Atomization assembly, atomization device and atomization equipment

By designing the liquid storage device in the atomization device as a double-hole structure and setting the main body and extension of the liquid conduction member, the problem of poor liquid conduction between the oil storage cotton and the atomization core is solved, and a smoother flow of the atomization matrix and the stability of the heat generator liquid supply are achieved, thereby avoiding dry burning.

CN223262349UActive Publication Date: 2025-08-26HG INNOVATION LTD
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Patent Information

Application Number
CN202422388908.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-29
Publication Date
2025-08-26
Estimated Expiration
2034-09-29

AI Technical Summary

Technical Problem

In the existing atomization device, the atomization matrix is ​​not smooth in the fluid conduction between the oil storage cotton and the atomization core, which is prone to insufficient liquid supply at the atomization core or even dry burning.

Method used

The liquid storage member is designed as a double-hole structure, and the first liquid conductor and the second liquid conductor are provided. The first liquid conductor includes a main body part and an extension part. The heating element is arranged on the main body part, and the extension part extends to the second liquid conductor, increasing the liquid conduction path of the atomized substrate to ensure that the atomized substrate can flow to the heating element more smoothly.

Benefits of technology

It effectively avoids insufficient liquid supply for the heating body or even dry burning, improves the liquid conduction rate and uniformity of the atomization matrix, and ensures the stability of the atomization effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an atomization assembly, an atomization device and atomization equipment. The atomization assembly comprises a liquid storage part, a first liquid guide part, a second liquid guide part and a heating body. The liquid storage part is provided with a first through hole and a second through hole, the first liquid guide part and the second liquid guide part are arranged in the first through hole and the second through hole respectively, the first through hole and the second through hole are transversely formed in a spaced mode, and the first liquid guide part and the second liquid guide part are communicated in a liquid guide mode; the first liquid guide piece comprises a main body part and an extension part which are connected, the heating body is arranged on the main body part, and the extension part extends towards the second liquid guide piece. The extension part is closer to the second liquid guide part, the atomized substrate near the second liquid guide part can be quickly absorbed by the extension part, and the atomized substrate permeates to the main body part from the extension part and is in contact with the heating body, so that the atomized substrate can flow to the main body part more smoothly, and the phenomena of insufficient liquid supply and even dry burning of the heating body are effectively avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of atomization, in particular to an atomization component, an atomization device and an atomization equipment. Background Art

[0002] In existing atomizers, the atomizer core is connected to a reservoir cotton. The porous structure of the reservoir cotton absorbs and stores a certain amount of liquid atomizing matrix. The atomizing matrix gradually penetrates the internal fiber structure of the reservoir cotton into the atomizer core, where it is heated and atomized to produce an aerosol. In situations where the atomizing matrix needs to be transported horizontally to the atomizer core, because some reservoir cotton fibers extend longitudinally, the atomizing matrix tends to move along the fiber direction (longitudinal direction) within the reservoir cotton. This results in poor liquid flow between the reservoir cotton and the atomizer core, which can easily lead to insufficient liquid supply to the atomizer core or even dry burning. Utility Model Content

[0003] The technical problem to be solved by the present application is to provide an improved atomization assembly, atomization device and atomization equipment in response to at least one defect raised in the above background technology.

[0004] In some embodiments, an atomization assembly is provided, which includes: a liquid storage member, provided with a first through hole and a second through hole, the first through hole and the second through hole being arranged laterally spaced apart; a first liquid guiding member, arranged in the first through hole, the first liquid guiding member including a main body and an extension portion connected to each other, the heating element being arranged on the main body; a second liquid guiding member, arranged in the second through hole, the extension portion extending toward the second liquid guiding member, and the first liquid guiding member and the second liquid guiding member being liquid-connected.

[0005] In some embodiments, the main body is a tubular structure with both ends connected, and the heating element is arranged on the inner circumference of the main body.

[0006] In some embodiments, the extension portion includes a first side wing and a second side wing, the first side wing and the second side wing are spaced apart and respectively connected to the main body, and the first side wing and the second side wing respectively extend toward the second liquid guiding member.

[0007] In some embodiments, the first side wing and the second side wing are symmetrically arranged; and / or, the first side wing has a sheet-like structure; and / or, the second side wing has a sheet-like structure; and / or, the trajectory of the first side wing extending to the second liquid-guiding member includes a broken line; and / or, the trajectory of the first side wing extending to the second liquid-guiding member includes a curve; and / or, the trajectory of the first side wing extending to the second liquid-guiding member includes a straight line; and / or, the trajectory of the second side wing extending to the second liquid-guiding member includes a broken line; and / or, the trajectory of the second side wing extending to the second liquid-guiding member includes a curve; and / or, the trajectory of the second side wing extending to the second liquid-guiding member includes a straight line.

[0008] In some embodiments, the liquid storage member is further provided with a liquid guide groove, which is located between the first through hole and the second through hole, the first end of the liquid guide groove is connected to the first through hole, and the second end of the liquid guide groove extends toward the second through hole; the second liquid guide member is passed through the second through hole, the main body is at least partially arranged in the first through hole, and the extension portion is arranged in the liquid guide groove.

[0009] In some embodiments, the second end of the liquid guide groove is connected to the second through hole, and the end of the extension away from the main body extends into the second through hole and contacts the second liquid guide member; or, the second end of the liquid guide groove is connected to the second through hole, and the end of the extension away from the main body extends into the second through hole, and the part of the extension extending into the second through hole surrounds at least part of the outer circumference of the second liquid guide member; or, the second end of the liquid guide groove is connected to the second through hole, and the end of the extension away from the main body extends into the second through hole; and the second liquid guide member includes a hollow liquid guide tube; the liquid guide tube is provided with at least one third through hole passing through its tube wall, and the end of the extension away from the main body also extends into at least one of the third through holes.

[0010] In some embodiments, the second liquid-conducting member includes a hollow liquid-conducting tube and a puncturing portion for puncturing the liquid storage bottle, the liquid-conducting tube is inserted into the second through hole, the puncturing portion is arranged in the cavity formed by the liquid-conducting tube and is sealed with the inner wall surface of the liquid-conducting tube; and / or, the atomization assembly also includes a tubular bracket, the bracket is sleeved on the periphery of the main body and inserted into the first through hole, the bracket is provided with at least one fourth through hole, and the main body is exposed to the liquid storage member through at least one fourth through hole; and / or, the atomization assembly also includes a tubular bracket, the bracket is sleeved on the periphery of the main body and inserted into the first through hole, the bracket is provided with an opening, and the extension portion extends into the liquid-conducting groove after passing through the opening.

[0011] In some embodiments, an end of the extension portion away from the main body portion is spaced apart from the second liquid guiding member.

[0012] In some embodiments, an atomization device is provided, comprising a housing and the atomization assembly described in any one of the above items, wherein the housing defines a first cavity, and the atomization assembly is disposed in the first cavity.

[0013] In some embodiments, an atomization device is provided, which includes a liquid storage bottle and the above-mentioned atomization device, and the liquid storage bottle is detachably mounted on the atomization device.

[0014] According to the atomization assembly of the above embodiment, the atomization assembly includes a liquid storage part, a first liquid guide part, a second liquid guide part and a heating element; the liquid storage part is provided with a first through hole and a second through hole, the first liquid guide part and the second liquid guide part are respectively arranged in the first through hole and the second through hole, the first through hole and the second through hole are arranged laterally spaced apart, and the first liquid guide part and the second liquid guide part are in liquid communication; the first liquid guide part includes a main body and an extension part connected to each other, the heating element is arranged on the main body, and the extension part extends toward the second liquid guide part. Since the first liquid guide part includes a main body and an extension part connected to each other, the extension part extends toward the second liquid guide part, and the extension part is closer to the second liquid guide part, the atomized matrix near the second liquid guide part can be quickly absorbed by the extension part, and the atomized matrix then penetrates from the extension part to the main body and contacts the heating element, and the atomized matrix can flow more smoothly to the main body, thereby effectively avoiding the phenomenon of insufficient liquid supply or even dry burning of the heating element. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 is a schematic diagram of the three-dimensional structure of the atomization device in some embodiments;

[0016] Figure 2 yes Figure 1 A schematic diagram of the longitudinal cross-sectional structure of the atomizing device shown;

[0017] Figure 3 yes Figure 1 A schematic diagram of a partially exploded structure of the atomizing device shown;

[0018] Figure 4 yes Figure 3 A further exploded structural diagram of the atomizing device shown;

[0019] Figure 5 is a schematic diagram of a longitudinal cross-sectional structure of an atomization assembly in some embodiments;

[0020] Figure 6 yes Figure 5 Schematic diagram of the exploded structure of the atomization assembly shown;

[0021] Figure 7 is a schematic structural diagram of a first liquid-guiding member in some embodiments;

[0022] The accompanying drawings are numerals as follows:

[0023] 1-liquid storage element, 11-first through hole, 12-second through hole, 13-liquid guide groove;

[0024] 2-first liquid guide, 21-main body, 22-extension portion, 221-first side wing, 222-second side wing, 2231-first section, 2232-second section, 2233-third section;

[0025] 3-second liquid guide member, 31-liquid guide tube, 310-third through hole, 32-puncture portion, 320-sealing structure;

[0026] 4-bracket, 40-fourth through hole, 41-opening;

[0027] 5-shell, 50-nozzle opening, 51-first cavity, 52-second cavity, 53-first part, 54-second part, 55-nozzle assembly, 551-nozzle shell, 552-nozzle inner tube;

[0028] 6-Battery. DETAILED DESCRIPTION

[0029] The present invention is further described in detail below by means of specific embodiments in conjunction with the accompanying drawings. Similar elements in different embodiments are numbered with associated similar elements. In the following embodiments, many detailed descriptions are provided to enable the present application to be better understood. However, those skilled in the art will readily appreciate that some of the features may be omitted under different circumstances, or may be replaced by other elements, materials, or methods. In some cases, some operations related to the present application are not shown or described in the specification. This is to avoid the core portion of the present application being overwhelmed by excessive descriptions. For those skilled in the art, it is not necessary to describe these related operations in detail. They can fully understand the related operations based on the description in the specification and the general technical knowledge in the art.

[0030] In addition, the features, operations, or characteristics described in the specification may be combined in any appropriate manner to form various embodiments. Furthermore, the steps or actions in the method description may be reordered or adjusted in a manner readily apparent to those skilled in the art. Therefore, the various sequences in the specification and drawings are provided solely for the purpose of clearly describing a particular embodiment and are not intended to be mandatory, unless otherwise specified.

[0031] The serial numbers assigned to components herein, such as "first," "second," etc., are used solely to distinguish the objects being described and do not convey any sequential or technical meaning. References to "connection" and "coupling" herein, unless otherwise specified, include both direct and indirect connections (couplings).

[0032] See also Figures 1 to 4 The utility model discloses an atomizing device, which includes a liquid storage bottle (not shown) and an atomizing device. The liquid storage bottle is detachably mounted on the atomizing device.

[0033] The atomization device includes a shell 5 and an atomization assembly. The shell 5 defines a first cavity 51 and a second cavity 52. ​​The atomization assembly is arranged in the first cavity 51, and the liquid storage bottle is detachably installed in the second cavity 52. ​​The liquid storage bottle can be used to store liquid atomization matrix. When the liquid storage bottle is installed in the second cavity 52, the liquid storage bottle is fluidically connected to the atomization assembly in the first cavity 51. The liquid storage bottle can provide an atomization matrix for the atomization assembly. The atomization matrix is ​​atomized by the atomization assembly to generate an aerosol, and the aerosol flows out from the mouthpiece 50 on the shell 5 for the user to inhale. The atomization matrix can be a smoke liquid, a medicinal liquid, etc. Furthermore, the shell 5 also defines a third cavity. The atomization device also includes a battery 6, which is installed in the third cavity. An electrical connection is formed between the battery 6 and the atomization assembly for powering the atomization assembly.

[0034] like Figure 5 and Figure 6 As shown, in some embodiments, the atomization assembly includes a liquid storage part 1, a first liquid guide part 2 and an atomization core. The first liquid guide part 2 and the second liquid guide part 3 are connected for liquid conduction. The atomization core includes a second liquid guide part 3 and a heating element (not shown). The liquid storage part 1 is a double-hole structure, that is, the liquid storage part 1 is provided with a first through hole 11 and a second through hole 12. The first through hole 11 and the second through hole 12 are arranged laterally spaced apart. At the same time, the liquid storage part 1 is also provided with a liquid guide groove 13, which is located between the first through hole 11 and the second through hole 12, the first end of the liquid guide groove 13 is connected to the first through hole 11, and the second end of the liquid guide groove 13 extends toward the second through hole 12.

[0035] The first liquid guide 2 includes a main body 21 and an extension 22. The main body 21 is at least partially disposed in the first through hole 11. That is, the main body 21 can be partially disposed in the first through hole 11, or can be entirely disposed in the first through hole 11.

[0036] The heating element is disposed on the main body 21. Specifically, the main body 21 may be a tubular structure with both ends extending through it, and the heating element is disposed on the inner circumference of the main body 21. For example, the heating element may be attached to the inner circumference of the main body 21, or the heating element may be partially embedded in the main body 21. The extension portion 22 may be a flat sheet-like structure.

[0037] The second liquid guiding member 3 is passed through the second through hole 12. Thus, the first liquid guiding member 2 and the second liquid guiding member 3 are arranged laterally spaced apart on the liquid storage member 1. Alternatively, in some other embodiments, the liquid storage member 1 is not limited to a double-hole structure, but may also be other structures, and the first liquid guiding member 2 and the second liquid guiding member 3 may be connected to the liquid storage member 1 respectively. Among them, the end of the second liquid guiding member 3 away from the liquid storage member 1 is connected to the second cavity 52, and when the liquid storage bottle is installed in the second cavity 52, the second liquid guiding member 3 is connected to the liquid storage bottle, so that the atomized matrix in the liquid storage bottle flows through the first liquid guiding member 2, the liquid storage member 1, the extension part 22, the main body 21 and the heating element in sequence. The atomized matrix is ​​heated and atomized at the heating element to produce an aerosol.

[0038] The liquid storage member 1 may be a porous fiber material, for example, the liquid storage member 1 may be a liquid storage cotton. Figure 5 and Figure 6 In the illustrated embodiment, the first through-hole 11 and the second through-hole 12 extend longitudinally through the upper and lower surfaces of the liquid storage element 1, respectively. The fibers within the liquid storage element 1 also extend longitudinally. Therefore, the atomized matrix tends to flow longitudinally within the liquid storage element 1 and is less likely to flow transversely. This makes it more difficult for the atomized matrix to reach the first liquid guide 2, potentially leading to insufficient liquid supply to the heating element or even dry burning.

[0039] In order to solve the above technical problems, the extension part 22 is arranged in the liquid guide groove 13, and the extension part 22 extends toward the second liquid guide part 3. Since the extension part 22 is closer to the second liquid guide part 3, a part of the atomized matrix near the second liquid guide part 3 gradually penetrates through the liquid storage part 1 to the first through hole 11 and is absorbed by the main body 21; another part of the atomized matrix near the second liquid guide part 3 can be directly and quickly absorbed by the extension part 22, and this part of the atomized matrix then penetrates into the main body 21 through the extension part 22 and contacts the heating element; and the setting of the extension part 22 increases the contact area between the first liquid guide part 2 and the liquid storage part 1, thereby increasing the liquid conduction rate between the atomized matrix stored in the liquid storage part 1 and the first liquid guide part 2, and the atomized matrix can flow more smoothly to the main body 21, thereby effectively avoiding insufficient liquid supply to the heating element or even dry burning.

[0040] Of course, in some other embodiments, the liquid guiding groove 13 may not be provided. The extension portion 22 may be attached to the liquid storage member 1 and extend along other positions on the liquid storage member 1 toward the second liquid guiding member 3 , thereby being close to the second liquid guiding member 3 .

[0041] like Figure 7As shown, in some embodiments, the extension portion 22 includes a first wing 221 and a second wing 222, which are spaced apart and respectively connected to the main body 21. The first wing 221 and the second wing 222 each extend toward the second liquid guide 3. Specifically, the first liquid guide 2 can be made of cotton. A manufacturing process for a cotton-made first liquid guide 2 includes wrapping the cotton main body 21 around the periphery of the heating element. During the wrapping process, an excess cotton portion protrudes radially from the outer periphery of the main body 21. This excess cotton portion serves as the initial form of the extension portion 22. The middle portion of this excess cotton portion is cut out, leaving two side edges. These edges naturally form the spaced-apart first wing 221 and second wing 222. The first wing 221 and second wing 222 can then be bent into a specific shape. Thus, during the manufacturing process of the first liquid guide 2, the desired extension portion 22 can be formed by simply cutting out the middle portion of the excess cotton portion, facilitating the manufacture and production of the first liquid guide 2.

[0042] Further, if Figure 7 As shown, in some embodiments, the first wing 221 and the second wing 222 are symmetrically arranged. Specifically, the first wing 221 and the second wing 222 can be configured to be mirror-symmetrically arranged with the center line connecting the first through hole 11 and the second through hole 12 as the reference line.

[0043] Further, if Figure 7 As shown, in some embodiments, at least one of the first side wing 221 and the second side wing 222 has a sheet-like structure. That is, only the first side wing 221 may have a sheet-like structure, only the second side wing 222 may have a sheet-like structure, or both the first side wing 221 and the second side wing 222 may have a sheet-like structure. That is, one of the three dimensions of the first side wing 221 is much smaller than another dimension. For example, the dimension of the first side wing 221 in the direction extending toward the second liquid guide 3 is much larger than its dimension in the direction perpendicular to that dimension. This can guide the atomized substrate along the first side wing 221 and the second side wing 222 toward the main body 21 and the heating element on the main body 21, increasing the liquid guide rate in the direction in which the first side wing 221 extends, allowing the atomized substrate to flow more smoothly toward the main body 21 and the heating element on the main body 21. The same applies to the second side wing 222, and will not be described in detail here.

[0044] In some embodiments, the trajectory of the first wing 221 extending toward the second liquid guide 3 includes at least one of a broken line, a curve, and a straight line. That is, the trajectory of the first wing 221 extending toward the second liquid guide 3 may include one, two, or three of the broken line, the curve, and the straight line. Specifically, Figure 7In the illustrated embodiment, the first wing 221 includes a first section 2231, a second section 2232, and a third section 2233, which are sequentially connected along its extension direction. The first section 2231 is connected to the main body 21, and the third section 2233 is located near the second liquid-guiding member 3. The extension paths of the first and second sections 2231, 2232 are each straight lines. The extension path formed by the first and second sections 2231, 2232 together is a broken line (i.e., the first and second sections 2231, 2232 are bent relative to each other at a certain angle), and the extension path of the third section 2233 is a curved line. An acute angle is formed between the first section 2231 and the main body 21, causing the first section 2231 to tend to retract inward. Similarly, the extension path of the second wing 222 toward the second liquid-guiding member 3 also includes at least one of a broken line, a curve, and a straight line. The technical features of the second wing 222 can be referred to the first wing 221 and will not be further described here.

[0045] like Figure 6 As shown, in some embodiments, the second end of the liquid conducting groove 13 is connected to the second through hole 12. That is, the second end and the first end of the liquid conducting groove 13 are respectively connected to the second through hole 12 and the first through hole 11. As a result, the second through hole 12 can be directly fluidically connected to the extension portion 22 in the liquid conducting groove 13, further improving the liquid conduction rate between the atomizing matrix and the main body 21. Moreover, since the liquid conducting groove 13 is respectively connected to the second through hole 12 and the first through hole 11, the extension portion 22 in the liquid conducting groove 13 can extend into the second through hole 12 and contact the second liquid conducting member 3, thereby further improving the liquid conduction rate. Of course, in some other embodiments, according to the requirements of the liquid conduction rate, the second end of the liquid conducting groove 13 may not be connected to the second through hole 12.

[0046] Furthermore, in some embodiments, when the second end of the liquid-conducting groove 13 is connected to the second through hole 12, the end of the extension portion 22 away from the main body portion 21 can extend into the second through hole 12, thereby reducing the distance between the extension portion 22 and the second liquid-conducting member 3 and further improving the liquid-conducting rate. Of course, depending on the required liquid-conducting rate, the extension portion 22 may not extend into the second through hole 12.

[0047] In some embodiments, when the end of the extension portion 22 away from the main body 21 extends into the second through hole 12, the end of the extension portion 22 away from the main body 21 contacts the second liquid guide 3. Through the direct contact between the extension portion 22 and the second liquid guide 3, the atomized substrate near the second liquid guide 3 can be quickly guided to the extension portion 22. The atomized substrate then penetrates the extension portion 22 into the main body 21 and contacts the heating element.

[0048] Alternatively, in other embodiments, when the end of the extension portion 22 away from the main body portion 21 extends into the second through hole 12, the portion of the extension portion 22 extending into the second through hole 12 surrounds at least a portion of the outer circumference of the second liquid guiding member 3. That is, the portion of the extension portion 22 extending into the second through hole 12 can completely surround the outer circumference of the second liquid guiding member 3 (that is, the extension portion 22 is annularly arranged around the outer periphery of the second liquid guiding member 3); alternatively, the portion of the extension portion 22 extending into the second through hole 12 can only surround a portion of the outer circumference of the second liquid guiding member 3, for example, only surround half of the outer circumference of the second liquid guiding member 3.

[0049] like Figure 6 As shown, in some embodiments, the second liquid-conducting member 3 includes a hollow liquid-conducting tube 31. The liquid-conducting tube 31 is provided with at least one third through-hole 310 extending through its wall. The aerosolized matrix stored in the liquid storage bottle enters the cavity formed by the liquid-conducting tube 31 and then penetrates into the interior of the liquid storage member 1 through the third through-hole 310, or connects to the liquid-conducting groove 13 through the third through-hole 310. When the end of the extension portion 22 distal from the main body 21 extends into the second through-hole 12, the end of the extension portion 22 distal from the main body 21 can also extend into the at least one third through-hole 310, thereby significantly improving the liquid-conducting rate.

[0050] like Figure 6 and Figure 7 As shown, in some embodiments, the third section 2233 of each of the first side wing 221 and the second side wing 222 forms a fan-shaped enclosing structure, which partially surrounds the outer peripheral surface of the second liquid-guiding member 3 and covers at least one third through hole 310, thereby increasing the contact area between the first side wing 221 and the second side wing 222 and the atomizing matrix near the third through hole 310, thereby increasing the liquid guide rate in the extension direction of the first side wing 221 and the second side wing 222, and the atomized matrix can flow more smoothly to the main body 21 and the heating element on the main body 21.

[0051] In some embodiments, the end of the extension portion 22 away from the main body 21 is spaced apart from the second liquid-guiding member 3. That is, the extension portion 22 does not directly contact the second liquid-guiding member 3. Atomized substrate near the second liquid-guiding member 3 gradually permeates the extension portion 22 via the liquid reservoir 1 or the second through-hole 12. Furthermore, the spacing between the end of the extension portion 22 away from the main body 21 and the second liquid-guiding member 3 can be less than 2 mm to minimize the distance between the extension portion 22 and the second liquid-guiding member 3 and ensure a sufficient liquid-guiding rate.

[0052] like Figure 6As shown, in some embodiments, the second liquid-conducting member 3 further includes a puncture portion 32, and the liquid-conducting tube 31 is provided through the second through hole 12. The puncture portion 32 is provided in the cavity formed by the liquid-conducting tube 31 and is sealed with the inner wall surface of the liquid-conducting tube 31. Specifically, a circle of sealing structure 320 is provided on the outer periphery of the puncture portion 32, and the sealing structure 320 is connected to the inner wall surface of the liquid-conducting tube 31; and the sealing structure 320 is located above the third through hole 310 to prevent the atomized matrix from being blocked from passing through the third through hole 310. This can prevent the atomized matrix from overflowing from the upper end of the liquid-conducting tube 31. The lower end of the puncture portion 32 can form a pointed end for puncturing the infusion end of the liquid storage bottle, so that the interior of the liquid storage bottle is connected to the cavity formed by the liquid-conducting tube 31, so as to conduct the atomized matrix into the liquid storage member 1. In some embodiments, the cross-sectional area of ​​the puncture portion 32 gradually increases from bottom to top (i.e., from the direction away from the liquid storage bottle), and the flow rate of the liquid atomized substrate slows down when passing through the outer wall of the puncture portion 32. Therefore, the puncture portion 32 can also play a role in controlling the flow rate of the atomized substrate.

[0053] Alternatively, in other embodiments, the second liquid-guiding member 3 may be a cotton core, which is passed through the second through hole 12, for example, squeezed into the second through hole 12, and tightly fitted with the inner wall of the second through hole 12, and the end thereof away from the second through hole 12 is immersed in the liquid storage bottle, sucking the atomized matrix from the liquid storage bottle to the second through hole 12, and then the atomized matrix is ​​conducted to the liquid storage member 1.

[0054] like Figure 6 As shown, in some embodiments, the atomizer assembly further includes a tubular bracket 4, which is sleeved around the outer periphery of the main body 21 and extends through the first through-hole 11. Specifically, the inner circumference of the bracket 4 mates with the outer circumference of the main body 21, and the outer circumference of the bracket 4 mates with the wall surface of the first through-hole 11 of the liquid reservoir 1. The bracket 4 is positioned between the main body 21 and the liquid reservoir 1. The bracket 4 defines at least one fourth through-hole 40, through which the main body 21 is exposed to the liquid reservoir 1. The bracket 4 covers all areas of the main body 21 except those corresponding to the fourth through-hole 40, leaving only the area of ​​the main body 21 corresponding to the fourth through-hole 40 directly facing the wall surface of the first through-hole 11. The bracket 4 also defines an opening 41, through which the extension 22 extends into the liquid guide groove 13. Specifically, the opening 41 is used to secure the excess cotton of the extension 22 before molding, as well as the first and second side wings 221, 222 of the extension 22 after molding.

[0055] like Figures 1 to 4As shown, in some embodiments, the shell 5 includes a first part 53, a second part 54 and a suction nozzle assembly 55. The first part 53 defines a first cavity 51, the second part 54 defines a second cavity 52, and the first part 53 is detachably connected to the second part. Thus, the first part 53 and the second part 54 are disassembled and separated, and the liquid storage bottle can be disassembled and assembled in the second cavity 52. ​​The first part 53 has an open end, and the suction nozzle assembly 55 includes a suction nozzle shell 551 and a suction nozzle inner tube 552 connected to each other. The suction nozzle shell 551 encloses a cavity, and the suction nozzle inner tube 552 is arranged in the cavity enclosed by the suction nozzle shell 551 and is connected to the inner side of the suction nozzle shell 551. The suction nozzle shell 551 is sealed with the open end of the first part 53 to form a closed cavity of the first cavity 51. The end of the nozzle inner tube 552 near the atomizer assembly corresponds to the first through-hole on the liquid storage member. The end (lower end) of the nozzle inner tube 552 near the atomizer assembly is connected to the first through-hole and the first liquid guide member within the first through-hole. As a result, the aerosol generated after the atomized substrate is heated and atomized by the heating element at the first liquid guide member can enter the nozzle inner tube 552. The end (upper end) of the nozzle inner tube 552 away from the atomizer assembly is connected to the air outside the housing, thus forming a nozzle opening 50 at this end. The aerosol entering the nozzle inner tube 552 is discharged through the nozzle opening 50 for inhalation by the user.

[0056] The above examples are used to illustrate the present invention, which are only used to help understand the present invention and are not intended to limit the present invention. Those skilled in the art of the present invention can make some simple deductions, modifications or substitutions based on the concept of the present invention.

Claims

1. An atomizing assembly, characterized in that: include: The liquid storage element (1) is provided with a first through hole (11) and a second through hole (12), wherein the first through hole (11) and the second through hole (12) are arranged laterally and spaced apart; A first liquid guiding member (2) is arranged in the first through hole (11), the first liquid guiding member (2) comprises a main body portion (21) and an extension portion (22) connected to each other, and a heating element is arranged on the main body portion (21). The second liquid guiding member (3) is arranged in the second through hole (12), the extension portion (22) extends toward the second liquid guiding member (3), and the first liquid guiding member (2) and the second liquid guiding member (3) are in liquid-guiding communication.

2. The atomizing assembly according to claim 1, characterized in that: The main body (21) is a tubular structure with two ends passing through, and the heating element is arranged on the inner circumference of the main body (21).

3. The atomizing assembly according to claim 1, characterized in that: The extension portion (22) comprises a first side wing (221) and a second side wing (222), wherein the first side wing (221) and the second side wing (222) are arranged at intervals and are respectively connected to the main body (21), and the first side wing (221) and the second side wing (222) respectively extend toward the second liquid-guiding member (3).

4. The atomizing assembly according to claim 3, characterized in that: The first side wing (221) and the second side wing (222) are symmetrically arranged; and / or, the first side wing (221) is a sheet-like structure; and / or, the second side wing (222) is a sheet-like structure; And / or, the trajectory of the first wing (221) extending toward the second liquid-guiding member (3) includes a broken line; And / or, the trajectory of the first wing (221) extending toward the second liquid-guiding member (3) includes a curve; And / or, the trajectory of the first wing (221) extending toward the second liquid-guiding member (3) includes a straight line; and / or, the trajectory of the second wing (222) extending toward the second liquid-guiding member (3) includes a broken line; and / or, the trajectory of the second wing (222) extending toward the second liquid-guiding member (3) includes a curve; And / or, the trajectory of the second wing (222) extending toward the second liquid-guiding member (3) includes a straight line.

5. The atomizer assembly according to any one of claims 1 to 4, characterized in that: The liquid storage element (1) is further provided with a liquid guide groove (13), the liquid guide groove (13) being located between the first through hole (11) and the second through hole (12), the first end of the liquid guide groove (13) being connected to the first through hole (11), and the second end of the liquid guide groove (13) extending toward the second through hole (12); The second liquid guiding member (3) is arranged in the second through hole (12), the main body (21) is at least partially arranged in the first through hole (11), and the extension portion (22) is arranged in the liquid guiding groove (13).

6. The atomizing assembly according to claim 5, characterized in that: The second end of the liquid guide groove (13) is connected to the second through hole (12), and one end of the extension portion (22) away from the main body portion (21) extends into the second through hole (12) and contacts the second liquid guide member (3); Alternatively, the second end of the liquid guide groove (13) is connected to the second through hole (12), the end of the extension portion (22) away from the main body portion (21) extends into the second through hole (12), and the portion of the extension portion (22) extending into the second through hole (12) surrounds at least a portion of the outer peripheral surface of the second liquid guide member (3); Alternatively, the second end of the liquid guide groove (13) is connected to the second through hole (12), and the end of the extension portion (22) away from the main body (21) extends into the second through hole (12); and the second liquid guide member (3) includes a hollow liquid guide tube (31); the liquid guide tube (31) is provided with at least one third through hole (310) passing through the tube wall thereof, and the end of the extension portion (22) away from the main body (21) also extends into at least one of the third through holes (310).

7. The atomizing assembly according to claim 5, characterized in that: The second liquid guiding member (3) comprises a hollow liquid guiding tube (31) and a puncturing portion (32) for puncturing the liquid storage bottle, wherein the liquid guiding tube (31) is arranged through the second through hole (12), and the puncturing portion (32) is arranged in a cavity formed by the liquid guiding tube (31) and is sealed with the inner wall surface of the liquid guiding tube (31); And / or, the atomizer assembly further comprises a tubular bracket (4), the bracket (4) being sleeved on the periphery of the main body (21) and passing through the first through hole (11), the bracket (4) being provided with at least one fourth through hole (40), and the main body (21) being exposed to the liquid storage member (1) through the at least one fourth through hole (40); And / or, the atomizing assembly further comprises a tubular bracket (4), the bracket (4) being sleeved on the periphery of the main body (21) and passing through the first through hole (11), the bracket (4) being provided with an opening (41), and the extension portion (22) passing through the opening (41) and extending into the liquid guide groove (13).

8. The atomizer assembly according to any one of claims 1 to 4, characterized in that: One end of the extension portion (22) away from the main body portion (21) is spaced apart from the second liquid guiding member (3).

9. An atomizing device, characterized in that: The invention comprises a housing (5) and an atomizing assembly according to any one of claims 1 to 8, wherein the housing (5) defines a first cavity (51), and the atomizing assembly is arranged in the first cavity (51).

10. An atomizing device, characterized in that: It comprises a liquid storage bottle and the atomizing device according to claim 9, wherein the liquid storage bottle is detachably mounted on the atomizing device.