Aerosol disinfection machine

By optimizing the liquid supply and atomization design, and combining the air supply device and the baffle, the problems of unstable disinfectant concentration and large equipment size in aerosol sterilizers have been solved, achieving efficient and uniform disinfection effect and spatial adaptability.

CN224085729UActive Publication Date: 2026-04-07BEIJING ZHONGNONG YOUJIA BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-11
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing aerosol generators suffer from decreased disinfectant concentration and unstable disinfection effects during prolonged disinfection operations. They are also bulky, have low space utilization efficiency, and exhibit uneven aerosol generation and diffusion, resulting in disinfection dead zones.

Method used

An aerosol sterilizer was designed, which uses an air supply device and a mist hood to control the supply of liquid medicine by using atmospheric pressure, optimize the storage and use of liquid medicine, improve atomization efficiency by using air baffles and guide baffles, and use an eccentric body to control the angle of the guide baffles to ensure aerosol quality and diffusion uniformity.

Benefits of technology

It achieves stable and uniform disinfection results, reduces waste of disinfectant, has a compact size, is suitable for various spaces, disinfects without dead corners, and improves disinfection efficiency and coverage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of disinfection equipment, and discloses an aerosol disinfection machine which comprises a disinfection machine body, air supply devices are arranged on one side of the disinfection machine body, two air supply devices are symmetrically arranged relative to the center of the disinfection machine body, a fog outlet cover is arranged on the disinfection machine body, and the fog outlet cover is communicated with an inner cavity of the disinfection machine body. The mist outlet cover is semi-cylindrical and is provided with a round hole; through the arrangement of the liquid preparation water tank, the liquid preparation water tank adopts an embedding mode, the internal space of the equipment is ingeniously utilized, the liquid preparation water tank is arranged at the upper part of the working water tank, and air supply and aerosol filtering, leading-out and wrapping are carried out on two sides, so that the large volume of the liquid preparation water tank is ensured to realize long-time work of one-time dosing, and the overall volume of the equipment is minimized. According to the design, the function maximization is realized in a limited space, the space adaptability of the equipment is improved, the equipment is suitable for various space conditions, and the equipment can be flexibly placed and used no matter in a narrow indoor environment or in a large place.
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Description

TECHNICAL FIELD

[0001] The utility model relates to disinfection equipment technical field, concretely is an aerosol disinfection machine. BACKGROUND

[0002] In the field of modern health and environmental cleaning, disinfection is very important, and as an efficient disinfection equipment, the technical development of aerosol disinfection machine is concerned. At present, the demand for disinfection equipment in various public places, medical institutions, families and the like is growing, and the requirements for disinfection effect, operation convenience and safety are also increasing.

[0003] The existing aerosol generator has significant defects in working principle and structural design. From the working principle, most commonly used aerosol generators use water pumps to inject water and control the working water level through the overflow port height, and the disinfectant is in a circulating state. In this mode of operation, as the running time is prolonged, the concentration of disinfectant in the aerosol produced by atomization will gradually decrease. This is because during the circulation process, although the concentration of the new disinfectant is constant, the overall mixed disinfectant concentration changes with use, so that the concentration of the aerosol sprayed gradually decreases, which makes it difficult to maintain stable disinfection effect. In long-term disinfection operation, the disinfection ability is significantly weakened in the later period, and it is difficult to effectively kill various bacteria, viruses and other microorganisms, and it is difficult to meet the strict requirements of disinfection effect continuity and stability.

[0004] In terms of structural design, the existing aerosol generator has many unreasonable places. On the one hand, the space utilization efficiency is low, resulting in a large overall volume of the equipment and occupying too much space. On the other hand, in the generation and export of aerosol, the design of the existing equipment is not scientific enough, which makes the generated aerosol easy to gather and collide above the atomization plate, and then form water droplets falling, which seriously reduces the atomization efficiency and glue output efficiency. This directly affects the amount of aerosol generated and the diffusion range in the disinfection process, resulting in incomplete disinfection coverage and the existence of disinfection dead angle, and unable to achieve efficient three-dimensional disinfection.

[0005] Therefore, we propose an aerosol disinfection machine to solve the above problems. CONTENT OF THE UTILITY MODEL

[0006] (I) Technical problems solved

[0007] In view of the deficiencies of the prior art, the utility model provides an aerosol disinfection machine to solve the problems in the above background technology.

[0008] (II) Technical scheme

[0009] To achieve the above objectives, the present invention provides the following technical solution: an aerosol sterilizer, comprising a sterilizer body, an air supply device provided on one side of the sterilizer body, two air supply devices symmetrically arranged around the center of the sterilizer body, a mist outlet hood provided on the sterilizer body, the mist outlet hood being connected to the inner cavity of the sterilizer body, the mist outlet hood being configured as a semi-cylindrical shape and having a circular hole.

[0010] Preferably, a counterweight box is fixedly connected to one side of the disinfection unit, a liquid inlet is fixedly connected to the top of the counterweight box, a liquid preparation tank is embedded and fixedly connected inside the disinfection unit, an opening and closing door is provided on the side of the counterweight box away from the disinfection unit, the opening and closing door is connected to the counterweight box, and an operation module is provided on one side of the opening and closing door, the operation module is fixedly connected to the counterweight box.

[0011] Preferably, a working water tank is fixedly connected to the bottom of the disinfection machine body, and air baffles are provided on both sides of the working water tank. The end of the air baffle away from the working water tank is fixedly connected to the inner wall of the disinfection machine body. A water level control module is fixedly connected to the bottom of the solution preparation tank, and the end of the water level control module away from the solution preparation tank is connected to the working water tank.

[0012] Preferably, a U-shaped positioning plate is fixedly connected to the side of the liquid preparation tank away from the air supply device. An eccentric body is rotatably connected to the side of the U-shaped positioning plate away from the liquid preparation tank. One end of the eccentric body is rotatably connected to the center of the U-shaped positioning plate. A synchronization ring is rotatably connected to the end of the eccentric body away from the U-shaped positioning plate. A control rod is slidably connected inside the synchronization ring. Connecting blocks are fixedly connected to both ends of the control rod. A flow guide baffle is fixedly connected to the end of the connecting block away from the control rod. The side of the flow guide baffle near the connecting block is rotatably connected inside the U-shaped positioning plate.

[0013] Preferably, the counterweight box is connected to the inner cavity of the sterilizer, the liquid inlet is connected to the liquid preparation tank, the opening and closing door reveals the water level control valve, which is closed horizontally and open vertically, and the operation module consists of time control adjustment and a working switch.

[0014] Preferably, a generator is installed below the working water tank and is tightly connected thereto, all air baffles are tilted at a 45-degree angle toward the working water tank, the liquid preparation tank is located above the working water tank, and the water level control module includes a water level control valve and a flow pipe.

[0015] Preferably, two U-shaped positioning plates are provided, and the eccentric body is driven by a built-in power supply.

[0016] Beneficial effects

[0017] Compared with the prior art, this utility model provides an aerosol sterilizer with the following advantages:

[0018] 1. This utility model, through its design, brings the following benefits to the overall operation: It generates 10-micron aerosols from the disinfection unit, which have tiny particle sizes and large specific surface areas. These aerosols can remain suspended in the air for a long time and diffuse widely. With the combined action of the air supply device and the mist hood, they can be quickly and evenly distributed to every corner of the disinfection space, ensuring full contact with bacteria, viruses, and other microorganisms. Chlorine dioxide disinfectant has strong oxidizing properties, effectively destroying the cell structure and physiological functions of microorganisms. The combination of these two components achieves highly efficient three-dimensional disinfection of complex object surfaces, ensuring thorough disinfection without dead angles and resulting in significant disinfection effects.

[0019] 2. Through its design, this utility model can bring the following benefits to the overall operation: By tightly integrating the working water tank and the generator, the storage and use of the disinfectant solution are optimized. During the disinfection process, the consumption of the disinfectant solution can be precisely controlled, reducing the residue and waste of the disinfectant solution caused by unreasonable structure, improving the utilization rate of the disinfectant solution, reducing the cost of use, and avoiding unnecessary waste of resources while ensuring the disinfection effect.

[0020] 3. Through its design, this utility model can bring the following benefits to the overall operation: By setting up the solution preparation tank, which is embedded in the equipment, the internal space is cleverly utilized. It is placed above the working tank, and the air supply and aerosol filtration outlet are wrapped on both sides. This ensures that it has a large volume to enable long-term operation with one dosing, while minimizing the overall size of the equipment. This design maximizes the function within a limited space, improves the spatial adaptability of the equipment, and makes it suitable for various spatial conditions. Whether it is a small indoor environment or a large venue, it can be flexibly placed and used.

[0021] 4. This utility model, through its design, brings the following benefits to the overall operation: By setting up a water level control module, the water level is controlled by atmospheric pressure. When the liquid level is lower than the working water level, air enters the dispensing tank, causing the liquid to flow into the working water tank; when the working water level is reached, atmospheric pressure prevents the liquid from flowing in further. This method accurately controls the liquid level in the working water tank, ensuring a stable supply of liquid during the operation of the disinfection machine. The device is simple and environmentally friendly, less prone to failure, and reduces equipment instability caused by water level control issues, thus ensuring the continuity and stability of the disinfection work.

[0022] 5. This utility model, through its design, brings the following benefits to the overall operation: By setting up an air baffle, the air is blown horizontally from one side of the working water tank to the other side. The unique design of the air blowing down from the top and turning into a horizontal horizontal blow after passing through the 45° air baffle greatly improves atomization and gel dispensing efficiency. The horizontal blowing can quickly blow the generated aerosol away from the atomizing plate, reducing the accumulation and collision of aerosols above the atomizing plate, avoiding the formation of water droplets falling, and allowing more liquid medicine to be converted into aerosols, increasing the amount of aerosol generated per unit time, thereby improving disinfection efficiency and coverage.

[0023] 6. Through its design, this utility model can bring the following benefits to the overall operation: By using the symmetrical design of the air supply device and the guide baffle, the internal guide baffle can effectively filter out large particles of aerosol that do not meet the standards. The mist hood adopts a semi-cylindrical shape and has an appropriate number of round holes, which not only ensures the smooth discharge of aerosols, but also further screens and disperses them. The two work together to ensure that the quality of the discharged aerosols is stable and the particles are uniform, avoiding the impact of large particles on the disinfection effect. At the same time, it makes the aerosols more evenly distributed in the space, improving the consistency of the disinfection effect.

[0024] 7. This utility model, through its design, brings the following benefits to the overall operation: By controlling the eccentric body and coordinating with multiple structures, the guide baffle can be flexibly adjusted according to needs. In disinfection environments with high precision requirements, such as operating rooms and pharmaceutical workshops, adjusting the guide baffle to a suitable angle can more accurately filter out large, non-standard aerosol particles, ensuring uniform particle size of the discharged aerosols, improving disinfection effectiveness while avoiding contamination of sensitive environments by large impurities. Furthermore, it can guide aerosols around obstacles to cover hidden areas, reducing disinfection dead zones and achieving precise disinfection of complex environments. When focusing on disinfecting specific areas, adjusting the angle allows more qualified aerosols to be concentrated and sprayed onto the target area, improving local disinfection effectiveness, optimizing aerosol filtration and discharge effects, and ensuring that the disinfection machine is always in optimal working condition. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0026] Figure 2 This is an internal structural view of the disinfection machine of this utility model;

[0027] Figure 3 This is a cross-sectional front view of the disinfection machine body of this utility model;

[0028] Figure 4 This is a partial structural diagram of the present invention;

[0029] Figure 5 This is a partial structural view of the present invention from another angle.

[0030] In the picture:

[0031] 1. Disinfection unit; 2. Air supply device; 3. Mist hood; 4. Counterweight box; 5. Liquid filling port; 6. Liquid preparation tank; 7. Opening and closing door; 8. Operation module; 9. Working water tank; 10. Air baffle; 11. Water level control module; 12. U-shaped positioning plate; 13. Eccentric body; 14. Synchronization ring; 15. Control rod; 16. Connecting block; 17. Flow guide baffle. Detailed Implementation

[0032] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0033] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments.

[0034] Example

[0035] Please refer to Figures 1 to 5 As shown:

[0036] To address the problems mentioned in the technical solutions, this application provides an aerosol sterilizer, including a sterilizer body 1. An air supply device 2 is provided on one side of the sterilizer body 1. Two air supply devices 2 are symmetrically arranged around the center of the sterilizer body 1. A mist outlet 3 is provided on the sterilizer body 1. The mist outlet 3 is connected to the inner cavity of the sterilizer body 1. The mist outlet 3 is set in a semi-cylindrical shape and has a round hole.

[0037] A counterweight box 4 is fixedly connected to one side of the disinfection unit 1. The counterweight box 4 is connected to the inner cavity of the disinfection unit 1. A liquid inlet 5 is fixedly connected to the top of the counterweight box 4. A liquid preparation tank 6 is embedded and fixedly connected inside the disinfection unit 1. The liquid preparation tank 6 is embedded, and the air supply and aerosol filter outlet are wrapped around both sides of the liquid preparation tank 6 to make full use of space and maximize the volume of the liquid preparation tank 6. It can work for a long time after one addition of medicine. The liquid inlet 5 is connected to the liquid preparation tank 6. An opening and closing door 7 is set on the side of the counterweight box 4 away from the disinfection unit 1. The opening and closing door 7 is connected to the counterweight box 4. When the opening and closing door 7 is open, the water level control valve is visible. The horizontal position is closed and the vertical position is open. An operation module 8 is set on one side of the opening and closing door 7. The operation module 8 is fixedly connected to the counterweight box 4. The operation module 8 consists of time control adjustment and working switch.

[0038] A working water tank 9 is fixedly connected to the bottom of the disinfection unit 1. The working water tank 9 is mainly used to be tightly connected to the generator to ensure that the volume of the working water tank 9 is minimized and to reduce the waste of the disinfectant solution. The generator is set below the working water tank 9 and is tightly connected to it. Air baffles 10 are set on both sides of the working water tank 9. The end of the air baffle 10 away from the working water tank 9 is fixedly connected to the inner wall of the disinfection unit 1. The air baffle 10 is mainly used to guide the air flowing in the air supply device 2 so that it blows horizontally. The air baffles 10 are all tilted at 45 degrees towards the working water tank 9. A water level control module 11 is fixedly connected to the bottom of the solution preparation tank 6. The water level control module 11 includes a water level control valve and a flow pipe. The end of the water level control module 11 away from the solution preparation tank 6 is connected to the working water tank 9. The solution preparation tank 6 is located above the working water tank 9.

[0039] A U-shaped positioning plate 12 is fixedly connected to the side of the liquid preparation tank 6 away from the air supply device 2. There are two U-shaped positioning plates 12. An eccentric body 13 is rotatably connected to the side of the U-shaped positioning plate 12 away from the liquid preparation tank 6. The eccentric body 13 is driven by a built-in power supply. One end of the eccentric body 13 is rotatably connected to the center of the U-shaped positioning plate 12. A synchronization ring 14 is rotatably connected to the end of the eccentric body 13 away from the U-shaped positioning plate 12. A control rod 15 is slidably connected inside the synchronization ring 14. Both ends of the control rod 15 are fixedly connected to connecting blocks 16. A flow guide baffle 17 is fixedly connected to the end of the connecting block 16 away from the control rod 15. The flow guide baffle 17 is mainly used to filter out non-standard large particulate aerosols. The side of the flow guide baffle 17 near the connecting block 16 is rotatably connected inside the U-shaped positioning plate 12.

[0040] Working principle:

[0041] When using the disinfection unit, close the water level control valve in the water level control module 11. Add clean water at a minimum of 0.6L and a maximum of 4.8L through the inlet 5, using 15 grams of 1g / tablet chlorine dioxide aerosol tablets per liter of water. Let it dissolve in about one minute, then wait about one minute for it to fully dissolve. After the tablets are completely dissolved, tighten the cap of the inlet 5 to complete the solution preparation. At this time, the solution preparation tank 6 is ready. It is embedded in the disinfection unit 1 and fits tightly with the surrounding components, making full use of space and maximizing its own volume. One addition can meet the needs of long-term operation. This process ensures that the concentration of disinfectant meets the disinfection requirements by precisely controlling the amount of water and the amount of disinfectant added, providing a stable and effective disinfection medium for subsequent disinfection operations.

[0042] Next, open the water level control valve inside the water level control module 11, connect the power supply, and operate the working switch through the operation module 8. The water level control module 11 inside the disinfection machine 1 utilizes gravity. When the liquid level is below the working water level, air enters the solution preparation tank 6 through the water pipe in the water level control module 11. At this time, the solution flows into the working water tank 9 under gravity. When the working water level is reached, air cannot enter the solution preparation tank 6, and atmospheric pressure automatically controls the solution to stop flowing into the working water tank 9, precisely maintaining a stable working water level. The solution preparation tank 6 is embedded in the upper part of the working water tank 9. The liquid flows into the working water tank 9 by gravity, reducing the need for additional power devices. This is both environmentally friendly and ensures a continuous and stable supply of liquid medicine to the working water tank 9. The air supply device 2 causes the airflow to blow horizontally from one side of the working water tank 9 closest to the air supply device 2 to the other side. The air blows down from the top and then turns into a horizontal horizontal flow after encountering the air baffle 10 set at a 45° angle, achieving a horizontal blowing effect. Then, after encountering another air baffle 10 set at a 45° angle on the other side of the working water tank 9, it blows upward horizontally. This horizontal blowing method can quickly blow away the aerosol generated in the working water tank 9, effectively reducing the accumulation of aerosols above the atomizing plate and the formation of water droplets. The atomization efficiency is significantly improved, allowing the liquid in the working water tank 9 to be efficiently converted into 110-micron aerosols for disinfection. After the aerosols are formed, they are discharged through the guide baffle 17. The guide baffle 17 and the air supply device 2 are symmetrically designed to filter out large particles of aerosol that do not meet the standards, ensuring the quality of the discharged aerosols. During the filtration of large particles of aerosol, the tilt angle of the guide baffle 17 can be adjusted as needed. The eccentric body 13 is started by the built-in power supply, driving it to rotate clockwise. During the rotation of the eccentric body 13, the other eccentric body is driven to rotate clockwise. The synchronizing ring 14 connected at the eccentric end rotates in the forward direction with the connection between the eccentric body 13 and the U-shaped positioning plate 12 as the center. During the rotation of the synchronizing ring 14, it drives the connecting block 16, which is slidably connected therein, to swing up and down with the connection between the guide baffle 17 and the U-shaped positioning plate 12 as the axis. Then, through the connection between the control rod 15 and the connecting block 16 and the guide baffle 17, when the control rod 15 swings, the guide baffle 17 swings up and down synchronously with the connection between the connecting block 16 as the axis, thereby adjusting the tilt angle of the guide baffle 17 and performing filtration of large particulate aerosols as required.

[0043] Finally, the aerosol is discharged through a mist hood 3, which is semi-cylindrical in shape and has an appropriate number of round holes. The design of the mist hood 3 not only ensures the quality of the aerosol but also makes the appearance more beautiful. It also allows the aerosol to be evenly distributed in the disinfection space, achieving efficient three-dimensional disinfection of complex object surfaces.

[0044] Furthermore, the timer is adjusted according to the volume of the disinfection space, setting a standard of 3 minutes per 10 cubic meters. For example, if the disinfection space volume is 20 cubic meters, the timer is set for 6 minutes; if it is 50 cubic meters, the timer is set for 15 minutes. During the set time, the disinfection machine works continuously, generating 110-micron aerosols that carry highly efficient, safe, and environmentally friendly chlorine dioxide disinfectant. This aerosol diffuses widely within the disinfection space with the help of airflow, making full contact with bacteria, viruses, and other microorganisms in the air and on complex object surfaces. Through the disinfection effect of chlorine dioxide, the physiological structure of the microorganisms is destroyed, rendering them inactive, thus achieving highly efficient three-dimensional disinfection of complex object surfaces.

[0045] Finally, after the disinfection machine 1 stops, the disinfection space must be sealed for 20 minutes. During these 20 minutes, the disinfectant remaining in the air continues to work, further ensuring the disinfection effect, and performing secondary disinfection on microorganisms that have not fully come into contact with the disinfectant, minimizing the possibility of microbial survival and ensuring thorough disinfection.

[0046] The disinfection unit 1 generates 110-micron aerosols, characterized by their tiny particle size and large specific surface area, allowing them to remain suspended in the air for extended periods and diffuse widely. With the combined action of the air supply device 2 and the mist outlet 3, these aerosols are rapidly and evenly distributed throughout the disinfection space, ensuring thorough contact with bacteria, viruses, and other microorganisms. Chlorine dioxide disinfectant, with its strong oxidizing properties, effectively disrupts the cell structure and physiological functions of microorganisms. The combination of these two components achieves highly efficient, three-dimensional disinfection of complex object surfaces, ensuring thorough disinfection without blind spots and resulting in significant disinfection effects.

[0047] By tightly integrating the working water tank 9 with the generator, the storage and use of the disinfectant solution are optimized. During the disinfection process, the consumption of the disinfectant solution can be precisely controlled, reducing residue and waste caused by unreasonable structure, improving the utilization rate of the disinfectant solution, reducing operating costs, and avoiding unnecessary waste of resources while ensuring disinfection effectiveness.

[0048] By cleverly utilizing the internal space of the equipment through the embedded design of the solution preparation tank 6, positioned above the working tank 9, with the air supply and aerosol filtration outlet enclosed on both sides, the tank ensures a large capacity for long-term operation with a single dosing while minimizing the overall size of the equipment. This design maximizes functionality within a limited space, improving the equipment's spatial adaptability and making it suitable for various spatial conditions, whether in confined indoor environments or large venues, allowing for flexible placement and use.

[0049] Through the setting of the water level control module 11, the water level is controlled by atmospheric pressure. When the liquid level is lower than the working water level, air enters the dispensing tank 6, causing the liquid to flow into the working water tank 9; when the working water level is reached, atmospheric pressure prevents the liquid from flowing further. This method precisely controls the liquid level in the working water tank 9, ensuring a stable supply of liquid during the operation of the disinfection machine. Furthermore, the device is simple and environmentally friendly, less prone to malfunctions, and reduces equipment instability caused by water level control issues, ensuring the continuity and stability of disinfection work.

[0050] With the air baffle 10 in place, the airflow blows horizontally from one side of the working water tank 9 to the other. The unique design, where the air blows downwards from the top and then turns into a horizontal horizontal flow after passing through the 45° air baffle 10, greatly improves atomization and gel dispensing efficiency. This horizontal blowing quickly removes the generated aerosol from the atomizing plate, reducing aerosol accumulation and collisions above the atomizing plate, preventing water droplets from falling, and allowing more liquid medicine to be converted into aerosol. This increases the amount of aerosol generated per unit time, thereby improving disinfection efficiency and coverage.

[0051] Through the symmetrical design of the air supply device 2 and the guide baffle 17, the internal guide baffle 17 can effectively filter out large aerosol particles that do not meet the standards. The mist hood 3 adopts a semi-cylindrical shape with an appropriate number of round holes, which not only ensures the smooth discharge of aerosols but also further filters and disperses them. The two work together to ensure that the discharged aerosols are of stable quality and uniform in particle size, avoiding the impact of large particle impurities on the disinfection effect, while also making the aerosols more evenly distributed in space and improving the consistency of the disinfection effect.

[0052] Through the control of the eccentric body 13 and the coordinated arrangement of multiple structures, the flow guide baffle 17 can be flexibly adjusted according to needs. In disinfection environments with high precision requirements, such as operating rooms and pharmaceutical workshops, adjusting the flow guide baffle 17 to a suitable angle can more accurately filter out large particles of non-compliant aerosols, ensuring that the discharged aerosol particles are of uniform size, improving the disinfection effect while avoiding contamination of sensitive environments by large particles. Furthermore, it can guide aerosols around obstacles and cover hidden areas, reducing disinfection dead zones and achieving precise disinfection of complex environments. When focusing on disinfecting specific areas, adjusting the angle allows more qualified aerosols to be concentrated and sprayed onto the target area, improving the local disinfection effect, optimizing the filtration and discharge effect of aerosols, and ensuring that the disinfection machine is always in the best working condition.

[0053] Please refer to the above work process. Figures 1 to 5 .

[0054] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0055] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An aerosol sterilizer, comprising a sterilizer body (1), characterized in that: An air supply device (2) is provided on one side of the disinfection body (1). There are two air supply devices (2) symmetrically arranged around the center of the disinfection body (1). A mist hood (3) is provided on the disinfection body (1). The mist hood (3) is connected to the inner cavity of the disinfection body (1). The mist hood (3) is set in a semi-cylindrical shape and has a round hole.

2. The aerosol sterilizer according to claim 1, characterized in that: A counterweight box (4) is fixedly connected to one side of the disinfection body (1). A liquid inlet (5) is fixedly connected to the top of the counterweight box (4). A liquid preparation tank (6) is embedded and fixedly connected inside the disinfection body (1). An opening and closing door (7) is provided on the side of the counterweight box (4) away from the disinfection body (1). The opening and closing door (7) is connected to the counterweight box (4). An operation module (8) is provided on one side of the opening and closing door (7). The operation module (8) is fixedly connected to the counterweight box (4).

3. An aerosol sterilizer according to claim 2, characterized in that: The bottom of the disinfection body (1) is fixedly connected to a working water tank (9). Air baffles (10) are provided on both sides of the working water tank (9). The end of the air baffle (10) away from the working water tank (9) is fixedly connected to the inner wall of the disinfection body (1). The bottom of the liquid preparation tank (6) is fixedly connected to a water level control module (11). The end of the water level control module (11) away from the liquid preparation tank (6) is connected to the working water tank (9).

4. An aerosol sterilizer according to claim 2, characterized in that: A U-shaped positioning plate (12) is fixedly connected to the side of the liquid preparation tank (6) away from the air supply device (2). An eccentric body (13) is rotatably connected to the side of the U-shaped positioning plate (12) away from the liquid preparation tank (6). One end of the eccentric body (13) is rotatably connected to the center of the U-shaped positioning plate (12). A synchronization ring (14) is rotatably connected to the end of the eccentric body (13) away from the U-shaped positioning plate (12). A control rod (15) is slidably connected inside the synchronization ring (14). A connecting block (16) is fixedly connected to both ends of the control rod (15). A flow guide baffle (17) is fixedly connected to the end of the connecting block (16) away from the control rod (15). The side of the flow guide baffle (17) close to the connecting block (16) is rotatably connected inside the U-shaped positioning plate (12).

5. An aerosol sterilizer according to claim 2, characterized in that: The counterweight box (4) is connected to the inner cavity of the disinfection body (1), the liquid inlet (5) is connected to the liquid preparation tank (6), the opening and closing door (7) opens the visible water level control valve, which is closed horizontally and open vertically, and the operation module (8) consists of time control adjustment and working switch.

6. An aerosol sterilizer according to claim 3, characterized in that: The generator is located below the working water tank (9) and is tightly connected to it. The air baffles (10) are all tilted at a 45-degree angle toward the working water tank (9). The liquid preparation tank (6) is located above the working water tank (9). The water level control module (11) includes a water level control valve and a flow pipe.

7. An aerosol sterilizer according to claim 4, characterized in that: Two U-shaped positioning plates (12) are provided, and the eccentric body (13) is driven by a built-in power supply.