US20260191263A1 · App 19/556,212
ATOMIZATION ASSEMBLY AND AEROSOL GENERATING DEVICE
Publication
Application
Classifications
IPC Classifications
CPC Classifications
Applicants
Shenzhen Verdewell Technology Limited
Inventors
Feng YIN, Qingchen Chu
Abstract
The present disclosure discloses an atomization assembly and an aerosol generating device. The atomization assembly includes a housing assembly and a heating element. The housing assembly is formed with an atomization cavity and an air inlet channel in communication with each other. The heating element is disposed in the housing assembly horizontally. The air inlet channel has a connection end in communication with the atomization cavity. The air inlet channel and the heating element are spaced apart perpendicularly. A liquid storage space is formed between the air inlet channel and the heating element. The bottom surface of the liquid storage space is lower than the connection end. The bottom surface of the liquid storage space is lower than the lower edge of an atomization surface.
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Description
CROSS REFERENCE TO RELATED APPLICATIONS
[0001]This application is a continuation application of International application No. PCT/CN2024/100940, filed on June 24, 2024, which claims priority to Chinese Patent Application No. 202322407360.0, filed on September 5, 2023. The entire disclosure of the prior application is hereby incorporated by reference.
TECHNICAL FIELD
[0002]The present disclosure relates to the field of aerosol generating technologies, including to an atomization assembly and an aerosol generating device.
BACKGROUND
[0003]The statement herein merely provides background information related to the present disclosure and does not necessarily constitute the prior art. Generally, an atomization assembly has a liquid storage cavity. While ensuring structural sealing property, the liquid storage cavity is generally vented by using a porous heating element and a vent channel. After e-liquid is injected into the liquid storage cavity, the heating element generally absorbs atomization liquid to generate a particular negative pressure of the liquid storage cavity to lock the atomization liquid, or the vent channel stores the atomization liquid leaked from the liquid storage cavity to the vent channel. However, when a large fluctuation occurs in air pressure in the liquid storage cavity due to temperature impact, a large positive pressure difference may be generated between the liquid storage cavity and the vent channel and/or the heating element. The positive pressure difference may force out the atomization liquid stored in the vent channel and/or the heating element, finally causing leakage of the atomization liquid. The leaked atomization liquid flows to an air inlet channel in communication with the atomization cavity. When the atomization liquid is a high-viscosity liquid, the viscosity of the high-viscosity liquid changes greatly with the temperature. Specifically, a higher temperature indicates a lower viscosity, and a lower temperature indicates a higher viscosity. The high-viscosity liquid entering the air inlet channel is cooled and frozen due to contact with the air inlet channel having a low temperature, and even blocks the air inlet channel. Once the air inlet channel is blocked, an airflow sensor configured to be started by sensing airflow cannot be started, thus affecting the inhalation experience of users.
SUMMARY
Technical Problems
[0004]An objective of the present disclosure is to provide an atomization assembly and an aerosol generating device, so as to resolve the technical problem in the existing technology that an airflow sensor cannot be started since an air inlet channel is blocked due to leakage of atomization liquid.
Technical Solutions
[0005]The present disclosure adopt the following technical solutions:
[0006]According to an aspect, an atomization assembly is provided, including a housing assembly and a heating element. The housing assembly is formed with an atomization cavity and an air inlet channel in communication with each other. The heating element is disposed in the housing assembly in a longitudinal direction of the housing assembly. The heating element includes an atomization surface in communication with the atomization cavity. The air inlet channel has a connection end in communication with the atomization cavity. The air inlet channel and the heating element are spaced apart in a transverse direction of the housing assembly. A liquid storage space is formed between the air inlet channel and the heating element. The bottom surface of the liquid storage space is lower than the connection end. The bottom surface of the liquid storage space is lower than the lower edge of the atomization surface.
[0007]In an aspect, the connection end of the air inlet channel is higher than the bottom surface of the atomization cavity.
[0008]The bottom surface of the liquid storage space is flush with the bottom surface of the atomization cavity. Alternatively, the bottom surface of the liquid storage space is lower than the bottom surface of the atomization cavity.
[0009]In an aspect, the connection end of the air inlet channel is higher than the lower edge of the atomization surface.
[0010]In an aspect, a surrounding rib extends from the bottom surface of the atomization cavity. The surrounding rib surrounds the part of the air inlet channel located in the atomization cavity. The surrounding rib and the heating element are spaced apart in the transverse direction of the housing assembly.
[0011]In an aspect, the connection end of the air inlet channel is flush with the bottom surface of the atomization cavity. The bottom surface of the liquid storage space is lower than the bottom surface of the atomization cavity.
[0012]In an aspect, a liquid storage cavity, a vent channel, and a collection groove are further formed in the housing assembly. The heating element is in communication with the liquid storage cavity and the atomization cavity. An air inlet end of the vent channel is in communication with the collection groove. An air outlet end of the vent channel is in communication with the liquid storage cavity.
[0013]In an aspect, the collection groove is formed in the atomization cavity. The air inlet end of the vent channel extends to the bottom of the collection groove.
[0014]In an aspect, the connection end of the air inlet channel is higher than the bottom surface of the atomization cavity. The bottom surface of the liquid storage space is flush with the bottom surface of the atomization cavity. The collection groove is formed by indent of the bottom surface of the atomization cavity. Atomization liquid in the liquid storage space is capable of flowing into the collection groove.
[0015]In an aspect, the connection end of the air inlet channel is disposed offset from the central axis of the housing assembly.
[0016]In an aspect, the air inlet channel includes an air inlet section, a transition section, and an air outlet section. The air inlet section, the transition section, and the air outlet section are in communication with each other sequentially. The air inlet section is configured to be in communication with the outside. The central axis of the air inlet section coincides with the central axis of the housing assembly. The air outlet section is in communication with the atomization cavity. The central axis of the air outlet section is disposed offset from the central axis of the housing assembly. The transition section is connected between the air inlet section and the air outlet section.
[0017]In an aspect, the housing assembly includes an atomization tube, a mounting frame, a connection base, and an electrode assembly. The mounting frame is sleeved outside the electrode assembly. The connection base is sleeved outside the mounting frame. The air inlet section is formed in the center of the electrode assembly. The air outlet section is formed on the mounting frame. The transition section is jointly surrounded by the electrode assembly, the mounting frame, and the connection base. The atomization tube and the mounting frame jointly surround the atomization cavity.
[0018]In an aspect, the end of the electrode assembly facing the battery assembly is open, and the end of the electrode assembly configured to be electrically connected to the heating element is closed. A connection hole is formed in the side wall of the electrode assembly. A through groove is formed in the side wall of the mounting frame. The through groove is in communication with the connection hole and the air outlet section separately.
[0019]In an aspect, the mounting frame includes a first sleeve, a support plate, and a positioning rib. The first sleeve and the positioning rib are formed on opposite sides of the support plate respectively. The first sleeve is sleeved outside the electrode assembly. The connection base is sleeved outside the first sleeve. The through groove is formed in the first sleeve.
[0020]In an aspect, the housing assembly includes an air channel wall forming the vent channel. The air channel wall is at least partially located in the atomization cavity.
[0021]The air channel wall is disposed transversely toward the atomization surface of the heating element.
[0022]Alternatively, the air channel wall is disposed transversely obliquely toward the atomization surface of the heating element.
[0023]According to an aspect, an aerosol generating device is provided, including a battery assembly, a suction nozzle, and the foregoing atomization assembly. The suction nozzle is disposed in communication with the atomization assembly. The battery assembly is electrically connected to the atomization assembly.
Beneficial Effects
[0024]The atomization assembly according to the present disclosure has the following beneficial effects. The heating element is disposed in the housing assembly in the longitudinal direction of the housing assembly, and the air inlet channel and the heating element are spaced apart in the transverse direction of the housing assembly, so that the atomization liquid leaked from the heating element does not directly flow to the air inlet channel. Also, the liquid storage space is formed between the air inlet channel and the heating element, and the bottom surface of the liquid storage space is lower than the connection end of the air inlet channel, so that the atomization liquid leaked from the heating element may directly flow to the liquid storage space for storage, and does not flow from the liquid storage space to the air inlet channel. In this way, blockage of the air inlet channel caused by inflow of the atomization liquid can be reduced, so that airflow in the atomization assembly is smooth, and an airflow sensor can be started in time when a user inhales, thereby improving the inhalation experience of the user.
[0025]The aerosol generating device according to the present disclosure has the following beneficial effects. By means of the design of the foregoing atomization assembly, the aerosol generating device quickly responds to inhalation, thereby improving the inhalation experience of users.
BRIEF DESCRIPTION OF THE DRAWINGS
[0026]To more clearly explain the technical solutions in the present disclosure, the accompanying drawings that need to be used in the description of the aspects or exemplary technologies will be briefly introduced below. It is apparent that the accompanying drawings in the following description are only some examples of the present disclosure. For those of ordinary skill in the art, other accompanying drawings may be obtained from these accompanying drawings without making creative labor.
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
Reference numerals in the drawings:
[0036]1000: atomization assembly; 100: housing assembly; 110: connection base; 111: second sleeve; 112: bottom plate; 113: third sleeve; 120: atomization tube; 121: atomization section; 122: smoke guide section; 1221: smoke guide channel; 123: step plate; 1231: through opening; 130: liquid storage tube; 140: connection electrode; 150: electrode assembly; 151: electrode ring; 1511: connection hole; 1512: groove; 152: connector; 1521: first connection post; 1522: connection block; 1523: second connection post; 160: mounting frame; 161: first sleeve; 1611: through groove; 162: support plate; 163: positioning rib; 164: positioning block; 165: surrounding rib; 200: heating element; 210: liquid inlet surface; 220: atomization surface; 300: seal member; 400: liquid storage cavity; 500: atomization cavity; 600: vent channel; 610: air channel wall; 700: air inlet channel; 710: air inlet section; 720: air outlet section; 730: transition section; 740: connection end; 800: liquid storage space; 900: collection groove; 2000: battery assembly; 3000: suction nozzle; and 4000: seal sleeve.
DETAILED DESCRIPTION
[0037]To make the objectives, technical solutions, and advantages of the present disclosure clearer, the following further describes the present disclosure in detail with reference to the accompanying drawings and the aspects. It should be understood that specific aspects described herein are only for explaining the present invention and are not intended to limit the present disclosure.
[0038]It should be noted that when a component is referred to as being "fixed to" or "disposed on" another component, the component may be directly on the other component or indirectly disposed on the other component. When a component is referred to as being "connected to" another component, the component may be directly connected or indirectly connected to the other component. The orientation or positional relationships indicated by the terms such as "upper", "lower", "left", and "right" are based on the orientation or positional relationships shown in the accompanying drawings, which are merely for ease of description, and do not indicate or imply that the referred device or element must have a specific orientation or be constructed and operated in a specific orientation. Therefore, the terms shall not be construed as a limitation to the present disclosure. For those of ordinary skill in the art, the specific meanings of the foregoing terms may be understood according to specific circumstances. The terms such as "first" and "second" are used for descriptive purposes only and should not be interpreted as indicating or implying relative importance or implicitly specifying the quantity of technical features. "Plurality of" means two or more, unless otherwise definitely and specifically limited.
[0039]To illustrate the technical solutions provided in the present disclosure, detailed descriptions are provided below in conjunction with specific drawings and aspects.
[0040]Generally, an atomization assembly has a liquid storage cavity. While ensuring structural sealing property, the liquid storage cavity is generally vented by using a porous heating element and/or a vent channel. After e-liquid is injected into the liquid storage cavity, the heating element generally absorbs atomization liquid to generate a particular negative pressure of the liquid storage cavity to lock the atomization liquid, or the vent channel stores the atomization liquid leaked from the liquid storage cavity to the vent channel. However, when a large fluctuation occurs in air pressure in the liquid storage cavity due to temperature impact, a large positive pressure difference may be generated between the liquid storage cavity and the heating element and/or the vent channel. The positive pressure difference may force out the atomization liquid stored in the heating element and/or the vent channel, finally causing leakage of the atomization liquid. The leaked atomization liquid flows to an air inlet channel in communication with the atomization cavity. When the atomization liquid is a high-viscosity liquid, the viscosity of the high-viscosity liquid changes greatly with the temperature. A higher temperature indicates a lower viscosity, and a lower temperature indicates a higher viscosity. The high-viscosity liquid entering the air inlet channel is cooled and frozen due to contact with the air inlet channel having a low temperature, and even blocks the air inlet channel. Once the air inlet channel is blocked, an airflow sensor configured to be started by sensing airflow cannot be started, thus affecting the inhalation experience of users.
[0041]Specifically, due to the temperature difference between day and night, the atomization assembly is inevitably subject to liquid leakage. When a large amount of atomization liquid in the liquid storage cavity is consumed with only a small portion remaining, a large enclosed cavity will be formed above the atomization liquid. When the temperature drops at night, the cavity pressure in the liquid storage cavity decreases and the negative pressure rises. To maintain the air-liquid equilibrium, external air is forced into the liquid storage cavity through the vent channel or the heating element, thereby establishing a new equilibrium. When the temperature rises during the day, the temperature inside the liquid storage cavity increases, the cavity pressure in the liquid storage cavity rises and the negative pressure drops. To maintain the equilibrium, the pressure inside the liquid storage cavity will squeeze the atomization liquid outwards, resulting in atomization liquid leakage. If the leaked atomization liquid flows into the air inlet channel, the foregoing blockage of the air inlet channel will occur.
[0042]To resolve the foregoing problem, the inventor of the present disclosure performs intense research for a long time, and finally provides an atomization assembly 1000 and an aerosol generating device. A heating element 200 is disposed in a housing assembly 100 in a longitudinal direction (e.g., horizontally) of the housing assembly 100, a liquid storage space 800 is formed between an air inlet channel 700 and the heating element 200, and the bottom surface of the liquid storage space 800 is lower than a connection end 740 of the air inlet channel 700, so that liquid leaked from the heating element 200 may flow to the liquid storage space 800 instead of flowing to the air inlet channel 700, thereby reducing blockage of the air inlet channel 700 caused by inflow of atomization liquid, ensuring smooth airflow, ensuring that an airflow sensor can be started in time by sensing airflow, and improving the inhalation experience of users.
[0043]Referring to
[0044]Referring to
[0045]It should be noted that the longitudinal direction herein refers to a direction extending approximately in an axial direction of the housing assembly 100. For example, the heating element 200 is disposed in a direction parallel to the axial direction of the housing assembly 100, or the heating element 200 is disposed at an oblique angle with the axial direction of the housing assembly 100. Generally, the extension tendency of the heating element 200 is the same as the axial direction of the housing assembly 100. To be specific, the heating element 200 is mounted on the side surface of the atomization cavity 500. A liquid inlet surface 210 and the atomization surface 220 of the heating element 200 are disposed approximately parallel to a direction of airflow in the atomization cavity 500.
[0046]The transverse direction herein refers to a direction perpendicular to the longitudinal direction. For example, when the housing assembly 100 is disposed vertically, the transverse direction refers to a horizontal direction.
[0047]In the atomization assembly 1000 according to examples of the present disclosure, the heating element 200 is disposed in the housing assembly 100 in the longitudinal direction of the housing assembly 100, and the air inlet channel 700 and the heating element 200 are spaced apart in the transverse direction of the housing assembly 100, so that the atomization liquid leaked from the heating element 200 does not directly flow to the air inlet channel 700. Also, the liquid storage space 800 is formed between the air inlet channel 700 and the heating element 200, and the bottom surface of the liquid storage space 800 is lower than the lower edge of the atomization surface 220, so that the atomization liquid leaked from the heating element 200 may directly flow to the liquid storage space 800 for storage. The bottom surface of the liquid storage space 800 is lower than the connection end 740 of the air inlet channel 700, so that the atomization liquid in the liquid storage space 800 does not flow from the liquid storage space 800 to the air inlet channel 700. In this way, blockage of the air inlet channel 700 caused by inflow of the atomization liquid can be reduced, so that airflow in the atomization assembly 1000 is smooth, and an airflow sensor can be started in time when a user inhales, thereby improving the inhalation experience of the user.
[0048]In addition, since the liquid storage space 800 is in communication with the heating element 200, when a negative pressure is restored in the liquid storage cavity 400 for storing the atomization liquid, the heating element 200 can further draw back a part of the atomization liquid leaked into the liquid storage space 800, thereby ensuring smooth inhalation during an inhalation process.
[0049]In an aspect, referring to
[0050]In an aspect, referring to
[0051]In an aspect, since the surrounding rib 165 is disposed and the surrounding rib 165 and the heating element 200 are spaced apart relatively, a height parameter of the surrounding rib 165 needs to be properly controlled to prevent an atomized aerosol from impinging on the surrounding rib 165 and causing condensation, thereby ensuring a minimum condensation. Specifically, the height of the surrounding rib 165 may be measured according to multiple tests. For example, the surrounding rib 165 is set to different heights, to measure the amount of condensation on the surrounding rib 165, and an optimal design height of the surrounding rib 165 is obtained by repeating experiments for multiple times.
[0052]In an aspect, referring to
[0053]In another aspect of the present disclosure, the connection end 740 of the air inlet channel 700 is flush with the bottom surface of the atomization cavity 500. The bottom surface of the liquid storage space 800 is lower than the bottom surface of the atomization cavity 500. In this aspect, the air inlet channel 700 does not extend from the bottom of the atomization cavity 500 to the atomization cavity 500. To be specific, the surrounding rib 165 does not need to be disposed in the atomization cavity 500. In addition, to prevent the atomization liquid in the liquid storage space 800 from flowing to the atomization cavity 500, the bottom surface of the liquid storage space 800 is further designed to be lower than the bottom surface of the atomization cavity 500. To be specific, a groove needs to be formed in the bottom surface of the atomization cavity 500 to accommodate the atomization liquid.
[0054]In an aspect, referring to
[0055]In an aspect, referring to
[0056]In an aspect, referring to
[0057]In an aspect, referring to
[0058]In an aspect, referring to
[0059]In an aspect, referring to
[0060]In an aspect, referring to
[0061]In an aspect, referring to
[0062]In an aspect, referring to
[0063]In an aspect, referring to
[0064]In an aspect, referring to
[0065]In an aspect, referring to
[0066]In an aspect, referring to
[0067]Specifically, the atomization tube 120 includes an atomization section 121 and a smoke guide section 122 in communication with each other. The caliber of the atomization section 121 is greater than the caliber of the smoke guide section 122. The atomization section 121 is connected to the smoke guide section 122 through a step plate 123. The atomization section 121 is sleeved outside the mounting frame 160. The liquid storage tube 130 is sleeved outside the atomization section 121 and the smoke guide section 122. The liquid storage tube 130 and the smoke guide section 122 are spaced apart to form the liquid storage cavity 400. The heating element 200 is mounted in the atomization section 121 to divide an internal cavity of the atomization section 121 to form the atomization cavity 500 and a buffer tank. The atomization cavity 500 is in communication with the smoke guide section 122. Specifically, the atomization cavity 500 is in communication with a smoke guide channel 1221 of the smoke guide section 122. A through opening 1231 is formed in the step plate 123. The atomization liquid in the liquid storage cavity 400 flows to the buffer tank through the through opening 1231 for the heating element 200 to be atomized. In this aspect, the atomization tube 120 is divided into the atomization section 121 for atomization and the smoke guide section 122 for smoke guide, and the caliber of the atomization section 121 is set to be large relative to the caliber of the smoke guide section 122, so that there is enough space for mounting the heating element 200. Also, the liquid storage cavity 400 is formed between the liquid storage tube 130 and the smoke guide section 122, and the liquid storage tube 130 can be sleeved outside the atomization section 121, so that the outer diameter of the entire housing assembly 100 is not enlarged due to an enlarging caliber of the atomization section 121. To be specific, lateral mounting of the heating element 200 is implemented without enlarging the entire outer diameter of the atomization assembly 1000, thereby facilitating volume miniaturization. Also, opposite sides of the heating element 200 can be in communication with the atomization cavity 500 and the liquid storage cavity 400 respectively. In addition, in the present disclosure, the buffer tank is actually a part of the liquid storage cavity 400.
[0068]In an aspect, referring to
[0069]In an aspect, referring to
[0070]In an aspect, referring to
[0071]In an aspect, referring to
[0072]In an aspect, referring to
[0073]Specifically, referring to
[0074]In addition, a groove 1512 is further formed in the inner side of the through groove 1611 corresponding to the outer side wall of the electrode assembly 150. The groove 1512 and the through groove 1611 jointly form the transition section 730.
[0075]In an aspect, referring to
[0076]In an aspect, referring to
[0077]In an aspect, referring to
[0078]In an aspect, the surrounding rib 165 protrudes from the support plate 162. A positioning block 164 for positioning the connection electrode 140 is also formed on the support plate 162.
[0079]In aspects of the present disclosure, the positioning rib 163, the surrounding rib 165, and the positioning block 164 are all formed by using the mounting frame 160, and the mounting frame 160 is an insulator. The mounting frame 160 may be integrally injected by using an injection process, is simple to manufacture, and is simpler to form than the positioning rib 163, the surrounding rib 165, and the positioning block 164 which are all formed by using the connection base 110 made of a metal material, since the positioning rib 163, the surrounding rib 165, and the positioning block 164 need to be manufactured through CNC by using the connection base 110.
[0080]In an aspect, referring to
[0081]In an aspect, referring to
[0082]The foregoing descriptions are merely optional aspects of the present disclosure and are not intended to limit the present disclosure. For those skilled in the art, the present disclosure may have various changes and variations. Any modification, equivalent replacement, improvement, and the like made within the spirit and principle of the present disclosure should be included within the scope of the claims of the present disclosure.
Claims
What is claimed is:
1. An atomization assembly comprising:
a housing assembly being formed with an atomization cavity and an air inlet channel, the air inlet channel including a connection end in communication with the atomization cavity;
a heating element including an atomization surface in communication with the atomization cavity, the heating element being disposed in the housing assembly horizontally, and the air inlet channel and the heating element being spaced apart perpendicularly; and
a liquid storage space is formed between the air inlet channel and the heating element, wherein a bottom surface of the liquid storage space is lower than the connection end and the atomization surface.
2. The atomization assembly of
the connection end of the air inlet channel is higher than a bottom surface of the atomization cavity;
the bottom surface of the liquid storage space is flush with the bottom surface of the atomization cavity, or the bottom surface of the liquid storage space is lower than the bottom surface of the atomization cavity.
3. The atomization assembly of
4. The atomization assembly of
a surrounding rib surrounding an area of the air inlet channel located in the atomization cavity, wherein the surrounding rib extends from the bottom surface of the atomization cavity, and the surrounding rib and the heating element are spaced apart perpendicularly.
5. The atomization assembly of
the connection end of the air inlet channel is flush with a bottom surface of the atomization cavity, and the bottom surface of the liquid storage space is lower than the bottom surface of the atomization cavity.
6. The atomization assembly of
a liquid storage cavity, a vent channel, and a collection groove; wherein
the heating element is in communication with the liquid storage cavity and the atomization cavity,
an air inlet end of the vent channel is in communication with the collection groove, and
an air outlet end of the vent channel is in communication with the liquid storage cavity.
7. The atomization assembly of
8. The atomization assembly of
the connection end of the air inlet channel is higher than a bottom surface of the atomization cavity;
the bottom surface of the liquid storage space is flush with the bottom surface of the atomization cavity; and
the collection groove is formed by indent of the bottom surface of the atomization cavity; and atomization liquid in the liquid storage space is capable of flowing into the collection groove.
9. The atomization assembly of
an air channel wall forming the vent channel, and the air channel wall is at least partially located in the atomization cavity;
the air channel wall is disposed transversely toward the atomization surface of the heating element, or the air channel wall is disposed transversely obliquely toward the atomization surface of the heating element.
10. The atomization assembly of
11. The atomization assembly of
an air inlet section, a transition section, and an air outlet section; wherein
the air inlet section, the transition section, and the air outlet section are in communication with each other sequentially, the air inlet section is configured to be in communication with the outside, and a central axis of the air inlet section coincides with the central axis of the housing assembly;
the air outlet section is in communication with the atomization cavity, and the central axis of the air outlet section is disposed offset from the central axis of the housing assembly; and
the transition section is connected between the air inlet section and the air outlet section.
12. The atomization assembly of
an atomization tube, a mounting frame, a connection base, and an electrode assembly; wherein
the mounting frame is sleeved outside the electrode assembly, the connection base is sleeved outside the mounting frame, the air inlet section is formed in a center of the electrode assembly, the air outlet section is formed on the mounting frame, and the transition section is jointly surrounded by the electrode assembly, the mounting frame, and the connection base; and
the atomization tube and the mounting frame jointly surround the atomization cavity.
13. The atomization assembly of
a end of the electrode assembly facing the battery assembly is open, the end of the electrode assembly configured to be electrically connected to the heating element is closed,
a connection hole is formed in the side wall of the electrode assembly,
a through groove is formed in the side wall of the mounting frame, and the through groove is in communication with the connection hole and the air outlet section separately.
14. The atomization assembly of
a first sleeve, a support plate, and a positioning rib; wherein
the first sleeve and the positioning rib are formed on opposite sides of the support plate respectively, and
the first sleeve is sleeved outside the electrode assembly, the connection base is sleeved outside the first sleeve, and the through groove is formed in the first sleeve.
15. An aerosol generating device comprising:
a battery assembly;
a suction nozzle;
an atomization assembly comprising
a housing assembly being formed with an atomization cavity and an air inlet channel, the air inlet channel including a connection end in communication with the atomization cavity;
a heating element including an atomization surface in communication with the atomization cavity, the heating element being disposed in the housing assembly horizontally, and the air inlet channel and the heating element being spaced apart perpendicularly; and
a liquid storage space is formed between the air inlet channel and the heating element, wherein a bottom surface of the liquid storage space is lower than the connection end and the atomization surface; and
wherein the suction nozzle is disposed in communication with the atomization assembly, and the battery assembly is electrically connected to the atomization assembly.