Material supplementing mechanism

By designing an automatic feeding mechanism, the problem of frequent oxygen cylinder replacement in vehicle-mounted air sterilizers was solved, realizing automatic feeding and sterilization of chlorine dioxide tablets, reducing the operational burden and extending the service life of the device.

CN121818983APending Publication Date: 2026-04-10ANHUI YITIAN TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-02-01
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing vehicle-mounted air sterilizers require frequent replacement of oxygen cylinders, which increases the operational burden and easily leads to wear and leakage of the device.

Method used

A feeding mechanism was designed, including an actuating ring and an embedded ring, which automatically feeds chlorine dioxide tablets by automatically actuating the consumable pack, reducing manual operation. It also uses ultrasonic atomizing plates and an aeration pump for disinfection, avoiding frequent replacement of oxygen cylinders.

Benefits of technology

The automatic replenishment function of chlorine dioxide tablets has been realized, which reduces the user's operating burden, extends the service life of the device, avoids wear and leakage at the oxygen cylinder connection, and expands the device's functions.

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Abstract

The invention discloses a material supplementing mechanism, and relates to the technical field of air disinfection machines, the material supplementing mechanism comprises a box body assembly, the box body assembly is internally provided with the material supplementing mechanism, the material supplementing mechanism is convenient to disassemble and assemble through a shifting ring and an embedded ring which are clamped and arranged on the material supplementing mechanism, so that a chlorine dioxide tablet consumable bag can be conveniently installed on the embedded ring, and the material supplementing mechanism is convenient to use. When the stirring ring is stirred by the feeding assembly for feeding, the embedded ring in the stirring ring also rotates along with the stirring ring, so that the chlorine dioxide tablets in the consumable bag can be conveyed to the feeding position, the automatic feeding function is achieved, the requirement for storing the chlorine dioxide tablet consumable bag is met, meanwhile, automatic feeding can be carried out when the chlorine dioxide tablet consumable bag is used again after one-time use is finished, and the feeding efficiency is improved. Therefore, after a chlorine dioxide tablet consumable bag is put into the device, materials can be automatically supplemented for subsequent multiple sterilization operations, the use function of the device is further expanded, and great convenience is provided for a user.
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Description

Technical Field

[0001] This invention relates to the field of air sterilizer technology, and more specifically to a feeding mechanism. Background Technology

[0002] With the improvement of people's living standards, cars have become an indispensable means of transportation in daily life. However, the interior environment of cars is prone to the growth of bacteria and viruses, posing a potential threat to the health of drivers and passengers. In order to solve this problem, in-car air sterilizers have emerged. An air sterilizer is a sterilization device, mainly used to eliminate pathogenic microorganisms in the air to achieve the purpose of sterilization and disinfection. Compared with air purifiers, air sterilizers focus more on sterilization and disinfection.

[0003] Existing vehicle-mounted air sterilizers typically generate ozone and then diffuse it into the air for sterilization. Such devices usually require the installation of a separate oxygen cylinder as a consumable to provide raw materials for ozone production. However, ozone production requires a large amount of oxygen, so the oxygen cylinder often needs to be replaced after each sterilization cycle. Frequent replacement not only increases the user's workload but also easily causes wear and aging at the connection between the device and the oxygen cylinder, leading to oxygen leakage. Summary of the Invention

[0004] In order to overcome the above-mentioned technical problems, the purpose of this invention is to provide a feeding mechanism.

[0005] The objective of this invention can be achieved through the following technical solutions:

[0006] A replenishment mechanism includes a housing assembly. The housing assembly houses the replenishment mechanism, which includes a material carrier platform. The top of the material carrier platform has a stepped groove. A through groove and a feeding groove are formed through the center of the stepped groove. A positioning magnet is located at the bottom of the material carrier platform. An actuating ring is rotatably connected to the inner outer ring of the stepped groove. Several sets of spaced-apart partitions are connected to the outer side of the actuating ring. Several sets of spaced-apart fixing grooves are formed along the inner edge of the actuating ring. An auxiliary magnet matching the positioning magnet is located at the bottom of the actuating ring. An embedded ring is internally engaged with the actuating ring. Several sets of spaced-apart receiving holes are formed through the top of the embedded ring for holding consumable packs. Several sets of clips and blocks matching the fixing grooves are connected to the outer edge of the embedded ring for engaging with the fixing grooves.

[0007] As a further aspect of the present invention: the housing assembly includes a water storage tank, the interior of which is divided by a partition into a reaction chamber for water storage, an atomization chamber, and a feeding chamber for storing a feeding mechanism. The atomization chamber is equipped with an ultrasonic atomizing plate, and the top of the feeding chamber is provided with a diffusion groove.

[0008] As a further aspect of the present invention: a blower box is connected to the top of the water storage tank, an exhaust groove is provided on the bottom wall of the blower box, a box cover is provided on the top of the blower box, a first side plate is connected to one side of the water storage tank, and a second side plate is connected to the back of the water storage tank.

[0009] As a further aspect of the present invention: an air inlet pipe is connected to one side of the blower box, and a centrifugal fan is connected to the input end of the air inlet pipe. The centrifugal fan is connected to one side of the water storage tank and is located between the water storage tank and the first side plate. An aeration pump is provided above the side of the water storage tank connected to the centrifugal fan.

[0010] As a further aspect of the present invention: the bottom of the water storage tank is connected to an air inlet pipe that is connected to the bottom of the reaction chamber, the input end of the air inlet pipe is connected to the output end of the aeration pump through a flexible hose, and the bottom of the water storage tank is connected to a water inlet pipe that is connected to the bottom of the reaction chamber and the atomizing chamber respectively.

[0011] As a further embodiment of the present invention: one end of the material carrier is connected to a connecting rod, and two sides of one end of the material carrier are rotatably connected to a collection filter cover, and one side of the collection filter cover is provided with a reserved groove that matches the connecting rod.

[0012] As a further aspect of the present invention: a feeding component is provided on the upper part of the inner side of the housing assembly. The feeding component includes a connector end for connecting an external motor. An eccentric shaft is connected to one edge of the connector end. A driven disk is connected to one end of the eccentric shaft. A protrusion is connected to the outer edge of the driven disk.

[0013] As a further aspect of the present invention: a driving shaft is connected to one side edge of the driven disc, and a return-shaped component is slidably arranged on the outer side of the driving shaft. The upper and lower ends of the return-shaped component are symmetrically connected with ejector pins that match the receiving holes.

[0014] The beneficial effects of this invention are:

[0015] This invention utilizes a feeding mechanism with a locking ring and an embedded ring for easy assembly and disassembly. This facilitates the installation of chlorine dioxide tablet consumable packs onto the embedded ring. When the feeding component moves the locking ring to feed the tablets, the embedded ring rotates accordingly, delivering the chlorine dioxide tablets from the consumable pack to the feeding position, thus achieving automatic feeding. This device not only stores chlorine dioxide tablet consumable packs but also automatically replenishes them when needed after a single use. Therefore, after inserting one chlorine dioxide tablet consumable pack, the device can automatically replenish it for subsequent sterilization operations, further expanding its functionality and providing great convenience to users. Attached Figure Description

[0016] The invention will now be further described with reference to the accompanying drawings.

[0017] Figure 1 This is a three-dimensional schematic diagram of the device in this invention;

[0018] Figure 2 This is an exploded view of the housing assembly in this invention;

[0019] Figure 3 This is a three-dimensional schematic diagram of the aeration pump in this invention;

[0020] Figure 4 This is a three-dimensional schematic diagram of the water inlet pipe in this invention;

[0021] Figure 5 This is a schematic cross-sectional view of the device in this invention;

[0022] Figure 6 This is a schematic diagram of the feeding mechanism and the feeding component transmission in this invention;

[0023] Figure 7 This is a three-dimensional schematic diagram of the feeding mechanism in this invention;

[0024] Figure 8 This is a three-dimensional schematic diagram of the feeding trough in this invention;

[0025] Figure 9 This is a three-dimensional schematic diagram of the positioning magnet in this invention;

[0026] Figure 10 This is a three-dimensional schematic diagram of the actuating ring in this invention;

[0027] Figure 11 This is a three-dimensional schematic diagram of the embedded ring in this invention;

[0028] Figure 12 This is a three-dimensional schematic diagram of the feeding component in this invention.

[0029] In the diagram: 1. Box assembly; 11. Water tank; 111. Reaction chamber; 112. Feeding hopper; 113. Atomizing chamber; 12. Blower box; 13. Box cover; 14. First side plate; 15. Second side plate; 16. Air inlet pipe; 17. Centrifugal fan; 18. Aeration pump; 19. Air inlet pipe; 120. Water inlet pipe; 2. Feeding mechanism; 21. Material loading platform; 22. Stepped trough; 23. Through trough; 24. Feeding trough 25. Positioning magnet; 26. Actuating ring; 27. Spacer plate; 28. Fixing groove; 29. ​​Auxiliary magnet; 210. Embedded ring; 211. Accommodating hole; 212. Clip and block; 213. Connecting rod; 214. Collection filter cover; 215. Reserved groove; 3. Feeding assembly; 31. Connector end; 32. Eccentric shaft; 33. Driven disc; 34. Protrusion; 35. Drive shaft; 36. Return part; 37. Ejector pin. Detailed Implementation

[0030] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0031] like Figure 1-12As shown, a feeding mechanism includes a housing assembly 1, which includes a water storage tank 11. The interior of the water storage tank 11 is divided by a partition into a reaction chamber 111 for water storage, an atomizing chamber 113, and a feeding chamber 112 for storing the feeding mechanism 2. The atomizing chamber 113 is equipped with an ultrasonic atomizing plate, which can atomize the water stored in the atomizing chamber 113. When the interior environment is relatively dry, the ultrasonic atomizing plate can be activated to humidify the interior environment, further expanding the functionality of the device. A diffusion groove is provided on the top of the feeding chamber 112. A blower box 12 is connected to the top of the water storage tank 11. An exhaust groove is provided on the bottom wall of the blower box 12. A cover 13 is provided on the top of the blower box 12. A first side plate 14 is connected to one side of the water storage tank 11, and a second side plate 15 is connected to the back of the water storage tank 11. An air inlet pipe 16 is connected to one side of the blower box 12. The input end of the device is connected to a centrifugal fan 17, which is connected to one side of the water storage tank 11 and located between the water storage tank 11 and the first side plate 14. The airflow generated by the centrifugal fan 17 is input into the blower box 12 through the air inlet pipe 16, which can help the gas diffuse. An aeration pump 18 is installed above the side of the water storage tank 11 connected to the centrifugal fan 17. The bottom of the water storage tank 11 is connected to the bottom of the reaction chamber 111 via a communicating air inlet pipe 19. The input end of the air inlet pipe 19 is connected to the output end of the aeration pump 18 via a hose. The connection between the aeration pump 18 and the air inlet pipe 19 can aerate the water stored inside the reaction chamber 111. The bottom of the water storage tank 11 is connected to the bottom of the reaction chamber 111 and the atomizing chamber 113 via communicating water inlet pipes 120. The water inlet pipes 120 can be connected to external pipes to supply water to the reaction chamber 111 and the atomizing chamber 113.

[0032] The housing assembly 1 is internally equipped with a feeding mechanism 2, which includes a loading platform 21. A stepped groove 22 is formed on the top of the loading platform 21, and a through groove 23 and a feeding groove 24 are formed through the center of the stepped groove 22. A positioning magnet 25 is provided at the bottom of the loading platform 21. A rotating ring 26 is rotatably connected to the inner outer ring of the stepped groove 22. The stepped groove 22 is used to install the rotating ring 26, providing stable support and ensuring its stability during rotation. Several sets of spacer plates 27 are connected to the outer side of the rotating ring 26. The spacer plates 27 contact the protrusions 34, thereby driving the rotating ring 26 to rotate by pressing the spacer plates 27. An embedded ring 210 is internally connected to the rotating ring 26. Several sets of spaced fixing grooves 28 are formed along the inner edge of the rotating ring 26. The bottom of the ring 26 is provided with an auxiliary magnet 29 that matches the positioning magnet 25. The positioning magnet 25 can attract the auxiliary magnet 29, thereby positioning the ring 26 when it is installed on the stepped groove 22. The ring 26 is internally locked and connected to an embedded ring 210. The top of the embedded ring 210 has several sets of spaced receiving holes 211. The receiving holes 211 are used to place a chlorine dioxide tablet consumable package that is sealed with aluminum foil on both sides and matches the shape of the embedded ring 210. The receiving holes 211 facilitate the dropping of chlorine dioxide tablets from the consumable package. The outer edge of the embedded ring 210 is connected to several sets of clips and blocks 212 that match the fixing groove 28. The clips and blocks 212 are used to engage with the fixing groove 28 to fix the embedded ring 210. Thus, the embedded ring 210 can move together with the ring 26.

[0033] One end of the loading platform 21 is connected to a connecting rod 213, and two sides of the loading platform 21 are rotatably connected to a collection filter cover 214. A pre-reserved groove 215 matching the connecting rod 213 is provided on one side of the collection filter cover 214. When the feeding mechanism 2 is installed inside the housing assembly 1, since the collection filter cover 214 is movably connected to the loading platform 21, it is perpendicular to the loading platform 21 under the action of gravity, and its bottom is completely submerged below the water surface of the reaction chamber 111. When the consumable package is pierced by the ejector pin 37... Fragments of aluminum foil on the consumable package may fall off. These fragments, along with the chlorine dioxide tablets, fall into the collection filter 214. This ensures the chlorine dioxide tablets dissolve properly while also collecting the aluminum foil fragments, preventing them from spreading into the reaction chamber 111 and causing contamination. When the feeding mechanism 2 needs to be removed, the side of the collection filter 214 relative to the reserved groove 215 is squeezed by the feeding chamber 112, gradually returning to a horizontal plane flush with the loading platform 21, facilitating removal.

[0034] A feeding assembly 3 is installed inside the upper part of the housing assembly 1. The feeding assembly 3 includes a connector end 31 for connecting an external motor. An eccentric shaft 32 is connected to one edge of the connector end 31. A driven plate 33 is connected to one end of the eccentric shaft 32. A protrusion 34 is connected to the outer edge of the driven plate 33. A drive shaft 35 is connected to one side edge of the driven plate 33. A return member 36 is slidably arranged on the outer side of the drive shaft 35. The upper and lower ends of the return member 36 are symmetrically connected to receiving holes. The matching ejector pin 37 is connected to an external motor via connector 31. The external motor drives the driven plate 33 to make a circular motion, which causes the protrusion 34 to move the actuating ring 26, the embedded ring 210 and the consumable pack to rotate a certain distance, transporting the new chlorine dioxide tablets in the consumable pack to the area below the ejector pin 37, thus achieving the purpose of automatic feeding. When the driven plate 33 rotates, the ejector pin 37 will move up and down, thereby puncturing the corresponding position of the consumable pack and causing the new chlorine dioxide tablets inside to fall out.

[0035] The working principle of this invention is as follows: When the device is in use, water is injected into the reaction chamber 111 and the atomizing chamber 113 through the water inlet pipe 120. The motor drives the connector end 31 to rotate, and the protrusion 34 on the driven plate 33 and the drive shaft 35 also move together. The protrusion 34 can move the actuating ring 26, so that the inner ring 210 and the consumable pack move together, so that a set of receiving holes 211 on the inner ring 210 are below the ejector pin 37. At this time, the drive shaft 35 drives the ejector pin 37 to move up and down, thereby puncturing the consumable pack through the receiving hole 211, so that the chlorine dioxide tablets fall into the collection filter cover 214 and are dissolved in water. The aeration pump 18 delivers gas to the reaction chamber 111 for aeration. The water containing chlorine dioxide evaporates under natural conditions to form chlorine dioxide gas. Then, the centrifugal fan 17 blows air into the blower box 12 through the air inlet pipe 16, thereby blowing out the gas containing chlorine dioxide, which can disinfect the air inside the vehicle.

[0036] The foregoing has provided a detailed description of one embodiment of the present invention, but this description is merely a preferred embodiment and should not be construed as limiting the scope of the invention. All equivalent variations and modifications made within the scope of the claims of this invention should still fall within the patent coverage of this invention.

Claims

1. A feeding mechanism, comprising a housing assembly (1); characterized in that: The housing assembly (1) is equipped with a feeding mechanism (2). The feeding mechanism (2) includes a loading platform (21). The top of the loading platform (21) is provided with a stepped groove (22). A through groove (23) and a feeding groove (24) are provided through the center of the stepped groove (22). A positioning magnet (25) is provided at the bottom of the loading platform (21). An actuating ring (26) is rotatably connected to the inner outer ring of the stepped groove (22). Several sets of spacer plates (27) are connected to the outer side of the actuating ring (26). The inner wall edge of the actuating ring (26) is provided with a... Several sets of spaced fixing slots (28) are provided. The bottom of the actuating ring (26) is provided with an auxiliary magnet (29) that matches the positioning magnet (25). An embedded ring (210) is connected inside the actuating ring (26). Several sets of spaced receiving holes (211) are provided through the top of the embedded ring (210). The receiving holes (211) are used to place consumable packs. Several sets of clips and blocks (212) that match the fixing slots (28) are connected to the outer edge of the embedded ring (210). The clips and blocks (212) are used to engage with the fixing slots (28).

2. The feeding mechanism according to claim 1, characterized in that, The housing assembly (1) includes a water storage tank (11). The interior of the water storage tank (11) is divided by a partition into a reaction chamber (111) for storing water, an atomizing chamber (113) and a feeding chamber (112) for storing the feeding mechanism (2). The atomizing chamber (113) is equipped with an ultrasonic atomizing plate. The top of the feeding chamber (112) is provided with a diffusion groove.

3. A feeding mechanism according to claim 2, characterized in that, The top of the water storage tank (11) is connected to a blower box (12), the bottom wall of the blower box (12) is provided with an exhaust groove, the top of the blower box (12) is covered with a box cover (13), one side of the water storage tank (11) is connected to a first side plate (14), and the back of the water storage tank (11) is connected to a second side plate (15).

4. A feeding mechanism according to claim 3, characterized in that, One side of the blower box (12) is connected to an air inlet pipe (16), and the input end of the air inlet pipe (16) is connected to a centrifugal fan (17). The centrifugal fan (17) is connected to one side of the water storage tank (11) and is located between the water storage tank (11) and the first side plate (14). An aeration pump (18) is provided above the side of the water storage tank (11) connected to the centrifugal fan (17).

5. A feeding mechanism according to claim 2, characterized in that, The bottom of the water storage tank (11) is connected to an air inlet pipe (19) below the reaction chamber (111). The input end of the air inlet pipe (19) is connected to the output end of the aeration pump (18) through a hose. The bottom of the water storage tank (11) is connected to a water inlet pipe (120) below the reaction chamber (111) and the atomizing chamber (113), respectively.

6. A feeding mechanism according to claim 1, characterized in that, One end of the material carrier (21) is connected to a connecting rod (213), and the two sides of one end of the material carrier (21) are rotatably connected to a collection filter cover (214). A reserved groove (215) matching the connecting rod (213) is opened on one side of the collection filter cover (214).

7. A feeding mechanism according to claim 1, characterized in that, The upper part of the housing assembly (1) is provided with a feeding assembly (3). The feeding assembly (3) includes a connector end (31) for connecting an external motor. An eccentric shaft (32) is connected to one edge of the connector end (31). A driven disk (33) is connected to one end of the eccentric shaft (32). A protrusion (34) is connected to the outer edge of the driven disk (33).

8. A feeding mechanism according to claim 7, characterized in that, A drive shaft (35) is connected to one side edge of the driven disk (33), and a return piece (36) is slidably arranged on the outside of the drive shaft (35). The upper and lower ends of the return piece (36) are symmetrically connected with ejector pins (37) that match the receiving hole (211).

Citation Information

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