Electronic atomizing device

By designing first and second atomizing components and adjustment components in an electronic atomizing device, the aerosol flavor can be diversified, solving the problem of monotonous flavor in electronic atomizing devices and improving the user experience.

CN224572263UActive Publication Date: 2026-07-31SHENZHEN VAPEEZ TECH LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN VAPEEZ TECH LTD
Filing Date
2025-06-18
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Electronic atomizing devices offer a limited range of flavors, failing to meet the diverse taste preferences of users.

Method used

Design an electronic atomizing device comprising first and second atomizing components and an adjustment component. The movement of the adjustment component enables the cutting off and opening of the first and second atomizing airways and the suction channel, allowing the aerosol to flow out in mixture or separately to adjust the flavor of the aerosol.

Benefits of technology

It enables a variety of aerosol flavors, allowing users to adjust the flavor according to their needs, thus enriching the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to the field of atomizer technology, and more particularly to an electronic atomizing device, including a first atomizing component, a second atomizing component, and an adjustment component. The first atomizing component includes a first liquid reservoir and a first atomizing core. The first liquid reservoir has a first liquid storage chamber and a first atomizing air passage penetrating the first liquid storage chamber, the first atomizing air passage communicating with a suction channel. The first atomizing core is housed in the first atomizing air passage and communicates with the first liquid storage chamber. The second atomizing component includes a second liquid reservoir and a second atomizing core. The second liquid reservoir has a second liquid storage chamber and a second atomizing air passage penetrating the second liquid storage chamber, the second atomizing air passage communicating with a suction channel. The second atomizing core is housed in the second atomizing air passage and communicates with the second liquid storage chamber. The adjustment component is movable relative to the second atomizing component to achieve the cutting off and opening of the second atomizing air passage and the suction channel. This addresses the technical problem of the relatively limited flavor range in electronic atomizing devices.
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Description

Technical Field

[0001] This application relates to the field of atomizer technology, and more particularly to an electronic atomizing device. Background Technology

[0002] An electronic atomizing device is a product that atomizes an aerosol generating base liquid into an aerosol. When the electronic atomizing device is inhaled, the aerosol flows out of the electronic atomizing device along with the airflow generated by the user's inhalation.

[0003] Among related technologies, electronic atomization devices offer relatively limited flavor options. Utility Model Content

[0004] The purpose of this application is to provide an electronic atomizing device that addresses the technical problem of limited flavor options in electronic atomizing devices.

[0005] To achieve the above objectives, the technical solution adopted in this application embodiment is: an electronic atomizing device, including a first atomizing component, a second atomizing component, and an adjustment component.

[0006] The first atomizing component includes a first liquid reservoir and a first atomizing core. The first liquid reservoir has a first liquid storage chamber and a first atomizing air passage penetrating the first liquid storage chamber. The first atomizing air passage is connected to the suction channel. The first atomizing core is housed in the first atomizing air passage and is connected to the first liquid storage chamber. The second atomizing component includes a second liquid reservoir and a second atomizing core. The second liquid reservoir has a second liquid storage chamber and a second atomizing air passage penetrating the second liquid storage chamber. The second atomizing air passage is connected to the suction channel. The second atomizing core is housed in the second atomizing air passage and is connected to the second liquid storage chamber. The adjusting component is movably connected to at least one of the first atomizing component and the second atomizing component. The adjusting component is movable relative to the second atomizing component to achieve the disconnection and connection between the second atomizing air passage and the suction channel.

[0007] The beneficial effects of the electronic atomizing device provided in this application are as follows: Since the first liquid storage component has a first liquid storage chamber and a first atomizing air channel penetrating the first liquid storage chamber, and the first atomizing core is housed in the first atomizing air channel and communicates with the first liquid storage chamber, the first atomizing core can atomize the first atomizing matrix in the first liquid storage chamber and generate a first aerosol in the first atomizing air channel. Since the second liquid storage component has a second liquid storage chamber and a second atomizing air channel penetrating the second liquid storage chamber, and the second atomizing core is housed in the second atomizing air channel and communicates with the second liquid storage chamber, the second atomizing core can atomize the second atomizing matrix in the second liquid storage chamber and generate a second aerosol in the second atomizing air channel. Since both the first and second atomizing airways are connected to the suction channel, and the adjustment component can move relative to the second atomizing component to achieve the cutting off and opening of the second atomizing airway and the suction channel; therefore, when the second atomizing airway is connected to the suction channel, the first aerosol in the first atomizing airway and the second aerosol in the second atomizing airway can gather and mix in the suction channel; when the second atomizing airway is cut off from the suction channel, only the first aerosol in the first atomizing airway flows into the suction channel; thus, the aerosol flowing out of the electronic atomizing device can have two flavors, and users can move the adjustment component to adjust the flavor of the aerosol flowing out of the electronic atomizing device according to their needs, thereby solving the technical problem of the relatively single flavor of electronic atomizing devices.

[0008] In some embodiments, the adjusting component has a connecting airway, one end of which can be connected to the suction channel, and the other end of which is away from the suction channel can be connected to the second atomizing airway; the adjusting component can move relative to the second atomizing component and drive the connecting airway to translate or deflect, so as to realize the cut-off and connection between the second atomizing airway and the suction channel.

[0009] In some embodiments, the adjustment component includes:

[0010] The air regulating component is provided with the aforementioned connecting air passage; and

[0011] The driving component is connected to the air regulating component;

[0012] The air regulating component can be translated or deflected under the drive of the driving component, thereby causing the connecting air passage to be translated or deflected.

[0013] In some embodiments, the adjustment component further includes:

[0014] A receiving cylinder, in which the gas regulating component is housed, and the receiving cylinder has a through hole, through which the driving component passes and connects with the gas regulating component;

[0015] The first liquid storage component and the second liquid storage component are arranged side by side, the receiving cylinder and the second liquid storage component are stacked along the extension direction of the second atomizing air channel, and the second atomizing air channel is connected to the receiving cylinder.

[0016] In some embodiments, the receiving cylinder is provided with a slide groove, and the air regulating member slides in the slide groove to drive the connecting air passage to translate; the connecting air passage is configured to connect the second atomizing air passage and the suction passage when the air regulating member is in the first position of the slide groove, and the connecting air passage is also configured to disconnect the second atomizing air passage and the suction passage when the air regulating member is in the second position of the slide groove.

[0017] In some embodiments, the adjustment component further includes:

[0018] An elastic element, which is connected to both the driving element and the receiving cylinder;

[0019] The driving member can overcome the elastic force of the elastic member to drive the air regulating member to move, so that the air regulating member is located in the first position of the slide groove.

[0020] In some embodiments, the receiving cylinder is rotatably connected to the gas regulating component, which rotates within the receiving cylinder to deflect the connecting air passage; the connecting air passage is configured to connect the second atomizing air passage and the suction passage when the driving component is in the third position of the receiving cylinder, and the connecting air passage is further configured to disconnect the second atomizing air passage and the suction passage when the driving component is in the fourth position of the receiving cylinder.

[0021] In some embodiments, the adjusting assembly further includes a sealing member housed in the receiving cylinder, the sealing member having a connecting hole communicating with the second atomizing air passage, the adjusting member abutting against the sealing member, the adjusting member being movable relative to the sealing member so that the adjusting member covers the connecting hole away from the opening of the second atomizing air passage, and the adjusting member being movable relative to the sealing member so that the connecting air passage communicates with the connecting hole.

[0022] In some embodiments, the adjustment component includes a trigger that is configured to generate a first feedback signal when the second atomizing airway is connected to the suction channel;

[0023] The electronic atomizing device further includes a control component electrically connected to the trigger element, the control component being used to receive the first feedback signal, and the control component being configured to activate the second atomizing core after receiving the first feedback signal.

[0024] In some embodiments, the electronic atomizing device further includes a microphone electrically connected to the control component, the microphone being configured to generate a second feedback signal when the air pressure in the first atomizing airway reaches a response threshold of the microphone;

[0025] The control component is configured to receive the second feedback signal and to activate the first atomizing core after receiving the first feedback signal; the control component is also configured to activate the second atomizing core after receiving both the first feedback signal and the second feedback signal. Attached Figure Description

[0026] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0027] Figure 1 This is a schematic diagram of the structure of an electronic atomizing device in one embodiment of this application;

[0028] Figure 2 yes Figure 1 The electronic atomizing device shown is a cross-sectional view along the AA direction;

[0029] Figure 3 yes Figure 1 A schematic diagram of another state of the electronic atomizing device shown;

[0030] Figure 4 yes Figure 3 A cross-sectional view of the electronic atomizing device shown along the BB direction;

[0031] Figure 5 yes Figure 4 A schematic diagram of the structure of the first atomizing component, the second atomizing component, and the adjustment component in the electronic atomizing device shown;

[0032] Figure 6 yes Figure 5 The exploded structural diagram of the first atomizing component, the second atomizing component, and the adjustment component is shown.

[0033] Figure label:

[0034] 1. First atomizing component; 11. First liquid storage component; 111. First liquid storage chamber; 112. First atomizing air passage; 12. First atomizing core;

[0035] 2. Second atomizing component; 21. Second liquid storage component; 211. Second liquid storage chamber; 212. Second atomizing air passage; 22. Second atomizing core;

[0036] 3. Adjustment component; 31. Air regulating component; 311. Connecting air passage; 312. Connecting rod; 32. Driving component; 321. Connecting groove; 33. Receiving cylinder; 331. Through hole; 332. Slide groove; 34. Elastic component; 35. Sealing component; 351. Connecting hole; 36. Triggering component;

[0037] 4. Control components;

[0038] 5. Microphone. Detailed Implementation

[0039] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0040] It should be noted that when a component is referred to as being "fixed to" or "set on" another component, it can be directly on or indirectly on that other component. When a component is referred to as being "connected to" another component, it can be directly connected to or indirectly connected to that other component.

[0041] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.

[0042] In this specification, references to "one embodiment," "some embodiments," or simply "embodiment" mean that one or more embodiments of this application include a specific feature, structure, or characteristic described in connection with that embodiment. Therefore, the phrases "in one embodiment," "in some embodiments," "in other embodiments," "in still other embodiments," etc., appearing in different parts of this specification do not necessarily refer to the same embodiment, but rather mean "one or more, but not all, embodiments," unless otherwise specifically emphasized. Furthermore, in one or more embodiments, specific features, structures, or characteristics may be combined in any suitable manner.

[0043] An electronic atomizing device is a product that atomizes an aerosol generating base liquid into an aerosol. When the electronic atomizing device is inhaled, the aerosol flows out of the electronic atomizing device along with the airflow generated by the user's inhalation.

[0044] Among related technologies, electronic atomization devices offer relatively limited flavor options.

[0045] In view of the above problems, this application provides an electronic atomizing device to solve the technical problem that the flavor of electronic atomizing devices is relatively monotonous.

[0046] To illustrate the technical solution of this application, the following description is provided in conjunction with specific accompanying drawings and embodiments.

[0047] Please refer to Figures 1 to 6 This application provides an electronic atomizing device with a suction channel. The electronic atomizing device includes a first atomizing component 1, a second atomizing component 2, and an adjustment component 3.

[0048] The first atomizing component 1 includes a first liquid storage element 11 and a first atomizing core 12. The first liquid storage element 11 has a first liquid storage cavity 111 and a first atomizing air passage 112 penetrating the first liquid storage cavity 111. The first atomizing air passage 112 is connected to the suction channel. The first atomizing core 12 is housed in the first atomizing air passage 112 and is connected to the first liquid storage cavity 111. The second atomizing component 2 includes a second liquid storage element 21 and a second atomizing core 22. The second liquid storage element 21 has a second liquid storage cavity 211 and a second atomizing air passage 212 penetrating the second liquid storage cavity 211. The second atomizing air passage 212 is connected to the suction channel. The second atomizing core 22 is housed in the second atomizing air passage 212 and is connected to the second liquid storage cavity 211. An adjusting component 3 is movably connected to at least one of the first atomizing component 1 and the second atomizing component 2. The adjusting component 3 can move relative to the second atomizing component 2 to achieve disconnection and connection between the second atomizing air passage 212 and the suction channel.

[0049] It should be noted that the first liquid storage chamber 111 is used to store the first atomizing matrix, and the first atomizing core 12 is housed in the first atomizing air passage 112 and communicates with the first liquid storage chamber 111. The first atomizing matrix in the first liquid storage chamber 111 enters the first atomizing core 12, and the first atomizing core 12 is used to atomize the first atomizing matrix entering the first atomizing core 12 to generate a first aerosol in the first atomizing air passage 112. The second liquid storage chamber 211 is used to store the second atomizing matrix, and the second atomizing core 22 is housed in the second atomizing air passage 212 and communicates with the second liquid storage chamber 211. The second atomizing matrix in the second liquid storage chamber 211 enters the second atomizing core 22, and the second atomizing core 22 is used to atomize the second atomizing matrix entering the second atomizing core 22 to generate a second aerosol in the second atomizing air passage 212. When the second atomizing airway 212 is connected to the suction channel and the electronic atomizing device is being drawn in, the airflow direction is: first atomizing airway 112 → suction channel, and second atomizing airway 212 → suction channel. This allows the first aerosol in the first atomizing airway 112 and the second aerosol in the second atomizing airway 212 to converge and mix within the suction channel. When the second atomizing airway 212 is disconnected from the suction channel and the electronic atomizing device is being drawn in, the airflow direction is: first atomizing airway 112 → suction channel, and only the first aerosol in the first atomizing airway 112 flows into the suction channel.

[0050] Therefore, in the electronic atomizing device provided in this application, since the first liquid storage component 11 is provided with a first liquid storage chamber 111 and a first atomizing air channel 112 penetrating the first liquid storage chamber 111, and the first atomizing core 12 is housed in the first atomizing air channel 112 and communicates with the first liquid storage chamber 111, the first atomizing core 12 can atomize the first atomizing matrix in the first liquid storage chamber 111 and generate a first aerosol in the first atomizing air channel 112. Since the second liquid storage component 21 is provided with a second liquid storage chamber 211 and a second atomizing air channel 212 penetrating the second liquid storage chamber 211, and the second atomizing core 22 is housed in the second atomizing air channel 212 and communicates with the second liquid storage chamber 211, the second atomizing core 22 can atomize the second atomizing matrix in the second liquid storage chamber 211 and generate a second aerosol in the second atomizing air channel 212. Since both the first atomizing airway 112 and the second atomizing airway 212 are connected to the suction channel, and the adjusting component 3 can move relative to the second atomizing component 2 to achieve the cutting off and opening of the second atomizing airway 212 and the suction channel; therefore, when the second atomizing airway 212 is connected to the suction channel, the first aerosol in the first atomizing airway 112 and the second aerosol in the second atomizing airway 212 can gather and mix in the suction channel; when the second atomizing airway 212 is cut off from the suction channel, only the first aerosol in the first atomizing airway 112 flows into the suction channel; thus, the aerosol flowing out of the electronic atomizing device can have two flavors, and the user can move the adjusting component 3 to adjust the flavor of the aerosol flowing out of the electronic atomizing device according to their needs, so as to solve the technical problem of the relatively single flavor of the electronic atomizing device.

[0051] Optionally, the first atomizing matrix and the second atomizing matrix may have the same composition. For example, both the first atomizing matrix and the second atomizing matrix may be e-liquid. The first aerosol generated after the first atomizing matrix is ​​atomized by the first atomizing core 12 and the second aerosol generated after the second atomizing matrix is ​​atomized by the second atomizing core 22 have the same composition and flavor. The mixture of the first aerosol and the second aerosol can satisfy users with a stronger taste.

[0052] Optionally, the first atomizing matrix and the second atomizing matrix may have different compositions. For example, the first atomizing matrix and the second atomizing matrix may be e-liquids with different compositions, or the first atomizing matrix may be e-liquid, and the second atomizing matrix may be at least one of menthol, distilled water, deionized water, electrolyte solution, or glycerol derivatives (propylene glycol, vegetable glycerol, monoglyceride, diglyceride, polyglycerol ester, acetylated glycerol ester, etc.). The first aerosol generated after the first atomizing matrix is ​​atomized by the first atomizing core 12 and the second aerosol generated after the second atomizing matrix is ​​atomized by the second atomizing core 22 have different compositions and flavors. The mixing of the first aerosol and the second aerosol with different flavors can enrich the flavor of the electronic atomization device.

[0053] It should be noted that the first atomizing core 12 is used to atomize the first atomizing substrate entering the first atomizing core 12 to generate the first aerosol within the first atomizing airway 112. This means that the first atomizing core 12 can heat the first atomizing substrate entering the first atomizing core 12, raising the temperature of the first atomizing substrate to its atomization temperature, thereby converting the first atomizing substrate into an inhalable first aerosol. Alternatively, the first atomizing core 12 can convert the first atomizing substrate into fine droplets through physical or mechanical means, that is, convert the first atomizing substrate into the first aerosol. The first atomizing core 12 can atomize the first atomizing substrate through atomization methods such as ultrasonic atomization or micro-mesh atomization.

[0054] It should be noted that the second atomizing core 22 is used to atomize the second atomizing substrate entering the second atomizing core 22 to generate a second aerosol within the second atomizing airway 212. This means that the second atomizing core 22 can heat the second atomizing substrate entering the second atomizing core 22, raising the temperature of the second atomizing substrate to its atomization temperature, thereby converting the second atomizing substrate into a second aerosol that can be inhaled. Alternatively, the second atomizing core 22 can convert the second atomizing substrate into fine droplets through physical or mechanical means, that is, convert the second atomizing substrate into a second aerosol. The second atomizing core 22 can atomize the second atomizing substrate through atomization methods such as ultrasonic atomization or micro-mesh atomization.

[0055] Please refer to Figure 2 , Figure 4 and Figure 5 In some embodiments, the adjusting component 3 is provided with a connecting airway 311. One end of the connecting airway 311 can be connected to the suction channel, and the end of the connecting airway 311 away from the suction channel can be connected to the second atomizing airway 212. The adjusting component 3 can move relative to the second atomizing component 2 and drive the connecting airway 311 to translate or deflect, so as to realize the cut-off and connection between the second atomizing airway 212 and the suction channel.

[0056] In the above embodiment, when the adjusting component 3 moves relative to the second atomizing component 2, the connecting airway 311 is translated or deflected, so that one end of the connecting airway 311 is connected to the suction channel, and the end of the connecting airway 311 away from the suction channel is connected to the second atomizing airway 212, so that the second atomizing airway 212 and the suction channel are connected through the connecting airway 311; when the electronic atomizing device is suctioned, the airflow direction is: first atomizing airway 112 → suction channel, and second atomizing airway 212 → connecting airway 311 → suction channel, and the first aerosol in the first atomizing channel and the second aerosol in the second atomizing channel can flow into the suction channel. When the adjusting component 3 moves relative to the second atomizing component 2, the connecting airway 311 is translated or deflected, so that one end of the connecting airway 311 is misaligned with the suction channel, and / or, the end of the connecting airway 311 away from the suction channel is misaligned with the second atomizing airway 212, so that the second atomizing airway 212 is cut off from the suction channel; when the electronic atomizing device is suctioned, the airflow direction is: first atomizing airway 112 → suction channel, and only the first aerosol in the first atomizing airway 112 flows into the suction channel.

[0057] Please refer to Figure 5 In some embodiments, the regulating component 3 includes an air regulating element 31 and a driving element 32. The air regulating element 31 is provided with a connecting air passage 311. The driving element 32 is connected to the air regulating element 31. The air regulating element 31 can be translated or deflected under the drive of the driving element 32, so as to drive the connecting air passage 311 to translate or deflect.

[0058] In the above embodiment, the drive unit 32 can be held by the user so that the user can operate the drive unit 32 to move the air regulating unit 31.

[0059] Please refer to Figure 6 In some embodiments, the air regulating component 31 is provided with a connecting rod 312, and the driving component 32 is provided with a connecting groove 321. The connecting rod 312 is received in the connecting groove 321, so that the driving component 32 is connected to the air regulating component 31.

[0060] Please refer to Figure 5 In some embodiments, the regulating component 3 further includes a receiving cylinder 33, in which the air regulating component 31 is housed. The receiving cylinder 33 has a through hole 331, through which the driving component 32 passes and connects with the air regulating component 31. The first liquid storage component 11 and the second liquid storage component 21 are arranged side-by-side, and the receiving cylinder 33 and the second liquid storage component 21 are stacked along the extension direction of the second atomizing air passage 212 (parallel to the Z direction in the figure), and the second atomizing air passage 212 communicates with the receiving cylinder 33.

[0061] In the above embodiment, the position of the air regulating component 31 can be defined inside the receiving cylinder 33, and the receiving cylinder 33 can limit the movement path of the air regulating component 31 when it moves, so as to prevent the air regulating component 31 from being misaligned due to external force or misoperation when it reciprocates.

[0062] In the above embodiment, the drive member 32 passes through the through hole 331 and connects with the air regulating member 31, so that the drive member 32 protrudes from the receiving tube 33, so that the user can hold the drive member 32.

[0063] In the above embodiment, the first liquid storage component 11 and the second liquid storage component 21 are arranged side by side, and the receiving cylinder 33 and the second liquid storage component 21 are stacked along the extension direction of the second atomizing air channel 212, so that the layout of the first liquid storage component 11 and the second liquid storage component 21 is more reasonable, thereby reducing the volume of the electronic atomizing device.

[0064] Please refer to Figure 5 In some embodiments, the receiving cylinder 33 is provided with a slide groove 332, and the air regulating member 31 slides in the slide groove 332 to drive the connecting air passage 311 to translate; the connecting air passage 311 is configured to connect the second atomizing air passage 212 and the suction passage when the air regulating member 31 is in the first position of the slide groove 332, and the connecting air passage 311 is also configured to cut off the second atomizing air passage 212 and the suction passage when the air regulating member 31 is in the second position of the slide groove 332.

[0065] In the above embodiment, the second atomizing airway 212 and the suction channel are distributed at intervals along the extending direction of the second atomizing airway 212. The connecting airway 311 is located between the second atomizing airway 212 and the suction channel, and its two ends are distributed along the extending direction of the second atomizing airway 212. The direction in which the air regulating component 31 slides along the slide groove 332 (parallel to the X direction in the figure) is perpendicular to the extending direction of the second atomizing airway 212, and the first position and the second position are distributed at intervals along the sliding direction of the air regulating component 31. When the air regulating component 31 is located at the first position of the slide groove 332, one end of the connecting airway 311 is connected to the suction channel, and the end of the connecting airway 311 away from the suction channel is connected to the second atomizing airway 212, so that the second atomizing airway 212 and the suction channel are connected through the connecting airway 311. When the air regulating component 31 is in the second position of the slide groove 332, one end of the connecting air passage 311 is misaligned with the suction channel, and / or the end of the connecting air passage 311 away from the suction channel is misaligned with the second atomizing air passage 212, so that the second atomizing air passage 212 and the suction channel are disconnected.

[0066] Please refer to Figure 5In some embodiments, the axial direction of the connecting airway 311 is parallel to the extending direction of the second atomizing airway 212. When the adjusting air component 31 is in the first position of the slide groove 332, the central axis of the connecting airway 311 coincides with the central axis of the second atomizing airway 212, so that the second atomizing channel and the suction channel are connected through the connecting airway 311. When the adjusting air component 31 is in the second position of the slide groove 332, the central axis of the connecting airway 311 is misaligned with the central axis of the second atomizing airway 212, so that the second atomizing airway 212 and the suction channel are disconnected.

[0067] Please refer to Figure 5 In some embodiments, the adjusting assembly 3 further includes an elastic element 34. The elastic element 34 is connected to the driving element 32 and the receiving cylinder 33, respectively. The driving element 32 can overcome the elastic force of the elastic element 34 to drive the air regulating element 31 to move, so that the air regulating element 31 is located in the first position of the slide groove 332.

[0068] In the above embodiment, under the action of external force, the driving member 32 overcomes the elastic force of the elastic member 34 and drives the air regulating member 31 to move, so that the air regulating member 31 moves relative to the second atomizing air channel 212, thereby realizing the connection between the second atomizing air channel 212 and the suction channel. After the external force is removed, the elastic member 34 returns to its original state and drives the driving member 32 to move, so that the driving member 32 drives the air regulating member 31 to move, thereby realizing the disconnection between the second atomizing air channel 212 and the suction channel.

[0069] By setting up the elastic element 34 and utilizing its reset function, the number of operation steps required by the user can be reduced, thereby saving the user's time and effort. Furthermore, the reset function of the elastic element 34 can ensure that the drive element 32 always remains in the correct position, preventing the drive element 32 from becoming misaligned due to external force or misoperation.

[0070] Please refer to Figure 2 and Figure 4 In one embodiment, in the initial state, the elastic member 34 is in its natural state, the air regulating member 31 is located in the second position of the slide groove 332, and the driving member 32 protrudes from the receiving cylinder 33 through the through hole 331. The central axis of the connecting air passage 311 is staggered with the central axis of the second atomizing air passage 212, and the second atomizing air passage 212 and the suction channel are disconnected. Under the action of external force, the driving member 32 squeezes the elastic member 34, causing the air regulating member 31 to slide to the first position of the slide groove 332, so that the central axis of the connecting air passage 311 coincides with the central axis of the second atomizing air passage 212, and the second atomizing air passage 212 and the suction channel are connected. After the external force is removed, the elastic member 34 returns to its natural state and drives the driving member 32 and the air regulating member 31 to slide along the slide groove 332 to the second position of the slide groove 332.

[0071] By setting up the elastic element 34 and utilizing its reset function, the number of operation steps required by the user can be reduced, thereby saving the user's time and effort. Furthermore, the reset function of the elastic element 34 can ensure that the drive element 32 always remains in the correct position, preventing the drive element 32 from becoming misaligned due to external force or misoperation.

[0072] In other embodiments, the receiving cylinder 33 is rotatably connected to the air regulating member 31, which rotates within the receiving cylinder 33 to deflect the connecting air passage 311. The connecting air passage 311 is configured to connect the second atomizing air passage 212 and the suction passage when the driving member 32 is in the third position of the receiving cylinder 33, and is further configured to disconnect the second atomizing air passage 212 and the suction passage when the driving member 32 is in the fourth position of the receiving cylinder 33.

[0073] In the above embodiment, the second atomizing airway 212 and the suction channel are distributed at intervals along the extension direction of the second atomizing airway 212. The connecting airway 311 is located between the second atomizing airway 212 and the suction channel, and its two ends are distributed along the extension direction of the second atomizing airway 212. The rotation axis of the air regulating component 31 is parallel to the extension direction of the second atomizing airway 212, and the rotation axis of the air regulating component 31 is offset from the extension direction of the second atomizing airway 212. The third and fourth positions are distributed at intervals around the rotation axis of the air regulating component 31. When the air regulating component 31 rotates to the third position of the receiving cylinder 33, one end of the connecting airway 311 is connected to the suction channel, and the end of the connecting airway 311 away from the suction channel is connected to the second atomizing airway 212, so that the second atomizing airway 212 and the suction channel are connected through the connecting airway 311. When the air regulating component 31 is rotated to the fourth position of the receiving cylinder 33, one end of the connecting air passage 311 is misaligned with the suction channel, and / or the end of the connecting air passage 311 away from the suction channel is misaligned with the second atomizing air passage 212, thereby cutting off the connection between the second atomizing air passage 212 and the suction channel.

[0074] In some embodiments, the axial direction of the connecting airway 311 is parallel to the extending direction of the second atomizing airway 212. When the adjusting air component 31 is in the third position of the receiving cylinder 33, the central axis of the connecting airway 311 coincides with the central axis of the second atomizing airway 212, so that the second atomizing channel and the suction channel are connected through the connecting airway 311. When the adjusting air component 31 is in the second position of the receiving cylinder 33, the central axis of the connecting airway 311 is misaligned with the central axis of the second atomizing airway 212, so that the second atomizing airway 212 and the suction channel are disconnected.

[0075] Please refer to Figure 5In some embodiments, the adjusting component 3 further includes a sealing member 35 housed in the receiving cylinder 33. The sealing member 35 has a connecting hole 351 that connects to the second atomizing air passage 212. The air adjusting member 31 abuts against the sealing member 35. The air adjusting member 31 can move relative to the sealing member 35 so that the air adjusting member 31 covers the connecting hole 351 away from the opening of the second atomizing air passage 212. The air adjusting member 31 can also move relative to the sealing member 35 so that the connecting air passage 311 connects to the connecting hole 351.

[0076] In the above embodiment, the gas regulating member 31 abuts against the sealing member 35, such that the sealing member 35 abuts against the end face around the opening of the second atomizing air passage 212 connecting the receiving cylinder 33, so as to seal the gap between the second liquid storage member 21 and the gas regulating member 31, which can improve the sealing performance between the gas regulating member 31 and the second liquid storage member 21, and prevent airflow from flowing out from the gap between the second liquid storage member 21 and the gas regulating member 31.

[0077] Please refer to Figure 5 and Figure 6 In some embodiments, the adjustment component 3 includes a trigger 36, which is configured to generate a first feedback signal when the second atomizing airway 212 is connected to the suction channel. The electronic atomizing device also includes a control component 4 electrically connected to the trigger 36, the control component 4 being used to receive the first feedback signal and configured to activate the second atomizing core 22 after receiving the first feedback signal.

[0078] In the above embodiment, when the second atomizing channel 212 is connected to the suction channel, the trigger 36 generates a first feedback signal. The control component 4 receives the first feedback signal and activates the second atomizing core 22, causing the second atomizing core 22 to atomize the second atomizing matrix in the second liquid storage chamber 211 to generate a second aerosol in the second atomizing channel 212. When the second atomizing channel 212 is disconnected from the suction channel, the trigger 36 will not generate the first feedback signal. Therefore, the control component 4 will not activate the second atomizing core 22 to avoid the second atomizing core 22 burning dry, thereby preventing damage to the second atomizing core 22.

[0079] Please refer to Figure 5 In the above embodiment, the trigger 36 is connected to the air regulating component 31. The air regulating component 31 is slidably disposed in the receiving cylinder 33. When the air regulating component 31 slides to the first position of the slide groove 332, the connecting air passage 311 on the air regulating component 31 is connected to the second atomizing air passage 212 and the suction passage respectively. The trigger 36 is clamped between the air regulating component 31 and the inner wall of the receiving cylinder 33, and the trigger 36 abuts against the inner wall of the receiving cylinder 33. The trigger 36 is triggered and generates a first feedback signal.

[0080] In some embodiments, the electronic atomizing device further includes a microphone 5 electrically connected to the control component 4, the microphone 5 being configured to generate a second feedback signal when the air pressure within the first atomizing airway 112 reaches a response threshold of the microphone 5. The control component 4 is used to receive the second feedback signal and is configured to activate the first atomizing coil 12 after receiving the first feedback signal. The control component 4 is also configured to activate the second atomizing coil 22 after receiving both the first and second feedback signals.

[0081] In the above embodiment, when the electronic atomizing device is drawn in, the air pressure in the first atomizing channel 112 reaches the response threshold of the microphone 5 and generates a second feedback signal. The control component 4 receives the second feedback signal and activates the first atomizing core 12, causing the first atomizing core 12 to atomize the first atomizing matrix in the first liquid storage chamber 111 to generate a first aerosol in the first atomizing channel 112. When the driving component 32 moves the air regulating component 31 to the point where the second atomizing channel 212 is connected to the suction channel, the trigger component 36 generates a first feedback signal. The control component 4 receives the first feedback signal and activates the second atomizing core 22, causing the second atomizing core 22 to atomize the second atomizing matrix in the second liquid storage chamber 211 to generate a second aerosol in the second atomizing channel 212. The first aerosol and the second aerosol mix in the suction channel and then flow out of the electronic atomizing device.

[0082] The above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be included within the protection scope of this application.

Claims

1. An electronic atomizing device provided with a suction passage, characterized in that, include: The first atomizing component includes a first liquid storage element and a first atomizing core. The first liquid storage element has a first liquid storage cavity and a first atomizing air passage that passes through the first liquid storage cavity. The first atomizing air passage is connected to the suction channel. The first atomizing core is housed in the first atomizing air passage and is connected to the first liquid storage cavity. The second atomizing component includes a second liquid storage element and a second atomizing core. The second liquid storage element has a second liquid storage chamber and a second atomizing air passage that passes through the second liquid storage chamber. The second atomizing air passage is connected to the suction channel. The second atomizing core is housed in the second atomizing air passage and is connected to the second liquid storage chamber. and An adjustment component is movably connected to at least one of the first atomizing component and the second atomizing component. The adjustment component is movable relative to the second atomizing component to achieve the disconnection and connection between the second atomizing airway and the suction channel.

2. The electronic atomizing device of claim 1, wherein, The adjusting component has a connecting airway, one end of which can be connected to the suction channel, and the other end of which is away from the suction channel can be connected to the second atomizing airway. The adjusting component can move relative to the second atomizing component and drive the connecting airway to translate or deflect, so as to cut off and connect the second atomizing airway and the suction channel.

3. The electronic atomizing device of claim 2, wherein, The adjustment component includes: The air regulating component is provided with the aforementioned connecting air passage; and The driving component is connected to the air regulating component; The air regulating component can be translated or deflected under the drive of the driving component, thereby causing the connecting air passage to be translated or deflected.

4. The electronic atomizing device of claim 3, wherein, The adjustment component further includes: A receiving cylinder, in which the gas regulating component is housed, and the receiving cylinder has a through hole, through which the driving component passes and connects with the gas regulating component; The first liquid storage component and the second liquid storage component are arranged side by side, the receiving cylinder and the second liquid storage component are stacked along the extension direction of the second atomizing air channel, and the second atomizing air channel is connected to the receiving cylinder.

5. The electronic atomizing device of claim 4, wherein, The receiving cylinder is provided with a sliding groove, and the air regulating component slides in the sliding groove to drive the connecting air passage to move horizontally; the connecting air passage is configured to connect the second atomizing air passage and the suction passage when the air regulating component is in the first position of the sliding groove, and the connecting air passage is also configured to disconnect the second atomizing air passage and the suction passage when the air regulating component is in the second position of the sliding groove.

6. The electronic atomizing device of claim 5, wherein, The adjustment component further includes: An elastic element, which is connected to both the driving element and the receiving cylinder; The driving member can overcome the elastic force of the elastic member to drive the air regulating member to move, so that the air regulating member is located in the first position of the slide groove.

7. The electronic atomizing device of claim 4, wherein, The receiving cylinder is rotatably connected to the gas regulating component, which rotates within the receiving cylinder to deflect the connecting air passage. The connecting air passage is configured to connect the second atomizing air passage and the suction passage when the driving component is in the third position of the receiving cylinder. The connecting air passage is also configured to disconnect the second atomizing air passage and the suction passage when the driving component is in the fourth position of the receiving cylinder.

8. The electronic atomizing device according to any one of claims 4 to 7, characterized in that, The adjustment assembly further includes a sealing member housed in the receiving cylinder. The sealing member has a connecting hole that connects to the second atomizing air passage. The air regulating member abuts against the sealing member. The air regulating member can move relative to the sealing member so that it covers the connecting hole away from the opening of the second atomizing air passage. The air regulating member can also move relative to the sealing member so that the connecting air passage connects to the connecting hole.

9. The electronic atomizing device according to any one of claims 1 to 7, characterized in that, The adjustment component includes a trigger, which is configured to generate a first feedback signal when the second atomizing airway is connected to the suction channel; The electronic atomizing device further includes a control component electrically connected to the trigger element, the control component being used to receive the first feedback signal, and the control component being configured to activate the second atomizing core after receiving the first feedback signal.

10. The electronic atomizing device of claim 9, wherein, The electronic atomizing device further includes a microphone electrically connected to the control component, the microphone being configured to generate a second feedback signal when the air pressure in the first atomizing airway reaches the microphone's response threshold; The control component is configured to receive the second feedback signal and to activate the first atomizing core after receiving the first feedback signal; the control component is also configured to activate the second atomizing core after receiving both the first feedback signal and the second feedback signal.