An electronic atomizing device

By designing a sliding, switchable lung-inhalation and mouth-inhalation atomization component in the electronic atomization device, the problem of the single function of existing devices is solved, and a diversified inhalation experience is achieved to meet the needs of different users and scenarios.

CN224268291UActive Publication Date: 2026-05-26SHENZHEN SMOORE TECH LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN SMOORE TECH LTD
Filing Date
2025-04-17
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing electronic atomizing devices only have a single lung inhalation mode or mouth inhalation mode, resulting in limited product functionality and usage scenarios, failing to meet the diverse needs of different users in different situations.

Method used

Design an electronic atomization device comprising a lung-inhalation atomization component and a mouth-inhalation atomization component. The mouthpiece can be slidably switched to different positions to connect to different atomization components, realizing the switching between two modes. The atomization power of the lung-inhalation component is greater than that of the mouth-inhalation component, meeting the needs of different users and scenarios.

Benefits of technology

By sliding the nozzle, users can switch between mouth-to-mouth and lung-to-lung modes, enriching the user's inhalation experience, improving the device's functionality and applicability, and meeting the needs of different users in different scenarios.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention belongs to the field of electronic atomization technology, and particularly relates to an electronic atomization device. The electronic atomization device includes: a lung-inhalation atomizing component, a mouth-inhalation atomizing component, a mouthpiece, and a housing with a receiving cavity. Both the lung-inhalation and mouth-inhalation atomizing components are located within the receiving cavity. The atomization power of the lung-inhalation atomizing component is greater than that of the mouth-inhalation atomizing component. The mouthpiece is slidably connected to the housing and has a first position and a second position. When the mouthpiece slides to the first position, it is configured to draw a first aerosol from the lung-inhalation atomizing component; when it slides to the second position, it is configured to draw a second aerosol from the mouth-inhalation atomizing component. This invention allows for switching between mouth-inhalation and lung-inhalation modes by sliding the mouthpiece, meeting the diverse needs of users in different scenarios or the diverse needs of different users, enriching the inhalation experience, and improving the functionality and application range of the electronic atomization device.
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Description

Technical Field

[0001] This utility model belongs to the field of electronic atomization technology, and in particular relates to an electronic atomization device. Background Technology

[0002] An electronic atomizing device is an electronic product used to heat and atomize a substrate. It typically consists of a battery, an atomizer, and a substrate. Its working principle is to use battery power to heat the atomizer, causing the substrate to atomize for the user to inhale.

[0003] Different users may have different smoking habits in different situations. Some users, when seeking a quick fix in public places, prefer smaller amounts of vapor and focus on a smoother taste; this is known as mouth-to-lung (MTL) mode. Other users, when enjoying a smoky performance or relaxing at home, prefer larger amounts of vapor for a more intense inhalation experience; this is known as lung-to-lung (LTL) mode.

[0004] However, currently, electronic atomizing devices on the market only offer a single lung-inhalation mode or mouth-inhalation mode, resulting in limited product flavors, limited functions, and limited usage scenarios. Utility Model Content

[0005] The purpose of this application is to provide an electronic atomizing device, which aims to solve the problem of how to improve the functionality of electronic atomizing devices.

[0006] To achieve the above objectives, the technical solution adopted in this application is as follows:

[0007] An electronic atomizing device is provided, comprising: a lung-inhalation atomizing component, an oral-inhalation atomizing component, a mouthpiece, and a housing having a receiving cavity. The lung-inhalation atomizing component and the oral-inhalation atomizing component are both located within the receiving cavity. The atomization power of the lung-inhalation atomizing component is greater than that of the oral-inhalation atomizing component. The mouthpiece is slidably connected to the housing and has a first position and a second position. When the mouthpiece slides to the first position, the mouthpiece is configured to draw a first aerosol from the lung-inhalation atomizing component. When the mouthpiece slides to the second position, the mouthpiece is configured to draw a second aerosol from the oral-inhalation atomizing component.

[0008] In some embodiments, the housing has a clearance hole communicating with the accommodating cavity, the suction nozzle is inserted into the accommodating cavity through the clearance hole, the accommodating cavity has a guide groove, the guide groove is arranged along the sliding direction of the suction nozzle, and the side surface of the suction nozzle is provided with a guide slide plate protruding into the guide groove.

[0009] In some embodiments, the electronic atomizing device further includes a fixed bracket located in the accommodating cavity and connecting the lung-inhalation atomizing component and the mouth-inhalation atomizing component. The guide groove is formed in the fixed bracket. The fixed bracket has a first through hole communicating with the lung-inhalation atomizing component and a second through hole communicating with the mouth-inhalation atomizing component. When the mouthpiece is in the first position, it communicates with the first through hole and the guide plate seals the second through hole. Alternatively, when the mouthpiece is in the second position, it communicates with the second through hole and the guide plate seals the first through hole.

[0010] In some embodiments, two guide grooves are arranged at intervals, and the suction nozzle is located between the two guide grooves.

[0011] In some embodiments, the two ends of the clearance hole are respectively provided with a first limiting point and a second limiting point, and the suction nozzle slides to the first position and abuts the first limiting point, or the suction nozzle slides to the second position and abuts the second limiting point.

[0012] In some embodiments, a first air intake channel is provided inside the housing, one end of the first air intake channel is connected to the lung inhalation atomization component, and the other end of the first air intake channel is provided with a first air inlet that connects to the external space.

[0013] In some embodiments, a second air inlet is further provided on the first air inlet duct, and the first air inlet and the second air inlet are arranged alternately along the air flow direction in the first air inlet duct.

[0014] In some embodiments, a second air intake channel is further provided inside the housing, one end of the second air intake channel is connected to the mouth-to-mouth atomizing component, and the other end of the second air intake channel is provided with a third air intake hole that connects to the external space.

[0015] In some embodiments, the electronic atomizing device further includes a battery cell located in the accommodating cavity, with a first air intake channel arranged around one end of the battery cell and a second air intake channel arranged around the other end of the battery cell.

[0016] In some embodiments, the electronic atomizing device further includes an oil reservoir located within the accommodating cavity, the oil reservoir having a first accommodating cavity and a second accommodating cavity spaced apart from the first accommodating cavity, the lung-inhaling atomizing component being located in the first accommodating cavity and the mouth-inhaling atomizing component being located in the second accommodating cavity.

[0017] The beneficial effects of this application are as follows: by sliding the mouthpiece between the first position and the second position, the mouthpiece can draw in the first aerosol from the lung inhalation atomization component or the second aerosol from the mouth inhalation atomization component. By sliding the mouthpiece, the mouth inhalation mode and the lung inhalation mode can be switched, which can meet the diverse needs of users in different scenarios or the diverse needs of different users, enrich the inhalation experience, and improve the functionality and application range of the electronic atomization device. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or exemplary technologies will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0019] Figure 1 This is a three-dimensional structural diagram of the electronic atomizing device provided in the embodiment of this application, with the mouthpiece in the first position;

[0020] Figure 2 yes Figure 1 A cross-sectional schematic diagram of an electronic atomizing device;

[0021] Figure 3 This is a three-dimensional structural diagram of an electronic atomizing device provided in another embodiment of this application, with the mouthpiece in a second position;

[0022] Figure 4 yes Figure 3 A cross-sectional schematic diagram of an electronic atomizing device;

[0023] Figure 5 This is an exploded schematic diagram of an electronic atomizing device provided in another embodiment of this application.

[0024] The following are the labeling elements in the figure:

[0025] 100. Electronic atomizing device; 101. First limiting point; 102. Second limiting point; 10. Housing; 11. Receiving cavity; 12. Clearance hole; 20. Mouthpiece; 21. Air outlet; 22. Guide slide plate; 23. Sealing cavity; 24. Absorbent cotton; 25. Fixing bracket; 26. Silicone end cap; 56. Silicone seat; 28. Microphone silicone; 111. First cavity; 112. Second cavity; 27. Oil reservoir; 30. Lung inhalation atomizing assembly; 31. Lung-inhalation oil-absorbing cotton; 32. Lung-inhalation heating element; 40. Mouth-inhalation atomizing element; 41. Mouth-inhalation oil-absorbing cotton; 42. Mouth-inhalation heating element; 29. ​​Power adjustment button; 61. First air intake; 611. First air intake port; 612. Second air intake port; 613. Third air intake port; 51. Battery cell; 52. Positioning bracket; 221. Guide section; 251. Guide rail; 252. Guide groove; 254. First through hole; 253. Second through hole; Detailed Implementation

[0026] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0027] It should be noted that when a component is referred to as "fixed to" or "set on" another component, it can be directly or indirectly attached to that other component. When a component is referred to as "connected to" another component, it can be directly or indirectly connected to that other component. The terms "upper," "lower," "left," "right," etc., indicate orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, and are for ease of description only, not to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application. Those skilled in the art can understand the specific meaning of the above terms according to the specific circumstances. The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features. "A plurality" means two or more, unless otherwise explicitly defined.

[0028] Please see Figures 1 to 2 This application provides an electronic atomizing device 100 that can heat an atomizing matrix to generate an aerosol that can be drawn in.

[0029] Please see Figures 3 to 4The electronic atomizing device 100 includes: a lung-inhalation atomizing component 30, a mouth-inhalation atomizing component 40, a mouthpiece 20, and a housing 10 having a receiving cavity 11. The lung-inhalation atomizing component 30 and the mouth-inhalation atomizing component 40 are both located within the receiving cavity 11 and arranged side-by-side along the length of the housing 10. The atomization power of the lung-inhalation atomizing component 30 is greater than that of the mouth-inhalation atomizing component 40; that is, the amount of aerosol produced by the lung-inhalation atomizing component 30 per unit time is greater than that produced by the mouth-inhalation atomizing component 40, thereby enabling two different inhalation modes with varying sensations.

[0030] Please see Figures 1 to 4 The mouthpiece 20 is slidably connected to the housing 10 and has a first position and a second position. It is understood that the mouthpiece 20 can be slidably connected to the housing 10 along the width direction of the housing 10. When the mouthpiece 20 slides to the first position, the mouthpiece 20 is located above the lung inhalation nebulization assembly 30, and the mouthpiece 20 is configured to draw a first aerosol from the lung inhalation nebulization assembly 30. When the mouthpiece 20 slides to the second position, the mouthpiece 20 is located above the oral inhalation nebulization assembly 40, and the mouthpiece 20 is configured to draw a second aerosol from the oral inhalation nebulization assembly 40. Understandably, when the mouthpiece 20 is connected to the lung inhalation nebulizer 30, the oral inhalation nebulizer 40 is disconnected from the mouthpiece 20, so that the mouthpiece 20 can only draw in the first aerosol from the lung inhalation nebulizer 30; when the mouthpiece 20 is connected to the oral inhalation nebulizer 40, the lung inhalation nebulizer 30 is disconnected from the mouthpiece 20, so that the mouthpiece 20 can only draw in the second aerosol from the oral inhalation nebulizer 40, and the amount of the first aerosol is greater than the amount of the second aerosol in a single inhalation.

[0031] Please see Figures 1 to 4 When the mouthpiece 20 is in the first position, it caters to users who prefer a higher aerosol volume, or allows for inhalation during home relaxation or entertainment. When the mouthpiece 20 is in the second position, it caters to users who prefer a lower aerosol volume, or allows for discreet inhalation in public places. The high-power setting in lung-inhalation mode generates a higher aerosol volume, enhancing the enjoyment and inhalation experience, while the low-power setting in mouth-inhalation mode ensures adequate resistance and a moderate aerosol volume, improving craving efficiency and user comfort.

[0032] Please see Figures 1 to 4 In this embodiment, the mouthpiece 20 is slidably positioned between a first position and a second position, enabling the mouthpiece 20 to draw in the first aerosol from the lung-inhalation atomizing component 30 or the second aerosol from the mouth-inhalation atomizing component 40. By sliding the mouthpiece 20, the mouth-inhalation mode and the lung-inhalation mode can be switched, meeting the diverse needs of users in different scenarios or the diverse needs of different users, enriching the inhalation experience and improving the functionality of the electronic atomizing device 100.

[0033] Optionally, the lung-inhalation nebulizer component 30 is a single-core unit with two nebulization power settings for different operating modes:

[0034] Level 1: Operating voltage: 3.0V, single-core resistance: 0.5Ω, atomization power: 18W.

[0035] Second setting: Operating voltage: 3.3V, single-core resistance: 0.5Ω, atomization power: 22W.

[0036] The mouth-to-lung atomizing component 40 is also a single-core atomizer with a working voltage of 3.2V, a single-core resistance of 0.8Ω, and an atomization power of 12.8W.

[0037] Please see Figures 1 to 4 It is understandable that a power adjustment button 29 is provided on the side of the housing 10, which is used to adjust the working power of the inhalation nebulizer 30 or the oral nebulizer 40, such as increasing or decreasing the power of the inhalation nebulizer 30. The inhalation nebulizer 30 can also be adjusted to the first working mode or the second working mode. There are no restrictions here, and the choice can be made according to the actual situation.

[0038] Optionally, the suction nozzle 20 can be slidably disposed on the outer surface of the housing 10, or the suction nozzle 20 can be partially inserted into the receiving cavity 11 and slidably connected to the housing 10. There are no restrictions here, and the choice can be made according to the actual situation.

[0039] Please see Figure 5 In some embodiments, the housing 10 has a clearance hole 12 communicating with the accommodating cavity 11. The suction nozzle 20 is inserted into the accommodating cavity 11 through the clearance hole 12. The accommodating cavity 11 has a guide groove 252. The guide groove 252 is arranged along the sliding direction of the suction nozzle 20. The side surface of the suction nozzle 20 has a guide slide plate 22 protruding into the guide groove 252. The edge of the guide slide plate 22 is slidably engaged in the guide groove 252.

[0040] Please see Figure 5 Optionally, the sliding cooperation between the guide groove 252 and the guide plate 22 can not only constrain the sliding path of the mouthpiece 20 and ensure the stability and accuracy of its sliding when switching between the first position and the second position, but also avoid misalignment between the mouthpiece 20 and the lung inhalation atomizing component 30 or mouth inhalation atomizing component 40 caused by sliding deviation, thereby improving the convenience of using the electronic atomizing device 100 and the smoothness of user operation.

[0041] Please see Figure 5In some embodiments, the electronic atomizing device 100 further includes a fixed bracket 25 located in the accommodating cavity 11 and connecting the lung-inhalation atomizing component 30 and the mouth-inhalation atomizing component 40. The guide groove 252 is formed in the fixed bracket 25. The fixed bracket 25 has a first through hole 254 communicating with the lung-inhalation atomizing component 30 and a second through hole 253 communicating with the mouth-inhalation atomizing component 40. When the mouthpiece 20 is in the first position, it communicates with the first through hole 254 and the guide plate 22 seals the second through hole 253. Alternatively, when the mouthpiece 20 is in the second position, it communicates with the second through hole 253 and the guide plate 22 seals the first through hole 254.

[0042] Please see Figures 1 to 4 Optionally, the suction nozzle 20 has an outlet 21 for aerosol to flow out and a sealing cavity 23 arranged around the outlet 21. The sealing cavity 23 is filled with absorbent cotton 24. When the outlet 21 is connected to the first through hole 254, the absorbent cotton 24 can absorb the first aerosol overflowing from the connection between the first through hole 254 and the outlet 21. Or when the outlet 21 is connected to the second through hole 253, the absorbent cotton 24 can absorb the second aerosol overflowing from the connection between the second through hole 253 and the outlet 21, thereby improving the convenience of use.

[0043] Please see Figures 1 to 4 Optionally, the absorbent cotton 24 is arranged along the guide slide plate 22 toward the fixed plate surface. When the mouthpiece 20 is in the first position, the guide slide plate 22 can seal the second through hole 253 through the absorbent cotton 24, so that the second aerosol generated by the oral inhalation atomization assembly 40 will not enter the mouthpiece 20; while when the mouthpiece 20 is in the second position, the guide slide plate 22 can seal the first through hole 254 through the absorbent cotton 24, so that the first aerosol generated by the lung inhalation atomization assembly 30 will not enter the mouthpiece 20.

[0044] Understandably, the fixed bracket 25 not only provides a stable support structure for the sliding of the mouthpiece 20, but also allows the mouthpiece 20 to achieve precise communication with the lung-inhalation atomizing component 30 and the mouth-inhalation atomizing component 40 through the first through hole 254 and the second through hole 253, respectively, ensuring that the mouthpiece 20 draws in the first aerosol and the second aerosol in the first and second positions, respectively. Furthermore, it eliminates the need for an additional airflow adjustment switch, simplifying the structure, reducing costs, and simultaneously improving the stability of the suction resistance, ensuring consistent taste.

[0045] Please see Figure 5 Optionally, the edge of the guide slide plate 22 is formed with a guide portion 221, the fixed bracket 25 is provided with a guide rail 251, the guide groove 252 starts from the guide rail 251, and the guide portion 221 is slidably engaged in the guide groove 252.

[0046] Please see Figure 5In some embodiments, two guide grooves 252 are arranged at intervals, and the suction nozzle 20 is located between the two guide grooves 252.

[0047] Optionally, both guide grooves 252 are located on the surface of the fixed bracket 25 facing the nozzle 20. The two sides of the guide slide plate 22 are respectively slidably locked in the two guide grooves 252. The setting of the double guide grooves 252 enhances the balance and guiding accuracy of the nozzle 20 sliding, avoids the nozzle 20 from deflecting or getting stuck during the sliding process, and improves the stability and reliability of the nozzle 20 when switching between the first position and the second position.

[0048] Please see Figures 1 to 4 In some embodiments, the two opposite ends of the clearance hole 12 are respectively provided with a first limiting point 101 and a second limiting point 102. The suction nozzle 20 slides to the first position and abuts against the first limiting point 101, or the suction nozzle 20 slides to the second position and abuts against the second limiting point 102.

[0049] Optionally, the first limiting point 101 and the second limiting point 102 are respectively located at the edge of the opening of the avoidance hole 12. The first limiting point 101 or the second limiting point 102 provides blocking and positioning feedback for the sliding of the nozzle 20, ensuring that it can accurately stop and communicate with the corresponding atomizing component when switching between the first position and the second position, thus avoiding functional failure caused by excessive or insufficient sliding.

[0050] Please see Figures 1 to 4 In some embodiments, a first air intake duct 61 is provided inside the housing 10, one end of the first air intake duct 61 is connected to the lung inhalation atomization component 30, and the other end of the first air intake duct 61 is provided with a first air inlet 611 that connects to the external space.

[0051] Optionally, the first air intake duct 61 provides an independent airflow path for the lung inhalation atomization assembly 30. When the mouthpiece 20 is in the first position, when the user inhales through the mouthpiece 20, air enters the first air intake duct 61 from the first air intake hole 611 and enters the lung inhalation atomization assembly 30 from the lower end. This ensures that the lung inhalation atomization assembly 30 can obtain sufficient air intake when operating at high power to support the generation of atmospheric aerosols, thereby enhancing the entertainment and inhalation satisfaction of the lung inhalation mode.

[0052] Optionally, when the housing 10 is placed vertically, the suction nozzle 20 is located at the upper end of the housing 10, and the first air inlet 611 is located at the lower end of the housing 10.

[0053] Optionally, the airflow direction of the first air intake 61 is as follows: Figure 2As indicated by the arrows, it can be understood that the first air intake 61 can be formed between two spaced structural components inside the electronic atomizing device 100, or a tubular first air intake 61 can be arranged directly in the accommodating cavity 11. There are no restrictions here, and the choice can be made according to the actual situation.

[0054] Please see Figures 1 to 4 In some embodiments, a second air inlet 612 is also provided on the first air inlet duct 61, and the first air inlet 611 and the second air inlet 612 are arranged alternately along the air flow direction in the first air inlet duct 61.

[0055] Understandably, air can flow into the first air intake duct 61 from the first air intake port 611 and the second air intake port 612, which increases the air intake volume in the lung inhalation mode, reduces the noise caused by excessive airflow during inhalation due to only having the first air intake port 611, and improves the stability of the suction resistance.

[0056] Please see Figures 1 to 4 In some embodiments, a second air intake channel is also provided inside the housing 10. One end of the second air intake channel is connected to the mouth-to-mouth atomizing component 40, and the other end of the second air intake channel is provided with a third air intake hole 613 that connects to the external space.

[0057] Optionally, the electronic atomizing device 100 also includes a microphone silicone 28 located in the accommodating cavity 11, wherein the first air inlet 611 and the third air inlet 613 are both located in the microphone silicone 28 and are arranged at intervals.

[0058] Optionally, the dual independent airway structure of the first airway 61 and the second airway achieves complete airflow isolation between the lung inhalation mode and the mouth inhalation mode. During use, the air intake of the first airway 61 is not affected by the second airway, and the air intake of the second airway is not affected by the first airway 61. As long as the mouthpiece 20 is slid to the first position or the second position, the corresponding first airway 61 and the second airway can achieve independent air supply without the need for an airflow adjustment switch, and have good suction resistance stability.

[0059] Optionally, the airflow direction of the second air intake is as follows: Figure 4 As indicated by the arrows, it can be understood that the second air intake can be formed between two spaced structural components inside the electronic atomizing device 100, or a tubular second air intake can be arranged directly in the accommodating cavity 11. There are no restrictions here, and the choice can be made according to the actual situation.

[0060] Please see Figures 1 to 4In some embodiments, the electronic atomizing device 100 further includes a battery cell 51 located in the accommodating cavity 11, with a first air intake 61 arranged around one end of the battery cell 51 and a second air intake 61 arranged around the other end of the battery cell 51.

[0061] Optionally, the electronic atomizing device 100 further includes a positioning bracket 52 located within the accommodating cavity 11 for fixing the battery cell 51. Along the sliding direction of the mouthpiece 20, a first air intake 61 is located at one end of the positioning bracket 52, and a second air intake is located at the other end of the positioning bracket 52. In this way, during the air intake process, the first air intake 61 can dissipate heat from the battery cell 51, and the heat generated by the battery cell 51 can preheat the air in the first air intake 61, which is beneficial to improving the atomization effect of the subsequent lung-inhalation atomizing component 30. During the air intake process, the second air intake can dissipate heat from the battery cell 51, and the heat generated by the battery cell 51 can preheat the air in the second air intake, which is beneficial to improving the atomization effect of the subsequent mouth-inhalation atomizing component 40.

[0062] Please see Figures 1 to 4 Optionally, by placing the first air intake 61 and the second air intake on both sides of the battery cell 51, the internal space of the housing 10 is fully utilized, the layout of the first air intake 61, the second air intake and the battery cell 51 is optimized, and the smoothness and stability of airflow are ensured. At the same time, the internal heat dissipation effect is optimized, the service life of the battery cell 51 is extended, and the safety and durability of the product are improved.

[0063] Please see Figures 1 to 4 In some embodiments, the electronic atomizing device 100 further includes an oil storage chamber 27 located within the accommodating cavity 11. The oil storage chamber 27 has a first accommodating cavity 111 and a second accommodating cavity 112 spaced apart from the first accommodating cavity 111. The lung inhalation atomizing component 30 is located in the first accommodating cavity 111, and the mouth inhalation atomizing component 40 is located in the second accommodating cavity 112.

[0064] Please see Figures 1 to 4 Optionally, the lung-inhaling nebulizer 30 includes a lung-inhaling heating component 32 located in a first cavity 111 and a lung-inhaling oil-retaining cotton 31 arranged around the lung-inhaling heating component 32 and located in the first cavity 111. The lung-inhaling oil-retaining cotton 31 is used to store the atomizing matrix, and the lung-inhaling heating component 32 is used to heat the atomizing matrix to generate a first aerosol. Similarly, the mouth-inhaling nebulizer 40 includes a mouth-inhaling heating component 42 located in a second cavity 112 and a mouth-inhaling oil-retaining cotton 41 arranged around the mouth-inhaling heating component 42 and located in the second cavity 112. The mouth-inhaling oil-retaining cotton 41 is used to store the atomizing matrix, and the mouth-inhaling heating component 42 is used to heat the atomizing matrix to generate a second aerosol. The power of the lung-inhaling heating component 32 is greater than the power of the mouth-inhaling heating component 42.

[0065] Understandably, cell 51 can be used to supply power to the lung inhalation heating assembly 32 and the oral inhalation heating assembly 42.

[0066] Please see Figures 1 to 4 Optionally, the electronic atomizing device 100 also includes a silicone end cap 26 and a silicone seat 56. The silicone end cap 26 is located between the fixed bracket 25 and the oil reservoir 27. A positioning bracket 52 is provided below the silicone seat 56, and a lung inhalation atomizing component 30 and a mouth inhalation atomizing component 40 are provided above the silicone seat 56.

[0067] Optionally, the first cavity 111 and the second cavity 112 can store different flavored atomizing substrates respectively, providing users with a variety of taste options and meeting personalized needs; at the same time, the alternating arrangement of the first cavity 111 and the second cavity 112 avoids the mixing of the two atomizing substrates, ensuring the independence and purity of the flavor in the lung inhalation mode and mouth inhalation mode.

[0068] Please see Figures 1 to 4 The electronic atomizing device 100 provided in this application embodiment has two modes: lung inhalation mode and mouth inhalation mode. It is quiet during inhalation. The two first cavities 111 and the second cavity 112 can store atomizing matrix with different flavors. At the same time, the heating element power of the lung inhalation atomizing component 30 and the mouth inhalation atomizing component 40 can be adjusted, which can bring consumers a richer flavor and taste experience.

[0069] The above are merely optional embodiments of this application and are not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of the claims of this application.

Claims

1. An electronic atomizing device, characterized in that, include: The device includes a lung-inhalation nebulizer, an oral-inhalation nebulizer, a mouthpiece, and a housing with a receiving cavity. Both the lung-inhalation nebulizer and the oral-inhalation nebulizer are located within the receiving cavity. The nebulization power of the lung-inhalation nebulizer is greater than that of the oral-inhalation nebulizer. The mouthpiece is slidably connected to the housing and has a first position and a second position. When the mouthpiece slides to the first position, it is configured to draw a first aerosol from the lung-inhalation nebulizer. When the mouthpiece slides to the second position, it is configured to draw a second aerosol from the oral-inhalation nebulizer.

2. The electronic atomizing device as described in claim 1, characterized in that: The housing has a clearance hole that communicates with the accommodating cavity. The suction nozzle is inserted into the accommodating cavity through the clearance hole. The accommodating cavity has a guide groove that is arranged along the sliding direction of the suction nozzle. A guide slide plate protrudes from the side surface of the suction nozzle toward the guide groove.

3. The electronic atomizing device as described in claim 2, characterized in that: The electronic atomizing device further includes a fixed bracket located in the accommodating cavity and connecting the lung-inhalation atomizing component and the mouth-inhalation atomizing component. The guide groove is formed in the fixed bracket. The fixed bracket has a first through hole communicating with the lung-inhalation atomizing component and a second through hole communicating with the mouth-inhalation atomizing component. When the mouthpiece is in the first position, it communicates with the first through hole and the guide plate seals the second through hole. Alternatively, when the mouthpiece is in the second position, it communicates with the second through hole and the guide plate seals the first through hole.

4. The electronic atomizing device as described in claim 2, characterized in that: Two guide grooves are arranged at intervals, and the suction nozzle is located between the two guide grooves.

5. The electronic atomizing device as described in claim 2, characterized in that: The two ends of the clearance hole are respectively provided with a first limiting point and a second limiting point. The suction nozzle slides to the first position and abuts against the first limiting point, or the suction nozzle slides to the second position and abuts against the second limiting point.

6. The electronic atomizing device as described in any one of claims 1-5, characterized in that: The housing has a first air intake channel, one end of which is connected to the lung inhalation atomization component, and the other end of which is provided with a first air inlet that connects to the external space.

7. The electronic atomizing device as described in claim 6, characterized in that: The first air intake duct is also provided with a second air intake hole, and the first air intake hole and the second air intake hole are arranged alternately along the air flow direction in the first air intake duct.

8. The electronic atomizing device as described in claim 6, characterized in that: The housing also has a second air intake channel, one end of which is connected to the mouth-to-mouth atomizing component, and the other end of which is provided with a third air intake hole that connects to the external space.

9. The electronic atomizing device as described in claim 8, characterized in that: The electronic atomizing device also includes a battery cell located in the accommodating cavity, with the first air intake channel arranged around one end of the battery cell and the second air intake channel arranged around the other end of the battery cell.

10. The electronic atomizing device according to any one of claims 1-5, characterized in that: The electronic atomizing device further includes an oil storage chamber located within the accommodating cavity. The oil storage chamber has a first accommodating cavity and a second accommodating cavity spaced apart from the first accommodating cavity. The lung-inhaling atomizing component is located in the first accommodating cavity, and the mouth-inhaling atomizing component is located in the second accommodating cavity.