An atomization therapeutic apparatus with a multi-atomization mode switching structure

By adjusting the angle of the dosing tank and the size of the atomizer's atomizer through the rotating parts and adjusting parts, the problem that the traditional atomizer cannot fully atomize the liquid in non-standard postures is solved, and effective atomization and comfortable use in different postures is achieved.

CN119925766BActive Publication Date: 2025-08-01GUANGDONG YIKANG BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510429046.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-08
Publication Date
2025-08-01
Estimated Expiration
2045-04-08

AI Technical Summary

Technical Problem

When the existing atomizer is unable to maintain a standard sitting or standing posture due to physical discomfort or mobility, the angle of the traditional atomizer cup delivery tank is fixed, making it difficult to adapt to the diverse posture, resulting in the flow of the drug liquid under gravity to the unfavorable atomization area, which may cause the drug to be unable to fully atomize, reflux or leak, the drug utilization rate is low, and the user experience is poor.

Method used

A atomization treatment instrument with multiple atomization mode switching structure was designed. The rotating parts and adjusting parts realized real-time adjustment of the angle of the dosing tank. Combined with the bellows and deflector structure, it ensured that the drug liquid was always in a position conducive to atomization and inhalation, avoiding reflux or leakage of the drug liquid, and improving drug utilization and use comfort.

Benefits of technology

It realizes effective atomization of the drug liquid under different postures, avoids reflux or leakage of the drug liquid, improves the utilization rate of the drug and the safety and comfort of use, and adapts to the atomization needs of different drugs and people.

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Abstract

The present invention relates to the technical field of atomizers, and discloses an atomization therapeutic apparatus with a multi-mode atomization switching structure, including an atomizer body. The atomizer body is connected with a connecting pipe through a connection port opened on its outer surface, and the other end of the connecting pipe far away from the atomizer body is provided with an atomization cup; wherein, the atomization cup includes a cylinder. This atomization therapeutic apparatus with a multi-mode atomization switching structure can effectively solve the problems in the prior art that due to physical discomfort, inconvenient movement, etc., users are unable to maintain a standard sitting or standing posture for atomization. When in a semi-recumbent or lateral position, the angle of the medicine delivery pool in the traditional atomization cup is fixed, making it difficult to adapt to these diverse postures. The liquid medicine flows by gravity to areas that are not conducive to atomization, which may cause the medicine to not be fully atomized, and even situations such as liquid medicine reflux and leakage may occur, resulting in reduced drug utilization rate and poor use experience.
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Description

Technical Field

[0001] The present invention relates to the technical field of atomizers, and in particular to an atomization therapeutic apparatus with a multiple atomization mode switching structure. Background Art

[0002] A nebulizer is a medical device that converts liquid medication into tiny droplets. It's primarily used to treat respiratory diseases. By allowing the patient to inhale the atomized medication, it directly affects the respiratory tract and lungs, achieving the desired therapeutic effect. During use, an air compressor generates a high-pressure airflow that flows through an airway into the nebulizer cup. At the atomizer core, the high-speed airflow draws the medication liquid out of the small holes or gaps around the nozzle, dispersing it into tiny droplets. These droplets, carried by the airflow, pass through a mask or mouthpiece and enter the patient's respiratory tract.

[0003] In the existing technology, users are unable to maintain a standard sitting or standing posture for nebulization due to physical discomfort, mobility problems, etc. When in a semi-recumbent or side-lying position, the angle of the drug pool in the traditional nebulizer cup is fixed, which is difficult to adapt to these diverse postures. The drug liquid flows to the area that is not conducive to atomization due to gravity, which may cause the drug to not be fully atomized, and even cause reflux or leakage of the drug liquid, resulting in reduced drug utilization and poor user experience. Summary of the Invention

[0004] In response to the above-mentioned shortcomings of the prior art, the present invention provides a nebulizer therapy device with a multiple nebulization mode switching structure, which can effectively solve the problems in the prior art that users cannot maintain a standard sitting or standing posture for nebulization due to physical discomfort, mobility difficulties, etc., and when in a semi-recumbent or lateral position, the angle of the drug pool in the traditional nebulizer cup is fixed, which is difficult to adapt to these diverse postures. The drug liquid flows to areas that are not conducive to atomization due to gravity, which may cause the drug to fail to be fully atomized, and even cause reflux or leakage of the drug liquid, resulting in reduced drug utilization and poor user experience.

[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions:

[0006] The present invention provides an atomization therapeutic device with a multiple atomization mode switching structure, comprising:

[0007] An atomizer body, wherein the atomizer body is connected to a connecting pipe via a connecting port provided on an outer surface thereof, and an atomizing cup is provided at the other end of the connecting pipe away from the atomizer body;

[0008] The atomizer cup comprises a cylinder, the outer surface of the cylinder is provided with a storage box, and the interior of the storage box is connected to the interior of the cylinder, and the interior of the cylinder is provided with a storage member for placing liquid medicine;

[0009] Among them, the storage member includes an annular plate, the outer surface of the annular plate is fixedly connected to the inner wall of the cylinder body, the annular plate is fixedly connected to a drug administration pool through a corrugated pipe arranged on its lower surface, and a conical pipe is fixedly connected inside the drug administration pool; a conical block is sleeved on the outer surface of the conical pipe;

[0010] Among them, a rotating member for adjusting the angle of the drug administration pool is arranged inside the accommodation box, and an adjusting member for changing the size of the atomized particles is arranged on the top of the conical block.

[0011] Further, the rotating member includes an air inlet pipe, the top end of the air inlet pipe is communicated with the inside of the conical pipe, the bottom end of the air inlet pipe is fixedly installed with one end of the connecting pipe away from the atomizer body, a connecting rod is fixedly connected to the circumferential outer surface of the air inlet pipe, two connecting rods are provided and symmetrically distributed with the air inlet pipe as the center, a limiting groove is opened on one side of the accommodation box close to the drug administration pool, and one end of the connecting rod away from the air inlet pipe is in sliding fit with the inner wall of the limiting groove.

[0012] Further, the conical pipe is designed with a hollow structure, a water suction pipe is opened inside the conical block, and a notch is opened at the bottom end of the conical block.

[0013] Further, the adjusting member includes a threaded rod, the bottom end of the threaded rod is rotatably connected to the upper surface of the conical block, a baffle is sleeved on the outer surface of the threaded rod, the circumferential outer surface of the threaded rod is meshed with the inside of the baffle, the top end of the threaded rod is fixedly connected with a gear, and a toothed ring meshed with the gear is arranged on the outer surface of the gear.

[0014] Further, an adjusting rod is fixedly connected to the outer surface of the toothed ring, and two adjusting rods are provided and symmetrically distributed with the toothed ring as the center.

[0015] Further, a diversion plate is fixedly connected to the lower surface of the baffle, the diversion plate is designed with a wider upper part and a narrower lower part, and the limiting groove is designed in an arc shape.

[0016] Further, a support frame is fixedly connected to the outer surface of the cylinder body, and a nozzle rotatably connected to the outer surface of the cylinder body is arranged above the accommodation box.

[0017] The technical solution provided by the present invention has the following beneficial effects compared with the prior art:

[0018] The present invention is provided with a cylinder body, a containing box, a storage member and a rotating member. Among them, an annular plate is fixedly connected to the inner wall of the cylinder body. A medicine administration pool is connected below the annular plate through a corrugated pipe. A limiting groove is opened inside the containing box. The medicine administration pool is connected to the limiting groove through a connecting rod in the rotating member. By rotating the intake pipe, the conical pipe, the medicine administration pool, the conical block and the adjusting member arranged above the conical block are driven to move synchronously into the containing box. During this process, the corrugated pipe is stretched and still connects the medicine administration pool with the inside of the cylinder body and the nozzle. The angle can be adjusted in real time according to the patient's posture to ensure that the liquid medicine is always in a position conducive to atomization and inhalation, avoid the backflow or leakage of the liquid medicine, improve the safety and comfort of treatment. When the inclination angle of the medicine administration pool changes, the diversion channel is smooth, and the liquid medicine can naturally adjust the distribution state under the action of gravity, and the position of the liquid medicine can be adjusted from the source, and different postures can be adopted according to the physical condition or comfort requirements of the user. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0020] Figure 1 is a three-dimensional structural schematic diagram of an embodiment of the present invention;

[0021] Figure 2 is a multi-angle three-dimensional structural schematic diagram of an embodiment of the present invention;

[0022] Figure 3 is a structural schematic diagram of an atomizing cup and a connecting pipe of an embodiment of the present invention;

[0023] Figure 4 is an exploded view of an atomizing cup of an embodiment of the present invention;

[0024] Figure 5 is a structural schematic diagram of a rotating member, a containing box and a medicine administration pool of an embodiment of the present invention;

[0025] Figure 6 is a sectional structural schematic diagram of a storage member of an embodiment of the present invention;

[0026] Figure 7 is an embodiment of the present invention Figure 6 is a partial enlarged structural schematic diagram at A in;

[0027] Figure 8 is an embodiment of the present invention Figure 6 is a partial enlarged structural schematic diagram at B in;

[0028] Figure 9 Schematic structural diagram of the conical block in the embodiment of the present invention;

[0029] Figure 10 Schematic structural diagram of the adjusting member in the embodiment of the present invention.

[0030] The reference numerals in the figure respectively represent: 1, atomizer body; 11, connecting pipe; 2, atomizing cup; 21, cylinder; 211, support frame; 22, accommodating box; 23, storage member; 231, annular plate; 232, corrugated pipe; 233, medicine administration pool; 234, conical pipe; 24, conical block; 241, water suction pipe; 242, notch; 25, rotating member; 251, air inlet pipe; 252, connecting rod; 253, limiting groove; 26, adjusting member; 261, threaded rod; 262, baffle; 2621, diversion plate; 263, gear; 264, toothed ring; 265, adjusting rod; 27, nozzle. Detailed implementation manners

[0031] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are some but not all of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0032] The present invention will be further described below with reference to the embodiments. Embodiment

[0033] Please refer to Figures 1 - 10 , the present invention provides a technical solution: an atomization therapeutic apparatus with a multi-atomization mode switching structure, comprising:

[0034] An atomizer body 1, the atomizer body 1 is connected with a connecting pipe 11 through a connecting port opened on its outer surface, and the other end of the connecting pipe 11 away from the atomizer body 1 is provided with an atomizing cup 2;

[0035] Wherein, the atomizing cup 2 includes a cylinder 21, an accommodating box 22 is arranged on the outer surface of the cylinder 21, and the inside of the accommodating box 22 is communicated with the inside of the cylinder 21, and a storage member 23 for placing liquid medicine is arranged inside the cylinder 21;

[0036] Wherein, the storage member 23 includes an annular plate 231, the circumferential outer surface of the annular plate 231 is fixedly connected with the inner wall of the cylinder 21, the annular plate 231 is fixedly connected with a medicine administration pool 233 through a corrugated pipe 232 arranged on its lower surface, and a conical pipe 234 is fixedly connected inside the medicine administration pool 233; a conical block 24 is sleeved on the outer surface of the conical pipe 234;

[0037] Among them, a rotating member 25 for adjusting the angle of the medicine administration pool 233 is arranged inside the accommodation box 22, and an adjusting member 26 for changing the size of the atomized particles is arranged at the top of the conical block 24.

[0038] The rotating member 25 includes an air inlet pipe 251. The top end of the air inlet pipe 251 is communicated with the inside of the conical pipe 234. The bottom end of the air inlet pipe 251 is fixedly installed with one end of the connecting pipe 11 far away from the atomizer body 1. A connecting rod 252 is fixedly connected to the circumferential outer surface of the air inlet pipe 251. There are two connecting rods 252 and they are symmetrically distributed with the air inlet pipe 251 as the center. A limiting groove 253 is opened on one side of the accommodation box 22 close to the medicine administration pool 233. One end of the connecting rod 252 far away from the air inlet pipe 251 is in sliding fit with the inner wall of the limiting groove 253.

[0039] The conical pipe 234 is designed with a hollow structure. A water suction pipe 241 is opened inside the conical block 24. There are five water suction pipes 241 and they are circumferentially and arrayed with the central axis of the conical pipe 234 as the center. Both the upper and lower ends of the water suction pipe 241 penetrate through the conical block 24, and a notch 242 is opened at the bottom end of the conical block 24.

[0040] The adjusting member 26 includes a threaded rod 261. The bottom end of the threaded rod 261 is rotatably connected to the upper surface of the conical block 24. A baffle 262 is sleeved on the outer surface of the threaded rod 261. The circumferential outer surface of the threaded rod 261 is meshed with the inside of the baffle 262. The top end of the threaded rod 261 is fixedly connected with a gear 263. A toothed ring 264 meshed with the gear 263 is arranged on the outer surface of the gear 263.

[0041] An adjusting rod 265 is fixedly connected to the outer surface of the toothed ring 264. There are two adjusting rods 265 and they are symmetrically distributed with the toothed ring 264 as the center.

[0042] A guide plate 2621 is fixedly connected to the lower surface of the baffle 262. There are five guide plates 2621 and they are circumferentially and arrayed with the central axis of the baffle 262 as the center. The guide plate 2621 is designed with a wider upper part and a narrower lower part. The limiting groove 253 is designed with an arc shape.

[0043] A support frame 211 is fixedly connected to the outer surface of the cylinder body 21. A nozzle 27 rotatably connected to the outer surface of the cylinder body 21 is arranged above the accommodation box 22.

[0044] The process of adjusting the distance of the baffle 262;

[0045] Different drugs have different viscosities. For drugs with lower viscosity, when the distance between baffle 262 and the opening of water suction pipe 241 is constant, the drugs can flow smoothly out of the opening of water suction pipe 241 and be atomized under the guidance of baffle 262. However, for drugs with higher viscosity, this fixed distance will cause the drugs to flow out of the opening of water suction pipe 241 at a slower speed. Moreover, when they reach baffle 262, they are not well dispersed and cannot be fully atomized. They will gather near baffle 262, affecting the atomization effect.

[0046] The baffle 262 is close to the conical block 24, just like water will be dispersed when it flows out of a narrow channel. In this confined space, the drug liquid is more easily atomized into finer droplets, thereby producing smaller atomized particles, allowing the drug to be deposited more deeply in the respiratory tract and lungs. At the same time, if the distance is far, the drug liquid has a larger space to diffuse before reaching the atomization area, which may cause the impact of the airflow on the drug liquid to be less concentrated. The particles produced by the atomization may be relatively large, which is not conducive to the deposition of the drug deep in the lungs. Children's respiratory tracts are narrower and shorter than those of adults, and they have different requirements for the size of atomized particles and the amount of inhalation. Children need finer atomized particles to better deliver the drug deep into the respiratory tract. If the distance between the baffle 262 and the outlet of the water suction pipe 241 is constant, it is impossible to meet the atomization needs of children and adults at the same time. Therefore, the distance between the baffle 262 and the outlet of the water suction pipe 241 needs to be adjusted.

[0047] A flow guide is located within the barrel 21, above the adjustment member 26. Its top engages the upper surface of the barrel 21 and is used to separate large atomized particles. A feed port is located at the top of the flow guide, allowing medication to be placed into it. The storage member 23, the conical block 24, and the three-part flow guide are designed as separate units. The annular plate 231 is fixedly connected to the inner wall of the barrel 21, while the conical block 24 and adjustment member 26 form a single unit that can be separated from the barrel 21. The flow guide is also designed to be separate from the inner wall of the barrel 21.

[0048] Before using the atomizer cup 2, the height of the baffle 262 is adjusted based on the characteristics of the liquid medicine and the user's desired atomization effect. The adjustment lever 265 is then toggled to rotate the gear ring 264. The inner surface of the gear ring 264 meshes with the teeth on the outer circumference of the gear 263. When the gear ring 264 rotates clockwise, the multiple gears 263 inside rotate synchronously. Baffles 262 are provided at both the upper and lower ends of the gear 263 to prevent the gear ring 264 from falling off during use. The gear ring 264 is relatively large, and the transmission ratio between the gear ring 264 and the gear 263 allows for more precise height adjustment of the baffle 262.

[0049] The upper surface of the conical block 24 is provided with threaded rods 261. There are multiple threaded rods 261, which are circumferentially arrayed around the conical tube 234. The bottom end of the threaded rod 261 is rotationally connected to the inside of the conical block 24 through a buckle. The multiple threaded rods 261 rotate synchronously through the gears 263 fixedly connected to their tops. Multiple channels corresponding to the threaded rods 261 one by one are opened inside the baffle 262, and threaded grooves meshing with the threaded rods 261 are arranged inside the channels. The multiple threaded rods 261 rotate at the same speed, which can drive the baffle 262 to move vertically upward. As the adjusting rod 265 drives the toothed ring 264 to continue rotating clockwise, the distance between the baffle 262 and the conical block 24 increases.

[0050] Similarly, when the adjusting rod 265 drives the toothed ring 264 to rotate counterclockwise around the central axis of the conical tube 234, the threaded rod 261 rotates counterclockwise synchronously through the gear 263 at its top. The baffle 262 meshes with the threaded rod 261 through the threaded groove opened inside it. At this time, the baffle 262 moves vertically downward. As the adjusting rod 265 continues to rotate clockwise, the distance between the baffle 262 and the conical block 24 decreases. After the liquid medicine comes up from the water suction pipe 241, the impact of the air flow on the restricted liquid medicine is more concentrated.

[0051] After adjusting the baffle 262 to an appropriate height, the conical block 24 and the adjusting part 26 are placed inside the cylinder body 21. The lower surface of the conical block 24 fits with the outer surface of the conical tube 234, so as to be smoothly placed inside the cylinder body 21. The notch 242 can make the liquid medicine in the medicine delivery pool 233 be better sucked up from the bottom end of the water suction pipe 241, increasing the utilization rate. When the conical block 24 is placed, the conical block 24 is attracted to the conical tube 234. Then, the guide part is placed at the upper position inside the cylinder body 21, and the outer end of the guide part is engaged with the top end of the cylinder body 21. At this time, the process of assembling the atomizing cup 2 before use is completed.

[0052] The process of atomization:

[0053] During actual use, the medicament to be atomized is poured from the diversion member above the cylinder body 21, and the medicament enters the dosing pool 233 inside the atomizing cup 2. All materials inside the atomizing cup 2 are of medical grade. The tapered tube 234 arranged in the middle of the dosing pool 233 is narrow at the top and wide at the bottom, and is overall V-shaped. The tapered tube 234 is designed with a hollow structure, and an air outlet is provided at the top end of the tapered tube 234. A nozzle 27 is arranged on the side of the atomizing cup 2. The nozzle 27 is fixedly communicated with the inside of the cylinder body 21, and the nozzle 27 can be connected to both mouthpiece type and head-mounted type. After the user wears the atomizing cup 2 through the nozzle 27 on the side, the atomizer body 1 is started, driving the air compressor inside the atomizer body 1 to start operating. The atomizer body 1 outputs the filtered oxygen or air from the connection port. The connection port, the connecting pipe 11 and the inside of the air inlet pipe 251 are mutually communicated, and the gas is output from the atomizer body 1 to the inside of the air inlet pipe 251.

[0054] The gas enters the air inlet pipe 251. Since the top of the air inlet pipe 251 is fixedly connected to the tapered tube 234, the gas will flow upward from bottom to top through the hollow part of the tapered tube 234 and be discharged from the air outlet. The high-speed moving compressed gas suddenly decompresses after passing through the narrow opening, and a local negative pressure is generated at the air outlet to suck the liquid medicine in the dosing pool 233 out of the water suction pipe 241. The sucked-up liquid medicine impacts the baffle 262 above and turns into extremely fine mist and sprays out in all directions. The air enters from above the cylinder body 21, and the liquid medicine that has become an object is output toward the nozzle 27 under the action of the gas. Among them, the large medicine mist particles fall back to the dosing pool 233 through the baffle 262 arranged inside, and the small medicine mist particles are output along with the air flow.

[0055] The process of adjusting the angle of the storage member 23 according to the different postures of the user:

[0056] When undergoing atomization treatment, the user may adopt different postures due to physical conditions or comfort requirements, such as semi-recumbent position, lying flat position, lateral position, etc. The dosing pool 233 inside the atomizing cup 2 needs to be adjusted accordingly to avoid the situation where the liquid medicine spills due to inclination and the bottom end of the water suction pipe 241 cannot contact the liquid medicine.

[0057] When used in the semi-recumbent position, the air inlet pipe 251 is made of hard material. The air inlet pipe 251 is moved by hand, and the air inlet pipe 251 is moved toward the accommodation box 22. The outer end of the connecting rod 252 fixed to the outer circumferential surface of the air inlet pipe 251 fits against the inner wall of the limiting groove 253. The limiting groove 253 is designed in an arc shape. The arc of the limiting groove 253 ensures the movement path of the dosing pool 233, and can rotate the entire air inlet pipe 251 by up to one hundred degrees at most.

[0058] The medicine delivery pool 233 is fixedly connected to the air inlet pipe 251 through a conical pipe 234. A conical block 24 sleeved on the outer surface of the conical pipe 234 is in close fit with its outer surface. When the air inlet pipe 251 moves towards the accommodating box 22, the connecting rod 252 of the air inlet pipe 251 slides inside the limit groove 253, ensuring the movement track. The conical pipe 234, the medicine delivery pool 233, the conical block 24, and the adjusting member 26 arranged above the conical block 24 all rotate synchronously with the air inlet pipe 251. When the medicine delivery pool 233 moves, the corrugated pipe 232 unfolds immediately, enabling the medicine delivery pool 233 to communicate with the inside of the cylinder body 21, so that the atomized liquid medicine can flow out smoothly from the nozzle 27. The medicine delivery pool 233 moves relative to the cylinder body 21, and the medicine delivery pool 233 rotates about forty-five degrees or so, which is more suitable for users in the semi-recumbent position to carry out atomization treatment.

[0059] After the rotation is completed, the medicine delivery pool 233 is in an inclined state, and the liquid medicine is added from above the cylinder body 21 and flows to the medicine delivery pool 233. In this state, the upper part of the inclined medicine delivery pool 233 cannot contact the liquid medicine. After preparation is completed, observe through the transparent cylinder body 21, and tilt and rotate the atomization cup 2 as a whole by forty-five degrees. At this time, the cylinder body 21 is in an inclined state, the medicine delivery pool 233 is parallel to the ground, and the liquid medicine is evenly located between the medicine delivery pool 233 and the conical pipe 234. The nozzle 27 acts on the user through a face mask, etc., and the cylinder body 21 is supported by the arbitrarily adjustable support frame 211, improving the stability and comfort during use.

[0060] When used in the supine position, it is the same as the above method. The difference is that it is necessary to observe the state and posture of the user, and rotate the air inlet pipe 251 to the corresponding position of about ninety degrees, so that the medicine delivery pool 233 can be in a vertical state and atomize the liquid medicine stably.

[0061] Similarly, when used in the lateral position, rotate the air inlet pipe 251 to the corresponding position of about ninety degrees, so that the medicine delivery pool 233 can be in a vertical state, and rotate the nozzle 27 by ninety degrees. The cylinder body 21 is supported by the arbitrarily adjustable support frame 211 to carry out atomization treatment on the lateral position user.

[0062] In summary, the atomization cup 2 has the following advantages in the above process:

[0063] Advantage 1: Rotate the adjusting rod 265 to drive the baffle 262 to move, adjust the distance between the baffle 262 and the water suction pipe 241, and thus change the atomization particle size. When the distance is relatively close, the liquid medicine may be more concentratedly impacted by the high-speed air flow, making it easier for the liquid medicine to be dispersed into smaller particles. Looking down from above, the distance increases in the clockwise direction and decreases when rotating the gear ring 264 counterclockwise. It has a variety of atomization modes, is applicable to different drugs and different populations, and has high applicability.

[0064] Advantage 2: The flow guide plate 2621 on the lower surface of the baffle 262 affects the air flow vortex and turbulence in the atomization cup 2, making the shearing effect of the air flow on the liquid medicine more sufficient, thus helping to generate finer atomized particles. The presence of the flow guide plate 2621 divides the liquid medicine into multiple small streams during the flowing process. When the liquid medicine flows through the flow guide plate 2621, the liquid stream will be broken up, reducing the overall flow inertia of the liquid medicine. This is beneficial for the liquid medicine to be more easily dispersed into tiny mists by the atomization power during atomization.

[0065] Advantage 3: By rotating the toothed ring 264 to drive the internal threaded rod 261 to rotate, the baffle 262 is finely adjusted under the action of the threaded rod 261 to achieve an accurate transmission ratio. This high-precision transmission method enables the movement of the baffle 262 to be carried out with a very small amplitude, and it can be used in some treatment scenarios with extremely high requirements for the size and atomization effect of atomized particles. And due to the meshing between the toothed ring 264 and the gear 263 having a certain self-locking property, it can effectively resist the interference of liquid medicine splashing and maintain the stability of the position of the baffle 262.

[0066] Advantage 4: The corrugated pipe 232 rotates to adjust the angle of the medicine pool 233 in real time according to the patient's posture, ensuring that the liquid medicine is always in a position conducive to atomization and inhalation, avoiding liquid medicine backflow or leakage, improving the safety and comfort of treatment. At the same time, the support frame 211 can be arbitrarily bent and adjusted for support, and it can support the cylinder body 21 and the accommodation box 22 during use, avoiding direct contact between the cylinder body 21 and the user, and improving the stability and comfort during use.

[0067] Advantage 5: Compared with the stretchable nozzle 27 of the atomization cup 2, the atomization cup 2 is still required to remain upright and perpendicular to the ground under the influence of the medicine pool 233, which occupies a large space and is inconvenient to use. By rotating the rotating part 25, the medicine pool 233 changes the inclination angle under the action of the corrugated pipe 232, and the flow guide channel is smooth. When the inclination angle of the medicine pool 233 changes, the liquid medicine can naturally adjust the distribution state under the action of gravity. In contrast, simply stretching to change the angle of the nozzle 27 only changes the spraying direction of the liquid medicine after atomization, while tilting the medicine pool 233 can adjust the position of the liquid medicine from the source.

[0068] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements will not cause the essence of the corresponding technical solutions to deviate from the protection scope of the technical solutions of the embodiments of the present invention.

Claims

1. An atomization therapeutic apparatus with a multi-atomization mode switching structure, characterized in that Including: An atomizer body (1), the atomizer body (1) is connected with a connecting pipe (11) through a connecting port opened on its outer surface, and the other end of the connecting pipe (11) away from the atomizer body (1) is provided with an atomizing cup (2); Wherein, the atomizing cup (2) includes a cylinder body (21), an accommodating box (22) is arranged on the outer surface of the cylinder body (21), and the inside of the accommodating box (22) is communicated with the inside of the cylinder body (21), and a storage member (23) for placing liquid medicine is arranged inside the cylinder body (21); Wherein, the storage member (23) includes an annular plate (231), the circumferential outer surface of the annular plate (231) is fixedly connected with the inner wall of the cylinder body (21), the annular plate (231) is fixedly connected with a medicine delivery pool (233) through a corrugated pipe (232) arranged on its lower surface, a conical pipe (234) is fixedly connected inside the medicine delivery pool (233), and a conical block (24) is sleeved on the outer surface of the conical pipe (234); Wherein, a rotating member (25) for adjusting the angle of the medicine delivery pool (233) is arranged inside the accommodating box (22), and an adjusting member (26) for changing the size of atomized particles is arranged on the top of the conical block (24); Wherein, the rotating member (25) includes an air inlet pipe (251), the top end of the air inlet pipe (251) is communicated with the inside of the conical pipe (234), the bottom end of the air inlet pipe (251) is fixedly installed with the end of the connecting pipe (11) away from the atomizer body (1), a connecting rod (252) is fixedly connected to the circumferential outer surface of the air inlet pipe (251), there are two connecting rods (252) and they are symmetrically distributed with the air inlet pipe (251) as the center, a limiting groove (253) is opened on one side of the accommodating box (22) close to the medicine delivery pool (233), and the end of the connecting rod (252) away from the air inlet pipe (251) is in sliding fit with the inner wall of the limiting groove (253), the limiting groove (253) is designed in an arc shape, the adjusting member (26) includes a threaded rod (261), the bottom end of the threaded rod (261) is rotatably connected with the upper surface of the conical block (24), a baffle (262) is sleeved on the outer surface of the threaded rod (261), the circumferential outer surface of the threaded rod (261) is meshed with the inside of the baffle (262), the top end of the threaded rod (261) is fixedly connected with a gear (263), and a toothed ring (264) meshed with the gear (263) is arranged on the outer surface of the gear (263); Wherein, an adjusting rod (265) is fixedly connected to the outer surface of the toothed ring (264), and there are two adjusting rods (265) and they are symmetrically distributed with the toothed ring (264) as the center.

2. The atomization therapeutic apparatus with a multi-atomization mode switching structure according to claim 1, characterized in that: The conical pipe (234) is designed with a hollow structure, a water suction pipe (241) is opened inside the conical block (24), and a notch (242) is opened at the bottom end of the conical block (24).

3. The atomization therapeutic apparatus with a multi-atomization mode switching structure according to claim 1, wherein: A flow guiding plate (2621) is fixedly connected to the lower surface of the baffle (262), and the flow guiding plate (2621) is designed with a wider top and a narrower bottom.

4. The atomization therapeutic apparatus with a multi-atomization mode switching structure according to claim 1, wherein: A support frame (211) is fixedly connected to the outer surface of the cylinder body (21), and a nozzle (27) rotatably connected to the outer surface of the cylinder body (21) is arranged above the accommodation box (22).

Citation Information

Patent Citations

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    CN209951965U

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    CN214129803U