Portable tool disinfection device for neurology department

The portable tool disinfection device that integrates spray disinfection and drying disinfection components solves the problem of incomplete disinfection of neurological medical devices and achieves thorough disinfection of the instrument surface and removal of water stains.

CN120733085APending Publication Date: 2025-10-03WUXI NO 2 PEOPLES HOSPITAL
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202511043948.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-28
Publication Date
2025-10-03

AI Technical Summary

Technical Problem

Existing neurological medical instrument disinfection devices are unable to fully clean the bottom surface of the instrument and water stains are easily left on the surface of the instrument after cleaning.

Method used

A portable tool disinfection device was designed, which integrates a spray disinfection component and a drying disinfection component. The feeding mechanism can realize the reciprocating conveying and 180-degree flipping of medical devices. Combined with ultraviolet sterilization, it ensures that the surface of the device is thoroughly disinfected.

Benefits of technology

It realizes comprehensive disinfection of medical devices, eliminates cleaning dead corners on the bottom surface of the devices, avoids water stains, and improves disinfection efficiency and effect.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120733085A_ABST
    Figure CN120733085A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of medical instrument disinfection, and discloses a portable tool disinfection device for neurology department, the portable tool disinfection device comprises a box body, both sides of the interior of the box body are provided with mounting cavities enclosed by a plurality of partition plates, and the interior of the box body is provided with a disinfection mechanism between the two mounting cavities. The disinfection mechanism comprises a disinfection unit arranged on the upper portion in the box body and a feeding unit arranged on the lower portion of one side of the disinfection unit. Spraying, drying and sterilizing structures required by disinfection of medical instruments are integrally installed in one box body, the structure is compact, the size is small, carrying is convenient, meanwhile, the feeding mechanism is arranged below the disinfection mechanism, the feeding mechanism can convey the instruments in a reciprocating mode, the medical instruments can be overturned by 180 degrees during conveying, and in the overturning process, the medical instruments can be disinfected through the disinfection mechanism. Water stains left on the surfaces of the instruments can be shaken off, meanwhile, the bottom faces of the instruments which are not washed originally face upwards after the medical instruments are turned over, then washing is conducted again, and it is guaranteed that the medical instruments are thoroughly killed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of medical device disinfection, in particular to a portable tool disinfection device for neurology. Background Art

[0002] The Department of Neurology primarily diagnoses and treats neurological diseases such as cerebrovascular disease, migraine, inflammatory brain diseases, myelitis, Parkinson's disease, sciatica, peripheral neuropathy, and myasthenia gravis, utilizing diagnostic methods such as CT, EEG, TCD, and hemorheology. During their treatment, medical staff frequently use small medical instruments such as tweezers, scissors, and thermometers, which must be sterilized in dedicated sterilization devices after each use.

[0003] A search revealed that patent document CN112337879A provides a portable medical device disinfection device for neurology. The device is placed on a tray, and disinfectant in a solution tank is pumped out by a liquid pump. The disinfectant is then sprayed from top to bottom onto the tray and the medical device through a pipe and an atomizing nozzle. The tray is rotated continuously during the spraying process so that the medical device is evenly sprayed. However, medical devices such as scissors have upper and lower surfaces. When these devices are placed on the tray, the bottom surface of the device cannot be sprayed or rinsed. If the bottom surface of the device is cleaned solely by the flow of liquid, stubborn stains attached to the bottom surface of the device are difficult to remove. Furthermore, since the device remains stationary on the tray, water stains remaining on the surface of the device after cleaning are difficult to quickly remove. Summary of the Invention

[0004] The object of the present invention is to provide a portable tool disinfection device for neurology to solve the problems of incomplete cleaning and disinfection of medical instruments and the easy residual water stains on the surface of the instruments after cleaning raised in the above background technology.

[0005] To achieve the above object, the present invention provides the following technical solutions: A portable tool disinfection device for neurology, comprising a box body, both sides of the interior of the box body are provided with installation cavities surrounded by multiple partitions, a disinfection mechanism is provided inside the box body between the two installation cavities, the disinfection mechanism comprises a disinfection unit arranged above the interior of the box body and a feeding unit arranged below one side of the disinfection unit, the disinfection unit comprises a spray disinfection component and a drying disinfection component, the feeding unit is used to feed medical instruments back and forth into the spray disinfection component and one side of the drying disinfection component and flip the medical instruments 180 degrees after completing one feeding so as to disinfect and sterilize the medical instruments on both sides.

[0006] As a further solution of the present invention: the disinfection unit includes two slide rails, each of which is slidably connected to a slider, each of which is fixed with a waist ring at the bottom, and each of which is fixed with a bracket at the front and rear ends of the bottom of the two waist rings, wherein each of the two brackets on the left is fixed with a nozzle, and each of the two brackets on the right is fixed with an air nozzle, and an ultraviolet lamp is installed in the middle position of the bottom of the two brackets on the right.

[0007] As a further solution of the present invention: a water tank is provided below the side of the box body corresponding to the disinfection mechanism, and a hot air blower and a filtering device are respectively installed at both ends of the box body corresponding to the rear side of the water tank. The water inlet end of the filtering device is connected to the water tank, and a water pump is installed on the filtering device. The water inlet end of the water pump is connected to the filtering device, and the water outlet end of the water pump is connected to the multiple nozzles through a second pipeline. The hot air blower is connected to a first pipeline, and the hot air blower is connected to the multiple air nozzles through the first pipeline.

[0008] As a further solution of the present invention: the disinfection unit also includes a first motor, which is installed in the installation cavity on the right side inside the box. A transmission shaft is fixed to one end of the output shaft of the first motor, and the transmission shaft is rotatably connected in the box. An incomplete gear is fixed to one end of the transmission shaft corresponding to the two waist rings, and teeth are provided on the upper and lower sides of the inner walls of the two waist rings. The two incomplete gears are respectively meshed and connected between the teeth on the corresponding upper and lower sides.

[0009] As a further solution of the present invention: the feeding unit includes two slides arranged opposite to each other up and down, the two slides are fixed between the two mounting cavities, guide grooves are provided on the two slides, clamping parts are slidably connected in the two guide grooves, and mesh boxes are clamped and fixed on the front and back sides of the two clamping parts, and the mesh boxes are used to store medical devices.

[0010] As a further solution of the present invention: guide brackets are symmetrically arranged at both ends of the two slides, V-shaped grooves are opened on multiple guide brackets, racks are fixed on one side of the top of the two slides, and the two racks are arranged close to the guide bracket on the right side.

[0011] As a further solution of the present invention: the feeding unit also includes a second motor and two screw rods, the two screw rods are respectively rotatably connected in the two guide grooves, and one end of the two screw rods rotates through the installation cavity on the left, and one end of the two screw rods located in the installation cavity is sleeved and fixed with a gear, and the two gears are meshed and connected together, the second motor is installed in the installation cavity on the left side of the box, and one end of the output shaft of the second motor is connected and fixed to one end of one of the two screw rods.

[0012] As a further solution of the present invention: the clamping member includes a guide block and a mounting seat, the guide block is slidably connected in the guide groove, and the guide block is threadedly sleeved on the corresponding screw rod, the mounting seat is fixed on the top of the guide block, the interior of the mounting seat is slidably connected with a slide cylinder, and the slide cylinder is rotatably connected with a rotating shaft, both ends of the rotating shaft extend to the outside of the mounting seat, and both ends of the rotating shaft are fixed with a clamping plate, one side of the two clamping plates is clamped and fixed with the net box, and one end of the rotating shaft shaft body corresponding to the rack is sleeved and fixed with a transmission gear, the transmission gear can engage or disengage with the rack, the teeth of the transmission gear are adapted to the teeth of the rack, and the number of teeth on the rack is half the number of teeth on the transmission gear.

[0013] As a further solution of the present invention: a connecting block is fixed on the top of the slide, and a guide column is fixed on one side of the top of the connecting block. The connecting block and the guide column are both slidably connected in the mounting seat. A through groove running through the mounting seat is provided on one side of the inner wall of the mounting seat corresponding to the guide column. The guide column is slidably connected in the through groove and the top of the guide column extends to the top of the mounting seat. The guide column cooperates with the V-shaped groove to drive the slide to move back and forth inside the mounting seat.

[0014] As a further solution of the present invention: a pin is provided on one side of the mounting seat, and a socket is provided on the inner wall of the mounting seat corresponding to the side of the pin, the pin is slidably inserted into the socket, a spring is sleeved on the pin, and the two ends of the spring are respectively connected and fixed to the inner wall of the socket and the pin, and limiting grooves are provided on the inner wall of the connecting block corresponding to both sides of the pin, and the inner walls of one side of the two limiting grooves are inclined outward and extend to form a slope, and the two slopes are symmetrically arranged, and one end of the pin is inserted into one of the limiting grooves.

[0015] Compared with the prior art, the present invention has the following beneficial effects: In the present invention, the spraying, drying and sterilization structures required for the disinfection of medical devices are integrated and installed in a box, which has a relatively compact structure, a small size and is easy to carry. At the same time, a feeding mechanism is provided below the disinfection mechanism, and the feeding mechanism can transport the medical devices back and forth between the spraying and drying sterilization structures. After the spray cleaning, the medical devices are immediately sent to the drying and sterilization structure for drying and sterilization. Moreover, after each spraying, rinsing and drying sterilization, the feeding mechanism turns the medical devices 180 degrees through the cooperation of the gear rack and pinion. During the turning process, the water stains remaining on the surface of the device can be shaken off. At the same time, after the turning, the bottom surface of the device that was not originally rinsed will face upwards, and then the medical devices will be rinsed and dried and sterilized again, ensuring that the medical devices are thoroughly disinfected. Furthermore, there are many types of medical devices in the neurology department. In the present invention, multiple mesh boxes are provided, and each mesh box can store a certain type of device separately. Different devices are classified and placed to avoid cross contamination. It is also convenient for taking and using them after disinfection. Furthermore, the flipping of medical devices is achieved by the coordinated use of components such as gears and racks. The gears are positioned during movement through the coordinated use of pins and limit slots. After positioning, the gears will not shift forward and backward during the lateral movement, thereby ensuring that the gears can accurately correspond to the racks during each feeding process. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is a structural schematic diagram of the present invention.

[0017] Figure 2 This is a first perspective view of the internal structure of the box in the present invention.

[0018] Figure 3 This is a second perspective view of the internal structure of the box in the present invention.

[0019] Figure 4 It is a structural schematic diagram of the disinfection mechanism in the present invention.

[0020] Figure 5 This is a first-perspective view of the disinfection unit in the disinfection mechanism.

[0021] Figure 6 This is a second perspective view of the disinfection unit in the disinfection mechanism.

[0022] Figure 7 Schematic diagram of the connection between the waist ring and the incomplete gear in the disinfection unit.

[0023] Figure 8 It is a structural diagram of the feeding unit in the disinfection mechanism.

[0024] Figure 9 It is a structural schematic diagram of a feeding component in the feeding unit.

[0025] Figure 10 Schematic diagram of the connection between the clamping part and the net box in the feeding unit.

[0026] Figure 11 This is a structural separation diagram of the clamping part.

[0027] Figure 12 It is a schematic diagram of the connection between the slide and the connecting block in the clamp.

[0028] Figure 13 It is a structural schematic diagram of the guide bracket in the feeding unit.

[0029] Figure 14 It is a structural diagram of the net box in the feeding unit.

[0030] Figure numerals: 1-box, 2-universal wheel, 3-box door, 4-handle, 5-water tank, 6-installation cavity, 7-disinfection mechanism, 71-disinfection unit, 711-slide rail, 712-waist ring, 713-water pump, 714-first motor, 715-first pipeline, 716-bracket, 717-nozzle, 718-second pipeline, 719-air nozzle, 7110-ultraviolet lamp, 7111-slider, 7112-teeth, 7113-incomplete gear, 7114-drive shaft, 72-feeding unit, 721-slide, 7 22-guide groove, 723-rack, 724-guide bracket, 7241-V-groove, 725-second motor, 726-clamping member, 7261-guide block, 7262-mounting seat, 7263-pin, 7264-transmission gear, 7265-clamping plate, 7266-slide, 7267-rotating shaft, 7268-connecting block, 7269-guide column, 72610-limiting groove, 727-net box, 728-screw, 729-gear, 8-hot air blower, 9-filtering device, 10-first partition, 11-second partition. DETAILED DESCRIPTION

[0031] The following embodiments will be described in detail with reference to the accompanying drawings. Similar or identical parts are denoted by the same reference numerals in the drawings or description. In actual applications, the shape, thickness, or height of each component may be enlarged or reduced. The various embodiments listed in the present invention are intended only to illustrate the present invention and are not intended to limit the scope of the present invention. Any obvious modifications or changes made to the present invention do not depart from the spirit and scope of the present invention.

[0032] See also Figures 1 to 4In an embodiment of the present invention, a portable tool disinfection device for neurology includes a box body 1, with box doors 3 provided on the front and rear sides of the box body 1. Both box doors 3 can be rotated outward to open, and both box doors 3 are provided with handles. Universal wheels 2 with a locking structure are installed at the bottom of the box body 1, and a handle 4 is fixed on the top of the box body 1 for easy lifting and carrying. Installation cavities 6 surrounded by multiple partitions are provided on both sides of the interior of the box body 1. A disinfection mechanism 7 is provided in the middle of the two installation cavities 6 inside the box body 1, and a water tank 5 is provided below the side of the box body 1 corresponding to the disinfection mechanism 7. A hot air blower 8 and a filter device 9 are respectively installed at both ends of the rear side of the water tank 5 inside the box body 1. The water inlet end of the filter device 9 is connected to the water tank 5. The disinfectant in the water tank 5 can flow into the filter device 9 for filtration. The filter device 9 can adopt an existing device, such as the cleaning liquid regeneration equipment model BST02 produced by Dalian Bobst Technology Co., Ltd. A first partition 10 is fixed above the middle position of the inside of the box body 1, and a second partition 11 is fixed below the side of the first partition 10 inside the box body 1, leaving a gap between the first partition 10 and the second partition 11; The disinfection mechanism 7 includes a disinfection unit 71 arranged above the inside of the box 1 and a feeding unit 72 arranged below one side of the disinfection unit 71. The disinfection unit 71 includes a spray disinfection component and a drying disinfection component. The medical device is rinsed and disinfected by the spray disinfection component and then dried and disinfected by the drying disinfection component. The feeding unit 72 is used to feed the medical device back and forth into the spray disinfection component and one side of the drying disinfection component. The feeding unit 72 feeds the medical device from one side of the spray disinfection component to the other side of the drying disinfection component as a feeding process. After each feeding is completed, the feeding unit 72 turns the medical device 180 degrees, turns the medical device over, and sprays, rinses, and dry-disinfects it again, so that the surface of the device can be more comprehensively sterilized and disinfected.

[0033] See also Figures 5-7 The disinfection unit 71 includes two slide rails 711, which are respectively fixed on both sides of the top of the box body 1 corresponding to the first partition 10. Slide blocks 7111 are slidably connected to the two slide rails 711. Waist rings 712 are fixed to the bottoms of the two slide blocks 7111. Brackets 716 are fixed to the front and rear ends of the bottoms of the two waist rings 712. Among them, nozzles 717 are fixed at both ends of the two brackets 716 on the left, and air nozzles 719 are fixed at both ends of the two brackets 716 on the right. Ultraviolet lamps 7110 are installed in the middle position of the bottoms of the two brackets 716 on the right. A water pump 713 is installed on the filter device 9. The water inlet end of the water pump 713 is connected to the filter device 9, and the water outlet end of the water pump 713 is connected to multiple nozzles 717 through a second pipe 718. The disinfectant in the water tank 5 is filtered by the filter device 9 and then pumped into the second pipe 718 by the water pump 713 and sprayed downward onto the medical device to be disinfected through multiple nozzles 717. When the disinfectant is replaced, the box door 3 can be directly opened to pour it into the water tank 5. Correspondingly, a drainage channel (not shown in the figure) is also reserved on the water tank 5. After the disinfectant cannot be reused, it can be discharged through the drainage channel. The hot air blower 8 is connected to a first pipe 715, which is connected to a plurality of air nozzles 719 via the first pipe 715. The hot air blown out by the hot air blower 8 is blown downward onto the medical device through the plurality of air nozzles 719 to dry and sterilize the medical device. During the hot air drying process, the ultraviolet lamp 7110 works synchronously to sterilize the device with ultraviolet light. The combination of the two sterilization methods can achieve higher sterilization efficiency. The disinfection unit 71 also includes a first motor 714, which is installed in the installation cavity 6 on the right side of the box body 1. A transmission shaft 7114 is fixed to one end of the output shaft of the first motor 714. The transmission shaft 7114 is rotatably connected to the box body 1, and one end of the transmission shaft 7114 corresponding to the two waist rings 712 is sleeved and fixed with an incomplete gear 7113. The upper and lower sides of the inner walls of the two waist rings 712 are provided with teeth 7112, and the two incomplete gears 7113 are respectively engaged and connected between the corresponding teeth 7112 on the upper and lower sides; In this embodiment, the slide rail 711 located on the left side of the first partition 10 and the components below it constitute a spray disinfection component, and the slide rail 711 located on the right side of the first partition 10 and the components below it constitute a drying disinfection component. When the first motor 714 drives the transmission shaft 7114 to rotate, the incomplete gear 7113 will intermittently engage the teeth 7112 on the upper and lower sides of the inner wall of the waist ring 712. The waist ring 712 is slidably connected to the box body 1 through the use of the slider 7111 and the slide rail 711. When the incomplete gear When 7113 engages with the upper teeth 7112, it drives the waist ring 712 to move toward one side. After the incomplete gear 7113 rotates half a circle, it engages with the lower teeth 7112 and drives the waist ring 712 to move toward the other side, so that the waist ring 712 can move back and forth, thereby driving the nozzle 717 and the air nozzle 719 below it to move back and forth, expanding the spray range of the nozzle 717 and the jet range of the air nozzle 719, so that the surface of the medical device can be more comprehensively rinsed and dried.

[0034] See also Figures 8 to 14The feeding unit 72 includes two slides 721 arranged opposite to each other in an upper and lower manner. The two slides 721 are fixed between the two mounting cavities 6, wherein the upper slide 721 is located in the gap between the first partition 10 and the second partition 11, and the lower slide 721 is located below the second partition 11. Guide grooves 722 are provided on the two slides 721, and clamping members 726 are slidably connected in the two guide grooves 722. The front and rear sides of the two clamping members 726 are clamped and fixed with a net box 727. The net box 727 is made of a mesh plate, can be rotated to open, and has a locking structure, and can be used with existing devices and technologies. Guide brackets 724 are symmetrically arranged at both ends of the two slides 721. V-shaped grooves 7241 are opened on multiple guide brackets 724. Racks 723 are fixed to one side of the top of each slide 721. Both racks 723 are arranged close to the guide bracket 724 on the right side. The positions of the racks 723 correspond to the positions of the drying and disinfection components. When the medical device is dried and disinfected, it moves to the side of the rack 723 and is flipped over by the cooperation of the racks 723 and related components. The feeding unit 72 also includes a second motor 725 and two screw rods 728. The two screw rods 728 are respectively rotatably connected to the two guide grooves 722, and one end of the two screw rods 728 rotates and passes through the installation cavity 6 on the left. One end of the two screw rods 728 located in the installation cavity 6 is sleeved and fixed with a gear 729. The two gears 729 are meshed and connected together. The second motor 725 is installed in the installation cavity 6 on the left side of the box body 1, and one end of the output shaft of the second motor 725 is fixedly connected to one end of one of the two screw rods 728. The clamping member 726 includes a guide block 7261 and a mounting seat 7262. The guide block 7261 is slidably connected to the guide groove 722 and is threadedly sleeved on the corresponding screw rod 728. The mounting seat 7262 is fixed to the top of the guide block 7261. A slide cylinder 7266 is slidably connected to the interior of the mounting seat 7262. A rotating shaft 7267 is rotatably connected to the slide cylinder 7266. Both ends of the rotating shaft 7267 extend to the outside of the mounting seat 7262. Both ends of the rotating shaft 7267 are fixed with a clamping plate 7265. One side of each clamping plate 7265 is clamped and fixed with the net box 727. A transmission gear 7264 is sleeved and fixed to one end of the rotating shaft 7267 corresponding to the rack 723. The transmission gear 7264 can be engaged with or disengaged from the rack 723. The teeth of the transmission gear 7264 match the teeth of the rack 723, and the number of teeth on the rack 723 is half the number of teeth on the transmission gear 7264. This ensures that the transmission gear 7264 can rotate 180 degrees after passing the rack 723. A connecting block 7268 is fixed to the top of the slide 7266. A guide post 7269 is fixed to one side of the top of the connecting block 7268. Both the connecting block 7268 and the guide post 7269 are slidably connected to the mounting seat 7262. A through slot extending vertically through the inner wall of the mounting seat 7262 is formed on one side corresponding to the guide post 7269. The guide post 7269 is slidably connected to the through slot, and the top end of the guide post 7269 extends above the mounting seat 7262. A pin 7263 is provided on one side of the mounting seat 7262, and a socket is provided on the inner wall of the mounting seat 7262 corresponding to the side of the pin 7263. The pin 7263 is slidably inserted into the socket, and a spring is sleeved on the pin 7263. The two ends of the spring are respectively connected and fixed to the inner wall of the socket and the pin. A limiting groove 72610 is provided on both sides of the inner wall of the connecting block 7268 corresponding to the pin 7263. The inner walls of one side of the two limiting grooves 72610 are inclined outward and extend to form a slope. The two slopes are symmetrically arranged, and one end of the pin 7263 is inserted into one of the limiting grooves 72610. In 2610, when the connecting block 7268 moves forward and backward, one end of the pin 7263 moves out of one limiting groove 72610 and inserts into the other limiting groove 72610. The pin 7263 cooperates with the two limiting grooves 72610 to position the connecting block 7268 after it moves, thereby fixing the slide 7266, thereby fixing the rotating shaft 7267 connected to the slide 7266, and further fixing the transmission gear 7264 at one end of the rotating shaft 7267, so that the transmission gear 7264 can contact or separate with the rack 723; In this embodiment, when the second motor 725 drives the screw rod 728 to rotate, the guide block 7261 will slide along the guide groove 722 and drive the mounting seat 7262 to move synchronously. When the mounting seat 7262 moves, it will drive the net boxes 727 on both sides to move synchronously. Medical devices are placed in the net boxes 727. Two sets of upper and lower net box structures are set in this device. The two sets of net box structures move synchronously in opposite directions through the cooperation of gears 729 and screw rods 728. Each net box can be used to place a certain type of device separately, so that different devices can be stored and disinfected in a classified manner, which is convenient for easy access and use. When the mounting seat 7262 moves to the side of the guide bracket 724 at the left end, the guide column 7269 will slide inward along the through groove on the mounting seat 7262 under the action of the V-shaped groove 7241, and drive the transmission gear 7264 to move inward synchronously. At this time, the transmission gear 7264 will be on the same horizontal line as the rack 723. Then the second motor 725 outputs in the reverse direction, driving the mounting seat 7262 to move to the right. When the transmission gear 7264 contacts the rack 723, under the cooperation of the teeth of the gear rack, the transmission gear 7264 rotates and drives the front and rear net boxes 727 and the medical devices placed therein to synchronously flip 180 degrees, turning the medical devices over. After the gear 7264 is in the same horizontal direction as the rack 723, the gear 7264 is no longer in the same horizontal direction as the rack 723, and the gear 7264 is no longer in contact with the rack 723. Therefore, the net box 727 will not be turned over again at this time, and the net box 727 will continue to move to the side of the spray disinfection component for spray disinfection. Then, the above process is repeated, and the net box 727 is moved to the side of the drying and disinfection component for drying and disinfection. The switching of the contact state between the gear and the rack is achieved through the coordinated use of the guide column 7269 and the V-groove 7241. After each switching state, the pin 7263 will be inserted into the corresponding limit groove 72610. The transmission gear 7264 is positioned and fixed by the coordinated use of the pin 7263 and the limit groove 72610 to prevent it from shifting forward and backward during the lateral movement, thereby ensuring that in each feeding process, the transmission gear 7264 can accurately correspond to the rack 723.

[0035] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

[0036] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A portable tool disinfection device for neurology, comprising a box (1), characterized in that: Both sides of the box (1) are provided with mounting cavities (6) surrounded by a plurality of partitions. A disinfection mechanism (7) is provided between the two mounting cavities (6) inside the box (1). The disinfection mechanism (7) comprises a disinfection unit (71) arranged above the inside of the box (1) and a feeding unit (72) arranged below one side of the disinfection unit (71). The disinfection unit (71) comprises a spray disinfection component and a drying disinfection component. The feeding unit (72) is used to feed the medical device back and forth into the spray disinfection component and one side of the drying disinfection component and flip the medical device 180 degrees after completing one feeding so as to disinfect and sterilize the medical device on both sides.

2. The portable tool disinfection device for neurology according to claim 1, characterized in that: The disinfection unit (71) includes two slide rails (711), and a slider (7111) is slidably connected to each of the two slide rails (711). A waist ring (712) is fixed to the bottom of each of the two sliders (7111), and brackets (716) are fixed to the front and rear ends of the bottom of each of the two waist rings (712), wherein nozzles (717) are fixed to both ends of the two brackets (716) on the left side, and air nozzles (719) are fixed to both ends of the two brackets (716) on the right side, and an ultraviolet lamp (7110) is installed in the middle position of the bottom of each of the two brackets (716) on the right side.

3. The portable tool disinfection device for neurology according to claim 2, characterized in that: A water tank (5) is provided below the side of the box (1) corresponding to the disinfection mechanism (7), and a hot air blower (8) and a filter device (9) are respectively installed at both ends of the box (1) corresponding to the rear side of the water tank (5). The water inlet end of the filter device (9) is connected to the water tank (5), and a water pump (713) is installed on the filter device (9). The water inlet end of the water pump (713) is connected to the filter device (9), and the water outlet end of the water pump (713) is connected to the plurality of nozzles (717) through a second pipeline (718). The hot air blower (8) is connected to a first pipeline (715), and the hot air blower (8) is connected to the plurality of air nozzles (719) through the first pipeline (715).

4. The portable tool disinfection device for neurology according to claim 2, characterized in that: The disinfection unit (71) further comprises a first motor (714), which is mounted in the mounting cavity (6) on the right side of the housing (1). A transmission shaft (7114) is fixed to one end of the output shaft of the first motor (714), and the transmission shaft (7114) is rotatably connected to the housing (1). An incomplete gear (7113) is sleeved and fixed to one end of the shaft of the transmission shaft (7114) corresponding to the two waist rings (712). Teeth (7112) are provided on the upper and lower sides of the inner walls of the two waist rings (712), and the two incomplete gears (7113) are respectively meshed and connected between the teeth (7112) on the corresponding upper and lower sides.

5. The portable tool disinfection device for neurology according to claim 1, characterized in that: The feeding unit (72) includes two slides (721) arranged opposite to each other in an upper and lower direction. The two slides (721) are fixed between the two mounting cavities (6). A guide groove (722) is provided on the two slides (721). A clamping member (726) is slidably connected in the two guide grooves (722). A net box (727) is fixed to the front and rear sides of the two clamping members (726). The net box (727) is used to store medical devices.

6. The portable tool disinfection device for neurology according to claim 5, characterized in that: Guide brackets (724) are symmetrically arranged at both ends of the two slides (721), and a plurality of guide brackets (724) are provided with V-shaped grooves (7241). A rack (723) is fixed on one side of the top of the two slides (721), and the two racks (723) are arranged close to the guide bracket (724) on the right side.

7. The portable tool disinfection device for neurology according to claim 6, characterized in that: The feeding unit (72) further includes a second motor (725) and two screw rods (728), the two screw rods (728) are respectively rotatably connected in the two guide grooves (722), and one end of the two screw rods (728) is rotated to pass through the installation cavity (6) on the left side, and one end of the two screw rods (728) located in the installation cavity (6) is sleeved and fixed with a gear (729), and the two gears (729) are meshed and connected together, the second motor (725) is installed in the installation cavity (6) on the left side inside the box (1), and one end of the output shaft of the second motor (725) is connected and fixed to one end of one of the two screw rods (728).

8. The portable tool disinfection device for neurology according to claim 7, characterized in that: The clamping member (726) includes a guide block (7261) and a mounting seat (7262), wherein the guide block (7261) is slidably connected in the guide groove (722), and the guide block (7261) is threadedly sleeved on the corresponding screw rod (728), and the mounting seat (7262) is fixed on the top of the guide block (7261), and a slide cylinder (7266) is slidably connected inside the mounting seat (7262), and a rotating shaft (7267) is rotatably connected in the slide cylinder (7266), and both ends of the rotating shaft (7267) extend to the outside of the mounting seat (7262). Both ends of the rotating shaft (7267) are fixed with a clamping plate (7265), and one side of the two clamping plates (7265) is clamped and fixed with the net box (727). One end of the shaft of the rotating shaft (7267) corresponding to the rack (723) is sleeved and fixed with a transmission gear (7264). The transmission gear (7264) can be engaged with or disengaged from the rack (723). The teeth of the transmission gear (7264) are adapted to the teeth of the rack (723), and the number of teeth on the rack (723) is half the number of teeth on the transmission gear (7264).

9. The portable tool disinfection device for neurology according to claim 8, characterized in that: A connecting block (7268) is fixed to the top of the slide (7266), and a guide column (7269) is fixed to one side of the top of the connecting block (7268). The connecting block (7268) and the guide column (7269) are both slidably connected to the mounting seat (7262). A through groove running through the mounting seat (7262) is provided on the inner wall of the mounting seat (7262) corresponding to the side of the guide column (7269). The guide column (7269) is slidably connected in the through groove and the top of the guide column (7269) extends to the top of the mounting seat (7262). The guide column (7269) cooperates with the V-shaped groove (7241) to drive the slide (7266) to move back and forth inside the mounting seat (7262).

10. The portable tool disinfection device for neurology according to claim 9, characterized in that: A pin (7263) is provided on one side of the mounting seat (7262), and a socket is provided on the inner wall of the mounting seat (7262) corresponding to the side of the pin (7263). The pin (7263) is slidably inserted into the socket, and a spring is sleeved on the pin (7263). The two ends of the spring are respectively connected and fixed to the inner wall of the socket and the pin. The inner wall of the connecting block (7268) corresponds to both sides of the pin (7263) and has limiting grooves (72610). The inner walls of one side of the two limiting grooves (72610) are inclined outward and extend to form a slope. The two slopes are symmetrically arranged, and one end of the pin (7263) is correspondingly inserted into one of the limiting grooves (72610).

Citation Information

Patent Citations

  • Portable medical instrument disinfection device for neurology department

    CN112337879A