Air adjusting structure and atomization device

By adopting a gas regulating structure in the atomization device and using the design of the partition and the gas regulating assembly, the problem of gas flow is solved, and a more uniform gas flow and mist output effect is achieved.

CN223081132UActive Publication Date: 2025-07-11SHENZHEN GEEKVAPE TECH CO LTD
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Patent Information

Application Number
CN202422177856.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-04
Publication Date
2025-07-11
Estimated Expiration
2034-09-04

AI Technical Summary

Technical Problem

The uniformity of gas flowing to the atomization core in the atomization device is poor, affecting the fog output effect.

Method used

The air regulating structure is adopted, including a housing and an air regulating assembly, and the inner space of the housing is divided into multiple air intake spaces through a partition, and the first air intake hole and the second air intake hole are distributed in different directions, and the communication area thereof is adjusted to uniformly flow of gas.

Benefits of technology

The uniformity of gas flow to the atomization core is improved, thereby improving the mist uniformity and effect of the atomization device.

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Abstract

The utility model is suitable for the technical field of atomization, and provides an air adjusting structure and an atomization device, the atomization device comprises the air adjusting structure, and the air adjusting structure comprises a shell and an air adjusting assembly. The shell comprises a shell body and a separator; the separator is arranged in the shell and divides the internal space of the shell into a first space and a second space; the second space comprises a first air inlet space, a second air inlet space and a third air inlet space, and the first air inlet space and the third air inlet space are distributed at intervals in the first direction and communicate with the first space; the shell is provided with a first air inlet hole, and the separator is provided with a first axis which is parallel to the second direction and penetrates through the first air inlet hole; in the first direction, the distances between the two opposite ends of the partition piece and the first axis are equal; the air adjusting assembly is arranged in the second air inlet space and provided with a second air inlet hole. The air adjusting assembly is used for sliding in the second air inlet space so as to adjust the communication area of the second air inlet hole and the first air inlet hole. In this way, the uniformity of the gas at the atomizing core can be improved.
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Description

Technical Field

[0001] The present application belongs to the field of atomization technology, and more specifically, relates to an air regulating structure and an atomization device. Background Art

[0002] The atomizing device is a device used to heat the atomizing liquid so as to atomize the atomizing liquid to form an aerosol. The aerosol formed by the atomization of the atomizing liquid can be used for inhalation by the user.

[0003] The atomizer device may generally include a housing, an air-regulating assembly and an atomizer core, wherein the atomizer core and the air-regulating assembly are both disposed on the housing. The housing is provided with a first air inlet hole, and the air-regulating assembly is provided with a second air inlet hole. By turning the air-regulating assembly, the communicating area between the first air inlet hole and the second air inlet hole can be adjusted, thereby adjusting the amount of gas flowing to the atomizer core.

[0004] However, when the communicating area between the first air inlet and the second air inlet changes by turning the air regulating assembly, the air inlet direction of the gas into the housing will also change. This will inevitably make the uniformity of the gas flowing to the atomizer core poor, thereby making the atomizer output uniformity poor, affecting the atomizer output effect. Utility Model Content

[0005] One of the purposes of the embodiments of the present application is to provide a gas regulating structure and an atomizing device, which can improve the problem of poor uniformity of gas flow to the atomizing core.

[0006] In order to solve the above technical problems, the technical solution adopted in the embodiment of the present application is:

[0007] In a first aspect, an embodiment of the present application provides a gas adjustment structure, comprising:

[0008] The shell comprises a shell and a separator; the separator is arranged in the shell and divides the internal space of the shell into a first space and a second space; the first space is used to accommodate an atomizer core; the second space comprises a first air inlet space, a second air inlet space and a third air inlet space which are sequentially distributed and connected, the first air inlet space and the third air inlet space are spaced and distributed along a first direction and are respectively connected to the first space; the shell is provided with a first air inlet hole which is distributed and connected to the second air inlet space along a second direction, the separator is provided with a first axis which is parallel to the second direction and passes through the first air inlet hole; along the first direction, the distances between the two opposite ends of the separator and the first axis are equal;

[0009] an air regulating component, disposed in the second air inlet space and provided with a second air inlet hole connected to the second air inlet space; the air regulating component is used to slide in the second air inlet space to adjust the connecting area between the second air inlet hole and the first air inlet hole;

[0010] The first direction is perpendicular to the second direction.

[0011] In some embodiments, the partition includes a first wall, a second wall, and a third wall connected in sequence on a side close to the second space, the first wall and the shell are arranged to form the first air intake space, the second wall and the shell are arranged to form the second air intake space, the third wall and the shell are arranged to form the third air intake space, one end of the first wall away from the second wall and one end of the third wall away from the second wall are opposite ends of the partition, respectively, and are both connected to the shell;

[0012] In a cross section parallel to the first direction and the second direction, the second wall is in an arc shape, the circle where the second wall is located has a first center, and the first axis passes through the first center.

[0013] In some embodiments, in a cross section parallel to the first direction and the second direction, the second air inlet hole is arranged through the air regulating assembly toward the first center of the circle.

[0014] In some embodiments, in the first direction, the second wall extends beyond opposite ends of the first air inlet hole.

[0015] In some embodiments, the second space and the first air inlet are both axially symmetrically arranged with respect to the first axis.

[0016] In some embodiments, the second air inlet hole includes a plurality of sub-holes spaced apart and extending through the air regulating component, and the sub-holes are connected to the second air inlet space.

[0017] In some embodiments, the air conditioning assembly elastically abuts between the partition and the shell.

[0018] In some embodiments, the gas conditioning assembly comprises:

[0019] A support member abutting against the partition member;

[0020] A buffer is installed on the support member and abuts against the shell; the orthographic projection of the buffer on the portion of the shell having the first air inlet hole covers the first air inlet hole; and the second air inlet hole passes through the buffer and the support member.

[0021] In some embodiments, the air regulating structure further includes a toggle member installed on the air regulating component, the toggle member is penetrated through the first air inlet hole, and is spaced apart from the second air inlet hole.

[0022] In some embodiments, the housing further includes a first limiting member disposed between the first air inlet space and the second air inlet space to limit the air regulating assembly;

[0023] And / or, the housing further includes a second limiting member disposed between the second air inlet space and the third air inlet space to limit the air regulating assembly.

[0024] In some embodiments, an installation hole for installing the atomization core is provided in the first space. The installation hole and the second air inlet space are spaced apart along the second direction, and the first axis passes through the installation hole.

[0025] In a second aspect, an embodiment of the present application provides an atomization device, including an atomization core and the air regulating structure, and at least a part of the atomization core is disposed in the first space.

[0026] The beneficial effects of the air regulating structure and the atomization device provided by the embodiments of the present application are as follows:

[0027] For the air regulating structure provided by the embodiments of the present application, the distances from the opposite ends of the partition member to the first axis are equal respectively. The first air inlet space and the second air inlet space are spaced apart along the first direction. The first axis is parallel to the distribution direction of the second air inlet space and the first air inlet hole and passes through the first air inlet hole. The first direction and the second direction are perpendicular. As a result, in the first direction, the first air inlet space and the second air inlet space can be approximately evenly located on the opposite sides of the first axis, and the first air inlet hole is approximately located at the middle position of the partition member. In this way, when sliding the air regulating assembly to adjust the communication area between the first air inlet hole and the second air inlet hole, thereby adjusting the air intake amount, the gas flows through the first air inlet hole and the second air inlet hole to the second air inlet space in sequence. Specifically, it can approximately flow to the middle position of the partition member along the first direction. In this way, it can be more evenly distributed to the first air inlet space and the third air inlet space, and then flow to the atomization core in the first space. In this way, the uniformity of the gas flowing to the atomization core can be improved, thereby improving the uniformity of the mist output of the atomization device constituted by the air regulating structure, so as to improve the mist output effect of the atomization device.

[0028] For the atomization device provided by the embodiments of the present application, by adopting the air regulating structure involved in the above embodiments, the uniformity of the gas flowing to the atomization core is improved, thereby improving the uniformity of the mist output of the atomization device, so as to improve the mist output effect of the atomization device.

[0029] The above description is only an overview of the technical solution of the present application. In order to be able to understand the technical means of the present application more clearly, it can be implemented according to the content of the specification. And in order to make the above and other purposes, features and advantages of the present application more obvious and understandable, the specific embodiments of the present application are hereinafter specifically exemplified. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.

[0031] Figure 1 A three-dimensional structural diagram of an atomization device provided in some embodiments of the present application;

[0032] Figure 2 for Figure 1 Section view along AA;

[0033] Figure 3 for Figure 1 Sectional view along BB;

[0034] Figure 4 for Figure 3 A partial enlarged view of

[0035] Figure 5 A three-dimensional structural diagram of a housing of an air conditioning structure provided in some embodiments of the present application;

[0036] Figure 6 A three-dimensional diagram of an air regulating assembly and actuating member of an air regulating structure provided in some embodiments of the present application.

[0037] Among them, the reference numerals in the figure are:

[0038] 100-air regulating structure; 10-housing; 101-first space; 102-second space; 1021-first air inlet space; 1022-second air inlet space; 1023-third air inlet space; 103-first air inlet hole; 104-mounting hole; 11-housing; 12-partitioning piece; 1201-first wall; 1202-second wall; 1203-third wall; 20-air regulating assembly; 201-second air inlet hole; 2011-sub-hole; 21-supporting piece; 22-buffering piece; 30-actuating piece; 200-atomizing core; L-first axis; O-first center of circle; Y-first direction; X-second direction; Z-third direction. DETAILED DESCRIPTION

[0039] Embodiments of the present application are described in detail below, and examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present application, and should not be construed as limiting the present application.

[0040] Unless otherwise specified, all embodiments and optional embodiments of the embodiments of the present application can be combined with each other to form a new technical solution.

[0041] Unless otherwise specified, all technical features and optional technical features of the embodiments of the present application can be combined with each other to form a new technical solution.

[0042] In the description of the embodiments of the present application, it should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present application.

[0043] In addition, the terms "first" and "second" are only used for descriptive purposes and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features.

[0044] In the description of the embodiments of the present application, the meaning of "a plurality" is more than two. Unless otherwise specifically defined, "more than two" includes two. Correspondingly, the meaning of "multiple groups" is more than two groups, including two groups.

[0045] In the description of the embodiments of the present application, unless otherwise clearly specified and limited, the terms such as "installation", "connection", "connection", "fixation" and the like should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the connection inside two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.

[0046] In the description of the present application, the term "and / or" is only a description of the association relationship of the associated objects, indicating that there can be three relationships. For example, A and / or B can represent: the presence of A, the presence of both A and B, and the presence of B. In addition, in the present application, the character " / " generally represents an "or" relationship between the associated objects before and after.

[0047] Although the present application has been described with reference to preferred embodiments, various modifications can be made thereto and components thereof can be replaced with equivalents without departing from the scope of the present application. In particular, as long as there is no structural conflict, the various technical features mentioned in each embodiment can be combined in any manner. The present application is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.

[0048] The following is a detailed description in conjunction with specific drawings and embodiments:

[0049] Please refer to Figure 1 and Figure 2 , wherein, Figure 1 is a three-dimensional structural diagram of an atomizing device provided in some embodiments of the present application, Figure 2 is Figure 1 a sectional view taken along A-A. It should be noted here that the atomizing device provided in the embodiments of the present application may include an air regulating structure 100 and an atomizing core 200, and the atomizing core 200 is disposed on the air regulating structure 100. Among them, the atomizing core 200 is used to heat the atomizing liquid so that the atomizing liquid is atomized to form a mist. The mist formed by atomizing the atomizing liquid can be used for the user to inhale. The air regulating structure 100 is used to regulate the amount of gas flowing to the atomizing core 200.

[0050] Please refer to Figures 1 to 5 , wherein, Figure 3 is Figure 1 a sectional view taken along B-B, Figure 4 is Figure 3 a partial enlarged view of Figure 5A three-dimensional structural view of the housing 10 of the air regulating structure 100 provided by some embodiments of the present application. The air regulating structure 100 provided by the embodiments of the present application includes a housing 10 and an air regulating component 20. The housing 10 includes a housing body 11 and a partition member 12. The partition member 12 is disposed inside the housing body 11 and divides the internal space of the housing body 11 into a first space 101 and a second space 102. The first space 101 is used to install an atomization core 200. The second space 102 includes a first air inlet space 1021, a second air inlet space 1022, and a third air inlet space 1023 that are distributed in sequence and communicated with each other. The first air inlet space 1021 and the third air inlet space 1023 are spaced apart along a first direction Y and are respectively communicated with the first space 101. The housing body 11 is provided with a first air inlet hole 103, and the first air inlet hole 103 is distributed and communicated with the second air inlet space 1022 along a second direction X. The partition member 12 is provided with a first axis L, the first axis L is parallel to the second direction X, and passes through the first air inlet hole 103. Along the first direction Y, the relative two ends of the partition member 12 are respectively equidistant from the first axis L. The air regulating component 20 is disposed inside the second air inlet space 1022 and is provided with a second air inlet hole 201, and the second air inlet hole 201 is communicated with the second air inlet space 1022. The air regulating component 20 is used to slide inside the second air inlet space 1022 to adjust the communication area between the second air inlet hole 201 and the first air inlet hole 103. Wherein, the first direction Y and the second direction X are perpendicular.

[0051] The housing 10 is the housing body 11 structure of the air regulating structure 100, and can also be the housing body 11 structure of an atomization device.

[0052] The housing body 11 is the main part of the housing 10. The partition member 12 is a component disposed inside the housing body 11 and used to divide the internal space of the housing body 11 into a first space 101 and a second space 102. Among them, as Figure 5 shown, the partition member 12 and the housing body 11 can be integrally connected; alternatively, the partition member 12 can also be separately connected to the housing body 11.

[0053] Specifically, as Figures 3 to 5 shown, the partition member 12 is disposed inside the housing body 11 and between the first space 101 and the second space 102, so that the first space 101 and the second space 102 are separated by the partition member 12. It can be understood that the housing body 11 can be divided into a first part and a second part, and the partition member 12 is disposed between the first part and the second part. The partition member 12 and the first part enclose to form the first space 101, and the partition member 12 and the second part enclose to form the second space 102.

[0054] As an example, as Figures 3 to 5 shown, the first part and the second part are distributed and connected along the second direction X, and the partition member 12 divides the internal space of the housing body 11 into a first space 101 and a second space 102 approximately along the second direction X.

[0055] Specifically, as Figure 2 shown, at least a part of the atomization core 200 is received in the first space 101.

[0056] Specifically, as Figure 4 and Figure 5 shown, the second space 102 can be roughly divided into a first intake space 1021, a second intake space 1022, and a third intake space 1023 that are sequentially connected. The first intake space 1021 and the third intake space 1023 are spaced apart along the first direction Y. The second intake space 1022 is provided between the first intake space 1021 and the third intake space 1023 and is respectively connected to the first intake space 1021 and the third intake space 1023. Wherein, the first direction Y is the approximate distribution direction of the first intake space 1021 and the third intake space 1023.

[0057] Specifically, as Figures 3 to 5 shown, the first intake hole 103 is provided on the second part of the housing 11 and penetrates through the second part. It can be understood that the first intake hole 103 penetrates through the part of the second part that is used to enclose the second intake space 1022 with the partition member 12, so that the second intake hole 201 and the second intake space 1022 can be roughly distributed along the second direction X and are connected.

[0058] The first axis L is the virtual axis of the partition member 12. The first axis L is parallel to the second direction X and passes through the first intake hole 103, which means that the first axis L is parallel to the second direction X, and the first axis L passes through the first intake hole 103 along the second direction X.

[0059] In the first direction Y, the relative distances of the opposite ends of the partition member 12 from the first axis L are equal, which means that among the opposite ends of the partition member 12 along the first direction Y, the distance of one end from the first axis L in the first direction Y is equal to the distance of the other end from the first axis L in the first direction Y. It can be understood that the first axis L is the center line of the partition member 12 parallel to the second direction X, that is, the first axis L is located at the middle position of the partition member 12 along the first direction Y. Based on this, by passing the first axis L through the first intake hole 103 along the second direction X, the first intake hole 103 can also be roughly located at the middle position of the second space 102 along the first direction Y. Specifically, the first intake hole 103 and the middle position of the second space 102 in the first direction Y are roughly correspondingly arranged along the second direction X. In this way, when the gas flows from the first intake hole 103 into the second space 102, it can roughly flow to the middle position of the second space 102 along the first direction Y.

[0060] The air regulating component 20 refers to the component structure for regulating the intake air volume. The second intake hole 201 penetrates through the air regulating component 20, so that the second intake hole 201 communicates with the second intake space 1022, thereby enabling the second intake hole 201 to communicate with the first intake space 1021 and the third intake space 1023 through the second intake space 1022.

[0061] Specifically, the air regulating component 20 is disposed in the second intake space 1022 and abuts against the partition member 12 and the housing 11. The air regulating component 20 can slide in the second intake space 1022, specifically along the partition member 12, for air regulation. Specifically, when the air regulating component 20 slides in the second intake space 1022, it can slide to a position where the second intake hole 201 and the first intake hole 103 are opposite and communicate. In this way, the gas outside the housing 11 can flow through the first intake hole 103 to the second intake hole 201, and then flow into the second intake space 1022. Among them, by sliding the air regulating component 20 in the second intake space 1022, the communication area between the first intake hole 103 and the second intake hole 201 can be adjusted. When this communication area increases, the intake air volume of the air regulating structure 100 can be increased; when this communication area decreases, the intake air volume of the air regulating structure 100 can be decreased.

[0062] When the air regulating component 20 slides in the second intake space 1022, it can also slide to cover and close the first intake hole 103. At this time, the communication area between the first intake hole 103 and the second intake hole 201 is 0, and the gas outside the housing 11 cannot flow through the first intake hole 103 into the second intake hole 201, that is, the intake air volume of the air regulating structure 100 is 0.

[0063] It should be supplemented here that when the air regulating component 20 slides in the second intake space 1022 to a position where the first intake hole 103 and the second intake hole 201 communicate, the second intake hole 201 and the first intake hole 103 are relatively arranged, so that the second intake hole 201 is also approximately located at the middle position of the second space 102 along the first direction Y.

[0064] The air regulating structure 100 provided by the embodiment of the present application has the relative distances of the opposite ends of the partition member 12 from the first axis L being equal. The first air inlet space 1021 and the second air inlet space 1022 are spaced apart along the first direction Y. The first axis L is parallel to the distribution direction of the second air inlet space 1022 and the first air inlet hole 103 and passes through the first air inlet hole 103. The first direction Y and the second direction X are perpendicular, such that in the first direction Y, the first air inlet space 1021 and the second air inlet space 1022 can be approximately evenly located on the opposite sides of the first axis L, and the first air inlet hole 103 is approximately located at the middle position of the partition member 12. In this way, when the sliding air regulating assembly 20 is adjusted to regulate the communication area between the first air inlet hole 103 and the second air inlet hole 201, thereby regulating the air intake amount, the gas flows through the first air inlet hole 103 and the second air inlet hole 201 into the second air inlet space 1022 in sequence. Specifically, it can approximately flow to the middle position of the partition member 12 along the first direction Y, that is, approximately flow to the middle position of the second space 102 along the first direction Y. In this way, it can be more evenly divided into the first air inlet space 1021 and the third air inlet space 1023, and then flow to the atomizing core 200 in the first space 101. In this way, the uniformity of the gas flowing to the atomizing core 200 can be improved, thereby improving the atomizing uniformity of the atomizing device and enhancing the atomizing effect of the atomizing device.

[0065] In some embodiments, please refer to Figure 3 and Figure 4 in conjunction with other drawings. The side of the partition member 12 close to the second space 102 includes a first wall 1201, a second wall 1202, and a third wall 1203 connected in sequence. The first wall 1201 and the housing 11 enclose to form the first air inlet space 1021. The second wall 1202 and the housing 11 enclose to form the second air inlet space 1022. The third wall 1203 and the housing 11 enclose to form the third air inlet space 1023. The end of the first wall 1201 far from the second wall 1202 and the end of the third wall 1203 far from the second wall 1202 are the opposite ends of the partition member 12 and are both connected to the housing 11. In a cross-section parallel to the first direction Y and the second direction X, the second wall 1202 is arc-shaped, and the circle where the second wall 1202 is located has a first center O, and the first axis L passes through the first center O.

[0066] The first wall 1201, the second wall 1202, and the third wall 1203 constitute the wall surface of the partition member 12 on the side close to the second space 102.

[0067] Understandably, the first wall 1201 and the third wall 1203 are spaced apart along the first direction Y, such that the first intake space 1021 formed by enclosing the first wall 1201 and the housing 11 and the third intake space 1023 formed by enclosing the third wall 1203 and the housing 11 are spaced apart along the first direction Y. In the first direction Y, the second wall 1202 is located between the first wall 1201 and the third wall 1203. The opposite ends of the second wall 1202 along the first direction Y are respectively connected to the first wall 1201 and the third wall 1203.

[0068] Of the opposite ends of the partition member 12 along the first direction Y, one end is the end of the first wall 1201 away from the second wall 1202, and the other end is the end of the third wall 1203 away from the second wall 1202.

[0069] It should be noted here that Figure 3 and Figure 4 are both cross-sectional views of the atomizing device, and the cross-sectional view is parallel to the first direction Y and the second direction X and is substantially similar to the cross-section parallel to the first direction Y and the second direction X.

[0070] In the cross-section parallel to the first direction Y and the second direction X, the second wall 1202 is arc-shaped, that is, the second wall 1202 is part of the circle it is in. Wherein, the center of the circle where the second wall 1202 is located is the first center O.

[0071] The first axis L passes through the first center O, which means that the first axis L passes through the first center O along the second direction X. Understandably, the radial direction of the circle where the second wall 1202 is located parallel to the second direction X coincides with the first axis L, that is, the first axis L passes through the midpoint of the second wall 1202 in the first direction Y along the second direction X.

[0072] With such a setting, the first axis L passes through the midpoint of the second wall 1202 in the first direction Y and the first intake hole 103, so that the first intake hole 103 can correspond to the midpoint of the second wall 1202 in the first direction Y approximately along the second direction X. Thus, when the gas flows from the first intake hole 103 and the second intake hole 201 to the second intake space 1022 in sequence, the gas can specifically flow approximately to the midpoint of the partition member 12 along the first direction Y, that is, approximately to the middle position of the second space 102 along the first direction Y. In this way, it can be more evenly split into the first intake space 1021 and the third intake space 1023, and then flow to the atomizing core 200 in the first space 101. In this way, the uniformity of the gas flowing to the atomizing core 200 can be improved, thereby improving the atomizing uniformity of the atomizing device and improving the atomizing effect of the atomizing device.

[0073] In addition, the second wall 1202 is designed to be arc-shaped, so that when the gas enters the second intake space 1022 from the second intake hole 201, it can flow along the second wall 1202 in a guiding manner, thereby facilitating the diversion of the gas to the first intake space 1021 and the third intake space 1023, making the use of the atomizing device very easy and labor-saving.

[0074] In addition, the air regulating assembly 20 can slide within the second intake space 1022, and the second wall 1202 is arc-shaped, so that the air regulating assembly 20 can slide along the second wall 1202, and the sliding track of the air regulating assembly 20 is arc-shaped.

[0075] In addition, the circle where the second wall 1202 is located has an axial direction, which can be the third direction Z. Among them, the third direction Z is perpendicular to the first direction Y, and the third direction Z is perpendicular to the second direction X.

[0076] Among them, the first direction Y, the second direction X, and the third direction Z can all be double-arrow directions.

[0077] Among them, the air regulating assembly 20 is arranged within the second intake space 1022 and abuts against the second wall 1202 of the partition member 12 and the housing 11. The air regulating assembly 20 can slide within the second intake space 1022, and specifically can slide along the second wall 1202.

[0078] Among them, the above-mentioned "midpoint" refers to the midpoint and its nearby positions.

[0079] In some embodiments, please refer to Figure 3 and Figure 4 in combination with other drawings. In a cross-section parallel to the first direction Y and the second direction X, the second intake hole 201 penetrates through the air regulating assembly 20 and is arranged towards the first center O.

[0080] It can be understood that the second intake hole 201 penetrates through the air regulating assembly 20 and is arranged towards the first center O.

[0081] Among them, the second intake hole 201 is arranged towards the first center O. Specifically, the second intake hole 201 generally faces the first center O, that is, the second intake hole 201 has a tendency to generally face the first center O, so that the gas in the second intake hole 201 has a tendency to flow generally towards the first center O, rather than requiring the second intake hole 201 to strictly face the first center O.

[0082] As an example, the second intake hole 201 is generally inclined and arranged towards the midpoint of the partition member 12 along the first direction Y.

[0083] By adopting the above technical solution, the second air inlet hole 201 is generally oriented towards the midpoint of the second wall 1202 along the first direction Y. In this way, when the air regulating assembly 20 slides to a position where the first air inlet hole 103 and the second air inlet hole 201 are in communication, during the process that the gas outside the housing 11 enters the second air inlet space 1022 successively through the first air inlet hole 103 and the second air inlet hole 201, based on the setting that the second air inlet hole 201 faces the first center O, the gas can flow generally towards the first center O, so that the gas can flow generally towards the middle position of the second wall 1202 along the first direction Y, and then can be more evenly split into the first air inlet space 1021 and the third air inlet space 1023, and then flow to the atomizing core 200 in the first space 101. In this way, the uniformity of the gas in the first air inlet space 1021 and the third air inlet space 1023 can be improved, thereby the uniformity of the gas flowing to the atomizing core 200 can be improved, and the atomizing uniformity of the atomizing device can be improved to enhance the atomizing effect of the atomizing device.

[0084] In some embodiments, please refer to Figure 3 and Figure 4 in combination with other drawings. In the first direction Y, the second wall 1202 extends beyond the opposite ends of the first air inlet hole 103.

[0085] Specifically, the dimension of the second wall 1202 along the first direction Y is greater than the dimension of the first air inlet hole 103 along the first direction Y, and the second wall 1202 extends beyond one end of the first air inlet hole 103 along the first direction Y and extends beyond the other end of the first air inlet hole 103 along the first direction Y.

[0086] With such a setting, the first air inlet hole 103 can be generally located at the middle position of the second wall 1202 along the first direction Y, and the dimension of the first air inlet hole 103 along the first direction Y is not too large. In this way, during the process that the gas outside the housing 11 enters the second air inlet space 1022 successively through the first air inlet hole 103 and the second air inlet hole 201, it is convenient for the gas to flow towards the middle position of the second wall 1202 along the first direction Y, thereby contributing to improving the uniformity of the gas in the first air inlet space 1021 and the third air inlet space 1023, and the uniformity of the gas flowing to the atomizing core 200 can be improved to enhance the atomizing uniformity and atomizing effect of the atomizing device.

[0087] In some embodiments, in the first direction Y, the second wall 1202 extends beyond the opposite ends of the first air inlet hole 103. And, in the first direction Y, the dimension of the first air inlet hole 103 ≤ 2 / 3 * the dimension of the second wall 1202.

[0088] In some embodiments, please refer to Figure 3 and Figure 4, and in combination with other drawings, the second space 102 and the first air inlet 103 are both arranged symmetrically with respect to the first axis L.

[0089] It can be understood that, on a cross section parallel to the first direction Y and the second direction X, Figure 3 and Figure 4 As shown, the contour of the second space 102 is an axisymmetric figure that is axisymmetric relative to the first axis L, and the contour of the first air inlet 103 is an axisymmetric figure that is axisymmetric relative to the first axis L.

[0090] Specifically, Figure 3 and Figure 4 As shown, on a cross section parallel to the first direction Y and the second direction X, the contour of the first air intake space 1021 and the contour of the third air intake space 1023 are axially symmetrical relative to the first axis L, and the contour of the second air intake space 1022 is an axially symmetrical figure axially symmetrical relative to the first axis L.

[0091] Based on this, the middle position of the second space 102 along the first direction Y is also the middle position of the second air inlet space 1022 along the first direction Y.

[0092] With such arrangement, when the gas outside the housing 11 sequentially passes through the first air inlet hole 103 and the second air inlet hole 201 and enters the second air inlet space 1022, it is convenient for the gas to flow toward the middle position of the second wall 1202 along the first direction Y. In addition, it is helpful to improve the uniformity of the gas diversion to the first air inlet space 1021 and the third air inlet space 1023, so as to improve the uniformity of the gas flowing to the atomizing core 200, thereby improving the uniformity and effect of the atomizing device.

[0093] In some embodiments, please refer to Figure 3 , Figure 4 and Figure 6 , and combined with other drawings. Among them, Figure 6 The second air inlet 201 includes a plurality of sub-holes 2011 which are spaced apart and penetrate the air regulating component 20 and are connected to the second air inlet space 1022.

[0094] Specifically, by sliding the air regulating assembly 20 , the number of sub-holes 2011 of the second air inlet hole 201 communicating with the first air inlet hole 103 can be adjusted, thereby adjusting the communicating area between the second air inlet hole 201 and the first air inlet hole 103 .

[0095] With this setting, the air intake volume can be adjusted in stages.

[0096] In some embodiments, Figure 3 andFigure 4 As shown, when the second air inlet hole 201 penetrates the air regulating assembly 20 towards the first center O, each sub-hole 2011 can be arranged approximately towards the first center O.

[0097] With such an arrangement, the gas at each sub-hole 2011 can flow approximately towards the first center O, so as to flow approximately to the middle position of the second wall 1202 along the first direction Y, thereby helping to evenly split the flow to the first air inlet space 1021 and the third air inlet space 1023.

[0098] In some embodiments, please refer to Figures 3 to 6 together and in combination with other drawings. The air regulating assembly 20 elastically abuts between the partition member 12 and the housing 11.

[0099] Specifically, the air regulating assembly 20 abuts between the second wall 1202 of the partition member 12 and the second part of the housing 11.

[0100] With such an arrangement, on the one hand, the partition member 12 and the housing 11 can jointly support the air regulating assembly 20, so that the air regulating assembly 20 can be stably installed in the second air inlet space 1022 and can slide along the partition member 12 to achieve the air regulating effect. On the other hand, the air regulating assembly 20 can stably abut against the housing 11, so that the sealing effect between the air regulating assembly 20 and the housing 11 can be achieved, and the problem that the gas in the first air inlet hole 103 enters the second air inlet space 1022 through the gap between the housing 11 and the air regulating assembly 20, resulting in insufficient air regulating effect, can be improved.

[0101] In some embodiments, please refer to Figure 3 , Figure 4 and Figure 6 together and in combination with other drawings. The air regulating assembly 20 includes a support member 21 and a buffer member 22. The support member 21 abuts against the partition member 12. The buffer member 22 is installed on the support member 21 and abuts against the housing 11. The orthographic projection of the buffer member 22 on the part of the housing 11 having the first air inlet hole 103 covers the first air inlet hole 103. The second air inlet hole 201 penetrates the buffer member 22 and the support member 21.

[0102] The support member 21 can be, but is not limited to, a plastic part, which is used to support the buffer member 22 so that the air regulating assembly 20 can slide stably along the partition member 12.

[0103] The buffer member 22 can be, but is not limited to, a silica gel part or a rubber part, which is used to provide a buffering effect. Specifically, the buffer member 22 elastically abuts between the support member 21 and the housing 11, so that the sealing effect between the air regulating assembly 20 and the housing 11 can be achieved, and the problem that the gas in the first air inlet hole 103 enters the second air inlet space 1022 through the gap between the housing 11 and the air regulating assembly 20, resulting in insufficient air regulating effect, can be improved.

[0104] The support member 21 abuts against the partition member 12 , specifically, the support member 21 abuts against the second wall 1202 of the partition member 12 .

[0105] The buffer member 22 abuts against the housing 11 , specifically, the buffer member 22 abuts against the second portion of the housing 11 .

[0106] The portion of the shell 11 having the first air inlet hole 103 is the portion of the second portion of the shell 11 having the first air inlet hole 103. Based on the fact that the first air inlet hole 103 and the second air inlet space 1022 are roughly distributed and connected along the second direction X, the orthographic projection of the buffer 22 on the portion of the shell 11 having the first air inlet hole 103 is roughly the projection of the buffer 22 onto the second portion of the shell 11 along the second direction X. The orthographic projection of the buffer 22 on the portion of the shell 11 having the first air inlet hole 103 covers the first air inlet hole 103, so that the buffer 22 can abut against the outer periphery of the second portion of the first air inlet hole 103, thereby achieving sealing between the shell 11 and the air conditioning assembly 20.

[0107] Such arrangement enables the gas in the first air inlet hole 103 to flow only from the second air inlet hole 201 to the second air inlet space 1022, and will not flow from the gap between the air regulating component 20 and the shell 11 to the second air inlet space 1022 as much as possible, which helps to ensure the air regulating effect of the air regulating structure 100 to a certain extent.

[0108] In some embodiments, the buffer member 22 is detachably mounted on the support member 21 , so as to facilitate the disassembly and assembly of the air conditioning assembly 20 .

[0109] In some embodiments, please refer to Figure 3 , Figure 4 and Figure 6 The air regulating structure 100 further includes a toggle member 30, which is mounted on the air regulating assembly 20. The toggle member 30 is disposed through the first air inlet 103, and the toggle member 30 is spaced apart from the second air inlet 201.

[0110] The toggle member 30 is disposed through the first air inlet hole 103 , which means that at least a portion of the toggle member 30 is located in the first air inlet hole 103 .

[0111] By inserting the toggle member 30 into the first air inlet 103, the user can drive the air-adjusting assembly 20 to slide by toggling the toggle member 30, thereby achieving the air-adjusting effect, which makes the air-adjusting operation very simple and convenient. In addition, the toggle member 30 can be limited to the opposite ends of the first air inlet 103 along the first direction Y to limit the sliding stroke of the sliding assembly, which can improve the problem of the air-adjusting assembly 20 being separated from the first air inlet 103.

[0112] Specifically, the toggle member 30 can be installed on the support member 21 of the gas regulating assembly 20, such as Figure 3 and Figure 4 As shown; it can also be installed on the buffer member 22.

[0113] In some embodiments, the housing 10 further includes a first limiting member, which is disposed between the first air intake space 1021 and the second air intake space 1022 to limit the air regulating assembly 20 .

[0114] The first limiting member may be connected to the housing 11 or to the partition 12 .

[0115] By limiting the position of the air regulating component 20 by the first limiting member, the travel of the air regulating component 20 to infinitely slide to the first air inlet space 1021 can be limited, thereby improving the problem of the air regulating component 20 being separated from the first air inlet hole 103 .

[0116] In some embodiments, the housing 10 further includes a second limiting member, which is disposed between the second air intake space 1022 and the third air intake space 1023 to limit the air regulating assembly 20 .

[0117] The second limiting member may be connected to the housing 11 or to the partition 12 .

[0118] By limiting the position of the air-regulating component 20 by the second limiting member, the air-regulating component 20 can be limited from sliding infinitely to the third air inlet space 1023 , thereby improving the problem of the air-regulating component 20 being separated from the first air inlet hole 103 .

[0119] In some embodiments, see Figure 2 , and in combination with other drawings. A mounting hole 104 is provided in the first space 101 , and the mounting hole 104 is used to mount the atomizer core 200 . The mounting hole 104 and the second air inlet space 1022 are spaced apart along the second direction X, and the first axis L passes through the mounting hole 104 .

[0120] The first axis L passes through the mounting hole 104 , which means that the first axis L passes through the mounting hole 104 along the second direction X, and thus can pass through the atomizer core 200 .

[0121] In this way, the mounting hole 104 and the midpoint of the partition 12 along the first direction Y are arranged approximately correspondingly along the second direction X, so that the atomizer core 200 can be arranged approximately correspondingly along the midpoint of the partition 12 along the first direction Y along the second direction X. In this way, after the gas in the second air inlet space 1022 is evenly diverted to the first air inlet space 1021 and the third air inlet space 1023, it is convenient for the gas to flow evenly to the atomizer core 200, so that the uniformity of the gas flowing to the atomizer core 200 can be improved, thereby improving the uniformity of the mist output and the mist output effect of the atomizer device.

[0122] Please refer to Figure 1 and other accompanying drawings. The atomizing device provided by the embodiment of the present application includes an air regulating structure 100 and an atomizing core 200. Among them, the air regulating structure 100 in this embodiment is the same as the air regulating structures 100 in the above embodiments. For specific details, please refer to the relevant descriptions of the air regulating structure 100 in the above embodiments, which will not be elaborated here.

[0123] At least a part of the atomizing core 200 is disposed in the first space 101. Specifically, the atomizing core 200 is installed in the installation hole 104 in the first space 101.

[0124] The atomizing device provided by the embodiment of the present application, by adopting the air regulating structure 100 involved in the above embodiments, can improve the uniformity of the gas flowing to the atomizing core 200, thereby improving the atomizing uniformity of the atomizing device to improve the atomizing effect of the atomizing device.

[0125] The above are only the preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. An air regulating structure, characterized in that, include: The housing comprises a shell and a partition; the partition is arranged in the shell and divides the internal space of the shell into a first space and a second space; The first space is used to accommodate the atomizer core; the second space includes a first air inlet space, a second air inlet space and a third air inlet space that are distributed and connected in sequence, the first air inlet space and the third air inlet space are distributed along the first direction at intervals, and are respectively connected to the first space; the shell is provided with a first air inlet hole that is distributed and connected to the second air inlet space along the second direction, and the partition is provided with a first axis that is parallel to the second direction and passes through the first air inlet hole; along the first direction, the distances between the opposite ends of the partition and the first axis are equal; an air regulating component, disposed in the second air inlet space and provided with a second air inlet hole connected to the second air inlet space; the air regulating component is used to slide in the second air inlet space to adjust the connecting area between the second air inlet hole and the first air inlet hole; The first direction is perpendicular to the second direction.

2. The air regulating structure according to claim 1, wherein The partition comprises a first wall, a second wall and a third wall connected in sequence on a side close to the second space, the first wall and the shell are arranged to form the first air intake space, the second wall and the shell are arranged to form the second air intake space, the third wall and the shell are arranged to form the third air intake space, one end of the first wall away from the second wall and one end of the third wall away from the second wall are opposite ends of the partition, and both are connected to the shell; In a cross section parallel to the first direction and the second direction, the second wall is in an arc shape, the circle where the second wall is located has a first center, and the first axis passes through the first center.

3. The air regulating structure according to claim 2, characterized in that, In a cross section parallel to the first direction and the second direction, the second air inlet hole is arranged to penetrate the air regulating assembly toward the first center of the circle.

4. The air regulating structure according to claim 2, wherein In the first direction, the second wall exceeds two opposite ends of the first air inlet hole.

5. The air regulating structure according to any one of claims 1-4, characterized in that The second space and the first air inlet are both arranged axially symmetrically with respect to the first axis.

6. The air regulating structure according to any one of claims 1-4, characterized in that, The second air inlet hole includes a plurality of sub-holes which are spaced apart and penetrate the air regulating component, and the sub-holes are connected to the second air inlet space.

7. The air regulating structure according to any one of claims 1 to 4, characterized in that, The air conditioning component elastically abuts between the partition and the shell.

8. The air regulating structure according to claim 7, wherein, The gas conditioning assembly comprises: A support member abutting against the partition member; A buffer is installed on the support member and abuts against the shell; the orthographic projection of the buffer on the portion of the shell having the first air inlet hole covers the first air inlet hole; and the second air inlet hole passes through the buffer and the support member.

9. The air regulating structure according to any one of claims 1-4, characterized in that, The air regulating structure further comprises a toggle member installed on the air regulating component, wherein the toggle member is disposed through the first air inlet hole and is spaced apart from the second air inlet hole.

10. The air regulating structure according to any one of claims 1-4, characterized in that, The housing further comprises a first limiting member, which is disposed between the first air intake space and the second air intake space to limit the air conditioning assembly; And / or, the housing further includes a second limiting member disposed between the second air intake space and the third air intake space to limit the air regulating assembly.

11. The air regulating structure according to any one of claims 1-4, characterized in that, An installation hole for installing the atomization core is provided in the first space. The installation hole and the second air intake space are spaced apart along the second direction, and the first axis passes through the installation hole.

12. An atomizing device, characterized in that, It includes an atomization core and the air regulating structure according to any one of claims 1-11, and at least a part of the atomization core is disposed in the first space.