Atomizer air duct assembly and disinfection mechanism thereof

Through the disinfection mechanism combining the ozone gas flow tube and the hot air flow tube and the drive mechanism scraper structure, the incomplete disinfection and humidity of the atomizer air duct assembly are solved, and effective bacterial killing and rapid drying are achieved.

CN120267872AInactive Publication Date: 2025-07-08SHENZHEN IMDK MEDICAL TECH CO LTD
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Patent Information

Application Number
CN202510752793.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-06
Publication Date
2025-07-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The atomizer air duct assembly is prone to breeding bacteria and viruses during use. The existing disinfection methods cannot completely eliminate the microbial breeding environment, and the air duct is humid and not conducive to drying after disinfection.

Method used

A disinfection mechanism is used to combine the ozone gas flow tube and the hot air flow tube. After disinfection of the ozone gas, it is switched to hot air drying. The drive mechanism is used to drive the scraper to remove the water droplets on the inner wall of the air duct to achieve comprehensive disinfection and drying.

Benefits of technology

Effectively kill bacteria in air duct components, shorten drying time, destroy the microbial breeding environment, and ensure the cleanliness and safety of air duct components.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of atomizer disinfection, in particular to an atomizer air duct assembly and a disinfection mechanism thereof.The atomizer air duct assembly comprises a base, a shell and an air duct pipe and further comprises a middle pipe rotationally arranged in the air duct pipe, and the lower end of the middle pipe communicates with a flow collecting box; the driving mechanism is arranged on the flow collecting box and comprises a driving piece and a plugging piece; the jet flow mechanism is arranged on the middle pipe and comprises an air outlet piece, a turbulent flow piece and a scraping plate; the ozone airflow pipe and the hot air airflow pipe are communicated with the two ends of the flow collecting box respectively, by arranging a jet flow mechanism, ozone gas enters the flow collecting box through the ozone airflow pipe, enters the middle pipe through the connecting pipe and is finally jetted out from the air outlet head, and when the gas passes through the middle pipe, the rotating piece is driven to rotate, so that the ozone gas flows into the flow collecting box; the rotating sheet drives the second rotating column to rotate so as to drive the flapping plate to rotate, so that the ozone gas is further dispersed, comprehensive disinfection of the interior of the air duct pipe is realized, and bacteria bred in the air duct assembly can be effectively killed.
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Description

Technical Field

[0001] The present invention relates to the technical field of atomizer disinfection, and particularly to an atomizer air duct assembly and its disinfection mechanism. Background Art

[0002] As a device widely used in the fields of medical treatment, beauty, etc., an atomizer converts a liquid into a misty substance of tiny particles for human inhalation or other related operations. In the medical field, it is commonly used for the treatment of respiratory diseases. Patients inhale the atomized drug particles, enabling the drug to act directly on the respiratory tract and lungs, improving the curative effect; in the beauty field, skin care essence and the like can be atomized to facilitate skin absorption and improve the skin condition.

[0003] However, during use, the air duct assembly is prone to breeding bacteria, viruses and other microorganisms. The residual liquid in the air duct provides a living environment for the microorganisms. When the atomizer is used subsequently, these microorganisms will be inhaled by the human body together with the atomized substance, which may cause health problems such as respiratory infections, seriously affecting the health of users. At the same time, in the prior art, the air duct assembly can be disinfected with ozone or ultraviolet rays, but the air duct is still wet after disinfection, which is not conducive to completely eliminating the environment for microorganism breeding. Summary of the Invention

[0004] The purpose of the present invention is to provide an atomizer air duct assembly and its disinfection mechanism to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solution: An atomizer air duct assembly includes a base, a housing and an air duct pipe, and further includes: A middle pipe rotatably arranged inside the air duct pipe, and a flow collecting box is connected and arranged at its lower end; A driving mechanism arranged on the flow collecting box, including a driving member and a blocking member; A jet flow mechanism arranged on the middle pipe, including an air outlet member, a flow disturbing member and a scraping plate; An ozone air flow pipe and a hot air flow pipe are respectively connected to both ends of the flow collecting box, wherein: When disinfecting the inside of the air duct pipe, the ozone air flow pipe is opened and the hot air flow pipe is closed. Ozone gas is ejected through the air outlet member and dispersed by the flow disturbing member to achieve comprehensive disinfection; after disinfection is completed, the driving member drives the blocking member to switch to block the ozone air flow pipe and open the hot air flow pipe, and at the same time drives the middle pipe to rotate to drive the scraping plate to scrape off the water droplets on the inner wall of the air duct pipe, and the hot air is ejected through the air outlet structure to dry the air duct pipe.

[0006] Preferably, the blocking member includes a sliding support plate slidably connected inside the flow collecting box, and a moving connecting plate is fixedly installed on the sliding support plate.

[0007] Preferably, the two ends of the movable connecting plate are respectively fixedly connected with a first plugging cone and a second plugging cone. The first plugging cone is used for plugging the ozone air flow pipe, and the second plugging cone is used for sealing the end of the hot air air flow pipe.

[0008] Preferably, the driving member includes an annular gear fixedly installed on the middle pipe. A connecting gear is meshed with the annular gear. The lower end of the connecting gear is fixedly connected with a connecting rotating rod. The connecting rotating rod is rotatably connected to the flow collecting box. The lower end of the connecting rotating rod is fixedly connected with a first bevel gear. A second bevel gear is meshed with the first bevel gear.

[0009] Preferably, one end of the second bevel gear is fixedly connected with a first rotating column. A driving gear is fixedly connected to the first rotating column. A supporting vertical plate is rotatably connected to the first rotating column. The supporting vertical plate is fixedly installed on the inner top of the flow collecting box. The driving gear is meshed with a vertical toothed plate. A movable connecting plate is fixedly connected to the vertical toothed plate. A limiting sliding rod is slidably connected inside the movable connecting plate. The limiting sliding rod is fixedly installed on the inner top of the flow collecting box. A threaded rod is threadedly connected inside the movable connecting plate. A connecting short rod is fixedly connected to the movable connecting plate. A connecting long plate is rotatably connected to the connecting short rod. One end of the connecting long plate far away from the connecting short rod is rotatably connected to a connecting short column. The connecting short column is fixedly installed on the movable connecting plate.

[0010] Preferably, the air outlet member includes an air vent pipe communicated with the middle pipe. One end of the air vent pipe far away from the middle pipe is communicated with a split air flat pipe. A plurality of air outlet heads are communicated with the split air flat pipe. A scraper is fixedly connected to one end of the split air flat pipe. The scraper is attached to the inner wall of the air duct pipe.

[0011] Preferably, the flow disturbing member includes a second rotating column rotatably arranged on the middle pipe. A rotating piece is fixedly installed on the part of the second rotating column located inside the middle pipe. An agitating plate is fixedly installed on the part of the second rotating column located outside the middle pipe.

[0012] Preferably, a water collecting pipe is communicated with the bottom of the air duct pipe. A fog outlet pipe is communicated with the air duct pipe. A communicating pipe is communicated with the air duct pipe. One end of the communicating pipe is connected with an atomizing device. One end of the ozone air flow pipe far away from the flow collecting box is communicated with an air pump. The air pump is communicated with an ozone generator through an air inlet pipe. One end of the hot air air flow pipe far away from the flow collecting box is connected with a hot air blower.

[0013] Preferably, a connecting pipe is communicated with the flow collecting box. A rotary joint is installed on the connecting pipe. The upper end of the rotary joint is connected with the lower end of the middle pipe.

[0014] A disinfection mechanism of an atomizer air duct assembly includes the above-mentioned atomizer air duct assembly.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. By providing a jet mechanism, ozone gas enters the manifold box through the ozone gas flow pipe. The ozone gas enters the middle pipe through the connecting pipe and finally sprays out from the air outlet head. When the gas passes through the middle pipe, it drives the rotating piece to rotate. The rotating piece drives the second rotating column to rotate, and further drives the flapping plate to rotate, further dispersing the ozone gas, achieving comprehensive disinfection inside the air duct pipe, and effectively killing the bacteria growing in the air duct assembly.

[0016] 2. By providing a driving mechanism, after disinfection is completed, the driving mechanism is started. The threaded rod rotates to drive the moving connecting plate to slide down along the limit slide rod. Through the connecting long plate, the moving connecting plate is driven, so that the first sealing cone seals the ozone gas flow pipe, and at the same time, the second sealing cone disengages from the hot air flow pipe to open it, realizing the switching of the air flow channel. During this process, the moving connecting plate slides down to drive the vertical toothed plate to move, which can drive the annular gear to drive the middle pipe to rotate, and then drive the scraper to scrape off the water droplets on the inner wall of the air duct pipe, shortening the drying time. The hot air blown by the hot air blower enters through the hot air flow pipe, and the hot air flows in the middle pipe, driving the rotating piece, the second rotating column and the flapping plate to rotate, dispersing the hot air, accelerating the drying of the air duct pipe, and destroying the growth environment of microorganisms. BRIEF DESCRIPTION OF THE DRAWINGS Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0017] Figure 2 It is a schematic diagram of the air duct pipe structure of the present invention.

[0018] Figure 3 It is a schematic diagram of the manifold box structure of the present invention.

[0019] Figure 4 It is a schematic diagram of the structure at position A in FIG. 3 of the present invention.

[0020] Figure 5 It is a schematic diagram of the middle pipe structure of the present invention.

[0021] Figure 6 It is a schematic diagram of the connecting pipe structure of the present invention.

[0022] Figure 7 It is a schematic diagram of the planar structure of the driving mechanism of the present invention.

[0023] Figure 8 It is a schematic diagram of the three-dimensional structure of the driving mechanism of the present invention.

[0024] Figure 9 It is a schematic diagram of the partial structure of the driving mechanism of the present invention.

[0025] Figure 10 It is a schematic diagram of the jet mechanism structure of the present invention.

[0026] Figure 11 Schematic diagram of the internal structure of the middle tube of the present invention.

[0027] Figure 12 Schematic diagram of the structure of the rotating piece of the present invention.

[0028] Figure 13 Partial top view schematic diagram of the driving mechanism of the present invention.

[0029] In the figure: 1, base; 2, housing; 3, air duct pipe; 4, manifold box; 5, middle tube; 6, driving mechanism; 7, jet mechanism; 8, rotary joint; 9, atomization device; 10, ozone air flow pipe; 11, hot air flow pipe; 12, hot air blower; 13, air pump; 14, ozone generator; 31, connecting pipe; 32, fog outlet pipe; 33, water collecting pipe; 41, connecting tube; 60, driving motor; 61, annular gear; 62, connecting gear; 63, connecting rotating rod; 64, support frame; 65, first bevel gear; 66, second bevel gear; 67, first rotating column; 68, supporting vertical plate; 69, driving gear; 610, vertical toothed plate; 611, moving connecting plate; 612, limiting slide bar; 613, threaded rod; 616, connecting short rod; 617, connecting long plate; 618, connecting short column; 619, first plugging cone; 620, second plugging cone; 621, moving connecting plate; 622, sliding support plate; 71, ventilation pipe; 72, air distribution flat tube; 73, air outlet head; 74, scraper; 75, second rotating column; 76, rotating piece; 77, flapping plate. Specific embodiments

[0030] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0031] Please refer to Figures 1 to 13, the present invention provides a technical solution: an atomizer air duct assembly, which includes a base 1, a housing 2 and an air duct tube 3, and further includes: a middle tube 5 rotatably arranged inside the air duct tube 3, and a flow collector box 4 is connected and arranged at the lower end thereof; a driving mechanism 6 arranged on the flow collector box 4, including a driving member and a blocking member; a jet flow mechanism 7 arranged on the middle tube 5, including an air outlet member, a flow disturbing member and a scraping plate 74; an ozone air flow tube 10 and a hot air flow tube 11, respectively connected to both ends of the flow collector box 4, wherein: when disinfecting the inside of the air duct tube 3, the ozone air flow tube 10 is opened and the hot air flow tube 11 is closed, and ozone gas is ejected through the air outlet member and dispersed by the flow disturbing member to achieve comprehensive disinfection; after the disinfection is completed, the driving member drives the blocking member to switch to block the ozone air flow tube 10 and open the hot air flow tube 11, and at the same time drives the middle tube 5 to rotate to drive the scraping plate 74 to scrape off the water droplets on the inner wall of the air duct tube 3, and the hot air is ejected through the air outlet structure to dry the air duct tube 3. The ozone gas enters the flow collector box 4 through the ozone air flow tube 10, and the ozone gas enters the middle tube 5 through the connecting pipe 41 and is finally ejected from the air outlet head 73. When the gas passes through the middle tube 5, it drives the rotating piece 76 to rotate, and the rotating piece 76 drives the second rotating column 75 to rotate, thereby driving the flapping plate 77 to rotate, further dispersing the ozone gas, realizing comprehensive disinfection of the inside of the air duct tube 3, effectively killing the bacteria growing in the air duct assembly. By providing the driving mechanism 6, after the disinfection is completed, the driving mechanism 6 is started, the threaded rod 613 rotates to drive the moving connecting plate 611 to slide down along the limiting slide rod 612, drives the moving connecting plate 621 through the connecting long plate 617, so that the first blocking cone 619 blocks the ozone air flow tube 10, and at the same time the second blocking cone 620 disengages from the hot air flow tube 11 to open it, realizing the switching of the air flow channel. During this process, the moving connecting plate 611 slides down to drive the vertical toothed plate 610 to move, which can drive the annular gear 61 to drive the middle tube 5 to rotate, thereby driving the scraping plate 74 to scrape off the water droplets on the inner wall of the air duct tube 3, shortening the drying time. The hot air blown by the hot air blower 12 enters through the hot air flow tube 11, and the hot air flows in the middle tube 5, driving the rotating piece 76, the second rotating column 75 and the flapping plate 77 to rotate, dispersing the hot air and accelerating the drying of the air duct tube 3, destroying the growth environment of microorganisms.

[0032] As Figures 6 to 8As shown, the plugging member includes a sliding support plate 622 slidably connected inside the manifold box 4. A moving connecting plate 621 is fixedly installed on the sliding support plate 622. The two ends of the moving connecting plate 621 are respectively fixedly connected with a first plugging cone 619 and a second plugging cone 620. The first plugging cone 619 is used to plug the ozone air flow pipe 10, and the second plugging cone 620 is used to seal the end of the hot air flow pipe 11. By starting the driving motor 60, the driving motor 60 drives the threaded rod 613 to rotate. The threaded rod 613 is threadedly connected with the moving connecting plate 611. The rotation of the threaded rod 613 drives the moving connecting plate 611 to slide downward on the limit slide rod 612. When the moving connecting plate 611 moves downward, it drives the moving connecting plate 621 to move through the connecting long plate 617, realizing the plugging of the ozone air flow pipe 10 by the first plugging cone 619 and the separation of the second plugging cone 620 from the hot air flow pipe 11, thus opening the hot air flow pipe 11.

[0033] As Figures 6 to 9As shown, the driving member includes an annular gear 61 fixedly installed on the middle pipe 5. A connecting gear 62 is meshed with the annular gear 61. The lower end of the connecting gear 62 is fixedly connected with a connecting rotating rod 63. The connecting rotating rod 63 is rotatably connected with a support frame 64. The support frame 64 is fixedly installed on the flow collecting box 4. The output end of the driving motor 60 is fixedly connected with the upper end of a threaded rod 613. The connecting rotating rod 63 is rotatably connected on the flow collecting box 4. The lower end of the connecting rotating rod 63 is fixedly connected with a first bevel gear 65. A second bevel gear 66 is meshed with the first bevel gear 65. One end of the second bevel gear 66 is fixedly connected with a first rotating column 67. A driving gear 69 is fixedly connected on the first rotating column 67. A support vertical plate 68 is rotatably connected on the first rotating column 67. The support vertical plate 68 is fixedly installed on the inner top of the flow collecting box 4. The driving gear 69 is meshed with a vertical toothed plate 610. A moving connecting plate 611 is fixedly connected on the vertical toothed plate 610. A limiting sliding rod 612 is slidably connected inside the moving connecting plate 611. The limiting sliding rod 612 is fixedly installed on the inner top of the flow collecting box 4. A threaded rod 613 is threadedly connected inside the moving connecting plate 611. A connecting short rod 616 is fixedly connected on the moving connecting plate 611. A connecting long plate 617 is rotatably connected on the connecting short rod 616. One end of the connecting long plate 617 away from the connecting short rod 616 is rotatably connected with a connecting short column 618. The connecting short column 618 is fixedly installed on the moving connecting plate 621. During the downward movement of the moving connecting plate 611, the moving connecting plate 611 drives the vertical toothed plate 610 to move downward. The vertical toothed plate 610 is meshed with the driving gear 69. The vertical toothed plate 610 drives the driving gear 69 to rotate. The driving gear 69 drives the first rotating column 67 to rotate on the support vertical plate 68. The first rotating column 67 drives the second bevel gear 66 to rotate. The second bevel gear 66 is meshed with the first bevel gear 65. The second bevel gear 66 drives the first bevel gear 65 to rotate, thereby driving the connecting rotating rod 63 to rotate. The connecting rotating rod 63 drives the connecting gear 62 to rotate. The connecting gear 62 is meshed with the annular gear 61. The rotation of the connecting gear 62 can drive the annular gear 61 to rotate. The rotation of the annular gear 61 drives the middle pipe 5 to rotate. The middle pipe 5 drives the scraper 74 to rotate through the air vent pipe 71 and the air distribution flat pipe 72. The scraper 74 can scrape off the water droplets on the inner wall of the air duct pipe 3.

[0034] As Figures 10 to 12As shown in the figure, the air outlet component includes an air vent pipe 71 connected to the middle pipe 5 in a communicating manner. One end of the air vent pipe 71 far from the middle pipe 5 is connected to a flattened air distribution pipe 72 in a communicating manner. A plurality of air outlet nozzles 73 are connected to the flattened air distribution pipe 72. One end of the flattened air distribution pipe 72 is fixedly connected to a scraper 74, and the scraper 74 is attached to the inner wall of the air duct pipe 3. The flow disturbance component includes a second rotating column 75 rotatably arranged on the middle pipe 5. A rotating vane 76 is fixedly installed on the part of the second rotating column 75 located inside the middle pipe 5, and a flapping plate 77 is fixedly installed on the part of the second rotating column 75 located outside the middle pipe 5. The hot air enters the manifold 4 through the hot air flow pipe 11, enters the inside of the middle pipe 5, then enters the flattened air distribution pipe 72 through the air vent pipe 71, and finally sprays out from the air outlet nozzles 73. When the gas passes through the middle pipe 5, it drives the rotating vane 76 to rotate. The rotating vane 76 drives the second rotating column 75 to rotate, and further drives the flapping plate 77 to rotate, so as to further disperse the hot air.

[0035] As Figure 2 , Figure 5 , Figure 6 and Figure 8 shown, a water collecting pipe 33 is connected to the bottom of the air duct pipe 3 in a communicating manner. The end of the water collecting pipe 33 is threadedly connected with a plugging cover. An atomizing pipe 32 is connected to the air duct pipe 3 in a communicating manner. During actual use, during ozone disinfection, in order to prevent the overflow of ozone from polluting the environment, an activated carbon adsorption device in the prior art can be added to the atomizing pipe 32. A connecting pipe 31 is connected to the air duct pipe 3 in a communicating manner. One end of the connecting pipe 31 is connected to an atomizing device 9. One end of the ozone air flow pipe 10 far from the manifold 4 is connected to an air pump 13, and the air pump 13 is connected to an ozone generator 14 through an air inlet pipe. One end of the hot air flow pipe 11 far from the manifold 4 is connected to a hot air blower 12. Among them, the atomizing device 9, the hot air blower 12, the air pump 13 and the ozone generator 14 are all mature prior arts and will not be elaborated here. A connecting pipe 41 is connected to the manifold 4 in a communicating manner. A rotary joint 8 is installed on the connecting pipe 41, and the upper end of the rotary joint 8 is connected to the lower end of the middle pipe 5. The middle pipe 5 can rotate on the connecting pipe 41 through the rotary joint 8.

[0036] A disinfection mechanism for an atomizer air duct assembly includes the above-mentioned atomizer air duct assembly.

[0037] Working principle: During actual use, when disinfection of the interior of the air duct 3 is required, in the initial state, the ozone gas flow pipe 10 is in an open state, and the hot air gas flow pipe 11 is in a closed state. The air pump 13 and the ozone generator 14 are turned on. The air pump 13 allows the ozone gas generated in the ozone generator 14 to enter the manifold 4 through the ozone gas flow pipe 10. The ozone gas enters the middle pipe 5 through the connecting pipe 41, then enters the air distribution flat pipe 72 through the air vent pipe 71, and finally is ejected from the air outlet head 73. When the gas passes through the middle pipe 5, it drives the rotating piece 76 to rotate. The rotating piece 76 drives the second rotating column 75 to rotate, thereby driving the flapping plate 77 to rotate, further dispersing the ozone gas and achieving comprehensive disinfection of the interior of the air duct 3. After ozone disinfection, the air pump 13 and the ozone generator 14 are turned off. By starting the drive motor 60, the drive motor 60 drives the threaded rod 613 to rotate. The threaded rod 613 is threadedly connected to the moving connection plate 611. The rotation of the threaded rod 613 drives the moving connection plate 611 to slide downward on the limit slide rod 612. When the moving connection plate 611 moves downward, it drives the moving connection plate 621 to move through the connecting long plate 617, achieving the blocking of the ozone gas flow pipe 10 by the first blocking cone 619 and the separation of the second blocking cone 620 from the hot air gas flow pipe 11, realizing the opening of the hot air gas flow pipe 11. During the downward movement of the moving connection plate 611, the moving connection plate 611 drives the vertical toothed plate 610 to move downward. The vertical toothed plate 610 meshes with the drive gear 69. The vertical toothed plate 610 drives the drive gear 69 to rotate. The drive gear 69 drives the first rotating column 67 to rotate on the support vertical plate 68. The first rotating column 67 drives the second bevel gear 66 to rotate. The second bevel gear 66 meshes with the first bevel gear 65. The second bevel gear 66 drives the first bevel gear 65 to rotate, thereby driving the connecting rotating rod 63 to rotate. The connecting rotating rod 63 drives the connecting gear 62 to rotate. The connecting gear 62 meshes with the annular gear 61. The rotation of the connecting gear 62 can drive the annular gear 61 to rotate. The rotation of the annular gear 61 drives the middle pipe 5 to rotate. The middle pipe 5 drives the scraper 74 to rotate through the air vent pipe 71 and the air distribution flat pipe 72. The scraper 74 can scrape off the water droplets on the inner wall of the air duct 3, facilitating subsequent drying operations and saving drying time. Hot air is blown out by the hot air blower 12. The hot air enters the manifold 4 through the hot air gas flow pipe 11, enters the interior of the middle pipe 5, then enters the air distribution flat pipe 72 through the air vent pipe 71, and finally is ejected from the air outlet head 73. When the gas passes through the middle pipe 5, it drives the rotating piece 76 to rotate. The rotating piece 76 drives the second rotating column 75 to rotate, thereby driving the flapping plate 77 to rotate, further dispersing the hot air and further accelerating the drying of the interior of the air duct 3.

[0038] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will appreciate that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An atomizer air duct assembly, comprising a base, a housing and an air duct pipe, characterized in that, It further includes: A middle pipe, rotatably arranged inside the air duct pipe, and a flow collector box is connected and arranged at its lower end; A driving mechanism, arranged on the flow collector box, including a driving part and a plugging part; A jet flow mechanism, arranged on the middle pipe, including an air outlet part, a flow disturbing part and a scraper; An ozone air flow pipe and a hot air flow pipe, respectively connected to both ends of the flow collector box, where: When disinfecting the inside of the air duct pipe, the ozone air flow pipe is opened and the hot air flow pipe is closed, and ozone gas is ejected through the air outlet part and dispersed by the flow disturbing part to achieve comprehensive disinfection; after disinfection is completed, the driving part drives the plugging part to switch to block the ozone air flow pipe and open the hot air flow pipe, and at the same time drives the middle pipe to rotate to drive the scraper to scrape the water droplets on the inner wall of the air duct pipe, and the hot air is ejected through the air outlet structure to dry the air duct pipe.

2. The atomizer air duct assembly according to claim 1, wherein: The plugging part includes a sliding support plate slidably connected inside the flow collector box, and a moving connecting plate is fixedly installed on the sliding support plate.

3. The atomizer air duct assembly according to claim 2, characterized in that: Both ends of the moving connecting plate are respectively fixedly connected with a first plugging cone and a second plugging cone. The first plugging cone is used to plug the ozone air flow pipe, and the second plugging cone is used to seal the end of the hot air flow pipe.

4. The atomizer air duct assembly according to claim 3, characterized in that: The driving part includes an annular gear fixedly installed on the middle pipe, a connecting gear is meshed on the annular gear, and a connecting rotating rod is fixedly connected to the lower end of the connecting gear; The connecting rotating rod is rotatably connected to the flow collector box, a first bevel gear is fixedly connected to the lower end of the connecting rotating rod, and a second bevel gear is meshed on the first bevel gear.

5. The atomizer air duct assembly according to claim 4, characterized in that: One end of the second bevel gear is fixedly connected with a first rotating column, a driving gear is fixedly connected to the first rotating column, and a supporting vertical plate is rotatably connected to the first rotating column; The supporting vertical plate is fixedly installed on the inner top of the flow collector box. The driving gear is meshed with a vertical toothed plate, a moving connecting plate is fixedly connected to the vertical toothed plate, a limiting sliding rod is slidably connected inside the moving connecting plate, the limiting sliding rod is fixedly installed on the inner top of the flow collector box, and a threaded rod is threadedly connected inside the moving connecting plate; A connecting short rod is fixedly connected to the moving connecting plate, a connecting long plate is rotatably connected to the connecting short rod, a connecting short column is rotatably connected to the end of the connecting long plate far from the connecting short rod, and the connecting short column is fixedly installed on the moving connecting plate.

6. The atomizer air duct assembly according to claim 1, characterized in that: The air outlet part includes a ventilation pipe connected to the middle pipe, a split air flat pipe is connected to the end of the ventilation pipe far from the middle pipe, a plurality of air outlet heads are connected to the split air flat pipe, a scraper is fixedly connected to one end of the split air flat pipe, and the scraper is attached to the inner wall of the air duct pipe.

7. The atomizer air duct assembly according to claim 6, wherein: The flow disturbing part includes a second rotating column rotatably arranged on the middle pipe. A rotating piece is fixedly installed on the part of the second rotating column located inside the middle pipe, and a flapping plate is fixedly installed on the part of the second rotating column located outside the middle pipe.

8. The atomizer air duct assembly according to claim 7, characterized in that: A water collecting pipe is connected to the bottom of the air duct pipe, a fog outlet pipe is connected to the air duct pipe, and a connecting pipe is connected to the air duct pipe; One end of the connecting pipe is connected with an atomizing device, one end of the ozone air flow pipe far from the flow collector box is connected with an air pump, the air pump is connected to an ozone generator through an air inlet pipe, and one end of the hot air flow pipe far from the flow collector box is connected with a hot air blower.

9. The atomizer air duct assembly according to claim 8, characterized in that: A connecting pipe is connected to the current collector box, and a rotary joint is installed on the connecting pipe. The upper end of the rotary joint is connected to the lower end of the middle pipe.

10. A disinfection mechanism for an atomizer air duct assembly, characterized in that: It includes the atomizer air duct assembly according to any one of claims 1-9.