Newborn atomization device
By designing a neonatal atomization device including balance, vibration and atomization mechanism, the problem of the neonatal atomization device in the prior art is difficult to fully atomize the residual medicine liquid when the bottle is inclined, and the full utilization of the medicine liquid and the improvement of the atomization efficiency in the inclined state are achieved.
Patent Information
- Application Number
- CN202510370588.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2045-03-27
AI Technical Summary
When the atomization bottle is inclined in the existing neonatal atomization device, it is difficult to fully atomize the residual liquid, resulting in a decrease in the amount of aerosol and waste of medicines.
A neonatal atomization device is designed, including a balance mechanism, a vibration mechanism and an atomization mechanism. The balance mechanism keeps the bottom end of the first tapered tube always in a vertical state through the storage bucket and the first tapered tube installed inside the bottle body. The vibration mechanism helps shake off the water droplets adhered to the inner wall of the storage bucket to the bottom of the storage bucket for sufficient atomization through the air wheel and the vibrating member. The atomization mechanism improves the atomization efficiency through a second conical tube sleeved with the outer wall of the first conical tube.
When the bottle body is inclined, the medicine liquid is always accumulated at the bottom of the first conical tube for atomization. The water droplets are shaken off by vibration assistance, making full use of the medicine liquid, improving the atomization efficiency and reducing drug waste.
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Figure CN120037520A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of atomizers, and particularly to a neonatal atomization device. Background Art
[0002] As a device that converts liquid into mist-like particles, atomizers are widely used in the fields of medical treatment, beauty, humidification, etc. And the atomization bottle, as the core component of the atomizer, its performance directly affects the atomization effect. When a medical atomizer is in use, liquid medicine needs to be added to the atomization bottle according to the required amount, and the air flow output from the output pipe of the atomizer uses the Bernoulli principle to suck the medicine in the atomization bottle and impact on the impact surface to generate aerosol, so as to achieve the atomization function.
[0003] In the existing atomization bottle, gas is input into the atomization bottle from the bottom. During use, it is generally necessary to keep the atomization bottle in a vertical state so that the air flow pumps the medicine remaining at the bottom of the bottle upward. When the atomization bottle is tilted, if the amount of medicine is large, there will still be a relatively large amount of liquid medicine remaining at the bottom of the bottle at this time, and the impact on atomization is relatively small. If the remaining amount of medicine is small, the remaining medicine in the atomization bottle will spread obliquely at the bottom of the atomization bottle, thus affecting the efficiency of the medicine being pumped into the pipeline by the air flow. At this time, the amount of aerosol will rapidly decrease. Eventually, if the atomization bottle is not placed upright in time, the remaining medicine in the atomization bottle cannot be fully atomized and used, resulting in waste of medicine. At the same time, during the process of generating aerosol, some large-particle water mist will adsorb on the inner wall of the atomization bottle to form water droplets, which cannot be fully used, causing waste. Summary of the Invention
[0004] The purpose of the present invention is to provide a neonatal atomization device that is convenient for fully atomizing the liquid medicine adhered to the bottom and inner wall of the atomization bottle even when the atomization bottle is tilted, so as to solve the problems raised in the above background art.
[0005] To achieve the above object, the present invention provides the following technical solution: a neonatal atomization device, comprising a bottle body, a balancing mechanism, a conveying mechanism, a vibrating mechanism and an atomizing mechanism. A liquid injection hopper is inserted into the upper end of the bottle body. The balancing mechanism includes a storage hopper installed inside the bottle body. A first conical tube is fixedly connected inside the storage hopper. A balancing member is provided inside the bottle body for keeping the bottom end of the first conical tube always in a vertically downward state. The conveying mechanism includes a device box fixedly installed at the bottom of the bottle body. An air inlet pipe is fixedly connected to the bottom of the device box. A connecting member is provided inside the device box for always keeping the air inlet pipe in communication with the bottom end of the first conical tube when the storage hopper swings. The vibrating mechanism includes a wind wheel rotatably connected to the bottom of the storage hopper. A vibrating member is provided inside the bottle body for blowing the wind wheel to rotate during the process of air flow entering the first conical tube, thereby driving the storage hopper to vibrate. The vibrating mechanism is used to assist in vibrating the water droplets adhering to the inner wall of the storage hopper to the bottom of the storage hopper for full atomization. The atomizing mechanism is installed inside the bottle body for assisting in improving the atomization efficiency and facilitating full atomization of the liquid medicine adhering to the bottom and inner wall of the bottle when the atomization bottle is tilted.
[0006] Preferably, the balancing member includes two groups of first rotating shafts fixedly installed on the storage hopper. The two groups of first rotating shafts are symmetrically distributed on both sides of the storage hopper. A rotating ring is provided inside the bottle body. Both groups of first rotating shafts are rotatably connected to the inner wall of the rotating ring. Two groups of second rotating shafts are fixedly connected to the rotating ring. The two groups of second rotating shafts are symmetrically distributed on both sides of the rotating ring, and the axis of the two groups of first rotating shafts forms an angle of 90° with the axis of the two groups of second rotating shafts. Both groups of second rotating shafts are rotatably connected to the inner wall of the bottle body, which is convenient for keeping the bottom end of the first conical tube always in a vertically downward state.
[0007] Preferably, the vibrating member includes a fixed box fixedly installed at the bottom of the storage hopper. A plurality of sliding grooves are opened inside the fixed box. A first bevel gear block is slidably connected inside the sliding groove. A return spring fixedly connected to the sliding groove is fixedly connected to one side of the first bevel gear block. A plurality of second bevel gear blocks are fixedly connected to the outer wall of the wind wheel. The inclined surface of the first bevel gear block can be in sliding fit with the inclined surface of the second bevel gear block. The upper end of the fixed box is communicated with the bottom end of the first conical tube, which is convenient for blowing the wind wheel to rotate during the process of air flow entering the first conical tube, thereby driving the storage hopper to vibrate.
[0008] Preferably, the connecting member includes a connecting pipe fixedly installed at the bottom end of the fixed box. The top end of the connecting pipe is communicated with the fixed box. A swinging cavity is formed in the device box. The bottom end of the connecting pipe is fixedly connected with a swinging disc. Both the upper and lower sides of the swinging disc are slidably attached to the inner wall of the swinging cavity. A first pipe communicating with the air inlet pipe and the swinging cavity is formed in the device box. A second pipe communicating with the connecting pipe and the swinging cavity is formed in the swinging disc, which is convenient for keeping the communication state between the air inlet pipe and the bottom end of the first conical pipe all the time when the storage hopper swings.
[0009] Preferably, the atomization mechanism includes a second conical pipe sleeved on the outer wall of the first conical pipe. A first through hole is formed at the top end of the first conical pipe. A second through hole is formed at the top end of the second conical pipe. A plurality of groups of conveying grooves are evenly formed on the side wall of the first conical pipe. Side holes capable of communicating with the bottom ends of the conveying grooves are formed at the bottom end of the second conical pipe. An atomization member for improving the atomization efficiency is arranged in the storage hopper, which is convenient for assisting in improving the atomization efficiency.
[0010] Preferably, the atomization member includes two mounting frames fixedly installed on the side surface of the second conical pipe. Clamping grooves capable of being clamped with the mounting frames are formed on the storage hopper. An atomization disc is fixedly connected between the two mounting frames. The upper side of the atomization disc is designed as a conical surface. The atomization disc is located below the liquid injection hopper, which is convenient for improving the atomization efficiency.
[0011] Preferably, a fixed disc is fixedly connected to the liquid injection hopper. A rotating disc is rotatably connected to the liquid injection hopper. Liquid injection ports are respectively formed on the fixed disc and the rotating disc, which is convenient for performing liquid injection operations. At the same time, the air intake amount can be controlled and the atomization rate can be adjusted by adjusting the size of the communication area between the two liquid injection ports.
[0012] Preferably, the distances between multiple adjacent second helical teeth are not equal, which is convenient for making the vibration present an irregular state and avoiding the symmetrical impact of the first helical teeth on both sides at the same time, which affects the vibration effect.
[0013] Preferably, a mist discharge pipe is connected to the side surface of the bottle body. A handle is fixedly connected to the side surface of the bottle body, which is convenient for holding and atomizing use. The atomized medicine is discharged through the mist discharge pipe.
[0014] Preferably, the bottle body is made of transparent PP plastic material, which is convenient for observing the amount of medicine inside the bottle body.
[0015] Compared with the prior art, the beneficial effects of the present invention are: A neonatal atomization device provided by the present invention solves the problem that it is difficult to fully atomize and use the drug residues in the atomization bottle when the existing neonatal atomization device is in use. By means of a balancing member, the bottom end of the first conical tube is always kept in a vertically downward state, and through a connecting member, the air inlet pipe is always kept in communication with the bottom end of the first conical tube, so that during the tilting process of the bottle body, the liquid medicine will always accumulate at the bottom of the first conical tube for atomization operation. When the air flow enters the first conical tube, it blows the wind wheel to rotate, thereby driving the vibrating member to vibrate the storage hopper. The water droplets adhering to the inner wall of the storage hopper are shaken off to the bottom of the storage hopper through vibration assistance for full atomization, and the atomization efficiency is assisted to be improved by an atomization mechanism. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of a partial structure of the balancing mechanism of the present invention; Figure 3 is a schematic diagram of a partial structure of the atomization mechanism of the present invention; Figure 4 is Figure 3 an enlarged view of area A in Figure 5 is a schematic diagram of a partial structure of the conveying mechanism of the present invention; Figure 6 is a sectional view of a partial structure of the conveying mechanism of the present invention; Figure 7 is Figure 6 an enlarged view of area B in Figure 8 is Figure 6 an enlarged view of area C in Figure 9 is a schematic diagram of a partial structure of the vibrating mechanism of the present invention; Figure 10 is Figure 9 an enlarged view of area D in
[0017] In the figure: 1 - bottle body; 2 - liquid injection hopper; 3 - storage hopper; 4 - first conical tube; 5 - balancing member; 6 - device box; 7 - air inlet pipe; 8 - connecting member; 9 - wind wheel; 10 - vibrating member; 11 - first rotating shaft; 12 - rotating ring; 13 - second rotating shaft; 14 - fixed box; 15 - sliding groove; 16 - first bevel gear block; 17 - return spring; 18 - second bevel gear block; 19 - connecting pipe; 20 - swing cavity; 21 - swing disk; 22 - first pipe; 23 - second pipe; 25 - second conical tube; 26 - first through hole; 27 - second through hole; 28 - conveying groove; 29 - side hole; 30 - atomizing member; 31 - mounting bracket; 32 - clamping groove; 33 - atomizing disk; 34 - fixed disk; 35 - rotating disk; 36 - liquid injection port; 37 - mist discharge pipe; 38 - handle. Detailed implementation mode
[0018] 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 making creative efforts belong to the scope of protection of the present invention.
[0019] Please refer to Figures 1 - 10 , the present invention provides a technical solution: a neonatal atomization device, including a bottle body 1, a balancing mechanism, a conveying mechanism, a vibrating mechanism and an atomizing mechanism. A liquid injection hopper 2 is inserted into the upper end of the bottle body 1. The bottle body 1 is made of transparent PP plastic material. The balancing mechanism includes a storage hopper 3 installed inside the bottle body 1. A first conical tube 4 is fixedly connected inside the storage hopper 3. A balancing member 5 is provided inside the bottle body 1 for keeping the bottom end of the first conical tube 4 always in a vertically downward state. The conveying mechanism includes a device box 6 fixedly installed at the bottom of the bottle body 1. An air inlet pipe 7 is fixedly connected to the bottom of the device box 6. A connecting member 8 is provided inside the device box 6 for always keeping the air inlet pipe 7 in communication with the bottom end of the first conical tube 4 when the storage hopper 3 swings.
[0020] The vibrating mechanism includes a wind wheel 9 rotatably connected to the bottom of the storage hopper 3. A vibrating member 10 is provided inside the bottle body 1 for blowing the wind wheel 9 to rotate during the process of air flow entering the first conical tube 4, thereby driving the storage hopper 3 to vibrate. The vibrating mechanism is used to assist in vibrating the water droplets adhering to the inner wall of the storage hopper 3 to the bottom of the storage hopper 3 for full atomization. The atomizing mechanism is installed inside the bottle body 1 for assisting in improving the atomization efficiency.
[0021] The balancing member 5 includes two groups of first rotating shafts 11 fixedly installed on the storage hopper 3. The two groups of first rotating shafts 11 are symmetrically distributed on both sides of the storage hopper 3. A rotating ring 12 is provided inside the bottle body 1. Both groups of first rotating shafts 11 are rotatably connected to the inner wall of the rotating ring 12. Two groups of second rotating shafts 13 are fixedly connected to the rotating ring 12. The two groups of second rotating shafts 13 are symmetrically distributed on both sides of the rotating ring 12, and the axis of the two groups of first rotating shafts 11 forms an angle of 90° with the axis of the two groups of second rotating shafts 13. Both groups of second rotating shafts 13 are rotatably connected to the inner wall of the bottle body 1.
[0022] The vibrating member 10 includes a fixed box 14 fixedly installed at the bottom of the storage hopper 3. A plurality of sliding grooves 15 are formed in the fixed box 14. A first bevel gear block 16 is slidably connected in the sliding groove 15. One side of the first bevel gear block 16 is fixedly connected to a return spring 17 fixedly connected to the sliding groove 15. A plurality of second bevel gear blocks 18 are fixedly connected to the outer wall of the wind wheel 9. The distances between a plurality of adjacent second bevel gear blocks 18 are not equal. The inclined surface of the first bevel gear block 16 can be in sliding fit with the inclined surface of the second bevel gear block 18. The upper end of the fixed box 14 is communicated with the bottom end of the first conical pipe 4.
[0023] The connecting member 8 includes a connecting pipe 19 fixedly installed at the bottom end of the fixed box 14. The top end of the connecting pipe 19 is communicated with the fixed box 14. A swinging cavity 20 is formed in the device box 6. The bottom end of the connecting pipe 19 is fixedly connected to a swinging disc 21. The upper and lower sides of the swinging disc 21 are both in sliding fit with the inner wall of the swinging cavity 20. A first pipe 22 communicating the intake pipe 7 and the swinging cavity 20 is formed in the device box 6. A second pipe 23 communicating the connecting pipe 19 and the swinging cavity 20 is formed in the swinging disc 21.
[0024] The atomization mechanism includes a second conical pipe 25 sleeved on the outer wall of the first conical pipe 4. A first through hole 26 is formed at the top end of the first conical pipe 4. A second through hole 27 is formed at the top end of the second conical pipe 25. A plurality of conveying grooves 28 are uniformly formed on the side wall of the first conical pipe 4. A side hole 29 capable of communicating with the bottom end of the conveying groove 28 is formed at the bottom end of the second conical pipe 25. A mist discharge pipe 37 is connected to the side surface of the bottle body 1 in a communicating manner. A handle 38 is fixedly connected to the side surface of the bottle body 1. An atomization member 30 for improving the atomization efficiency is provided in the storage hopper 3.
[0025] The atomization member 30 includes two mounting brackets 31 fixedly installed on the side surface of the second conical pipe 25. A clamping groove 32 capable of being clamped with the mounting brackets 31 is formed on the storage hopper 3. An atomization disc 33 is fixedly connected between the two mounting brackets 31. The upper side of the atomization disc 33 is designed as a conical surface. The atomization disc 33 is located below the liquid injection hopper 2. A fixed disc 34 is fixedly connected to the liquid injection hopper 2. A rotating disc 35 is rotatably connected to the liquid injection hopper 2. Liquid injection ports 36 are respectively formed on the fixed disc 34 and the rotating disc 35.
[0026] In this implementation, the output pipe of the atomizer is connected and docked with the intake pipe 7. Rotate the rotating disk 35 to align the positions of the two liquid injection ports 36 for connection. Place the medicine in the liquid injection hopper 2, and it flows along the bottom opening of the liquid injection hopper 2 to the upper end of the atomization disk 33, and then flows to the lower storage hopper 3 through the conical surface around. Thus, the liquid injection operation is completed. Connect the mask with the mist exhaust pipe 37, and turn on the atomizer to input the gas into the first pipe 22 through the intake pipe 7, then input it into the swing cavity 20 from the first pipe 22, and then enter the connecting pipe 19 along the second pipes 23 around the swing disk 21. The air flow is transported upward in the connecting pipe 19, thereby driving the wind wheel 9 to rotate, and then input into the first conical pipe 4 and ejected upward through the first through hole 26 at the top. At this time, the air flow speed at the top of the first conical pipe 4 is relatively fast. According to Bernoulli's principle, negative pressure suction is generated around. At this time, the liquid medicine at the bottom of the storage hopper 3 will flow into the conveying groove 28 between the first conical pipe 4 and the second conical pipe 25 through the side hole 29. The liquid medicine is pumped upward and ejected at the position of the second through hole 27. The liquid medicine impacts the flat position on the bottom surface of the atomization disk 33 to generate water mist. The water mist is transported upward through the outer edge position of the atomization disk 33, reducing the situation of water mist entering the upper liquid injection hopper 2. Finally, the water mist is discharged through the mist exhaust pipe 37 to complete the atomization inhalation treatment process.
[0027] When the bottle body 1 swings and is in an inclined state, due to the relatively large gravity of the swing disk 21, it will drive the connecting pipe 19 at the bottom of the storage hopper 3 to tend to swing to a vertical state. As the storage hopper 3 rotates around the first rotating shaft 11 and simultaneously drives the rotating ring 12 to rotate around the second rotating shaft 13, the bottom tip of the storage hopper 3 can always be in a state close to vertically downward. At this time, the liquid medicine in the storage hopper 3 will be more likely to converge to the concave position at the bottom of the storage hopper 3, completely submerging all the side holes 29 around the bottom of the second conical pipe 25, improving the efficiency of being transported to the side holes 29 and the conveying groove 28, and avoiding the situation of pumping air when some side holes 29 are not submerged by the liquid medicine during the suction process. At this time, it will cause the reduction of the aerosol amount and the reduction of the liquid medicine transportation efficiency.
[0028] It should be noted that: in order to improve the smoothness of the swing of the swing disk 21 in the swing cavity 20, a small amount of gas will overflow between the swing disk 21 and the swing cavity 20, and it is difficult to achieve complete sealing. However, only by increasing the amount of the second pipeline 23 can a large amount of gas be output through the second pipeline 23. At this time, the amount of gas overflowing through the gap is relatively small, and the gas flowing upward into the interior of the bottle body 1 can also assist the aerosol to be discharged from the bottle body 1 to the mist discharge pipe 37, which will not affect the normal use of the device. And this balance mechanism can only assist the inclination within a certain angle, about 30° of inclination in any direction, which has been greatly improved compared with the traditional operation that must be vertical. If the inclination angle needs to be increased, the diameter sizes of the bottle body 1 and the device box 6 need to be increased. At this time, the structural volume is larger, which is not conducive to handheld operation and use.
[0029] During the process of the airflow pushing the wind wheel 9 to rotate, the wind wheel 9 will drive the surrounding second bevel gear blocks 18 to rotate. Thus, through the sliding fit of the inclined surfaces of the second bevel gear blocks 18 and the inclined surfaces of the first bevel gear blocks 16, the first bevel gear blocks 16 are pushed to slide in the sliding grooves 15, compressing the return springs 17. When the inclined surfaces of the first bevel gear blocks 16 are in contact and fit with the inclined surfaces of the second bevel gear blocks 18, the first bevel gear blocks 16 are quickly ejected by the return springs 17, thereby generating a slight impact on the outer wall of the wind wheel 9. This impact is transmitted to the bottom and inner wall of the storage hopper 3, enabling the water droplets adhering to the inner wall of the storage hopper 3 to roll down to the bottom recess of the storage hopper 3 more quickly for collection and atomization use, improving the use efficiency of the liquid medicine, reducing the residue of the liquid medicine in the storage hopper 3, and avoiding waste and insufficient drug inhalation.
[0030] It should be noted that: since the multiple groups of second bevel gear blocks 18 are not evenly distributed at equal intervals, the impact times of the first bevel gear blocks 16 are different, generating a higher vibration frequency, and the vibration direction will not cancel each other out on both sides. The rotation of the wind wheel 9 does not need to be too fast, and only needs to rotate slowly under the action of the airflow. Moreover, the elastic force of the return spring 17 is small, so that the impact force between the top of the first bevel gear block 16 and the outer wall of the wind wheel 9 is relatively weak, and only a small amount of vibration needs to be transmitted to the inner wall of the connected storage hopper 3. During the process of holding the bottle body 1 for operation, this vibration is already difficult to perceive when transmitted to the bottle body 1, and it will not affect the use or cause discomfort. At the same time, due to the relatively large weights of the swing disk 21, the storage hopper 3 and the internal liquid medicine, the impact vibration has little effect on the swing of the storage hopper 3, and there will be no situation where large swings affect the stability of the liquid medicine.
[0031] After use, remove the liquid injection hopper 2 from the bottle body 1, and then use tools such as tweezers to rotate the mounting bracket 31 and pull it upward to release the engagement with the engagement groove 32, so that the entire second conical tube 25 can be taken out from the storage hopper 3. Clean and disinfect the inside of the bottle body 1, the inner wall of the storage hopper 3, the entire mounting bracket 31, and the liquid injection hopper 2 respectively, and then the atomization device can be reused. When in use, first engage the mounting bracket 31 with the storage hopper 3, and then install the liquid injection hopper 2 on the top of the bottle body 1.
[0032] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device.
[0033] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand 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 neonatal atomization device, characterized in that: include: A bottle body (1), wherein the upper end of the bottle body (1) is plugged with a liquid injection hopper (2); Also includes: A balancing mechanism, the balancing mechanism comprising a storage bucket (3) installed inside the bottle body (1), a first conical tube (4) being fixedly connected inside the storage bucket (3), and a balancing member (5) for keeping the bottom end of the first conical tube (4) always in a vertical downward state provided inside the bottle body (1); A conveying mechanism, the conveying mechanism comprising a device box (6) fixedly mounted on the bottom of the bottle body (1), an air intake pipe (7) fixedly connected to the bottom of the device box (6), a connecting piece (8) being provided in the device box (6) for always maintaining a connecting state between the air intake pipe (7) and the bottom end of the first conical tube (4) when the storage bucket (3) swings; a vibration mechanism, the vibration mechanism comprising a wind wheel (9) rotatably connected to the bottom of the storage bucket (3); a vibration member (10) is provided in the bottle body (1) for blowing the wind wheel (9) to rotate when the airflow enters the first conical tube (4), thereby driving the storage bucket (3) to vibrate; the vibration mechanism is used to shake off water droplets adhering to the inner wall of the storage bucket (3) to the bottom of the storage bucket (3) through vibration assistance for sufficient atomization; An atomization mechanism is installed in the bottle body (1) and is used to assist in improving atomization efficiency.
2. A neonatal atomization device according to claim 1, characterized in that: The balancing member (5) comprises two groups of first rotating shafts (11) fixedly mounted on the storage bucket (3), the two groups of first rotating shafts (11) being symmetrically distributed on both sides of the storage bucket (3), a rotating ring (12) being provided inside the bottle body (1), the two groups of first rotating shafts (11) being rotatably connected to the inner wall of the rotating ring (12), two groups of second rotating shafts (13) being fixedly connected to the rotating ring (12), the two groups of second rotating shafts (13) being symmetrically distributed on both sides of the rotating ring (12), and the axes of the two groups of first rotating shafts (11) and the axes of the two groups of second rotating shafts (13) being at an angle of 90°, and the two groups of second rotating shafts (13) being rotatably connected to the inner wall of the bottle body (1).
3. A neonatal atomization device according to claim 2, characterized in that: The vibrating member (10) comprises a fixing box (14) fixedly mounted on the bottom of the storage bucket (3), a plurality of sliding grooves (15) being provided in the fixing box (14), a first bevel gear block (16) being slidably connected in the sliding groove (15), a return spring (17) fixedly connected to the sliding groove (15) being fixedly connected to one side of the first bevel gear block (16), a plurality of second bevel gear blocks (18) being fixedly connected to the outer wall of the wind wheel (9), the inclined surface of the first bevel gear block (16) being able to slide in contact with the inclined surface of the second bevel gear block (18), and the upper end of the fixing box (14) being connected to the bottom end of the first conical tube (4).
4. A neonatal atomization device according to claim 3, characterized in that: The connecting member (8) comprises a connecting pipe (19) fixedly mounted on the bottom end of the fixing box (14), the top end of the connecting pipe (19) being in communication with the fixing box (14), a swing chamber (20) being provided in the device box (6), a swing plate (21) being fixedly connected to the bottom end of the connecting pipe (19), the upper and lower sides of the swing plate (21) both being slidably fitted with the inner wall of the swing chamber (20), a first pipe (22) being in communication with the air intake pipe (7) and the swing chamber (20) being provided in the device box (6), and a second pipe (23) being in communication with the connecting pipe (19) and the swing chamber (20) being provided in the swing plate (21).
5. A neonatal atomization device according to claim 1, characterized in that: The atomizing mechanism comprises a second conical tube (25) sleeved with the outer wall of the first conical tube (4); a first through hole (26) is provided at the top end of the first conical tube (4); a second through hole (27) is provided at the top end of the second conical tube (25); a plurality of groups of conveying grooves (28) are evenly provided on the side wall of the first conical tube (4); a side hole (29) capable of communicating with the bottom end of the conveying groove (28) is provided at the bottom end of the second conical tube (25); and an atomizing element (30) for improving atomization efficiency is provided in the storage hopper (3).
6. A neonatal atomization device according to claim 5, characterized in that: The atomizing element (30) comprises two groups of mounting frames (31) fixedly mounted on the side of the second conical tube (25); a clamping groove (32) capable of being clamped with the mounting frames (31) is provided on the storage bucket (3); an atomizing disk (33) is fixedly connected between the two groups of mounting frames (31); the upper side of the atomizing disk (33) is designed as a conical surface; and the atomizing disk (33) is located below the liquid injection bucket (2).
7. A neonatal atomization device according to claim 1, characterized in that: A fixed disk (34) is fixedly connected to the liquid injection hopper (2), and a rotating disk (35) is rotatably connected to the liquid injection hopper (2). Liquid injection ports (36) are respectively provided on the fixed disk (34) and the rotating disk (35).
8. A neonatal atomization device according to claim 3, characterized in that: The spacings between the plurality of adjacent groups of the second bevel gear blocks (18) are different.
9. A neonatal atomization device according to claim 1, characterized in that: The side of the bottle body (1) is connected to a mist exhaust pipe (37), and the side of the bottle body (1) is fixedly connected to a handle (38).
10. A neonatal atomization device according to claim 1, characterized in that: The bottle body (1) is made of transparent PP plastic material.
Citation Information
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