Atomization device

By combining ultrasonic waves and heated atomizing components in the atomizing device, different atomizing matrices can be atomized separately, solving the problem of limited atomizing component types, enabling the generation of various aerosols, and improving user experience and safety.

WO2026157451A1PCT designated stage Publication Date: 2026-07-30NEVERA (HK) LTD
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Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
NEVERA (HK) LTD
Filing Date
2025-11-13
Publication Date
2026-07-30

AI Technical Summary

Technical Problem

The limited variety of atomizing components in existing atomizing devices restricts the types of atomizing substrates that can be used and the effectiveness of the generated aerosols, thus affecting the user experience.

Method used

The system employs a combination of ultrasonic atomizing components and heating atomizing components to atomize atomized matrices with different compositions. Ultrasonic atomization is not suitable for matrices that are not suitable for direct heating, such as those containing fragrance or active ingredients. The heating atomizing components are used to atomize matrices that are suitable for direct heating, such as smoke-generating agents.

Benefits of technology

It achieves effective atomization of different atomization matrices, providing aerosols with different fragrances and functions, improving the user experience, avoiding damage to sensitive ingredients by high temperatures, and improving safety and aerosol quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is an atomization device (100), comprising a first liquid storage assembly (10) configured to store a first atomization substrate; a second liquid storage assembly (20) configured to store a second atomization substrate; an ultrasonic atomization assembly (30) in fluid communication with the first liquid storage assembly (10) and configured to ultrasonically atomize the first atomization substrate to generate a first aerosol; and a heating atomization assembly (40) in fluid communication with the second liquid storage assembly (20) and configured to heat and atomize the second atomization substrate to generate a second aerosol.
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Description

atomizing device

[0001] Cross-references to related applications

[0002] This application claims priority to Chinese Patent Application No. 2025101251132, filed on January 23, 2025, entitled "Atomizing Device", the entire contents of which are incorporated herein by reference. Technical Field

[0003] This application relates to the field of electronic atomization technology, specifically to an atomization device. Background Technology

[0004] The atomizing device heats the atomizing matrix through atomizing components to generate aerosol.

[0005] However, different compositions and types of atomizing matrices have varying degrees of temperature tolerance. In particular, some atomizing matrices containing specific fragrance ingredients or other temperature-sensitive active ingredients are highly susceptible to deterioration of these ingredients and gelatinization of the atomizing matrix when directly heated by the atomizing component. This not only affects the quality of the generated aerosol but can also cause the atomizing component core to burn out. Therefore, relying on a single type of atomizing component limits the types of atomizing matrices that can be used with atomizing devices and the effectiveness of the generated aerosols, thus impacting the user experience. Summary of the Invention

[0006] This application provides an atomizing device that solves the technical problem of existing atomizing devices having a single type of atomizing component, which limits the types of atomizing substrates that can be used and the efficacy of the generated aerosols. The atomizing device of this application can atomize a first atomizing substrate and a second atomizing substrate with different components, thereby providing users with aerosols with different fragrances, functions, and effects, and improving the user experience.

[0007] In some embodiments of this application, an atomizing device is provided, the atomizing device comprising: a first liquid storage component for storing a first atomizing matrix; a second liquid storage component for storing a second atomizing matrix; an ultrasonic atomizing component connected to the first liquid storage component in a liquid path, the ultrasonic atomizing component being used to ultrasonically atomize the first atomizing matrix to generate a first aerosol; and a heating atomizing component connected to the second liquid storage component in a liquid path, the heating atomizing component being used to heat and atomize the second atomizing matrix to generate a second aerosol.

[0008] In some embodiments, the first liquid storage component includes at least two first liquid storage spaces, and different first liquid storage spaces are configured to store the same or different fragrance odors of the first atomizing matrix; wherein the first atomizing matrix is ​​configured to provide a preset fragrance odor.

[0009] In some embodiments, the atomizing device further includes a housing having an air inlet and an air outlet, the first liquid storage assembly including: a movable member movably connected within the housing and configured to be movable relative to the housing, and at least two first liquid storage spaces disposed in the movable member.

[0010] In some embodiments, the first liquid storage assembly further includes: a first liquid guiding member having a liquid guiding position and a non-liquid guiding position, the first liquid guiding member being driven by the movable member to switch between the liquid guiding position and the non-liquid guiding position; and the first liquid guiding member being configured such that, in the liquid guiding position, the liquid path connects the first liquid storage space and the ultrasonic atomizing assembly.

[0011] In some embodiments, the ultrasonic atomizing assembly includes: an ultrasonic transducer that receives a voltage to generate high-frequency vibration, thereby atomizing the first atomizing matrix to generate the first aerosol; wherein different first liquid guiding elements respectively abut against the ultrasonic transducer at the liquid guiding position.

[0012] In some embodiments, the first liquid storage space includes: a first liquid storage chamber for storing the first atomizing matrix; and a receiving groove connected to the first liquid storage chamber for receiving the first liquid guiding member; wherein the first liquid guiding member is partially housed in the receiving groove, and the portion of the first liquid guiding member exposed in the receiving groove is configured to abut against the ultrasonic transducer.

[0013] In some embodiments, the ultrasonic transducer is movably connected in the housing and configured to vibrate within a confined space; the ultrasonic atomizing assembly further includes at least one elastic member, one end of which abuts against at least a portion of the inner wall of the housing and the other end of which abuts against the ultrasonic transducer, the elastic member being configured to apply an elastic force toward the ultrasonic transducer toward the first liquid guiding member.

[0014] In some embodiments, the ultrasonic transducer has a mist-emitting surface that is substantially aligned with the axial direction of the atomizing device.

[0015] In some embodiments, the atomizing device further includes: a first air chamber disposed within the housing and communicating with the air inlet and the air outlet; an ultrasonic transducer disposed in the first air chamber; and a first liquid guiding element located at the liquid guiding position abutting against the ultrasonic transducer in the first air chamber.

[0016] In some embodiments, the heating atomizing component includes: a second liquid guiding element disposed within the housing and communicating with the second liquid storage component to adsorb the second atomizing matrix; and a heating element at least partially abutting against the second liquid guiding element, the heating element being used to atomize the second atomizing matrix and generate the second aerosol.

[0017] The atomizing device provided in this application includes a first liquid storage component, a second liquid storage component, an ultrasonic atomizing component, and a heating atomizing component. The first liquid storage component stores a first atomizing matrix, and the second liquid storage component stores a second atomizing matrix. The ultrasonic atomizing component is connected to the first liquid storage chamber via a liquid path to ultrasonically atomize the first atomizing matrix and generate a first aerosol; the heating atomizing component is connected to the second liquid storage chamber via a liquid path to heat and atomize the second atomizing matrix and generate a second aerosol.

[0018] This application's atomizing device employs both ultrasonic atomization and heating atomization. The first atomizing substrate can be designed to be unsuitable for direct heating, such as atomizing substrates containing specific fragrance components or active pharmaceutical ingredients. During use, it is atomized by the ultrasonic atomizing component to produce a first aerosol with a preset fragrance, specific function, and effect. The second atomizing substrate, on the other hand, can be designed to be suitable for direct heating, such as atomizing substrate containing smoke-generating agents or tobacco components. During use, it is atomized by the heating atomizing component to produce a second aerosol with a specific fragrance, specific function, and effect. The first and second aerosols can be discharged separately through air outlets on the atomizing device, allowing the device to atomize first and second atomizing substrates with different components, thereby providing users with aerosols with different fragrances, functions, and effects, enhancing the user experience. Attached Figure Description

[0019] The present application will be further described below with reference to the accompanying drawings and embodiments. In the accompanying drawings:

[0020] Figure 1 is a schematic diagram of the overall structure of one embodiment of the atomizing device of this application;

[0021] Figure 2 is a cross-sectional view of the atomizing device in Figure 1.

[0022] Figure 3 is a magnified view of the local structure at point A in Figure 2;

[0023] Figure 4 is a magnified schematic diagram of the local structure at point B in Figure 2;

[0024] Figure 5 is an exploded structural diagram of the first liquid storage component in one embodiment of the atomizing device of this application;

[0025] Figure 6 is a schematic diagram of the structure in which the ultrasonic atomizing component and the first liquid storage component form a liquid path connection in one embodiment of the atomizing device of this application.

[0026] Figure 7 is a schematic diagram of the structure of the movable component in one embodiment of the atomizing device of this application;

[0027] Figure 8 is a partial structural diagram of the atomizing device in Figure 6 after the first liquid storage component is hidden;

[0028] Figure 9 is an exploded view of the structure of the heating atomizing component of one embodiment of the atomizing device of this application;

[0029] Figure 10 is a partial cross-sectional view of the intake adjustment component in Figure 2 when it is in the first position.

[0030] The attached figures are labeled as follows:

[0031] 100-Atomizing device; XX-axis, YY-axis, ZZ-axis;

[0032] 10-First liquid storage assembly, 1-Central axis, 11-Moving part, 111-First liquid storage space, 1111-First liquid storage cavity, 1112-Accommodation groove, 112-Injection port, 113-Insertion interface, 114-Support part, 115-Shaft hole, 116-Sealing groove, 12-First liquid guiding part, 13-Flexible part, 14-Sealing ring, 15-Outer shell;

[0033] 20-Second liquid storage assembly, 21-Second liquid storage space, 22-Fixed tube section, 23-Atomizing gas guide tube, 24-Liquid storage element;

[0034] 30-Ultrasonic atomizing component; 31-Ultrasonic transducer; 32-Elastic element;

[0035] 40-Heating atomizing component, 41-Atomizing core tube, 411-Liquid inlet, 412-Void vent, 42-Second liquid guide, 421-Main body, 4211-Atomizing air passage, 422-Extension, 43-Heating element;

[0036] 50-Shell, 501-Connecting port, 502-Bottom air inlet, 503-Top air inlet, 51-Air inlet, 52-Air outlet, 521-Air outlet pipe, 53-Fixed base, 531-First storage space, 532-Second storage space, 54-Window, 55-First air chamber, 56-Mounting cavity, 561-Rotating shaft, 57-Merging cavity, 571-Absorbent cotton, 58-Containing chamber, 59-Second air chamber;

[0037] 60 - Positioning component; 61 - Positioning groove; 62 - Positioning elastic element;

[0038] 70 - Control components; 80 - Power supply module;

[0039] 90 - Air intake adjustment component, 91 - First vent, 92 - Second vent. Detailed Implementation

[0040] The technical solution of this application will be further described in detail below with reference to specific embodiments and accompanying drawings. In the following embodiments, many details are described to facilitate a better understanding of this application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by their components, materials, or methods. In some cases, certain operations related to this application are not shown or described in the specification. This is to avoid obscuring the core parts of this application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.

[0041] To facilitate understanding of the technical solution of this application, the width direction of the atomizing device is defined as the X-axis, the thickness direction of the atomizing device is defined as the Y-axis, and the height direction of the atomizing device is defined as the Z-axis, which is consistent with the direction of gravity.

[0042] Referring to Figures 1 and 2, in some embodiments of this application, an atomizing device 100 is provided. The atomizing device 100 includes a first liquid storage component 10, a second liquid storage component 20, an ultrasonic atomizing component 30, and a heating atomizing component 40. The first liquid storage component 10 is used to store a first atomizing matrix, and the second liquid storage component 20 is used to store a second atomizing matrix. The ultrasonic atomizing component 30 is connected to the first liquid storage component 10 in a liquid path, and is used to ultrasonically atomize the first atomizing matrix to generate a first aerosol. The heating atomizing component 40 is connected to the second liquid storage component 20 in a liquid path, and is used to heat and atomize the second atomizing matrix to generate a second aerosol.

[0043] Ultrasonic atomization can be performed at room temperature, avoiding the damage to temperature-sensitive active ingredients such as medicinal components, fragrance components, and bioactive components in the first atomization matrix caused by high temperatures. It also avoids the gelatinization problem of the first atomization matrix caused by high temperatures, ensuring the quality, efficacy, and inhalation taste of the generated first aerosol. Furthermore, compared to conventional heating atomization methods, ultrasonic atomization, performed at room temperature, produces a first aerosol at a lower temperature than the second aerosol produced by heating atomization, preventing burns and making it safer for users.

[0044] The heated atomizing component 40 rapidly atomizes the second atomizing matrix by heating to form a second aerosol with relatively larger particles. It is suitable for atomizing high-boiling-point liquids, such as liquid e-liquids containing smoke-generating agents or tobacco components. The heated atomizing method enables the e-liquid to generate a large amount of smoke in a short time for users to inhale.

[0045] In use, the ultrasonic atomizing component 30 and the heating atomizing component 40 can operate simultaneously or independently; this application does not limit this. When the ultrasonic atomizing component 30 operates independently, only the first aerosol is discharged through the outlet; when the heating atomizing component 40 operates independently, only the second aerosol is discharged through the outlet, enabling the atomizing device 100 to atomize the first and second atomizing matrices of different components separately, thereby providing users with aerosols with different fragrances, functions, and effects. When the ultrasonic atomizing component 30 and the heating atomizing component 40 operate simultaneously, the first and second aerosols can merge and be discharged through the outlet, enabling the atomizing device 100 to simultaneously atomize the first and second atomizing matrices of different components, thereby providing users with aerosols with mixed fragrances, multiple functions, and effects, enriching the flavors of the aerosols that the atomizing device 100 can provide, and improving the inhalation experience and user experience.

[0046] The first aerosol and the second aerosol can be configured to be discharged separately through the outlet 52, that is, the first aerosol and the second aerosol do not mix; the first aerosol and the second aerosol can also be configured to merge and then be discharged through the outlet 52. This application does not limit this, as long as it can meet the actual needs of users.

[0047] Referring to Figures 3 and 4, in some embodiments of this application, the first liquid storage component 10 includes at least two first liquid storage spaces 111, and different first liquid storage spaces 111 are configured to store the same or different fragrance odors of the first atomizing matrix. The first atomizing matrix is ​​configured to provide a preset fragrance odor.

[0048] The first atomizing matrix contains fragrance components with preset scents. These fragrance components are released outward with the first aerosol under the atomization of the ultrasonic atomizing component 30, providing users with the preset fragrance. When different first liquid storage spaces 111 store first atomizing matrices with different fragrances, different preset fragrances can be provided to users, enriching the flavor selection of the first aerosol and meeting users' needs for using first aerosols with multiple flavors.

[0049] In actual production and manufacturing, different first liquid storage spaces 111 can store the first atomizing matrix with the same fragrance or the first atomizing matrix with different fragrances. This application does not limit this, as long as it can meet the actual use needs of users.

[0050] In the following embodiments, the first atomizing matrix is ​​illustrated using a fragrance liquid containing fragrance ingredients as an example, and the second atomizing matrix is ​​illustrated using an e-liquid containing a vapor-generating agent and tobacco ingredients or tobacco substitute ingredients as an example. The fragrance liquid provides the user with a first aerosol having a preset fragrance scent, and the e-liquid provides the user with a second aerosol containing tobacco ingredients or tobacco substitute ingredients.

[0051] Please refer to Figures 1 and 2. In some embodiments, the atomizing device 100 further includes a housing 50 having an air inlet 51 and an air outlet 52. The housing 50 is arranged along the Z-axis, i.e. the direction of gravity. The air outlet 52 is preferably located at the upper end of the housing 50 in the direction of gravity, and the air inlet 51 is preferably located at the lower end of the housing 50 in the direction of gravity.

[0052] The first liquid storage component 10, the second liquid storage component 20, the ultrasonic atomizing component 30, and the heating atomizing component 40 are all disposed within the housing 50. Preferably, the first liquid storage component 10 and the second liquid storage component 20 are both disposed along the Y-axis, and the first liquid storage component 10 and the second liquid storage component 20 are arranged side by side to the left and right along the X-axis inside the housing 50.

[0053] Please refer to Figures 2 to 5. The first liquid storage assembly 10 includes a movable member 11, which is movably connected within the housing 50 and configured to be movable relative to the housing 50. At least two first liquid storage spaces 111 are disposed in the movable member 11.

[0054] The movable part 11 can be configured to rotate relative to the housing 50, or to translate relative to the housing 50, or to move in multiple directions relative to the housing 50. This application does not limit this.

[0055] When the fragrance of the first atomizing matrix stored in different first liquid storage spaces 111 is different, the user can move the first liquid storage space 111 containing the desired fragrance of the first atomizing matrix to form a liquid path connection with the ultrasonic atomizing component 30 by driving the movable part 11 to move according to personal taste preferences. This atomizes the first atomizing matrix and generates a first aerosol with a preset fragrance, satisfying the user's need to switch between multiple flavors of the first aerosol independently.

[0056] When the fragrance of the first atomizing matrix stored in different first liquid storage spaces 111 is the same, after the first atomizing matrix in the current first liquid storage space 111 is consumed, the user can move the corresponding first liquid storage space 111 containing the first atomizing matrix to form a liquid path connection with the ultrasonic atomizing component 30 by driving the movable part 11 to continue to provide the user with the first aerosol with the preset fragrance, thus meeting the user's need for a large capacity of first atomizing matrix with a specific fragrance.

[0057] Referring to Figures 2 to 5, in some embodiments, the first liquid storage assembly 10 further includes a first liquid guiding member 12. The first liquid guiding member 12 has a liquid guiding position and a non-liquid guiding position. The first liquid guiding member 12 is configured to be driven by the movable member 11 to switch between the liquid guiding position and the non-liquid guiding position. Furthermore, the first liquid guiding member 12 is configured such that, in the liquid guiding position, the liquid path connects to the first liquid storage space 111 and the ultrasonic atomizing assembly 30.

[0058] The first liquid guiding element 12 is used to adsorb the first atomizing matrix in the first liquid storage space 111 and transmit it to the ultrasonic atomizing component 30. The number of first liquid guiding elements 12 can be the same as the number of first liquid storage spaces 111, with each first liquid storage space 111 connected to one first liquid guiding element 12. The user can switch any one of the first liquid guiding elements 12 to the liquid guiding position by driving the movable part 11 to move, so that the liquid guiding element 12 in the liquid guiding position is connected to the corresponding first liquid storage space 111 and the ultrasonic atomizing component 30, thereby atomizing the first atomizing matrix adsorbed on the first liquid guiding element 12 through the ultrasonic atomizing component 30 to generate a first aerosol.

[0059] The number of first liquid guiding elements 12 can differ from the number of first liquid storage spaces 111, as long as each first liquid storage space 111 can be connected to at least one first liquid guiding element 12. For example, one first liquid guiding element 12 can be connected to two or more first liquid storage spaces 111 simultaneously. All first liquid storage spaces 111 connected to the same first liquid guiding element 12 can store the same fragrance-scented first atomizing matrix, which can increase the liquid supply of the ultrasonic atomizing component 30 and improve the fragrance concentration of the generated first aerosol. All or part of the first liquid storage spaces 111 connected to the same first liquid guiding element 12 can also store first atomizing matrices with different fragrances, providing users with a first aerosol with mixed fragrances and enriching the inhalation experience of the first aerosol.

[0060] In the following embodiments, the movable member 11 is configured to rotate around its own central axis 1 (as shown in FIG5), and the movable member 11 switches the liquid guiding position and non-liquid guiding position of the first liquid guiding member 12 by rotation.

[0061] Please refer to Figures 3 and 6. In some embodiments, the ultrasonic atomizing assembly 30 includes an ultrasonic transducer 31, which receives a voltage to generate high-frequency vibrations to atomize the first atomizing matrix and generate a first aerosol.

[0062] In this configuration, different first liquid guiding elements 12 abut against the ultrasonic transducer 31 at the liquid guiding position.

[0063] The ultrasonic transducer 31 utilizes the piezoelectric effect to convert a high-frequency oscillating excitation voltage signal into its own high-frequency vibration. This high-frequency vibration propagates in media such as gas, solid, and liquid, thus forming ultrasound. The ultrasonic atomizing component 30 utilizes the high-frequency vibration of the ultrasonic transducer 31 and the generated ultrasound to atomize the first atomizing matrix that is in contact with the first liquid guiding element 12 of the ultrasonic transducer 31 at room temperature, without destroying the fragrance components and other effective ingredients in the first atomizing matrix.

[0064] In some embodiments, the number of ultrasonic transducers 31 can be one. The user can rotate the first liquid guide 12 corresponding to any first liquid storage space 111 to the liquid guide position and abut against the ultrasonic transducer 31 by rotating the movable part 11. The ultrasonic transducer 31 atomizes the first atomizing matrix on the first liquid guide 12 in the liquid guide position to provide the user with a first aerosol with a preset fragrance.

[0065] In some other embodiments, the number of ultrasonic transducers 31 may be two or more. Multiple ultrasonic transducers 31 can be configured to abut against the same first liquid guiding element 12 at the liquid guiding position. Simultaneous operation of multiple ultrasonic transducers 31 can rapidly atomize the first atomizing matrix on the first liquid guiding element 12, significantly improving the efficiency of generating the first aerosol. Alternatively, multiple ultrasonic transducers 31 can be configured to abut against one of the first liquid guiding elements 12 respectively, with each transducer 31 operating independently. In this way, the non-operating ultrasonic transducers 31 can serve as backups, activating other ultrasonic transducers 31 to ensure the normal operation of the atomizing device 100 when one transducer 31 fails.

[0066] Please refer to Figures 3, 4, and 7. In some embodiments, the first liquid storage space 111 includes a first liquid storage chamber 1111 and a receiving tank 1112. The first liquid storage chamber 1111 is used to store the first atomizing matrix. The receiving tank 1112 is connected to the first liquid storage chamber 1111 and is used to receive the first liquid guiding component 12.

[0067] The first liquid guiding component 12 is partially housed in the receiving tank 1112 and partially exposed in the receiving tank 1112. The portion of the first liquid guiding component 12 exposed in the receiving tank 1112 is configured to contact the ultrasonic transducer 31.

[0068] The first liquid storage space 111 stores the first atomizing matrix through the first liquid storage chamber 1111 and accommodates the first liquid guiding component 12 through the receiving groove 1112. The first liquid storage chamber 1111 and the receiving groove 1112 are connected, so that the first atomizing matrix can flow from the first liquid storage chamber 1111 into the receiving groove 1112 and be adsorbed onto the first liquid guiding component 12. The first liquid guiding component 12 can adsorb a certain amount of the first atomizing matrix. Compared with the method of directly accommodating the first liquid guiding component 12 in the first liquid storage chamber 1111, the dual-chamber structure design of the first liquid storage space 111 increases the liquid storage space and significantly improves the liquid storage capacity of the first liquid storage space 111, meeting the long-term use requirements of the first atomizing matrix in the first liquid storage assembly 10.

[0069] The receiving groove 1112 in the first liquid storage space 111 and the lower end of the first liquid storage cavity 1111 are connected in the direction of gravity, so that the first atomizing matrix in the first liquid storage cavity 1111 can automatically flow into the receiving groove 1112 under the action of gravity and be adsorbed by the corresponding first liquid guiding component 12. The first liquid guiding component 12 is partially housed in the receiving groove 1112 and partially exposed in the receiving groove 1112, so that the first liquid guiding component 12 can be fixed by the movable component 11, and the movable component 11 provides support for the liquid guiding component, so as to ensure that when the movable component 11 rotates any one of the first liquid guiding components 12 to the liquid guiding position, the first liquid guiding component 12 can stably and reliably abut against the ultrasonic transducer 31, ensuring the atomization effect.

[0070] Please refer to Figures 5 and 7. In some embodiments, the movable member 11 is configured as a columnar structure extending along the Z-axis, i.e., extending in the direction of gravity. The movable member 11 is provided with six first liquid storage spaces 111 that are evenly distributed around its central axis 1. Each time the movable member 11 rotates 60° around the central axis 1, it can switch the first liquid storage space 111 that forms a liquid path communication with the ultrasonic atomizing component 30.

[0071] The receiving groove 1112 and the first liquid storage cavity 1111 of the first liquid storage space 111 are arranged in a corresponding manner along the radial direction of the movable member 11, such that the receiving groove 1112 is set close to the central axis 1 of the movable member 11, and the first liquid storage cavity 1111 is set close to the outer wall of the movable member 11. The outer wall of the movable member 11 can be made into a transparent structure, so that the user can observe from the outside and know the storage amount of the first atomizing matrix in each first liquid storage cavity 1111 in a timely manner.

[0072] The ultrasonic transducer 31 is preferably located at the upper end of the movable part 11 in the direction of gravity, and abuts against the first liquid guide 12 in the liquid guide position from the outside, which can prevent the first atomized matrix adsorbed on the first liquid guide 12 from easily leaking out under the action of gravity.

[0073] Please refer to Figures 4, 5 and 7. In some embodiments, the first liquid storage chamber 1111 and the receiving groove 1112 of each first liquid storage space 111 penetrate the bottom surface of the movable member 11 and form an injection port 112 (as shown in Figure 7). The first liquid storage chamber 1111 and the receiving groove 1112 are connected near the injection port 112.

[0074] In conjunction with this, the first liquid storage assembly 10 also includes a flexible member 13, which is disposed at the bottom of the movable member 11 and seals the liquid injection port 112.

[0075] After the first atomizing matrix in the first liquid storage chamber 1111 is consumed, the user can manually disassemble the flexible part 13 and then replenish the first atomizing matrix into the corresponding first liquid storage chamber 1111 through the liquid injection port 112, thereby realizing the recycling of the first liquid storage component 10, extending the service life of the atomizing device 100, and saving the user's operating costs.

[0076] Referring to Figures 5 and 6, in some embodiments, the receiving groove 1112 of the first liquid storage space 111 axially penetrates the top surface of the movable member 11 and forms an insertion interface 113. The first liquid guiding member 12 can be detachably inserted and fixed into the corresponding receiving groove 1112 through the insertion interface 113. The length of the first liquid guiding member 12 is greater than the depth of the receiving groove 1112, so that after insertion and fixing, part of the first liquid guiding member 12 is exposed outside the receiving groove 1112, so that the first liquid guiding member 12 in the liquid guiding position can abut against the ultrasonic transducer 31 through the part of it exposed outside the receiving groove 1112.

[0077] A support portion 114 extending along the central axis 1 is provided at the center of the top surface of the movable member 11. Each first liquid guiding member 12 exposed above the receiving groove 1112 at least partially abuts against the support portion 114. The support portion 114 provides a supporting force for each first liquid guiding member 12 in the radial direction of the movable member 11, ensuring that when the movable member 11 rotates the first liquid guiding member 12 corresponding to any first liquid storage space 111 to the liquid guiding position, the ultrasonic transducer 31 can press tightly against the first liquid guiding member 12 in the liquid guiding position from the outside in the radial direction of the movable member 11, ensuring a reliable connection between the ultrasonic transducer 31 and the first liquid guiding member 12.

[0078] Referring to Figures 3 and 6, in some embodiments, the ultrasonic transducer 31 is movably connected in the housing 50 and configured to vibrate within a confined space.

[0079] The ultrasonic atomizing assembly 30 also includes at least one elastic element 32, one end of which abuts against at least a portion of the inner wall of the housing 50 and the other end of which abuts against the ultrasonic transducer 31. The elastic element 32 is configured to apply an elastic force toward the first liquid guide 12 to the ultrasonic transducer 31.

[0080] The atomizing device 100 provided in this application movably connects the ultrasonic transducer 31 to the housing 50, without restricting the vibration of the ultrasonic transducer 31, and can provide sufficient spatial tolerance for the vibration of the ultrasonic transducer 31.

[0081] When the ultrasonic transducer 31 vibrates, its position may shift. If this shift is not corrected in time, it may cause the ultrasonic transducer 31 to separate from the first liquid guiding element 12, thus severely affecting the atomization effect. To solve this problem, this application uses at least one elastic element 32 to movably connect the ultrasonic transducer 31 to the housing 50. The elastic element 32 applies an elastic force to the ultrasonic transducer 31 toward the first liquid guiding element 12 in the liquid guiding position, ensuring that the ultrasonic transducer 31 can always elastically abut against the first liquid guiding element 12 during operation. The elastic force applied by the elastic element 32 achieves adaptive correction of the position shift of the ultrasonic transducer 31, ensuring the atomization effect of the ultrasonic atomization assembly 30 on the first atomization matrix.

[0082] Referring to Figure 2, in some embodiments, the ultrasonic transducer 31 has a mist-emitting surface, and the mist-emitting surface and the atomizing device 100 are substantially aligned in axis.

[0083] The ultrasonic transducer 31 can be configured as a sheet structure with opposing atomizing and mist-exiting surfaces. The atomizing surface faces the movable member 11, and the mist-exiting surface faces away from the movable member 11. The ultrasonic transducer 31 abuts against the first liquid guiding member 12 in the liquid guiding position through its atomizing surface. The transducer atomizes the first atomizing matrix adsorbed on the first liquid guiding member 12 through high-frequency vibration and generates a first aerosol. The generated first aerosol is sprayed outward from the mist-exiting surface and finally discharged from the air outlet 52.

[0084] Referring to Figures 6 and 8, in some embodiments, the housing 50 has a fixed seat 53 located on the outer upper side of the movable member 11 in the direction of gravity. The fixed seat 53 has a first storage space 531 on the side near the movable member 11. The ultrasonic transducer 31 is movably connected to this first storage space 531 and configured to reciprocate within the first storage space 531 along the radial direction of the movable member 11. At least part of the end of the first storage space 531 facing the movable member 11 is open, allowing the atomizing surface of the ultrasonic transducer 31 to abut against the first liquid guiding member 12 at the liquid guiding position through the open space.

[0085] A second storage space 532 is provided at the end of the fixed base 53 away from the movable member 11. The second storage space 532 extends radially along the movable member 11 and connects to the first storage space 531. The elastic member 32 is movably connected in the second storage space 532 radially along the movable member 11, such that one end of the elastic member 32 abuts against the inner wall surface of the fixed base 53 away from the movable member 11, and the other end of the elastic member 32 abuts against the ultrasonic transducer 31. The elastic member 32 can be a compression spring, which can apply an elastic force toward the first liquid guiding member 12 to the ultrasonic transducer 31, automatically driving the ultrasonic transducer 31 to elastically abut against the first liquid guiding member 12 in the liquid guiding position, and realizing adaptive correction of the positional deviation of the ultrasonic transducer 31. It has low cost and high reliability.

[0086] Please refer to Figures 6 and 8. In some embodiments, the atomizing device 100 further includes a window 54, which is disposed on the housing 50 and configured to expose at least part of the movable member 11 outside the housing 50. The movable member 11 can be rotated about the central axis 1 through the window 54 to rotate the first liquid guide member 12 corresponding to any first liquid storage space 111 to abut against the ultrasonic transducer 31, so that the user can switch the flavor of the generated first aerosol.

[0087] Referring to Figures 3 and 4, in some embodiments, the atomizing device 100 further includes a positioning component 60, which is disposed between the movable member 11 and the housing 50 and configured to restrict the rotation of the movable member 11. The positioning component 60 includes at least two positioning grooves 61 and at least one positioning elastic member 62. The positioning grooves 61 are respectively disposed corresponding to the first liquid storage space 111, and the positioning elastic member 62 is configured to engage with the positioning grooves 61.

[0088] When the first liquid guiding component 12 rotates to the liquid guiding position under the drive of the movable component 11, the positioning elastic component 62 is at least partially elastically engaged with the corresponding positioning groove 61 to restrict the rotation of the movable component 11, thereby positioning the movable component 11. This avoids the problem that the first liquid guiding component 12 cannot accurately contact the ultrasonic transducer 31 due to insufficient or excessive rotation angle of the movable component 11. It also avoids the problem that the movable component 11 is easily rotated by external force during use, which could lead to a change in the flavor of the first aerosol.

[0089] In some embodiments, the atomizing device 100 further includes a first airflow channel (not shown) and a second airflow channel (not shown). The first airflow channel connects the air inlet 51 and the air outlet 52, and is configured to allow airflow to pass through and to form an air path connection between the ultrasonic atomizing component 30 and the air inlet 51 and the air outlet 52. The first aerosol is generated in the first airflow channel, so that the first aerosol is carried out by the airflow in the first airflow channel, which facilitates the discharge of the first aerosol and ensures a continuous supply of the first aerosol.

[0090] The second airflow channel connects the air inlet 51 and the air outlet 52, and is configured to allow airflow to pass through and to form an air path connection between the heating atomizing component 40 and the air inlet 51 and the air outlet 52. The second aerosol is generated in the second airflow channel so that it is carried out by the airflow in the second airflow channel.

[0091] During use, the user draws air out of the air outlet 52 through their mouth to create a negative pressure inside the housing 50. Air from outside the housing 50 enters through the air inlet 51, and part of it flows to the first airflow channel to discharge the first aerosol generated by ultrasonic atomization from the air outlet 52 in the form of airflow; part of it flows to the second airflow channel to discharge the second aerosol generated by heating atomization from the air outlet 52 in the form of airflow.

[0092] Referring to Figures 2, 3, and 6, in some embodiments, the atomizing device 100 further includes a first air chamber 55, which is disposed within the housing 50 and connects the air inlet 51 and the air outlet 52. The internal space of the first air chamber 55 forms part of a first airflow channel. An ultrasonic transducer 31 is disposed in the first air chamber 55. A first liquid guiding member 12, positioned in a liquid guiding position, abuts against the ultrasonic transducer 31 within the first air chamber 55.

[0093] During use, air from outside the housing 50 enters the housing 50 through the air inlet 51, and when it flows through the first air chamber 55, it carries out the first aerosol generated in the first air chamber 55, and finally discharges it from the air outlet 52 for the user to inhale.

[0094] The ultrasonic transducer 31 atomizes the first aerosol, which is then gathered in the first air chamber 55, thereby increasing the concentration of fragrance in the first aerosol and ensuring a good inhalation experience. In addition, the first air chamber 55 also provides housing space for the ultrasonic transducer 31, which is beneficial for the compact and miniaturized design of the atomizing device 100.

[0095] Please refer to Figures 4 and 8. In some embodiments, the atomizing device 100 further includes a mounting cavity 56, which is disposed within the housing 50 and connects the air inlet 51 with the first air chamber 55. The internal space of the mounting cavity 56 forms part of the first airflow channel.

[0096] At least part of the movable component 11 is in the mounting cavity 56 and at least part of the movable component is in the first air chamber 55.

[0097] In some embodiments, the first air chamber 55 is located at the upper end of the mounting cavity 56 in the direction of gravity, and a communication port 501 is provided between the two. The upper end of the movable member 11 extends into the first air chamber 55 through the communication port 501, so that the upper end of the first liquid guide member 12 exposed in the receiving groove 1112 can abut against the ultrasonic transducer 31 in the first air chamber 55.

[0098] Please refer to Figures 3 and 5. The first liquid storage assembly 10 also includes a sealing ring 14. Correspondingly, a sealing groove 116 is provided around the upper periphery of the movable part 11 corresponding to the communication port 501, and the sealing ring 14 is sleeved in the sealing groove 116. After the first liquid storage assembly 10 is assembled in the housing 50, the sealing ring 14 is sealed and clamped between the upper end of the movable part 11 and the communication port 501, and is used to seal the gap between the movable part 11 and the communication port 501, preventing the first aerosol in the first gas chamber 55 from leaking into the mounting cavity 56 through the gap between them.

[0099] Please refer to Figures 4, 7, and 8. In some embodiments, the bottom surface of the mounting cavity 56 is provided with a rotating shaft 561 arranged along the Z-axis, and the rotating shaft 561 is coaxially arranged with the communication port 501. Correspondingly, the bottom of the movable member 11 is provided with a shaft hole 115 arranged along its central axis 1. The movable member 11 is rotatably connected to the rotating shaft 561 through the shaft hole 115, so that the movable member 11 can rotate relative to the housing 50 about its central axis 1.

[0100] Please refer to Figures 6 and 8. Window 54 connects the external space of housing 50 with mounting cavity 56, so that the user can move the movable part 11 in mounting cavity 56 through window 54.

[0101] The first liquid storage assembly 10 also includes an outer sleeve 15, which is fixedly fitted onto the movable component 11, and at least partially exposed through the window 54. The outer sleeve 15 is preferably made of silicone material, which has a high coefficient of friction, making it easy for the user to move the movable component 11 using the outer sleeve 15.

[0102] Referring to Figure 8, a bottom air inlet 502 is provided through the bottom of the mounting cavity 56, which connects the air inlet 51 to the mounting cavity 56, allowing air from outside the housing 50 to enter the mounting cavity 56 through the air inlet 51 and the bottom air inlet 502. A top air inlet 503 is provided through the top of the mounting cavity 56, which connects the mounting cavity 56 to the first air chamber 55, allowing air from inside the mounting cavity 56 to enter the first air chamber 55 through the top air inlet 503.

[0103] Please refer to Figures 2, 3, 6 and 8. In some embodiments, the atomizing device 100 further includes a confluence chamber 57, which is disposed inside the housing 50 and connects the air outlet 52 with the air outlet end of the first airflow channel and the air outlet end of the second airflow channel.

[0104] The atomizing device 100 of this application connects the air outlet 52 with the air outlet of the first airflow channel and the air outlet of the second airflow channel through the confluence chamber 57. This allows the first aerosol generated in the first airflow channel and the second aerosol generated in the second airflow channel to merge and mix in the confluence chamber 57 before being discharged. This mixes the first and second aerosols, ensuring that the flavor of the discharged mixed aerosol is uniform and consistent, thus improving the user experience.

[0105] Referring to Figure 2, in some embodiments, the confluence cavity 57 is provided with absorbent cotton 571. The absorbent cotton 571 can absorb large droplets in the first and second aerosols, preventing large droplets from being discharged from the air outlet 52 and inhaled by the user, thus ensuring the suction feel of the discharged aerosol. In addition, the absorbent cotton 571 can also cool down the second aerosol to a certain extent, preventing the user from being burned by the high temperature of the second aerosol generated by heating and atomization.

[0106] Please refer to Figures 2, 3, 6, and 8. In some embodiments, the first air chamber 55 is connected to the confluence cavity 57, so that the first aerosol generated in the first air chamber 55 can enter the confluence cavity 57 under the influence of airflow and finally be discharged from the outlet 52. The connection between the confluence cavity 57 and the first air chamber 55 constitutes the outlet end of the first airflow channel.

[0107] Referring to Figures 2, 4, and 9, in some embodiments, the heating atomizing assembly 40 includes a second liquid guiding element 42 and a heating element 43. The second liquid guiding element 42 is disposed within the housing 50 and forms a liquid channel communication with the second liquid storage assembly 20 to adsorb the second atomizing matrix. The heating element 43 at least partially abuts against the second liquid guiding element 42, and the heating element 43 is used to atomize the second atomizing matrix and generate a second aerosol.

[0108] In some embodiments, an atomizing air passage 4211 is provided through the second liquid guiding member 42 along the Z-axis, and the atomizing air passage 4211 constitutes part of the second airflow channel. The air inlet end of the atomizing air passage 4211 is connected to the air inlet 51, and the air outlet end of the atomizing air passage 4211 is connected to the confluence cavity 57, so that the second liquid guiding member 42 can form an air passage communication with the air inlet 51 and the air outlet 52 through the atomizing air passage 4211.

[0109] The heating element 43 is housed in the atomizing air passage 4211 and at least partially abuts against the inner wall surface of the second liquid guiding element 42. In use, the second liquid guiding element 42 adsorbs the second atomizing matrix from the second liquid storage assembly 20 through its outer wall surface and transfers the atomizing matrix to its inner wall surface for heating and atomization by the heating element 43, generating a second aerosol in the atomizing air passage 4211. The generated second aerosol enters the confluence cavity 57 under the influence of airflow in the second airflow channel and is finally discharged from the outlet 52.

[0110] The second liquid guiding component 42 can be made of fiber cotton or porous ceramic material. This application does not limit this and can be set according to the user's needs.

[0111] The heating element 43 can be configured to include one or more heating meshes, with the heating meshes abutting against the inner wall surface of the second liquid guiding element 42 to ensure atomization effect. Multiple heating meshes can be configured to heat simultaneously, alternately, or sequentially to adapt to different working modes of the atomizing device 100 and bring different atomization effects.

[0112] Referring to Figure 2, in some embodiments, the atomizing device 100 further includes a control component 70 and a power supply module 80. The control component 70 is disposed inside the housing 50 and electrically connected to the heating element 43 and the ultrasonic atomizing component 30, respectively, and is configured to control the operation of the heating element 43 and the ultrasonic atomizing component 30.

[0113] The power supply module 80 is located inside the housing 50 and is electrically connected to the control component 70, the heating element 43, and the ultrasonic atomizing component 30, respectively, and is configured to supply power to the atomizing device 100.

[0114] The control component 70 can switch between different operating modes of the ultrasonic atomizing component 30 and the heated atomizing component 40 by changing the operating power of the heating element 43 and the ultrasonic transducer 31, so as to achieve different atomization effects. The power supply module 80 is used to provide power support for the entire atomizing device 100, ensuring that the device can obtain a continuous and stable energy supply during operation, thereby ensuring the stability and reliability of the atomization effect.

[0115] At least one heating atomizing component 40 is provided and housed in a corresponding second liquid storage space 21, so that the second liquid guide 42 and the corresponding second liquid storage space 21 form a liquid path communication. The number of heating atomizing components 40 is matched with the number of second liquid storage spaces 21, so that the second atomizing matrix in the corresponding second liquid storage space 21 is atomized by the heating atomizing components 40 to generate a second aerosol.

[0116] The second liquid storage space 21 can be provided in one or more ways; this application does not limit this, as long as it meets the user's needs. The more second liquid storage spaces 21 are provided, the larger the storage capacity of the second atomizing matrix, and the longer the service life of the second atomizing matrix.

[0117] Please refer to Figures 2 and 4. In some embodiments, the second liquid storage assembly 20 includes a second liquid storage space 21, which is formed inside the housing 50 and located on one side of the mounting cavity 56, such that the first liquid storage assembly 10 and the second liquid storage assembly 20 are arranged side by side in the X-axis direction.

[0118] A heating atomizing component 40 is provided, which is housed in the second liquid storage space 21 and forms a liquid channel communication with the second liquid storage space 21 so that the second atomizing matrix can be transferred to the heating atomizing component 40.

[0119] The atomizing device 100 also includes a housing 58 and a second air chamber 59 disposed within the housing 50. The housing 58 is located at the lower end of the first liquid storage component 10 and the second liquid storage component 20 in the weight direction. The control component 70 and the power supply module 80 are disposed in the housing 58.

[0120] The air inlet 51 is located at the bottom of the housing 50 and connects the accommodating chamber 58 with the external space of the housing 50, so that air outside the housing 50 can enter the accommodating chamber 58 through the air inlet 51.

[0121] The accommodating chamber 58 is connected to the mounting cavity 56 through the bottom air inlet 502, so that some of the air in the accommodating chamber 58 can be diverted to the mounting cavity 56 through the bottom air inlet 502, and then enter the first air chamber 55 through the top air inlet 503, so that the ultrasonic atomizing component 30 can form an air passage connection with the air inlet 51 and the air outlet 52.

[0122] The second air chamber 59 is located at the lower end of the second liquid storage space 21. The second air chamber 59 connects the container chamber 58 and the atomizing air channel 4211 so that some of the air in the container chamber 58 can be diverted to the atomizing air channel 4211 through the second air chamber 59.

[0123] Please refer to Figures 3 and 4. In some embodiments, the second liquid storage assembly 20 further includes a fixed tube 22 located at the bottom of the second liquid storage space 21. The fixed tube 22 is coaxially arranged with the air outlet 52. The lower end of the fixed tube 22 is connected to the second air chamber 59 so that the airflow in the second air chamber 59 can enter the fixed tube 22.

[0124] The heating atomizing assembly 40 includes an atomizing core tube 41, which extends along the Z-axis and is disposed in the second liquid storage space 21. The lower end of the atomizing core tube 41 is inserted and fixed to the fixed tube 22 so that the airflow in the second air chamber 59 can enter the atomizing core tube 41 through the fixed tube 22.

[0125] The second liquid storage assembly 20 also includes an atomizing air guide tube 23 located within the second liquid storage space 21. The atomizing air guide tube 23 extends along the Z-axis, with its lower end inserted and fixed to the upper end of the atomizing core tube 41. The upper end of the atomizing air guide tube 23 communicates with the confluence cavity 57. The inner cavities of the fixed tube 22, the atomizing core tube 41, the atomizing air passage 4211, and the atomizing air guide tube 23 all constitute part of the second airflow channel, allowing airflow from the second air chamber 59 to the confluence cavity 57. The connection between the atomizing air guide tube 23 and the confluence cavity 57 constitutes the outlet of the second airflow channel.

[0126] Please refer to Figure 9. At least one liquid inlet 411 is provided through the lower part of the tube wall of the atomizing core tube 41 to connect the second liquid storage space 21 with the inner cavity of the atomizing core tube 41.

[0127] The second liquid guide 42 is disposed in the inner cavity of the atomizing core tube 41, and the second liquid guide 42 at least partially closes the liquid inlet 411 so that the second liquid guide 42 can adsorb the second atomizing matrix through the liquid inlet 411. The atomizing air passage 4211 is connected to the second air chamber 59 and the confluence chamber 57 through the inner cavities of the atomizing core tube 41 and the atomizing air guide tube 23.

[0128] Please refer to Figure 2. The atomizing device 100 also includes an air outlet pipe 521 arranged along the Z-axis. The air outlet pipe 521 is located inside the housing 50 and extends from the air outlet 52 to the confluence chamber 57 so as to connect the confluence chamber 57 with the external space of the housing 50 through the air outlet 52, so as to allow the airflow in the confluence chamber 57 to be discharged from the atomizing device 100.

[0129] Please refer to Figures 2 to 4. In some embodiments, the second liquid storage assembly 20 further includes at least one liquid storage element 24, which is housed in a corresponding second liquid storage space 21 for adsorbing the second atomizing matrix. The liquid storage element 24 is configured to form a liquid path communication with the corresponding second liquid guide 42.

[0130] The number of liquid storage elements 24 is preferably matched with the number of second liquid storage spaces 21, that is, one liquid storage element 24 is provided in each second liquid storage space 21.

[0131] The liquid storage element 24 can be made of a porous material with good liquid absorption. It fills the second liquid storage space 21 and wraps around the heating atomizing component 40, so that the liquid storage element 24 can form a liquid path communication with the second liquid guide 42 housed in the atomizing core tube 41 through the liquid inlet 411. By adsorbing the second atomizing matrix through the liquid storage element 24, compared with directly filling the second liquid atomizing matrix into the second liquid storage space 21, the risk of leakage of the second liquid storage space 21 can be significantly reduced, thus improving the user experience.

[0132] Referring to Figure 9, in some embodiments, the second liquid guide 42 includes a main body 421 extending along the Z-axis and an extension 422 extending along the Y-axis. The atomizing air passage 4211 passes through the axis of the main body 421, and the extension 422 is radially connected to the main body 421. The extension 422 at least partially extends out of the atomizing core tube 41 and is inserted into the liquid storage element 24. In use, the extension can serve as an intermediate connecting medium to enable the liquid storage element 24 to form a stable and reliable liquid path connection with the main body 421, ensuring a continuous and smooth liquid supply to the heating atomizing assembly 40.

[0133] Correspondingly, the tube wall of the atomizing core tube 41 is also provided with a clearance opening 412 for the extension 422 to extend out. The upper axial end of the clearance opening 412 extends to the upper opening through the atomizing core tube 41, so that the main body 421 of the second liquid guide 42 can be axially inserted and fixed into the atomizing core tube 41 from top to bottom, and the extension 422 can extend into the second liquid storage space 21 through the clearance opening.

[0134] In some embodiments, the second liquid storage assembly 20 includes at least two second liquid storage spaces 21, and the second atomizing matrix is ​​configured to provide a preset fragrance scent. Different second liquid storage spaces 21 are configured to store the same or different fragrance scents of the second atomizing matrix.

[0135] When the second liquid storage assembly 20 has multiple second liquid storage spaces 21, each second liquid storage space 21 is provided with a heating atomizing assembly 40 to atomize the second atomizing matrix in the corresponding second liquid storage space 21. In actual manufacturing, different second liquid storage spaces 21 can store second atomizing matrices with the same fragrance or second atomizing matrices with different fragrances. This application does not limit this, as long as it can meet the actual usage needs of users.

[0136] In use, the control component 70 can control a specific heating atomizing component 40 to work independently, so as to atomize the second atomizing matrix in the corresponding second liquid storage space 21 and provide the user with a second aerosol with a specific fragrance.

[0137] Please refer to Figures 2 and 10. In some embodiments, the atomizing device 100 further includes an air intake regulator 90, which connects the air inlet 51 and the accommodating chamber 58 and is configured to adjust the air intake volume of the air inlet 51.

[0138] In some embodiments, the air intake adjuster 90 is movably connected in the accommodating compartment 58 and at least partially closes the air intake 51. The air intake adjuster 90 is configured to reciprocate left and right along the X-axis between a first position and a second position within the opening range of the air intake 51. The first position is exemplified by the position where the adjuster 90 is moved to the right end of the air intake 51, and the second position is exemplified by the position where the adjuster 90 is moved to the left end of the air intake 51.

[0139] The air intake regulating component 90 has a first vent 91 and a second vent 92 extending through its left and right ends.

[0140] Please refer to Figure 10. When the air intake regulator 90 is in the first position, the first vent 91 moves to the opening range of the air intake 51. At this time, the second vent 92 is blocked by the inner wall of the housing 50 on the right side of the air intake 51. The air outside the housing 50 enters the accommodating chamber 58 through the first through hole and is then diverted to the first airflow channel and the second airflow channel.

[0141] When the air intake regulator 90 is in the second position, the second vent 92 moves to the opening range of the air intake 51. At this time, the first vent 91 is blocked by the inner wall of the housing 50 on the left side of the air intake 51. Air outside the housing 50 enters the accommodating chamber 58 through the second through hole and is then diverted to the first airflow channel and the second airflow channel.

[0142] When the air intake regulator 90 is in the middle position between the first position and the second position, the first vent 91 and the second vent 92 move together to the opening range of the air intake 51, and the air outside the housing 50 enters the accommodating chamber 58 through the first vent 91 and the second vent 92, and then flows into the first airflow channel and the second airflow channel.

[0143] When the air intake regulator 90 is in the middle position, the first vent 91 and the second vent 92 simultaneously intake air. At this time, the total air intake in the accommodating chamber 58 is at its maximum, and the air volume diverted to the first airflow channel and the second airflow channel is also at its maximum. This is suitable for the nebulizer 100 to intake air when it is in the lung inhalation mode. At this time, the heating element 43 and the ultrasonic transducer 31 can be configured to operate in the maximum power mode to increase the amount of aerosol generated.

[0144] When the air intake adjustment component 90 is in the first or second position, air is introduced through one of the first vent 91 and the second vent 92. At this time, the total air intake in the accommodating chamber 58 is relatively smaller, and the airflow diverted to the first airflow channel and the second airflow channel is also relatively smaller. This is suitable for the atomizing device 100 to take in air under mouth-inhalation conditions. At this time, the heating element 43 and the ultrasonic transducer 31 can be configured to operate in low-power mode to reduce the amount of aerosol generated.

[0145] The air intake volume of the first vent 91 and the second vent 92 can be set to be different so that when the air intake regulator 90 is in the first position and the second position, the atomizing device 100 has different air intake volumes to adapt to the different working modes of the heating element 43 and the ultrasonic transducer 31.

Claims

1. An atomising device characterised in that, include: The first liquid storage component is used to store the first atomizing matrix; The second liquid storage component is used to store the second atomizing matrix; An ultrasonic atomizing component is connected to the first liquid storage component in a liquid channel. The ultrasonic atomizing component is used to ultrasonically atomize the first atomizing matrix and generate a first aerosol. A heated atomizing component is connected to the second liquid storage component via a liquid path. The heated atomizing component is used to heat and atomize the second atomizing matrix to generate a second aerosol.

2. The atomization device of claim 1, wherein, The first liquid storage component includes at least two first liquid storage spaces, and different first liquid storage spaces are configured to store the same or different fragrance scents of the first atomizing matrix; The first atomizing matrix is ​​configured to provide a preset fragrance scent.

3. The atomizing device as described in claim 2, characterized in that, The atomizing device further includes a housing having an air inlet and an air outlet, and the first liquid storage component includes: A movable element, movably connected within the housing, is configured to be movable relative to the housing, and at least two of the first liquid storage spaces are disposed within the movable element.

4. The atomizing device as described in claim 3, characterized in that, The first liquid storage assembly further includes: A first liquid guiding element has a liquid guiding position and a non-liquid guiding position, and the first liquid guiding element is configured to be driven by the movable element to switch between the liquid guiding position and the non-liquid guiding position; Furthermore, the first liquid guiding component is configured such that at the liquid guiding position, the liquid path connects the first liquid storage space and the ultrasonic atomizing component.

5. The atomizing device as described in claim 4, characterized in that, The ultrasonic atomizing component includes: An ultrasonic transducer receives voltage and generates high-frequency vibration to atomize the first atomizing matrix and generate the first aerosol. In this configuration, different first liquid guiding components abut against the ultrasonic transducer at the liquid guiding position.

6. The atomizing device as described in claim 5, characterized in that, The first liquid storage space includes: The first liquid storage chamber is used to store the first atomized matrix; A receiving tank, connected to the first liquid storage chamber, is used to receive the first liquid guiding component; The first liquid guiding component is partially housed in the receiving tank, and the portion of the first liquid guiding component exposed in the receiving tank is configured to abut against the ultrasonic transducer.

7. The atomizing device as described in claim 5, characterized in that, The ultrasonic transducer is movably connected in the housing and configured to vibrate within a confined space. The ultrasonic atomizing component also includes: At least one elastic element, with one end abutting against at least a portion of the inner wall of the housing and the other end abutting against the ultrasonic transducer, the elastic element being used to apply an elastic force toward the ultrasonic transducer toward the first liquid guiding element.

8. The atomizing device as described in claim 7, characterized in that, The ultrasonic transducer has a mist-emitting surface, which is substantially aligned with the axial direction of the atomizing device.

9. The atomizing device as described in claim 5, characterized in that, The atomizing device also includes: The first air chamber is located inside the shell and is connected to the air inlet and the air outlet; The ultrasonic transducer is installed in the first air chamber; The first liquid guiding element, located at the liquid guiding position, abuts against the ultrasonic transducer in the first air chamber.

10. The atomizing device according to any one of claims 1-9, characterized in that, The heating atomization component includes: The second liquid guiding component is disposed inside the housing and forms a liquid channel communication with the second liquid storage component to adsorb the second atomizing matrix; A heating element, at least partially abutting against the second liquid guiding element, is used to atomize the second atomizing matrix and generate the second aerosol.