Nose aspirator with atomization

CN224735551UActive Publication Date: 2026-09-11DONGGUAN YIYINGMEI TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520294854.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2026-09-11
Estimated Expiration
2035-02-24

AI Technical Summary

Technical Problem

而现有的吸鼻器在使用过程中虽然可以将鼻子内的分泌物吸出,但是对于一些较为粘稠的分泌物来说,若是未经过雾化湿润稀释,这些浓稠的分泌物粘性大,附着力强,单纯依靠吸鼻器的吸力,很难将其从鼻腔壁上分离并吸出,导致清理效果不佳,鼻腔仍会处于堵塞状态,影响孩子的呼吸顺畅度;

Benefits of technology

[0012] Compared with existing technologies, the beneficial effects of this invention are as follows: The atomization function utilizes gravity-fed water supply, allowing water from the storage tank to automatically flow into the atomization chamber. After processing by the atomization module, the droplets are sprayed out from the nozzle, effectively moistening thick nasal secretions, reducing viscosity, relieving mucosal dryness, and alleviating inflammation, creating favorable conditions for subsequent nasal suction. Secondly, the negative pressure suction module activates after atomization, easily suctioning out the moistened secretions for more efficient cleaning. This feature not only improves the cleaning effect but also reduces nasal irritation, ensuring nasal health.

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Abstract

The utility model discloses a kind of suction nose ware with atomization, it is related to suction nose ware technical field, including installation shell, including, atomization bin is connected in installation shell, atomization module is arranged in it, for atomization treatment to water;Water storage tank is connected in installation shell, is located in the upper of atomization bin and is interconnected with atomization bin, for supply water;Spray port is opened in installation shell, is located in the below of atomization bin;In the utility model, atomization function utilizes gravity water supply, make the water of water storage tank automatic flow into atomization bin, after being handled by atomization module, mist drop is sprayed from spray port, effectively moistens nasal cavity thick secretion, reduces viscosity, relieves mucous membrane dry, reduce inflammation, create good condition for subsequent suction nose.It is second, negative pressure suction module starts after atomization, can easily suck out already wet secretion, cleaning is more efficient, this setting not only improves cleaning effect, but also reduces nasal cavity irritation, guarantee nasal cavity health.
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Description

Technical Field

[0001] This utility model relates to the field of nasal aspirator technology, specifically a nasal aspirator with atomization function. Background Technology

[0002] Nasal health problems are frequent during a child's growth. Colds, allergies, and other factors often lead to increased nasal secretions and nasal congestion. This not only affects a child's breathing but can also interfere with their sleep quality, daily diet, and overall well-being. In severe cases, it can even trigger complications such as otitis media and sinusitis. While existing nasal aspirators can remove nasal secretions during use, for some thicker secretions, if they are not atomized and moistened for dilution, these thick secretions are sticky and have strong adhesion. It is difficult to separate and remove them from the nasal cavity wall by relying solely on the suction of the nasal aspirator, resulting in poor cleaning effect. The nasal cavity will still be blocked, affecting the child's breathing. Furthermore, in dry nasal environments, the presence of thick secretions increases the friction between the nasal aspirator tip and the nasal mucosa. During nasal aspiration, this increased friction can easily damage the nasal mucosa, causing pain, bleeding, and other symptoms, resulting in discomfort for the child. Utility Model Content

[0003] The purpose of this invention is to provide a nasal aspirator with atomization function to solve the problems mentioned in the background art.

[0004] To solve the above-mentioned technical problems, this utility model provides a nasal aspirator with atomization function, including a mounting housing, comprising, The atomizing chamber is connected inside the mounting housing and contains an atomizing module for atomizing water. The water storage tank is connected inside the mounting housing, located above and connected to the atomizing chamber, and is used to supply water. The spray nozzle is located inside the mounting housing, below the atomizing chamber; The negative pressure suction module, located inside the mounting housing, is used to absorb secretions.

[0005] Furthermore, the negative pressure suction module includes, The first suction bracket is connected to the mounting housing and is located at the corner of the mounting housing; The second suction bracket has a disassembly assembly and is installed on the end of the first suction bracket away from the mounting housing. The other end of the second suction bracket is detachably connected to a suction head via the disassembly assembly. The vacuum pump is connected inside the mounting housing, and its suction end is connected to the suction head.

[0006] Furthermore, a straw is connected to the suction head, and the central axis of the straw coincides with the central axis of the suction head.

[0007] Furthermore, the disassembly / assembly assembly includes, Two flanges are respectively connected to the side of the first suction bracket away from the mounting housing and the side of the second suction bracket away from the first suction bracket, and the two flanges have different circumferences.

[0008] Furthermore, an atomization start button is connected to the mounting housing, and the atomization start button is electrically connected to the atomization module.

[0009] Furthermore, the atomizing module includes, Piezoelectric ceramic plates are placed inside the atomization chamber to generate mist particles.

[0010] Furthermore, the vertical cross-section of the suction head is funnel-shaped.

[0011] Furthermore, a sealing cap is inserted into the water storage tank, and a sealing ring is fitted onto the sealing cap.

[0012] Compared with existing technologies, the beneficial effects of this invention are as follows: The atomization function utilizes gravity-fed water supply, allowing water from the storage tank to automatically flow into the atomization chamber. After processing by the atomization module, the droplets are sprayed out from the nozzle, effectively moistening thick nasal secretions, reducing viscosity, relieving mucosal dryness, and alleviating inflammation, creating favorable conditions for subsequent nasal suction. Secondly, the negative pressure suction module activates after atomization, easily suctioning out the moistened secretions for more efficient cleaning. This feature not only improves the cleaning effect but also reduces nasal irritation, ensuring nasal health. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the internal structure of the present invention; Figure 3 This is a schematic diagram of the connection structure between the water tank and the spray nozzle in this utility model; Figure 4 This is a schematic diagram of the connection structure between the vacuum pump and the spray nozzle in this utility model; Figure 5 This is a schematic diagram of the connection structure between the atomizing chamber and the spray nozzle in this utility model; Figure 6 This utility model Figure 3 Enlarged view of the structure at point A in the middle.

[0014] In the diagram: 1. Mounting housing; 2. First suction bracket; 3. Second suction bracket; 4. Nozzle; 5. Water tank; 6. Atomizing chamber; 7. Spray nozzle; 8. Sealing cap; 9. Atomization start button; 10. Vacuum pump; 11. Suction tube; 12. Flange. Detailed Implementation

[0015] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0016] Please see Figure 1-6 This utility model provides a technical solution: a nasal aspirator with atomization, including a mounting housing 1, comprising, The atomizing chamber 6 is connected inside the mounting housing 1, and an atomizing module is installed inside it for atomizing water. Water storage tank 5 is connected inside the mounting housing 1, located above and in communication with the atomizing chamber 6, and is used to supply water; The spray nozzle 7 is located inside the mounting housing 1, below the atomizing chamber 6; The negative pressure suction module is installed inside the mounting housing 1 and is used to absorb secretions.

[0017] It should be noted that the mounting housing 1 is equipped with a storage battery for power supply, and a charging port is provided on one side of the mounting housing 1 to facilitate charging of the storage battery. A sealing cover 8 is inserted into the water tank 5, and a sealing ring is fitted on the sealing cover 8 to improve the sealing effect of the water tank 5.

[0018] In practice, the water tank 5 is located inside the mounting housing 1 and above the atomizing chamber 6. Due to gravity, the water in the water tank 5 automatically flows into the atomizing chamber 6, which is interconnected with it. The atomizing module inside the atomizing chamber 6 begins to operate. The resulting droplets, under their own weight and the airflow within the atomizing chamber 6, move downwards to the spray nozzle 7 located inside the mounting housing 1 below the atomizing chamber 6. Finally, the droplets are sprayed from the spray nozzle 7 and enter the user's nasal cavity. The droplets moisten the thick secretions in the nasal cavity, reducing their viscosity and relieving dryness of the nasal mucosa. They can also alleviate inflammation to some extent. After atomization is complete and the nasal secretions become easier to clean after being moistened, the negative pressure suction module inside the mounting housing 1 is activated to suck out the secretions.

[0019] See Figure 2 The atomizing module includes, A piezoelectric ceramic sheet is placed inside the atomizing chamber 6 to generate mist particles.

[0020] Preferably, the atomizing module can also be configured as a piezoelectric actuator, which is tightly connected to the microporous membrane. When the piezoelectric actuator undergoes mechanical deformation due to the inverse piezoelectric effect, it transmits this vibration to the microporous membrane, driving the microporous membrane to generate high-frequency vibration. The water flowing into the atomizing chamber 6 covers the vibrating surface of the microporous membrane. The high-frequency vibration of the microporous membrane causes the water on the membrane surface to be subjected to a strong force, and the water is dispersed and squeezed out through the tiny pores on the microporous membrane. During the squeezing process, the water is broken into extremely small droplets, forming an atomization effect. Due to their light weight, these tiny droplets move downwards under the combined action of airflow and gravity within the atomizing chamber 6.

[0021] In practice, the piezoelectric ceramic sheet exhibits the piezoelectric effect, and when an alternating electric field is applied to it, the piezoelectric ceramic sheet will generate high-frequency vibration. During the atomization process, the alternating electric field drives the piezoelectric ceramic sheet to vibrate at an extremely high frequency, and this high-frequency vibration acts on the water in the atomization chamber 6.

[0022] Under the high-frequency vibration of the piezoelectric ceramic sheet, the water in contact with the surface of the piezoelectric ceramic sheet is rapidly broken into extremely small mist particles. These mist particles accumulate in the atomization chamber 6, and due to their light weight and the influence of the airflow inside the atomization chamber 6 and their own gravity, the mist particles gradually move downwards.

[0023] See Figure 3 The negative pressure suction module includes, The first suction bracket 2 is connected to the mounting housing 1 and is located at the corner of the mounting housing 1; The second suction bracket 3 has a disassembly assembly and is installed on the end of the first suction bracket 2 away from the mounting housing 1. The other end of the second suction bracket 3 is detachably connected to the suction head 4 through the disassembly assembly. Vacuum pump 10 is connected inside mounting housing 1, and its suction end is connected to suction head 4.

[0024] In practice, the vacuum pump 10 inside the housing 1 is activated, and its suction end is connected to the suction head 4. When the vacuum pump 10 is working, a strong negative pressure is generated at the suction head 4. The secretions in the nasal cavity, after being atomized, moistened, and diluted, are adsorbed into the suction head 4 under this negative pressure. The first suction bracket 2 is connected to the corner of the mounting housing 1, providing a supporting foundation for the entire negative pressure suction structure. The second suction bracket 3 is installed at the end of the first suction bracket 2 away from the mounting housing 1 via a disassembly assembly, and its other end is detachably connected to the suction head 4 via the disassembly assembly. This design makes the installation, disassembly, and replacement of the suction head 4 very convenient, allowing for the selection of a suitable suction head 4 according to different usage scenarios and needs.

[0025] refer to Figure 1 The vertical cross-section of suction head 4 is funnel-shaped.

[0026] In practice, this feature facilitates the collection of secretions.

[0027] See Figure 5 The suction head 4 is connected to a straw 11, and the central axis of the straw 11 coincides with the central axis of the suction head 4.

[0028] It should be noted that a collection chamber is provided inside the housing 1 for collecting secretions.

[0029] In practice, under the negative pressure at the suction head 4, the secretions are adsorbed and enter the suction head 4. Since the central axis of the suction tube 11 coincides with that of the suction head 4, the secretions can smoothly enter the suction tube 11 from the suction head 4 and be transported to the collection chamber along the suction tube 11.

[0030] refer to Figure 6 The disassembly and assembly components include: Two flanges 12 are respectively connected to the side of the first suction bracket 2 away from the mounting housing 1 and the side of the second suction bracket 3 away from the first suction bracket 2, and the two flanges 12 have different circumferences.

[0031] In practice, this design allows for the quick installation of the first suction bracket 2, the second suction bracket 3, and the suction head 4.

[0032] refer to Figure 2 The housing 1 is equipped with an atomization start button 9, which is electrically connected to the atomization module.

[0033] In practice, the atomization start button 9 is designed to facilitate opening the atomization module.

[0034] Working principle: The water tank 5 is located inside the mounting housing 1 and above the atomizing chamber 6. Due to gravity, the water in the water tank 5 automatically flows into the atomizing chamber 6, which is interconnected with it. The atomizing module inside the atomizing chamber 6 begins to work. The formed droplets, under their own weight and the airflow within the atomizing chamber 6, move downwards to the spray nozzle 7 located inside the mounting housing 1 below the atomizing chamber 6. Finally, the droplets are sprayed out from the spray nozzle 7 and enter the user's nasal cavity. The droplets moisten the thick secretions in the nasal cavity, reducing their viscosity and relieving dryness of the nasal mucosa. They can also alleviate inflammation to some extent. After atomization is complete and the nasal secretions become easier to clean after being moistened, the negative pressure suction module inside the mounting housing 1 starts to draw out the secretions. The vacuum pump 10 inside the housing 1 is activated, and its suction end is connected to the suction head 4. When the vacuum pump 10 is working, a strong negative pressure is generated at the suction head 4. The secretions in the nasal cavity, after being atomized, moistened, and diluted, are adsorbed into the suction head 4 under this negative pressure.

Claims

1. A nose aspirator with atomization, comprising a mounting housing (1), characterized in that, include, Atomizing chamber (6) is connected inside the mounting housing (1), and an atomizing module is provided inside for atomizing water. A water storage tank (5) is connected inside the mounting housing (1), located above the atomizing chamber (6) and connected to the atomizing chamber (6), and is used to supply water; The spray nozzle (7) is located inside the mounting housing (1) and below the atomizing chamber (6); The negative pressure suction module is installed inside the mounting housing (1) and is used to absorb secretions.

2. A misted nasal aspirator as claimed in claim 1, wherein: The negative pressure suction module includes, The first suction bracket (2) is connected to the mounting housing (1) and is located at the corner of the mounting housing (1); The second suction bracket (3) has a disassembly assembly and is installed on the end of the first suction bracket (2) away from the mounting housing (1). The other end of the second suction bracket (3) is detachably connected to a suction head (4) through the disassembly assembly. A vacuum pump (10) is connected inside the mounting housing (1), and its suction end is connected to the suction head (4).

3. A nasal aspirator with atomizing function as described in claim 2, characterized in that: The suction head (4) is connected to a straw (11), and the central axis of the straw (11) coincides with the central axis of the suction head (4).

4. A misted nasal aspirator as defined in claim 2, wherein: The disassembly / assembly components include, Two flanges (12) are respectively connected to the side of the first suction bracket (2) away from the mounting housing (1) and the side of the second suction bracket (3) away from the first suction bracket (2), and the two flanges (12) have different circumferences.

5. A misted nasal aspirator as defined in claim 1, wherein: The mounting housing (1) is connected to an atomization start button (9), which is electrically connected to the atomization module.

6. A misted nasal aspirator as defined in claim 1, wherein: The atomizing module includes, A piezoelectric ceramic sheet is placed inside the atomizing chamber (6) to generate mist particles.

7. A nasal aspirator with atomizing function as described in claim 2, characterized in that: The vertical cross-section of the suction head (4) is funnel-shaped.

8. A misted nasal aspirator as defined in claim 1, wherein: A sealing cap (8) is inserted into the water storage tank (5), and a sealing ring is fitted onto the sealing cap (8).