Atomization device and atomization equipment

CN224219462UActive Publication Date: 2026-05-12SHENZHEN GEEKVAPE TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN GEEKVAPE TECH CO LTD
Filing Date
2025-03-31
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing atomizing devices, designed to improve aerosol flavor or reduce harmful substances, have increased the volume of the mouthpiece, leading to inconvenience in use and making the filter mechanism prone to clogging.

Method used

Scatterable popping beads are placed in the liquid storage chamber of the atomizing device. The popping beads contain a conditioning matrix. By squeezing, the conditioning matrix is ​​released to change the physicochemical properties of the atomizing matrix, including adsorbing and/or releasing substances, reducing the concentration of harmful substances or improving the taste.

Benefits of technology

It eliminates the need to increase device size, simplifies the structure, enhances user experience, reduces the concentration of harmful substances, improves taste, is easy to operate, and minimizes the impact of suction resistance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of aerosol generation, in particular to an atomization device and atomization equipment, the atomization device comprises a shell and a blasting bead, the shell is internally provided with a liquid storage cavity, and the liquid storage cavity is used for storing an atomization matrix; the blasting bead is arranged in the liquid storage cavity and can be scattered in the atomization matrix; the blasting bead comprises an adjusting matrix, when the blasting bead is extruded, the adjusting matrix is released, and the physical and chemical characteristics of the atomized matrix are changed in a mode of releasing and / or adsorbing substances. On one hand, the regulating matrix changes the physical and chemical characteristics of the atomization matrix in a mode of releasing and / or adsorbing substances, so that harmful ingredients in the atomization matrix can be reduced, the taste or the viscosity and other characteristics can be improved, and the use feeling of a user is improved. And on the other hand, compared with the scheme that adsorption is conducted on the suction nozzle part, the size of the atomization device does not need to be additionally increased, the influence on suction resistance is reduced, the structure of the atomization device is simpler, operation is more convenient, and the suction experience of a user is better.
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Description

Technical Field

[0001] This application relates to the field of aerosol generation technology, and more specifically to an atomizing device and atomizing equipment. Background Technology

[0002] Atomizing devices are appliances that use the thermal effect of a heating structure within the atomizing device to heat the atomizing matrix, causing the matrix to produce aerosols and other volatile substances. However, existing technologies often result in a single flavor of aerosols, and these aerosols contain harmful substances that can damage human health. In existing technologies, some atomizing devices incorporate a filter mechanism in the mouthpiece to reduce the inhalation of harmful substances; this filter mechanism includes a flavor capsule to adjust the aerosol's flavor. Additionally, different flavored flavor capsules are designed into the mouthpiece to enhance the aerosol's flavor. However, both improvements to the aerosol's flavor and reduction of harmful substances are achieved through modifications to the mouthpiece. This design increases the mouthpiece's volume and the likelihood of clogging, hindering aerosol passage and causing significant inconvenience for users. Utility Model Content

[0003] This application provides an atomizing device and atomizing equipment that can effectively improve the physicochemical properties of the atomizing matrix without increasing the volume of the atomizing device and atomizing equipment, and has a simple structure and is easy to operate.

[0004] This application provides an atomizing device, including a housing and a bursting bead. The housing has a liquid storage chamber for storing an atomizing matrix. The bursting bead is disposed in the liquid storage chamber and can be scattered within the atomizing matrix. The bursting bead includes an adjusting matrix. When the bursting bead is squeezed, it releases the adjusting matrix. The adjusting matrix is ​​used to change the physicochemical properties of the atomizing matrix by releasing and / or adsorbing substances.

[0005] In some optional embodiments, the housing includes a housing body and an operating part disposed on the housing body, the housing body and the operating part enclosing to form the liquid storage cavity; the operating part is used to squeeze the bursting beads.

[0006] In some alternative embodiments, the operating part is made of a soft material.

[0007] In some optional embodiments, the operating part has a plurality of compression protrusions on the side facing the liquid storage cavity; and / or, the operating part has a plurality of friction protrusions on the side facing away from the liquid storage cavity.

[0008] In some alternative embodiments, the operating part occupies at least one-sixth of the area of ​​the housing.

[0009] In some alternative embodiments, the burst beads are provided in multiples, each burst bead having at least one volume, and each volume of burst bead having a corresponding adjustable matrix content.

[0010] In some alternative embodiments, the burst beads further include a coating layer for encapsulating and containing the conditioning matrix; the coating layer of the plurality of burst beads has at least one color.

[0011] In some alternative embodiments, the material of the coating layer includes at least one of gelatin, sodium alginate, and polytetrafluoroethylene; and / or, the conditioning matrix includes at least one of mordenite powder, attapulgite powder, and activated carbon.

[0012] In some optional embodiments, the atomizing device further includes an atomizing channel and a suction section. The atomizing channel is disposed within the housing, and the liquid storage chamber is disposed around the atomizing channel. The suction section is disposed at one end of the housing and communicates with the atomizing channel. A heating element is provided within the atomizing channel, and the heating element is used to heat the atomizing matrix to generate an aerosol.

[0013] This application provides an atomizing device, including a power supply component and an atomizing apparatus as described above, wherein the power supply component is used to provide the power required for the atomizing apparatus to operate.

[0014] According to the atomizing device and atomizing equipment in this embodiment, the atomizing device includes a shell and a bursting bead. The shell has a liquid storage chamber, and the bursting bead is disposed in the liquid storage chamber and scattered within the atomizing matrix. The bursting bead includes an adjusting matrix. When the bursting bead is squeezed, it releases the adjusting matrix to change the physicochemical properties of the atomizing matrix by releasing and / or adsorbing substances. By setting the bursting bead, the concentration of harmful substances in the atomizing matrix can be reduced, the flavor of the atomizing matrix can be adjusted, or the viscosity of the atomizing matrix can be improved, thereby reducing harm to the user's health and / or improving the user's taste, ultimately enhancing the user's experience. On the other hand, mixing the bursting bead with the atomizing matrix, compared to the method of adsorption at the mouthpiece, does not require additional increase in the volume of the atomizing device and reduces the impact on the suction resistance, making the structure of the atomizing device simpler, the operation more convenient, and the user's vaping experience better. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the structure of an atomizing device in one embodiment;

[0016] Figure 2 This is a cross-sectional view of the atomizing device in one embodiment;

[0017] Figure 3 This is a schematic diagram of the internal structure of the atomizing device in one embodiment;

[0018] Figure 4 This is a schematic diagram of the external structure of the atomizing device in one embodiment;

[0019] Figure 5 This is a schematic diagram of the structure of the popping bead in one embodiment.

[0020] Wherein: 100, atomizing device; 110, housing; 111, liquid storage chamber; 112, atomizing channel; 113, housing body; 114, operating part; 1141, extrusion protrusion; 1142, friction protrusion; 120, bursting bead; 121, coating layer; 122, adjusting matrix; 130, suction part; 140, heating element;

[0021] 200. Power supply components; A. Atomizing matrix. Detailed Implementation

[0022] The present application will now be described in further detail with reference to the accompanying drawings and specific embodiments. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present 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.

[0023] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments, and the operational steps involved in each embodiment can also be rearranged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for clearly describing a particular embodiment and do not imply that they represent the necessary components and / or order.

[0024] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).

[0025] Please see Figures 1 to 5 An atomizing device is an apparatus used to heat an atomizing matrix A to atomize it into an aerosol. The atomizing device includes an atomizing unit 100 and a power supply component 200, which provides the atomizing unit 100 with the power required for operation.

[0026] It should be noted that the term "aerosol" in this context refers to a dispersion of solid or liquid particles in a gas. The term "aerosol" as used herein can generally refer to substances that have been vaporized, atomized, sprayed, or jetted, or otherwise transformed from a solid or liquid form into an inhalable form containing suspended solid or liquid drug particles.

[0027] Atomizing matrix A is any suitable compound or mixture of compounds that facilitates aerosol formation during use. This atomizing matrix A includes, but is not limited to: polyols such as triethylene glycol, 1,3-butanediol, and glycerol; esters of polyols such as mono-, di-, or triacetic acid esters of glycerol; and aliphatic esters of mono-, di-, or polycarboxylic acids such as dimethyl dodecanoate and dimethyl tetradecanoate. Nicotine may also be included. Alternatively, glycerol (also known as glycerol) with a higher boiling point than nicotine may be included. Propylene glycol or plant-based materials may also be included.

[0028] The atomizing device 100 and the power supply component 200 can be a single-piece structure. However, given that the atomizing device 100 and the power supply component 200 are disposable consumables in related technologies, in order to effectively reduce the user's operating costs, the atomizing device 100 and the power supply component 200 can be detached. In this way, the user can disassemble the atomizing device 100 or the power supply component 200 separately for replacement or maintenance.

[0029] The power supply component 200 in this application is a conventional power supply component 200 and is not an improvement of this application; therefore, it will not be described in detail. The atomizing device 100 will be described in detail below.

[0030] Please see Figure 2 This application provides an atomizing device 100, including a housing 110 and a bursting bead 120. The housing 110 has a liquid storage chamber 111 for storing an atomizing matrix A. The bursting bead 120 is disposed in the liquid storage chamber 111 and can be scattered within the atomizing matrix A. The bursting bead 120 includes an adjusting matrix 122. When the bursting bead 120 is squeezed, it releases the adjusting matrix 122. The adjusting matrix 122 is used to change the physicochemical properties of the atomizing matrix A by releasing and / or adsorbing substances.

[0031] It should be specifically noted that "adjusting matrix 122" in the phrase "adjusting matrix 122 is used to change the physicochemical properties of atomizing matrix A by releasing and / or adsorbing substances" is understood to include at least one of additive components or adsorbent components. Additive components can improve the physicochemical properties (e.g., viscosity, flavor, concentration, etc.) of atomizing matrix A by physically mixing with it, or by reacting with at least one component within atomizing matrix A. Similarly, adsorbent components improve the physicochemical properties (e.g., viscosity, concentration, etc.) of atomizing matrix A by adsorbing at least one component within it.

[0032] In some specific embodiments, by setting a burst bead 120 within the atomizing matrix A, and the regulating matrix 122 within the burst bead 120 serving as an adsorbent (i.e., an adsorbent component), certain specific components within the atomizing matrix A, such as harmful substances (e.g., nicotine or fragrances), can be adsorbed, thereby effectively reducing the concentration of harmful substances in the atomizing matrix A and minimizing harm to the user's health. Furthermore, mixing the burst bead 120 with the atomizing matrix A eliminates the need to increase the volume of the atomizing device 100, resulting in a simpler structure compared to adsorption methods at the mouthpiece.

[0033] In other specific embodiments, the adjusting matrix 122 of this application can also be a flavoring agent (additive component) to improve the flavor of the atomizing matrix A, allowing users to experience different flavors and thus enhancing the user experience. The flavoring agent can achieve different flavors depending on the formulation of the corresponding raw materials. For example, the flavoring agent can be a minty cooling agent that provides a refreshing sensation. Alternatively, the flavoring agent can be a sweetener that increases sweetness, such as one that adds flavors like cream or blueberry. Another example is an acidulant that increases acidity. Furthermore, flavors such as wild ginseng, royal jelly, ambergris, and dried tangerine peel can be specifically provided depending on the health function settings; or, flavors such as Guizhou Moutai, Yunnan pear blossom, and Anhui dendrobium can be specifically provided depending on the brand characteristics. The specific formulation and flavor of the flavoring agent can be determined according to the actual settings and are not limited here.

[0034] Of course, the adjusting matrix 122 can also be replaced with nicotine, thereby increasing the nicotine concentration during the user's inhalation to meet the user's needs. In practical applications, if the user has a comprehensive need for flavoring, reducing harmful substances, and increasing nicotine content, multiple capsules 120 can be set in the same atomizing device 100 to contain these adjusting matrices 122.

[0035] Because aerosols are dispersed gases with relatively dispersed components, adsorbing harmful substances from aerosols requires more efficient capture capacity and specific surface area, making adsorption more difficult. Furthermore, adsorbing harmful substances from aerosols easily increases suction resistance, affecting the smoothness of the user's inhalation, and the mouthpiece needs frequent cleaning; otherwise, clogging the mouthpiece will also affect the inhalation effect. However, the atomizing matrix A is generally a liquid, with its internal components being more concentrated, reducing the difficulty of adsorption. The adjusting matrix 122 can directly contact the atomizing matrix A to complete adsorption or flavoring through physical or chemical actions, reducing operational difficulty. Specifically, the direct contact between the adjusting matrix 122 and the atomizing matrix A when adsorption is needed reduces the requirements for the adsorption surface and capture capacity of the adjusting matrix 122, reducing the production difficulty of the popping beads 120. In other words, the scheme of setting popping beads 120 within the atomizing matrix A in this application has the advantages of good adsorption effect, simple operation, and easier implementation. Similarly, direct contact between the flavoring agent and the atomizing matrix A for flavoring also has the advantages of good effect and low operational difficulty. Furthermore, the inclusion of burst beads 120 within the atomizing matrix A reduces the impact of burst beads 120 on air resistance, resulting in a better vaping experience for users.

[0036] Furthermore, the housing 110 can be understood as an assembly of multiple components, providing at least one cavity for storing the constituent structures of the atomizing device 100 (e.g., the burst bead 120). For example, the housing 110 contains the aforementioned liquid storage cavity 111 for storing the atomizing matrix A and the burst bead 120. The housing 110 also facilitates the integration of the multiple constituent structures of the atomizing device 100 into a single unit, and facilitates the operation, movement, or carrying of the atomizing device 100. To facilitate user gripping of the atomizing device 100, the housing 110 can be cylindrical (including near-cylindrical) or cubic in shape.

[0037] Please continue reading Figure 2 In some embodiments, the housing 110 includes a housing body 113 and an operating part 114 disposed on the housing body 113. The housing body 113 and the operating part 114 enclose a liquid storage cavity 111. The operating part 114 is used to squeeze the burst bead 120. In specific applications, the atomizing device 100 is placed vertically during use. At this time, the burst bead 120 is located at the bottom of the atomizing device 100 due to gravity. When it is necessary to squeeze the burst bead 120, the atomizing device 100 is tilted or placed horizontally (compared to the vertical placement during use), so that the burst bead 120 can flow to the operating part 114. This allows the user to squeeze the burst bead 120 using the operating part 114, causing the regulating matrix 122 inside the burst bead 120 to be released and mixed with the atomizing matrix A, thereby adsorbing harmful substances in the atomizing matrix A or adjusting the flavor of the atomizing matrix A. By squeezing the burst bead 120 through the operating part 114, the user can also enhance the fun of the atomizing device 100 and improve the user experience.

[0038] In some embodiments, the operating part 114 is made of a soft material, which facilitates the user to squeeze the capsule 120 and apply force to release the internal regulating matrix 122. This soft material includes elastic soft materials, such as silicone or rubber, which are easily deformable, making it convenient for the user to squeeze the capsule 120. Of course, the soft material can also include soft plastic or molded paper.

[0039] Please see Figure 3 In some embodiments, to improve the effect of the bursting bead 120 being squeezed to release the regulating matrix 122, the operating part 114 is provided with a plurality of extrusion protrusions 1141 on the side facing the liquid storage cavity 111. The arrangement of the plurality of extrusion protrusions 1141 facilitates puncturing the bursting bead 120 and also increases the friction between the bursting bead 120 and the operating part 114, making it easier to fix it to the operating part 114 for force compression.

[0040] The shape of the extrusion bump 1141 includes a sphere, a frustum, a cone, a cylinder, a cube, a polygonal prism, or other irregular shapes, without specific limitations. Preferably, the shape of the extrusion bump 1141 is a cone, with its sharp end away from the operating part 114, so that when extruded, the sharp end acts on the popping bead 120, thereby improving the extrusion effect on the popping bead 120.

[0041] Please see Figure 4 In some embodiments, the operating part 114 has multiple friction protrusions 1142 on its side facing away from the liquid storage cavity 111. The friction protrusions 1142 increase the friction between the operating part 114 and the user, facilitating the user's application of force and also helping to improve the effect of squeezing the exploding beads 120 to release the regulating matrix 122. The friction protrusions 1142 are consistent with the squeezing protrusions 1141, and include spheres, frustums, cones, cylinders, cubes, polygonal prisms, or other irregular shapes; no specific limitations are made here. Preferably, the friction protrusions 1142 are spherical, and their arc surfaces can reduce the impact of external forces on the operating part 114, thereby protecting the operating part 114.

[0042] It is understandable that the burst bead 120 has a certain volume to accommodate a certain amount of conditioning matrix 122 in order to reduce harmful substances or flavor. When the operating part 114 squeezes the burst bead 120, the operating part 114 should be able to wrap at least one burst bead 120 for all-round squeezing. In order to effectively ensure that the burst bead 120 is squeezed to release the conditioning matrix 122, the operating part 114 occupies no less than one-sixth of the area of ​​the shell 110.

[0043] In some embodiments, at least a portion of the housing 110 is made of a soft material to form the operating part 114, while the remaining portion may be made of a hard material to form the housing body 113, such as hard plastic, so that the housing 110 has a certain strength and hardness, making it convenient for users to grip, store and operate, and also protecting the atomizing device 100 and its internal structure.

[0044] Furthermore, when the housing body 113 is made of a rigid material and the operating part 114 is made of a soft material, in order to protect the burst bead 120, the operating part 114 should be located away from the bottom of the atomizing device 100, that is, the bottom of the housing 110 is the housing body 113, which helps the atomizing device 100 to be placed vertically and used. When the atomizing device 100 is placed vertically, the burst bead 120 is located at the bottom of the atomizing device 100 under the action of gravity. The choice of rigid plastic can prevent the burst bead 120 from being accidentally subjected to force or non-user-applied squeezing behavior, which would cause the regulating matrix 122 to be released, thereby achieving the purpose of protecting the burst bead 120. The operating part 114 and the housing body 113 are connected by adhesive, snap-fit, or other methods, and the specific method is not limited, as long as the two are firmly connected. For example, the operating part 114 and the housing body 113 are connected by adhesive, which is simple to operate and helps to improve the sealing of the atomizing device 100 and prevent leakage.

[0045] Of course, in some other embodiments, in order to reduce the processing difficulty, the shell 110 can also be integrally formed from a soft material, so that the user can use any part of the shell 110 as the operating part 114 to squeeze the bursting beads 120.

[0046] In some embodiments, multiple burst beads 120 are provided. As the number of burst beads 120 increases, the content of the regulating matrix 122 can be increased, thereby enhancing its effect on the atomizing matrix A (adsorption of harmful substances and flavor regulation). Obviously, the more burst beads 120 there are, the better the effect. In specific applications, the user can selectively squeeze one or more burst beads 120 and shake the atomizing device 100 up and down to ensure that the regulating matrix 122 and the atomizing matrix A are mixed evenly, allowing the regulating matrix 122 to fully exert its function to achieve different regulatory effects and control the concentration of harmful substances or flavor in the atomizing matrix A.

[0047] In some embodiments, the size of the burst bead 120 can also be increased as the effect of the burst bead 120 on the atomizing matrix A is improved. The larger the volume of the burst bead 120, the more adjustment matrix 122 it can accommodate inside. Thus, after the burst bead 120 is squeezed, it can release more adjustment matrix 122, which in turn can achieve a better reduction effect on harmful substances or have a better flavoring effect.

[0048] To enhance enjoyment and achieve different adjustment effects, multiple burst beads 120 have at least one volume. Correspondingly, each volume of burst beads 120 has a corresponding content of the adjustment matrix 122, allowing users to select the appropriate volume of burst beads 120 for extrusion according to their needs. For example, users with a high demand for reducing harmful substances can choose to extrude larger volume burst beads 120. Conversely, users with a lower demand for reducing harmful substances can choose to extrude smaller volume burst beads 120. Furthermore, users with a high demand for flavor (aroma) concentration can choose to extrude larger volume burst beads 120.

[0049] Please see Figure 5 In some embodiments, the pod 120 further includes a coating layer 121 for encapsulating and containing the conditioning matrix 122. The coating layer 121 protects and encapsulates the conditioning matrix 122. Therefore, the material of the coating layer 121 must possess certain plasticity, elasticity, and sealing properties, as well as good corrosion resistance, to prevent the atomizing matrix A from corroding the coating layer 121 and exposing the conditioning matrix 122, thus affecting the user's control over the concentration of harmful substances and flavor in the atomizing matrix A.

[0050] Furthermore, the coating layer 121 of the multiple burst beads 120 has at least one color, thereby enhancing the visual appeal of the atomizing device. When each burst bead 120 contains a conditioning matrix 122, and the conditioning matrices 122 in the multiple burst beads 120 are different, in other words, the multiple burst beads 120 include at least one of flavoring agent, adsorbent, and nicotine. For example, when one or more burst beads 120 contain flavoring agent, one or more burst beads 120 contain adsorbent, and the remaining burst beads 120 contain nicotine, the user can achieve the goals of reducing harmful substances, adjusting the aerosol flavor, or increasing the nicotine concentration in the same atomizing device 100. The coating layer 121 has multiple different colors, that is, different internal conditioning matrices 122 correspond to different coating layer 121 colors, making it convenient for users to distinguish the type of conditioning matrix 122 inside the burst beads 120, allowing users to accurately select what they need. Therefore, both the housing body 113 and the operating part 114 are made of transparent material so that users can select the corresponding color of the popping bead 120 and check whether the corresponding popping bead 120 is located in the operating part 114.

[0051] In some embodiments, the material of the encapsulation layer 121 includes at least one of gelatin, sodium alginate, and polytetrafluoroethylene.

[0052] In some embodiments, the conditioning matrix 122 includes at least one of mordenite powder, attapulgite powder, and activated carbon. These three materials can be freely physically mixed to complement and enhance the adsorption effect. For example, mordenite powder has a uniform microporous structure and ion exchange capacity, exhibiting good adsorption effects on some polar molecules and ions, and can adsorb specific ions through ion exchange. Attapulgite is a hydrous magnesium-aluminate silicate clay mineral with a chain-layered structure and a large specific surface area. It has a strong adsorption capacity for polar molecules and ions. When mordenite powder and attapulgite powder are mixed, their adsorption characteristics complement each other. The mixture possesses both the microporous structure and ion exchange capacity of mordenite powder and the chain-layered structure and surface-active groups of attapulgite powder. Activated carbon has abundant micropores and mesopores, a large specific surface area, and a strong adsorption capacity for non-polar or weakly polar organic substances, capable of adsorbing various organic pollutants and odor substances. When mordenite powder and activated carbon are mixed, they can simultaneously adsorb polar and non-polar substances, expanding the applicability of the conditioning matrix 122 and improving its ability to remove complex mixed pollutants.

[0053] In some embodiments, the atomizing device 100 further includes an atomizing channel 112 and a suction section 130. The atomizing channel 112 is disposed within the housing 110, and a liquid storage chamber 111 is disposed around the atomizing channel 112. The suction section 130 is disposed at one end of the housing 110 and communicates with the atomizing channel 112. A heating element 140 is disposed within the atomizing channel 112, which is used to heat the atomizing matrix A to generate an aerosol. Specifically, the liquid storage chamber 111 can be arranged around the atomizing channel 112, so that the atomizing matrix A is uniformly introduced into the atomizing channel 112 from its circumference, resulting in a uniform aerosol and avoiding localized dry burning within the atomizing channel 112.

[0054] Using the atomizing device 100 as a reference, the heating element 140 can be arranged horizontally or vertically within the atomizing channel 112. The heating element 140 has conductive parts electrically connected to the positive and negative terminals of the power supply component 200. The atomizing channel 112 is provided with a liquid passage communicating with the liquid storage chamber 111. After the atomizing matrix A enters the atomizing channel 112 through the liquid passage, the heating element 140 is energized and heats the atomizing matrix A. The generated aerosol flows out along the atomizing channel 112 to the suction section 130. The heating element 140 can employ a resistance heating, electromagnetic heating, or infrared heating structure. For example, when the heating element 140 uses resistance heating, it includes one of a heating wire, a heating tube, or a heating film. The heating wire, heating tube, and heating film can all be made of a metallic conductive material.

[0055] In some embodiments, the shape of the burst bead 120 can be any one of a cylinder, sphere, ellipsoid, or cuboid, without specific limitation. For example, the burst bead 120 can be a sphere, which facilitates processing and, due to its arc-shaped force-dissipating characteristics, makes the burst bead 120 less likely to be squeezed out of the internal regulating matrix 122 due to accidental force on the atomizing device 100 or squeezing behavior not applied by the user.

[0056] The above examples illustrate this application only to aid understanding and are not intended to limit its scope. Those skilled in the art to which this application pertains can make various simple deductions, modifications, or substitutions based on the ideas presented.

Claims

1. An atomizing device, characterized in that, include: A housing having a liquid storage chamber for storing an atomizing matrix; And a bursting bead, which is disposed in the liquid storage chamber and can be scattered in the atomizing matrix; the bursting bead includes an adjustment matrix, which is released when the bursting bead is squeezed, and the adjustment matrix is ​​used to change the physicochemical properties of the atomizing matrix by releasing and / or adsorbing substances.

2. The atomizing device according to claim 1, characterized in that, The housing includes a housing body and an operating part disposed on the housing body, the housing body and the operating part enclosing the liquid storage cavity; the operating part is used to squeeze the popping beads.

3. The atomizing device according to claim 2, characterized in that, The operating part is made of a soft material.

4. The atomizing device according to claim 2, characterized in that, The operating part has multiple extrusion protrusions on the side facing the liquid storage cavity; and / or, the operating part has multiple friction protrusions on the side facing away from the liquid storage cavity.

5. The atomizing device according to any one of claims 2-4, characterized in that, The operating part occupies no less than one-sixth of the area of ​​the housing.

6. The atomizing device according to claim 1, characterized in that, The bursting beads are provided in multiple quantities, and each bursting bead has at least one volume, with each volume of bursting bead having a corresponding regulating matrix content.

7. The atomizing device according to claim 1, characterized in that, The burst beads also include a coating layer for encapsulating and containing the conditioning matrix; the coating layer of the plurality of burst beads has at least one color.

8. The atomizing device according to claim 7, characterized in that, The material of the coating layer includes at least one of gelatin, sodium alginate and polytetrafluoroethylene; and / or, the conditioning matrix includes an adsorbent and / or a flavoring agent.

9. The atomizing device according to claim 1, characterized in that, The atomizing device further includes an atomizing channel and a suction unit. The atomizing channel is disposed inside the housing, and the liquid storage chamber is disposed around the atomizing channel. The suction unit is disposed at one end of the housing and communicates with the atomizing channel. A heating element is disposed inside the atomizing channel, and the heating element is used to heat the atomizing matrix to generate an aerosol.

10. An atomizing device, characterized in that, It includes a power supply component and an atomizing device as described in any one of claims 1-9, wherein the power supply component is used to provide the power required for the atomizing device to operate.