis component 32 and the atomizing plate 21, which helps to reduce the preparation and atomization time, making the sterilization device 100 more efficient in sterilizing and disinfecting air and objects; or, the liquid in the water storage box 10 can be electrolyzed by the electrolysis component 32 first, and then electrolyzed and atomized simultaneously by the electrolysis component 32 and the atomizing plate 21 to meet the usage requirements, and the preparation and atomization of the liquid are more efficient.
[0090] In some embodiments, such as Figure 8 , Figure 9 , Figure 13 , Figures 22-27 As shown, the water storage box 10 and the preparation shell 31 can be connected by snap-fit, or the water storage box 10 and the preparation shell 31 can be connected by fasteners 46. Both methods can ensure that the connection between the water storage box 10 and the preparation shell 31 is reliable, the structure is compact, and it is easy to disassemble, clean and maintain.
[0091] In some specific embodiments, such as Figure 9 As shown, the water storage box 10 may have a mounting hole 16 and two slots 15, and the preparation housing 31 may have two inserts 316. The inserts 316 and slots 15 can be set one-to-one. Through the cooperation of the inserts 316 and slots 15, the water storage box 10 and the preparation housing 31 can be connected. The fasteners 46 on the preparation housing 31 can be inserted into the mounting hole 16, which facilitates the connection and fixation of the water storage box 10 and the preparation housing 31, ensuring that the connection between the water storage box 10 and the preparation housing 31 is reliable.
[0092] In the description of this invention, it should be understood that the terms "center", "upper", "lower", "rear", "left", "right", "top", "bottom", "inner", "outer", "circumferential", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0093] According to an embodiment of the present invention, the disinfection device 100 has at least a portion of the atomizing plate 21 located inside the water storage box 10, and the electrolysis component 32 extending into the water storage box 10, which facilitates the atomization and electrolysis of the liquid in the water storage box 10. This allows the gas flowing out from the atomization channel 311 to diffuse into the air, effectively sterilizing and disinfecting the air or objects, ensuring the health of users. Furthermore, the ability to electrolyze and atomize the liquid within the water storage box 10 facilitates the miniaturization of the disinfection device 100, reduces the space occupied by the disinfection device 100, and lowers production costs.
[0094] In some embodiments of the present invention, such as Figure 9 , Figures 13-17 , Figure 20 and Figure 21 As shown, the electrolysis component 32 may include a first conductor 41, a second conductor 42, a first electrode 43, and a second electrode 44. The first conductor 41 and the second conductor 42 are spaced apart. One end of the first conductor 41 (e.g., Figure 16 The upper end shown) and one end of the second conductor 42 (as shown) Figure 16 The upper end shown can be electrically connected to a power supply device, which can energize the first conductor 41 and the second conductor 42. The other end of the first conductor 41 (as shown) Figure 16 The lower end shown) and the other end of the second conductor 42 (as shown) Figure 16 The lower end shown can extend into the water storage box 10. The first electrode 43 and the second electrode 44 are arranged opposite to each other. The first electrode 43 is connected to the other end of the first conductor 41, and the second electrode 44 is connected to the other end of the second conductor 42. The first electrode 43 and the second electrode 44 can be used to electrolyze the liquid.
[0095] When the power supply device energizes the first conductor 41 and the second conductor 42, the first conductor 41 is connected to the first electrode 43 and the second conductor 42 is connected to the second electrode 44, so that the first electrode 43 and the second electrode 44 can be energized, thereby realizing the electrolysis of the liquid, so that the liquid has a better killing effect on viruses and bacteria.
[0096] In addition, such as Figures 15-17 As shown, the first conductor 41 and the second conductor 42 can be disposed on the preparation housing 31. The preparation housing 31 facilitates the installation and fixing of the first conductor 41 and the second conductor 42, avoiding the risk of short circuit caused by the movement of the first conductor 41 and the second conductor 42. In addition, the preparation housing 31 can protect the first conductor 41 and the second conductor 42 to prevent damage to the first conductor 41 and the second conductor 42.
[0097] According to some embodiments of the present invention, such as Figures 17-18As shown, the housing 31 may have a partition 312, which is disposed between the first conductor 41 and the second conductor 42. The partition 312 can separate the first conductor 41 and the second conductor 42, avoid the first conductor 41 and the second conductor 42 from contacting each other and causing a short circuit, and ensure the safety of the disinfection device 100.
[0098] In some embodiments of the present invention, such as Figures 13-17 , Figure 20 and Figure 21 As shown, the first conductor 41 and the second conductor 42 are parallel, and the first electrode 43 and the second electrode 44 are in a direction perpendicular to the first conductor 41 (e.g., Figure 16 The stacked arrangement (shown in the vertical direction) helps to reduce the space occupied by the first conductor 41, the second conductor 42, the first electrode 43 and the second electrode 44, and is easy to assemble, making it convenient to insert the electrolysis part 32 into the water storage box 10.
[0099] In addition, such as Figures 14-17 As shown, the first electrode 43 is located on the side of the second conductor 42 closest to the fabrication housing 31 (e.g., Figure 16 As shown on the upper side), the first electrode 43 has a first clearance notch 431, and the second electrode 44 has a second clearance notch 441. The second clearance notch 441 is opposite to the connection position of the first electrode 43 and the first conductor 41. The connection position of the first electrode 43 and the first conductor 41 can be avoided through the second clearance notch 441, avoiding the risk of short circuit caused by the contact between the first electrode 43 and the second electrode 44. The second conductor 42 can pass through the first clearance notch 431 to connect with the second electrode 44. The second conductor 42 can be avoided through the first clearance notch 431, avoiding the risk of short circuit caused by the contact between the second conductor 42 and the first electrode 43. This can further ensure the safety of the disinfection device 100 and ensure that the electrolysis component 32 electrolyzes the liquid.
[0100] In some embodiments, such as Figures 13-17 As shown, the first electrode 43 and the first conductor 41 can be connected by fastener 46, and the second electrode 44 and the second conductor 42 can also be connected by fastener 46. This ensures reliable connection between the first electrode 43 and the first conductor 41, and between the second electrode 44 and the second conductor 42, facilitating disassembly and enabling current transmission between them. The structure is simple and helps reduce production costs. For example, the fastener 46 can be a bolt.
[0101] In some specific embodiments, such as Figure 20 and Figure 21As shown, the first electrode 43 may have a first connection hole 432, and the fastener 46 may pass through the first connection hole 432 through the second clearance notch 441 to connect the first electrode 43 to the first conductor 41. The second electrode 44 may have a second connection hole 442, and the fastener 46 may pass through the second connection hole 442 to connect the second electrode 44 to the second conductor 42. The first clearance notch 431 can avoid the fastener 46, ensuring that the connection between the first electrode 43 and the first conductor 41 and the second electrode 44 and the second conductor 42 is reliable, and avoiding contact between the first electrode 43 and the second electrode 44, thus ensuring the safety of the disinfection device 100.
[0102] According to some embodiments of the present invention, such as Figures 13-17 , Figure 20 and Figure 21 As shown, the electrolysis component 32 also includes a fixing frame 45, which may include a first frame 451 and a second frame 452. Both the first frame 451 and the second frame 452 are formed in annular shape and are arranged in the same direction as the first electrode 43 and the second electrode 44, i.e., stacked in a direction perpendicular to the first conductor 41. The connection between the first frame 451 and the second frame 452 defines an annular protective space 453. The outer edges of the first electrode 43 and the second electrode 44 can be located within the protective space 453. The first frame 451 and the second frame 452 can protect the first electrode 43 and the second electrode 44, preventing deformation. Furthermore, the annular shape of the first frame 451 and the second frame 452 facilitates the fixing of the outer periphery of the first electrode 43 and the second electrode 44, ensuring reliable connection, good protection, and a simple structure.
[0103] In some embodiments, both the first frame 451 and the second frame 452 may include reinforcing ribs. The reinforcing ribs can enhance the structural strength of the first frame 451 and the second frame 452, prevent the first frame 451 and the second frame 452 from deforming, thereby providing better protection for the first electrode 43 and the second electrode 44 and extending their service life.
[0104] In some embodiments, such as Figure 21 As shown, both the first frame 451 and the second frame 452 may be provided with limiting parts 455. The first frame 451 can fix the first electrode 43 through the limiting parts 455, and the second frame 452 can fix the second electrode 44 through the limiting parts 455, so as to prevent the first electrode 43 and the second electrode 44 from shaking in the protective space 453 and ensure that the first electrode 43 and the second electrode 44 are installed firmly.
[0105] In some embodiments, such as Figure 21As shown, the side of the first frame 451 facing the second frame 452 (e.g.) Figure 21 The lower side shown may have a positioning post 454 and a positioning hole 456, and the side of the second frame 452 facing the first frame 451 (e.g.) Figure 21 The upper side shown may have a positioning post 454 and a positioning hole 456. The positioning post 454 of the first frame 451 may correspond to the positioning hole 456 of the second frame 452, and the positioning post 454 of the second frame 452 may correspond to the positioning hole 456 of the first frame 451. By cooperating with the positioning post 454 through the positioning hole 456, the first frame 451 and the second frame 452 can be positioned easily, making assembly more convenient.
[0106] In some embodiments, such as Figure 13 , Figure 14 , Figure 17 , Figure 20 and Figure 21 As shown, the first frame 451 and the second frame 452 can be connected by snap-fit, which is reliable and easy to install and remove, making it convenient to install the first electrode 43 and the second electrode 44 on the first frame 451 and the second frame 452.
[0107] For example, in some embodiments, such as Figure 20 and Figure 21 As shown, the second frame 452 may include a latching protrusion 315, and the first frame 451 may include a latching hook 815. Thus, the latching protrusion 315 can be latched into the latching hook 815. Through the cooperation of the latching hook 815 and the latching protrusion 315, the first frame 451 and the second frame 452 can be connected, and disassembly is convenient.
[0108] For example, in some other embodiments, the second frame 452 may include a hook 815, and the first frame 451 may include a protrusion 315. Thus, the protrusion 315 can also be engaged in the hook 815. Through the cooperation of the hook 815 and the protrusion 315, the first frame 451 and the second frame 452 can be connected, and disassembly is convenient.
[0109] In some embodiments, the disinfection device 100 may include a water inlet pipe, which may be connected to a water supply device and communicate with a water storage box 10 to supply liquid to the water storage box 10, thereby meeting the liquid supply needs of the disinfection device 100. For example, the water supply device may be a faucet, a water dispenser, etc.
[0110] In some embodiments of the present invention, such as Figure 1 , Figures 3-12As shown, the disinfection device 100 also includes a water tank 50, which can be connected to the water storage box 10. The water tank 50 can be used to replenish the water storage box 10 with liquid, which can meet the long-term liquid needs of the disinfection device 100. The location of the disinfection device 100 is not limited to the area near the water supply equipment.
[0111] In addition, the water tank 50 can store a relatively large amount of water, while the volume of the water storage box 10 does not need to be too large. By extending the electrolysis component 32 into the water storage box 10, only the liquid in the water storage box 10 can be electrolyzed, which can achieve electrolysis of a small amount of liquid. This is beneficial to improving the electrolysis efficiency of the disinfection device 100. The water tank 50 replenishes the liquid in the water storage box 10, and can also meet the long-term liquid needs of the disinfection device 100.
[0112] According to some embodiments of the present invention, such as Figures 10-12 As shown, the water tank 50 has an outlet 51 with a connecting component 52 at the outlet 51, and the water storage box 10 has an inlet 11. When the outlet 51 and the inlet 11 are connected, the connecting component 52 can open the outlet 51, allowing the liquid in the water tank 50 to flow out from the outlet 51 and enter the water storage box 10 through the inlet 11; when the outlet 51 is disconnected from the inlet 11, the connecting component 52 can block the outlet 51, preventing the liquid in the water tank 50 from flowing out from the outlet 51, thus facilitating the replenishment of liquid from the water tank 50 to the water storage box 10.
[0113] In embodiments of the present invention, the specific structure of the connecting component 52 can be set according to actual conditions.
[0114] For example, in some embodiments, such as Figures 10-12 As shown, a top post 111 can be provided inside the water inlet 11. The connecting assembly 52 includes a fixing plate 521, a rubber stopper 523, a plunger 524, and a water tank elastic element 525. The fixing plate 521 can block the water outlet 51. The fixing plate 521 is provided with a water outlet hole 522, through which liquid in the water tank 50 can flow out. The rubber stopper 523 is located on the side of the fixing plate 521 closer to the center of the water tank 50 (e.g., Figure 11 (As shown on the left), the rubber stopper 523 can be opened to block the outlet 51. The plunger 524 is movably mounted on the fixed plate 521, with one end of the plunger 524 located on the side of the fixed plate 521 closest to the center of the water tank 50 (e.g., ...). Figure 11 The plunger 524 (shown on the left) is connected to the rubber stopper 523, and the movement of the rubber stopper 523 can be controlled by the movement of the plunger 524. The water tank elastic element 525 is located at one end of the fixed plate 521 and the plunger 524, on the side of the fixed plate 521 away from the center of the water tank 50 (e.g., the end of the fixed plate 521 away from the center of the water tank 50). Figure 11The water tank elastic element 525 is connected to the right end shown. The elastic element 525 can drive the plunger 524 to move away from the center of the water tank 50, so that the plunger 524 can drive the rubber stopper 523 to block the outlet 51. For example, the water tank elastic element 525 can be a spring.
[0115] When the outlet 51 disengages from the inlet 11, the plunger 524 moves under the driving force of the water tank elastic element 525, allowing the plunger 524 to drive the rubber stopper 523 to seal the outlet 51, preventing liquid in the water tank 50 from flowing out of the outlet 51; when the outlet 51 connects to the inlet 11, the top pin 111 can contact the plunger 524, and the top pin 111 can overcome the force of the water tank elastic element 525 to drive the plunger 524 toward a direction closer to the center of the water tank 50 (e.g., Figure 11 The left side of the diagram is moved, so that the outer periphery of the rubber stopper 523 and the inner wall of the outlet 51 can define the water outlet channel 53. The liquid in the water tank 50 can flow out from the outlet 51 through the water outlet channel 53 and flow into the water storage box 10 from the inlet 11. The connecting component 52 has a simple structure and low production cost. The outlet 51 can be opened and closed by contacting or separating the top column 111 from the plunger 524, which makes it more convenient for users and improves the user experience.
[0116] Furthermore, when the outlet 51 is connected to the inlet 11, a water level difference will be formed between the water tank 50 and the water storage box 10. The water level difference can be used to automatically allow the liquid to flow from the water tank 50 into the water storage box 10, thereby replenishing the water storage box 10 with water. This achieves automatic water replenishment of the water storage box 10 without the need for a drive pump or other drive mechanism, simplifying the structure and facilitating the lightweight design of the disinfection device 100. It is also convenient to use, low in cost, and can prevent the atomizing component 20 and the preparation component 30 from working ineffectively, avoiding safety hazards and making the disinfection device 100 more efficient.
[0117] In some embodiments, such as Figure 22 and Figure 26 As shown, the water storage box 10 can be provided with multiple water inlet holes 112. The multiple water inlet holes 112 are arranged around the top column 111, which makes it easier for liquid to flow into the water storage box 10 through the multiple water inlet holes 112. The liquid flow is smoother, and it can ensure that the periphery of the top column 111 has good structural strength, avoiding the problem of deformation of the top column 111 under stress.
[0118] In some embodiments of the present invention, the disinfection device 100 may further include a disinfection housing, and the water storage box 10, the atomizing component 20 and the preparation component 30 may be disposed inside the disinfection housing. The disinfection housing facilitates the protection of the water storage box 10, the atomizing component 20 and the preparation component 30, avoids the water storage box 10, the atomizing component 20 and the preparation component 30 from being exposed and damaged, and can ensure that the disinfection device 100 has a better appearance.
[0119] In addition, such as Figure 4 and Figure 5 As shown, when the water tank 50 is inside the disinfection housing, it can be positioned in communication with the water storage box 10, facilitating the replenishment of liquid from the water tank 50 to the water storage box 10. When the water tank 50 is outside the disinfection housing, it can be positioned disconnected from the water storage box 10, facilitating the addition of water to the water tank 50, cleaning, and maintenance. Therefore, the water tank 50 is detachably mounted on the disinfection housing, allowing for easy switching between connected and disconnected positions, making it more convenient to use.
[0120] In some embodiments, such as Figures 4-12 As shown, a handle may be provided on one side of the water tank 50, which makes it easy to remove and put the water tank 50 into the disinfection housing, making the disassembly of the water tank 50 more convenient.
[0121] In some embodiments, such as Figure 24 As shown, an atomizing mesh 12 may be provided inside the water storage box 10. The atomizing mesh 12 is located on the side of the atomizing plate 21 facing the inside of the water storage box 10 (e.g., Figure 24 (As shown on the upper side), the atomizing mesh 12 can block impurities in the liquid, prevent the atomizing plate 21 from coming into contact with impurities and causing damage to the atomizing plate 21, and extend the service life of the atomizing plate 21.
[0122] According to some embodiments of the present invention, such as Figure 24 and Figure 28 As shown, a groove 13 may be provided on the inner wall of the water storage box 10, and an atomizing port 131 is provided on the bottom wall of the groove 13. An atomizing plate 21 may be provided at the atomizing port 131, and an atomizing net 12 may be provided at the opening of the groove 13. The atomizing net 12 can block the opening of the groove 13. After the liquid passes through the atomizing net 12 to block impurities in the liquid, it comes into contact with the atomizing plate 21 through the atomizing port 131 to atomize the liquid.
[0123] The liquid's own weight is sufficient to isolate impurities, and liquid can be automatically added to the atomizing plate 21, avoiding the need for additional structures to control the liquid flow to the atomizing plate 21. This makes the atomizing plate 21 work more efficiently, improving the atomization efficiency of the disinfection device 100 and preventing safety hazards. Furthermore, the groove 13 allows for the installation and fixation of the atomizing mesh 12, preventing it from moving and affecting its ability to block impurities in the liquid, thus extending the service life of the atomizing plate 21.
[0124] In some embodiments, such as Figure 24 and Figure 28As shown, the groove 13 may include a first groove 132 and a second groove 133. The first groove 132 is located on the inner wall of the water storage box 10, and the second groove 133 is located on the bottom wall of the first groove 132. The atomizing port 131 may be located on the bottom wall of the second groove 133. The atomizing mesh 12 is located in the first groove 132 and can be installed and fixed through the first groove 132. The liquid in the water storage box 10 can pass through the atomizing mesh 12 and enter the second groove 133, so that the liquid flows through the atomizing port 131 to the atomizing plate 21. This avoids direct contact between the atomizing plate 21 and the atomizing mesh 12, which would affect the atomization effect of the liquid, and effectively prevents impurities on the atomizing mesh 12 from contacting the atomizing plate 21, ensuring the normal use of the atomizing plate 21.
[0125] According to some embodiments of the present invention, such as Figure 24 and Figure 28 As shown, in the direction from the first groove 132 to the second groove 133 (e.g.) Figure 24 As shown in the top-to-bottom direction), the inner wall of the second groove 133 can be inclined toward the center of the second groove 133, so that the liquid flowing into the second groove 133 can be guided by the inclined inner wall of the second groove 133 into the atomizing port 131, and then flow to the atomizing plate 21. The liquid can be in complete contact with the atomizing plate 21, ensuring more efficient atomization.
[0126] In some embodiments, such as Figure 23 , Figure 24 and Figure 29 As shown, the atomizing assembly 20 also includes an atomizing plate mounting base 22, on which the atomizing plate 21 is disposed. The atomizing plate mounting base 22 is located on the side of the atomizing plate 21 away from the center of the water storage box 10 (e.g., Figure 24 (As shown on the lower side), the atomizing plate 21 can be easily installed and fixed by the atomizing plate mounting seat 22, and the atomizing plate mounting seat 22 can avoid blocking the atomizing plate 21, ensuring that the atomizing effect of the atomizing plate 21 is good.
[0127] In addition, such as Figure 24 As shown, the atomizing plate mounting base 22 can be connected to the water storage box 10, allowing the atomizing plate 21 to be fixed to the water storage box 10 via the atomizing plate mounting base 22. This makes the atomizing plate 21 more securely installed, reducing the space occupied by the atomizing component 20 when placed alone. Furthermore, a sealing gasket 23 is provided between the atomizing plate mounting base 22 and the water storage box 10. The sealing gasket 23 prevents liquid from leaking out from the atomizing plate 21, thus preventing water ingress into the atomizing component 20 or the disinfection device 100, ensuring the safety of the disinfection device 100.
[0128] In some embodiments of the present invention, such as Figure 24 and Figure 28As shown, the water storage box 10 has an atomizing port 131. The height of the edge of the atomizing plate 21 is greater than the height of the center of the atomizing plate 21. The center is opposite to the atomizing port 131. The edge of the atomizing plate 21 can facilitate the flow of liquid, allowing the liquid flowing in from the atomizing port 131 to enter the center under the guidance of the edge, thus concentrating the liquid and making the atomizing plate 21 more efficient at atomizing the liquid. In addition, the outer wall of the water storage box 10 can be provided with a mounting groove 14. The mounting groove 14 is used to accommodate the edge and the sealing gasket 23, facilitating the placement of the atomizing plate 21 and the sealing gasket 23 and ensuring a good sealing effect.
[0129] In some embodiments, such as Figure 24 , Figure 25 and Figure 28 As shown, the mounting groove 14 may include a first mounting groove 141 and a second mounting groove 142. The second mounting groove 142 is disposed on the bottom wall of the first mounting groove 141. The cross-sectional area of the second mounting groove 142 may be larger than that of the first mounting groove 141. The sealing gasket 23 is installed on the edge of the atomizing plate 21. The atomizing plate 21 can pass through the first mounting groove 141 and the second mounting groove 142. The sealing gasket 23 can be located on the second mounting groove 142 to ensure that the sealing gasket 23 and the atomizing plate 21 are firmly installed and to prevent liquid from flowing out from the edge onto the main board and other components of the atomizing assembly 20, thus ensuring good sealing effect and high safety in use.
[0130] In some embodiments, such as Figures 22-24 As shown, the water storage box 10 may include a cover plate 17, which may be located on the side of the atomizing plate 21 away from the center of the water storage box 10. The water storage box 10 is connected to the cover plate 17, and the atomizing component 20 may be located between the water storage box 10 and the cover plate 17, so as to protect the atomizing component 20, prevent dust and other impurities from entering the atomizing component 20, and extend the service life of the atomizing component 20.
[0131] According to some embodiments of the present invention, such as Figures 1-3 , Figures 6-8 As shown, the disinfection device 100 also includes a delivery pipe 60 and a nozzle assembly 70, one end of the delivery pipe 60 (e.g. Figure 7 The lower end shown can be connected to the atomizing channel 311, and the other end of the delivery pipe 60 (e.g.) Figure 7 The upper end shown can be connected to the nozzle assembly 70, so that gas can flow from the atomization channel 311 into the delivery pipe 60, and then flow into the nozzle assembly 70 and out to the outside through the delivery pipe 60. It can spray on spaces and objects that need to be disinfected, which is convenient for disinfecting viruses or bacteria.
[0132] In some embodiments of the present invention, such as Figure 1 , Figures 3-8 , Figure 10 , Figure 12 , Figure 30 and Figure 32 As shown, the disinfection device 100 also includes a pressurization component 80, which can blow gas toward the delivery pipe 60 to facilitate gas delivery.
[0133] Specifically, the pressurization assembly 80 includes a pressurization housing 81, which is connected to the preparation housing 31 for easy connection and fixation of the pressurization assembly 80. The pressurization housing 81 has an atomization discharge channel 811 and an atomization outlet 812. The atomization outlet 812 can communicate with the atomization discharge channel 811, and the atomization discharge channel 811 is connected to the atomization channel 311. The delivery pipe 60 is connected to the atomization outlet 812. Thus, the gas in the atomization channel 311 can enter the atomization discharge channel 811, and from the atomization discharge channel 811, it enters the delivery pipe 60 from the atomization outlet 812 and is sprayed out through the nozzle assembly 70, facilitating the flow and discharge of gas.
[0134] In addition, the pressurization assembly 80 also includes a fan 82, which can be mounted on the pressurization housing 81. The fan 82 is used to blow the gas in the atomization discharge channel 811 toward the atomization outlet 812. Thus, the gas in the atomization discharge channel 811 can be blown toward the atomization outlet 812 by the fan 82, flowing from the atomization outlet 812 into the delivery pipe 60, and then into the nozzle assembly 70. From the nozzle assembly 70, it flows to the outside, spraying the external space and objects, resulting in smoother gas flow. Simultaneously, as the gas in the atomization discharge channel 811 blows toward the atomization outlet 812, the gas in the atomization channel 311 can replenish the atomization discharge channel 811, creating better gas flow within the disinfection device 100 and making the disinfection of the device 100 more efficient. For example, the fan 82 can be an air pump.
[0135] In some embodiments, such as Figures 6-8 As shown, the pressurized housing 81 and the preparation housing 31 can be connected by snap-fit, which is reliable, makes the structure compact, reduces the space occupied, and is easy to disassemble, maintain and clean.
[0136] For example, in some embodiments, such as Figures 6-8 , Figures 13-29 , Figures 30-32 As shown, the housing 31 may include a locking protrusion 315, and the pressurizing housing 81 may include a locking hook 815. Thus, the locking protrusion 315 can be engaged in the locking hook 815. Through the cooperation of the locking hook 815 and the locking protrusion 315, the pressurizing housing 81 can be connected to the housing 31, which is convenient for disassembly and maintenance, and easy to clean.
[0137] In some specific embodiments, such as Figure 7 and Figure 8As shown, the outer side wall of the preparation housing 31 may be provided with multiple protrusions 315, and the outer side wall of the pressurization housing 81 may be provided with multiple hooks 815. The multiple protrusions 315 and the multiple hooks 815 are arranged in a one-to-one correspondence. Through the cooperation of the multiple hooks 815 and the multiple protrusions 315, the pressurization housing 81 and the preparation housing 31 can be connected to ensure that the connection between the pressurization housing 81 and the preparation housing 31 is reliable.
[0138] For example, in other embodiments, the housing 31 may include a hook 815, and the pressurizing housing 81 may include a protrusion 315. Thus, the protrusion 315 can also be engaged in the hook 815. Through the cooperation of the hook 815 and the protrusion 315, the pressurizing housing 81 can be connected to the housing 31, which is convenient for disassembly and maintenance, and easy to clean.
[0139] According to some embodiments of the present invention, such as Figure 7 , Figure 8 , Figures 13-19 As shown, the outer wall of the housing 31 has a recess 313 in the direction from the water storage box 10 to the pressurized housing 81 (e.g. Figure 7 (As shown in the bottom-to-top direction), the recess 313 penetrates the preparation shell 31. The end of the recess 313 near the water storage box 10 has a mounting plate 314, on which the electrolysis component 32 can be mounted, facilitating its installation on the preparation shell 31. Furthermore, the pressurizing shell 81 is provided with a baffle 813, which can be used to seal the end of the recess 313 near the pressurizing shell 81 (e.g., ...). Figure 7 As shown at the upper end), the fan 82 is mounted on the baffle 813 and is located in the recess 313. By preparing the housing 31 and setting the recess 313, the fan 82 can also be placed in the housing 31, which can form an atomization channel 311, thus maximizing space utilization and reducing space occupation.
[0140] In addition, such as Figure 32 As shown, the air outlet 821 of the fan 82 is located on the baffle 813. The baffle 813 can prevent external air from directly entering the atomization discharge channel 811 and affecting the gas flow in the atomization discharge channel 811. The fan 82 can blow the gas in the atomization discharge channel 811 toward the atomization outlet 812 through the air outlet 821, resulting in better gas flow.
[0141] In some embodiments, such as Figure 9 , Figures 13-19 As shown, the housing 31 may include an extension 317, which may extend along the side of the mounting plate 314 toward the water storage box 10 (e.g. Figure 7The lower side shown extends toward the center of the water storage box 10. The first conductor 41 and the second conductor 42 can be located inside the extension 317, which facilitates the protection of the first conductor 41 and the second conductor 42. The first conductor 41 and the second conductor 42 are installed securely.
[0142] In some embodiments, such as Figure 30 and Figure 32 As shown, the atomization outlet 812 is located at the end of the pressurization housing 81 that is furthest from the preparation housing 31 (e.g., Figure 32 The inner wall of the atomization discharge channel 811 (shown at the upper end) has a guide surface 814 near the atomization outlet 812, in the direction from the housing 31 to the pressurization housing 81 (e.g., the upper end). Figure 32 As shown in the direction from bottom to top, the guide surface 814 can be inclined toward the center of the atomization outlet 812. The guide surface 814 can guide the gas in the atomization discharge channel 811, so that the gas can flow out from the atomization outlet 812 under the action of the fan 82.
[0143] In embodiments of the present invention, the specific structure of the nozzle assembly 70 can be set according to actual conditions.
[0144] For example, in some embodiments, such as Figures 33-37 As shown, the nozzle assembly 70 may include a nozzle 71, which has a spray chamber 711, a spray inlet 712, and a spray outlet 713. The spray inlet 712 and the spray outlet 713 are connected to the spray chamber 711. Gas can enter the spray chamber 711 from the spray inlet 712, and the gas in the spray chamber 711 can be sprayed out through the spray outlet 713, so that the gas flows out to the outside, which is convenient for disinfecting objects and spaces.
[0145] In addition, such as Figure 36 and Figure 37 As shown, the nozzle assembly 70 may further include an adjusting plate 72 in the directions from the injection inlet 712 to the injection outlet 713 and from the injection outlet 713 to the injection inlet 712 (e.g., Figure 36 (As shown in the left and right directions), the adjusting plate 72 is movably disposed in the injection chamber 711. The adjusting plate 72 has a through hole 721 and has a first position and a second position.
[0146] like Figure 36 As shown, when the adjusting plate 72 is in the first position, the outer wall of the adjusting plate 72 is in contact with the inner wall of the injection chamber 711, so that the gas flowing into the injection chamber 711 from the injection inlet 712 can only flow out from the injection outlet 713 through the through hole 721, and the gas injection range is small; as Figure 37As shown, when the adjusting plate 72 is in the second position, the outer wall of the adjusting plate 72 can be spaced apart from the inner wall of the spray chamber 711, allowing the gas flowing into the spray chamber 711 from the spray inlet 712 to flow out from the spray outlet 713 through the through hole 721. Furthermore, the gas flowing into the spray chamber 711 from the spray inlet 712 can also flow out through the gap between the outer wall of the adjusting plate 72 and the inner wall of the spray chamber 711, thus achieving a larger spray range for the nozzle assembly 70. By moving the adjusting plate 72 between the first and second positions, the gas spray range of the nozzle assembly 70 can be adjusted. This is simple to operate, meets different usage needs, avoids gas waste, and improves the user experience.
[0147] In some embodiments, such as Figure 34 and Figure 35 As shown, multiple through holes 721 can be provided (two or more). Multiple through holes 721 can be arranged along the circumference of the adjusting plate 72 to facilitate the flow of gas through multiple through holes 721, making the gas flow smoother and the gas distribution more uniform.
[0148] According to some embodiments of the present invention, such as Figure 36 and Figure 37 As shown, the second position can be located on the side of the first position closer to the injection outlet 713 (e.g. Figure 36 As shown on the right), the nozzle assembly 70 can achieve different spray ranges by moving the adjusting plate 72 between the spray outlet 713 and the spray outlet 713. It is easy to control and has a simple structure.
[0149] In some embodiments, in the direction from the injection inlet 712 to the injection outlet 713 (e.g.) Figure 36 As shown from left to right, the cross-sectional area of the injection chamber 711 gradually increases, roughly forming a funnel-shaped structure. When the adjusting plate 72 moves within the injection chamber 711, it can be positioned at a first position by moving towards the injection inlet 712, and at a second position by moving towards the injection outlet 713. This allows for adjustment of the gas injection range without the need to control other structures, making adjustment more convenient. Furthermore, the inner wall of the injection chamber 711 can guide the gas flow, facilitating its exit from the injection outlet 713 along the inner wall of the injection chamber 711, which helps to increase the range of outflowing gas and makes the gas ejection smoother.
[0150] When the adjusting plate 72 is in the first position, the adjusting plate 72 can be located on the side with the smaller cross-sectional area of the injection cavity 711, so that the outer wall of the adjusting plate 72 can fit against the inner wall of the injection cavity 711; when the adjusting plate 72 is in the second position, the adjusting plate 72 can be located on the side with the larger cross-sectional area of the injection cavity 711, so that the outer wall of the adjusting plate 72 can be spaced apart from the inner wall of the injection cavity 711. The range of the airflow injected from the injection outlet 713 can be controlled simply by moving the adjusting plate 72. The structure is simple and helps to reduce production costs.
[0151] In some embodiments, such as Figure 36 and Figure 37 As shown, in the direction from the injection inlet 712 to the injection outlet 713 (e.g.) Figure 36 As shown from left to right, the injection chamber 711 may have a first section 714 and a second section 715 connected in sequence. The cross-sectional area of the first section 714 remains unchanged, facilitating its connection with the delivery pipe 60 and ensuring a stable connection between the two sections. The cross-sectional area of the second section 715 gradually increases. When the adjusting plate 72 moves within the injection chamber 711, it can move towards the injection inlet 712 to a first position and towards the injection outlet 713 to a second position. This allows for adjustment of the gas injection range without requiring control of other structures, making adjustment more convenient. Furthermore, the minimum cross-sectional area of the second section 715 is equal to that of the first section 714, allowing for a smooth transition between the two sections and avoiding any impact on gas flow within the injection chamber 711, thus ensuring smooth gas flow.
[0152] When the adjusting plate 72 is in the first position, the adjusting plate 72 can be located on the side with the smaller cross-sectional area of the second section 715, so that the outer wall of the adjusting plate 72 can fit against the inner wall of the second section 715; when the adjusting plate 72 is in the second position, the adjusting plate 72 can be located on the side with the larger cross-sectional area of the second section 715, so that the outer wall of the adjusting plate 72 can be spaced apart from the inner wall of the second section 715. The range of the airflow injected from the injection outlet 713 can be controlled simply by moving the adjusting plate 72. The structure is simple and helps to reduce production costs.
[0153] In some embodiments, such as Figures 33-37 As shown, a limiting protrusion 717 may be provided on the outer wall of the first section 714. The limiting protrusion 717 facilitates the limiting of the conveying pipe 60, preventing the conveying pipe 60 from slipping off the nozzle assembly 70 and ensuring a reliable connection between the conveying pipe 60 and the nozzle assembly 70.
[0154] In embodiments of the present invention, the specific structure of the limiting protrusion 717 can be set according to actual conditions.
[0155] For example, in some embodiments, such as Figure 36 and Figure 37 As shown, the limiting protrusion 717 can be an annular protrusion formed on the outer wall of the first section 714, and the limiting protrusion 717 has a flat section and an inclined section. One end of the inclined section is connected to the flat section, and the other end of the inclined section is along the direction close to the injection inlet 712 (e.g., Figure 36 As shown on the left side, the cross-sectional area gradually decreases, making it easy for the conveying pipe 60 to be installed on the first section 714 through the other end of the inclined section, and the conveying pipe 60 can be limited by the gentle section to prevent the conveying pipe 60 from coming off the first section 714.
[0156] In some embodiments, such as Figures 33-37 As shown, there can be multiple limiting protrusions 717. Multiple limiting protrusions 717 are spaced apart on the first section 714. While ensuring that the conveying pipe 60 is easy to install on the first section 714, the conveying pipe 60 can be prevented from coming off the first section 714.
[0157] In embodiments of the present invention, the number of limiting protrusions 717 can be flexibly set according to actual conditions. For example, the limiting protrusions 717 can be as follows: Figure 36 The number shown is two, but it can also be three, four, five, six, seven or more, all of which are within the protection scope of this invention.
[0158] In some embodiments of the present invention, such as Figures 33-37 As shown, the nozzle assembly 70 also includes a nozzle mounting base 73 and a nozzle elastic element 74. The nozzle mounting base 73 is located at the spray outlet 713 and has a spray clearance port 731 to facilitate gas flow out. The nozzle elastic element 74 is located between the adjusting plate 72 and the nozzle mounting base 73, and can drive the adjusting plate 72 to move towards a first position, facilitating the movement of the adjusting plate 72 to the first position.
[0159] When the force on the adjusting plate 72 is greater than the elastic force of the nozzle elastic element 74, the nozzle elastic element 74 can be compressed, causing the adjusting plate 72 to move towards the second position. The outer wall of the adjusting plate 72 is spaced apart from the inner wall of the spray cavity 711, enabling a larger spray range for the nozzle assembly 70. When the force on the adjusting plate 72 is less than the elastic force of the nozzle elastic element 74, the nozzle elastic element 74 undergoes elastic deformation, and the adjusting plate 72 can move towards the first position under the drive of the force of the nozzle elastic element 74. The outer wall of the adjusting plate 72 fits against the inner wall of the spray cavity 711, enabling a smaller spray range for the nozzle assembly 70. Furthermore, the nozzle elastic element 74 has a simple structure and low production cost. For example, the nozzle elastic element 74 can be a spring.
[0160] In some embodiments, such as Figures 33-35As shown, there can be multiple spray clearance ports 731. Multiple spray clearance ports 731 are arranged around the nozzle mounting base 73, which allows the nozzle mounting base 73 to have a larger outflow space, making the gas flow more smoothly and evenly, and ensuring the high structural strength of the nozzle mounting base 73.
[0161] In embodiments of the present invention, the number of jet clearance ports 731 can be flexibly set according to actual conditions. For example, the number of jet clearance ports 731 can be as follows: Figure 33 The number shown is eight, but it can also be two, three, four, five, six, seven, nine or more, all of which are within the protection scope of this invention.
[0162] In some embodiments, the nozzle mounting base 73 and the nozzle 71 can be connected by threads, which is reliable and facilitates the assembly and disassembly of the internal structure of the nozzle assembly 70. This makes installation convenient and facilitates maintenance and replacement.
[0163] According to some embodiments of the present invention, such as Figures 34-37 As shown, the nozzle assembly 70 may further include a guide rod 75, which can be connected to the nozzle mounting base 73, allowing the guide rod 75 to be fixed within the spray chamber 711. The guide rod 75 is slidably connected to the adjusting plate 72, and the nozzle elastic element 74 is sleeved on the guide rod 75. When the adjusting plate 72 moves within the spray chamber 711, the guide rod 75 provides good guidance for the adjusting plate 72 and the nozzle elastic element 74, making the movement of the adjusting plate 72 more reliable and ensuring the smooth movement of the adjusting plate 72.
[0164] In some embodiments, the guide rod 75 and the nozzle mounting base 73 can be connected by threads to ensure a reliable connection and facilitate assembly and disassembly, making installation more convenient.
[0165] In some embodiments, such as Figures 34-37 As shown, the end of the guide rod 75 furthest from the nozzle mounting base 73 (e.g.) Figure 36 The left end shown has a limiting member 751, which can be located on the side of the adjusting plate 72 away from the nozzle mounting base 73 (e.g. Figure 36 As shown on the left), the limiting member 751 can effectively limit the adjustment plate 72, preventing the adjustment plate 72 from detaching from the guide rod 75, ensuring the reliable movement of the adjustment plate 72, and guaranteeing the normal use of the nozzle assembly 70.
[0166] In some embodiments, such as Figures 35-37As shown, the adjusting plate 72 may be provided with an adjusting plate connecting hole 722. A blocking part 723 may be provided at the end of the adjusting plate connecting hole 722 away from the mounting base 73. The guide rod 75 passes through the adjusting plate connecting hole 722. The nozzle elastic element 74 is sleeved on the guide rod 75. One end of the guide rod 75 is connected to the nozzle mounting base 73. The nozzle elastic element 74 is located inside the adjusting plate connecting hole 722, and the nozzle elastic element 74 can be located between the adjusting plate 72 and the nozzle mounting base 73 under the blocking action of the blocking part 723.
[0167] When the force on the adjusting plate 72 is greater than the elastic force of the nozzle elastic element 74, the nozzle elastic element 74 can be compressed, causing the adjusting plate 72 to move toward the second position. The outer wall of the adjusting plate 72 is spaced apart from the inner wall of the spray chamber 711, which can achieve a larger spray range of the nozzle assembly 70. When the force on the adjusting plate 72 is less than the elastic force of the nozzle elastic element 74, the nozzle elastic element 74 undergoes elastic deformation, and the adjusting plate 72 can move toward the first position under the drive of the force of the nozzle elastic element 74. The outer wall of the adjusting plate 72 fits against the inner wall of the spray chamber 711, which can achieve a smaller spray range of the nozzle assembly 70. Moreover, the limiting member 751 can cooperate with the blocking part 723 to prevent the adjusting plate 72 from falling off the guide rod 75.
[0168] In some embodiments of the disinfection device 100 including the pressurization component 80, the wind speed of the fan 82 can be controlled according to the actual situation. Thus, by controlling the wind speed of the fan 82, the position of the regulating plate 72 can be controlled, making the control more convenient and reliable.
[0169] For example, in some embodiments, such as Figure 36 As shown, when small-scale disinfection is required, the wind speed of the fan 82 can be controlled to reduce the wind speed of the fan 82, so that the force on the adjusting plate 72 is less than the elastic force of the nozzle elastic element 74. At this time, the nozzle elastic element 74 undergoes elastic deformation, and the adjusting plate 72 can move towards the first position under the drive of the force of the nozzle elastic element 74. The outer wall of the adjusting plate 72 fits against the inner wall of the spray chamber 711, which can achieve a smaller spray range of the nozzle assembly 70. When large-scale disinfection is required, the wind speed of the fan 82 can be controlled to increase the wind speed of the fan 82, so that the force on the adjusting plate 72 is greater than the elastic force of the nozzle elastic element 74. At this time, the adjusting plate 72 can compress the nozzle elastic element 74, and the adjusting plate 72 can move towards the second position under the propulsion of the gas. The outer wall of the adjusting plate 72 is separated from the inner wall of the spray chamber 711, which can achieve a larger spray range of the nozzle assembly 70. Therefore, by controlling the wind speed of the fan 82, the spray range of the nozzle assembly 70 can be controlled, thus avoiding gas waste while meeting actual needs.
[0170] In some embodiments of the present invention, such as Figure 2, Figure 33 and Figure 37 As shown, the outer wall of the nozzle 71 may have a mounting lug 716. The nozzle assembly 70 can be fixed to other structures by the mounting lug 716, which makes it easier to install and fix the nozzle assembly 70 and makes the nozzle assembly 70 more convenient to use.
[0171] In some embodiments, such as Figure 2 , Figures 33-37 As shown, the mounting lug 716 may be provided with a mounting through hole. Fasteners are inserted through the mounting through hole to facilitate the fixing of the mounting lug 716, thereby achieving the fixing of the nozzle 71.
[0172] In some embodiments, such as Figures 33-37 As shown, there can be two mounting lugs 716. The two mounting lugs 716 can be located on opposite sides of the outer wall of the nozzle 71, which facilitates fixing the nozzle 71 from both sides of the nozzle 71, ensuring reliable fixing and preventing displacement.
[0173] The following describes in detail a disinfection device 100 according to a specific embodiment of the present invention with reference to the accompanying drawings. It should be understood that the following description is merely illustrative and should not be construed as limiting the invention.
[0174] Reference Figures 6-8 As shown, the disinfection device 100 may include a water storage box 10, an atomizing component 20, a preparation component 30, a water tank 50, a delivery pipe 60, a nozzle assembly 70, and a pressurizing component 80.
[0175] Among them, such as Figure 23 and Figure 24 As shown, the water storage box 10 has a water inlet 11, a top column 111 inside the water inlet 11, an atomizing mesh 12 inside the water storage box 10, and an atomizing port 131. The atomizing assembly 20 includes an atomizing plate 21 and an atomizing plate mounting base 22. The atomizing mesh 12 is located on the upper side of the atomizing plate 21. The height of the edge of the atomizing plate 21 is greater than the height of the center of the atomizing plate 21. The center of the atomizing plate is opposite to the atomizing port 131. The atomizing plate mounting base 22 is located on the lower side of the atomizing plate 21. The atomizing plate mounting base 22 is connected to the water storage box 10, and a sealing gasket 23 is provided between the atomizing plate mounting base 22 and the water storage box 10.
[0176] Among them, such as Figures 13-17 As shown, the preparation component 30 includes a preparation shell 31 and an electrolysis component 32. The outer wall of the preparation shell 31 has a recess 313. In the direction from bottom to top, the recess 313 penetrates the preparation shell 31. The lower end of the recess 313 has a mounting plate 314. The electrolysis component 32 is disposed on the mounting plate 314.
[0177] The electrolysis component 32 may include a first conductor 41, a second conductor 42, a first electrode 43, and a second electrode 44. The first conductor 41 and the second conductor 42 may be arranged parallel to each other on the preparation shell 31. The preparation shell 31 may have a partition 312, which is disposed between the first conductor 41 and the second conductor 42 to separate them. The upper end of the first conductor 41 and the upper end of the second conductor 42 are electrically connected to the power supply device. The lower end of the first conductor 41 and the lower end of the second conductor 42 may extend into the water storage box 10. The first electrode 43 and the second electrode 44 are arranged opposite to each other. The first electrode 43 is connected to the lower end of the first conductor 41, and the second electrode 44 is connected to the lower end of the second conductor 42. The first electrode 43 and the second electrode 44 are stacked in the vertical direction.
[0178] The first electrode 43 is connected to the first conductor 41 by a fastener 46, and the second electrode 44 and the second conductor 42 are connected by a fastener 46. The first electrode 43 is located on the upper side and has a first clearance notch 431. The second electrode 44 has a second clearance notch 441. The second clearance notch 441 is opposite to the fastener 46, and the fastener 46 can pass through the first clearance notch 431 to connect with the second electrode 44.
[0179] The electrolysis component 32 also includes a fixing frame 45, which includes a first frame 451 and a second frame 452. Both the first frame 451 and the second frame 452 are formed into a ring. The first frame 451 and the second frame 452 are stacked in the vertical direction. The first frame 451 and the second frame 452 are connected to define an annular protective space 453. The outer edges of the first electrode 43 and the second electrode 44 can be located within the protective space 453.
[0180] Among them, such as Figures 10-12 As shown, the water tank 50 has a water outlet 51, and a connecting component 52 is provided at the water outlet 51. The connecting component 52 includes a fixing plate 521, a rubber stopper 523, a plunger 524, and a water tank elastic element 525. The fixing plate 521 blocks the water outlet 51, and the fixing plate 521 is provided with a water outlet hole 522. The rubber stopper 523 is located on the left side of the fixing plate 521. The plunger 524 is movably disposed on the fixing plate 521, and the left side of the plunger 524 is connected to the rubber stopper 523. The water tank elastic element 525 is located between the right end of the fixing plate 521 and the plunger 524.
[0181] When the outlet 51 is connected to the inlet 11, the top post 111 contacts the plunger 524. The top post 111 overcomes the force of the elastic element 525 of the water tank and drives the plunger 524 to move to the left, so that the outer periphery of the rubber stopper 523 and the inner wall of the outlet 51 can define the water outlet channel 53. The liquid in the water tank 50 can flow out from the outlet 51 through the water outlet channel 53 and flow into the water storage box 10 from the inlet 11.
[0182] Among them, such as Figures 30-32 As shown, the pressurization assembly 80 includes a pressurization housing 81 and a fan 82. The pressurization housing 81 is connected to the preparation housing 31. A baffle 813 is provided on the pressurization housing 81, which blocks the upper end of the recess 313. The fan 82 is mounted on the baffle 813, and its outlet 821 is located on the baffle 813, with the fan 82 situated within the recess 313. The pressurization housing 81 has an atomization discharge channel 811 and an atomization outlet 812. The atomization outlet 812 is located at the upper end of the pressurization housing 81 and can communicate with the atomization discharge channel 811, which in turn communicates with the atomization channel 311. The inner wall of the atomization discharge channel 811 has a guide surface 814 near the atomization outlet 812, which can be inclined towards the center of the atomization outlet 812 in an upward direction.
[0183] Among them, such as Figures 6-8 As shown, the lower end of the delivery pipe 60 can be connected to the atomization outlet 812, and the upper end of the delivery pipe 60 can be connected to the nozzle assembly 70.
[0184] Among them, such as Figures 33-37 As shown, the nozzle assembly 70 may include a nozzle 71, an adjusting plate 72, a nozzle mounting base 73, a nozzle elastic element 74, and a guide rod 75. The nozzle 71 has a spray chamber 711, a spray inlet 712, and a spray outlet 713, with the spray inlet 712 and spray outlet 713 communicating with the spray chamber 711. From left to right, the spray chamber 711 may have a first segment 714 and a second segment 715 connected sequentially. The cross-sectional area of the first segment 714 remains constant, while the cross-sectional area of the second segment 715 gradually increases, with the minimum cross-sectional area of the second segment 715 equal to the cross-sectional area of the first segment 714. The nozzle mounting base 73 is located at the spray outlet 713 and has eight spray clearance ports 731. The adjusting plate 72 has multiple through holes 721 and has a first position and a second position. The guide rod 75 can be connected to the nozzle mounting base 73, and the guide rod 75 is slidably connected to the adjusting plate 72. The nozzle elastic element 74 is sleeved on the guide rod 75 and is located between the adjusting plate 72 and the nozzle mounting base 73. The left end of the guide rod 75 has a limiting element 751, which is located on the left side of the adjusting plate 72.
[0185] When the disinfection device 100 is in use, the brine in the water tank 50 flows into the water storage box 10 through the outlet 51 and the inlet 11. The power supply device starts to work and energizes the first conductor 41 and the second conductor 42, so that the first electrode 43 and the second electrode 44 electrolyze the brine. The electrolyzed brine generates a sodium hypochlorite solution. The atomizing plate 21 can atomize the sodium hypochlorite solution. The atomized gas flows out from the atomization channel 311 and into the atomization discharge channel 811 under the blowing action of the fan 82. Then, it enters the delivery pipe 60 from the atomization outlet 812 from the atomization discharge channel 811 and is sprayed out through the nozzle assembly 70, which can disinfect and sterilize the air and objects.
[0186] Furthermore, by adjusting the wind speed of the fan 82, different spray ranges of the nozzle assembly 70 can be achieved. When small-area disinfection is required, the wind speed of the fan 82 can be controlled to reduce the wind speed, so that the force on the adjusting plate 72 is less than the elastic force of the nozzle elastic element 74. At this time, the adjusting plate 72 can move towards the first position under the force of the nozzle elastic element 74, and the outer wall of the adjusting plate 72 fits against the inner wall of the spray chamber 711, thus achieving a smaller spray range of the nozzle assembly 70. When large-area disinfection is required, the wind speed of the fan 82 can be controlled to increase the wind speed, so that the force on the adjusting plate 72 is greater than the elastic force of the nozzle elastic element 74. At this time, the adjusting plate 72 can move towards the second position under the propulsive force of the gas, the nozzle elastic element 74 is compressed, and the outer wall of the adjusting plate 72 is separated from the inner wall of the spray chamber 711, thus achieving a larger spray range of the nozzle assembly 70.
[0187] An air handling device 200 according to an embodiment of the present invention includes a housing 90, a sterilization device 100 and an air handling assembly, wherein the sterilization device 100 is a sterilization device 100 according to the above embodiment of the present invention, and the sterilization device 100 can sterilize and disinfect spaces and objects.
[0188] Specifically, such as Figures 1-5 As shown, the disinfection device 100 and the air handling unit can be housed within the casing 90. The casing 90 protects the disinfection device 100 and the air handling unit, preventing them from being exposed and damaged, and ensuring that the air handling device 200 has a good appearance. The casing 90 has a spray nozzle 91, which is connected to the atomizing channel 311. The gas in the atomizing channel 311 can be sprayed out through the spray nozzle 91, facilitating the disinfection of spaces or objects that require sterilization and disinfection, while preventing other structures from being exposed, thus providing good protection.
[0189] Furthermore, the air handling unit can be at least one of the purification unit, humidification unit, and fresh air unit, enabling the air handling device 200 to perform more functions. This achieves functional integration of the air handling device 200, avoids the cumbersome use of multiple devices with different functions, reduces the space occupied by multiple devices, and meets the different usage needs of users.
[0190] Since the disinfection device 100 according to the embodiments of the present invention has the above-mentioned beneficial technical effects, the air handling device 200 according to the embodiments of the present invention, with at least a portion of the atomizing plate 21 located in the water storage box 10 and the electrolysis component 32 extending into the water storage box 10, facilitates the atomization and electrolysis of the liquid in the water storage box 10, so that the gas flowing out from the atomization channel 311 can diffuse into the air, effectively sterilizing and disinfecting the air or objects, ensuring the health of users. Moreover, since the electrolysis and atomization of the liquid can be realized in the water storage box 10, it is beneficial to realize the miniaturization of the disinfection device 100, reduce the space occupied by the disinfection device 100, and reduce production costs.
[0191] According to some embodiments of the present invention, such as Figures 1-8 As shown, the disinfection device 100 also includes a delivery pipe 60 and a nozzle assembly 70. One end of the delivery pipe 60 is connected to the atomization channel 311, and the nozzle assembly 70 is connected to the other end of the delivery pipe 60, so that gas can flow from the atomization channel 311 into the delivery pipe 60, and then flow through the delivery pipe 60 into the nozzle assembly 70 and out to the outside. It can spray on spaces and objects that need to be disinfected, which is convenient for disinfecting viruses or bacteria.
[0192] In addition, such as Figures 1-3 As shown, the nozzle assembly 70 can be fixed inside the housing 90, and the nozzle assembly 70 is opposite to the spray port 91 and is connected to the spray port 91. The housing 90 can protect the nozzle assembly 70, and the nozzle assembly 70 can spray gas outward only through the spray port 91, avoiding the exposure of other structures, providing good protection, and ensuring a good appearance of the air handling device 200.
[0193] In some embodiments, such as Figure 1 , Figure 4 , Figure 5 , Figures 10-12 As shown, the disinfection device 100 also includes a water tank 50, which is connected to the water storage box 10. The water tank 50 can be used to replenish the water storage box 10 with liquid, meeting the long-term liquid requirements of the disinfection device 100. Furthermore, the location of the disinfection device 100 is not limited to areas adjacent to water supply equipment. In addition, the water tank 50 is detachably mounted on the housing 90, facilitating the addition of water, cleaning, and maintenance.
[0194] In some embodiments, such as Figure 1 , Figures 3-5 As shown, the housing 90 may include a base component 93, and the disinfection device 100 may be installed on the base component 93 to facilitate the placement of the disinfection device 100 and ensure that the disinfection device 100 is installed stably and is not prone to shaking.
[0195] In some embodiments of the present invention, such as Figure 1 , Figures 3-5 As shown, a set of casters 92 can be provided at the bottom of the housing 90, allowing the air handling unit 200 to be moved more easily and enabling large-scale disinfection and sterilization of air and objects. Simultaneously, the air handling unit 200 can be moved to the object or space requiring sterilization, achieving precise disinfection and sterilization of objects and spaces with better sterilization effects.
[0196] In some embodiments, the air handling unit 200 can move automatically indoors, can identify objects, and can be activated by the user's remote operation to disinfect and sterilize indoor air or objects. The air handling unit 200 is more convenient and intelligent to control, improving the user experience.
[0197] In some embodiments, the air handling unit 200 may include a detection device that can detect the space in which the air handling unit 200 is located. When an object or space requiring sterilization is detected, the air handling unit 200 can move into position to achieve precise sterilization. For example, the detection device may be a camera, radar, etc.
[0198] Other configurations and operations of the air handling device 200 and the disinfection device 100 according to embodiments of the present invention are known to those skilled in the art and will not be described in detail here.
[0199] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0200] In the description of this specification, the references to terms such as "embodiment," "specific embodiment," and "example" indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0201] Although embodiments of the invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A disinfection device, characterized in that, include: Water storage box; An atomizing component, the atomizing component being connected to the water storage box and including an atomizing plate, at least a portion of the atomizing plate being located within the water storage box; The preparation assembly includes a preparation shell and an electrolysis component. The preparation shell has an atomization channel communicating with the water storage box. The electrolysis component is disposed on the preparation shell and extends into the water storage box. The atomization component is located below the water storage box. The water storage box and the preparation shell are connected by a snap-fit connection or by fasteners, which facilitates disassembly.
2. The disinfection device according to claim 1, characterized in that, The electrolysis component includes: A first conductor and a second conductor are spaced apart, the first conductor and the second conductor are disposed on the preparation shell, one end of the first conductor and one end of the second conductor are adapted to be electrically connected to a power supply device, and the other end of the first conductor and the other end of the second conductor extend into the water storage box; A first electrode and a second electrode are used for electrolysis and are arranged opposite to each other, wherein the first electrode is connected to the other end of the first conductor and the second electrode is connected to the other end of the second conductor.
3. The disinfection device according to claim 2, characterized in that, The prepared housing has a partition disposed between the first conductor and the second conductor.
4. The disinfection device according to claim 2, characterized in that, The first conductor and the second conductor are parallel, and the first electrode and the second electrode are stacked in a direction perpendicular to the first conductor. The first electrode is located on the side of the second conductor closer to the preparation shell. The first electrode has a first clearance notch, and the second electrode has a second clearance notch. The second clearance notch is opposite to the connection position of the first electrode and the first conductor. The second conductor passes through the first clearance notch and connects to the second electrode.
5. The disinfection device according to claim 4, characterized in that, The electrolysis component further includes a fixing frame, the fixing frame comprising: A first frame and a second frame, both of which are formed in annular shape and arranged in the direction of the arrangement of the first electrode and the second electrode, are connected to define an annular protective space, and the outer edges of the first electrode and the second electrode are located within the protective space.
6. The disinfection device according to claim 1, characterized in that, Also includes: A water tank, adapted to communicate with the water storage box, for replenishing the water storage box with liquid.
7. The disinfection device according to claim 6, characterized in that, The water tank has an outlet, and the outlet has a connecting component. The water storage box has an inlet. When the outlet and the inlet are connected, the connecting component opens the outlet. When the outlet is disconnected from the inlet, the connecting component blocks the outlet.
8. The disinfection device according to claim 7, characterized in that, The inlet is equipped with a top column, and the connecting component includes: A fixing plate, which blocks the water outlet, and the fixing plate is provided with a water outlet hole; A rubber stopper, the rubber stopper being located on the side of the fixing plate near the center of the water tank; A plunger is movably mounted on the fixed plate, and one end of the plunger located on the fixed plate near the center of the water tank is connected to the rubber stopper. A water tank elastic element is connected between the fixed plate and the end of the plunger located on the side of the fixed plate away from the center of the water tank, so as to drive the plunger to move in a direction away from the center of the water tank. When the outlet is disconnected from the inlet, the rubber plug seals the outlet. When the outlet is connected to the inlet, the top post contacts the plunger and drives the plunger to move toward the center of the water tank. The outer periphery of the rubber plug and the inner wall of the outlet define the water outlet channel.
9. The disinfection device according to claim 6, characterized in that, Also includes: The disinfection shell, the water storage box, the atomizing component, and the preparation component are disposed inside the disinfection shell, and the water tank is detachably disposed on the disinfection shell.
10. The disinfection device according to claim 1, characterized in that, The water storage box is equipped with an atomizing net, which is located on the side of the atomizing plate facing the inside of the water storage box.
11. The disinfection device according to claim 10, characterized in that, The water storage box has a groove on its inner wall, an atomizing port on the bottom wall of the groove, an atomizing plate at the atomizing port, and an atomizing mesh at the opening of the groove to seal the opening of the groove.
12. The disinfection device according to claim 11, characterized in that, The groove includes a first groove on the inner wall of the water storage box and a second groove on the bottom wall of the first groove. The atomizing port is located on the bottom wall of the second groove, and the atomizing mesh is located in the first groove.
13. The disinfection device according to claim 12, characterized in that, In the direction from the first groove to the second groove, the inner wall of the second groove is inclined toward the center of the second groove.
14. The disinfection device according to claim 1, characterized in that, The atomizing assembly further includes an atomizing plate mounting base, the atomizing plate is disposed on the atomizing plate mounting base, the atomizing plate mounting base is located on the side of the atomizing plate away from the center of the water storage box, the atomizing plate mounting base is connected to the water storage box and a sealing gasket is provided between the atomizing plate mounting base and the water storage box.
15. The disinfection device according to claim 14, characterized in that, The water storage box has an atomizing port, the height of the edge of the atomizing plate is greater than the height of the center of the atomizing plate, the center is opposite to the atomizing port, and the outer wall of the water storage box is provided with an installation groove for accommodating the edge and the sealing gasket.
16. The disinfection device according to claim 1, characterized in that, Also includes: A delivery pipe, one end of which is connected to the atomizing channel; A nozzle assembly, which is connected to the other end of the delivery pipe.
17. The disinfection device according to claim 16, characterized in that, It also includes a booster assembly, which comprises: A pressurized housing is connected to the preparation housing. The pressurized housing has an atomization discharge channel and an atomization outlet communicating with the atomization discharge channel. The atomization discharge channel is connected to the atomization channel, and the delivery pipe is connected to the atomization outlet. A fan is mounted on the pressurization housing and is used to blow the gas in the atomization discharge channel toward the atomization outlet.
18. The disinfection device according to claim 17, characterized in that, The outer wall of the preparation shell has a recessed portion. In the direction from the water storage box to the pressurization shell, the recessed portion penetrates the preparation shell. The end of the recessed portion near the water storage box has a mounting plate. The electrolysis component is disposed on the mounting plate. The pressurization shell is provided with a baffle plate. The baffle plate is used to block the end of the recessed portion near the pressurization shell. The fan is disposed on the baffle plate and located in the recessed portion. The air outlet of the fan is disposed on the baffle plate.
19. The disinfection device according to claim 17, characterized in that, The atomization outlet is located at the end of the pressurizing housing away from the preparation housing, and the inner wall of the atomization discharge channel has a guide surface near the atomization outlet. In the direction from the preparation housing to the pressurizing housing, the guide surface is inclined toward the center of the atomization outlet.
20. An air handling device, characterized in that, include: chassis; The disinfection device according to any one of claims 1-19 is disposed inside the housing, and the housing has a spray port communicating with the atomizing channel; An air handling unit, wherein the air handling unit is disposed within the housing, and the air handling unit is at least one of a purification unit, a humidification unit, and a fresh air unit.
21. The air handling apparatus according to claim 20, characterized in that, The disinfection device also includes a delivery pipe and a nozzle assembly. One end of the delivery pipe is connected to the atomization channel, and the nozzle assembly is connected to the other end of the delivery pipe. The nozzle assembly is fixed inside the housing and is opposite to and connected to the spray nozzle.
22. The air handling apparatus according to claim 20, characterized in that, The disinfection device also includes a water tank, which is adapted to communicate with the water storage box and is used to replenish the water storage box with liquid. The water tank is detachably mounted on the housing.
23. The air handling apparatus according to claim 20, characterized in that, The casing is equipped with rollers at the bottom.
Citation Information
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