Support structure and atomization device
By using seals and bosses to form a stepped structure in the atomizing device, the surface tension of the atomizing liquid is disrupted, which solves the problem of low atomizing liquid conduction efficiency, realizes continuous, uniform and efficient conduction of the atomizing liquid, and reduces the risk of atomizing core clogging.
Patent Information
- Application Number
- CN202422924410.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-28
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-11-28
AI Technical Summary
An oil film forms on the surface between the liquid storage chamber and the lower liquid tank, resulting in low conduction efficiency and making it difficult to conduct the liquid continuously, evenly, and efficiently to the atomizing core, increasing the risk of the atomizing core clogging.
The support structure uses seals and bosses to form a stepped structure, which breaks the surface tension of the atomizing liquid and improves the fluidity of the atomizing liquid through the liquid outlet, ensuring that the atomizing liquid can be smoothly conducted to the atomizing core under the action of gravity.
It improves the conduction efficiency of the atomizing fluid, ensuring that the atomizing fluid can be continuously, evenly, and efficiently conducted to the atomizing core, reducing the risk of the atomizing core clogging.
Smart Images

Figure CN223541412U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of atomization technology, and more specifically, relates to an air conditioning structure and atomizing device. Background Technology
[0002] Atomizing devices are devices used to heat atomizing liquid, causing it to atomize and form an aerosol. The aerosol formed from the atomized liquid can then be inhaled by the user.
[0003] Atomizing devices typically include a support structure and an atomizing coil. The support structure may contain a liquid reservoir and a lower liquid tank connected to the reservoir. During operation, the atomizing liquid flows from the reservoir to the lower liquid tank and then is conducted to the atomizing coil, allowing the coil to heat the liquid. However, due to the surface tension of the liquid, an oil film forms on the surface between the reservoir and the lower liquid tank, hindering the flow of the liquid. This results in low conductivity of the atomizing liquid, making it difficult to continuously, evenly, and efficiently conduct the liquid to the atomizing coil, thus increasing the risk of coil clogging. Utility Model Content
[0004] One of the objectives of this application is to provide a support structure and atomizing device that can improve the problem of low conduction efficiency of atomizing liquid.
[0005] To solve the above-mentioned technical problems, the technical solution adopted in the embodiments of this application is as follows:
[0006] In a first aspect, embodiments of this application provide a support structure, including:
[0007] The support has a lower liquid tank on one side along the first direction;
[0008] The seal includes a first portion covering one side of the lower liquid tank along a first direction, the first portion including a sealing body and a boss connected to the sealing body, the sealing body and the boss surrounding to form a lower liquid through hole communicating with the lower liquid tank; the side of the boss away from the lower liquid tank along the first direction extends beyond the sealing body, so that the boss and the sealing body form a stepped structure.
[0009] In some embodiments, the projection of the sealing body in the first direction surrounds the outer periphery of the projection of the boss in the first direction.
[0010] In some embodiments, the number of liquid discharge holes is multiple, and the multiple liquid discharge holes are spaced apart.
[0011] In some embodiments, the lower liquid tank includes a first tank, which is disposed on one side of the support along a second direction;
[0012] The bracket is also provided with a liquid inlet hole and an atomizing chamber for installing the atomizing core. The atomizing chamber and the first groove are arranged along the second direction, and the liquid inlet hole is connected between the first groove and the atomizing chamber.
[0013] The liquid discharge through-hole includes a first through-hole, at least a portion of which is directly opposite to and communicates with the first groove along a first direction;
[0014] The seal also includes a second part connected to the sealing body, at least a portion of which covers the side of the first groove away from the atomizing chamber along a second direction, the first and second directions intersecting.
[0015] In some embodiments, in a first direction, the first groove is tapered away from the first through hole.
[0016] In some embodiments, the bracket is provided with a first guide surface, which is disposed opposite to the first through hole along a first direction; the first guide surface extends from the first through hole to the first groove and is used to guide the atomized liquid from the first through hole to the first groove.
[0017] In some embodiments, the lower liquid tank further includes a second tank communicating with the first tank, the second tank being disposed on one side of the support along a first direction, and in the first direction, the first tank extends beyond the second tank in a direction away from the first through hole;
[0018] The first through hole is directly opposite to and connected to the second groove along the first direction; and / or, the liquid discharge through hole also includes a second through hole spaced apart from the first through hole, the second through hole being directly opposite to and connected to the second groove along the first direction.
[0019] In some embodiments, a second guide surface is provided at the connection between the first tank and the second tank, the second guide surface being used to guide the atomized liquid from the second tank to the first tank.
[0020] In some embodiments, the support structure further includes a suction nozzle, with the support and the seal both disposed inside the suction nozzle, and the sealing body, the boss and the suction nozzle surrounding to form a liquid storage chamber communicating with the lower liquid passage.
[0021] Secondly, embodiments of this application provide an atomizing device, comprising:
[0022] Support structure;
[0023] The atomizing core is at least partially housed within the support.
[0024] The beneficial effects of the support structure and atomizing device provided in this application embodiment are as follows:
[0025] The support structure provided in this application embodiment forms a lower liquid passage hole communicating with the lower liquid tank by the sealing body and the boss of the sealing element. The side of the boss away from the lower liquid tank along the first direction extends beyond the sealing body, so that the boss and the sealing body form a stepped structure. This allows the atomizing device composed of the support structure to be arranged such that the side of the sealing body away from the lower liquid tank is located below the side of the boss away from the lower liquid tank along the direction of gravity when in use. In this way, under the action of gravity, the stepped structure formed by the sealing body and the boss can disrupt the surface tension of the atomizing liquid, thereby breaking the oil film formed by the atomizing liquid. This facilitates the flow of the atomizing liquid to the lower liquid passage hole and into the lower liquid tank. This helps to improve the conduction efficiency of the atomizing liquid, making it easier for the atomizing liquid to be continuously, uniformly, and efficiently conducted to the atomizing core, and reducing the risk of the atomizing core clogging.
[0026] The atomizing device provided in this application, by adopting the support structure involved in the above embodiments, helps to improve the conduction efficiency of the atomizing liquid, facilitates the continuous, uniform and efficient conduction of the atomizing liquid to the atomizing core, and reduces the risk of the atomizing core clogging.
[0027] The above description is only an overview of the technical solution of this application. In order to better understand the technical means of this application and to implement it in accordance with the contents of the specification, and to make the above and other objects, features and advantages of this application more obvious and understandable, the following are specific embodiments of this application. Attached Figure Description
[0028] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0029] Figure 1 A perspective structural diagram of an atomizing device provided in some embodiments of this application;
[0030] Figure 2 for Figure 1 Sectional view along AA;
[0031] Figure 3 for Figure 1 A partial 3D structural diagram of the provided atomizing device;
[0032] Figure 4 A perspective view of the bracket and seal provided in some embodiments of this application;
[0033] Figure 5 A three-dimensional structural diagram of the support structure provided in some embodiments of this application;
[0034] Figure 6 for Figure 4 A schematic diagram;
[0035] Figure 7 A perspective view of the seal of the bracket structure provided in some embodiments of this application;
[0036] Figure 8 for Figure 5 A schematic diagram.
[0037] The following are the labeling elements in the figure:
[0038] 100-Support structure; 1001-Atomizing chamber; 1002-Liquid storage tank; 10-Support; 101-Lower liquid tank; 1011-First tank; 1012-Second tank; 102-Liquid inlet hole; 103-Mist outlet channel; 104-First guide surface; 105-Second guide surface; 20-Sealing element; 201-Lower liquid inlet hole; 201a-First through hole; 201b-Second through hole; 21-First part; 211-Sealing body; 212-Boss; 22-Second part; 30-Nose; 31-Nose body; 32-Air guide tube; 40-Base structure; 401-Air inlet channel; 200-Atomizing core; 210-Liquid guide cotton; 220-Heating element; 230-Electrode; Y-First direction; Z-Second direction; X-Third direction. Detailed Implementation
[0039] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this application, and should not be construed as limiting this application.
[0040] Unless otherwise specified, all embodiments and optional embodiments of this application can be combined to form new technical solutions.
[0041] Unless otherwise specified, all technical features and optional technical features of the embodiments of this application can be combined with each other to form new technical solutions.
[0042] In the description of the embodiments of this application, it should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0043] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include one or more of that feature.
[0044] In the description of the embodiments of this application, "multiple" means two or more, and unless otherwise explicitly specified, "two or more" includes two. Correspondingly, "multiple groups" means two or more groups, including two groups.
[0045] In the description of the embodiments of this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. For those skilled in the art, the specific meaning of the above terms in this application can be understood according to the specific circumstances.
[0046] In the description of this application, the term "and / or" is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent three possibilities: A exists, A and B exist simultaneously, and B exists. Additionally, in this application, the character " / " generally indicates that the preceding and following related objects have an "or" relationship.
[0047] Although this application has been described with reference to preferred embodiments, various modifications can be made thereto and components can be replaced with equivalents without departing from the scope of this application. In particular, the technical features mentioned in the various embodiments can be combined in any manner, provided there is no structural conflict. This 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 detailed description is provided in conjunction with specific accompanying drawings and embodiments:
[0049] Please refer to the following: Figures 1 to 5 ,in, Figure 1 This is a perspective structural diagram of the atomizing device provided in some embodiments of this application. Figure 2 for Figure 1 A sectional view along AA, Figure 3 for Figure 1 A partial 3D structural diagram of the provided atomizing device. Figure 4 This is a perspective view of the bracket 10 and the seal 20 of the bracket structure 100 provided in some embodiments of this application. Figure 5 This is a perspective view of the support structure 10 of the support structure 100 provided in some embodiments of this application. The support structure 100 provided in the embodiments of this application is applied to an atomizing device. The atomizing device includes the support structure 100 and the atomizing core 200. The support structure 100 is used in conjunction with the atomizing core 200. Specifically, at least a portion of the atomizing core 200 is disposed within the support structure 100. The support structure 100 provided in the embodiments of this application includes a support 10 and a sealing member 20. The support 10 has a lower liquid groove 101 on one side along a first direction Y. The sealing member 20 includes a first part 21, which covers one side of the lower liquid groove 101 along the first direction Y. The first part 21 includes a sealing body 211 and a boss 212 connected to the sealing body 211. The sealing body 211 and the boss 212 together cover one side of the lower liquid groove 101 along the first direction Y, and the sealing body 211 and the boss 212 surround and form a lower liquid through hole 201 communicating with the lower liquid groove 101. The boss 212 extends beyond the sealing body 211 on the side away from the lower liquid tank 101 along the first direction Y, so that the boss 212 and the sealing body 211 form a stepped structure.
[0050] The support 10 may be, but is not limited to, a plastic structure.
[0051] The lower liquid groove 101 refers to the groove provided on the bracket 10. It can be understood that the lower liquid groove 101 is provided on one side of the bracket 10 along the first direction Y, that is, the bracket 10 is recessed on one side of the first direction Y to form the lower liquid groove 101, so that the lower liquid groove 101 has a groove opening on one side of the first direction Y.
[0052] The seal 20 refers to a sealing structure used to seal the bracket 10. Specifically, the seal 20 can at least seal the lower liquid groove 101 on the bracket 10. The seal 20 can be, but is not limited to, materials such as silicone or rubber.
[0053] The first part 21 is a partial structure of the seal 20. The first part 21 covers one side of the lower liquid tank 101 along the first direction Y, meaning that the first part 21 covers the opening of one side of the lower liquid tank 101 along the first direction Y, so that the first part 21 can seal the lower liquid tank 101. Specifically, the sealing body 211 and the boss 212 of the first part 21 together cover one side of the lower liquid tank 101 along the first direction Y. It can be understood that the sealing body 211 and the boss 212 together cover the opening of one side of the lower liquid tank 101 along the first direction Y to achieve a sealing effect. The sealing body 211 and the boss 212 are two parts of the first part 21, and both the sealing body 211 and the boss 212 have sealing properties; for example, they can both be made of materials such as silicone or rubber.
[0054] The lower fluid through hole 201 refers to a through hole that penetrates the first part 21 of the seal 20. The sealing body 211 and the boss 212 surround and form the lower fluid through hole 201 that communicates with the lower fluid groove 101. This means that a portion of the inner wall surface of the lower fluid through hole 201 is located on the sealing body 211, and another portion of the inner wall surface of the lower fluid through hole 201 is located on the boss 212. It can be understood that the lower fluid through hole 201 penetrates the first part 21 of the seal 20 along the first direction Y. Specifically, the lower fluid through hole 201 penetrates the sealing body 211 and the boss 212 along the first direction Y.
[0055] The side of the boss 212 that is away from the lower liquid tank 101 along the first direction Y extends beyond the sealing body 211. This means that, in the first direction Y, the side of the sealing body 211 that is away from the lower liquid tank 101 is spaced between the lower liquid tank 101 and the side of the boss 212 that is away from the lower liquid tank 101, so that there is a height difference between the side of the sealing body 211 that is away from the lower liquid tank 101 and the side of the boss 212 that is away from the lower liquid tank 101 in the first direction Y.
[0056] It should be noted that the support structure 100 generally also includes a liquid storage chamber 1002 for storing the atomizing liquid. The formation of the liquid storage chamber 1002 will be described in the following section and will not be repeated here. The liquid storage chamber 1002 is generally located on the side of the first part 21 of the sealing member 20 away from the lower liquid tank 101 along the first direction Y. That is, the liquid storage chamber 1002 is generally located on the side of the sealing body 211 away from the lower liquid tank 101 and on the side of the boss 212 away from the lower liquid tank 101. The liquid discharge through-hole 201 extends through the first portion 21 of the sealing member 20 in the first direction Y, allowing the liquid discharge through-hole 201 to communicate with the liquid storage tank 1002. The atomized liquid in the liquid storage tank 1002 can flow into the liquid discharge trough 101 through the liquid discharge through-hole 201. Specifically, the liquid on the side of the sealing body 211 away from the liquid discharge trough 101 and the atomized liquid on the side of the boss 212 away from the liquid discharge trough 101 can both flow into the liquid discharge trough 101 through the liquid discharge through-hole 201. The process of the atomized liquid in the liquid storage tank 1002 flowing into the liquid discharge trough 101 through the liquid discharge through-hole 201 is the liquid discharge process of the atomized liquid.
[0057] It should also be noted that the first direction Y refers to the approximate distribution direction of the liquid storage tank 1002 and the lower liquid tank 101. In some cases, the first direction Y is approximately the direction of gravity, i.e., the vertical direction. Furthermore, along the direction of gravity, the lower liquid tank 101 is approximately located below the liquid storage tank 1002, and the side of the sealing body 211 away from the lower liquid tank 101 is located below the side of the boss 212 away from the lower liquid tank 101. Based on this, under the action of gravity, a portion of the atomizing liquid can flow from the side of the boss 212 away from the lower liquid tank 101 to the side of the sealing body 211 away from the lower liquid tank 101, and then flow into the lower liquid tank 101 through the lower liquid passage 201; of course, another portion of the atomizing liquid can also flow directly from the side of the boss 212 away from the lower liquid tank 101 through the lower liquid passage 201 into the lower liquid tank 101.
[0058] The bracket structure 100 provided in this application embodiment forms a liquid outlet 201 communicating with the liquid outlet 101 by the sealing body 211 and the boss 212 of the sealing member 20. The side of the boss 212 away from the liquid outlet 101 along the first direction Y extends beyond the sealing body 211, so that the boss 212 and the sealing body 211 form a stepped structure. This allows the atomizing device composed of the bracket structure 100 to be arranged such that the side of the sealing body 211 away from the liquid outlet 101 is located below the side of the boss 212 away from the liquid outlet 101 along the direction of gravity when in use. In this way, under the action of gravity, the stepped structure formed by the sealing body 211 and the boss 212 can disrupt the surface tension of the atomizing liquid, thereby disrupting the oil film formed by the atomizing liquid, which facilitates the flow of the atomizing liquid to the liquid outlet 201 and into the liquid outlet 101. This helps improve the conduction efficiency of the atomizing liquid, making it easier for the atomizing liquid to be continuously, evenly, and efficiently conducted to the atomizing core 200, and reducing the risk of the atomizing core 200 clogging.
[0059] It should be noted that the atomizing core 200 can be housed within the bracket 10. The atomizing liquid in the lower liquid tank 101 can be conducted to the atomizing core 200, so that the atomizing liquid is atomized into an aerosol under the heating action of the atomizing core 200.
[0060] In some embodiments, please refer to the following: Figure 2 and Figure 3 And in conjunction with other accompanying drawings. The atomizing core 200 may include a liquid-guiding cotton 210 and a heating element 220 disposed on the liquid-guiding cotton 210. Both the liquid-guiding cotton 210 and the heating element 220 may be disposed within the support 10. The atomizing liquid in the lower liquid tank 101 can be conducted to the liquid-guiding cotton 210, and then conducted to the heating element 220 under the capillary action of the liquid-guiding cotton 210, thereby atomizing into an aerosol under the heating action of the heating element 220.
[0061] In some embodiments, please refer to Figure 3And in conjunction with other accompanying drawings. The atomizing core 200 may also include an electrode 230. The electrode 230 is connected to the heating element 220 and is used to supply power to the heating element 220 under the action of an external power source, so that the heating element 220 heats up when energized.
[0062] In some embodiments, please refer to the following: Figure 4 , Figure 6 and Figure 7 And in conjunction with other accompanying figures. Figure 6 for Figure 4 A schematic diagram, Figure 7 This is a perspective view of the sealing element 20 of the support structure 100 provided in some embodiments of this application. The projection of the sealing body 211 in the first direction Y surrounds the outer periphery of the projection of the boss 212 in the first direction Y.
[0063] The projection of the sealing body 211 in the first direction Y refers to the projection formed by the sealing body 211 along the first direction Y, that is, the projection of the sealing body 211 in the first direction Y is perpendicular to the first direction Y. The projection of the boss 212 in the first direction Y refers to the projection formed by the boss 212 along the first direction Y, that is, the projection of the boss 212 in the first direction Y is perpendicular to the first direction Y. Wherein, Figure 6 This is a schematic diagram of the seal 20 and the bracket 10 from the perspective of the first direction Y. It is the same as the schematic diagram of the projection of the seal 20 in the first direction Y. The projections of the sealing body 211 and the boss 212 in the first direction Y can be referenced. Figure 6 .
[0064] This configuration facilitates the sealing body 211 and the boss 212 to jointly form the liquid-feeding through hole 201, thereby enabling the stepped structure formed by the sealing body 211 and the boss 212 to disrupt the surface tension of the atomizing liquid, which is beneficial for liquid feeding and thus improves the conduction efficiency of the atomizing liquid.
[0065] In some embodiments, please refer to the following: Figure 6 and Figure 7 Furthermore, in conjunction with other accompanying drawings, there are multiple liquid-filling through holes 201, which are spaced apart.
[0066] Understandably, the first part 21 is provided with a plurality of spaced-apart liquid discharge holes 201. This arrangement allows the atomizing liquid to flow to the liquid discharge tank 101 through the plurality of liquid discharge holes 201, that is, the atomizing liquid can be discharged through the plurality of liquid discharge holes 201, thereby improving the liquid discharge efficiency and thus improving the conduction efficiency of the atomizing liquid.
[0067] In some embodiments, please refer to the following: Figures 2 to 7And in conjunction with other accompanying drawings. The lower liquid tank 101 includes a first tank 1011, which is located on one side of the support 10 along the second direction Z. The support 10 also has a liquid inlet hole 102 and an atomizing chamber 1001, which is used to install the atomizing core 200. The atomizing chamber 1001 and the first tank 1011 are arranged along the second direction Z, and the liquid inlet hole 102 communicates between the first tank 1011 and the atomizing chamber 1001. The sealing member 20 also includes a second part 22 connected to the sealing body 211, at least part of which covers the side of the first tank 1011 away from the atomizing chamber 1001 along the second direction Z. Wherein, the first direction Y and the second direction Z intersect.
[0068] The first groove 1011 is at least a partial recess of the lower liquid tank 101. Understandably, the first groove 1011 has an opening on one side along the first direction Y, and the sealing body 211 and the boss 212 together cover one side of the first groove 1011 along the first direction Y, that is, the sealing body 211 and the boss 212 together cover the opening of the first groove 1011 along the first direction Y.
[0069] The first groove 1011 is located on one side of the support 10 along the second direction Z. This means that most of the first groove 1011 is located on one side of the support 10 along the second direction Z. In other words, the support 10 is recessed on one side of the second direction Z to form the first groove 1011. Understandably, the first groove 1011 also has an opening on one side of the second direction Z.
[0070] The atomizing chamber 1001 is used to install the atomizing core 200, meaning that at least a portion of the atomizing core 200 can be disposed in the atomizing chamber 1001. Specifically, the liquid-guiding cotton 210 and the heating element 220 of the atomizing core 200 can both be disposed in the atomizing chamber 1001.
[0071] The atomizing chamber 1001 and the first groove 1011 are arranged along the second direction Z, which means that most of the atomizing chamber 1001 and the first groove 1011 are arranged along the second direction Z.
[0072] The liquid inlet hole 102 connects the first groove 1011 and the atomizing chamber 1001. This means that in the second direction Z, the liquid inlet hole 102 is located between the atomizing chamber 1001 and the first groove 1011, and connects to both. Specifically, the liquid inlet hole 102 can be disposed through the support 10 along the second direction Z, so that the liquid inlet hole 102 connects to the first groove 1011 and the atomizing chamber 1001 along the second direction Z.
[0073] The first part 21 and the second part 22 are two parts of the seal 20. The second part 22 also has sealing properties; that is, the second part 22 can be made of materials with sealing properties such as silicone or rubber. Specifically, at least a portion of the second part 22 covers the side of the first groove 1011 away from the atomizing chamber 1001 along the second direction Z, meaning that at least a portion of the second part 22 covers one side of the groove opening of the first groove 1011 along the second direction Z. Furthermore, the sealing body 211 and the boss 212 together cover the groove opening of the first groove 1011 along the first direction Y, so that the first part 21 and the second part 22 together cover the first groove 1011, thereby achieving a sealing effect on the first groove 1011.
[0074] The intersection of the first direction Y and the second direction Z means that the first direction Y and the second direction Z can form an angle greater than 0° and less than 180°, that is, the first direction Y and the second direction Z are not parallel. The first direction Y and the second direction Z can be perpendicular to each other, or they can be non-perpendicular. The first direction Y and the second direction Z can be intersecting directions located on the same plane, or they can be directions on skew planes, and the projection of the second direction Z onto the plane containing the first direction Y can intersect the first direction Y. As an example, the first direction Y and the second direction Z are perpendicular.
[0075] Furthermore, the atomizing device may also have a third direction X, which is perpendicular to the first direction Y and perpendicular to the second direction Z. As an example, the atomizing device may have height, width, and thickness, with the height greater than the width and the width greater than the thickness. Here, the first direction Y can be the height direction of the atomizing device, the second direction Z can be the thickness direction, and the third direction X can be the width direction.
[0076] Based on the above structure, the atomizing liquid can flow into the lower liquid tank 101 through the lower liquid through hole 201, specifically into the first tank 1011. The atomizing liquid in the first tank 1011 can flow into the atomizing core 200 in the atomizing chamber 1001 through the liquid inlet through hole 102, so that the atomizing liquid can be atomized under the heating action of the atomizing core 200.
[0077] The liquid lowering through hole 201 includes a first through hole 201a, at least a portion of which is directly opposite to and connected to the first groove 1011 along the first direction Y.
[0078] Understandably, at least one liquid-feeding through-hole 201 is a first through-hole 201a.
[0079] At least a portion of the first through-hole 201a is directly opposite to and connected to the first groove 1011 along the first direction Y. This allows the atomizing liquid to flow through the first through-hole 201a into the lower liquid groove 101 during the liquid dispensing process. Specifically, during the liquid dispensing process, the atomizing liquid can directly flow through the first through-hole 201a into the first groove 1011, thereby efficiently flowing to the liquid inlet through-hole 102. This configuration improves the liquid dispensing efficiency, thereby increasing the atomizing liquid's conduction efficiency and reducing the risk of coil clogging in the atomizing core 200.
[0080] In some embodiments, the second part 22 surrounds the outer periphery of the bracket 10, thereby achieving a sealing effect on the atomizing chamber 1001, the atomizing core 200, etc.
[0081] In some embodiments, please refer to the following: Figure 2 and Figure 3 And in conjunction with other accompanying drawings. The liquid-guiding cotton 210 of the atomizing core 200 can abut against the inner wall of the atomizing chamber 1001 with the liquid inlet hole 102, and the heating element 220 abuts against the side of the liquid-guiding cotton 210 away from the liquid inlet hole 102. In this way, the atomizing liquid in the first groove 1011 can be conducted to the liquid-guiding cotton 210 through the liquid inlet hole 102, and then conducted to the heating element 220 under the capillary action of the liquid-guiding cotton 210, thereby atomizing into a mist under the heating action of the heating element 220.
[0082] In some embodiments, please refer to the following: Figure 5 and Figure 8 And in conjunction with other accompanying figures. Figure 8 for Figure 5 The diagram is as follows: Figure 5 The bracket 10 is shown as a schematic diagram from the perspective of the second direction Z. In the first direction Y, the first groove 1011 is tapered away from the first through hole 201a.
[0083] In some possible designs, such as Figure 8 As shown and in conjunction with other figures, in the first direction Y, the size of the first groove 1011 in the third direction X gradually decreases in a direction away from the first through hole 201a. In some other possible designs, the size of the first groove 1011 in the first direction Y and in the second direction Z may also gradually decrease in a direction away from the first through hole 201a.
[0084] By gradually narrowing the first groove 1011 in the first direction Y away from the first through hole 201a, the first groove 1011 can guide the atomizing liquid during the dispensing process. This facilitates the dispensing of the atomizing liquid to be conducted to the atomizing chamber 1001 through the liquid inlet hole 102, and also facilitates the guidance of bubbles generated in the atomizing liquid to the liquid inlet hole 102 for discharge. Therefore, the problem of difficulty in dispensing the atomizing liquid due to bubbles generated in the atomizing liquid can be improved, thereby increasing the dispensing efficiency of the atomizing liquid and its conduction efficiency.
[0085] In some embodiments, please refer to Figure 5 And in conjunction with other accompanying drawings. The bracket 10 is provided with a first guide surface 104, which is directly opposite to the first through hole 201a along the first direction Y. The first guide surface 104 extends from the first through hole 201a to the first groove 1011 and is used to guide the atomized liquid from the first through hole 201a to the first groove 1011.
[0086] The first guiding surface 104 can be an inclined surface, an arc surface, or a free surface formed by a combination of inclined and arc surfaces.
[0087] By setting the first guiding surface 104, the atomizing liquid can be easily guided from the first through hole 201a to the first groove 1011, thereby improving the liquid discharge efficiency of the atomizing liquid and thus improving the conduction efficiency of the atomizing liquid.
[0088] In some embodiments, please refer to the following: Figure 5 and Figure 7 And in conjunction with other accompanying drawings. The lower liquid tank 101 also includes a second tank 1012 communicating with the first tank 1011, and the second tank 1012 is disposed on one side of the support 10 along the first direction Y. In the first direction Y, the first tank 1011 extends beyond the second tank 1012 in a direction away from the first through hole 201a.
[0089] The first groove 1011 and the second groove 1012 are both grooves provided on the support 10, which are two parts of the lower liquid groove 101.
[0090] The second groove 1012 is located on one side of the bracket 10 along the first direction Y, meaning that the bracket 10 is recessed on one side along the first direction Y to form the second groove 1012. In other words, the second groove 1012 has an opening on one side along the first direction Y. It can be understood that the sealing body 211 and the boss 212 together cover one side of the second groove 1012 along the first direction Y, that is, the sealing body 211 and the boss 212 together cover the opening of the second groove 1012 along the first direction Y to achieve a sealing effect on the second groove 1012.
[0091] In the first direction Y, the first groove 1011 extends beyond the second groove 1012 in a direction away from the first through hole 201a. This means that in the first direction Y, the side of the second groove 1012 away from the first through hole 201a is located between the side of the first groove 1011 away from the first through hole 201a and the first through hole 201a, so that the first groove 1011 and the atomizing chamber 1001 can be arranged in the second direction Z, and the liquid inlet through hole 102 can be connected between the first groove 1011 and the atomizing chamber 1001 in the second direction Z.
[0092] In some possible designs, such as Figure 5 As shown, the first slot 1011 and the second slot 1012 are arranged along the second direction Z and are interconnected. In some other possible designs, the first slot 1011 and the second slot 1012 may also be arranged along the third direction X and be interconnected.
[0093] In some embodiments, please refer to the following: Figures 4 to 7 Furthermore, in conjunction with other accompanying drawings, a portion of the first through hole 201a is directly opposite to and connected to the second groove 1012 along the first direction Y.
[0094] This configuration allows the first through-hole 201a to have a larger diameter, enabling it to not only be directly aligned with and connected to the first groove 1011 along the first direction Y, but also directly aligned with and connected to the second groove 1012 along the first direction Y. This improves the efficiency of the atomizing liquid dispensing.
[0095] In some embodiments, please refer to the following: Figures 4 to 7 Furthermore, in conjunction with other accompanying drawings, the lower liquid through hole 201 also includes a second through hole 201b spaced apart from the first through hole 201a. The second through hole 201b is directly opposite to and connected to the second groove 1012 along the first direction Y.
[0096] Understandably, there are multiple liquid-filling through holes 201, at least one of which is a first through hole 201a and at least one of which is a second through hole 201b.
[0097] This design allows the second through-hole 201b to also be used for dispensing atomizing liquid, which helps to improve the dispensing efficiency of the atomizing liquid.
[0098] The above allows the atomizing liquid to flow directly into the first tank 1011 through the first through hole 201a, or to the second tank 1012 through at least one of the first through hole 201a and the second through hole 201b, and then into the first tank 1011.
[0099] In some embodiments, please refer to the following: Figure 5 and Figure 8In conjunction with other accompanying drawings, a second guide surface 105 is provided at the connection between the first tank 1011 and the second tank 1012. The second guide surface 105 is used to guide the atomized liquid from the second tank 1012 to the first tank 1011.
[0100] The second guiding surface 105 can be an inclined surface, an arc surface, or a free surface formed by a combination of inclined and arc surfaces.
[0101] By setting the second guide surface 105, the atomizing liquid can be easily guided from the second tank 1012 to the first tank 1011, thereby improving the liquid discharge efficiency of the atomizing liquid and thus improving the conduction efficiency of the atomizing liquid.
[0102] In some embodiments, please refer to Figure 2 In conjunction with other accompanying drawings, the support structure 100 also includes a suction nozzle 30. The support 10 and the sealing element 20 are both disposed within the suction nozzle 30, and the sealing body 211, the boss 212 and the suction nozzle 30 surround and form a liquid storage chamber 1002 that communicates with the lower liquid passage 201.
[0103] The liquid storage chamber 1002 refers to the space used to store the atomizing liquid. Specifically, in the first direction Y, the liquid storage chamber 1002 is located on the side of the first part 21 of the sealing member 20 away from the lower liquid tank 101.
[0104] This configuration allows the atomizing liquid in the storage tank 1002 to be discharged into the discharge tank 101 through the discharge port 201.
[0105] In some embodiments, please refer to Figure 2 And in conjunction with other accompanying drawings. The suction nozzle 30 includes a suction nozzle body 31 and an air guide tube 32, with the suction nozzle body 31 connected to the outer periphery of the air guide tube 32. The support 10 and the sealing element 20 are both disposed inside the suction nozzle body 31, and the suction nozzle body 31, the air guide tube 32 and the sealing element 20 surround to form a liquid storage chamber 1002.
[0106] The bracket 10 may also be provided with a mist outlet channel 103, which is located at one end of the bracket 10 along the first direction Y and extends through the bracket 10 along the first direction Y, so that the mist outlet channel 103 is connected to the atomizing chamber 1001.
[0107] The support structure 100 may further include a base structure 40. The base structure 40 is located at one end of the support 10 away from the mist outlet channel 103 along the first direction Y, and is connected to the nozzle body 31 to seal the end of the atomizing chamber 1001 away from the mist outlet channel 103 along the first direction Y. The base structure 40 is provided with an air inlet channel 401, which communicates with the atomizing chamber 1001. An air guide tube 32 is installed in the mist outlet channel 103 of the support 10, so that the air guide tube 32 and the mist outlet channel 103 are in communication.
[0108] Based on the above structure, during use, external gas can flow into the atomizing chamber 1001 through the air inlet channel 401 of the base structure 40. The atomizing liquid in the liquid storage tank 1002 can flow into the lower liquid tank 101 through the lower liquid throughlet 201, and then into the atomizing core 200 in the atomizing chamber 1001 through the liquid inlet throughlet 102. Under the heating action of the atomizing core 200, the liquid is atomized to form a mist. This mist flows with the gas in the atomizing chamber 1001, passing sequentially through the mist outlet channel 103 and the air guide pipe 32, and thus flows out of the atomizing device.
[0109] Please refer to the following: Figures 1 to 3 The atomizing device provided in this embodiment includes a support structure 100 and an atomizing core 200, with at least a portion of the atomizing core 200 disposed within the support 10. The support structure 100 in this embodiment is the same as the support structure 100 in the above embodiments; please refer to the relevant descriptions of the support structure 100 in the above embodiments for details, which will not be repeated here.
[0110] The atomizing device provided in this application, by adopting the support structure 100 involved in the above embodiments, helps to improve the conduction efficiency of the atomizing liquid, facilitates the continuous, uniform and efficient conduction of the atomizing liquid to the atomizing core 200, and reduces the risk of the atomizing core 200 clogging.
[0111] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A support structure, characterized in that, include: The support has a lower liquid tank on one side along the first direction; The sealing element includes a first portion covering one side of the lower liquid groove along the first direction, the first portion including a sealing body and a boss connected to the sealing body, the sealing body and the boss surrounding to form a lower liquid through hole communicating with the lower liquid groove; the side of the boss away from the lower liquid groove along the first direction extends beyond the sealing body, so that the boss and the sealing body form a stepped structure.
2. The support structure according to claim 1, characterized in that, The projection of the sealing body in the first direction surrounds the outer periphery of the projection of the boss in the first direction.
3. The support structure according to claim 1, characterized in that, The number of liquid discharge through holes is multiple, and the multiple liquid discharge through holes are arranged at intervals.
4. The support structure according to claim 1, characterized in that, The lower liquid tank includes a first tank, which is located on one side of the support along the second direction; The bracket is also provided with a liquid inlet hole and an atomizing chamber for installing the atomizing core. The atomizing chamber is arranged along the second direction with the first groove, and the liquid inlet hole is connected between the first groove and the atomizing chamber. The liquid discharge through-hole includes a first through-hole, at least a portion of which is directly opposite to and communicates with the first groove along the first direction; The seal further includes a second portion connected to the sealing body, at least a portion of the second portion covering the side of the first groove away from the atomizing chamber along the second direction, the first direction and the second direction intersecting.
5. The support structure according to claim 4, characterized in that, In the first direction, the first groove is tapered away from the first through hole.
6. The support structure according to claim 4, characterized in that, The bracket is provided with a first guide surface, which is directly opposite to the first through hole along the first direction; the first guide surface extends from the first through hole to the first groove and is used to guide the atomized liquid from the first through hole to the first groove.
7. The support structure according to claim 4, characterized in that, The lower liquid tank also includes a second tank connected to the first tank. The second tank is located on one side of the support along the first direction, and in the first direction, the first tank extends beyond the second tank in a direction away from the first through hole. A portion of the first through hole is directly opposite to and connected to the second groove along the first direction; and / or, the liquid discharge through hole further includes a second through hole spaced apart from the first through hole, the second through hole being directly opposite to and connected to the second groove along the first direction.
8. The support structure according to claim 7, characterized in that, A second guide surface is provided at the connection between the first tank and the second tank, and the second guide surface is used to guide the atomized liquid from the second tank to the first tank.
9. The support structure according to any one of claims 1-8, characterized in that, The support structure also includes a suction nozzle, and the support and the sealing element are both disposed inside the suction nozzle. The sealing body, the boss and the suction nozzle surround and form a liquid storage chamber that communicates with the lower liquid passage.
10. An atomizing device, characterized in that, include: The support structure according to any one of claims 1-9; The atomizing core is at least partially disposed within the bracket.