Electronic atomization device for conditioning lung structure

By designing ultrasonic atomization sheet and floating plate components in electronic atomization equipment, combined with centrifugation, the problem of incomplete treatment of mist particles by existing atomization equipment is solved, and the deposition of the medicinal liquid into the lungs is achieved more effectively, and the treatment effect on lower respiratory tract diseases is enhanced.

CN120094045AInactive Publication Date: 2025-06-06GUOYUAN PHARMACEUTICAL (HEBEI) CO LTD
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Patent Information

Application Number
CN202510401704.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2025-06-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing atomization equipment does not thoroughly treat mist particles, resulting in drug particles being mainly deposited in the upper respiratory tract, which is unable to effectively treat lower respiratory tract diseases. During use, deep inhalation is required to increase the possibility of drug fluid being deposited into the lungs.

Method used

An electronic atomization device for regulating the lung structure is designed, including an atomized particle treatment component of an ultrasonic atomization sheet, a first floating plate and a second floating plate. Through technical means such as ultrasonic atomization, floating plate impact and centrifugation, the medicinal liquid is broken into suitable fine mist droplets, increasing the amount of deposition of the medicinal liquid into the lungs.

Benefits of technology

Through effective atomized particles treatment, the amount of deposition of the medicine liquid into the lungs is increased, the treatment effect on lower respiratory tract diseases is enhanced, the dependence on deep inspiration movements is reduced, and the efficiency and comfort of treatment is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of atomization, and discloses an electronic atomization device for conditioning the lung structure, the electronic atomization device comprises a shell and a pump body communicated with the outside of the shell, a pressure pipe is connected between the shell and the pump body, the top of the shell is communicated with an atomization air suction pipe, a liquid storage tank is arranged in the shell, and the liquid storage tank is connected with the pump body. An atomized particle treatment assembly is arranged above the liquid storage tank in the shell, the atomized particle treatment assembly sequentially comprises an ultrasonic atomization sheet, a first floating plate and a second floating plate, and aerial fog sequentially passes through the ultrasonic atomization sheet, the first floating plate and the second floating plate to be filtered and impacted. The atomization particle treatment assembly sequentially comprises the ultrasonic atomization piece, the first floating plate and the second floating plate, aerial fog is subjected to atomization treatment through the ultrasonic atomization piece, the first floating plate and the second floating plate impact, liquid medicine is scattered into fine fog drops suitable for lung structure conditioning, and the deposition amount of the liquid medicine entering the lung is increased.
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Description

Technical Field

[0001] The present invention relates to the field of atomization technology, in particular to an electronic atomization device for conditioning lung structure. Background Art

[0002] Medical nebulizers are mainly used to treat respiratory diseases, such as bronchitis, pneumonia, etc. Nebulizer inhalation therapy is an important and effective treatment method for respiratory diseases. The nebulizer inhaler is used to atomize the liquid medicine into tiny particles. The medicine enters the respiratory tract and is deposited in the lungs through breathing, thereby achieving the purpose of painless, rapid and effective treatment.

[0003] The nebulizer for lung treatment with the publication number "CN213526927U" relates to the medical field. In view of the problem that some existing nebulizers for lung treatment do not have a heating function, which aggravates the discomfort when used in winter, and do not have the function of supplementing oxygen, people with breathing difficulties are prone to hypoxia when using it, the following scheme is proposed, which includes a box and a mask, a support column is installed at the bottom of the box, wheels are installed at the bottom of the support column, a medicine storage bin is installed inside the box, a heating element is installed at the bottom of the medicine storage bin, an air compressor is installed inside the box, the outside of the air compressor is wrapped with a noise reduction layer, and a filter plate is installed inside the medicine storage bin. The utility model has a novel structure, and the heating element can be used to heat the liquid medicine to improve the comfort of use of the device, while ensuring the supply of oxygen so that people with breathing difficulties can also use it normally. At the same time, the noise is processed, and the amount of liquid medicine added can be accurately controlled.

[0004] However, the prior art has the following defects:

[0005] The nebulizer equipment does not thoroughly process the mist particles, and most of the drug particles produced can only be deposited in the upper respiratory tract such as the mouth and throat. Moreover, since the amount deposited in the lungs is very small, it cannot effectively treat lower respiratory tract diseases. In order to maximize the deposition of the drug solution in the lungs during use, deep inhalation is often required. Summary of the invention

[0006] The present invention provides an electronic atomization device for regulating lung structure, which solves the problem mentioned in the above background technology that the atomization device does not thoroughly process the mist particles, and most of the generated drug particles can only be deposited in the upper respiratory tract such as the mouth and throat. Moreover, since the amount of deposition in the lungs is very small, it cannot effectively treat lower respiratory tract diseases. In order to maximize the deposition of the drug solution in the lungs during use, it is often necessary to cooperate with the deep inhalation action.

[0007] The present invention provides the following technical solution: an electronic atomization device for regulating lung structure, comprising a shell and a pump body connected to the outside of the shell, a pressure tube being connected between the shell and the pump body, an atomization inhalation pipe being connected to the top of the shell, a liquid storage tank being arranged in the shell, an atomization particle processing component being arranged in the shell above the liquid storage tank, the atomization particle processing component comprising an ultrasonic atomization sheet, a first floating plate and a second floating plate in sequence, and the aerosol is filtered and impacted by the ultrasonic atomization sheet, the first floating plate and the second floating plate in sequence.

[0008] As an optional solution of the electronic atomization device for regulating lung structure described in the present invention, a fixed rod is provided in the vertical direction at the center of the liquid storage tank, an ultrasonic atomization sheet is fixedly connected to the surface of the fixed rod, and a negative pressure membrane is connected to the upper surface of the ultrasonic atomization sheet.

[0009] As an optional solution of the electronic atomization device for regulating lung structure described in the present invention, wherein: the top end of the fixed rod is rotatably connected to a connecting rod, and the surface of the fixed rod is slidably connected to a sliding sleeve, the sliding sleeve is connected to the center position of the negative pressure membrane, and the inner hole of the sliding sleeve is larger than the outer diameter of the connecting rod.

[0010] As an optional solution of the electronic atomization device for conditioning lung structure described in the present invention, the first floating plate and the second floating plate are arranged in a circular equidistant array on the surface of the connecting rod, the connecting rod is configured as a hollow rod structure, and elastic components are connected between the connecting rod and the first floating plate and the second floating plate, and the elastic components are utilized to make the first floating plate and the second floating plate float in the vertical direction of the outer wall of the connecting rod.

[0011] As an optional solution of the electronic atomization device for regulating lung structure described in the present invention, one side of the first floating plate and the second floating plate is provided with an integrally formed connecting head, a cavity is opened in the connecting head, and a pin is connected to the top of the cavity.

[0012] As an optional solution of the electronic atomization device for regulating lung structure described in the present invention, wherein: the elastic component includes a pin hook connected to the side wall of the connecting rod, the pin hook and the pin shaft are rotatably engaged, the first floating plate and the second floating plate are connected to a guide rod, the surface of the guide rod is sleeved with a first spring, and the first spring is connected between the connecting head and the connecting rod.

[0013] As an optional solution of the electronic atomization device for conditioning lung structure described in the present invention, the splicing positions between two adjacent groups of the second floating plates and the splicing positions between two adjacent groups of the first floating plates are staggered.

[0014] As an optional solution for the electronic atomization device for regulating lung structure described in the present invention, the liquid storage tank is connected to an atomization hopper above, a top cover is provided on the top of the atomization hopper, the top end of the connecting rod passes through the atomization hopper and the top cover and extends to the outside of the atomization hopper, and the connecting rod is transmission-connected to a motor.

[0015] As an optional solution for the electronic atomization device for regulating lung structure described in the present invention, filter plates are provided in an annular manner at equal intervals on the surface of the connecting rod, the filter plates are arranged as a hollow structure, a rotating shaft capable of twisting is provided at the end of the filter plate, torsion springs are provided at both ends of the rotating shaft and on the side walls of the filter plate, a push plate and a second sealing plate are respectively connected to the outer wall of the rotating shaft, and an air hole is provided on the filter plate at one end away from the connecting rod.

[0016] As an optional solution of the electronic atomization device for conditioning lung structure of the present invention, wherein: a bottom plate is provided at the bottom of the filter plate, a second air outlet is provided on one side of the bottom plate, a first sealing plate is provided on one side of the bottom plate, the first sealing plate is slidably connected to the filter plate, a first air outlet is provided on one side of the first sealing plate, and the first sealing plate moves so that the first air outlet and the second air outlet are connected;

[0017] The outer wall of the filter plate is symmetrically connected with a second connecting plate, the first sealing plate is symmetrically connected with first connecting plates on both sides, and a second spring is connected between the first connecting plate and the second connecting plate.

[0018] The present invention has the following beneficial effects:

[0019] 1. The electronic atomization device for conditioning lung structure is provided with an atomization particle processing component including an ultrasonic atomization sheet, a first floating plate and a second floating plate in sequence. The aerosol is atomized by the ultrasonic atomization sheet and impacted by the first floating plate and the second floating plate, so that the liquid medicine is broken up into fine droplets suitable for conditioning lung structure, thereby increasing the deposition amount of the liquid medicine entering the lungs;

[0020] 2. The electronic atomization device for conditioning lung structure uses a negative pressure membrane arranged on the ultrasonic atomization sheet. During the process of the aerosol floating up, the negative pressure membrane expands and wraps the aerosol, prolonging the residence time of the aerosol near the ultrasonic atomization sheet, thereby ensuring the atomization of the liquid medicine, until the sleeve slides to the surface of the connecting rod, and the gap between the connecting rod and the sleeve is used to make the aerosol continue to rise, thereby ensuring the atomization effect of the liquid medicine;

[0021] 3. The electronic atomization device for conditioning lung structure is provided with a first floating plate and a second floating plate of a floating structure. During the rising process of the aerosol, it hits the first floating plate, and a gap is generated after the collision of the adjacent first floating plate. The aerosol continues to rise through the gap and hits the second floating plate. After the collision, the second floating plate rises through the gap between the adjacent second floating plates. The collision is more effectively used to make the size of the aerosol particles uniform, ensure the accurate delivery of the drug, and achieve the treatment effect;

[0022] 4. The electronic atomization device for conditioning the lung structure, by setting up a centrifugal component, includes filter plates with hollow structures in sequence, and utilizes the centrifugal force generated by the rotation of multiple groups of filter plates in the atomization bucket to further refine the atomized particles in the aerosol; and a rotating shaft connected to a torsion spring is provided in the filter plate, and a push plate and a second sealing plate are provided on the surface of the rotating shaft, which perform secondary centrifugal action on the aerosol to ensure the atomization conditioning effect on the lung structure. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.

[0024] Figure 2 It is a partial cross-sectional structural schematic diagram of the present invention.

[0025] Figure 3 It is a schematic diagram of the internal structure of the liquid storage tank of the present invention.

[0026] Figure 4 It is a schematic diagram of the connection structure of the ultrasonic atomization sheet and the negative pressure membrane of the present invention.

[0027] Figure 5 It is an enlarged schematic diagram of the connection structure between the first floating plate and the connecting rod of the present invention.

[0028] Figure 6 It is a schematic diagram of the three-dimensional structure of the second floating plate of the present invention.

[0029] Figure 7 It is a schematic diagram of the three-dimensional structure of the filter plate in the centrifugal assembly of the present invention.

[0030] Figure 8 It is a schematic diagram of the state of the rotating shaft of the present invention after being impacted by aerosol.

[0031] In the figure: 1. shell; 2. pump body; 3. pressure pipe; 4. liquid storage tank; 5. atomizing bucket; 6. top cover; 7. motor; 8. atomizing air suction pipe; 9. ultrasonic atomizing sheet; 10. pin shaft; 11. fixing rod; 12. sleeve; 13. first floating plate; 14. second floating plate; 15. connecting rod; 16. negative pressure membrane; 17. connecting head; 18. pin hook; 19. cavity; 20. guide rod; 21. first spring; 22. filter plate; 23. first sealing plate; 24. first air outlet; 25. first connecting plate; 26. second connecting plate; 27. second spring; 28. push plate; 29. ​​rotating shaft; 30. air hole; 31. second sealing plate; 32. torsion spring; 33. bottom plate; 34. second air outlet. DETAILED DESCRIPTION

[0032] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0033] Example 1: This example is an explanation based on Example 1. For details, please refer to Figures 1 to 8 The present invention discloses an electronic atomization device for regulating lung structure, including a shell 1 and a pump body 2 connected to the outside of the shell 1, a pressure tube 3 is connected between the shell 1 and the pump body 2, and an atomization inhalation tube 8 is connected to the top of the shell 1.

[0034] In this embodiment, a shell 1 and a pump body 2 are provided in sequence, and the shell 1 and the pump body 2 are connected by a pressure pipe 3. When the pump body 2 is started, the pump body 2 forms a high-speed airflow through a small pipe opening using compressed air, and generates negative pressure to drive the liquid or other fluid to be sprayed onto the obstacle. Under high-speed impact, the droplets become mist particles and are sprayed out from the atomizing suction pipe 8.

[0035] A liquid storage tank 4 is arranged in the shell 1, and an atomized particle processing component is arranged above the liquid storage tank 4 in the shell 1. The atomized particle processing component includes an ultrasonic atomization sheet 9, a first floating plate 13 and a second floating plate 14 in sequence. The aerosol passes through the ultrasonic atomization sheet 9, the first floating plate 13 and the second floating plate 14 in sequence for filtration and collision.

[0036] In this embodiment, a liquid storage tank 4 is provided in the housing 1, and liquid medicine is injected into the liquid storage tank 4, the liquid medicine is squeezed out by the pump body 2, and the liquid medicine is broken into tiny droplets by the first floating plate 13 and the second floating plate 14.

[0037] Example 2: This example is an explanation based on Example 1. For details, please refer to Figures 1 to 8A fixed rod 11 is vertically provided in the center of the liquid storage tank 4, and an ultrasonic atomizer sheet 9 is fixedly connected to the surface of the fixed rod 11, and a negative pressure membrane 16 is connected to the upper surface of the ultrasonic atomizer sheet 9. A connecting rod 15 is rotatably connected to the top of the fixed rod 11, and a sliding sleeve 12 is slidably connected to the surface of the fixed rod 11. The sliding sleeve 12 is connected to the center of the negative pressure membrane 16, and the inner hole of the sliding sleeve 12 is larger than the outer diameter of the connecting rod 15.

[0038] In this embodiment, during the upward spraying of the medicinal liquid, it is first processed by the ultrasonic nebulizer sheet 9. A negative pressure membrane 16 is connected above the ultrasonic nebulizer sheet 9. The center of the negative pressure membrane 16 is slidably connected to the surface of the fixed rod 11 through the sliding sleeve 12. During the upward floating of the aerosol, the negative pressure membrane 16 expands, which prolongs the residence time of the aerosol near the ultrasonic nebulizer sheet 9, thereby ensuring the processing time of the aerosol. As the negative pressure membrane 16 expands, the sliding sleeve 12 is driven to slide to the surface of the connecting rod 15, and the gap between the connecting rod 15 and the sliding sleeve 12 is used to make the aerosol continue to rise.

[0039] Example 3: This example is an explanation based on Example 1. For details, please refer to Figures 1 to 8 The first floating plate 13 and the second floating plate 14 are arranged in an annular and equidistant array on the surface of the connecting rod 15. The connecting rod 15 is set to a hollow rod structure, and elastic components are connected between the connecting rod 15 and the first floating plate 13 and the second floating plate 14. The elastic components are used to make the first floating plate 13 and the second floating plate 14 float in the vertical direction of the outer wall of the connecting rod 15.

[0040] In this embodiment, two groups of floating components are arranged between the liquid storage tank 4 and the atomization bucket 5, including at least eight groups of first floating plates 13 and at least eight groups of second floating plates 14 arranged in an annular manner on the surface of the connecting rod 15. During the rising process of the aerosol, it first hits the first floating plate 13, and a gap is generated after the collision with the adjacent first floating plates 13. The aerosol continues to rise through the gap and hits the second floating plate 14. After the second floating plate 14 is hit, a gap is generated between the adjacent second floating plates 14, so that the aerosol continues to rise and enters the atomization bucket 5.

[0041] The aerosol hits the first floating plate 13 and the second floating plate 14 in sequence, and the collision is more effectively used to make the size of the aerosol particles uniform, thereby ensuring that the medicine is accurately delivered to achieve a therapeutic effect.

[0042] An integrally formed connecting head 17 is provided on one side of the first floating plate 13 and the second floating plate 14. A cavity 19 is provided in the connecting head 17. A pin shaft 10 is connected to the top of the cavity 19. The elastic component includes a pin hook 18 connected to the side wall of the connecting rod 15. The pin hook 18 and the pin shaft 10 are rotatably engaged. A guide rod 20 is connected inside the first floating plate 13 and the second floating plate 14. A first spring 21 is sleeved on the surface of the guide rod 20. The first spring 21 is connected between the connecting head 17 and the connecting rod 15.

[0043] In this embodiment, an integrally formed connecting head 17 is provided at one end of the first floating plate 13 and the second floating plate 14, a cavity 19 is opened in the connecting head 17, a pin shaft 10 is provided in the cavity 19, and a pin hook 18 is provided on the side wall of the connecting rod 15. After the pin hook 18 and the pin shaft 10 are rotated and engaged, as the mist floats up, it impacts the first floating plate 13 / the second floating plate 14, and the first floating plate 13 / the second floating plate 14 is forced to float up. At this time, the pin shaft 10 is the fulcrum of rotation, and the first spring 21 is stretched. At this time, the two adjacent groups of first floating plates 13 are separated, thereby generating a gap between the two groups of first floating plates 13, so that the mist continues to rise.

[0044] The splicing positions between two adjacent groups of second floating plates 14 and the splicing positions between two adjacent groups of first floating plates 13 are arranged alternately.

[0045] In this embodiment, the second floating plates 14 are arranged above the first floating plates 13, and the joints between the first floating plates 13 and the joints between the second floating plates 14 are arranged to be staggered. After the mist rises through the gaps between two adjacent groups of first floating plates 13, it hits the second floating plates 14, thereby preventing the mist from rising directly without hitting the second floating plates 14.

[0046] Example 4: This example is an explanation based on Example 1. For details, please refer to Figures 1 to 8 The top of the liquid storage tank 4 is connected to an atomizing bucket 5, and a top cover 6 is provided on the top of the atomizing bucket 5. The top end of the connecting rod 15 passes through the atomizing bucket 5 and the top cover 6 and extends to the outside of the atomizing bucket 5. The connecting rod 15 is transmission-connected to a motor 7.

[0047] In this embodiment, a group of centrifugal components is arranged in the atomization bucket 5, including a motor 7 and a filter plate 22 connected to the surface of the connecting rod 15. The motor 7 is started to drive the connecting rod 15 to rotate, thereby driving multiple groups of filter plates 22 to rotate in the atomization bucket 5. During the rotation process, the atomized particles in the aerosol are further miniaturized to ensure the atomization conditioning effect on the lung structure.

[0048] Filter plates 22 are equidistantly arranged in a ring shape on the surface of the connecting rod 15. The filter plates 22 are arranged as a hollow structure. A rotating shaft 29 capable of twisting is arranged at the end of the filter plate 22. Torsion springs 32 are arranged at both ends of the rotating shaft 29 and on the side wall of the filter plate 22. A push plate 28 and a second sealing plate 31 are respectively connected to the outer wall of the rotating shaft 29. An air hole 30 is opened at the end of the filter plate 22 away from the connecting rod 15.

[0049] In this embodiment, the filter plate 22 is set to a hollow structure. After the mist particles enter the filter plate 22, they are affected by the first centrifugal action and impact the air hole 30 end of the filter plate 22, pushing the second sealing plate 31. The second sealing plate 31 drives the rotating shaft 29 to rotate. During the rotation of the push plate 28 on one side of the rotating shaft 29, the first sealing plate 23 is pushed to move, so that the first air outlet 24 and the second air outlet 34 are connected, so that the aerosol is further miniaturized after the secondary centrifugal action, forming atomized particles of 1-3μm that can be distributed to the distal end of the lung, thereby achieving the conditioning of the lung structure.

[0050] A bottom plate 33 is provided at the bottom of the filter plate 22, a second air outlet 34 is opened on one side of the bottom plate 33, a first sealing plate 23 is provided on one side of the bottom plate 33, the first sealing plate 23 and the filter plate 22 are slidably connected, a first air outlet 24 is opened on one side of the first sealing plate 23, the first sealing plate 23 moves so that the first air outlet 24 and the second air outlet 34 are connected; the outer wall of the filter plate 22 is symmetrically connected to the second connecting plate 26, the first sealing plate 23 is symmetrically connected to the first connecting plate 25 on both sides, and a second spring 27 is connected between the first connecting plate 25 and the second connecting plate 26.

[0051] In this embodiment, in the initial state, the sliding directions of the second sealing plate 31 and the first sealing plate 23 are set vertically to block the incoming aerosol. When the centrifugal force plus the impact of the aerosol, the second sealing plate 31 can be pushed to drive the rotating shaft 29 to flip, thereby driving the push plate 28 to push the first sealing plate 23 to move toward the air hole 30, so that the first air outlet 24 and the second air outlet 34 overlap, and the centrifugally treated aerosol is discharged and finally absorbed by the human body through the atomization inhalation pipe 8.

[0052] It should be noted that the first sealing plate 23 moves and the second spring 27 is stretched. When the impact force is insufficient, the torsion spring 32 and the second spring 27 are reset, driving the push plate 28 and the second sealing plate 31 to reset.

[0053] It should be noted that: a gas flow sensor and an electric regulating valve are arranged on the atomizing air inhalation pipe 8 from right to left in sequence, an air inhalation mask is sleeved on the left end of the atomizing air inhalation pipe 8, and a controller is arranged on the upper part of one side of the outer wall of the shell 1.

[0054] A temperature sensor may also be provided outside the housing 1 to detect the temperature of the liquid medicine inside the housing 1. When the temperature is lower than the preset threshold of the controller, a signal will be sent to the controller, and the controller will control the heating device to heat the liquid medicine, thereby achieving the purpose of constant temperature heating and heat preservation of the liquid medicine, thereby improving the comfort of the patient's breathing and inhalation; at the same time, the controller will analyze the signal sent by the temperature sensor in real time and display it on the display screen, so that the medical staff can understand it conveniently. This part is the existing technology, so it will not be repeated.

[0055] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0056] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the technical principles of the present invention. These improvements and modifications should also be regarded as the scope of protection of the present invention.

Claims

1. An electronic atomization device for conditioning lung structure, comprising a housing (1) and a pump body (2) connected to the outside of the housing (1), a pressure pipe (3) being connected between the housing (1) and the pump body (2), and an atomization inhalation pipe (8) being connected to the top of the housing (1), characterized in that: A liquid storage tank (4) is arranged in the shell (1), and an atomized particle processing component is arranged above the liquid storage tank (4) in the shell (1), wherein the atomized particle processing component comprises an ultrasonic atomizing sheet (9), a first floating plate (13) and a second floating plate (14) in sequence, and the aerosol passes through the ultrasonic atomizing sheet (9), the first floating plate (13) and the second floating plate (14) in sequence for filtering and collision.

2. The electronic atomization device for conditioning lung structure according to claim 1, characterized in that: A fixing rod (11) is provided in the vertical direction at the center of the liquid storage tank (4), an ultrasonic atomization sheet (9) is fixedly connected to the surface of the fixing rod (11), and a negative pressure membrane (16) is connected to the upper surface of the ultrasonic atomization sheet (9).

3. The electronic atomization device for conditioning lung structure according to claim 2, characterized in that: The top end of the fixed rod (11) is rotatably connected to a connecting rod (15), and the surface of the fixed rod (11) is slidably connected to a sliding sleeve (12), the sliding sleeve (12) is connected to the center position of the negative pressure membrane (16), and the inner hole of the sliding sleeve (12) is larger than the outer diameter of the connecting rod (15).

4. The electronic atomization device for conditioning lung structure according to claim 1, characterized in that: The first floating plate (13) and the second floating plate (14) are arranged in an annular and equidistant array on the surface of the connecting rod (15); the connecting rod (15) is configured as a hollow rod structure; and elastic components are connected between the connecting rod (15) and the first floating plate (13) and the second floating plate (14); the elastic components are used to enable the first floating plate (13) and the second floating plate (14) to float in a vertical direction of the outer wall of the connecting rod (15).

5. The electronic atomization device for conditioning lung structure according to claim 4, characterized in that: One side of each of the first floating plate (13) and the second floating plate (14) is provided with an integrally formed connecting head (17), a cavity (19) is provided in the connecting head (17), and a pin shaft (10) is connected to the top of the cavity (19).

6. The electronic atomization device for conditioning lung structure according to claim 5, characterized in that: The elastic component comprises a pin hook (18) connected to the side wall of the connecting rod (15), the pin hook (18) and the pin shaft (10) are rotatably engaged, the first floating plate (13) and the second floating plate (14) are internally connected with a guide rod (20), the surface of the guide rod (20) is sleeved with a first spring (21), and the first spring (21) is connected between the connecting head (17) and the connecting rod (15).

7. The electronic atomization device for conditioning lung structure according to claim 6, characterized in that: The splicing positions between two adjacent groups of the second floating plates (14) and the splicing positions between two adjacent groups of the first floating plates (13) are arranged alternately.

8. The electronic atomization device for conditioning lung structure according to claim 6, characterized in that: The liquid storage tank (4) is connected to an atomizing hopper (5) above, and a top cover (6) is provided on the top of the atomizing hopper (5). The top end of the connecting rod (15) passes through the atomizing hopper (5) and the top cover (6) and extends to the outside of the atomizing hopper (5). The connecting rod (15) is transmission-connected to a motor (7).

9. The electronic atomization device for conditioning lung structure according to claim 7, characterized in that: The surface of the connecting rod (15) is provided with filter plates (22) in an annular manner and at equal intervals. The filter plates (22) are arranged as a hollow structure. A rotating shaft (29) capable of twisting is arranged at the end of the filter plate (22). Torsion springs (32) are arranged at both ends of the rotating shaft (29) and at the side wall of the filter plate (22). A push plate (28) and a second sealing plate (31) are respectively connected to the outer wall of the rotating shaft (29). An air hole (30) is provided at one end of the filter plate (22) away from the connecting rod (15).

10. The electronic atomization device for conditioning lung structure according to claim 9, characterized in that: A bottom plate (33) is provided at the bottom of the filter plate (22), a second air outlet (34) is provided on one side of the bottom plate (33), a first sealing plate (23) is provided on one side of the bottom plate (33), the first sealing plate (23) and the filter plate (22) are slidably connected, a first air outlet (24) is provided on one side of the first sealing plate (23), and the first sealing plate (23) moves so that the first air outlet (24) and the second air outlet (34) are connected; The outer wall of the filter plate (22) is symmetrically connected to a second connecting plate (26), the first sealing plate (23) is symmetrically connected to first connecting plates (25) on both sides, and a second spring (27) is connected between the first connecting plate (25) and the second connecting plate (26).

Citation Information

Patent Citations

  • Atomizer for lung treatment

    CN213526927U