Atomization device
By setting up isolated chambers and atomizing components with different heating powers in the atomizing device, the problem of inconvenient switching of smoke volume is solved, enabling flexible switching between large and low smoke volumes and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HG INNOVATION LTD
- Filing Date
- 2025-04-29
- Publication Date
- 2026-05-12
AI Technical Summary
Existing atomizing devices do not allow for easy switching of vapor production, resulting in a poor user experience.
Design an atomizing device comprising a first chamber and a second chamber isolated from each other, storing aerosol matrices of different viscosities respectively, and controlling the operation of atomizing components with different heating powers through a control circuit assembly to achieve switching between large and low smoke volumes.
The user experience is enhanced by the ability to easily switch the vapor production of the atomizer, meeting different usage needs.
Smart Images

Figure CN224219481U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of aerosol atomization, specifically to an atomization device. Background Technology
[0002] Atomizing devices use high-temperature heating to cause an aerosol matrix to mix with air to form an aerosol, which is then discharged. During this conversion process, gaseous components easily condense into droplets, thus forming smoke. Currently, most atomizing devices on the market increase smoke output by increasing heating power. However, this increases the consumption of aerosol matrix, reducing the device's operating time. Furthermore, the large amount of smoke can also affect others. Therefore, how to conveniently switch the smoke output of an atomizing device has become a pressing issue. Utility Model Content
[0003] The main technical problem this application addresses is that the amount of smoke produced by atomizing devices cannot be easily switched during use, resulting in a poor user experience.
[0004] To address the aforementioned technical problems, this application provides an atomizing device, comprising: a housing, wherein a first chamber and a second chamber are provided within the housing, the first chamber and the second chamber being isolated from each other; the first chamber is provided with a first atomizing channel and a first atomizing component, the first chamber being used to store a first aerosol matrix, the first atomizing component being used to heat the first aerosol matrix to generate a first aerosol, which is then discharged outward through the first atomizing channel; the second chamber is provided with a second atomizing channel and a second atomizing component, the second chamber being used to store a second aerosol matrix, the second atomizing component being used to heat the aerosol matrix to generate a second aerosol, which is then discharged outward through the second atomizing channel; the viscosity of the first aerosol matrix is greater than the viscosity of the second aerosol matrix, and the heating power of the first atomizing component is greater than or equal to twice the heating power of the second atomizing component; and a control circuit component electrically connected to the first atomizing component and the second atomizing component, used to control at most one of the first atomizing component and the second atomizing component to enter a working state.
[0005] In one embodiment, a first liquid storage device is provided in the first chamber, and a second liquid storage device is provided in the second chamber, wherein the density of the second liquid storage device is greater than the density of the first liquid storage device.
[0006] In one embodiment, the housing further includes at least one third chamber, which has a third atomizing channel and a third atomizing component, the third atomizing component being disposed within the third atomizing channel.
[0007] In one embodiment, the first atomizing channel and the second atomizing channel are arranged side by side; at least one of the third atomizing channels is connected in series with the first atomizing channel or the second atomizing channel; and / or, at least one of the third atomizing channels is arranged side by side with the first atomizing channel and the second atomizing channel.
[0008] In one embodiment, the volume of the first chamber is greater than the volume of the second chamber.
[0009] In one embodiment, the second aerosol matrix is a water-based aerosol matrix.
[0010] In one embodiment, the heating power of the first atomizing component is in the range of 10W-25W; the heating power of the second atomizing component is in the range of 1W-5W.
[0011] In one embodiment, the control circuit assembly is configured to have multiple adjustment levels, and at least two of the adjustment levels each correspond to the first atomizing component, so that the first atomizing component has at least two heating powers.
[0012] In one embodiment, the first atomizing component includes a first atomizing tube with a first liquid guiding channel; the second atomizing component includes a second atomizing tube with a second liquid guiding channel; the liquid guiding area of the second liquid guiding channel is smaller than the liquid guiding area of the first liquid guiding channel.
[0013] In one embodiment, the density of the second liquid reservoir is in the range of 0.065 g / cm³. 3 -0.8g / cm 3 .
[0014] In one embodiment, the liquid guiding element has a specification of 45g / m 2 -75g / m 2 .
[0015] According to the atomizing device of the above embodiment, since the housing has a first chamber and a second chamber that are isolated from each other, the viscosity of the first aerosol matrix stored in the first chamber is greater than the viscosity of the second aerosol matrix stored in the second chamber, and the heating power of the first atomizing component in the first chamber is more than twice that of the second atomizing component in the second chamber, by controlling one of the first atomizing component and the second atomizing component to enter the working state, the atomizing device can be conveniently switched between large smoke volume atomization and low smoke volume / no smoke volume, which greatly improves the user experience. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the atomizing device structure in the embodiments of this application.
[0017] Figure 2 This is a schematic cross-sectional view of the atomizing device in the embodiments of this application.
[0018] Figure 3 This is a cross-sectional schematic diagram of one embodiment of the first chamber, second chamber, and third chamber in the atomizing device of this application.
[0019] Figure 4 This is a cross-sectional schematic diagram of another embodiment of the first chamber and the second chamber in this application.
[0020] Figure 5 This is a schematic diagram of an explosion of the atomizing device in an embodiment of this application.
[0021] Figure 6 This is a schematic diagram of the structure of the second atomizing component in the atomizing device of this application embodiment.
[0022] Figure 7 This is a schematic cross-sectional view of the second atomizing component in the atomizing device of this application embodiment.
[0023] Explanation of reference numerals in the attached figures:
[0024] 1-Shell; 11-First chamber; 12-Second chamber; 13-Third chamber; 14-Mouthpiece; 15-Mouthpiece airway;
[0025] 21-First liquid reservoir; 22-Second liquid reservoir; 23-Third liquid reservoir;
[0026] 31-First atomizing component; 32-Second atomizing component; 321-Second heating element; 322-Second liquid guiding element; 323-Second atomizing tube; 324-Second liquid guiding channel; 33-Third atomizing component;
[0027] 41-First atomization channel; 42-Second atomization channel; 43-Third atomization channel;
[0028] 5-Control circuit components;
[0029] 6-Intake regulating switch; 61-Intake vent;
[0030] 71 - First air intake passage; 72 - Second air intake passage;
[0031] 8-Power supply components. Detailed Implementation
[0032] The present invention 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.
[0033] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.
[0034] 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).
[0035] The atomizing device heats an aerosol matrix, causing it to vaporize and mix with air to form an aerosol, which is then discharged. To achieve switching between large and small smoke volumes, this application provides an atomizing device, please refer to [reference needed]. Figures 1 to 4As shown, the atomizing device includes: a housing 1, within which a first chamber 11 and a second chamber 12 are provided, the first chamber 11 and the second chamber 12 being isolated from each other; the first chamber 11 is provided with a first atomizing channel 41 and a first atomizing component 31, the first chamber 11 being used to store a first aerosol matrix, the first atomizing component 31 being used to heat the first aerosol matrix to generate a first aerosol, which is then discharged outward through the first atomizing channel 41; the second chamber 12 is provided with a second atomizing channel 42 and a second atomizing component 32, the second chamber 12 being used to store a second aerosol matrix. The first aerosol matrix is heated by the second atomizing component 32 to generate an aerosol, which is then discharged through the second atomizing channel 42. The viscosity of the first aerosol matrix is greater than that of the second aerosol matrix, and the heating power of the first atomizing component 31 is greater than or equal to twice the heating power of the second atomizing component 32. The control circuit component 5 is electrically connected to the first atomizing component 31 and the second atomizing component 32 and is used to control at most one of the first atomizing component 31 and the second atomizing component 32 to enter the working state.
[0036] The atomizing device in this embodiment forms an aerosol by heating an aerosol matrix. The atomizing device includes a housing 1, which has an internal accommodating space to house the aerosol matrix and the device for heating it.
[0037] Please refer to the following: Figure 4 The housing 1 forms a receiving space with at least a first chamber 11 and a second chamber 12, wherein the first chamber 11 and the second chamber 12 are isolated from each other. The isolation of the first chamber 11 and the second chamber 12 means that they are not directly connected within the space inside the housing 1, and can each accommodate different devices. In addition, the housing 1 can form more spaces, such as spaces for accommodating other devices including the power supply component 8.
[0038] The first chamber 11 and the second chamber 12 are isolated from each other to accommodate different types of aerosol matrices and atomizing components with different heating powers. In this embodiment, the aerosol matrices include a first aerosol matrix and a second aerosol matrix. Depending on the amount of smoke generated, the viscosity of the first aerosol matrix is greater than that of the second aerosol matrix. Heating the first aerosol matrix produces a larger amount of smoke, while heating the second aerosol matrix produces a smaller amount of smoke or no smoke at all. The atomizing components, when powered on, generate heat to heat the aerosol matrix within their range, mixing it with air to form an aerosol.
[0039] To differentiate the aerosols generated in the first chamber 11 and the second chamber 12, in this embodiment, the first chamber 11 is provided with a first liquid storage component 21 and a first atomizing component 31. The first liquid storage component 21 stores the first aerosol matrix and can be made of materials such as organic cotton, ceramic cotton, fiber cotton, mixed cotton, or ceramic. The first liquid storage component 21 is provided with a first atomizing channel 41, which extends through the first liquid storage component 21. The two ends of the first atomizing channel 41 are connected to an air inlet and an air outlet on the housing 1, respectively. The air inlet allows outside air to enter the atomizing device, while the air outlet allows the generated first aerosol to be discharged to the outside. The first atomizing component 31 is provided in the first atomizing channel 41. The function of the first atomizing component 31 is to heat the first aerosol matrix to generate the first aerosol, which is discharged from the atomizing device through the air outlet along the first atomizing channel 41.
[0040] The second chamber 12 contains a second liquid storage component 22 and a second atomizing component 32. The second liquid storage component 22 stores the second aerosol matrix. The material of the second liquid storage component 22 can be organic cotton, ceramic cotton, fiber cotton, mixed cotton, or ceramic, etc. A second atomizing channel 42 is correspondingly provided in the second liquid storage component 22, and the second atomizing channel 42 is also provided through the second liquid storage component 22. The two ends of the second atomizing channel 42 are respectively connected to the air inlet and air outlet of the atomizing device. The air inlet and air outlet of the atomizing device connected to the second atomizing channel 42 can be the same air inlet / air outlet as the air inlet and air outlet of the atomizing device connected to the first atomizing device, or they can be separate air inlets / outlets.
[0041] The second atomizing channel 42 is equipped with a second atomizing component 32. The function of the second atomizing component 32 is also to heat the second aerosol matrix to generate the second aerosol. Unlike the first atomizing component 31, the heating power of the second atomizing component 32 is significantly less than that of the first atomizing component 31. Specifically, the heating power of the second atomizing component 32 is less than or equal to half that of the first atomizing component 31. This results in the first aerosol generated by the first atomizing component 31 heating the first aerosol matrix having a greater consumption of the first aerosol matrix per unit time compared to the process of the second atomizing component 32 heating the second aerosol matrix to generate the second aerosol. Consequently, the amount of smoke generated by the first aerosol is also greater than that of the second aerosol.
[0042] In this embodiment, the control circuit component 5 is electrically connected to the first atomizing component 31 and the second atomizing component 32. It is used to control at most one of the first atomizing component 31 and the second atomizing component 32 to enter the working state. This means that the control circuit component 5 can allow one of the first atomizing component 31 and the second atomizing component 32 to work. For example, when the first atomizing component 31 works, it can heat the first aerosol matrix to generate the first aerosol, or when the second atomizing component 32 works, it can heat the second aerosol matrix to generate the second aerosol. The first atomizing component 31 and the second atomizing component 32 will not enter the working state at the same time, which can prevent the first aerosol and the second aerosol from mixing.
[0043] In order to balance the operating time of the first atomizing component 31 and the second atomizing component 32, the volume of the first chamber 11 is greater than the volume of the second chamber 12. This means that the first chamber 11 can store a larger amount of the first aerosol matrix than the second chamber 12 can store a larger amount of the second aerosol matrix, thereby enabling the first atomizing component 31 to be used for a sufficiently long time under the premise of higher heating power.
[0044] In some embodiments, the heating power of the first atomizing component 31 ranges from 10W to 25W, and the heating power of the second atomizing component 32 ranges from 1W to 5W. The heating power of the first atomizing component 31 is significantly increased compared to the second atomizing component 32. Because of the high power of the first atomizing component 31, the amount of first aerosol matrix heated and vaporized per unit time is greater than the amount of second aerosol matrix heated and vaporized per unit time by the second atomizing component 32. Therefore, the smoke generated by the first atomizing component 31 is larger.
[0045] To enable the atomizing device to switch between high smoke volume, low smoke volume, or smokeless mode during use, a control circuit component 5 is provided in this embodiment. This control circuit component 5 is electrically connected to the first atomizing component 31 and the second atomizing component 32, thereby enabling the switching of the operating states of the first atomizing component 31 and the second atomizing component 32. The operating states of the first atomizing component 31 and the second atomizing component 32 include, but are not limited to, on / off and power level adjustment. In some embodiments, the control circuit component 5 is configured to have multiple adjustment levels, with at least two adjustment levels each corresponding to the first atomizing component 31, so that the first atomizing component 31 has at least two heating power levels. In other words, in this embodiment, by controlling the control circuit component 5, in addition to selectively activating one of the first atomizing component 31 and the second atomizing component 32 to heat the first atomizing matrix, the heating power of the first atomizing component 31 and the second atomizing component 32 can be further refined by setting the operating levels of the first atomizing component 31 and the second atomizing component 32. For example, the heating power range of the first atomizing component 31 is 10W-25W. Therefore, the adjustment of the first atomizing component 31 can be 10W-15W in one setting and 15W-25W in another. The specific values can be determined within a reasonable range. For example, one setting can be set to 12W and the other to 20W. Since the first atomizing component 31 has two settings, it can operate at the heating power corresponding to these two settings to heat the first aerosol matrix, so that the generated first aerosol meets the requirements of each setting. The higher the heating power of the first atomizing component 31, the greater the amount of smoke generated by the first aerosol, and vice versa. In addition, the higher the heating power, the more first aerosol matrix is heated per unit time, and therefore the shorter its usage time.
[0046] Similarly, the second atomizing component 32 can also have multiple power levels, with a heating power range of 1W-5W. The operating power levels of the second atomizing component 32 can be configured accordingly, including but not limited to 1.5W, 2W, 4W, etc. To facilitate convenient switching, corresponding trigger buttons or other operating components can be provided on the outside of the housing 1 in this embodiment, improving user convenience.
[0047] In addition, by setting the first chamber 11 and the second chamber 12 in the shell 1, aerosols of different flavors can also be generated. That is, by setting the first aerosol matrix and the second aerosol matrix of different flavors in the first chamber 11 and the second chamber 12, aerosols of different flavors can be generated.
[0048] In some embodiments, the second aerosol matrix stored in the second liquid reservoir 22 is a water-based aerosol matrix, specifically at least one of a VG-free aerosol matrix or a PG water-based aerosol matrix. A VG-free aerosol matrix refers to VG-free e-liquid, the opposite of which is VG e-liquid. VG, also known as vegetable glycerin or glycerol (C3H8O3), is a colorless, clear, transparent, viscous liquid with a sweet, odorless, and warm-sweet taste. National standards refer to it as glycerin. It can absorb moisture from the air and is commonly used in solvents, lubricants, pharmaceuticals, and sweeteners, and is one of the basic raw materials in the food, cosmetics, and pharmaceutical fields. VG is an ethanol-based chemical substance; when heated, VG produces vapor, which can then be inhaled. VG has a certain sweetness and is more viscous than PG. High-VG aerosol matrices have a more mellow taste and are very suitable for producing large amounts of vapor. A VG-free aerosol matrix refers to low-vapor or vapor-free e-liquid.
[0049] PG water-based aerosol base refers to e-liquids with PG and water as the main solvents. PG stands for propylene glycol, which is usually produced by hydrating propylene oxide. Compared to VG, PG is thinner and produces less vapor. PG produces a strong throat hit. In contrast, VG e-liquids are characterized by producing more vapor, being relatively healthier, having fewer allergic reactions, a natural sweetness, and being more soothing to the throat. The disadvantages are that the e-liquid is more viscous, not easy to wick, lacks a throat hit, the sweetness may mask the flavor, and it may cause dry mouth or phlegm. PG water-based e-liquids are characterized by low or no vapor, easy mixing with flavorings, a strong throat hit, and a smooth texture, but the disadvantage is that sweeteners need to be added to enhance the sweetness. In this embodiment, the first aerosol matrix disposed in the first liquid storage device 21 can be a VG aerosol matrix to ensure the production of its smoke; while for the second liquid storage device 22, the second aerosol matrix stored therein can be a VG-free aerosol matrix or a PG water-based aerosol matrix to reduce the generation of its smoke, so as to further distinguish the first aerosol and the second aerosol with at least two different smoke amounts that the atomizing device in this embodiment can produce.
[0050] Because the viscosity of water-based aerosol matrix is relatively low, the retention rate of the second aerosol matrix can be ensured and leakage prevented by increasing the density of the second liquid storage component 22. Specifically, in this embodiment, the density range of the second liquid storage component 22 is 0.065 g / cm³. 3 -0.8g / cm 3 Among them, the density range of some typical second liquid storage components 22 can be 0.1 g / cm³. 3 -0.8g / cm 3 0.2g / cm3 -0.4g / cm 3 0.3g / cm 3 -0.6g / cm 3 And so on. By increasing the density of the second liquid storage component 22, the capacity of the second liquid storage component 22 to store the second aerosol matrix can be increased accordingly, preventing the second aerosol matrix from spontaneously flowing out of the second liquid storage component 22 and causing leakage.
[0051] In some embodiments, the atomizing device has a first chamber 11 and a second chamber 12, and each of the two chambers is provided with a first liquid storage element 21 and a second liquid storage element 22, as well as a corresponding first atomizing component 31 and a second atomizing component 32. For adaptation of the first chamber 11 and the second chamber 12, please refer to... Figure 5 The housing 1 also has a first air intake channel 71 and a second air intake channel 72. The first air intake channel 71 is connected to the first atomizing channel 41, and the second air intake channel 72 is connected to the second atomizing channel 42. The atomizing device also includes an air intake adjustment switch 6, which is disposed in the housing 1 and is used to switch the connection status of the first air intake channel 71 and the second air intake channel 72 with the outside. The first air intake channel 71 and the second air intake channel 72 are respectively connected to the first chamber 11 and the second chamber 12. Therefore, when only the first atomizing component 31 is in working state, the first air intake channel 71 is connected to the outside and the first atomizing channel 41, and the second air intake channel 72 is not connected to the outside. When only the second atomizing component 32 is in working state, the second air intake channel 72 is connected to the outside and the second atomizing channel 42, allowing the second atomizing component 32 to heat the second aerosol matrix. Therefore, in this embodiment, an air intake adjustment switch 6 is provided to control the connection status of the first air intake channel 71 and the second air intake channel 72 with the outside world, corresponding to the working state of the first atomizing component 31 and the second atomizing component 32. Thus, the air intake adjustment switch 6 and the control circuit component 5 can be integrated, or they can form a mechanical or electrical linkage, allowing the first atomizing component 31 and the second atomizing component 32 to operate normally when needed.
[0052] Furthermore, since the first atomizing component 31 and the second atomizing component 32 can have adjustable positions in addition to being on / off, the corresponding air intake adjustment switch 6 can also adjust the air intake volume when the first air intake channel 71 and the second air intake channel 72 are connected to the outside. In some optional embodiments, the air intake adjustment switch 6 has multiple air intake positions, with at least two air intake positions each corresponding to at least two air intake volumes of the first air intake channel 71. Specifically, based on the actual heating power of the first atomizing component 31 / second atomizing component 32, the greater the heating power, the greater the air intake volume of the corresponding first air intake channel 71 / second air intake channel 72, and vice versa.
[0053] The air intake adjustment switch 6 can be a lever movably mounted on the housing 1, with a corresponding air intake hole 61. When the air intake hole 61 is connected to the first air intake channel 71 / second air intake channel 72, it indicates that the corresponding first air intake channel 71 / second air intake channel 72 is connected to the outside, allowing air intake. The corresponding first atomizing component 31 / second atomizing component 32 can then enter the working state, heating the first aerosol matrix / second aerosol matrix to generate the first aerosol / second aerosol. To achieve gear adjustment, air intake holes 61 with different diameters can be provided on the air intake adjustment switch 6. When a small-diameter air intake hole 61 is connected to the corresponding first air intake channel 71 / second air intake channel 72, its air intake volume is small, suitable for low-power heating; when a large-diameter air intake hole 61 is connected to the corresponding first air intake channel 71 / second air intake channel 72, its air intake volume is large, suitable for high-power heating. Of course, the heating power here refers to the first air intake channel 71 and the second air intake channel 72 respectively. Between the first air intake channel 71 and the second air intake channel 72, since the heating power of the first atomizing component 31 is more than twice that of the second atomizing component 32, the air intake volume of the first air intake channel 71 is greater than that of the second air intake channel 72.
[0054] The atomizing device in this embodiment can generate a first aerosol or a second aerosol through a first atomizing component 31 or a second atomizing component 32, and these two components are respectively disposed in a relatively isolated first chamber 11 and second chamber 12. For ease of use, the first atomizing channel 41 and the second atomizing channel 42 extend in parallel along a first direction. The housing 1 also has a nozzle 14, which has a nozzle air passage 15. One end of the nozzle air passage 15 is connected to the first atomizing channel 41 and the second atomizing channel 42, and the other end of the nozzle air passage 15 is connected to the outside. In this embodiment, the first atomizing channel 41 and the second atomizing channel 42 are arranged in parallel, and the aerosols discharged from the first atomizing channel 41 and the second atomizing channel 42 can be discharged outward through the same nozzle air passage 15 at different times. This way, when using the device, the user only needs to use the device based on the same nozzle air passage 15, which improves convenience.
[0055] In some alternative embodiments, please refer to Figure 2 and Figure 3To broaden the application scenarios of the atomizing device, the housing 1 also has at least one third chamber 13, which contains a third atomizing channel 43 and a third atomizing component 33. A third liquid storage component 23 is disposed within the third chamber 13, forming the third atomizing channel 43, and the third atomizing component 33 is disposed within the third atomizing channel 43. Specifically, the first atomizing channel 41 and the second atomizing channel 42 are arranged side-by-side, and at least one third atomizing channel 43 is connected in series with either the first atomizing channel 41 or the second atomizing channel 42; and / or, at least one third atomizing channel 43 is arranged side-by-side with both the first atomizing channel 41 and the second atomizing channel 42. The location of the third chamber 13 can be configured in three different ways depending on its relative relationship with the first atomizing channel 41 and the second atomizing channel 42. Specifically, the third atomizing channels 43 are arranged side by side with the first atomizing channel 41 and the second atomizing channel 42; (2) all the third atomizing channels 43 are arranged in series with the first atomizing channel 41 or the second atomizing channel 42; (3) a portion of the third atomizing channels 43 are arranged side by side with the first atomizing channel 41 and the second atomizing channel 42, and another portion of the third atomizing channels 43 are arranged in series with the first atomizing channel 41 or the second atomizing channel 42. Wherein, the first chamber 11 of the first atomizing channel 41 is a high-smoke chamber, and the second chamber 12 of the second atomizing channel 42 is a smokeless / low-smoke chamber; when the third atomizing channel 43 is connected in series with the first atomizing channel 41, it means that the third chamber 13 of the third atomizing channel 43 is also a high-smoke chamber; when the third atomizing channel 43 is connected in series with the second atomizing channel 42, it means that the third chamber 13 of the third atomizing channel 43 is a smokeless / low-smoke chamber; when the third atomizing channel 43 is arranged side by side with the first atomizing channel 41 and the second atomizing channel 42, the third atomizing channel 43 is independent of the first atomizing channel 41 and the second atomizing channel 42, and the third chamber 13 of the third atomizing channel 43 can be any type of chamber, that is, it can be used as a high-smoke chamber or as a smokeless / low-smoke chamber.
[0056] For example, when the third chamber 13 and the second chamber 12 in this embodiment are arranged in series, the third atomizing channel 43 and the second atomizing channel 42 are interconnected, and the operating states of the corresponding third atomizing component 33 and the second atomizing component 32 can be adjusted independently. That is, the generated aerosol can be adjusted by switching the operating states of the second atomizing component 32 and the third atomizing component 33. To achieve diversification, the third liquid storage component 23 and the second liquid storage component 22 can store different types of aerosol matrices. In this way, the corresponding aerosol can be generated by selecting one of the third atomizing component 33 and the second atomizing component 32 to enter the operating state. In addition, the third atomizing component 33 and the second atomizing component 32 can also work simultaneously to produce mixed aerosols.
[0057] In addition, the same aerosol matrix can be stored in the third liquid storage unit 23 and the second liquid storage unit 22; then, by switching the working state of the third atomizing component 33 and the second atomizing component 32, the heating power can be switched; for example, if the heating power of the third atomizing component 33 is 3W and the heating power of the second atomizing component 32 is 5W, then when both work at the same time, the heating power is equivalent to 8W, thereby meeting the user's need for more aerosol generation.
[0058] In addition, in this embodiment, more chambers can be set up to be connected in series with the first chamber 11 / second chamber 12, or arranged side by side with the first chamber 11 and second chamber 12, such as a fourth chamber, a fifth chamber or more, which can further enrich the application scenarios of the atomizing device.
[0059] For the second atomizing component 32, due to its lower heating power, to prevent incomplete heating of the second aerosol matrix, which could lead to aerosol matrix leakage or oil splatter, please refer to... Figure 6 and Figure 7 The first atomizing component may include a first atomizing tube with a first liquid guiding channel. The second atomizing component includes a second atomizing tube with a second liquid guiding channel, wherein the liquid guiding area of the second liquid guiding channel is smaller than that of the first liquid guiding channel. In some embodiments, the first atomizing component 31 may include a first heating element, a first liquid guiding element, and a first atomizing tube, while the corresponding second atomizing component 32 may specifically include a second heating element 321, a second liquid guiding element 322, and a second atomizing tube 323. The first atomizing tube and the second atomizing tube 323 are each provided with a first liquid guiding channel and a second liquid guiding channel 324 penetrating their own tube walls. Moreover, the aperture of the first liquid guiding channel is larger than the aperture of the second liquid guiding channel 324. Therefore, the flow rate of the second aerosol matrix is limited, thereby avoiding the problem of incomplete heating of the second aerosol matrix under low heating power and preventing leakage of the aerosol matrix.
[0060] In addition, the specification of the liquid guiding component 322 in this embodiment is 45g / m 2 -75g / m 2 The thin sheet has a thickness ranging from 0.2mm to 0.5mm.
[0061] This application provides an atomizing device. Since the housing has a first chamber and a second chamber that are isolated from each other, the viscosity of the first aerosol matrix stored in the first chamber is greater than the viscosity of the second aerosol matrix stored in the second chamber, and the heating power of the first atomizing component in the first chamber is more than twice that of the second atomizing component in the second chamber, by controlling one of the first atomizing component and the second atomizing component to enter the working state, the atomizing device can be conveniently switched between large smoke volume atomization and low smoke volume / no smoke volume, which greatly improves the user experience.
[0062] The above-described specific examples are for illustrative purposes only and are not intended to limit the scope of this invention. Those skilled in the art to which this invention pertains can make various simple deductions, modifications, or substitutions based on the concept of this invention.
Claims
1. An atomizing device, characterized in that, include: The housing has a first chamber and a second chamber inside, and the first chamber and the second chamber are isolated from each other; The first chamber is provided with a first atomizing channel and a first atomizing component. The first chamber is used to store a first aerosol matrix, and the first atomizing component is used to heat the first aerosol matrix to generate a first aerosol, which is then discharged outward through the first atomizing channel. The second chamber is provided with a second atomizing channel and a second atomizing component. The second chamber is used to store the second aerosol matrix. The second atomizing component is used to heat the aerosol matrix to generate the second aerosol, which is then discharged outward through the second atomizing channel. The viscosity of the first aerosol matrix is greater than that of the second aerosol matrix, and the heating power of the first atomizing component is greater than or equal to twice the heating power of the second atomizing component. A control circuit assembly, electrically connected to the first atomizing assembly and the second atomizing assembly, is used to control at most one of the first atomizing assembly and the second atomizing assembly to enter a working state.
2. The atomizing device as described in claim 1, characterized in that, The first chamber is provided with a first liquid storage device, and the second chamber is provided with a second liquid storage device, the density of the second liquid storage device being greater than the density of the first liquid storage device.
3. The atomizing device as described in claim 1, characterized in that, The housing also has at least one third chamber, which has a third atomizing channel and a third atomizing component, the third atomizing component being disposed within the third atomizing channel.
4. The atomizing device as described in claim 3, characterized in that, The first atomizing channel and the second atomizing channel are arranged side by side; at least one of the third atomizing channels is arranged in series with the first atomizing channel or the second atomizing channel; and / or, at least one of the third atomizing channels is arranged side by side with the first atomizing channel and the second atomizing channel.
5. The atomizing device as described in claim 1, characterized in that, The volume of the first chamber is greater than the volume of the second chamber.
6. The atomizing device according to any one of claims 1-5, characterized in that, The second aerosol matrix is a water-based aerosol matrix.
7. The atomizing device according to any one of claims 1-5, characterized in that, The heating power range of the first atomizing component is 10W-25W; the heating power range of the second atomizing component is 1W-5W.
8. The atomizing device according to any one of claims 1-5, characterized in that, The control circuit assembly is configured to have multiple adjustment levels, with at least two of the adjustment levels each corresponding to the first atomizing component, so that the first atomizing component has at least two heating powers.
9. The atomizing device according to any one of claims 1-5, characterized in that, The first atomizing component includes a first atomizing tube with a first liquid guiding channel. The second atomizing component includes a second atomizing tube with a second liquid guiding channel. The liquid guiding area of the second liquid guiding channel is smaller than that of the first liquid guiding channel.
10. The atomizing device as described in claim 2, characterized in that, The density range of the second liquid storage element is 0.065 g / cm³. 3 -0.8g / cm 3 .