Liquid storage assembly, atomizer and atomization device
By incorporating a flexible skirt within the air intake channel, the problem of inconvenient air intake adjustment during the use of electronic atomizing devices is solved, enabling automatic adjustment of air intake and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-27
- Publication Date
- 2026-04-03
AI Technical Summary
Existing electronic atomizing devices are not convenient for adjusting the air intake during use, resulting in a poor user experience.
An elastic skirt is installed inside the air intake channel. The skirt swings elastically under the action of airflow to adjust the opening area of the air intake hole, thereby realizing the automatic adjustment of the air intake volume.
Users do not need to frequently adjust the air intake mechanism; the intake volume can be automatically adjusted by the suction action, thus improving the user experience.
Smart Images

Figure CN224069729U_ABST
Abstract
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. To meet the needs of different users, electronic atomizing devices typically have different atomization powers, and these different powers require varying amounts of external air intake. In existing technology, electronic atomizing devices achieve adjustable external air intake through an airflow control mechanism. However, this mechanism generally requires users to adjust it before use, and adjusting the airflow during use is usually cumbersome, 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 existing electronic atomizing devices are usually inconvenient to adjust the air intake during use.
[0004] Some embodiments of this application provide a liquid storage assembly, including:
[0005] A liquid reservoir for storing an aerosol matrix, the liquid reservoir having an air inlet having an air inlet channel; and...
[0006] An air regulating component is connected to the air intake component. The air regulating component includes a skirt that is circumferentially arranged along the inner sidewall of the air intake component. The skirt surrounds an air intake hole that communicates with the air intake channel within the air intake channel.
[0007] The skirt is elastic, and the side of the skirt closest to the air inlet swings elastically under the action of airflow to change the opening area of the air inlet.
[0008] In some embodiments, the air regulating component further includes an air regulating seat;
[0009] The air regulating seat is configured as a ring structure and is connected to the air intake component along the axial direction of the air intake channel. The skirt extends radially along the air intake channel, and the side of the skirt away from the air intake hole is integrally formed on the air regulating seat.
[0010] In some embodiments, the thickness of the skirt on the side closer to the air inlet is less than the thickness of the skirt on the side farther from the air inlet, and the thickness of the skirt gradually decreases from the direction farther from the air inlet to the direction closer to the air inlet.
[0011] In some embodiments, along the flow direction of the airflow, the upstream surface of the skirt is flush with the upstream surface of the air regulating seat, and the downstream surface of the skirt is configured as an inclined surface.
[0012] In some embodiments, the air regulating seat is shaped like a waist ring, the skirt is arranged along the circumference of the air regulating seat, and the skirt protrudes from the air regulating seat by the same length, so that the air inlet is shaped like a waist-shaped hole.
[0013] In some embodiments, the air intake includes an upper air intake and a lower air intake;
[0014] The upper air intake and the lower air intake are interlocked and connected to form the air intake channel. The air regulating seat is connected to the position where the upper air intake and the lower air intake are interlocked to seal the gap between the upper air intake and the lower air intake.
[0015] In some embodiments, the liquid storage shell includes an upper shell and a lower shell;
[0016] The upper air inlet is connected to the upper housing, and the lower air inlet is connected to the lower housing. The upper housing is connected to the lower housing so that the upper air inlet and the lower air inlet are interlocked. A liquid storage cavity is formed between the upper housing and the lower housing for storing the aerosol matrix.
[0017] In some embodiments, the gas regulating component is made of silicone or rubber, and the thickness d of the skirt is 0 < d < 0.45 mm.
[0018] Some embodiments of this application also provide an atomizer, including:
[0019] The liquid storage assembly described in any of the above embodiments; and,
[0020] 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.
[0021] 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.
[0022] Some embodiments of this application also provide an atomizing device, including:
[0023] The atomizer described in any of the above embodiments; and,
[0024] A power supply component is electrically connected to the atomizer, and the power supply component is used to supply power to the atomizer.
[0025] According to the liquid storage component in the above embodiments, an elastic skirt is provided in the air intake channel, and the skirt surrounds the air intake channel to form an air intake hole, allowing external air to flow into the air intake channel through the air intake hole without obstructing the inflow of external air. When the user requires a small amount of air intake, the skirt can remain stationary or undergo slight elastic deformation, thereby limiting the flow of external air into the air intake channel. When the user requires a large amount of air intake, the skirt undergoes significant elastic swing deformation under the action of a larger airflow to expand the opening area of the air intake hole, thereby allowing more external air to flow into the air intake channel for air supply. In this way, during the use of the atomizing device, the user does not need to frequently adjust the air conditioning structure; the air intake can be automatically adjusted by simply using the suction action through the elastic swing of the skirt. This allows the user to match the appropriate air intake according to their needs at any time during use, thereby improving the user experience. Attached Figure Description
[0026] Figure 1 This is a three-dimensional structural diagram of the atomizing device in one embodiment of this application;
[0027] Figure 2 for Figure 1 A cross-sectional view of the atomizer in an atomizing device;
[0028] Figure 3 for Figure 2 A schematic diagram of the exploded structure of the atomizer;
[0029] Figure 4 for Figure 3 A bottom view of the air regulating component in an atomizer;
[0030] Figure 5 for Figure 4 A cross-sectional view of the central air control component at a smaller intake volume.
[0031] Figure 6 for Figure 4 A cross-sectional view of the central air control unit at a larger intake volume.
[0032] in:
[0033] 1-Atomizer; 10-Liquid reservoir assembly; 11-Liquid reservoir shell; 110-Liquid reservoir chamber; 111-Upper shell; 112-Lower shell; 113-Air inlet; 114-Air inlet channel; 115-Upper air inlet; 116-Lower air inlet; 12-Airflow regulator; 13-Air inlet port; 14-Skirt; 15-Airflow regulator base; 16-Mouthpiece; 17-Liquid filling plug; 18-Liquid filling hole; 2-Atomizer coil assembly; 3-Power supply assembly. Detailed Implementation
[0034] 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.
[0035] 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.
[0036] 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).
[0037] In existing technology, the airflow adjustment mechanisms in electronic atomizing devices generally fall into two categories: knob-type and lever-type. The knob-type mechanism uses an opening on the knob that connects to the air intake port on the device, controlling the size of the air intake opening and thus adjusting the airflow. The lever-type mechanism works on the same principle, using an opening on the lever that connects to the air intake port. However, both knob-type and lever-type adjustment mechanisms generally require the user to pre-adjust the air intake opening size before using the device. During use, users typically do not frequently rotate the knob or slide the lever for adjustment. Therefore, this type of adjustment mechanism is not suitable for adjusting the airflow during actual use of an electronic atomizing device.
[0038] Therefore, this application provides an atomizing device, such as Figures 1 to 3As shown, the atomizing device may include an atomizer 1 and a power supply component 3. The atomizer 1 can be used to heat the aerosol matrix to atomize and generate an aerosol. The power supply component 3 is electrically connected to the atomizer 1 and is used to supply power to the atomizer 1. The atomizer 1 and the power supply component 3 can be installed in the same housing, thus allowing the atomizer 1 and the power supply component 3 to be assembled to form a disposable atomizing device with a non-replaceable atomizer 1. Alternatively, the atomizer 1 and the power supply component 3 can be installed in different housings, thus allowing the atomizer 1 and the power supply component 3 to be assembled to form an atomizing device with a replaceable atomizer 1. Different housings can be detachably connected by snap-fit, screw-fit, or magnetic attraction. This application does not impose any special limitations on whether the atomizer 1 can be replaced in the atomizing device.
[0039] Specifically, such as Figures 1 to 3 As shown, the atomizer 1 may include a liquid storage assembly 10 and an atomizing core assembly 2. The liquid storage assembly 10 is used to store the aerosol matrix, and the atomizing core assembly 2 is installed inside the liquid storage assembly 10 to heat the aerosol matrix and generate aerosol. The atomizing core assembly 2 may include an atomizing cover, a liquid guide, and a heating element. The heating element may be a heating mesh or heating wire sleeved inside the liquid guide. The liquid guide is installed inside the atomizing cover, and the atomizing cover may have liquid guide holes to allow the liquid guide to absorb the aerosol matrix stored in the liquid storage assembly 10. During atomization, the heating element can heat the aerosol matrix when powered on and atomize it to generate aerosol. The power supply assembly 3 may include a battery cell and a circuit board. The circuit board is electrically connected to both the battery cell and the heating element, allowing the battery cell to supply power to the heating element through the circuit board. Of course, the circuit board may 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, this application does not impose any special restrictions on the specific structure of the liquid storage component 10, the atomizing core component 2, and the power supply component 3.
[0040] In order to enable the gas regulating structure to be adjusted during the use of the electronic atomizing device, this application also provides a liquid storage component 10, such as... Figures 2 to 6 As shown, the liquid storage assembly 10 may include a liquid storage shell 11 and an air regulating component 12. The liquid storage shell 11 can be used to store an aerosol matrix. The liquid storage shell 11 has an air inlet 113, and the air inlet 113 has an air inlet channel 114. The air regulating component 12 is connected to the air inlet 113. The air regulating component 12 may include a skirt 14 arranged circumferentially along the inner sidewall of the air inlet 113. The skirt 14 surrounds the air inlet channel 114 and forms an air inlet hole 13 communicating with the air inlet channel 114. The skirt 14 is elastic, and the side of the skirt 14 near the air inlet hole 13 swings elastically under the action of airflow to change the opening area of the air inlet hole 13.
[0041] This application provides an elastic skirt 14 within the air intake channel 114, and the skirt 14 forms an air intake hole 13 within the air intake channel 114, allowing external air to flow into the air intake channel 114 through the air intake hole 13 without obstructing the flow of external air. Figure 5 As shown, when the user requires a small amount of air intake, the skirt 14 can remain stationary or undergo slight elastic deformation, thereby limiting the flow of external air into the intake passage 114. Figure 6 As shown, when the user requires a larger air intake, the skirt 14 elastically swings and deforms significantly under the influence of a larger airflow to expand the opening area of the air intake port 13, thereby allowing more external air to flow into the air intake channel 114 for air supply. In this way, the user does not need to frequently adjust the airflow adjustment mechanism during the use of the atomizing device; the air intake is automatically adjusted by the elastic swing of the skirt 14 simply through the inhalation action. This allows the user to match the appropriate air intake volume according to their needs at any time, thus improving the user experience.
[0042] In some embodiments, such as Figures 4 to 6 As shown, the air regulating component 12 may also include an air regulating seat 15; the air regulating seat 15 may be configured as an annular structure and connected to the air intake component 113 along the axial direction of the air intake channel 114, the skirt 14 may be extended radially along the air intake channel 114, and the side of the skirt 14 away from the air intake hole 13 may be integrally formed on the air regulating seat 15.
[0043] The annular air regulating seat 15 can be adapted to the shape of the air intake channel 114, thereby allowing the air regulating seat 15 to be securely installed on the air intake component 113. For example, the air regulating seat 15 can be connected to the inner wall of the air intake component 113 by snap-fit or adhesive. The skirt 14 is integrally formed with the air regulating seat 15, allowing the skirt 14 to be securely fixed in the air intake channel 114 using the air regulating seat 15 as a support, thus ensuring the reliability of the skirt 14 in adjusting the air intake volume. Of course, in other embodiments, the skirt 14 can also be directly connected to the inner wall of the air intake component 113 by adhesive, thus eliminating the need for a separate air regulating seat 15. This application does not impose any special limitations on the specific structure of the air regulating component 12.
[0044] In some embodiments, such as Figure 5 As shown, the thickness of the skirt 14 on the side closer to the air intake 13 is less than the thickness of the skirt 14 on the side farther from the air intake 13, and the thickness of the skirt 14 gradually decreases from the direction farther from the air intake 13 to the direction closer to the air intake 13.
[0045] During the use of the atomizing device, the skirt 14 will continuously and elastically oscillate with changes in the airflow to adjust the amount of external air intake in real time. By making the root of the skirt 14 (i.e., the part near the air regulating seat 15) thicker, fatigue damage caused by the oscillation of the skirt 14 can be reduced, thereby extending the service life of the air regulating component 12. At the same time, by gradually thinning the skirt 14 from the direction away from the air intake 13 to the direction closer to the air intake 13, it is beneficial to maintain the continuity of the skirt 14 structure and avoid the problem of stress concentration during oscillation caused by abrupt changes in thickness, which could lead to cracking of the skirt 14.
[0046] Of course, for the air regulating component 12 where durability requirements are not high, the thickness of the skirt 14 can also be set to the same thickness from the direction away from the air inlet 13 to the direction closer to the air inlet 13. This application does not impose any special restrictions on the setting of the thickness of the skirt 14.
[0047] In some embodiments, the material of the air regulating component 12 can be silicone or rubber, and the thickness d of the skirt 14 can be set to 0 < d < 0.45 mm.
[0048] Silicone or rubber possesses good elasticity and toughness, which is beneficial for improving the sensitivity of the air regulating component 12 in adjusting the intake air volume and extending its service life. However, the air regulating component 12 in this application is not limited to silicone or rubber; other materials with elasticity and toughness made of polymer materials can also be used. Furthermore, when the thickness of the skirt 14 is greater than 0.45 mm, the swing amplitude of the skirt 14 is usually reduced, thus affecting the sensitivity of the air regulating component 12 in adjusting the intake air volume. Of course, the thickness of the skirt 14 is not limited to 0.45 mm, depending on factors such as the size of the intake channel 114 diameter, the length of the skirt 14 extending radially along the intake channel 114, and the specific shape of the skirt 14. This application does not impose any special restrictions on the specific material used for the air regulating component 12 or the specific thickness of the skirt 14.
[0049] In some embodiments, such as Figure 5 As shown, along the flow direction of the airflow (indicated by the hollow arrow in the figure), the upstream surface of the skirt 14 is flush with the upstream surface of the air regulating seat 15, and the downstream surface of the skirt 14 is set as an inclined surface.
[0050] When the upstream surface of the skirt 14 is flush with the upstream surface of the air regulating seat 15, the angle between the upstream surface of the skirt 14 and the intake airflow is 90 degrees. This allows the pressure of the intake airflow acting on the upstream surface of the skirt 14 to reach its maximum value, thereby causing the skirt 14 to swing more sensitively and improving its sensitivity to intake airflow regulation. The downstream surface of the skirt 14 is designed as an inclined surface, allowing the root of the skirt 14 (i.e., the part near the air regulating seat 15) to support the part of the skirt 14 near the air intake port 13, thus preventing the skirt 14 from collapsing after long-term swinging. The upstream surface of the skirt 14 refers to the windward side of the skirt 14 along the direction of the intake airflow, and the downstream surface of the skirt 14 refers to the leeward side of the skirt 14 along the direction of the intake airflow.
[0051] Of course, in other embodiments, the upstream surface of the skirt 14 can also be configured as an inclined surface, and the downstream surface of the skirt 14 can also be flush with the upstream surface of the air regulating seat 15. Alternatively, both the upstream and downstream surfaces of the skirt 14 can be configured as inclined surfaces. This application does not impose any special limitations on the specific shapes of the upstream and downstream surfaces of the skirt 14.
[0052] In some embodiments, such as Figure 3 and Figure 4 As shown, the shape of the air regulating seat 15 can be set as an waist-shaped ring, with the skirt 14 arranged around the circumference of the air regulating seat 15, and the skirt 14 protruding from the air regulating seat 15 by the same length, so that the shape of the air inlet 13 is formed as a waist-shaped hole.
[0053] By designing the air inlet 13 as an oblong shape, the skirt 14 located on the long side of the oblong hole is more elastically oscillating than the skirt 14 located on the short side when the airflow enters the air intake channel 114, thereby improving the oscillation sensitivity of the skirt 14. Simultaneously, the air inlet 113 can be configured as an oblong tube structure adapted to the shape of the air regulating seat 15, reducing the space occupied by the air inlet 113 within the liquid storage assembly 10, thus increasing the storage capacity of the liquid storage assembly 10 for aerosol matrix. In other embodiments, the air regulating seat 15 and the air inlet 113 can also be configured as annular shapes, making the air inlet 13 a circular hole. A circular air inlet 13 allows for consistent oscillation amplitude across all parts of the skirt 14. This application does not impose any special limitations on the specific shape of the air inlet 13.
[0054] In some embodiments, such as Figure 2 and Figure 3As shown, the air intake component 113 may include an upper air intake component 115 and a lower air intake component 116; the upper air intake component 115 and the lower air intake component 116 are interlocked and connected to form an air intake channel 114, and the air regulating seat 15 is connected at the position where the upper air intake component 115 and the lower air intake component 116 are interlocked to seal the gap between the upper air intake component 115 and the lower air intake component 116.
[0055] For the air intake component 113, which is configured as a separate upper air intake component 115 and lower air intake component 116, the air regulating seat 15 can act as a seal between the upper air intake component 115 and the lower air intake component 116, thereby sealing the air intake channel 114 and preventing air leakage. In other words, for the air intake component 113 that already has a seal between the upper air intake component 115 and the lower air intake component 116, the aforementioned skirt 14 can be added to the existing seal. In this way, without adding any other components, the air intake volume of the air intake component 113 can be automatically adjusted by utilizing the seal between the upper air intake component 115 and the lower air intake component 116, which helps to reduce the number and types of components in the atomizing device.
[0056] In other embodiments, the air intake 113 can also be configured as a separate air intake pipe. In this case, the air regulating component 12 can be located at the top, bottom, or middle of the air intake pipe. The different positions of the air regulating component 12 within the air intake 113 will not affect its air regulating function. This application does not impose any special restrictions on the specific position of the air regulating component 12.
[0057] In some embodiments, such as Figure 2 and Figure 3 As shown, the liquid storage shell 11 may include an upper shell 111 and a lower shell 112; an upper air inlet 115 is connected to the upper shell 111, and a lower air inlet 116 is connected to the lower shell 112. The upper shell 111 is connected to the lower shell 112 so that the upper air inlet 115 and the lower air inlet 116 are interlocked. A liquid storage cavity 110 is formed between the upper shell 111 and the lower shell 112. The liquid storage cavity 110 is used to store the aerosol matrix.
[0058] For example, the upper housing 111 and the lower housing 112 can be assembled by snap-fit, screw-fit, or adhesive bonding. A sealing ring can also be provided between the upper housing 111 and the lower housing 112 to prevent leakage of the aerosol matrix. Before assembling the upper housing 111 and the lower housing 112, the atomizing core assembly 2 can be installed in the liquid storage shell 11. In addition, the liquid storage shell 11 can also include a nozzle 16 and a liquid injection plug 17. The nozzle 16 can be detachably connected to the upper housing 111 or integrally formed with the upper housing 111. The upper housing 111 can be provided with a liquid injection hole 18. After the liquid storage shell 11 is assembled, the aerosol matrix can be injected into the liquid storage chamber 110 through the liquid injection hole 18, and then the liquid injection plug 17 can be inserted into the liquid injection hole 18 for sealing. Depending on the shape design of the atomizing device, the upper housing 111 and the lower housing 112 can be set to any shape such as box-shaped or cylindrical. This application does not impose any special restrictions on the specific structure and shape of the liquid storage shell 11.
[0059] The liquid storage chamber 110 may contain a liquid storage element (e.g., liquid storage cotton, not shown in the figure), which can be used to absorb the aerosol matrix stored in the liquid storage chamber 110. During atomization, the liquid guide in the atomizing core assembly 2 can absorb the aerosol matrix in the liquid storage element for heating and atomization by the heating element. The aerosol generated after atomization can be discharged from the atomizing device through the nozzle 16. This application does not impose any special restrictions on whether a liquid storage element is provided in the liquid storage chamber 110.
[0060] In some embodiments, such as Figure 2 As shown, the air inlet 113 in the liquid storage assembly 10 can be arranged side by side with the atomizing core assembly 2 so that the air outlet of the air inlet channel 114 can be close to the air inlet of the atomizing core assembly 2.
[0061] Since both the atomizing core assembly 2 and the air intake component 113 are located inside the liquid storage shell 11, the airflow outlet of the air intake channel 114 is positioned close to the airflow inlet of the atomizing core assembly 2, allowing external air to flow into the air intake channel 114 and be distributed as follows: Figure 2 The airflow direction shown (indicated by the black arrow in the figure) flows directly and rapidly into the atomizing core assembly 2 for atomization. The entire air intake path of the atomizing device is completed within the liquid storage shell 11, which not only improves the efficiency of aerosol matrix atomization but also greatly shortens the air intake path of the atomizing device, thereby minimizing the problem of air leakage in the air intake path and improving the air adjustment accuracy of the atomizing device.
[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. A liquid storage assembly, characterized in that, include: A liquid reservoir for storing an aerosol matrix, the liquid reservoir having an air inlet having an air inlet channel; and... An air regulating component is connected to the air intake component. The air regulating component includes a skirt that is circumferentially arranged along the inner sidewall of the air intake component. The skirt surrounds an air intake hole that communicates with the air intake channel within the air intake channel. The skirt is elastic, and the side of the skirt closest to the air inlet swings elastically under the action of airflow to change the opening area of the air inlet.
2. The liquid storage assembly as described in claim 1, characterized in that, The air regulating component also includes an air regulating seat; The air regulating seat is configured as a ring structure and is connected to the air intake component along the axial direction of the air intake channel. The skirt extends radially along the air intake channel, and the side of the skirt away from the air intake hole is integrally formed on the air regulating seat.
3. The liquid storage assembly as described in claim 2, characterized in that, The thickness of the skirt on the side closer to the air intake is less than the thickness of the skirt on the side farther from the air intake, and the thickness of the skirt gradually decreases from the direction farther from the air intake to the direction closer to the air intake.
4. The liquid storage assembly as described in claim 3, characterized in that, Along the flow direction of the airflow, the upstream surface of the skirt is flush with the upstream surface of the air regulating seat, and the downstream surface of the skirt is set as an inclined surface.
5. The liquid storage assembly as described in claim 2, characterized in that, The air regulating seat is shaped like a waist ring, and the skirt is arranged around the circumference of the air regulating seat. The skirt protrudes from the air regulating seat by the same length, so that the air inlet is shaped like a waist-shaped hole.
6. The liquid storage assembly as described in claim 2, characterized in that, The air intake component includes an upper air intake component and a lower air intake component; The upper air intake and the lower air intake are interlocked and connected to form the air intake channel. The air regulating seat is connected to the position where the upper air intake and the lower air intake are interlocked to seal the gap between the upper air intake and the lower air intake.
7. The liquid storage assembly as described in claim 6, characterized in that, The liquid storage shell includes an upper shell and a lower shell; The upper air inlet is connected to the upper housing, and the lower air inlet is connected to the lower housing. The upper housing is connected to the lower housing so that the upper air inlet and the lower air inlet are interlocked. A liquid storage cavity is formed between the upper housing and the lower housing for storing the aerosol matrix.
8. The liquid storage assembly as described in any one of claims 1 to 7, characterized in that, The gas regulating component is made of silicone or rubber, and the thickness d of the skirt is 0 < d < 0.45 mm.
9. An atomizer, characterized in that, include: The liquid storage assembly according to any one of claims 1 to 8; and, 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.
10. The atomizer as described in claim 9, 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.
11. An atomizing device, characterized in that, include: The atomizer according to any one of claims 9 or 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.