Liquid storage assembly, atomizer and atomization device

By integrating the air inlet and sealing components into the liquid storage shell, and combining this with the movable structure of the air regulating component, the air leakage problem in electronic atomizing devices is solved, achieving higher air regulation accuracy and longer battery life.

CN224069728UActive Publication Date: 2026-04-03SHENZHEN GEEKVAPE TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The existing electronic atomizing devices have an unreasonable air conditioning structure design, which leads to air leakage in the air passage and affects the user experience.

Method used

An air inlet is integrated into the liquid storage shell, and the air inlet area is adjustable through the cooperation of a sealing component and an air regulating component, which enhances air tightness, reduces the number of parts and space occupied, and improves air regulation accuracy.

Benefits of technology

It improves the atomizer's airflow adjustment accuracy, reduces airflow leakage, enhances the user experience, and helps increase battery capacity and the atomizer's battery life.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224069728U_ABST
    Figure CN224069728U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of air regulation of electronic atomization equipment, provides a liquid storage assembly, an atomizer and an atomization device, and aims to solve the technical problem that an air regulation structure is easy to cause air leakage of an air passage. The liquid storage assembly comprises a liquid storage shell, a gas adjusting piece and a sealing piece, the liquid storage shell is used for storing an aerosol substrate, a gas inlet piece is arranged on the liquid storage shell, and the gas inlet piece is provided with a gas inlet channel; the air adjusting piece is movably connected to the liquid storage shell; the sealing piece is installed on the air inlet piece and seals a gap between the air adjusting piece and the liquid storage shell. Wherein the sealing piece is provided with an air inlet hole, the air inlet hole is communicated with the air inlet channel, and the air adjusting piece can move relative to the sealing piece so as to adjust the area of opening or closing the air inlet hole by the air adjusting piece. The sealing piece is arranged on the air inlet piece, so that the air tightness of the air inlet channel is enhanced. Meanwhile, the air inlet piece is integrated on the liquid storage shell, and the problem that the air tightness of the air inlet channel is affected due to the fact that assembly gaps exist between other parts or between the other parts and adjacent parts is solved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of gas regulation technology for electronic atomization devices, specifically to a liquid storage component, an atomizer, and an atomization device. Background Technology

[0002] Electronic atomizing devices are used to heat an aerosol matrix to atomize and produce an aerosol. Different users typically have different requirements for the amount of aerosol produced during the atomization process, and sufficient air is required for aerosol atomization. While some existing electronic atomizing devices have air adjustment functions, poorly designed adjustment mechanisms often lead to air leakage during adjustment, resulting in poor air adjustment accuracy and negatively impacting the user experience. Utility Model Content

[0003] This application provides a liquid storage component, an atomizer, and an atomizing device, aiming to solve the technical problem that the gas regulation structure in existing electronic atomizing devices is prone to air leakage.

[0004] Some embodiments of this application provide a liquid storage assembly, including:

[0005] A liquid storage shell is used to store aerosol matrix, and the liquid storage shell is provided with an air inlet, which has an air inlet channel;

[0006] An air regulating component is movably connected to the liquid storage tank; and,

[0007] A sealing element is installed on the air inlet component, and the sealing element seals the gap between the air regulating component and the liquid storage shell;

[0008] The sealing element is provided with an air inlet, which is connected to the air inlet channel. The air regulating element can move relative to the sealing element to adjust the area of ​​the air inlet when the air regulating element opens or closes.

[0009] In some embodiments, the gas regulating component includes a connector and a gas regulating knob;

[0010] The gas adjustment knob has a connection hole and a vent hole. The connector passes through the connection hole and is detachably connected to the liquid storage shell. The gas adjustment knob is mounted on the liquid storage shell through the connector, and the gas adjustment knob can rotate around the connector to adjust the area of ​​communication or obstruction between the vent hole and the air inlet.

[0011] In some embodiments, the seal is provided with a plurality of air inlets;

[0012] The vent is configured as an arc-shaped through hole along the rotation direction of the air adjustment knob, and multiple air inlets are spaced apart along the curvature direction of the arc-shaped through hole. When the air adjustment knob is rotated, it causes the arc-shaped through hole to connect or block multiple air inlets.

[0013] In some embodiments, the plurality of air inlets spaced apart on the seal have the same diameter.

[0014] In some embodiments, the liquid storage shell also has a mounting groove and a connecting column;

[0015] The air intake channel passes through the bottom of the mounting groove and communicates with the mounting groove. The connecting post is disposed at the bottom of the mounting groove. The sealing element has a mounting hole and is sleeved on the connecting post through the mounting hole. The connecting post has a plug hole. The connecting element is inserted into the plug hole to install the air regulating knob on the liquid storage shell.

[0016] In some embodiments, the bottom of the mounting groove also has a first stop, and the air regulating knob is provided with a second stop;

[0017] Two first stop portions are disposed on both sides of the air intake channel, and the first stop portions pass through the seal. When the air adjustment knob is rotated, it is limited to rotate between the two first stop portions by the second stop portion.

[0018] In some embodiments, the sidewall of the liquid storage shell is provided with an installation notch;

[0019] A portion of the gas adjustment knob protrudes from the outer surface of the liquid reservoir through the mounting notch, allowing the user to touch and adjust the gas adjustment knob.

[0020] Some embodiments of this application also provide an atomizer, including:

[0021] The liquid storage component described in any of the above embodiments;

[0022] An atomizing core assembly is installed inside the liquid storage assembly. The atomizing core assembly is used to heat the aerosol matrix to atomize and generate aerosol.

[0023] In some embodiments, the air inlet in the liquid storage assembly is arranged side by side with the atomizing core assembly, so that the airflow outlet of the air inlet channel is close to the airflow inlet of the atomizing core assembly.

[0024] In some embodiments, the atomizer further includes an atomizer housing;

[0025] The atomizer housing is provided with an air inlet window, through which outside air flows to the liquid storage component.

[0026] Some embodiments of this application also provide an atomizing device, including:

[0027] The atomizer described in any of the above embodiments;

[0028] A power supply component is electrically connected to the atomizer, and the power supply component is used to supply power to the atomizer.

[0029] According to the liquid storage assembly in the above embodiments, by setting a seal on the air inlet and an air inlet hole on the seal, external air can flow into the air intake channel through the air inlet hole, but cannot flow into the air intake channel through other parts other than the air inlet hole, thereby enhancing the airtightness of the air intake channel and improving the gas adjustment accuracy of the atomizer. Since the gas adjustment component is movably connected to the liquid storage shell and can move relative to the seal, the user only needs to move the gas adjustment component to adjust the area of ​​the air inlet hole to open or close, thereby realizing the gas adjustment function of the atomizer, which is simple to operate.

[0030] Meanwhile, to prevent aerosol matrix leakage, the reservoir shell is typically designed as a one-piece structure for better sealing. Based on this, this application integrates the air intake component onto the reservoir shell, rather than placing it on other components of the atomizer. This avoids the problem of other components having assembly gaps that could affect the airtightness of the air intake channel, thus improving the airtightness of the air intake channel and making it less likely for external air flowing into the reservoir to leak. Furthermore, integrating the air intake component onto the reservoir shell also helps reduce the number and types of atomizer components. This not only facilitates atomizer assembly but also reduces the space occupied by the airflow adjustment structure. For example, it avoids the airflow adjustment structure occupying battery space due to its location on the power supply component, thereby increasing battery capacity and extending the atomizer's runtime. Attached Figure Description

[0031] Figure 1 This is a three-dimensional structural diagram of the atomizing device in one embodiment of this application.

[0032] Figure 2 for Figure 1 A schematic diagram of the exploded structure of the atomizing device.

[0033] Figure 3 for Figure 2 A schematic diagram of the exploded structure of the liquid storage component in the atomizing device.

[0034] Figure 4 for Figure 3 A top view of the liquid storage shell in the liquid storage assembly.

[0035] Figure 5 for Figure 3 A three-dimensional structural diagram of the seal in the liquid storage assembly.

[0036] Figure 6 for Figure 3 A three-dimensional structural diagram of the bottom surface of the gas adjustment knob in the liquid storage assembly.

[0037] Figure 7 for Figure 2 A cross-sectional view of the atomizer in an atomizing device.

[0038] Figure 8 for Figure 1 A cross-sectional view of the atomizing device.

[0039] in:

[0040] 1-Atomizing device; 10-Air inlet window; 11-Atomizer housing; 12-Power supply component housing; 13-Mouthpiece; 2-Liquid reservoir assembly; 21-Liquid reservoir shell; 211-Air inlet component; 212-Air inlet channel; 213-Mounting slot; 214-Connecting post; 2140-Plug-in hole; 215-First stop; 216-Mounting notch; 22-Gas regulator; 221-Connector; 222-Gas regulator knob; 2221-Connecting hole; 2222-Ventilation hole; 2223-Second stop; 23-Sealing component; 231-Air inlet; 232-Mounting hole; 24-Sealing plug; 25-Base; 3-Atomizer coil assembly; 4-Atomizer; 5-Power supply component. Specific Implementation

[0041] The present application will be further described in detail below with reference to specific embodiments and accompanying drawings. Similar elements in different embodiments are referred to by associated 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.

[0042] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments, and the operational steps involved in each embodiment can also be rearranged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for clearly describing a particular embodiment and do not imply that they represent the necessary components and / or order.

[0043] 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).

[0044] During use, different users have varying needs regarding the amount of aerosol produced by the aerosol matrix, and a large-scale aerosol production requires a sufficient amount of air. Therefore, some electronic atomizing devices have an airflow adjustment mechanism to allow users to adjust the airflow rate according to their needs. However, in existing technologies, gaps exist between the airflow adjustment mechanism itself or between it and other components of the electronic atomizing device. This leads to air leakage during airflow adjustment, causing a discrepancy between the external airflow rate and the adjustment precision, thus affecting the user experience.

[0045] In view of this, this application provides an atomizing device 1, such as Figures 1 to 3 As shown, the atomizing device 1 may include an atomizer 4 and a power supply component 5. The atomizer 4 is electrically connected to the power supply component 5 so that the power supply component 5 can be used to supply power to the atomizer 4. Wherein, as... Figure 1 and Figure 2 As shown, the atomizer 4 may include an atomizer housing 11, a liquid storage assembly 2, an atomizing coil assembly 3, and a mouthpiece 13. The mouthpiece 13 may be detachably connected to the atomizer housing 11 by means of plug-in or screw connection, or it may be integrally formed with the atomizer housing 11. One or more air intake windows 10 may be provided on the side wall of the atomizer housing 11 to allow external air to flow into the atomizer 4 through the air intake windows 10. The air intake windows 10 may be rectangular holes, circular holes, or other shaped holes. The power supply assembly 5 may include a power supply assembly housing 12, a battery cell, and a circuit board. The battery cell and circuit board are installed inside the power supply assembly housing 12. The atomizer housing 11 and the power supply assembly housing 12 may be detachably connected by means of fastening, plugging, or magnetic connection. This application does not impose special limitations on the specific structure of the atomizer housing 11 and the power supply assembly housing 12.

[0046] In some embodiments, such as Figure 2As shown, the atomizing core assembly 3 can be installed inside the liquid storage assembly 2. The atomizing core assembly 3 can be used to heat the aerosol matrix to atomize and generate aerosol. The liquid storage assembly 2 can be equipped with a liquid storage component that has the ability to absorb the aerosol matrix, such as a liquid-absorbing structure like a storage cotton. The atomizing core assembly 3 can include an atomizing cover, a liquid guiding component, and a heating element. The heating element can be configured as a heating mesh or heating wire sleeved inside the liquid guiding component. The liquid guiding component is installed inside the atomizing cover, and the atomizing cover can have liquid guiding holes so that the liquid guiding component can contact the liquid storage component. During atomization, the liquid guiding component absorbs the aerosol matrix stored in the liquid storage component, so that when the heating element is energized, it heats the aerosol matrix and atomizes it to generate aerosol. The circuit board is electrically connected to the battery and the heating element, respectively, so that the battery can supply power to the heating element through the circuit board. Of course, the circuit board can also be electrically connected to electronic devices such as a controller and a microphone. The controller can be used to control the heating power of the heating element, and the microphone can be used to sense airflow. Based on the different functional designs of the atomizing device 1, this application does not impose any special restrictions on the specific structure of the atomizer 4 and the power supply component 5.

[0047] To improve the gas regulation accuracy of electronic atomization devices, this application also provides a liquid storage component 2, such as... Figures 3 to 8 As shown, the liquid storage assembly 2 may include a liquid storage shell 21, an air regulating component 22, and a sealing component 23. The liquid storage shell 21 can be used to store an aerosol matrix. An air inlet 211 is provided on the liquid storage shell 21, and the air inlet 211 has an air inlet channel 212. The air regulating component 22 is movably connected to the liquid storage shell 21. The sealing component 23 is installed on the air inlet 211 and seals the gap between the air regulating component 22 and the liquid storage shell 21. The sealing component 23 is provided with an air inlet 231, which communicates with the air inlet channel 212. The air regulating component 22 can move relative to the sealing component 23 to adjust the area of ​​the air inlet 231 that is opened or closed by the air regulating component 22.

[0048] In this way, by setting a seal 23 on the air inlet component 211 and setting an air inlet hole 231 on the seal 23, external air can flow into the air intake channel 212 through the air inlet hole 231, but cannot flow into the air intake channel 212 through other parts other than the air inlet hole 231, thereby enhancing the air tightness of the air intake channel 212 and improving the air adjustment accuracy of the atomizer 4. Since the air adjustment component 22 is movably connected to the liquid storage shell 21 and can move relative to the seal 23, the user only needs to move the air adjustment component 22 to adjust the area of ​​the air inlet hole 231, thereby realizing the air adjustment function of the atomizer 4, which is simple to operate.

[0049] Meanwhile, to prevent aerosol matrix leakage, the liquid reservoir 21 is typically designed as a one-piece structure with better sealing. Based on this, this application integrates the air intake 211 onto the liquid reservoir 21, rather than placing it on other components of the atomizer 4. This avoids the problem of other components affecting the airtightness of the air intake channel 212 due to assembly gaps between themselves or adjacent components, thereby improving the airtightness of the air intake channel 212 and making it less likely for external air flowing into the liquid reservoir 2 to leak. Furthermore, integrating the air intake 211 onto the liquid reservoir 21 also helps reduce the number and types of components in the atomizer 4. This not only facilitates the assembly of the atomizer 4 but also reduces the space occupied by the airflow regulating structure in the atomizer 4. For example, it avoids the airflow regulating structure occupying battery space due to its location on the power supply component 5, thus helping to increase the battery capacity and extend the battery life of the atomizer 1.

[0050] The air intake component 211 can be an air intake pipe connected inside the liquid storage shell 21, in which case the sealing component 23 can be a sealing sheet sealed to the air intake pipe. Alternatively, the air intake component 211 can also be an air intake hole provided on the shell wall of the liquid storage shell 21, in which case the sealing component 23 can be a sealing plug sealed to the air intake hole. The material of the sealing component 23 can be silicone, rubber, or polymer plastic, etc. This application does not impose any special restrictions on the specific structure and material of the air intake component 211 and the sealing component 23. The liquid storage assembly 2 may also include a sealing plug 24 and a base 25. The bottom of the liquid storage shell 21 can be set as an open opening to facilitate the installation of the atomizing core assembly 3 into the liquid storage shell 21. The sealing plug 24 is sealed to the bottom of the liquid storage shell 21 to prevent leakage of the aerosol matrix. The base 25 can be detachably connected to the bottom of the liquid storage shell 21 by means of snap-fit, screw-fit, or plug-in. This application does not impose any special restrictions on the specific structure of the liquid storage assembly 2.

[0051] In some embodiments, such as Figures 3 to 6 As shown, the air regulating component 22 may include a connector 221 and an air regulating knob 222; the air regulating knob 222 has a connection hole 2221 and a vent hole 2222, the connector 221 passes through the connection hole 2221 and is detachably connected to the liquid storage shell 21, the air regulating knob 222 is mounted on the liquid storage shell 21 through the connector 221, and the air regulating knob 222 can rotate around the connector 221 to adjust the area of ​​communication or obstruction between the vent hole 2222 and the air inlet 231.

[0052] By configuring the air regulating component 22 so that the air regulating knob 222 can rotate around the connecting member 221, it is beneficial to reduce the space occupied by the regulating component 22 in the liquid storage shell 21, thereby increasing the storage capacity of the liquid storage shell 21 for the aerosol matrix. When the air regulating knob 222 is rotated, the larger the area connected between the vent 2222 and the air inlet 231, the greater the flow rate of external air into the air intake channel 212; conversely, the smaller the area connected between the vent 2222 and the air inlet 231, the smaller the flow rate of external air into the air intake channel 212, thus realizing the air regulating function of the atomizer 4. The shapes of the vent 2222 and the air inlet 231 can be set as circular holes, waist-shaped holes, or elliptical holes, etc. This application does not impose any special restrictions on the specific shapes of the vent 2222 and the air inlet 231.

[0053] In other embodiments, the air regulating component 22 can also be configured as a sliding structure. For example, the air regulating component 22 can be configured as a slider slidably connected to the liquid storage shell 21. The slider slides to cover or open the air inlet 231, thus achieving the air regulating function of the atomizer 4. In this case, it is necessary to ensure that the slider has sufficient sliding space within the liquid storage shell 21 to avoid jamming during the sliding process. This application does not impose any special restrictions on the specific structural configuration of the air regulating component 22.

[0054] In some embodiments, such as Figure 5 and Figure 6 As shown, the seal 23 is provided with multiple air inlets 231; the vent 2222 is set as an arc-shaped through hole along the rotation direction of the air regulating knob 222, and the multiple air inlets 231 are spaced apart along the bending direction of the arc-shaped through hole. When the air regulating knob 222 is rotated, it drives the arc-shaped through hole to connect or block the multiple air inlets 231.

[0055] If the air inlet 231 is set as a large through hole, the area connected to the air inlet 231 by the arc-shaped through hole is uncontrollable during air adjustment, which is not conducive to controlling the flow rate of external air into the air intake channel 212. This application adopts a structure in which multiple air inlets 231 are arranged alternately, so that the number of arc-shaped through holes connected to the air inlets 231 can be selected, thereby controlling the flow rate of external air into the air intake channel 212, so that the user can accurately adjust the air intake required by the atomizer 4. Depending on the air adjustment level, three, four or more air inlets 231 can be set. This application does not impose any special restrictions on the specific number of air inlets 231 set on the seal 23.

[0056] Among them, such as Figure 5As shown, the sealing element 23 has multiple air inlets 231 with the same diameter, spaced apart. When the diameters of the multiple air inlets 231 are the same, the increase or decrease in the flow rate of external air into the air intake channel 212 is a fixed value for each increase or decrease in the number of air inlets 231 connected to the arc-shaped through-hole. This allows the user to control the flow rate of external air into the air intake channel 212 by controlling the number of air inlets 231 that are opened or closed. Furthermore, the increase or decrease in flow rate between each flow rate level is linearly related, allowing the user to adjust the air intake of the atomizer 4 according to their needs. The shape of each air inlet 231 can be a circular hole, an oblong hole, or an elliptical hole. This application does not impose any special restrictions on the specific shape of the air inlet 231.

[0057] In some embodiments, such as Figure 3 and Figure 4 As shown, the liquid storage shell 21 also has a mounting groove 213 and a connecting post 214; the air inlet channel 212 passes through the bottom of the mounting groove 213 and communicates with the mounting groove 213; the connecting post 214 is set at the bottom of the mounting groove 213; the sealing element 23 has a mounting hole 232 and is sleeved on the connecting post 214 through the mounting hole 232; the connecting post 214 has a insertion hole 2140; the connecting element 221 is inserted into the insertion hole 2140 to install the air regulating knob 222 on the liquid storage shell 21.

[0058] The mounting groove 213 provides a space for the seal 23, ensuring the stability of its installation. The connecting post 214 positions the seal 23 to prevent it from shifting during the rotation of the air regulating knob 222. Furthermore, the mounting groove 213 and the seal 23 can be non-circular in shape to prevent the seal 23 from shifting after installation, ensuring its sealing performance. The connector 221 can be a pin, and it is fixed to the connecting post 214 via a insertion hole 2140, simplifying assembly and improving the assembly efficiency of the air regulating structure. In other embodiments, the connector 221 can also be connected to the connecting post 214 by bonding, riveting, or screwing. This application does not impose any special restrictions on the connection method between the connector 221 and the connecting post 214.

[0059] In addition, such as Figures 4 to 6 As shown, the bottom of the mounting groove 213 also has a first stop 215, and the air regulating knob 222 is provided with a second stop 2223; the two first stops 215 are provided on both sides of the air intake channel 212, and the first stops 215 pass through the seal 23. When the air regulating knob 222 is rotated, it is limited to rotate between the two first stops 215 by the second stop 2223.

[0060] In this way, the rotation range of the air regulating knob 222 can be limited by the cooperation of the first stop 215 and the second stop 2223, thereby preventing the air regulating knob 222 from being difficult to adjust due to an excessive rotation range. Furthermore, since the two first stops 215 pass through the seal 23, they also act as anti-rotation devices for the seal 23, thus enhancing the stability of the seal 23 within the mounting groove 213 and improving the accuracy of air regulation.

[0061] In some embodiments, such as Figure 4 As shown, the side wall of the liquid storage shell 21 is provided with an installation notch 216; a part of the gas adjustment knob 222 is exposed through the installation notch 216 on the outer surface of the liquid storage shell 21, so that the user can touch and adjust the gas adjustment knob 222.

[0062] The mounting notch 216 allows the user to easily rotate the vapor adjustment knob 222 to adjust the airflow of the atomizer 4. Furthermore, anti-slip textures or teeth can be provided around the circumference of the vapor adjustment knob 222 to facilitate its operation. After adjustment, by connecting the atomizer housing 11 to the power supply assembly housing 12, the vapor adjustment knob 222 is housed inside the atomizer housing 11. This prevents accidental activation of the vapor adjustment knob 222 during use, thereby improving the stability of the airflow to the atomizer 4.

[0063] In some embodiments, such as Figure 7 and Figure 8 As shown, the air inlet 211 in the liquid storage assembly 2 and the atomizing core assembly 3 can be arranged side by side so that the air outlet of the air inlet channel 212 is close to the air inlet of the atomizing core assembly 3.

[0064] Since both the atomizing core assembly 3 and the air inlet 211 are located inside the liquid storage shell 21, the airflow outlet of the air inlet channel 212 is positioned near the airflow inlet of the atomizing core assembly 3, allowing external air to flow into the airflow channel 212 and be effectively circulated. Figure 7 The airflow directly and rapidly flows into the atomizing core assembly 3 for atomization. The entire air intake path of the atomizer 4 is completed within the liquid storage shell 21, which not only improves the efficiency of aerosol matrix atomization but also greatly shortens the air intake path of the atomizer 4, thereby minimizing the problem of air leakage in the air intake path and improving the air adjustment accuracy of the atomizer 4.

[0065] 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. A liquid storage assembly, characterized in that, include: A liquid storage shell for storing aerosol matrix, wherein the liquid storage shell is provided with an air inlet, the air inlet having an air inlet channel; An air regulating component is movably connected to the liquid storage tank; and, A sealing element is installed on the air inlet component, and the sealing element seals the gap between the air regulating component and the liquid storage shell; The sealing element is provided with an air inlet, which is connected to the air inlet channel. The air regulating element can move relative to the sealing element to adjust the area of ​​the air inlet when the air regulating element opens or closes.

2. The liquid storage assembly as described in claim 1, characterized in that, The air regulating component includes a connector and an air regulating knob; The gas adjustment knob has a connection hole and a vent hole. The connector passes through the connection hole and is detachably connected to the liquid storage shell. The gas adjustment knob is mounted on the liquid storage shell through the connector, and the gas adjustment knob can rotate around the connector to adjust the area of ​​communication or obstruction between the vent hole and the air inlet.

3. The liquid storage assembly as described in claim 2, characterized in that, The sealing element is provided with a plurality of air inlet holes; The vent is configured as an arc-shaped through hole along the rotation direction of the air adjustment knob, and multiple air inlets are spaced apart along the curvature direction of the arc-shaped through hole. When the air adjustment knob is rotated, it causes the arc-shaped through hole to connect or block multiple air inlets.

4. The liquid storage assembly as described in claim 3, characterized in that, The multiple air inlets spaced apart on the seal have the same diameter.

5. The liquid storage assembly as described in claim 2, characterized in that, The liquid storage shell also has an installation groove and a connecting column; The air intake channel passes through the bottom of the mounting groove and communicates with the mounting groove. The connecting post is disposed at the bottom of the mounting groove. The sealing element has a mounting hole and is sleeved on the connecting post through the mounting hole. The connecting post has a plug hole. The connecting element is inserted into the plug hole to install the air regulating knob on the liquid storage shell.

6. The liquid storage assembly as described in claim 5, characterized in that, The bottom of the mounting groove also has a first stop, and the air regulating knob is provided with a second stop. Two first stop portions are disposed on both sides of the air intake channel, and the first stop portions pass through the seal. When the air adjustment knob is rotated, it is limited to rotate between the two first stop portions by the second stop portion.

7. The liquid storage assembly as described in any one of claims 2 to 6, characterized in that, The side wall of the liquid storage shell is provided with an installation notch; A portion of the gas adjustment knob protrudes from the outer surface of the liquid reservoir through the mounting notch, allowing the user to touch and adjust the gas adjustment knob.

8. An atomizer, characterized in that, include: The liquid storage assembly according to any one of claims 1 to 7; An atomizing core assembly is installed inside the liquid storage assembly. The atomizing core assembly is used to heat the aerosol matrix to atomize and generate aerosol.

9. The atomizer as described in claim 8, characterized in that, The air inlet in the liquid storage assembly is arranged side by side with the atomizing core assembly so that the air outlet of the air inlet channel is close to the air inlet of the atomizing core assembly.

10. The atomizer as described in claim 8, characterized in that, The atomizer also includes an atomizer housing; The atomizer housing is provided with an air inlet window, through which outside air flows to the liquid storage component.

11. An atomizing device, characterized in that, include: The atomizer according to any one of claims 8 to 10; as well as, A power supply component is electrically connected to the atomizer, and the power supply component is used to supply power to the atomizer.