Intelligent sensing control disinfection device
By designing an intelligent sensing and disinfection device, the combination of lifting and rotating components and flip blocks is used to solve the problems of alcohol volatility and slow removal of medical equipment, and the effect of efficient disinfection and energy-saving cost-saving is achieved.
Patent Information
- Application Number
- CN202510475349.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-15
- Publication Date
- 2025-05-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing sensor control disinfection devices, disinfection alcohol cannot be completely isolated from the outside air, causing alcohol to evaporate and reduce the sterilization effect. At the same time, medical equipment cannot be quickly removed in the confined space.
An intelligent sensing-controlled disinfection device is designed, using a disinfection cylinder and a lifting and rotating assembly. Through the cooperation of the flip block and the threaded rod, the alcohol attached to the surface of the medical equipment is thrown out by centrifugal force, and the airflow is blocked to prevent the volatility of the liquid from accelerating the airflow.
Effectively save alcohol use, speed up the drying speed of medical equipment surfaces, improve disinfection efficiency, and reduce costs and energy consumption.
Smart Images

Figure CN120037430A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical disinfection equipment, and specifically to an intelligent sensing and control disinfection device. Background Art
[0002] A sensing and control disinfection device is a disinfection equipment specifically used in medical and public health places, aiming to effectively prevent the infection and spread of pathogenic microorganisms. This kind of device usually adopts efficient disinfection technologies, such as ultraviolet disinfection, ozone disinfection or immersion disinfection, etc., and is operated through an automated system. It can cover a large area of space in a short time. The sensing and control disinfection device is equipped with sensors, which can monitor the pollution levels of air and surfaces in real time, and automatically adjust the disinfection intensity according to the detection results. In addition, many advanced devices also have intelligent linkage functions, which can be connected to other medical devices or management systems to achieve data sharing and remote control, thereby improving the efficiency and safety of disinfection. These functions make the sensing and control disinfection device play a key role in controlling hospital infections and improving the environmental hygiene of diagnosis and treatment. For the disinfection of medical devices, there are methods of steam sterilization and disinfection immersion sterilization.
[0003] A Chinese patent discloses a respiratory mask disinfection device (authorization publication number CN117679544B), which includes a box body mechanism, a lifting type automatic water draining mechanism and a reciprocating lifting control mechanism; in the present invention, while lifting, the liquid attached to the workpiece is first thrown off by the centrifugal force of rotation, thereby reducing the consumption of disinfectant; in addition, the present invention also utilizes the volatile characteristics of disinfectants such as alcohol. When the object stays briefly at the top, clean air can be automatically connected, and the liquid evaporation speed is accelerated through air flow. At the same time, in order to avoid the air flow accelerating the evaporation of the liquid in the disinfection box body, the present invention also proposes an automatic capping component that can block the air flow, overcoming the technical contradiction of both using air flow to accelerate liquid evaporation and avoiding air flow accelerating liquid evaporation.
[0004] In the above patent, the alcohol used for disinfection is not completely isolated from the outside air. Therefore, the alcohol used for disinfection inevitably volatilizes, resulting in a reduction in the bactericidal effect of alcohol. And when the alcohol is placed in a closed space, it is impossible to quickly take out the soaked medical equipment. For this reason, the applicant proposes an intelligent sensing and control disinfection device. Summary of the Invention
[0005] The purpose of the present invention is to provide an intelligent sensing and control disinfection device to solve the problems raised in the above background art.
[0006] To achieve the above purpose, the present invention provides the following technical solutions: An intelligent sensory control disinfection device comprises a disinfection frame assembly, the disinfection frame assembly comprises a disinfection cylinder, two dust covers are hingedly connected to the upper end of the disinfection cylinder, a support ring is fixedly connected inside the disinfection cylinder, and the support ring is rotatably connected to a lifting and rotating assembly through a flip guide assembly; The lifting and rotating assembly comprises a flip block, a threaded rod is fixedly connected to the inner wall at the lower side of the flip block, a threaded block is threadedly connected to the threaded rod, a fixing ring is rotatably connected to the threaded block, a disinfection basket is fixedly connected to the upper end of the threaded block, a basket cover is threadedly connected to the upper end of the disinfection basket, and an electromagnet magnetically connected to the fixing ring is fixedly connected to the inner wall at the lower side of the flip block; A plurality of telescopic limit assemblies are hinged between the fixed ring and the lower inner wall of the flip block. Two hydraulic assemblies are fixedly connected to the lower side wall of the flip block, and the telescopic limit assemblies are communicated with the hydraulic assemblies and the flip guide assemblies.
[0007] As a further solution of the present invention, the telescopic limiting assembly includes a thick cylinder hinged to the flip block, a piston is slidably connected inside the thick cylinder, and a thin cylinder hinged to the fixing ring is fixedly connected to the piston.
[0008] As a further solution of the present invention, the oil pressure component includes a boosting chamber excavated inside the flip block, the flip guide component includes an oil chamber excavated on the side wall of the flip block, a discharge pipe is connected between the thick cylinder and the boosting chamber, and an inlet pipe is connected between the thick cylinder and the oil chamber.
[0009] As a further solution of the present invention, the oil pressure component also includes a pressure plug slidably connected to the inside of the boost chamber, the pressure plug is fixedly connected to the inner wall of the boost chamber by a strong spring, an L-shaped cavity is excavated inside the flip block, and the boost chamber is connected to the oil cavity through the L-shaped cavity.
[0010] As a further solution of the present invention, an oil groove connected to the L-shaped cavity is excavated inside the flip block, a valve plug is slidably connected inside the oil groove, a thrust spring is fixedly connected between the valve plug and the lower inner wall of the oil groove, push rods are fixedly connected to the left and right side walls of the fixing ring, and a closing component is fixedly connected to the upper end of the valve plug.
[0011] As a further solution of the present invention, the flipping guide assembly also includes a rotating cylinder rotatably connected to the side wall of the flipping block through a one-way bearing, a movable plug is slidably connected inside the rotating cylinder, and a square rod fixedly connected to the movable plug is inserted at one end of the rotating cylinder away from the flipping block.
[0012] As a further solution of the present invention, a guide cavity is bored on the support ring, a guide groove is bored on the inner side wall of the guide cavity, and a guide rod located inside the guide groove is fixedly connected to the upper side wall of the square rod.
[0013] As a further solution of the present invention, the sealing component includes a fixed cylinder fixedly connected to the inner wall of the lower side of the flipping block. A pressing plate is slidably connected inside the fixed cylinder, and the pressing plate is fixedly connected to the valve plug through a connecting rod. An annular airbag is fixedly connected between the upper side wall of the pressing plate and the upper side inner wall of the fixed cylinder.
[0014] As a further solution of the present invention, a rubber semi-circular tube is fixedly connected to the side wall of the flipping block. The annular airbag is communicated with the rubber semi-circular tube through a ventilation pipe, and the ventilation pipe is fixedly connected to the fixed cylinder.
[0015] As a further solution of the present invention, a blower is fixedly connected to the rear side wall of the disinfection cylinder, and an ultraviolet lamp is fixedly connected to the upper end of the threaded rod.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. When the present invention is used, the electromagnet can be energized to realize the flipping and lifting of the flipping block, which not only effectively disinfects medical devices by soaking, but also removes excessive electronic components, reducing costs and playing an energy-saving role at the same time.
[0017] 2. When the present invention is used, through the cooperation of the threaded rod, the threaded block and the fixed ring, after the soaking of medical devices is completed, the centrifugal force generated by rotation can be used to throw out the alcohol adhering to the surface of the disinfection basket and medical devices, which not only saves the amount of alcohol used, but also speeds up the drying speed of the surface of medical devices, facilitating timely use by medical staff.
[0018] 3. When the present invention is used, through the setting of the sealing component, not only can the rubber semi-circular tube be in a contracted state during the flipping process of the flipping block, effectively avoiding the flipping block and the support ring jointly squeezing the rubber semi-circular tube and shortening the service life of the rubber semi-circular tube, but also the rubber semi-circular tube can be in an expanded state after the flipping block completes flipping, further improving the sealing performance between the flipping block and the support ring. Description of the Drawings
[0019] Figure 1 is a three-dimensional stereogram of an intelligent sensing and control disinfection device; Figure 2 is a schematic structural diagram inside the disinfection cylinder of an intelligent sensing and control disinfection device; Figure 3 is a sectional view of a part of the support ring of an intelligent sensing and control disinfection device; Figure 4 is a schematic structural diagram of the lifting and rotating component of an intelligent sensing and control disinfection device; Figure 5 is Figure 4 the enlarged view of part A in Figure 6 is a schematic structural diagram of the telescopic and limiting component of an intelligent sensing and control disinfection device; Figure 7 It is a schematic structural diagram of the oil pressure component and the flipping guide component of an intelligent sensing and disinfection device; Figure 8 It is a state diagram of the intelligent sensing and disinfection device after the disinfection basket moves down.
[0020] In the figure: 1. Disinfection frame component; 101. Disinfection cylinder; 102. Dust-proof cover; 2. Support ring; 3. Lifting and rotating component; 301. Flipping block; 302. Threaded rod; 303. Threaded block; 304. Fixed ring; 305. Disinfection basket; 306. Basket cover; 307. Electromagnet; 4. Telescopic limit component; 401. Thick cylinder; 402. Piston; 403. Thin cylinder; 404. Drain pipe; 405. Inlet pipe; 5. Oil pressure component; 501. Boosting cavity; 502. Pressure plug; 503. Strong spring; 504. L-shaped cavity; 505. Oil passage groove; 506. Valve plug; 507. Thrust spring; 508. Thrust rod; 6. Flipping guide component; 601. Oil cavity; 602. Rotating cylinder; 603. One-way bearing; 604. Moving plug; 605. Square rod; 606. Guide cavity; 607. Guide groove; 608. Guide rod; 7. Sealing component; 701. Fixed cylinder; 702. Pressing plate; 703. Connecting rod; 704. Annular airbag; 705. Rubber semi-circular pipe; 706. Vent pipe.
[0021] 8. Blower; 9. Ultraviolet lamp. Specific implementation manners
[0022] 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.
[0023] Embodiment 1 Please refer to Figures 1-4 and Figures 5-8, in the embodiment of the present invention, an intelligent sensing and disinfection device includes a disinfection frame assembly 1. The disinfection frame assembly 1 includes a disinfection cylinder 101. The inside of the disinfection cylinder 101 is filled with disinfection alcohol. Two dust-proof covers 102 are hinged to the upper end of the disinfection cylinder 101 through hinges. Handles are fixedly connected to the upper side walls of the two dust-proof covers 102. A support ring 2 is fixedly connected to the middle part of the inner wall of the disinfection cylinder 101 by welding. The support ring 2 is rotationally connected to a lifting and rotating assembly 3 through a rotating cylinder 602 in a flipping guide assembly 6. To enable the flipping block 301 to flip smoothly, a certain gap will be reserved between the support ring 2 and the flipping block 301. The seal between the support ring 2 and the flipping block 301 will be achieved through a rubber semi-circular tube 705.
[0024] The lifting and rotating assembly 3 includes a flipping block 301. The flipping block 301 adopts the middle structure of a sphere, and a hole matching the flipping block 301 is drilled in the middle of the support ring 2. A threaded rod 302 is fixedly connected to the inner wall of the lower side of the flipping block 301. A cylindrical groove for storing a disinfection basket 305 is drilled in the upper side wall of the flipping block 301. A threaded block 303 is threadedly connected to the threaded rod 302. A fixed ring 304 is rotationally connected to the threaded block 303 through a bearing. The upper end of the threaded block 303 is fixedly connected to a disinfection basket 305. The disinfection basket 305 is arranged in a ring shape. The disinfection basket 305 is made of 304 stainless steel. The upper end of the inner ring of the disinfection basket 305 is threadedly connected to a basket cover 306. By rotating the basket cover 306, the basket cover 306 can be taken out, and thus medical devices can be placed or taken in the disinfection basket 305. An electromagnet 307 magnetically connected to the fixed ring 304 is fixedly connected to the inner wall of the lower side of the flipping block 301. The electromagnet 307 is arranged in an annular structure, and the threaded rod 302 is located in the middle of the electromagnet 307. This can facilitate the magnetic connection between the electromagnet 307 and the fixed ring 304. After the electromagnet 307 is powered on, it generates magnetism and attracts the fixed ring 304 to move downward. The fixed ring 304 drives the disinfection basket 305 to move downward into the flipping block 301 through the threaded block 303. While the threaded block 303 moves downward, through the threading action of the threaded rod 302, the threaded block 303 is driven to rotate.
[0025] A plurality of telescopic limiting components 4 are hinged between the fixed ring 304 and the inner wall of the lower side of the flipping block 301. The fixed ring 304 can be fixed by the plurality of telescopic limiting components 4 to prevent the fixed ring 304 from rotating. Two oil pressure components 5 are fixedly connected to the lower side wall of the flipping block 301, and the telescopic limiting components 4 are respectively communicated with the oil pressure components 5 and the flipping guide assembly 6 through a discharge pipe 404 and an inlet pipe 405.
[0026] The telescopic limit component 4 includes a thick cylinder 401 hinged to the flipping block 301. The inside of the thick cylinder 401 is filled with hydraulic oil. A piston 402 is slidably connected inside the thick cylinder 401. A thin cylinder 403 fixedly connected to the side wall of the fixed ring 304 is fixedly connected to the piston 402. The oil pressure component 5 includes a pressure increasing cavity 501 drilled inside the flipping block 301. The flipping guiding component 6 includes an oil cavity 601 drilled on the side wall of the flipping block 301. A discharge pipe 404 is fixedly connected and communicated between the lower end of the thick cylinder 401 and the pressure increasing cavity 501. An inlet pipe 405 is fixedly connected and communicated between the lower end of the thick cylinder 401 and the oil cavity 601. Check valves are installed inside both the discharge pipe 404 and the inlet pipe 405, and the check valves inside the discharge pipe 404 and the inlet pipe 405 are in opposite directions. The check valve inside the discharge pipe 404 only allows the hydraulic oil to be discharged, while the check valve inside the inlet pipe 405 only allows the hydraulic oil to be discharged.
[0027] The oil pressure component 5 further includes a pressure plug 502 slidably connected inside the pressure increasing cavity 501. A strong spring 503 is fixedly connected between the pressure plug 502 and the inner side wall of the pressure increasing cavity 501. While the fixed ring 304 moves downward, the telescopic limit component 4 will contract, causing the piston 402 to move downward and squeezing the hydraulic oil inside the thick cylinder 401, so that it is discharged into the pressure increasing cavity 501 through the discharge pipe 404. Since the valve plug 506 blocks the L-shaped cavity 504 at this time, the hydraulic oil drives the pressure plug 502 to move and compresses the strong spring 503. An L-shaped cavity 504 is drilled inside the flipping block 301, and the pressure increasing cavity 501 is connected to the oil cavity 601 through the L-shaped cavity 504. An oil passage groove 505 connected to the L-shaped cavity 504 is drilled inside the flipping block 301. A valve plug 506 is slidably connected inside the oil passage groove 505. A thrust spring 507 is fixedly connected between the valve plug 506 and the lower inner wall of the oil passage groove 505. Top rods 508 are fixedly connected to both the left and right side walls of the fixed ring 304. The upper end of the valve plug 506 is fixedly connected with a sealing component 7 for improving the sealing performance between the flipping block 301 and the support ring 2. When the fixed ring 304 moves downward to the lowest position, the fixed ring 304 drives the top rod 508 to push the pressing plate 702 to move downward. The pressing plate 702 drives the valve plug 506 to move downward through the connecting rod 703, so that the pressure increasing cavity 501 is connected to the L-shaped cavity 504 through the valve plug 506. At this time, the oil cavity 601 is connected to the pressure increasing cavity 501. The hydraulic oil inside the pressure increasing cavity 501 is extruded by the pressure plug 502 under the action of the strong spring 503, so that the hydraulic oil enters the oil cavity 601 through the L-shaped cavity 504.
[0028] The flipping guiding component 6 further includes a rotating cylinder 602 rotatably connected to the side wall of the flipping block 301 through a one-way bearing 603, and the rotating cylinder 602 is communicated with the oil cavity 601. The rotating cylinder 602 is also rotatably connected to the support ring 2 through a bearing. A moving plug 604 is slidably connected inside the rotating cylinder 602. A guiding cavity 606 is formed in the support ring 2, and a guiding groove 607 is formed in the inner side wall of the guiding cavity 606. At the same time, the length of the guiding groove 607 is almost equal to the moving distance of the square rod 605, and the number of turns of the guiding groove 607 enables the square rod 605 to only rotate 90 degrees. A guide rod 608 located inside the guiding groove 607 is fixedly connected to the upper side wall of the square rod 605. Lubricating oil is coated inside the guiding groove 607, and a ball is rotatably connected to the top end of the guide rod 608, which can effectively reduce the friction between the guide rod 608 and the guiding groove 607. A square rod 605 fixedly connected to the moving plug 604 is inserted into one end of the rotating cylinder 602 away from the flipping block 301. The hydraulic pressure inside the oil cavity 601 drives the square rod 605 to move through the moving plug 604 under pressure. When the square rod 605 moves, it pushes 609 through the guide rod 608, causing the square rod 605 to rotate 90 degrees, and drives the one-way bearing 603 to rotate through the rotating cylinder 602, enabling the one-way bearing 603 to drive the flipping block 301 to rotate, so that the disinfection basket 305 can be above the water surface of the alcohol. Subsequently, the staff changes the current direction of the electromagnet 307, so that the electromagnet 307 generates a magnetic repulsive force to push the fixed ring 304 downward. The fixed ring 304 moves downward through the threaded block 303, so that the disinfection basket 305 rotates and moves downward into the alcohol, achieving the effect of fully soaking the medical equipment. During the downward movement of the fixed ring 304, the telescopic limiting component 4 expands and contracts, generating negative pressure inside the thick cylinder 401, and sucking the hydraulic oil inside the oil cavity 601 through the inlet pipe 405. At this time, the moving plug 604 resets under the suction force, and at the same time, the moving plug 604 also pulls the square rod 605 to move. The square rod 605 rotates under the guidance of the guiding groove 607 and the guide rod 608, causing the square rod 605 to drive the rotating cylinder 602 to reset and rotate again. Since the one-way bearing 603 is one-way, the rotating cylinder 602 cannot drive the flipping block 301 to rotate through the one-way bearing 603. At this time, the state of the flipping block 301 remains unchanged, while the flipping guiding component 6 reaches the reset function. When the medical equipment reaches the required soaking time, the staff starts the electromagnet 307 again, so that the electromagnet 307 attracts the fixed ring 304, and then the fixed ring 304 drives the disinfection basket 305 to move upward and rotate through the threaded block 303. When the disinfection basket 305 leaves the alcohol, the centrifugal force generated by the rotation throws the remaining alcohol on the surface of the disinfection basket 305 and the medical equipment. At the same time, since the telescopic limiting component 4 is compressed, the hydraulic oil inside it is injected into the hydraulic pressure component 5 again. The same as the above steps, the flipping block 301 can be flipped again, and finally the medical equipment is rotated above the support ring 2.
[0029] Embodiment 2 Please refer to Figure 5 , on the basis of Embodiment 1, the sealing component 7 includes a fixed cylinder 701 fixedly connected to the inner wall of the lower side of the flipping block 301. A through hole is drilled at the center of the upper end of the fixed cylinder 701 to facilitate the top rod 508 to push the pressing plate 702 downward. A pressing plate 702 is slidably connected inside the fixed cylinder 701, and the pressing plate 702 is fixedly connected to the valve plug 506 through a connecting rod 703. An annular airbag 704 is fixedly connected between the upper side wall of the pressing plate 702 and the inner wall of the upper side of the fixed cylinder 701. A rubber semi-circular tube 705 is fixedly connected to the side wall of the flipping block 301. The annular airbag 704 is connected to the rubber semi-circular tube 705 through an air pipe 706, and the air pipe 706 is fixedly connected to the fixed cylinder 701. When the pressing plate 702 is not pushed by the top rod 508, the valve plug 506 squeezes the annular airbag 704 under the action of the thrust spring 507, thereby causing the rubber semi-circular tube 705 to expand, improving the sealing performance between the support ring 2 and the flipping block 301.
[0030] A blower 8 is fixedly connected to the rear side wall of the disinfection cylinder 101, and an ultraviolet lamp 9 is fixedly connected to the upper end of the threaded rod 302. After the disinfection of medical devices by soaking is completed, the staff can change the current direction of the electromagnet 307 again to generate a repulsive force to push the disinfection basket 305 to rotate and rise. Subsequently, the staff starts the blower 8 and the ultraviolet lamp 9. The blower 8 is equipped with meltblown cloth, which can block the intrusion of bacteria to a certain extent. The blower 8 can further accelerate the evaporation rate of alcohol on the surface of medical devices, while the ultraviolet lamp 9 can further improve the sterilization effect on medical devices and kill dust in the air.
[0031] The working principle of the present invention is as follows: When the present invention is in use, first, the staff rotates the basket cover 306. After taking out the basket cover 306, the medical devices to be disinfected are placed inside the disinfection basket 305. Subsequently, the basket cover 306 is rotated again to complete the closing of the disinfection basket 305. Then, the electromagnet 307 is started. The electromagnet 307 is energized to generate magnetism to attract the fixed ring 304 to move downward. The fixed ring 304 drives the disinfection basket 305 to move downward and rotate into the flipping block 301 through the threaded block 303; While the fixed ring 304 moves downward, the telescopic limit component 4 contracts, causing the hydraulic oil inside the thick cylinder 401 to be discharged into the pressurizing chamber 501. The hydraulic oil drives the pressure plug 502 to move and compresses the strong spring 503. When the fixed ring 304 moves downward to the lowest position, the fixed ring 304 drives the top rod 508 to push the pressing plate 702 downward. The pressing plate 702 drives the valve plug 506 downward through the connecting rod 703, causing the pressurizing chamber 501 to communicate with the L-shaped cavity 504 through the valve plug 506. At this time, the oil chamber 601 is connected to the pressurizing chamber 501. The hydraulic oil inside the pressurizing chamber 501 is extruded by the pressure plug 502 under the action of the strong spring 503, and the hydraulic oil enters the oil chamber 601 through the L-shaped cavity 504, enabling the hydraulic oil to drive the square rod 605 to move through the moving plug 604. When the square rod 605 moves, it can push 609 through the guide rod 608, causing the square rod 605 to rotate 90 degrees. The square rod 605 drives the one-way bearing 603 to rotate through the rotating cylinder 602, and the one-way bearing 603 drives the flipping block 301 to rotate, so that the disinfection basket 305 can be above the water surface of the alcohol. Subsequently, the staff changes the current direction of the electromagnet 307, causing the electromagnet 307 to generate a magnetic repulsive force to push the fixed ring 304 downward. The fixed ring 304 moves downward through the threaded block 303, so that the disinfection basket 305 rotates and moves downward into the alcohol, achieving the effect of fully soaking and disinfecting the medical equipment inside the disinfection basket 305; During the downward movement of the fixed ring 304, the telescopic limit component 4 expands and contracts, generating negative pressure inside the thick cylinder 401 and sucking the hydraulic oil inside the oil chamber 601 through the inlet pipe 405, causing the moving plug 604 to reset under the suction force. At the same time, the moving plug 604 also pulls the square rod 605 to move, and the square rod 605 rotates under the guidance of the guiding groove 607 and the guide rod 608, causing the square rod 605 to drive the rotating cylinder 602 to reset and rotate again. Since the one-way bearing 603 is one-way, the rotating cylinder 602 cannot drive the flipping block 301 to rotate through the one-way bearing 603. At this time, the state of the flipping block 301 remains unchanged, and the components in the flipping guide component 6 all reach the reset state; When the medical equipment reaches the required soaking time, the staff starts the electromagnet 307 again, causing the electromagnet 307 to generate a magnetic force to attract the fixed ring 304 and the flipping block 301 to approach. Then, the fixed ring 304 drives the disinfection basket 305 to move upward and rotate through the threaded block 303. When the disinfection basket 305 leaves the alcohol, the centrifugal force generated by the rotation of the disinfection basket 305 throws off the remaining alcohol on the surface of the disinfection basket 305 and the medical equipment. At the same time, since the telescopic limit component 4 is compressed, the hydraulic oil inside it is injected into the pressurizing chamber 501 again. The same as the above steps, only the state of the flipping block 301 is different, enabling the flipping block 301 to flip again, and finally rotating the disinfection basket 305 and the medical equipment to above the support ring 2.
[0032] After the disinfection of medical devices by immersion is completed, the staff can start the electromagnet 307 again and change the current direction of the electromagnet 307 to generate a repulsive force to push the disinfection basket 305 to rotate and rise. Subsequently, the staff starts the fan 8 and the ultraviolet lamp 9. The fan 8 is equipped with meltblown cloth, which can block the intrusion of bacteria to a certain extent. The fan 8 can accelerate the air circulation and further accelerate the evaporation rate of alcohol on the surface of medical devices. The ultraviolet lamp 9 can further improve the bactericidal effect on medical devices and kill the dust in the air.
[0033] In addition, the function of the sealing component 7 is that before the turning block 301 needs to rotate, the valve plug 506 needs to communicate with the L-shaped cavity 504. At this time, the thrust spring 507 is in a compressed state, and at the same time, it will also pull the annular airbag 704 through the connecting rod 703. The annular airbag 704 generates negative pressure and sucks the rubber semi-circular tube 705 through the air pipe 706. At this time, the rubber semi-circular tube 705 shrinks, prompting the rubber semi-circular tube 705 to contract, avoiding the extrusion of the rubber semi-circular tube 705 when the turning block 301 rotates and causing damage to the rubber semi-circular tube 705. After the turning block 301 rotates, the valve plug 506 does not need to communicate with the L-shaped cavity 504. At this time, the thrust spring 507 is in an uncompressed state, and the thrust spring 507 will also push the valve plug 506 to move, compressing the annular airbag 704. The gas inside the annular airbag 704 is then transported to the rubber semi-circular tube 705 through the air pipe 706. At this time, the rubber semi-circular tube 705 expands, thereby improving the sealing performance between the turning block 301 and the support ring 2 and preventing alcohol from volatilizing.
[0034] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.
Claims
1. An intelligent sensory control disinfection device, comprising a disinfection frame assembly (1), the disinfection frame assembly (1) comprising a disinfection cylinder (101), the upper end of the disinfection cylinder (101) being hinged with two dust covers (102), characterized in that: A support ring (2) is fixedly connected inside the disinfection cylinder (101), and the support ring (2) is rotatably connected to a lifting and rotating assembly (3) via a flip guide assembly (6); The lifting and rotating assembly (3) comprises a flip block (301), a threaded rod (302) is fixedly connected to the inner wall at the lower side of the flip block (301), a threaded block (303) is threadedly connected to the threaded rod (302), a fixing ring (304) is rotatably connected to the threaded block (303), a disinfection basket (305) is fixedly connected to the upper end of the threaded block (303), a basket cover (306) is threadedly connected to the upper end of the disinfection basket (305), and an electromagnet (307) magnetically connected to the fixing ring (304) is fixedly connected to the inner wall at the lower side of the flip block (301); A plurality of telescopic limit assemblies (4) are hingedly connected between the fixed ring (304) and the lower inner wall of the flip block (301); two oil pressure assemblies (5) are fixedly connected to the lower wall of the flip block (301); and the telescopic limit assemblies (4) are in communication with the oil pressure assemblies (5) and the flip guide assembly (6).
2. The intelligent sensory control disinfection device according to claim 1, characterized in that: The telescopic limiting assembly (4) comprises a thick cylinder (401) hinged to the flip block (301), a piston (402) is slidably connected inside the thick cylinder (401), and a thin cylinder (403) hinged to the fixing ring (304) is fixedly connected to the piston (402).
3. The intelligent sensory control disinfection device according to claim 2, characterized in that: The oil pressure assembly (5) comprises a pressure chamber (501) excavated inside the flip block (301), the flip guide assembly (6) comprises an oil chamber (601) excavated on the side wall of the flip block (301), a discharge pipe (404) is connected between the thick cylinder (401) and the pressure chamber (501), and an inlet pipe (405) is connected between the thick cylinder (401) and the oil chamber (601).
4. The intelligent sensory control disinfection device according to claim 3, characterized in that: The oil pressure assembly (5) further comprises a pressure plug (502) slidably connected to the inside of the boost chamber (501); a strong spring (503) is fixedly connected between the pressure plug (502) and the inner wall of the boost chamber (501); an L-shaped cavity (504) is excavated inside the flip block (301); and the boost chamber (501) is connected to the oil chamber (601) via the L-shaped cavity (504).
5. The intelligent sensory control disinfection device according to claim 3, characterized in that: An oil-passing groove (505) connected to the L-shaped cavity (504) is bored inside the flip block (301); a valve plug (506) is slidably connected inside the oil-passing groove (505); a thrust spring (507) is fixedly connected between the valve plug (506) and the lower inner wall of the oil-passing groove (505); push rods (508) are fixedly connected to the left and right side walls of the fixing ring (304); and a sealing component (7) is fixedly connected to the upper end of the valve plug (506).
6. The intelligent sensory control disinfection device according to claim 5, characterized in that: The turnover guide assembly (6) further comprises a rotating cylinder (602) rotatably connected to the side wall of the turnover block (301) via a one-way bearing (603); a movable plug (604) is slidably connected inside the rotating cylinder (602); and a square rod (605) fixedly connected to the movable plug (604) is inserted at one end of the rotating cylinder (602) away from the turnover block (301).
7. The intelligent sensory control disinfection device according to claim 6, characterized in that: A guide cavity (606) is bored on the support ring (2), a guide groove (607) is bored on the inner side wall of the guide cavity (606), and a guide rod (608) located inside the guide groove (607) is fixedly connected to the upper side wall of the square rod (605).
8. The intelligent sensory control disinfection device according to claim 7, characterized in that: The sealing component (7) comprises a fixed cylinder (701) fixedly connected to the lower inner wall of the flip block (301), a pressure plate (702) is slidably connected inside the fixed cylinder (701), and the pressure plate (702) is fixedly connected to the valve plug (506) via a connecting rod (703), and an annular air bag (704) is fixedly connected between the upper side wall of the pressure plate (702) and the upper inner wall of the fixed cylinder (701).
9. The intelligent sensory control disinfection device according to claim 8, characterized in that: A rubber semicircular tube (705) is fixedly connected to the side wall of the flip block (301), the annular airbag (704) is connected to the rubber semicircular tube (705) via a vent pipe (706), and the vent pipe (706) is fixedly connected to the fixed cylinder (701).
10. The intelligent sensory control disinfection device according to claim 1, characterized in that: A fan (8) is fixedly connected to the rear side wall of the disinfection cylinder (101), and an ultraviolet lamp (9) is fixedly connected to the upper end of the threaded rod (302).
Citation Information
Patent Citations
A respiratory mask disinfection device
CN117679544B