Pipeline storage type atomizer for respiratory medicine department
By designing protective covers, sliding extrusion mechanisms, nesting sheets, conveying components, winding rollers and anti-reversal mechanisms in respiratory atomizers, the problems of unstable use of pipelines, missed storage and inconvenient cleaning are solved, and the stable transportation, storage and disinfection of the trachea is achieved.
Patent Information
- Application Number
- CN202510620269.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-14
- Publication Date
- 2025-06-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing atomizer for respiratory medicine is inconvenient to control the stability of the pipeline when used, which can easily lead to missed storage of the pipeline and is inconvenient to clean the stored pipeline, which may cause bacteria to be carried into the atomization device on the outside of the pipeline.
A pipeline storage atomizer is designed, which adopts a protective cover, sliding extrusion mechanism, nesting sheet, conveying components, winding rollers and anti-reversal mechanism to achieve stable transportation, storage and disinfection of the pipeline.
By automatically rotating the protective cover to avoid contamination, nesting sheets reduce tracheal wear, extrusion and delivery mechanism improve tracheal output and storage stability, nesting disinfection mechanism realizes tracheal disinfection, and anti-reversal mechanism ensures stable storage of tracheal pipes, improving the stability of use and disinfection effect.
Smart Images

Figure CN120204541A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of atomizers for respiratory medicine, and specifically to a pipeline storage type atomizer for respiratory medicine. Background Art
[0002] When an atomizer for respiratory medicine is in use, compressed gas generated by a compression pump is used to atomize the liquid medicine through the cooperation of a nozzle and a separator in an atomization cup for the patient to inhale. Some patients use it effectively by wearing a mask. During the use process, since the provided pipeline needs to be used multiple times, it is easy to cause inconvenience in tilting and storing the pipeline.
[0003] In order to overcome the above defects, the prior art (a Chinese patent application with the application number CN201711463444.9 and the application date December 28, 2017) is a multifunctional atomizer for respiratory medicine. By pulling the baffle to the right through a positioning rod and a movable connecting rod, the storage tank will then discharge the treatment liquid, which is atomized by the atomizer and discharged through an atomization connecting pipe. An installation mechanical switch can make the treatment liquid flow out stably and be intercepted in time to prevent waste of the treatment liquid. At the same time, the reciprocating movement of the piston assists in strengthening the entry of the treatment liquid into the atomizer to prevent the occurrence of interrupted flow during treatment; there is also the prior art (a Chinese patent application with the application number CN202020657236.3 and the application date April 27, 2020) for an atomizer for respiratory medicine. By starting the motor, the first rotating rod and the stirring blade are driven to rotate, so that the liquid medicine is fully shaken in the stirring tank; the first rotating rod drives the first bevel gear to rotate, the first bevel gear drives the second bevel gear to rotate, the second bevel gear drives the second rotating rod to rotate, and the second rotating rod drives the rotating shaft to rotate, thereby releasing the mist delivery pipe, and then the liquid medicine can be directly sucked for use. When the motor rotates in reverse, it is convenient to store the mist delivery pipe; and the prior art (a Chinese patent application with the application number CN202021136075.X and the application date June 18, 2020) is an atomizer for respiratory medicine. When in use, through an adjustable fixing device provided on the delivery pipe winding column, a section of the atomizer delivery pipe surrounding the outside of the delivery pipe and connected to the delivery pipe atomizer is stably fixed, preventing the atomizer delivery pipe from loosening or even folding on the winding column due to the movement of the patient. At the same time, this adjustable fixing device can adjust the fixing point of the atomizer delivery pipe according to the needs of different patients, which is convenient for the patient to use. At the same time, after the patient finishes using, the atomizer delivery pipe can be stably fixed, further improving the use efficiency of the delivery pipe atomizer; although the prior art can complete the storage of the pipeline, during the working process, it is inconvenient to control the stability of the pipeline during use, which is easy to cause the pipeline to be accidentally stored during normal atomization of the patient, and it is inconvenient to clean and use the stored pipeline, which is easy to cause bacteria carried on the outside of the pipeline to enter the atomization device.
[0004] In view of the above problems, it is urgent to innovate and design on the basis of the original nebulizer for the department of respiratory medicine. Summary of the Invention
[0005] The purpose of the present invention is to provide a pipeline storage type nebulizer for the department of respiratory medicine, so as to solve the problems mentioned in the above background technology, such as inconvenient control of the stability of the pipeline during use, easy misplacement of the pipeline during normal atomization of patients, inconvenient cleaning and use of the stored pipeline, and easy entry of bacteria carried on the outer side of the pipeline into the atomization device.
[0006] To achieve the above purpose, the present invention provides the following technical solutions: A pipeline storage type nebulizer for the department of respiratory medicine is provided with a nebulization device convenient for carrying and working, and a face mask and a nebulization cup are loaded inside the nebulization device, and a trachea is installed on the lower surface of the nebulization cup; including: a protective cover, rotatably connected to the inside of the nebulization device, and a moving block is connected to the inner surface of the protective cover, and the moving block is provided with a sliding extrusion mechanism; a nested piece, nested on the outer surface of the trachea, and a conveying component is installed on the lower surface of the nested piece, and a protective shell is installed on the inner surface of the conveying component, and the protective shell is provided with an extrusion conveying mechanism; a winding roller, wound around the outside of the trachea, and the winding roller is connected to a support frame through a shaft, and a ratchet wheel is installed on the inner surface of the winding roller through a shaft, and a winding spring is elastically connected between the winding roller and the support frame, and the ratchet wheel is provided with an anti-reverse mechanism.
[0007] Preferably, the sliding extrusion mechanism includes a push rod rotatably connected to the outer surface of the moving block, and a cross rod is rotated on the right side of the outer surface of the push rod and is located at the rotation connection of the cross rod, and a protective cover is rotated on the upper side of the cross rod, and the lower surface of the cross rod is rotated with the nebulization device, and the nebulization device and the push rod form a threaded sliding extrusion structure through the moving block, and the push rod and the protective cover form a support flipping structure through the cross rod.
[0008] Through the above structure, the protective cover can be controlled to rotate automatically during use, avoiding automatic flipping, so as to avoid contaminating the clean face mask and nebulization cup.
[0009] Preferably, the nested piece and the trachea form a nested structure, and the nested piece and the conveying component form an integral structure, and the conveying component and the outer surface of the protective shell are installed in an embedded manner.
[0010] Through the above structure, the stable conveying of the trachea can be effectively controlled during use, and the wear of the trachea during recycling can be reduced through the nested piece.
[0011] Preferably, the extrusion and conveying mechanism includes a synchronous belt rotating on the inner surface of a protective shell. A first extrusion wheel is rotatably connected to the right side of the synchronous belt. The outer surface of the first extrusion wheel is in extrusion connection with an air pipe. The right side of the outer surface of the air pipe is connected to a second extrusion wheel, and the second extrusion wheel is provided with an elastic extrusion mechanism.
[0012] With the above structure, during use, the output and storage of the air pipe can be stably controlled, and the stability of the movement of the air pipe can be improved.
[0013] Preferably, the protective shell and the first extrusion wheel form a rotating structure through the synchronous belt. The first extrusion wheel and the second extrusion wheel form an extrusion structure with the air pipe, and the outer surfaces of the first extrusion wheel and the second extrusion wheel are both provided with serrated structures. A conical gear set is coaxially connected to the inner surface of the first extrusion wheel. The lower side of the horizontal gear of the conical gear set is connected to a first extrusion gear through a belt. The lower surface of the first extrusion gear is in one-way extrusion connection with a second extrusion gear. The lower surface of the second extrusion gear is coaxially installed with a cam. A first return spring is elastically connected between the lower surface of the cam mounting shaft body and the conveying component. An elastic airbag is installed on the lower side of the inner surface of the conveying component. A nozzle is installed on the outer surface of the elastic airbag. The first extrusion wheel and the first extrusion gear form a linkage rotating structure through a shaft and the conical gear set. The first extrusion gear and the second extrusion gear form a one-way engaging structure. The second extrusion gear and the cam form an integral structure. The outer surface of the cam is fitted with the outer surface of the air pipe. The cam and the conveying component form an elastic structure through a shaft and the first return spring. The conveying component and the elastic airbag form an extrusion structure through the cam. The elastic airbag and the air pipe form a cleaning structure through the nozzle.
[0014] With the above structure, during use, it is convenient to stably control the first extrusion wheel and the second extrusion wheel for conveying and storage through the synchronous belt, and cooperate with the protective shell to reduce the damage to the synchronous belt during disinfection. And during the later cleaning of the stored air pipe, it can cooperate with the meshing of the first extrusion gear and the second extrusion gear to control the cam to vibrate and clean the cleaned air pipe, and simultaneously extrude the elastic airbag to dry the air pipe through the nozzle.
[0015] Preferably, the elastic extrusion mechanism includes a moving frame rotatably connected to the outer surface of the second extrusion wheel. The moving frame is limited and slides in the conveying component. An extrusion spring is elastically connected between the conveying component and the moving frame. The middle section of an elastic sheet installed on the lower surface of the conveying component penetrates through the air pipe. A limiting wheel is installed on the lower surface of the conveying component. The air pipe is squeezed and connected between the limiting wheels. The conveying component is provided with a nested disinfection mechanism.
[0016] With the above structure, during use, the stability of the moving frame on the conveying component can be improved, slippage during conveying can be avoided, and excessive extrusion of the air pipe during conveying and storage can be avoided.
[0017] Preferably, the second extrusion wheel forms an elastic sliding and rotating structure with the conveying component through a moving frame and an extrusion spring, and the conveying component forms a penetrating sealing structure with the air pipe through an elastic sheet, and the conveying component forms a limiting structure with the air pipe through a limiting wheel.
[0018] With the above structure, during use, the elastic sliding stability of the moving frame can be effectively controlled, and in cooperation with the elastic sheet, dust can be prevented from entering the inner bin of the atomizing device, and the air pipe for recovery and release can be limited through the limiting wheel.
[0019] Preferably, the nested disinfection mechanism includes a disinfection pipe nested on the inner surface of the conveying component, and spray heads are uniformly installed on the outer surface of the disinfection pipe, and a disinfectant liquid tank is installed at the rear of the disinfection pipe. At the same time, a waste pipe is installed on the lower surface of the conveying component, and the lower surface of the waste pipe is connected to a waste bin, and a magnetic attraction component is magnetically connected between the waste bin and the atomizing device.
[0020] With the above structure, during use, the inside of the conveying component can be effectively disinfected, and the waste liquid and unvaporized disinfectant liquid generated during disinfection can be discharged. And the disinfectant liquid uses mobile alcohol, which is easy to volatilize and reduces the growth of bacteria.
[0021] Preferably, the conveying component and the disinfection pipe form a nested structure, and the disinfection pipe, the spray heads and the disinfectant liquid tank form an integrated structure. And the conveying component forms a waste liquid discharge mechanism with the waste bin through the waste pipe, and the waste bin and the atomizing device form a magnetic attraction structure through the magnetic attraction component.
[0022] With the above structure, during use, the convenience of the combined use of the disinfection device and the waste liquid discharge mechanism is improved, and the waste liquid is easy to clean up.
[0023] Preferably, the air pipe and the winding roller form a winding structure, and the winding roller forms an elastic rotating structure with the support frame through a shaft and a ratchet, and the winding roller and the shaft form an integrated structure with the ratchet; the anti-reverse mechanism includes a pawl rod meshed with the lower surface of the ratchet, and the left side of the pawl rod is rotationally positioned on the support frame, and a tension spring is elastically connected between the pawl rod and the right side of the support frame. At the same time, an extrusion block is connected to the right side of the pawl rod, and an extrusion rod is installed on the outer surface of the extrusion block, and a second return spring is elastically connected between the extrusion rod and the atomizing device. At the same time, metal sheets are respectively installed between the extrusion rod and the support frame; the ratchet and the pawl rod form a meshing structure, and the pawl rod forms an elastic positioning and rotating structure with the support frame through the tension spring, and the pawl rod and the extrusion block form an oblique extrusion structure, and the extrusion block and the extrusion rod form an integrated structure. And the extrusion rod forms an elastic structure with the atomizing device through the second return spring, and the extrusion rod forms a sliding contact and power-on structure with the support frame through the metal sheet.
[0024] With the above structure, during use, the stability of storage and use can be improved, the released trachea can be prevented from automatically retracting, and when the ratchet mechanism releases the limit, the trachea will automatically elastically retract, and the fitting between the metal sheets will synchronously start the motor and the air pump for storing the trachea and cleaning the trachea.
[0025] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0026] 1. The pipeline storage type nebulizer for respiratory medicine is provided with a protective cover that facilitates flipping the protective mask and the nebulizer cup, preventing others from accidentally opening it, and can perform dust-proof storage treatment on the clean or washed ones. Through the cooperation of the conveying component, the disinfection chamber, and the waste liquid chamber penetrated by the trachea, the trachea during storage is disinfected. Through the cooperation of the ratchet, the ratchet pawl rod, and the extrusion rod of the winding roller, the storage stability is controlled, and the disinfection and driving storage work are synchronously started.
[0027] 2. The pipeline storage type nebulizer for respiratory medicine is provided with a sliding extrusion mechanism, which facilitates the rotation of the cross bar between the atomization device and the protective cover through the cooperation of the moving block and the push rod to support and flip the protective cover, increasing the protection for the mask and the nebulizer cup. Further, an extrusion conveying mechanism and an elastic extrusion mechanism are provided. Through the cooperation of the extrusion wheel one controlled by rotation and the extrusion wheel two on the elastic adjustment moving frame, the trachea is micro-elastically extruded and conveyed. Both of them are provided with serrated structures on the contact surface with the trachea, which can not only prevent the trachea from slipping, but also improve the conveying stability and increase the friction force. Further, a nested disinfection mechanism is provided, which can disinfect the trachea driven for storage through the cooperation of the disinfection pipe and the nozzle, and discharge the cleaned and unevaporated disinfectant. When the trachea is cleaned with disinfectant and the extrusion wheel one is used to store the trachea, through the cooperation of the extrusion gear one and the extrusion gear two, the cam is controlled to clean the trachea after cleaning, and it is used in cooperation with the spray pipe for cleaning.
[0028] 3. The pipeline storage type nebulizer for respiratory medicine is provided with an anti-reversal mechanism. Through the cooperation of the ratchet and the ratchet pawl rod on the shaft body installed with the winding roller, the released trachea is prevented from reversing. And through the winding spring supported and assembled by the winding roller and the support frame, the winding treatment can be carried out during storage, and the use of the extrusion rod can improve the conveying and recycling stability. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 It is a three-dimensional structural schematic diagram of the atomization device of the present invention;
[0030] Figure 2 It is a three-dimensional structural schematic diagram of a partial cross-section of the protective cover of the present invention;
[0031] Figure 3For the present invention Figure 2 Schematic diagram of the enlarged three-dimensional structure at location A in the present invention;
[0032] Figure 4 Schematic diagram of the three-dimensional structure of the partial cross-section of the atomizing device of the present invention;
[0033] Figure 5 Schematic diagram of the three-dimensional structure of the partial cross-section of the conveying component of the present invention;
[0034] Figure 6 Schematic diagram of the bottom view three-dimensional structure of the conveying component of the present invention;
[0035] Figure 7 For the present invention Figure 6 Schematic diagram of the enlarged three-dimensional structure at location B in the present invention;
[0036] Figure 8 Schematic diagram of the semi-cross-sectional three-dimensional structure of the disinfectant solution tank of the present invention;
[0037] Figure 9 Schematic diagram of the semi-cross-sectional three-dimensional structure of the support frame of the present invention;
[0038] Figure 10 Schematic diagram of the bottom view three-dimensional structure of the pawl rod of the present invention.
[0039] In the figure: 1. Atomizing device; 2. Protective cover; 3. Moving block; 4. Push rod; 5. Cross bar; 6. Mask; 7. Atomizing cup; 8. Air pipe; 9. Nesting piece; 10. Conveying component; 11. Protective shell; 12. Synchronous belt; 13. Extrusion wheel 1; 1301 Bevel gear set; 1302. Extrusion gear 1; 1303. Extrusion gear 2; 1304. Cam; 1305. Return spring 1; 1306. Elastic airbag; 1307. Spray pipe; 14. Extrusion wheel 2; 15. Moving frame; 16. Extrusion spring; 17. Elastic piece; 18. Limiting wheel; 19. Disinfection pipe; 20. Nozzle; 21. Disinfectant solution tank; 22. Waste pipe; 23. Waste bin; 24. Magnetic attraction component; 25. Winding roller; 26. Support frame; 27. Ratchet; 28. Winding spring; 29. Pawl rod; 30. Tensile spring; 31. Extrusion block; 32. Extrusion rod; 33. Return spring 2; 34. Metal sheet. Detailed implementation manners
[0040] 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.
[0041] Please refer to Figures 1 - 9, the present invention provides a technical solution: a pipeline storage type nebulizer for the department of respiratory medicine, which is provided with a nebulizing device 1 for convenient carrying and working. The inside of the nebulizing device 1 is loaded with a face mask 6 and a nebulizing cup 7, and a trachea 8 is installed on the lower surface of the nebulizing cup 7.
[0042] Embodiment 1: For the technical solution as Figures 1 - 3 shown, the present invention provides the following technical solution: a pipeline storage type nebulizer for the department of respiratory medicine, which discloses: including: a protective cover 2, rotatably connected to the inside of the nebulizing device 1, and a moving block 3 is connected to the inner surface of the protective cover 2, and the moving block 3 is provided with a sliding extrusion mechanism; the sliding extrusion mechanism includes a push rod 4 rotatably connected to the outer surface of the moving block 3, and a cross bar 5 is rotatably connected to the right side of the outer surface of the push rod 4 and is located at the rotation connection of the cross bar 5. A protective cover 2 is rotatably connected to the upper side of the cross bar 5, and the nebulizing device 1 is rotatably connected to the lower surface of the cross bar 5. The nebulizing device 1 and the push rod 4 form a threaded sliding extrusion structure through the moving block 3, and the push rod 4 and the protective cover 2 form a support flipping structure through the cross bar 5.
[0043] When using the nebulizer for the department of respiratory medicine, the motor built in the nebulizing device 1 is driven to rotate the threaded rod, the moving block 3 is adjusted by threading for limit sliding, and the horizontal limit movement of the push rod 4 is adjusted through the moving block 3. Through the rotational connection between the push rod 4 and the cross bar 5, the cross bar 5 is controlled to expand, so as to control the cross bar 5 to push the protective cover 2 to rotate and open with the nebulizing device 1, facilitating the taking of the face mask 6 and the nebulizing cup 7 built in the upper layer of the nebulizing device 1 for nebulizing use.
[0044] Embodiment 2: Such as Figure 1 , Figure 4 , Figure 5 , Figure 6 , Figure 7 and Figure 8The described technical solution, based on Embodiment 1, also discloses the release, storage, and disinfection of the trachea 8, and the specific content is as follows: The nested piece 9 is nested on the outer surface of the trachea 8, and a conveying component 10 is installed on the lower surface of the nested piece 9. A protective shell 11 is installed on the inner surface of the conveying component 10, and an extrusion conveying mechanism is provided in the protective shell 11; The nested piece 9 and the trachea 8 form a nested structure, and the nested piece 9 and the conveying component 10 form an integrated structure, and the conveying component 10 and the outer surface of the protective shell 11 are installed in an embedded manner; The extrusion conveying mechanism includes a synchronous belt 12 rotating on the inner surface of the protective shell 11. A first extrusion wheel 13 is rotatably connected to the right side of the synchronous belt 12, and the outer surface of the first extrusion wheel 13 is in extrusion connection with the trachea 8. A second extrusion wheel 14 is connected to the right side of the outer surface of the trachea 8, and an elastic extrusion mechanism is provided on the second extrusion wheel 14; The protective shell 11 and the first extrusion wheel 13 form a rotating structure through the synchronous belt 12, and the first extrusion wheel 13 and the second extrusion wheel 14 and the trachea 8 form an extrusion structure, and the outer surfaces of the first extrusion wheel 13 and the second extrusion wheel 14 are both provided with serrated structures; A bevel gear set 1301 is coaxially connected to the inner surface of the first extrusion wheel 13. A first extrusion gear 1302 is connected to the lower side of the horizontal gear of the bevel gear set 1301 through a belt. A second extrusion gear 1303 is unidirectionally extruded and connected to the lower surface of the first extrusion gear 1302. A cam 1304 is coaxially installed on the lower surface of the second extrusion gear 1303. A first return spring 1305 is elastically connected between the lower surface of the installation shaft body of the cam 1304 and the conveying component 10. An elastic airbag 1306 is installed on the lower side of the inner surface of the conveying component 10. A spray pipe 1307 is installed on the outer surface of the elastic airbag 1306; The first extrusion wheel 13 and the first extrusion gear 1302 form a linkage rotation structure through a shaft and the bevel gear set 1301. The first extrusion gear 1302 and the second extrusion gear 1303 form a one-way engagement structure. The second extrusion gear 1303 and the cam 1304 form an integrated structure, and the outer surface of the cam 1304 is in contact with the outer surface of the trachea 8. The cam 1304 and the conveying component 10 form an elastic structure through a shaft and the first return spring 1305. The conveying component 10 and the elastic airbag 1306 form an extrusion structure through the cam 1304. The elastic airbag 1306 and the trachea 8 form a cleaning structure through the spray pipe 1307; The elastic extrusion mechanism includes a moving frame 15 rotatably connected to the outer surface of the second extrusion wheel 14. The moving frame 15 is limited and slides in the conveying component 10. An extrusion spring 16 is elastically connected between the conveying component 10 and the moving frame 15. The middle section of an elastic piece 17 installed on the lower surface of the conveying component 10 penetrates through the trachea 8. A limiting wheel 18 is installed on the lower surface of the conveying component 10. The trachea 8 is squeezed and connected between the limiting wheels 18. A nested disinfection mechanism is provided in the conveying component 10;The second extrusion wheel 14 and the conveying assembly 10 form an elastic sliding and rotating structure through the moving frame 15 and the extrusion spring 16. The conveying assembly 10 and the air pipe 8 form a penetrating sealing structure through the elastic sheet 17. The conveying assembly 10 and the air pipe 8 form a limiting structure through the limiting wheel 18. The nested disinfection mechanism includes a disinfection pipe 19 nested on the inner surface of the conveying assembly 10. The outer surface of the disinfection pipe 19 is evenly provided with nozzles 20. A disinfectant liquid tank 21 is installed at the rear side of the disinfection pipe 19. A waste pipe 22 is installed on the lower surface of the conveying assembly 10. The lower surface of the waste pipe 22 is connected to a waste bin 23. A magnetic attraction assembly 24 is magnetically connected between the waste bin 23 and the atomizing device 1. The conveying assembly 10 and the disinfection pipe 19 form a nested structure. The disinfection pipe 19 and the nozzles 20 and the disinfectant liquid tank 21 form an integrated structure. The conveying assembly 10 and the waste bin 23 form a waste liquid discharge mechanism through the waste pipe 22. The waste bin 23 and the atomizing device 1 form a magnetic attraction structure through the magnetic attraction assembly 24.;
[0045] When the mask 6 and the atomizing cup 7 are taken out for work, press the button on the atomizing device 1 to control the motor drive outside the protective shell 11 assembled by the conveying component 10. The synchronous pulley on the output shaft drives the synchronous belt 12 to rotate. The use of the protective shell 11 prevents the disinfectant from damaging the synchronous belt 12 and reduces the entry of bacteria. Thus, the synchronous belt 12 is adjusted to control the rotation of the first pressing wheel 13. When the first pressing wheel 13 is in use, it will cooperate with the moving frame 15 adjusted by the pressing spring 16 of the conveying component 10 to control the second pressing wheel 14 to contact the trachea 8. Driven by the rotation of the first pressing wheel 13, it is used for the atomizing work of releasing the trachea 8. When the trachea 8 is released, it will cooperate with the nested piece 9 to avoid damage to the trachea 8 during release and later storage. And it will cooperate with the limiting wheel 18 installed on the lower side of the conveying component 10 to avoid tilting of the trachea 8 caused by its movement and avoid damage to the trachea 8. When the trachea 8 is stored, the pump body of the disinfectant tank 21 will be started synchronously to control the disinfectant to be transported to the nozzle 20 through the disinfection pipe 19 and disinfect the trachea 8 stored in the conveying component 10, and synchronously disinfect its internal structure. And the waste liquid during disinfection will be discharged to the waste bin 23 through the waste pipe 22. After atomization is completed, take out the waste bin 23 for cleaning. And through the magnetic attraction component 24 between the waste bin 23 and the atomizing device 1, it is prevented that the waste bin 23 falls off when carrying the atomizing device 1. And a feed port is synchronously provided on the disinfectant tank 21 for adding disinfectant. When the first pressing wheel 13 controls the release of the trachea 8, the first pressing gear 1302 and the second pressing gear 1303 will be disengaged, and the cam 1304 will not start working. When the first pressing wheel 13 controls the storage of the trachea 8, the bevel gear set 1301 will be controlled to rotate, and the horizontal gear assembly on the bevel gear set 1301 will use a belt to control the first pressing gear 1302 and the second pressing gear 1303 to engage with each other, then drive the cam 1304 installed on the second pressing gear 1303 to contact and impact the side of the trachea 8, and clean the water droplets on the trachea 8, achieving rapid cleaning of the disinfectant and impurities and improving the cleaning effect. When the cam 1304 works, the first reset spring 1305 assembled between it and the conveying component 10 will control the cam 1304 to avoid sinking during work. And the cam 1304 will synchronously press the elastic airbag 1306 to intake air through the one-way valve assembled on it, and the spray pipe 1307 connected to the other assembled one-way valve assembly pipe will clean and dry the trachea 8, improving the cleaning effect of the trachea 8.
[0046] Embodiment 3: As Figure 1 , Figure 9 and Figure 10The technical solution shown, on the basis of Embodiment 2, also discloses the winding of the trachea 8, and the specific content is as follows: a winding roller 25, which is wound around the outside of the trachea 8, and the winding roller 25 is connected to a support frame 26 through a shaft. A ratchet wheel 27 is installed on the inner surface of the winding roller 25 through a shaft. A winding spring 28 is elastically connected between the winding roller 25 and the support frame 26. At the same time, the ratchet wheel 27 is provided with an anti-reverse mechanism; the trachea 8 and the winding roller 25 form a winding structure, and the winding roller 25 and the support frame 26 form an elastic rotation structure through a shaft and the ratchet wheel 27, and the winding roller 25 and the ratchet wheel 27 form an integral structure through a shaft; the anti-reverse mechanism includes a pawl rod 29 meshing with the lower surface of the ratchet wheel 27, and the left side of the pawl rod 29 is positioned and rotated on the support frame 26. A tension spring 30 is elastically connected between the pawl rod 29 and the right side of the support frame 26. At the same time, a pressing block 31 is connected to the right side of the pawl rod 29, and a pressing rod 32 is installed on the outer surface of the pressing block 31. A second return spring 33 is elastically connected between the pressing rod 32 and the atomizing device 1. At the same time, metal sheets 34 are respectively installed between the pressing rod 32 and the support frame 26; the ratchet wheel 27 and the pawl rod 29 form a meshing structure, and the pawl rod 29 and the support frame 26 form an elastic positioning rotation structure through the tension spring 30. The pawl rod 29 and the pressing block 31 form an oblique extrusion structure. At the same time, the pressing block 31 and the pressing rod 32 form an integral structure, and the pressing rod 32 and the atomizing device 1 form an elastic structure through the second return spring 33. The pressing rod 32 and the support frame 26 form a sliding contact power-on structure through the metal sheet 34.
[0047] When the trachea 8 is released, it will pull the winding roller 25 to rotate on the support frame 26, and the winding spring 28 between the support frame 26 and the winding roller 25 will contract. The ratchet wheel 27 assembled on the shaft body where the winding spring 28 is installed will be limited by the pawl rod 29 driven by the tension spring 30 to rotate laterally, preventing the rotated ratchet wheel 27 from reversing, thus preventing the released trachea 8 from reversing and retracting, controlling the use stability of the trachea 8. When the trachea 8 is recovered, it will control the pressing rod 32 to be pressed into the atomizing device 1, and control the contraction of the second return spring 33 connecting the two. The metal sheet 34 on the support frame 26 contacts the metal sheet 34 on the pressing rod 32, simultaneously notifying the driving motor and the disinfection pump body to work. The pressing rod 32 drives the pressing block 31 to press the pawl rod 29, controlling the one-way rotation of the pawl rod 29 and pulling the tension spring 30 to expand. When the pawl rod 29 disengages from the ratchet wheel 27, the winding roller 25 will cooperate with the elastic reset of the winding spring 28 to store and disinfect the trachea 8, improving the use stability and safety during atomization work.
[0048] The content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.
[0049] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will appreciate that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A pipe storage type nebulizer for respiratory medicine, provided with a nebulizer device (1) that is easy to carry and work, wherein the nebulizer device (1) is internally loaded with a mask (6) and a nebulizer cup (7), and a trachea (8) is installed on the lower surface of the nebulizer cup (7); It is characterized in that include: A protective cover (2) is rotatably connected to the inside of the atomizing device (1), and a moving block (3) is connected to the inner surface of the protective cover (2), and the moving block (3) is provided with a sliding extrusion mechanism; A nesting sheet (9) is nested in the outer surface of the trachea (8), and a conveying assembly (10) is installed on the lower surface of the nesting sheet (9), and a protective shell (11) is installed on the inner surface of the conveying assembly (10), and the protective shell (11) is provided with an extrusion conveying mechanism; A winding roller (25) is wound around the outer side of the air pipe (8), and the winding roller (25) is connected to a support frame (26) via an axis, and a ratchet (27) is installed on the inner surface of the winding roller (25) via the axis, and a winding spring (28) is elastically connected between the winding roller (25) and the support frame (26), and the ratchet (27) is provided with an anti-reversal mechanism.
2. A pipe-storable nebulizer for respiratory medicine according to claim 1, characterized in that: The sliding extrusion mechanism comprises a push rod (4) rotatably connected to the outer surface of a moving block (3), and a cross rod (5) is rotatably provided on the right side of the outer surface of the push rod (4) and is located at the rotation connection of the cross rod (5), and a protective cover (2) is rotatably provided on the upper side of the cross rod (5), and an atomizing device (1) is rotatably provided on the lower surface of the cross rod (5), and the atomizing device (1) forms a threaded sliding extrusion structure with the push rod (4) through the moving block (3), and the push rod (4) forms a supporting flipping structure with the cross rod (5) and the protective cover (2).
3. The pipeline storage type nebulizer for respiratory medicine according to claim 1, characterized in that: The nested sheet (9) and the air pipe (8) form a nested structure, and the nested sheet (9) and the conveying component (10) form an integrated structure, and the conveying component (10) and the outer surface of the protective shell (11) are embedded and installed.
4. The pipeline storage type nebulizer for respiratory medicine according to claim 1, characterized in that: The extrusion conveying mechanism comprises a synchronous belt (12) rotating on the inner surface of the protective shell (11), and the right side of the synchronous belt (12) is rotationally connected to an extrusion wheel (13), and the outer surface of the extrusion wheel (13) is extrusion-connected to an air pipe (8), and the right side of the outer surface of the air pipe (8) is connected to an extrusion wheel (14), and the extrusion wheel (14) is provided with an elastic extrusion mechanism.
5. The pipeline storage type nebulizer for respiratory medicine according to claim 4, characterized in that: The protective shell (11) forms a rotating structure with the extrusion wheel 1 (13) through a synchronous belt (12), and the extrusion wheel 1 (13) and the extrusion wheel 2 (14) form an extrusion structure with the air pipe (8), and the outer surfaces of the extrusion wheel 1 (13) and the extrusion wheel 2 (14) are both provided with a serrated structure; the inner surface of the extrusion wheel 1 (13) is coaxially connected with a bevel gear set (1301), and the lower side of the horizontal gear of the bevel gear set (1301) is connected with the extrusion gear 1 (1302) through a belt, and the lower surface of the extrusion gear 1 (1302) is unidirectionally extruded and connected with the extrusion gear 2 (1303), and at the same time, a cam (1304) is coaxially installed on the lower surface of the extrusion gear 2 (1303), and the lower surface of the cam (1304) mounting shaft is elastically connected with a return spring 1 (1305) and the lower side of the inner surface of the conveying assembly (10) is provided with a An elastic airbag (1306) is installed, and a nozzle (1307) is installed on the outer surface of the elastic airbag (1306); the extrusion wheel (13) and the extrusion gear (1302) form a linkage rotation structure through the shaft and the bevel gear set (1301), and the extrusion gear (1302) and the extrusion gear (1303) form a one-way locking structure, and the extrusion gear (1303) and the cam (1304) form an integrated structure, and the outer surface of the cam (1304) is fitted with the outer surface of the air pipe (8), and the cam (1304) and the conveying component (10) form an elastic structure through the shaft and the return spring (1305), and the conveying component (10) and the elastic airbag (1306) form an extrusion structure through the cam (1304), and the elastic airbag (1306) and the air pipe (8) form a cleaning structure through the nozzle (1307).
6. The pipeline storage type atomizer for respiratory medicine according to claim 4, characterized in that: The elastic extrusion mechanism comprises a movable frame (15) rotatably connected to the outer surface of the second extrusion wheel (14), and the movable frame (15) is limitedly slid in the conveying component (10), and an extrusion spring (16) is elastically connected between the conveying component (10) and the movable frame (15), and at the same time, the middle section of the elastic sheet (17) installed on the lower surface of the conveying component (10) passes through the air pipe (8), and the lower surface of the conveying component (10) is installed with a limiting wheel (18), and the air pipe (8) is extruded and connected between the limiting wheels (18), and at the same time, the conveying component (10) is provided with a nested disinfection mechanism.
7. The pipeline storage type atomizer for respiratory medicine according to claim 6, characterized in that: The second extrusion wheel (14) forms an elastic sliding rotation structure with the conveying component (10) through a moving frame (15) and an extrusion spring (16), and the conveying component (10) forms a through-sealing structure with the air pipe (8) through an elastic sheet (17), and the conveying component (10) forms a limiting structure with the air pipe (8) through a limiting wheel (18).
8. The pipeline storage type atomizer for respiratory medicine according to claim 6, characterized in that: The nested disinfection mechanism comprises a disinfection tube (19) nested on the inner surface of a conveying component (10), and a nozzle (20) is evenly installed on the outer surface of the disinfection tube (19), and a disinfectant liquid bin (21) is installed on the rear side of the disinfection tube (19), and a waste pipe (22) is installed on the lower surface of the conveying component (10), and the lower surface of the waste pipe (22) is connected to a waste bin (23), and a magnetic attraction component (24) is magnetically connected between the waste bin (23) and the atomization device (1).
9. The pipeline storage type atomizer for respiratory medicine according to claim 8, characterized in that: The conveying component (10) and the disinfection tube (19) form a nested structure, and the disinfection tube (19) and the nozzle (20) and the disinfection liquid bin (21) form an integrated structure. The conveying component (10) forms a waste liquid discharge mechanism through the waste pipe (22) and the waste bin (23), and the waste bin (23) forms a magnetic attraction structure with the atomization device (1) through the magnetic attraction component (24).
10. The pipeline storage type nebulizer for respiratory medicine according to claim 1, characterized in that: The air pipe (8) and the winding roller (25) form a winding structure, and the winding roller (25) and the support frame (26) form an elastic rotating structure through the shaft and the ratchet (27), and the winding roller (25) and the ratchet (27) form an integrated structure; the anti-reversal mechanism includes a ratchet rod (29) meshed with the lower surface of the ratchet (27), and the left side of the ratchet rod (29) is positioned and rotated on the support frame (26), and the ratchet rod (29) and the right side of the support frame (26) are elastically connected with a tension spring (30), and the right side of the ratchet rod (29) is connected with an extrusion block (31), and the outer surface of the extrusion block (31) is installed with an extrusion rod (32), and a reset spring (33) is elastically connected between the extrusion rod (32) and the atomizing device (1), and metal sheets (34) are respectively installed between the extrusion rod (32) and the support frame (26); The ratchet wheel (27) and the ratchet rod (29) form a meshing structure, and the ratchet rod (29) and the support frame (26) form an elastic positioning rotation structure through a tension spring (30), and the ratchet rod (29) and the extrusion block (31) form an oblique extrusion structure, while the extrusion block (31) and the extrusion rod (32) form an integrated structure, and the extrusion rod (32) and the atomization device (1) form an elastic structure through a second return spring (33), and the extrusion rod (32) and the support frame (26) form a sliding contact power supply structure through a metal sheet (34).
Citation Information
Patent Citations
Multifunctional nebulizer for respiratory medicine department
CN108187197A
Atomizer for respiratory medicine department
CN213076997U
Atomizer for respiratory medicine department
CN213252143U
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