Assembly line type stuffed toy cleaning and disinfecting device
By using a transmission element in the plush toy cleaning device to rotate the pneumatic cleaning part vertically and the plush toys rotate automatically, the problem of limited pneumatic cleaning range of the existing devices is solved, and the cleaning effect is significantly improved.
Patent Information
- Application Number
- CN202422485882.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-15
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-10-15
AI Technical Summary
The existing plush toy cleaning and disinfection devices have a limited range of pneumatic cleaning due to the fixed position of the pneumatic components, which affects the cleaning effect.
The high-pressure pneumatic cleaning part is rotated vertically through the transmission element, while the plush toy rotates around its own axis, expanding the aerodynamic cleaning range.
The pneumatic cleaning range and effect of the device on the surface of plush toys is improved, achieving more thorough cleaning and disinfection.
Smart Images

Figure CN223011366U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of plush toy processing, in particular to a pipeline-type plush toy cleaning and disinfection device. Background Technique
[0002] Plush toys are toys made mainly of plush fabrics, pp cotton and other textile materials, with various fillers stuffed inside. They can also be called soft toys or stuffed toys. During the processing of plush toys, a lot of dust and dirt will adhere to their surfaces. If not cleaned, it will affect the quality of plush toys. Since the fillers inside plush toys are relatively thick and not easy to dry and dehumidify, and there may be electrical components filled inside, plush toys are usually cleaned and disinfected by dry cleaning. Some cleaning and disinfection devices include a suspension conveyor. A plurality of plush toys are hung on the suspension conveyor, and the plush toys are cleaned, disinfected and conveyed through the suspension conveyor. When the plush toys move to the cleaning part inside the device, first, an adsorbent is sprayed on the surface of the plush toys through a spraying element, and the impurities on the surface of the plush toys are adsorbed and separated by the adsorbent. Subsequently, an air knife is used by a pneumatic element to clean the adsorbent on the surface of the plush toys and the impurities adsorbed and carried in the adsorbent, so as to achieve the cleaning treatment of the plush toys. Then, the plush toys are sterilized by ultraviolet irradiation. However, when the device performs pneumatic cleaning on the surface of the plush toys through the pneumatic element, due to the fixed position of the air outlet of the pneumatic element, the pneumatic cleaning range of the pneumatic element on the plush toys is limited, affecting the cleaning effect of the device on the plush toys, and improvement is needed. Content of the Utility Model
[0003] The technical problem to be solved by the utility model is to overcome the existing defects and provide a pipeline-type plush toy cleaning and disinfection device. The device rotates the high-pressure pneumatic cleaning part vertically through a transmission element while the plush toy rotates around its own axis, fully improving the pneumatic cleaning range of the device on the surface of the plush toy, and further improving the high-pressure pneumatic cleaning effect of the device on the plush toy, which can effectively solve the problems in the background technique.
[0004] To achieve the above purpose, the utility model provides the following technical scheme: A pipeline-type plush toy cleaning and disinfection device, including a housing and a multi-angle cleaning mechanism;
[0005] Housing: A plurality of evenly distributed hooks are installed inside it. A main pipe penetrates through the top wall of the housing, and eight evenly distributed air injection pipes are connected to the inside of the main pipe through hoses;
[0006] Multi-angle cleaning mechanism: It includes a fixed seat, a rotating shaft, a first gear, a first rack plate, and a stud. The fixed seats are respectively arranged at the front and rear ends of the bottom wall of the outer shell. Four evenly distributed rotating shafts are rotatably connected to the side walls of the fixed seats through second bearings. The rotating shafts are fixedly connected to the adjacent air jet pipes. First gears are provided at the left ends of the rotating shafts. The top walls of the fixed seats are rotatably connected to the studs through third bearings. The outer sides of the studs are threadedly connected with the first rack plates. The first gears are meshed with the adjacent first rack plates. This device enables the high-pressure pneumatic cleaning part to rotate vertically while the plush toy rotates around its own axis through transmission elements, fully improving the pneumatic cleaning range of the device on the surface of the plush toy, and thus improving the high-pressure pneumatic cleaning effect of the device on the plush toy.
[0007] Furthermore, it also includes a single-chip microcomputer, which is located outside the outer shell. The input end of the single-chip microcomputer is electrically connected to an external power supply, facilitating the control of electrical components.
[0008] Furthermore, a conveyor is provided on the top wall of the outer shell. There are multiple evenly distributed rubidium magnet seats on the conveyor belt of the conveyor. Iron seats are magnetically attracted inside the rubidium magnet seats. The lower sides of the iron seats are rotatably connected to the adjacent hooks through first bearings. The input end of the conveyor is electrically connected to the output end of the single-chip microcomputer, for magnetically attracting and suspending the plush toy for transportation.
[0009] Furthermore, the multi-angle cleaning mechanism also includes a second rack plate and a second gear. The second rack plate is arranged on the top wall of the outer shell through a first bracket. Second gears are provided at the upper ends of the hooks. The second gears are cooperatively installed with the second rack plate, enabling the plush toy to rotate around its own axis during pneumatic cleaning.
[0010] Furthermore, the multi-angle cleaning mechanism also includes motors, which are respectively arranged on the upper sides of the fixed seats. The input ends of the motors are electrically connected to the output end of the single-chip microcomputer. The output shafts of the motors are fixedly connected to the adjacent studs, providing power for adjusting the air outlet positions of the pneumatic cleaning parts on the surface of the plush toy.
[0011] Furthermore, it also includes a material spreading mechanism, which includes a storage box, a feeding pipe, a solenoid valve, an air inlet shell, a material spreading pipe, a filter screen, and a blower. The storage box is arranged at the upper left end of the outer shell. The lower ends of the front and rear walls of the storage box are both provided with feeding pipes. The lower ends of the feeding pipes pass through the top wall of the outer shell and are connected to the material spreading pipes. Solenoid valves are connected in series in the middle of the feeding pipes. Air inlet shells are provided on both the front and rear sides of the outer shell. The air inlet shells are connected to the adjacent material spreading pipes. Blowers are provided inside the air inlet shells. The input ends of the blowers and the solenoid valves are both electrically connected to the output end of the single-chip microcomputer. Filter screens are provided at the ends of the air inlet shells far from the center of the outer shell, for spraying adsorbents on the surface of the plush toy.
[0012] Further, a high-pressure air pump is provided on the upper side of the housing. The input end of the high-pressure air pump is electrically connected to the output end of the single-chip microcomputer, and the air outlet of the high-pressure air pump is communicated with the air inlet of the main pipe, providing power for the high-pressure pneumatic cleaning of the surface of the plush toy by the device.
[0013] Further, four uniformly distributed air extraction pipes penetrate through the top wall of the housing. A merging pipe is provided between the air extraction pipes to collect the adsorbent and impurities dropped during the high-pressure pneumatic cleaning of the surface of the plush toy in the cleaning and disinfection device.
[0014] Further, ultraviolet germicidal lamps are provided on the front and rear walls at the right end of the housing. The input ends of the ultraviolet germicidal lamps are electrically connected to the output end of the single-chip microcomputer to perform ultraviolet irradiation sterilization on the plush toys in the cleaning and disinfection device.
[0015] Further, two symmetrically distributed guiding strips are provided on the top wall of the housing through the second bracket. The guiding strips are cooperatively installed with the hooks. The vertical movement of the hooks in the housing is longitudinally limited through the middle gap between the two guiding strips, so as to facilitate the accurate meshing of the second gear on the hook in the cleaning and disinfection device with the second rack plate.
[0016] Compared with the prior art, the beneficial effects of the present utility model are as follows: This assembly-line type plush toy cleaning and disinfection device has the following advantages:
[0017] During the high-pressure pneumatic cleaning of the plush toy on the assembly line, through the rotating shaft, the first gear, the first rack plate, the stud, the second rack plate, the second gear and the motor, while the high-pressure pneumatic cleaning part rotates vertically, the plush toy rotates around its own axis, fully improving the pneumatic cleaning range of the device on the surface of the plush toy, and further improving the high-pressure pneumatic cleaning effect of the device on the plush toy. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a schematic structural diagram of the present utility model;
[0019] Figure 2 is a schematic diagram of the internal structure of the present utility model;
[0020] Figure 3 is a schematic left-side structural diagram of the present utility model;
[0021] Figure 4 is an enlarged schematic structural diagram at position A of the present utility model.
[0022] In the figure: 1 housing, 2 single-chip microcomputer, 3 conveyor, 4 rubidium magnet seat, 5 iron seat, 6 hook, 7 material spreading mechanism, 71 storage box, 72 material conveying pipe, 73 solenoid valve, 74 air inlet housing, 75 material spreading pipe, 76 filter screen, 77 blower, 8 multi-angle cleaning mechanism, 81 fixing seat, 82 rotating shaft, 83 first gear, 84 first rack plate, 85 stud, 86 second rack plate, 87 second gear, 88 motor, 9 main pipe, 10 hose, 11 air spraying pipe, 12 high-pressure air pump, 13 air extraction pipe, 14 merging pipe, 15 ultraviolet germicidal lamp, 16 guiding strip. Specific embodiments
[0023] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to 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. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0024] Please refer to Figures 1-4 , this embodiment provides a technical solution: a pipeline-type plush toy cleaning and disinfection device, including a housing 1 and a multi-angle cleaning mechanism 8;
[0025] Outer shell 1: A plurality of evenly distributed hooks 6 are installed inside it. The top wall of the outer shell 1 is penetrated by a main pipe 9. The inside of the main pipe 9 is connected to eight evenly distributed air injection pipes 11 through a hose 10. It also includes a single-chip microcomputer 2, which is located outside the outer shell 1. The input end of the single-chip microcomputer 2 is electrically connected to an external power supply. A conveyor 3 is provided on the top wall of the outer shell 1. A plurality of evenly distributed rubidium magnet seats 4 are provided on the conveyor belt of the conveyor 3. Iron seats 5 are magnetically attracted inside the rubidium magnet seats 4. The lower sides of the iron seats 5 are rotatably connected to the adjacent hooks 6 through a first bearing. The input end of the conveyor 3 is electrically connected to the output end of the single-chip microcomputer 2. It also includes a material spreading mechanism 7, which includes a storage box 71, a material conveying pipe 72, a solenoid valve 73, an air inlet shell 74, a material spreading pipe 75, a filter screen 76 and a fan 77. The storage box 71 is arranged at the upper left end of the outer shell 1. The lower ends of the front and rear walls of the storage box 71 are penetrated by the material conveying pipes 72. The lower ends of the material conveying pipes 72 pass through the top wall of the outer shell 1 and are connected to the material spreading pipes 75. Solenoid valves 73 are connected in series in the middle of the material conveying pipes 72. Air inlet shells 74 are provided on both the front and rear sides of the outer shell 1. The air inlet shells 74 are connected to the adjacent material spreading pipes 75. Fans 77 are provided inside the air inlet shells 74. The input ends of the fans 77 and the solenoid valves 73 are electrically connected to the output end of the single-chip microcomputer 2. Filter screens 76 are provided at one end of the air inlet shells 74 away from the center of the outer shell 1. A high-pressure air pump 12 is provided on the upper side of the outer shell 1. The input end of the high-pressure air pump 12 is electrically connected to the output end of the single-chip microcomputer 2. The air outlet of the high-pressure air pump 12 is connected to the air inlet of the main pipe 9. Four evenly distributed air extraction pipes 13 penetrate the top wall of the outer shell 1. A merging pipe 14 is provided between the air extraction pipes 13. Ultraviolet germicidal lamps 15 are provided on the front and rear walls at the right end of the outer shell 1. The input ends of the ultraviolet germicidal lamps 15 are electrically connected to the output end of the single-chip microcomputer 2. Two symmetrically distributed guiding strips 16 are provided on the top wall of the outer shell 1 through a second bracket. The guiding strips 16 are installed in cooperation with the hooks 6. The number of hooks 6 and rubidium magnet seats 4 is more than two. When cleaning and disinfecting plush toys, connect the air extraction port of the merging pipe 14 to the air inlet of an external vacuum cleaner, hang the plush toys through the hooks 6, and then fix the hooks 6 to the corresponding rubidium magnet seats 4 under the action of magnetic adsorption through the iron seats 5. The single-chip microcomputer 2 starts the conveyor 3 to clean and disinfect and convey the plush toys. The single-chip microcomputer 2 starts the fan 77 to make the external gas pass through the filter screen 76 for impurity filtration and then blow out along the material spreading pipe 75. When the plush toys pass through the material spreading pipe 75, the single-chip microcomputer 2 opens the solenoid valve 73, so that the adsorbent in the storage box 71 falls into the material spreading pipe 75 under the action of gravity. The adsorbent in the material spreading pipe 75 is carried by the air flow and thus covers the surface of the plush toys. The surface of the plush toys is adsorbed and cleaned by the adsorbent. When the hooks 6 enter the outer shell 1, they contact the two guiding strips 16, and the longitudinal movement of the hooks 6 in the horizontal movement in the outer shell 1 is limited through the middle gap of the two guiding strips 16, so as to facilitate the accurate engagement of the gear two 87 on the hooks 6 with the rack plate two 86.After the plush toy is cleaned, it enters between the two ultraviolet germicidal lamps 15 along with the conveyor 3. The single-chip microcomputer 2 starts the ultraviolet germicidal lamps 15 to perform ultraviolet irradiation sterilization treatment on the plush toy;
[0026] Multi-angle cleaning mechanism 8: It includes a fixed seat 81, a rotating shaft 82, a first gear 83, a first rack plate 84, and a stud 85. The fixed seats 81 are respectively arranged at the front and rear ends of the bottom wall of the housing 1. The side walls of the fixed seats 81 are all rotatably connected with four evenly distributed rotating shafts 82 through the second bearings. The rotating shafts 82 are all fixedly connected to the adjacent air injection pipes 11. The left ends of the rotating shafts 82 are all provided with first gears 83. The top walls of the fixed seats 81 are all rotatably connected with studs 85 through the third bearings. The outer sides of the studs 85 are all threadedly connected with first rack plates 84. The first gears 83 are all meshed with the adjacent first rack plates 84. The multi-angle cleaning mechanism 8 further includes a second rack plate 86 and a second gear 87. The second rack plate 86 is arranged on the top wall of the housing 1 through a first bracket. The upper ends of the hooks 6 are all provided with second gears 87. The second gears 87 are cooperatively installed with the second rack plate 86. The multi-angle cleaning mechanism 8 further includes motors 88. The motors 88 are respectively arranged on the upper sides of the fixed seats 81. The input ends of the motors 88 are all electrically connected to the output end of the single-chip microcomputer 2. The output shafts of the motors 88 are all fixedly connected to the adjacent studs 85. The plush toy covered with the adsorbent continues to move rightward along with the conveyor 3 to the air injection pipe 11. Subsequently, the single-chip microcomputer 2 starts the high-pressure air pump 12 so that the external air flow is sprayed out at high pressure through the main pipe 9, the hose 10, and the air injection pipe 11. The high-pressure air flow sprayed out through the air injection pipe 11 is used to perform high-pressure air flow cleaning on the adsorbent on the surface of the plush toy and the impurities adsorbed in the adsorbent. During this process, the single-chip microcomputer 2 starts the motors 88 so that their output shafts drive the corresponding studs 85 to rotate. The studs 85 drive the first rack plates 84 to slide vertically along the side walls of the corresponding fixed seats 81 through threaded connection. The first rack plates 84 drive the corresponding first gears 83 to drive the air injection pipes 11 to rotate vertically through the rotating shafts 82 through meshing connection. By adjusting the jet angle of the air injection pipes 11, the pneumatic cleaning range of the air injection pipes 11 on the surface of the plush toy is improved. At the same time, as the hooks 6 drive the plush toy to move, when the second gears 87 on the hooks 6 move to the meshing part with the second rack plate 86, the hooks 6 drive the corresponding plush toy to rotate horizontally around its own axis through the meshing connection between the two, thereby further improving the pneumatic cleaning range of the air injection pipes 11 on the surface of the plush toy, effectively improving the cleaning effect of the device on the surface of the plush toy. At the same time, during this process, the external vacuum cleaner makes the suction pipe 13 connected to the merging pipe 14 generate suction, so as to collect the adsorbent and impurities dropped during the high-pressure pneumatic cleaning of the surface of the plush toy in the device. The device makes the high-pressure pneumatic cleaning part rotate vertically while the plush toy rotates around its own axis through the transmission element, fully improving the pneumatic cleaning range of the device on the surface of the plush toy, and further improving the high-pressure pneumatic cleaning effect of the device on the plush toy.
[0027] The working principle of a pipeline - type plush toy cleaning and disinfection device provided by the utility model is as follows: When cleaning and disinfecting plush toys, connect the air extraction port of the merging pipe 14 to the air inlet of an external vacuum cleaner. Hang the plush toy through the hook 6, and then fix the hook 6 to the corresponding rubidium magnet seat 4 under the action of magnetic adsorption through the iron seat 5. The single - chip microcomputer 2 starts the conveyor 3 to convey and clean and disinfect the plush toy. The single - chip microcomputer 2 starts the blower 77 so that the external gas is filtered by impurities through the filter net 76 and then blown out along the material - spreading pipe 75. When the plush toy passes through the material - spreading pipe 75, the single - chip microcomputer 2 opens the solenoid valve 73, so that the adsorbent in the storage box 71 falls into the material - spreading pipe 75 under the action of gravity through the material - conveying pipe 72. The adsorbent in the material - spreading pipe 75 is carried by the air flow and thus covers the surface of the plush toy. Through the adsorbent, the surface of the plush toy is adsorbed and cleaned of impurities. Then, the plush toy covered with the adsorbent continues to move to the right along with the conveyor 3 to the air - jet pipe 11. Subsequently, the single - chip microcomputer 2 starts the high - pressure air pump 12 so that the external air flow is ejected at high pressure through the main pipe 9, the hose 10 and the air - jet pipe 11. The high - pressure air flow ejected through the air - jet pipe 11 is used to clean the adsorbent on the surface of the plush toy and the impurities adsorbed in the adsorbent by high - pressure air flow. During this process, the single - chip microcomputer 2 starts the motor 88 so that its output shaft drives the corresponding stud 85 to rotate. The stud 85 is thread - connected so that the first rack plate 84 slides vertically along the side wall of the corresponding fixed seat 81. The first rack plate 84 drives the corresponding first gear 83 to rotate the air - jet pipe 11 vertically through the engagement connection and the rotating shaft 82. By adjusting the jet angle of the air - jet pipe 11, the pneumatic cleaning range of the air - jet pipe 11 on the surface of the plush toy is improved. At the same time, as the hook 6 drives the plush toy to move, when the second gear 87 on the hook 6 moves to the meshing part with the second rack plate 86, through the meshing connection between the two, the hook 6 drives the corresponding plush toy to rotate horizontally around its own axis, thereby further improving the pneumatic cleaning range of the air - jet pipe 11 on the surface of the plush toy, effectively improving the cleaning effect of the device on the surface of the plush toy. At the same time, during this process, the external vacuum cleaner makes the air - extraction pipe 13 connected to the merging pipe 14 generate suction, so as to collect the adsorbent and impurities that fall off during the high - pressure pneumatic cleaning of the surface of the plush toy in the device. When the hook 6 enters the housing 1, it contacts the two guiding strips 16. Through the middle gap of the two guiding strips 16, the horizontal movement of the hook 6 in the housing 1 is longitudinally limited, which is convenient for the second gear 87 on the hook 6 to accurately mesh with the second rack plate 86. After the plush toy cleaning is completed, as it enters between the two ultraviolet germicidal lamps 15 along with the conveyor 3, the single - chip microcomputer 2 starts the ultraviolet germicidal lamps 15 to perform ultraviolet irradiation sterilization treatment on the plush toy.
[0028] It should be noted that in the above embodiments, the single-chip microcomputer 2 can be STM32, the conveyor 3 can be TD-3 belt conveyor, the solenoid valve 73 can be ZQDF-3Y-40, the fan 77 can be F4-72, the motor 88 can be 130SZ01, the high-pressure air pump 12 can be ML601-24 small high-pressure air pump, the ultraviolet germicidal lamp 15 can be HELIOSPECTRAR X30, and the single-chip microcomputer 2 controls the conveyor 3, the solenoid valve 73, the fan 77, the motor 88, the high-pressure air pump 12 and the ultraviolet germicidal lamp 15 to work by using the commonly used methods in the prior art.
[0029] The above are only the embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, shall be similarly included in the patent protection scope of the present invention.
Claims
1. An assembly line plush toy cleaning and disinfection device, characterized in that: It comprises a housing (1) and a multi-angle cleaning mechanism (8); The housing (1) has a plurality of evenly distributed hooks (6) installed therein. A main pipe (9) is provided through the top wall of the housing (1). The interior of the main pipe (9) is connected to eight evenly distributed jet pipes (11) via a hose (10). A multi-angle cleaning mechanism (8): comprising a fixed seat (81), a rotating shaft (82), a gear (83), a rack plate (84) and a stud (85), wherein the fixed seat (81) is respectively arranged at the front and rear ends of the bottom wall of the housing (1), the side walls of the fixed seat (81) are rotatably connected to four evenly distributed rotating shafts (82) via bearings (2), the rotating shafts (82) are fixedly connected to adjacent jet pipes (11), the left ends of the rotating shafts (82) are provided with gears (83), the top walls of the fixed seats (81) are rotatably connected to the studs (85) via bearings (3), the outer sides of the studs (85) are threadedly connected to the rack plate (84), and the gears (83) are meshingly connected to the adjacent rack plate (84).
2. The assembly line plush toy cleaning and disinfecting device according to claim 1, characterized in that: It also comprises a single-chip microcomputer (2), wherein the single-chip microcomputer (2) is located outside the housing (1), and an input end of the single-chip microcomputer (2) is electrically connected to an external power supply.
3. The assembly line plush toy cleaning and disinfecting device according to claim 2, characterized in that: A conveyor (3) is provided on the top wall of the housing (1); a plurality of evenly distributed nebulium magnet seats (4) are provided on the conveyor belt of the conveyor (3); iron seats (5) are magnetically attracted inside the nebulium magnet seats (4); the lower sides of the iron seats (5) are rotatably connected to adjacent hooks (6) via bearings; and the input end of the conveyor (3) is electrically connected to the output end of the single-chip computer (2).
4. The assembly line plush toy cleaning and disinfecting device according to claim 1, characterized in that: The multi-angle cleaning mechanism (8) further comprises a rack plate 2 (86) and a gear 2 (87); the rack plate 2 (86) is arranged on the top wall of the housing (1) via a bracket 1; the upper end of the hook (6) is provided with a gear 2 (87); the gear 2 (87) is mounted in cooperation with the rack plate 2 (86).
5. The assembly line plush toy cleaning and disinfecting device according to claim 2, characterized in that: The multi-angle cleaning mechanism (8) further comprises a motor (88), wherein the motor (88) is respectively arranged on the upper side of the fixing seat (81), the input end of the motor (88) is electrically connected to the output end of the single-chip computer (2), and the output shaft of the motor (88) is fixedly connected to the adjacent stud (85).
6. The assembly line plush toy cleaning and disinfecting device according to claim 2, characterized in that: The material dispersing mechanism (7) further comprises a material storage box (71), a material delivery pipe (72), a solenoid valve (73), an air intake shell (74), a material dispersing pipe (75), a filter screen (76) and a fan (77), wherein the material storage box (71) is arranged at the upper left end of the outer shell (1), the material delivery pipe (72) is penetrated through the lower ends of the front and rear walls of the material storage box (71), and the lower ends of the material delivery pipes (72) pass through the top wall of the outer shell (1) and are connected to the material dispersing pipe (75). 75), a solenoid valve (73) is connected in series in the middle of the feeding pipe (72), an air intake shell (74) is provided on both the front and rear sides of the housing (1), the air intake shell (74) is connected to the adjacent material spreading pipe (75), a fan (77) is provided inside the air intake shell (74), the input ends of the fan (77) and the solenoid valve (73) are electrically connected to the output end of the single chip computer (2), and a filter screen (76) is provided at one end of the air intake shell (74) away from the center of the housing (1).
7. The assembly line plush toy cleaning and disinfecting device according to claim 2, characterized in that: A high-pressure air pump (12) is provided on the upper side of the housing (1); an input end of the high-pressure air pump (12) is electrically connected to an output end of the single-chip computer (2); and an air outlet of the high-pressure air pump (12) is connected to an air inlet of the main pipe (9).
8. The assembly line plush toy cleaning and disinfecting device according to claim 1, characterized in that: Four evenly distributed air extraction pipes (13) are provided through the top wall of the outer shell (1), and a merging pipe (14) is provided between the air extraction pipes (13).
9. The assembly line plush toy cleaning and disinfecting device according to claim 2, characterized in that: Ultraviolet sterilization lamps (15) are provided on both the front and rear walls of the right end of the housing (1), and the input ends of the ultraviolet sterilization lamps (15) are electrically connected to the output ends of the single-chip computer (2).
10. The assembly line plush toy cleaning and disinfecting device according to claim 2, characterized in that: The top wall of the housing (1) is provided with two symmetrically distributed guide strips (16) via bracket 2, and the guide strips (16) are mounted in cooperation with the hooks (6).