Electronic atomization device and atomizer thereof

By setting up a ventilation channel away from the liquid suction surface and a ventilation tube with a stepped hole design on the inner wall of the liquid storage space, the problems of bubble adhesion and insufficient liquid supply in the electronic atomization device are solved, and the air pressure balance and stable liquid supply are achieved.

CN120753439APending Publication Date: 2025-10-10SHENZHEN SMOORE TECH LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202511157353.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2021-12-30
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

Existing electronic atomization devices are prone to insufficient liquid supply during the heating and atomization process, resulting in dry burning, and bubbles at the ventilation port are prone to adhere to the wall surface, hindering air pressure balance.

Method used

A ventilation channel is set on the inner wall surface of the liquid storage space, the ventilation port is away from the liquid suction surface, and the ventilation pipe with a stepped hole design is used to reduce bubble adhesion and ensure air pressure balance.

Benefits of technology

It effectively avoids bubble adhesion, ensures the air pressure balance in the liquid storage space, and prevents insufficient liquid supply and dry burning.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120753439A_ABST
    Figure CN120753439A_ABST
Patent Text Reader

Abstract

The invention discloses an electronic atomization device and an atomizer thereof, the atomizer comprises a liquid storage space, an atomization main body and at least one ventilation channel, the liquid storage space is used for storing a liquid aerosol generating substrate; the atomization main body comprises an atomization assembly, and the atomization assembly comprises a liquid suction surface communicated with the liquid storage space in a liquid guide manner; the at least one ventilation channel comprises a ventilation pipe arranged on the inner wall face of the liquid storage space, the ventilation pipe comprises a ventilation opening, and the ventilation opening is far away from the inner wall face and the liquid suction face. The air exchange ports are formed in the positions away from the inner wall face and the liquid absorption face of the liquid storage space, and bubbles can be prevented from being attached to the inner wall face and / or the liquid absorption face of the liquid storage space during air exchange.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the field of electronic atomization, and in particular to an electronic atomization device and an atomizer thereof. Background Art

[0002] An electronic atomization device generally includes a liquid storage space, a porous heating element, a seal, and an air flow channel. The seal is used to prevent the liquid in the liquid storage space from flowing to places outside the heating element. During heating and atomization, the liquid in the liquid storage space decreases, the internal gas space increases, the air pressure decreases, and the resistance of the liquid to the heating element increases, which can easily lead to insufficient liquid supply and dry burning. In order to solve this problem, the relevant technology chooses to add a ventilation structure that connects the ambient gas and the liquid storage space. Driven by the pressure difference, the ambient gas replenishes the gas to the liquid storage space through the ventilation structure to balance the air pressure. At present, the ventilation port is generally located on the bottom wall or the surrounding wall of the liquid storage space, but bubbles easily adhere to the wall surface around the ventilation port, resulting in bubble jamming and hindering ventilation. Summary of the Invention

[0003] In view of the deficiencies in the above technologies, the present invention provides an improved electronic atomization device and an atomizer thereof.

[0004] To achieve the above object, the present invention provides an atomizer, comprising: A liquid storage space for storing a liquid aerosol-generating matrix; an atomizing body, the atomizing body including an atomizing assembly, the atomizing assembly including a liquid suction surface in liquid-conducting communication with the liquid storage space; and At least one ventilation channel, the at least one ventilation channel includes a ventilation tube arranged on the inner wall surface of the liquid storage space, the ventilation tube includes a ventilation port, and the ventilation port is away from the inner wall surface and / or the liquid suction surface.

[0005] In some embodiments, the atomizer includes a longitudinal axis, and the liquid suction surface is substantially perpendicular to the longitudinal axis.

[0006] In some embodiments, the inner wall surface includes a surface adjacent to the liquid suction surface, and the ventilation tube is upright on the surface.

[0007] In some embodiments, the surface is a flat surface, and a vertical distance between the ventilation port and the surface is smaller than a vertical distance between the ventilation port and the liquid suction surface.

[0008] In some embodiments, the length direction of the ventilation tube is parallel to the longitudinal axis.

[0009] In some embodiments, the central through hole of the ventilation tube is arranged as a stepped hole, and the diameter of each hole segment decreases in a direction away from the inner wall surface.

[0010] In some embodiments, the central through hole includes a first hole segment close to the inner wall surface and a second hole segment away from the inner wall surface. The pore diameter of the first hole segment is 0.5-1 mm, and the pore diameter of the second hole segment is 0.2-0.6 mm.

[0011] In some embodiments, the ventilation tube has a length of 0.8-1.5 mm.

[0012] In some embodiments, the liquid storage space includes a collecting portion formed in the atomizing body, and the ventilation pipe is vertically arranged on the inner wall surface of the collecting portion.

[0013] In some embodiments, the atomizing body includes a lower seat body, the lower seat body includes a first support portion and a second support portion arranged at intervals, the atomizing assembly is horizontally mounted on the first support portion and the second support portion, and an atomizing chamber is formed below the atomizing assembly; the atomizing assembly includes an atomizing surface opposite to the liquid suction surface, and the atomizing surface is in air-conducting communication with the atomizing chamber.

[0014] In some embodiments, the at least one ventilation channel includes a first ventilation groove extending laterally formed on the top surface of the first support portion or the second support portion and a second ventilation groove extending longitudinally formed on the inner side surface of the first support portion or the second support portion, and the first ventilation groove is connected to the second ventilation groove; the atomization component covers above the first ventilation groove, and an end of the first ventilation groove away from the inner side surface is exposed outside the atomization component.

[0015] In some embodiments, the atomizing body includes an upper seat body, which includes a supporting portion pressed against the atomizing assembly and an outer frame arranged on the supporting portion; the at least one ventilation channel includes a ventilation hole that passes through the supporting portion up and down and is connected to the ventilation port, a third ventilation groove formed on the inner wall surface of the outer frame and extending longitudinally downward, and a fourth ventilation groove formed on the lower surface of the supporting portion and connecting the ventilation hole with the third ventilation groove; the lower end of the third ventilation groove is connected to the end of the first ventilation groove away from the inner side surface.

[0016] In some embodiments, the atomization assembly includes a sheet-like heating element and a soft sealing member coupled to the periphery of the heating element, the ventilation hole is directly opposite to the sealing member, and the outer frame surrounds the outer periphery of the sealing member.

[0017] In some embodiments, the heating element includes a sheet-like substrate, and the substrate is made of glass with a micropore array, dense ceramic with a micropore array, or sheet-like porous ceramic.

[0018] In some embodiments, the supporting portion is provided with a lower liquid port that passes through the upper and lower portions and corresponds to the liquid suction surface. The lower surface of the supporting portion further includes an inner frame surrounding the lower liquid port, and the inner frame abuts against the inner side of the sealing member.

[0019] In some embodiments, the ventilation tube is disposed on the supporting portion.

[0020] In some embodiments, the at least one ventilation channel includes two ventilation channels, each ventilation channel includes a ventilation tube, and the ventilation tubes of the two ventilation channels are respectively arranged on two opposite sides of the liquid suction surface.

[0021] An electronic atomization device is also provided, comprising the atomizer in any one of the above items.

[0022] The beneficial effect of the present invention is that by arranging the ventilation port at a position away from the inner wall surface and the liquid absorption surface of the liquid storage space, bubbles can be prevented from adhering to the inner wall surface and / or the liquid absorption surface of the liquid storage space during ventilation. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 Schematic diagram of the three-dimensional structure of the electronic atomization device in some embodiments of the present invention.

[0024] Figure 2 for Figure 1 The schematic diagram of the three-dimensional exploded structure of the electronic atomization device shown.

[0025] Figure 3 for Figure 1 The BB cross-sectional structure diagram of the atomizer of the electronic atomization device shown is shown.

[0026] Figure 4 for Figure 1 The AA cross-sectional structural diagram of the atomizer of the electronic atomization device shown is shown.

[0027] Figure 5 for Figure 1 Schematic diagram of the three-dimensional exploded structure of the atomizer shown.

[0028] Figure 6 for Figure 1 The diagram shows a longitudinal cross-sectional structure of the atomizer in a disassembled state.

[0029] Figure 7 for Figure 5 Schematic diagram of the three-dimensional decomposition structure of the atomizing body shown.

[0030] Figure 8 for Figure 5 The diagram shows a longitudinal cross-sectional structure of the atomizing body in a decomposed state.

[0031] Figure 9 for Figure 5 A schematic diagram of the three-dimensional decomposition structure of the atomizing body from another perspective is shown.

[0032] Figure 10 for Figure 9 Schematic diagram of the three-dimensional exploded structure of the atomization component shown. DETAILED DESCRIPTION

[0033] In order to more clearly illustrate the present invention, the present invention will be further described below with reference to the accompanying drawings.

[0034] It should be understood that the terms "front", "rear", "left", "right", "up", "down", "first", "second", etc. are only for the convenience of describing the technical solution of the present invention, and do not indicate that the devices or elements referred to must have special differences, and therefore cannot be understood as limiting the present invention. It should be noted that when a piece is considered to be "connected" to another piece, it can be directly connected to the other piece or there may be a central piece at the same time. Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by technicians in the technical field to which the present invention belongs. The terms used in the specification of the present invention herein are only for the purpose of describing specific embodiments and are not intended to limit the present invention.

[0035] Figure 1 and Figure 2 The electronic atomization device in some embodiments of the present invention is shown. The electronic atomization device may be a hand-held rod-shaped structure for users to inhale aerosols. As shown in the figure, the electronic atomization device may include an atomizer 1 and a power supply device 2 that cooperates with the atomizer 1. The atomizer 1 can be used to store and heat atomize liquid aerosols such as liquid medicine to generate a matrix, and to guide the aerosol out. The power supply device 2 can be used to power the atomizer 1. In some embodiments, the atomizer 1 and the power supply device 2 may both be roughly elliptical cylindrical, and the two are mechanically and electrically connected together along the axial direction. In some embodiments, the atomizer 1 and the power supply device 2 can be detachably connected together by magnetic attraction. It can be understood that the atomizer 1 and the power supply device 2 are not limited to being elliptical cylindrical, and they can also be cylindrical with a circular, runway-shaped or irregular cross-section, or non-columnar.

[0036] Figures 3 to 6An atomizer 1 in some embodiments of the present application is shown, which can include an atomizing body 10 and a shell 20 sleeved on the atomizing body 10 along a longitudinal axis X, the atomizing body 10 and the shell 20 together defining a liquid storage space for storing a liquid aerosol generating substrate. The atomizing body 10 is configured to heat the liquid aerosol generating substrate in the liquid storage space to generate an aerosol, and the shell 20 is configured to protect the atomizing body 10 and guide the mixture of the aerosol and air out. The liquid storage space in some embodiments can include a liquid storage chamber 214 formed between an outer wall surface of the atomizing body 10 and an inner wall surface of the shell 20 and a lower liquid passage formed in the atomizing body 10. The liquid storage chamber 214 is configured to store the liquid aerosol generating substrate, and the lower liquid passage is configured to deliver the liquid in the liquid storage chamber 214 to an atomizing assembly 13.

[0037] The shell 20 in some embodiments can include a flat outer shell 21 with an opening 212 at one end and an air outlet hole 210 at the other end, and an air guide pipe 22 extending from the other end to the opening 212 of the outer shell 21 and inserted into the atomizing body 10 at the end to guide the mist generated by the atomizing body 10 during operation. The annular liquid storage chamber 214 is defined between the inner wall surface of the outer shell 21 and the outer wall surface of the air guide pipe 22. The opening 212 allows the atomizing body 10 to be inserted into the shell 20. The inner side of the opening end of the outer shell 21 can also be provided with a buckle structure 216 to buckle with the atomizing body 10 inserted into the opening end of the outer shell 21.

[0038] For reference Figures 7 to 9 The atomizing body 10 in some embodiments can be symmetrical on the front and back sides and also symmetrical on the left and right sides to facilitate molding and subsequent assembly. The atomizing body 10 in some embodiments can include a lower seat body 11, an upper seat body 12 buckled to the lower seat body 11, an atomizing assembly 13 clamped between the lower seat body 11 and the upper seat body 12, and a pair of electrodes 14 spaced apart and penetrating the lower seat body 11 and electrically connected to the atomizing assembly 13, respectively. It can be understood that the atomizing body 10 is not limited to a symmetrical structure, and an asymmetrical structure can also be applicable. The atomizing assembly 13 in some embodiments can be arranged horizontally, i.e., arranged in a manner that the plane thereof is perpendicular to the longitudinal axis X of the atomizing body 10.

[0039] In some embodiments, the lower body 11 can be integrally molded from a rigid plastic material, preferably with symmetry between its front and rear sides and its left and right sides to facilitate manufacturing and subsequent assembly. In some embodiments, the lower body 11 can include a generally elliptical base 111, a first support arm 112 disposed at a first end of the top surface of the base 111 along its longitudinal axis, and a second support arm 113 disposed at a second end of the top surface of the base 111. Together, the first and second support arms 112, 113 support the atomizer assembly 13 from its underside, forming a supporting portion (second supporting portion) on the underside of the atomizer assembly 13. A gap is provided between the first and second support arms 112, 113, so that when the atomizer assembly 13 is mounted horizontally on the first and second support arms 112, 113, an atomization chamber 110 is formed on the underside of the atomizer assembly 13. This atomization chamber 110 allows the aerosol atomized by the atomizer assembly 13 to mix with inhaled air and be carried away by the airflow.

[0040] In some embodiments, the base 111 may include an air inlet passage 1110 located in the middle and extending vertically therethrough, and a pair of mounting holes 1112 extending vertically therethrough, wherein the pair of mounting holes 1112 are used to respectively allow the lower ends of the pair of electrodes 14 to pass through.

[0041] For example Figure 7 As shown, in some embodiments, the first support arm 112 may include a first support portion 1121 and a first stop portion 1122 extending upward from a top surface of the first support portion 1121 away from the second support arm 113. The first support portion 1121 is used to support one end of the atomizer assembly 13, and the first stop portion 1122 is formed with a first locking hole 1120 for locking with the upper base 12.

[0042] In some embodiments, the second support arm 113 may include a second support portion 1131 and a second retaining portion 1132 extending upward from a top surface of the second support portion 1131 away from the first support arm 112. The second support portion 1131 is used to support the other end of the atomizer assembly 13, and the second retaining portion 1132 is formed with a first latching hole 1130 for latching with the upper base 12.

[0043] In some embodiments, the first support portion 1121 and the second support portion 1131 may respectively include a pair of first ventilation grooves 1123 extending laterally formed on the top surface and a pair of second ventilation grooves 1125 extending longitudinally formed on the inner side surface. The pair of first ventilation grooves 1123 are respectively connected to the pair of second ventilation grooves 1125. One end of each first ventilation groove 1123 away from the atomization chamber 110 is exposed outside the atomization assembly 13 and is connected to the lower end of the corresponding third ventilation groove 1225 of the upper seat body 12.

[0044] In some embodiments, the upper body 12 may be integrally formed of a hard plastic material, and may be symmetrical in front and back, and symmetrical in left and right. In some embodiments, the upper body 12 may include a main body 121 and a pressing portion 122 disposed below the main body 121.

[0045] In some embodiments, the main body 121 may include a pair of lower liquid ports 1210 and an air outlet channel 1212. The air outlet channel 1212 may be located in the middle of the top of the main body 121 and arranged longitudinally. The pair of lower liquid ports 1210 may be respectively arranged on two opposite sides of the air outlet channel 1212 and arranged longitudinally. In some embodiments, the main body 121 may also include a collecting portion 1214. The collecting portion 1214 is located below the pair of lower liquid ports 1210 and is respectively connected to the pair of lower liquid ports 1210, so that the liquid aerosol generating matrix in the liquid storage tank 214 can be discharged as shown in FIG. Figure 3 The liquid flows into the collecting portion 1214 in the direction indicated by the arrow N. The gas outlet channel 1212 is used to communicate with the lower end of the gas guide pipe 22 of the housing 20. The collecting portion 1214 and the pair of lower liquid ports 1210 together form the lower liquid channel.

[0046] In some embodiments, the main body 121 may further include a pair of air guide grooves 1216 (eg, Figure 4 As shown in FIG. 1 , the pair of air guide grooves 1216 are formed on the outer wall surfaces of the two opposite sides of the main body 121 and extend from top to bottom. The pair of air guide grooves 1216 and the outer shell 21 define an air guide channel ( ) that connects the atomizing chamber 110 with the air outlet channel 1212. Figure 4 The arrow M in the middle shows the gas flow direction).

[0047] In some embodiments, the pressing portion 122 may include an annular supporting portion 1220. This supporting portion 1220 presses against the upper edge of the atomizer assembly 13, forming the upper supporting portion (first supporting portion) of the atomizer assembly 13. Together with the lower supporting portions (first supporting portion 1121 and second supporting portion 1131) of the atomizer assembly 13 on the lower base, the supporting portion 1220 clamps and secures the atomizer assembly 13. The center of the supporting portion 1220 includes a lower liquid inlet 1222 extending vertically and facing the liquid suction surface of the atomizer assembly 13. The lower liquid inlet 1222 is connected to the collecting portion 1214 of the main body 121 and is located directly below the collecting portion 1214, allowing the liquid aerosol-forming substrate in the collecting portion 1214 to flow to the liquid suction surface of the atomizer assembly 13. In some embodiments, the lower liquid inlet 1222 may be rectangular, with dimensions adapted to the liquid suction surface of the atomizer assembly 13.

[0048] In some embodiments, the pressing portion 122 may include an inner frame 1224 formed on the bottom surface of the supporting portion 1220 and surrounding the lower liquid port 1222, and an outer frame 1226 formed on the periphery of the bottom surface of the supporting portion 1220. The inner frame 1224 is used to laterally support the inner side of the seal 132 of the atomizing assembly 13, and the outer frame 1226 is used to laterally support the outer side of the seal 132.

[0049] In some embodiments, the abutting portion 1220 may include a pair of ventilation holes 1221 extending vertically therethrough. The pair of ventilation holes 1221 are aligned with the seal 132 of the atomizing assembly 13 and connect the lower side of the abutting portion 1220 to the collecting portion 1214 located on the upper side of the abutting portion 1220. This allows ventilation into the liquid storage space when the liquid pressure in the liquid storage space is too low, thereby achieving gas-liquid balance within the liquid storage space. The upper surface of the abutting portion 1220 constitutes a bottom wall of the liquid storage space, and in some embodiments, a pair of ventilation tubes 1223 are provided thereon, corresponding to the pair of ventilation holes 1221. The pair of ventilation tubes 1223 are respectively connected to the pair of ventilation holes 1221, and the axes of the ventilation tubes 1223 are perpendicular to the liquid absorption surface of the heating element 131. This allows the ventilation port 1229 at the end of the ventilation tube 1223 to protrude a certain distance from the upper surface of the supporting portion 1220 (i.e., a bottom wall surface of the liquid storage space). This prevents or reduces the adhesion of bubbles during the ventilation process to the upper surface of the supporting portion 1220 and the liquid absorption surface of the heating element 131. In some embodiments, the vertical distance from the ventilation port 1229 to the liquid absorption surface of the heating element 131 is preferably greater than the vertical distance from the ventilation port to the upper surface of the supporting portion 1220. In some embodiments, the upper surface of the supporting portion 1220 can be a horizontally arranged flat surface. It is understandable that the ventilation tube 1223 is not limited to being set on the surface of the collecting portion 1214. In some embodiments, as the position of the ventilation hole 1221 changes, it can also be set on the inner wall surface of the lower liquid port 1210 or the liquid storage tank 214.

[0050] like Figure 8 As shown, in some embodiments, the ventilation tube 1223 can be integrally formed with the abutment portion 1220. In some embodiments, the central through hole of the ventilation tube 1223 employs a stepped hole design, with the diameter of the first hole section on the side closer to the abutment portion 1220 being larger than the diameter of the second hole section on the side farther from the abutment portion 1220. In some embodiments, the diameter of the first hole section is 0.5-1 mm, and the diameter of the second hole section is 0.2-0.6 mm. In some embodiments, the length of the ventilation tube 1223 is 0.8-1.5 mm.

[0051] like Figure 9As shown, in some embodiments, a pair of longitudinally extending third ventilation grooves 1225 may be formed on the inner wall surface of the outer frame 1226 near each ventilation hole 1221, and a fourth ventilation groove 1227 is correspondingly formed on the lower surface of the abutting portion 1220 to connect the ventilation hole 1221 with the third ventilation groove 1225. In this way, the second ventilation groove 1125, the first ventilation groove 1123, the third ventilation groove 1225, the fourth ventilation groove 1227, the ventilation hole 1221, and the ventilation tube 1223 are sequentially connected to form the ventilation channel of the atomizer 1. It can be understood that although the ventilation channels of the atomizer 1 shown in the figure include four distributed near the four corners of the atomizing assembly 13, they are not limited to four. Fewer than four or more than four are also applicable, and can be increased or decreased according to specific circumstances.

[0052] The outer frame 1226 extends downwardly from the lower end surfaces of the two opposite side walls close to the pair of ventilation holes 1221 to respectively embed into the upper surfaces of the first support portion 1121 and the second support portion 1131 of the lower seat body 11. The upper surfaces of the first support portion 1121 and the second support portion 1131 are respectively formed with a pair of arc-shaped embedding grooves 1126 for the ends of the embedding portions 1228 to embed into. The two ends of each embedding groove 1126 are respectively connected to the corresponding pair of first ventilation grooves 1123 (as shown in FIG. Figure 7 shown).

[0053] like Figure 10 As shown, in some embodiments, the atomization assembly 13 may include a sheet-like heating element 131 and a soft sealing member 132 coupled to the edge of the heating element 131. The heating element 131 may include a liquid absorption surface located on the upper side 133 and an atomization surface located on the lower side 134 and opposite to the liquid absorption surface. When the sealing member 132 is coupled to the edge of the heating element 131, both the liquid absorption surface and the atomization surface are exposed.

[0054] In some embodiments, the heating element 131 may include a sheet-like substrate 1311 and a heating layer 1312 formed on the bottom surface of the substrate 1311. The substrate 1311 may be glass or dense ceramic with a micropore array, or a sheet-like porous ceramic.

[0055] In some embodiments, the substrate 1311 may include a flat upper surface and a lower surface that are parallel to each other, wherein the middle area of ​​the upper surface forms a liquid absorption surface, and the middle area of ​​the lower surface forms an atomization surface. The thickness of the substrate 1311 may be 0.1 to 10 mm in some embodiments. In some cases, the thickness of the substrate 1311 may be 0.1 to 1 mm. The porosity range of the substrate 1311 may be 0.2 to 0.8 in some embodiments, and the surface tension range of the aerosol generating matrix adapted thereto may be 38 to 65 mN / m in some embodiments. It is understandable that the heating element 131 is not limited to being a rectangular sheet, and in some embodiments, it may also be in other shapes such as a square sheet, a circular sheet, an elliptical sheet, a racetrack-shaped sheet, or a special-shaped sheet.

[0056] In some embodiments, the soft seal 132 may be in the shape of a rectangular ring so that the upper liquid absorption surface and the lower atomization surface of the heating element 131 are exposed. In some embodiments, the soft seal 132 may be wrapped around the periphery of the heating element 131, and a groove 1320 is formed on the inner wall surface for the edge of the heating element 131 to be embedded, so that the upper side, lower side and outer side of the edge of the heating element 131 are all covered by the seal 132, which can prevent liquid leakage on the one hand and protect the heating element 131 from being crushed on the other hand. In some embodiments, the soft seal 132 also includes a slot 1322 formed on a frame so that the heating element 131 can be inserted into the seal 132. In some embodiments, the soft seal 132 can also be integrally injection molded with the heating element 131. In other embodiments, the seal 132 can also be formed by splicing two or more structures.

[0057] In some embodiments, the atomizing body 10 further includes a reinforcement 15, which may include a rectangular annular body. In some embodiments, a material that is not easily broken and can withstand significant forces may be used, such as sheet metal, dense ceramic, or hard plastic. Sheet metal, such as SUS-316L (food-grade) steel, is preferred, with a thickness ranging from 0.1 to 0.5 mm (preferably, the thinner the better, provided the strength meets the requirements). The annular body of the reinforcement 15 is supported at both ends by a first support arm 112 and a second support arm 113, respectively, to support the atomizing assembly 13. The four sides of the annular body of the reinforcement 15 are supported below the four sides of the seal 132 of the atomizing assembly 13, ensuring that the heating element 131 of the atomizing assembly 13 is evenly stressed on all sides, preventing breakage due to excessive stress. When the soft seal 132 of the atomizing assembly 13 is evenly stressed, the sealing performance is improved. The central through hole 150 of the annular body of the reinforcement 15 forms an opening that exposes the atomizing surface of the heating element 131.

[0058] The soft seal 132 in some embodiments can include a pair of circular-arc first limiting protrusions 1321 formed on the outer wall surfaces of the two opposite side frames of the seal 132. Correspondingly, the outer sides of the two opposite sides of the reinforcing member 15 are respectively provided with a pair of circular-arc second limiting protrusions. The inner sides of the two opposite sides of the reinforcing member 15 are each concave to form a circular-arc avoiding groove 152 to provide avoiding space for the installation of the pair of electrodes 14.

[0059] The atomizing main body 10 in some embodiments can further include a sealing sleeve 16 sleeved on the upper part of the upper seat 12 to realize the liquid seal between the upper seat 12 and the inner wall surface of the shell 20. A pair of lower liquid holes 160 corresponding to the pair of lower liquid ports 1210 of the upper seat 12 and an air passing hole 162 corresponding to the air outlet passage 1212 of the upper seat 12 can be formed on the top wall of the sealing sleeve 16 in some embodiments.

[0060] It should be noted that the above technical features can be freely combined without departing from the concept of the present application, and several modifications and improvements can be made, which all belong to the protection scope of the present application.

Claims

1. An atomizer, comprising: A liquid storage space for storing a liquid aerosol-generating matrix; an atomizing body, the atomizing body comprising an upper seat and an atomizing assembly, the atomizing assembly comprising a liquid absorbing surface in liquid-conducting communication with the liquid storage space; as well as At least one ventilation channel, the at least one ventilation channel includes a ventilation tube arranged on the inner wall surface of the liquid storage space, the ventilation tube includes a ventilation port, and the ventilation port is away from the inner wall surface and the liquid suction surface; the inner wall surface includes the upper surface of the upper seat body, and the ventilation tube is upright on the upper surface of the upper seat body.

2. The atomizer according to claim 1, characterized in that The atomizer includes a longitudinal axis, and the liquid suction surface is substantially perpendicular to the longitudinal axis.

3. The atomizer according to claim 2, characterized in that The length direction of the ventilation tube is parallel to the longitudinal axis.

4. The atomizer according to claim 1, characterized in that The inner wall surface further includes a bottom wall surface adjacent to the liquid suction surface, and the ventilation pipe is vertically arranged on the bottom wall surface.

5. The atomizer according to claim 1, characterized in that A vertical distance between the ventilation port and the inner wall surface is smaller than a vertical distance between the ventilation port and the liquid suction surface.

6. The atomizer according to any one of claims 1 to 5, characterized in that: The central through hole of the ventilation pipe is arranged in a stepped hole, and the aperture of each hole segment decreases in a direction away from the inner wall surface.

7. The atomizer according to claim 1, characterized in that The liquid storage space includes a collecting portion formed in the atomizing body, and the ventilation pipe is vertically arranged on the inner wall surface of the collecting portion.

8. The atomizer according to claim 6, characterized in that The upper seat includes a supporting portion that presses against the atomizing assembly, and the ventilation pipe is arranged on the supporting portion.

9. The atomizer according to claim 1, characterized in that The at least one ventilation channel includes two ventilation channels, each ventilation channel includes a ventilation tube, and the ventilation tubes of the two ventilation channels are respectively arranged on two opposite sides of the liquid suction surface.

10. An electronic atomization device, characterized in that: A nebulizer comprising the atomizer according to any one of claims 1 to 9.