Efficient aerosol inhalation adjuvant therapy equipment
By setting up a support table and slider in the atomizer device for fixing, and using a clamping assembly to clamp the telescopic catheter between the atomizer cup and the mask, the equipment movement and connection loosening caused by children is solved, and the stability and effectiveness of the treatment are improved.
Patent Information
- Application Number
- CN202510268801.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-07
- Publication Date
- 2025-06-10
AI Technical Summary
When children use a nebulizer for auxiliary treatment, due to frequent movement, the connection between the mask and the nebulizer may be loosened or dropped, and then drag the nebulizer to move, causing damage to the equipment and affecting the treatment effect.
An efficient atomization inhalation auxiliary treatment device is designed. By setting a support table and a slider at the bottom of the compression atomizer, the slider is used to drive the limit plate to fix the compression atomizer to avoid its movement; at the same time, a clamping assembly is arranged between the atomization cup and the mask, including a moving clamp and a fixing clamp, which clamps the telescopic conduit through the action of the reset spring to improve the stability of the connection.
It effectively avoids the problems of movement and loose connection caused by children's movement, improves the stability and treatment effect of the equipment, and reduces the risk of equipment damage.
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Figure CN120114711A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of nebulizer devices, and particularly to an efficient aerosol inhalation assisted treatment device. Background Art
[0002] An aerosol inhalation assisted treatment device is a medical device used to convert drugs into fine particles (mist) and directly deliver them into the lungs through the respiratory system. This device can improve the absorption efficiency of drugs, reduce side effects, and is suitable for the treatment of various respiratory diseases. The aerosol inhalation assisted treatment device converts liquid drugs into tiny aerosol particles through compressed gas or ultrasonic vibration, and these particles can enter the respiratory tract and lungs through the patient's breathing.
[0003] In the prior art, during the use of a medical compressed nebulizer, generally one end of a connecting tube is sleeved with the output end of the nebulizer, the other end of the connecting tube is sleeved with the bottom input end of the nebulizer cup, and then the output end of the nebulizer cup is directly sleeved with a face mask.
[0004] However, when using a nebulizer to assist in the treatment of children, due to the fact that children often move around, it may cause the connection between the face mask and the nebulizer cup to become loose or fall off. At the same time, during the movement of children, by pulling the connecting tube, the nebulizer may be dragged to move, and then the nebulizer may be knocked and damaged, thus affecting the treatment process and treatment effect. For this reason, the present invention proposes an efficient aerosol inhalation assisted treatment device to solve the above problems. Summary of the Invention
[0005] The purpose of the present invention is to provide an efficient aerosol inhalation assisted treatment device to solve the problems raised in the above background art.
[0006] To achieve the above purpose, the present invention provides the following technical solution: An efficient aerosol inhalation assisted treatment device, comprising: a compressed nebulizer, a support platform is provided at the bottom of the compressed nebulizer, two sides of the upper surface of the support platform are slidably connected with sliders, one side of the upper surface of the slider is fixedly connected with a limiting plate, the other side of the upper surface of the slider is fixedly connected with a fixing frame, the fixing frame is rotatably connected with a blocking plate through a pin shaft, and a support spring is fixedly connected between the blocking plate and the fixing frame;
[0007] The output end of the compressed nebulizer is communicated with the input end of the nebulizer cup through a connecting tube, and the output end of the nebulizer cup is communicated with the face mask through a telescopic catheter;
[0008] Clamping components are provided on the outer circumferential surface of the nebulizer cup and one side of the face mask. The clamping components include movable clamping blocks, and fixed clamping blocks are provided above the movable clamping blocks.
[0009] Preferably, suction cup seats are arranged on both sides of the lower surface of the support platform. The suction cup seats are symmetrically arranged with respect to the central plane of the support platform. The upper surface of the suction cup seat is fixedly connected to the lower surface of the support platform, and a connecting shaft is arranged between the two suction cup seats.
[0010] Preferably, handwheels are sleeved at both ends of the connecting shaft and fixedly connected to the handwheels. A driving gear is arranged on one side of the handwheel. There are two driving gears which are symmetrically arranged with respect to the connecting shaft. The driving gears are fixedly sleeved on the connecting shaft.
[0011] Preferably, a driven gear is meshed with the upper side of the driving gear. The driven gear is fixedly sleeved on the rotating shaft. Limiting seats are arranged on both sides of the driven gear. The rotating shaft is rotatably sleeved in the limiting seats, and spiral grooves are formed on both sides of the rotating shaft.
[0012] Preferably, the spiral groove is slidably connected with the sliding pin. The sliding pin is sleeved in the moving block and fixedly connected to the moving block. The moving block is sleeved on the rotating shaft and slidably connected to the rotating shaft.
[0013] Preferably, the upper surface of the moving block is fixedly connected to the lower surface of the slider. A limiting groove is formed on the upper surface of the support platform. The slider is clamped in the limiting groove and slidably connected to the limiting groove.
[0014] Preferably, one end of the connecting pipe is sleeved on the output end of the compression atomizer, and the other end of the connecting pipe is sleeved on the input end at the bottom of the atomization cup. U-shaped frames are fixedly connected to the outer circumferential surface of the top of the atomization cup and one side of the mask respectively. Both sides of the bottom of the U-shaped frame are fixedly connected to the fixed shell, and the U-shaped frame is fixedly connected to the fixed clamping block.
[0015] Preferably, the middle of the top of the fixed shell is slidably connected to the moving clamping block, and the bottom of the fixed shell is slidably connected to the pressing block. The middle of the upper surface of the pressing block is fixedly connected to one end of the first return spring, and the other end of the first return spring is fixedly connected to the moving clamping block.
[0016] Preferably, upper grooves are formed on both sides of the bottom of the moving clamping block, and lower grooves are formed on both sides of the top of the pressing block. Slide columns are slidably installed in the upper grooves and the lower grooves respectively, and the two slide columns are fixedly connected by a rotating block.
[0017] Preferably, the middle of the rotating block is rotatably connected to the limiting shaft. Both ends of the limiting shaft are fixedly sleeved in the fixed shell. A vertical rod is arranged on one side of the rotating block. The bottom of the vertical rod is fixedly connected to the pressing block. The vertical rod is slidably sleeved in the fixed shell. A second return spring is installed on one side of the vertical rod. One end of the second return spring is fixedly connected to the end of the pressing block, and the other end of the second return spring is fixedly connected to the inner wall of the fixed shell.
[0018] Compared with the prior art, the beneficial effects of the present invention are:
[0019] 1. By the opposite sliding of the two sliders, the limiting plate is driven to move towards the direction close to the compression atomizer until the limiting plate abuts against the side wall of the compression atomizer. Then, the blocking plate is released, and under the reverse elastic force of the support spring, the blocking plate is reset. Thus, the blocking plate is obliquely supported on the upper surface of the support table, and then the slider is blocked to prevent the slider from sliding. Furthermore, the slider limits the limiting plate, and finally the limiting plate limits and fixes the compression atomizer, so as to avoid dragging the compression atomizer to move due to pulling the connecting pipe, and further avoid the collision and damage of the compression atomizer.
[0020] 2. By simultaneously pressing the U-shaped frame and the pressing block, the pressing block will be pressed at this time and slide towards the inside of the fixed shell. Thus, the pressing block slides between the lower grooves on both sides of its top and the sliding columns at the bottom of the rotating block, pushing the sliding columns at the bottom of the rotating block to move upward. The rotating block rotates under the limitation of the limiting shaft, and then the sliding columns at the top of the rotating block slide between the upper grooves opened on both sides of the bottom of the moving clamping block, making the sliding columns at the top of the rotating block move downward. During this process, the second return spring is compressed inside the fixed shell. Combined with the downward movement of the moving clamping block, the first return spring is compressed. At this time, the telescopic catheter is inserted correspondingly. After the insertion is completed, the pressing block is released. Under the combined reverse elastic force of the first return spring and the second return spring, the pressing block moves downward and the moving clamping block moves upward. Furthermore, the moving clamping block clamps and fixes the end of the telescopic catheter between the moving clamping block and the fixed clamping block, thereby increasing the connection stability of the telescopic catheter, and further improving the connection stability between the atomization cup and the mask when the child moves around, ensuring the treatment effect and avoiding delaying the treatment process. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0022] Figure 2 is a top view schematic diagram of the overall structure of the present invention;
[0023] Figure 3 is of the present invention Figure 2 is an enlarged schematic diagram of the structure at A in the present invention;
[0024] Figure 4 is a bottom view schematic diagram of the overall structure of the present invention;
[0025] Figure 5 is of the present invention Figure 4 is an enlarged schematic diagram of the structure at B in the present invention;
[0026] Figure 6 is a side view schematic diagram of the internal structure of the present invention.
[0027] In the figure: 1. Compression nebulizer; 2. Support platform; 3. Slide block; 4. Limit plate; 5. Fixed frame; 6. Baffle plate; 7. Support spring; 8. Connecting pipe; 9. Nebulization cup; 10. Telescopic catheter; 11. Face mask; 12. Clamping assembly; 13. Movable clamping block; 14. Fixed clamping block; 15. Suction cup seat; 16. Connecting shaft; 17. Handwheel; 18. Driving gear; 19. Driven gear; 20. Rotating shaft; 21. Limit seat; 22. Spiral groove; 23. Slide pin; 24. Moving block; 25. Limit groove; 26. U-shaped frame; 27. Fixed shell; 28. Pressing block; 29. First return spring; 30. Upper groove; 31. Lower groove; 32. Slide column; 33. Rotating block; 34. Limit shaft; 35. Vertical rod; 36. Second return spring. Detailed implementation mode
[0028] In order to clearly and completely describe the purpose and technical solution of the present invention, and make the advantages more clear, the following further details the embodiments of the present invention with reference to the drawings. It should be understood that the specific embodiments described herein are part of the embodiments of the present invention, rather than all of the embodiments, and are only used to explain the embodiments of the present invention, not to limit the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0029] Embodiment 1: Please refer to Figures 1 to 6 , the present invention provides a technical solution: an efficient atomization inhalation assisted treatment device, including: a compression nebulizer 1, a support platform 2 is arranged at the bottom of the compression nebulizer 1, both sides of the upper surface of the support platform 2 are slidably connected with slide blocks 3, one side of the upper surface of the slide block 3 is fixedly connected with a limit plate 4, the other side of the upper surface of the slide block 3 is fixedly connected with a fixed frame 5, the fixed frame 5 is rotatably connected with a baffle plate 6 through a pin shaft, the baffle plate 6 and the fixed frame 5 are fixedly connected through a support spring 7, the output end of the compression nebulizer 1 is communicated with the input end of the nebulization cup 9 through a connecting pipe 8, the output end of the nebulization cup 9 is communicated with the face mask 11 through a telescopic catheter 10, clamping assemblies 12 are arranged on the outer circumferential surface of the nebulization cup 9 and one side of the face mask 11, the clamping assemblies 12, the clamping assemblies 12 include a movable clamping block 13, and a fixed clamping block 14 is arranged above the movable clamping block 13.
[0030] Place the compression atomizer 1 on the upper surface of the support platform 2. The support platform 2 stably supports the compression atomizer 1. First, press on one side of the blocking plate 6 close to the support spring 7, so that it rotates towards the fixed frame 5 side under the connection of the pin shaft. At this time, the support spring 7 is compressed, and the blocking plate 6 leaves the upper surface of the support platform 2 and no longer limits the slider 3. Then, through the opposite sliding of the two sliders 3, the limiting plate 4 is driven to move towards the compression atomizer 1 until the limiting plate 4 abuts against the side wall of the compression atomizer 1. Then release the blocking plate 6. Under the action of the reverse elastic force of the support spring 7, the blocking plate 6 returns to its original position. Thus, the blocking plate 6 obliquely supports on the upper surface of the support platform 2, and then hinders the slider 3 to prevent the slider 3 from sliding. Furthermore, the slider 3 limits the limiting plate 4, and the limiting plate 4 finally limits and fixes the compression atomizer 1, so as to avoid dragging the compression atomizer 1 to move due to pulling the connecting pipe 8, and further avoid the collision and damage of the compression atomizer 1. Add the liquid medicine to the scale line position of the atomizing cup 9. The connecting pipe 8 is sleeved between the compression atomizer 1 and the atomizing cup 9. One end of the telescopic catheter 10 is sleeved on the output end of the atomizing cup 9, and the other end of the telescopic catheter 10 is sleeved at the interface of the face mask 11. By moving the clamping block 13 closer to the telescopic catheter 10, the telescopic catheter 10 is clamped between the moving clamping block 13 and the fixed clamping block 14, so as to avoid the loosening of the connection between the atomizing cup 9 and the face mask 11 when children are undergoing atomization treatment due to their random movement, improving the treatment effect and accelerating the treatment progress. By starting the compression atomizer 1, the compressed air forms a high-speed airflow through the small nozzle of the connecting pipe 8, and the generated negative pressure drives the liquid medicine to be sprayed into the atomizing cup 9. Under the high-speed impact, it splashes around and makes the liquid droplets become mist-like particles and spray out from the telescopic catheter 10 into the face mask 11, so as to carry out the treatment by inhaling the atomized liquid medicine.
[0031] Embodiment 2: On the basis of Embodiment 1, suction cup seats 15 are arranged on both sides of the lower surface of the support table 2. The suction cup seats 15 are symmetrically arranged with respect to the central plane of the support table 2. The upper surface of the suction cup seats 15 is fixedly connected to the lower surface of the support table 2. A connecting shaft 16 is arranged between the two suction cup seats 15. By installing the suction cup seats 15 on the lower surface of the support table 2, the stability of the entire support table 2 can be increased. Both ends of the connecting shaft 16 are sleeved with handwheels 17 and fixedly connected to the handwheels 17. A driving gear 18 is arranged on one side of the handwheel 17. There are two driving gears 18, which are symmetrically arranged with respect to the connecting shaft 16. The driving gears 18 are fixedly sleeved on the connecting shaft 16. The connecting shaft 16 can be driven to rotate by the handwheel 17, thereby driving the driving gears 18 to rotate. A driven gear 19 is meshed with the upper side of the driving gear 18. The driven gear 19 and the driving gear 18 are arranged in a staggered manner. The driven gear 19 is fixedly sleeved on a rotating shaft 20. Limiting seats 21 are arranged on both sides of the driven gear 19. The rotating shaft 20 is rotatably sleeved in the limiting seats 21. The stability of the rotation of the rotating shaft 20 is improved by the arrangement of the limiting seats 21. Spiral grooves 22 are opened on both sides of the rotating shaft 20. The spiral grooves 22 are slidably connected to sliding pins 23. The sliding pins 23 are sleeved in a moving block 24 and fixedly connected to the moving block 24. The moving block 24 is sleeved on the rotating shaft 20 and slidably connected to the rotating shaft 20. The upper surface of the moving block 24 is fixedly connected to the lower surface of the slider 3. A limiting groove 25 is opened on the upper surface of the support table 2. The slider 3 is clamped in the limiting groove 25 and slidably connected to the limiting groove 25. Through the arrangement of the limiting groove 25, it is convenient to limit the slider 3.
[0032] After the compression atomizer 1 is placed on the upper surface of the support platform 2, first press on one side of the baffle 6 close to the support spring 7, so that it rotates towards the fixed frame 5 side under the connection of the pin shaft. At this time, the support spring 7 is compressed, and the baffle 6 leaves the upper surface of the support platform 2 and no longer limits the slider 3. Then, by rotating the handwheel 17, the handwheel 17 drives the connecting shaft 16 to rotate. The two sides of the connecting shaft 16 are rotatably sleeved in the support seat. The connecting shaft 16 drives the driving gear 18 to rotate, and the driving gear 18 thus meshes and drives with the driven gear 19 above it. Then, the driven gear 19 drives the rotating shaft 20 fixedly sleeved inside it to rotate. The rotating shaft 20 rotates stably under the limitation of the limit seat 21. During the rotation of the rotating shaft 20, the spiral grooves 22 opened on both sides of it drive the sliding pin 23 to move along the axis direction of the rotating shaft 20 through the sliding connection with the sliding pin 23. Thus, the sliding pin 23 drives the moving block 24 to move, and the moving block 24 drives the slider 3 to move synchronously. The slider 3 slides under the limitation of the limiting groove 25, and further makes the two sliders 3 move towards each other, thereby driving the limiting plate 4 to move towards the direction close to the compression atomizer 1 until the limiting plate 4 abuts against the side wall of the compression atomizer 1. Then release the baffle 6. Under the action of the reverse elastic force of the support spring 7, the baffle 6 resets, so that the baffle 6 obliquely supports on the upper surface of the support platform 2, and then hinders the slider 3 to prevent the slider 3 from sliding. Furthermore, the slider 3 limits the limiting plate 4, and the limiting plate 4 finally limits and fixes the compression atomizer 1. By limiting and fixing the compression atomizer 1, the situation that the compression atomizer 1 is dragged and moved by pulling the connecting pipe 8 due to the random movement of children is avoided. Furthermore, the problem that the compression atomizer 1 is damaged due to being knocked or dropped during movement is avoided, and the safety during use is improved. At the same time, when the compression atomizer 1 needs to be removed, only by releasing the limitation on the slider 3 and reversely turning the handwheel 17 can the limitation on the compression atomizer 1 be released.
[0033] Embodiment 3: On the basis of Embodiment 2, one end of the connecting pipe 8 is sleeved on the output end of the compression atomizer 1, and the other end of the connecting pipe 8 is sleeved on the input end at the bottom of the atomization cup 9. U-shaped frames 26 are fixedly connected to the outer circumferential surface of the top of the atomization cup 9 and one side of the mask 11. Both sides of the bottom of the U-shaped frame 26 are fixedly connected to the fixed shell 27. A fixed connection is made between the U-shaped frame 26 and the fixed clamping block 14. By fixing the U-shaped frame 26, the fixed shell 27 is fixed. A sliding connection is made between the middle of the top of the fixed shell 27 and the moving clamping block 13, and a sliding connection is made between the bottom of the fixed shell 27 and the pressing block 28. The middle of the upper surface of the pressing block 28 is fixedly connected to one end of the first return spring 29, and the other end of the first return spring 29 is fixedly connected to the moving clamping block 13. Upper grooves 30 are formed on both sides of the bottom of the moving clamping block 13, and lower grooves 31 are formed on both sides of the top of the pressing block 28. Slide columns 32 are slidably installed in both the upper groove 30 and the lower groove 31. The two slide columns 32 are fixedly connected by a rotating block 33. The middle of the rotating block 33 is rotatably connected to a limiting shaft 34. Both ends of the limiting shaft 34 are fixedly sleeved in the fixed shell 27. A vertical rod 35 is arranged on one side of the rotating block 33. The bottom of the vertical rod 35 is fixedly connected to the pressing block 28. The vertical rod 35 is slidably sleeved in the fixed shell 27. A second return spring 36 is installed on one side of the vertical rod 35. One end of the second return spring 36 is fixedly connected to the end of the pressing block 28, and the other end of the second return spring 36 is fixedly connected to the inner wall of the fixed shell 27.
[0034] When one end of the telescopic catheter 10 needs to be inserted into the output end of the atomizing cup 9 and the other end of the telescopic catheter 10 is connected into the face mask 11, hold the U-shaped frame 26 and the pressing block 28 simultaneously. The U-shaped frame 26 is fixedly installed. At this time, the pressing block 28 will be pressed and slide towards the inside of the fixed shell 27. Thus, the pressing block 28 slides between the lower grooves 31 on both sides of its top and the sliding columns 32 at the bottom of the rotating block 33, pushing the sliding columns 32 at the bottom of the rotating block 33 to move upward. The rotating block 33 rotates under the limitation of the limiting shaft 34. Then, the sliding columns 32 at the top of the rotating block 33 slide between the upper grooves 30 opened on both sides of the bottom of the moving clamping block 13, causing the sliding columns 32 at the top of the rotating block 33 to move downward. During this process, the vertical rod 35 slides under the limitation of the fixed shell 27, thereby guiding the pressing block 28. At the same time, when the pressing block 28 is pressed upward, the second return spring 36 is compressed inside the fixed shell 27. Coupled with the downward movement of the moving clamping block 13, the first return spring 29 is compressed. At this time, the telescopic catheter 10 is inserted correspondingly. After the insertion is completed, release the pressing block 28. Under the combined reverse elastic force of the first return spring 29 and the second return spring 36, the pressing block 28 moves downward and the moving clamping block 13 moves upward. Thus, the moving clamping block 13 clamps and fixes the end of the telescopic catheter 10 between the moving clamping block 13 and the fixed clamping block 14, thereby increasing the connection stability of the telescopic catheter 10. Furthermore, when the child is moving around, the connection stability between the atomizing cup 9 and the face mask 11 is improved, ensuring the treatment effect and avoiding delaying the treatment process. At the same time, by utilizing the telescopic property of the telescopic catheter 10, the stability during the pulling process can be improved, further reducing the possibility of the connecting pipe 8 being pulled and dragged. When the telescopic catheter 10 needs to be removed, just press the pressing block 28 again to make the moving clamping block 13 and the fixed clamping block 14 move away from each other, thereby further improving the practicality of the entire device.
[0035] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood 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 highly efficient atomization inhalation auxiliary treatment device, comprising a compression atomizer (1), characterized in that: The compression atomizer (1) is provided with a support platform (2) at the bottom, and sliders (3) are slidably connected to both sides of the upper surface of the support platform (2), one side of the upper surface of the slider (3) is fixedly connected to a limit plate (4), and the other side of the upper surface of the slider (3) is fixedly connected to a fixing frame (5), the fixing frame (5) is rotatably connected to the blocking plate (6) through a pin shaft, and the blocking plate (6) and the fixing frame (5) are fixedly connected through a support spring (7); The output end of the compression atomizer (1) is connected to the input end of the atomizer cup (9) through a connecting tube (8), and the output end of the atomizer cup (9) is connected to the mask (11) through a telescopic conduit (10); A clamping assembly (12) is provided on the outer ring surface of the atomizing cup (9) and one side of the mask (11), wherein the clamping assembly (12) comprises a movable clamping block (13), and a fixed clamping block (14) is provided on the upper side of the movable clamping block (13).
2. The high-efficiency atomization inhalation auxiliary treatment device according to claim 1, characterized in that: Suction cup seats (15) are arranged on both sides of the lower surface of the support platform (2), the suction cup seats (15) are symmetrically arranged about the central plane of the support platform (2), the upper surface of the suction cup seats (15) is fixedly connected to the lower surface of the support platform (2), and a connecting shaft (16) is arranged between the two suction cup seats (15).
3. A highly efficient atomization inhalation auxiliary treatment device according to claim 2, characterized in that: Hand wheels (17) are sleeved on both ends of the connecting shaft (16) and are fixedly connected to the hand wheels (17). A driving gear (18) is arranged on one side of the hand wheel (17). Two driving gears (18) are provided and are symmetrically arranged about the connecting shaft (16). The driving gear (18) is fixedly sleeved on the connecting shaft (16).
4. The high-efficiency atomization inhalation auxiliary treatment device according to claim 3, characterized in that: A driven gear (19) is meshed with the upper side of the driving gear (18). The driven gear (19) is fixedly sleeved on the rotating shaft (20). Limiting seats (21) are arranged on both sides of the driven gear (19). The rotating shaft (20) is rotatably sleeved in the limiting seats (21). Spiral grooves (22) are opened on both sides of the rotating shaft (20).
5. The high-efficiency atomization inhalation auxiliary treatment device according to claim 4, characterized in that: The spiral groove (22) is slidably connected to the sliding pin (23); the sliding pin (23) is sleeved in the moving block (24) and fixedly connected to the moving block (24); the moving block (24) is sleeved on the rotating shaft (20) and slidably connected to the rotating shaft (20).
6. The high-efficiency atomization inhalation auxiliary treatment device according to claim 5, characterized in that: The upper surface of the moving block (24) is fixedly connected to the lower surface of the sliding block (3); a limiting groove (25) is provided on the upper surface of the supporting platform (2); the sliding block (3) is clamped in the limiting groove (25) and is slidably connected to the limiting groove (25).
7. The high-efficiency atomization inhalation auxiliary treatment device according to claim 1, characterized in that: One end of the connecting tube (8) is sleeved on the output end of the compression atomizer (1), and the other end of the connecting tube (8) is sleeved on the input end at the bottom of the atomizer cup (9). The outer ring surface at the top of the atomizer cup (9) and one side of the mask (11) are fixedly connected with a U-shaped frame (26). Both sides of the bottom of the U-shaped frame (26) are fixedly connected to a fixed shell (27), and the U-shaped frame (26) is fixedly connected to a fixed clamping block (14).
8. The high-efficiency atomization inhalation auxiliary treatment device according to claim 7, characterized in that: The middle of the top of the fixed shell (27) is slidably connected to the movable clamping block (13), the bottom of the fixed shell (27) is slidably connected to the pressing block (28), the middle of the upper surface of the pressing block (28) is fixedly connected to one end of the first return spring (29), and the other end of the first return spring (29) is fixedly connected to the movable clamping block (13).
9. The high-efficiency atomization inhalation auxiliary treatment device according to claim 8, characterized in that: The movable clamping block (13) is provided with upper grooves (30) on both sides of the bottom, and the pressing block (28) is provided with lower grooves (31) on both sides of the top. Sliding posts (32) are slidably installed in the upper grooves (30) and the lower grooves (31), and the two sliding posts (32) are fixedly connected by a rotating block (33).
10. The high-efficiency atomization inhalation auxiliary treatment device according to claim 9, characterized in that: The middle part of the rotating block (33) is rotatably connected to the limit shaft (34), and both ends of the limit shaft (34) are fixedly sleeved in the fixed shell (27). A vertical rod (35) is arranged on one side of the rotating block (33), and the bottom of the vertical rod (35) is fixedly connected to the pressure block (28). The vertical rod (35) is slidably sleeved in the fixed shell (27). A second return spring (36) is installed on one side of the vertical rod (35), and one end of the second return spring (36) is fixedly connected to the end of the pressure block (28), and the other end of the second return spring (36) is fixedly connected to the inner wall of the fixed shell (27).
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