Electronic atomization device, atomizer, atomization assembly and atomization core of atomization assembly
By employing an interference-fit sleeve structure and liquid suction element design in the electronic atomizing device, the processing of the ventilation channel is simplified, costs are reduced, liquid saturation is prevented, and the ventilation effect is improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ASTRA INVESTMENT LTD
- Filing Date
- 2025-03-13
- Publication Date
- 2026-04-17
AI Technical Summary
The air exchange channels in existing electronic atomizing devices are complex in design, which increases the difficulty and cost of manufacturing and makes them prone to being filled with liquid, resulting in poor air exchange effect.
A first sleeve and a second sleeve that can be interference-fitted are used. A ventilation groove is machined on the second sleeve and it is matched with the liquid suction component to form a ventilation channel. The liquid suction component covers the ventilation groove to prevent the liquid from filling it.
It improves processing efficiency and reduces costs, effectively avoiding the problem of poor ventilation caused by the ventilation channel being filled with liquid.
Smart Images

Figure CN224125274U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic atomization technology, and in particular to an electronic atomization device, atomizer, atomization component and atomizing core thereof. Background Technology
[0002] Electronic atomizing devices, which convert liquid matrices into aerosols that users can inhale, have seen widespread application in the market in recent years. One of their core components is the atomizer, and its performance directly affects the device's effectiveness and user experience. However, existing electronic atomizers have some design flaws, particularly in the structural design of their internal air exchange channels, which limit further improvements in performance.
[0003] In existing electronic atomizing devices, the ventilation channels are designed on the atomizing base, which is complex and increases both manufacturing difficulty and production costs. Furthermore, the ventilation channels in existing electronic atomizing devices are easily filled with liquid matrix. Once filled, the ventilation function is significantly reduced, or even completely disabled. This results in an inability to effectively balance the air pressure within the liquid reservoir, thus affecting atomization efficiency. Utility Model Content
[0004] This application provides an electronic atomizing device, atomizer, atomizing component and atomizing core to solve the problem that the ventilation channel in existing atomizers is difficult to process due to structural design defects and also has a significant risk of being filled with liquid, resulting in poor ventilation effect.
[0005] To solve the above-mentioned technical problems, this application adopts the following technical solution: providing an atomizer. The atomizing core includes: a first sleeve with at least two first liquid inlets distributed circumferentially; a second sleeve fitted inside the first sleeve and press-fitted with it, the second sleeve having at least two second liquid inlets distributed circumferentially, and a ventilation groove formed thereon, the first and second liquid inlets overlapping each other; a liquid-absorbing element housed within the second sleeve and covering the second liquid inlets and part of the ventilation groove, the air inlet end of the ventilation groove exposed within the second sleeve and not covered by the liquid-absorbing element; and a heating element, which is a heating mesh, disposed on the side of the liquid-absorbing element away from the second sleeve; wherein the first and second sleeves are both rigid tubes, the inner wall surface of the first sleeve and the outer surface of the liquid-absorbing element respectively covering the inner and outer sides of the ventilation groove, and together with the ventilation groove forming a ventilation channel.
[0006] In some embodiments, the ventilation trough is isolated from the second liquid inlet, and ventilation is achieved through the liquid suction element.
[0007] In some embodiments, the ventilation trough is connected to the second liquid inlet, and the ventilation channel directly exchanges air through the second liquid inlet.
[0008] In some embodiments, the second sleeve has two spaced-apart second liquid inlets along its axial direction, corresponding to the upper heating mesh and the lower heating mesh respectively, and the ventilation groove is connected to the second liquid inlet corresponding to the upper heating mesh.
[0009] In some embodiments, the dimension of the first inlet along the circumference of the first sleeve is smaller than the dimension of the second inlet along the circumference of the second sleeve.
[0010] In some embodiments, the second sleeve is provided with a plurality of second liquid inlets along the circumferential direction, and the ventilation groove is disposed between two adjacent sets of second liquid inlets. The ventilation groove includes a first ventilation section and a second ventilation section that are connected to each other. The first ventilation section is connected to one side of the second liquid inlet in the circumferential direction, and the second ventilation section extends along the axial direction of the second sleeve to the area between the bottom of the second liquid inlet corresponding to the lower heating mesh and the end of the second sleeve.
[0011] To solve the above-mentioned technical problems, another technical solution adopted in this application is to provide an atomizing component. The atomizing component includes a shell, a liquid storage component, and an atomizing core as described above. The atomizing core is installed in the shell, the liquid storage component is disposed inside the shell and surrounds the atomizing core, and the top of the shell is provided with a liquid passage hole.
[0012] To solve the above-mentioned technical problems, another technical solution adopted in this application is to provide an atomizer. The atomizer includes a housing assembly and an atomizing component as described above, wherein the atomizing component is detachably mounted on the housing assembly.
[0013] To solve the above-mentioned technical problems, another technical solution adopted in this application is to provide an electronic atomizing device. The electronic atomizing device includes a main unit and an atomizer as described above, wherein the main unit is connected to the atomizer and supplies power to the atomizer.
[0014] The beneficial effects of this application are as follows: Unlike existing technologies, this application discloses an electronic atomizing device, an atomizer, an atomizing component, and its atomizing core. By configuring a first sleeve and a second sleeve that can be interference-fitted, and by conveniently processing a ventilation groove in the second sleeve, a ventilation channel for air exchange can be formed through the cooperation with the inner wall surface of the first sleeve and the outer surface of the liquid suction element. Compared to setting the ventilation groove on the atomizing base, the scheme used in this application to form the ventilation channel has higher processing efficiency and lower cost. Furthermore, the ventilation groove is set on the second sleeve and covered by the liquid suction element. The liquid suction element increases the adsorption force on the liquid present in the ventilation groove, effectively preventing the ventilation groove from being filled with liquid aerosol matrix, which would lead to poor ventilation. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, 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 this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort, wherein:
[0016] Figure 1 This is a schematic diagram of an embodiment of the electronic atomizing device provided in this application;
[0017] Figure 2 yes Figure 1 A cross-sectional structural schematic diagram of an embodiment of the atomizer in the electronic atomizing device shown;
[0018] Figure 3 yes Figure 2 A schematic diagram of the atomizer in the separated state of the housing assembly and the atomizing assembly;
[0019] Figure 4 yes Figure 2 A schematic diagram of the atomizing component in the atomizer shown;
[0020] Figure 5 yes Figure 4 A schematic diagram of the exploded structure of the atomizing component shown.
[0021] Figure 6 yes Figure 4 A cross-sectional view of the atomizing core in the atomizing assembly shown.
[0022] Figure 7 yes Figure 2 A schematic diagram of another embodiment of the atomizing component in the atomizer shown;
[0023] Figure 8 yes Figure 6 The diagram shows the exploded structure of the atomizing sleeve in the atomizing core. Detailed Implementation
[0024] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0025] The terms "first," "second," and "third" used in the embodiments of this application are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or devices.
[0026] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a mutually exclusive, independent, or alternative embodiment. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0027] This application provides an electronic atomizing device 300, see reference. Figure 1 , Figure 1 This is a schematic diagram of an embodiment of the electronic atomizing device provided in this application.
[0028] The electronic atomizing device 300 includes a main unit 200 and an atomizer 100. The main unit 200 is connected to the atomizer 100 and supplies power to the atomizer 100.
[0029] The electronic atomizing device 300 can be used to atomize aerosol matrices such as e-liquid, medicinal liquid, or nutrient solution, that is, to atomize liquid aerosol matrices into aerosols for users to inhale. The main unit 200 can be detachably connected to the atomizer 100 and supply power to the atomizer 100, thus allowing the atomizer 100 to be replaced; alternatively, the main unit 200 and the atomizer 100 can be integrated into one unit and supply power to the atomizer 100. The atomizer 100 stores and atomizes the aerosol matrix to form an aerosol for the user to inhale.
[0030] The main unit 200 includes an electrically connected control element and a battery. The control element is also used to electrically connect to the atomizer 100 to identify the status information of the atomizer 100 and control the power supply to the atomizer 100 based on the identified status information.
[0031] Please refer to the following: Figures 2 to 4 , Figure 2 yes Figure 1 The diagram shows a structural schematic of one embodiment of the atomizer in the electronic atomizing device. Figure 3 yes Figure 2 The diagram shows the atomizer in its separated state, with the housing assembly and atomizing assembly in between. Figure 4 yes Figure 2 The diagram shows the structure of the atomizing component in the atomizer.
[0032] like Figure 2 and Figure 4 As shown, the atomizer 100 includes a housing assembly 10 and an atomizing assembly 2. The housing assembly 10 has a first cavity 101 and a second cavity 102 that are connected to each other. The first cavity 101 is used to store the aerosol matrix. The atomizing assembly 2 is assembled in the second cavity 102 and includes a shell 20, a liquid storage component 30 and an atomizing core 40. The atomizing core 40 is installed in the shell 20. The liquid storage component 30 is disposed in the shell 20 and surrounds the atomizing core 40. The liquid storage component 30 also covers part of the liquid inlet 401 on the side wall of the atomizing core 40. The top of the shell 20 is provided with a liquid passage hole 201, which connects the first cavity 101 and the space inside the shell 20. The part of the liquid inlet 401 that is not covered is exposed in the liquid passage hole 201.
[0033] In the housing assembly 10, the first cavity 101 is used to store the aerosol matrix, and the second cavity 102 is used to assemble the atomizing assembly 2. The first cavity 101 may be arranged around the second cavity 102, or the first cavity 101 and the second cavity 102 may be arranged side by side.
[0034] In this embodiment, the first cavity 101 is arranged around the second cavity 102, and the second cavity 102 and the first cavity 101 are separated by a tube 104. The tube 104 is provided with a connecting hole 103 connecting the first cavity 101 and the second cavity 102.
[0035] Specifically, see Figure 3 The housing assembly 10 includes a housing 12 and a base 14. One end of the housing 12 has a suction nozzle 120, and the other end is an open end. The base 14 includes a seat 140 and a tube 104 connected to the seat 140. The cavity on the seat 140 and the tube 104 together form a second cavity 102. The seat 140 is sealed to the open end of the housing 12, and the end of the tube 104 away from the seat 140 is sealed to the suction nozzle 120.
[0036] Optionally, the first cavity 101 and the second cavity 102 can be arranged side by side. For example, the space inside the housing 12 is separated by a partition to form the first cavity 101 and the second cavity 102. The partition is provided with a connecting hole 103 that connects the first cavity 101 and the second cavity 102.
[0037] The atomizing component 2 is detachably installed in the second cavity 102, for example, the atomizing component 2 can be plugged in, snapped in or screwed into the second cavity 102.
[0038] In this embodiment, the atomizing component 2 is movably embedded in the second cavity 102 so as to facilitate the installation and removal of the atomizing component 2 from the housing assembly 10.
[0039] Optionally, the liquid passage hole 201 on the outer shell 20 can be directly connected to the connecting hole 103, that is, the aerosol matrix in the first cavity 101 can be directly supplied to the space inside the outer shell 20. For example, the inner side of the tube 104 is formed with a slope, and the connecting hole 103 is a hole on the slope. The top of the outer shell 20 also forms a corresponding slope and is attached to the slope on the inner side of the tube 104. The liquid passage hole 201 is also connected to the connecting hole 103.
[0040] In this embodiment, as Figure 2 As shown, after the atomizing component 2 is embedded in the second cavity 102, the second cavity 102 is not completely occupied, leaving a portion of the space as a transition cavity 106 to connect the first cavity 101 with the liquid passage 201 of the outer shell 20. That is, both the connecting hole 103 and the liquid passage 201 are connected to the transition cavity 106, which is part of the second cavity 102. The aerosol matrix in the first cavity 101 enters the outer shell 20 through the connecting hole 103, the transition cavity 106, and the liquid passage 201.
[0041] Furthermore, a conical surface 105 is formed on the end face of the second cavity 102 facing the outer shell 20. When the atomizer 100 is inverted, the conical surface 105 allows the liquid in the second cavity 102 to flow back to the first cavity 101 through the connecting hole 103. Therefore, when the atomizer 100 is inverted to replace the atomizing component 2, the liquid stored in the transition cavity 106 can avoid leakage by flowing back to the first cavity 101, thus reducing the risk of leakage.
[0042] like Figure 2 and Figure 3 As shown, the housing assembly 10 also includes a movable member 16 movably disposed within the second cavity 102. The movable member 16 has a tapered surface 105 at one end facing the atomizing assembly 2. The atomizing core 40 extends from one end of the housing 20 and is connected to the movable member 16. The housing 20 is movably assembled within the second cavity 102. (See also...) Figure 2 In this configuration, when the atomizing assembly 2 is assembled into the second cavity 102, the movable part 16 avoids the connecting hole 103, allowing the connecting hole 103 to connect the first cavity 101 and the second cavity 102; please refer to [link to relevant documentation]. Figure 3 After the atomizing assembly 2 is removed from the second cavity 102, the movable part 16 blocks the connecting hole 103.
[0043] The second cavity 102 is a cylindrical cavity. The user can simultaneously drive the movement of the movable part 16 by installing the atomizing component 2 into the second cavity 102 and removing the atomizing component 2 from the second cavity 102. The movable part 16 can move to the first position to avoid the connecting hole 103. The movable part 16 can move to the second position to block the connecting hole 103 and prevent the aerosol matrix in the first cavity 101 from leaking from the connecting hole 103.
[0044] Specifically, in the scenario where the atomizing component 2 is installed in the second cavity 102, initially the movable part 16 is in the second position and blocks the connecting hole 103. Then, the atomizing component 2 is pushed inward from the port of the second cavity 102, and the atomizing core 40 moves the movable part 16 from the second position to the first position. One end of the atomizing core 40 is also connected to the movable part 16. The atomization channel of the atomizing core 40 leads to the mouthpiece 120 through the movable part 16, and a transition cavity 106 is formed between the movable part 16 and the outer shell 20. In scenario 02, when the atomizing component 2 is disassembled, the aerosol matrix in the atomizer 100 and transition chamber 106 is guided by the conical surface 105 of the movable component 16 and then flows back to the first chamber 101 through the connecting hole 103. When the user applies force to pull the atomizing component 2 outward, the atomizing component 2 moves the movable component 16 outward together, causing the movable component 16 to move from the first position to the second position and block the connecting hole 103, preventing the aerosol matrix in the first chamber 101 from leaking out, and at the same time separating the atomizing core 40 and the movable component 16.
[0045] By further providing a movable part 16 in the second cavity 102, the movable part 16 can move with the atomizing component 2, thereby sealing the connecting hole 103 when the atomizing component 2 is disassembled, preventing the aerosol matrix in the first cavity 101 from leaking out, and avoiding the connecting hole 103 when the atomizing component 2 is installed in the second cavity 102, so that the aerosol matrix in the first cavity 101 can enter the transition cavity 106 to supply liquid to the atomizing component 2.
[0046] In this embodiment, as Figure 3 As shown, the movable component 16 includes a movable cylinder 160 and a tapered end 162 connected to one end of the movable cylinder 160. The movable cylinder 160 is movably assembled with the inner wall surface of the second cavity 102. The outer surface of the tapered end 162 facing the outer shell 20 is a tapered surface 105. A liquid collection groove 164 is formed on the inner surface of the tapered end 162. A liquid collecting component 17 is provided inside the movable cylinder 160 and on the liquid collecting groove 164. The liquid collecting component 17 is provided with an atomization channel 170 that communicates with the atomization channel 401 of the atomizing core 40.
[0047] The outer wall of the movable cylinder 160 may be provided with a sealing ring, which also abuts against the inner wall surface of the second cylinder 102, thereby making the movable member 16 and the inner wall surface of the second cylinder 102 form a movable engagement relationship. That is, when no external force is applied to the movable member 16, the position of the movable member 16 relative to the second cavity 102 remains unchanged, while when an external force is applied to the movable member 16, the movable member 16 can be driven to move within the second cavity 102.
[0048] The conical end 162 has a port that mates with the end of the atomizing core 40, and one end of the atomizing core 40 is sealed to the conical end 162 to prevent leakage. The movable part 16 contains a liquid collector 17 that can absorb condensate. The liquid collector 17 can be made of absorbent material such as cotton or non-woven fabric. It can absorb the condensate that rises with the aerosol and condenses upon cooling, preventing the aerosol from entering the user's mouth and causing a deterioration in taste. It also prevents condensate from flowing back to the atomizing core 40, effectively improving the atomization performance of the atomizer 100.
[0049] When the liquid collecting component 17 absorbs a large amount of condensate, the condensate can be collected in the liquid collecting tank 164 at the conical end 162 under the influence of gravity. That is, the liquid collecting tank 164 can be used to collect condensate, which further improves the liquid collecting capacity.
[0050] Continue reading Figures 3 to 5 ,in Figure 5 yes Figure 4 The diagram shows the exploded structure of the atomizing assembly. The outer shell 20 includes a cylindrical body 220 and a base 222. The top end of the cylindrical body 220 is provided with a liquid passage hole 201, and its bottom end is an open end. The base 222 seals the open end of the cylindrical body 220 and defines a receiving cavity. The liquid storage component 30 is disposed in the receiving cavity. The atomizing core 40 is connected to the base 222 and the top end of the cylindrical body 220. The base 122 is provided with an air hole communicating with the atomizing core 40.
[0051] Specifically, the liquid passage 201 includes a connecting part 202 and a liquid passage part 203 disposed on at least one side of the connecting part 202. Both the connecting part 202 and the liquid passage part 203 are hole structures that penetrate the top of the cylinder 220. The connecting part 202 is engaged with the atomizing core 40 through a shaft hole. The liquid passage part 203 connects the accommodating cavity inside the housing 20 and the transition cavity 106 outside the housing 20.
[0052] In this embodiment, symmetrical liquid passages 203 are provided on both sides of the connecting portion 202, and the ratio of the area of the liquid passage 203 to the end area of the liquid storage component 30 is 0.25 to 0.5, so as to replenish the liquid storage component 30 in the accommodating cavity more quickly and evenly.
[0053] The ratio of the area of the liquid passage section 203 to the end area of the liquid storage component 30 can be 0.25, 0.3, 0.35, 0.4, 0.45 or 0.5.
[0054] The length of the liquid inlet 401 along the circumferential direction of the outer wall of the atomizing core 40 is less than the length of the side wall of the connecting part 202 in the same circumferential direction. The exposed portion of the liquid inlet 401 on the atomizing core 40 is located at the liquid passage 203. This portion of the liquid inlet 401 can face the liquid passage 203 or the side wall of the connecting part 202. When facing the side wall of the connecting part 202, the space of this portion of the liquid inlet 401 is still connected to the space of the liquid passage 203. This portion of the liquid inlet 401 can still directly collect aerosol matrix.
[0055] The liquid storage component 30 can be made of polyester fiber, polypropylene fiber or non-woven fabric, etc. It has high adsorption capacity and uniform adsorption capacity, and can adsorb a certain amount of aerosol matrix. It also has good liquid conduction capacity and stable liquid conduction rate, ensuring that the aerosol matrix can be smoothly transferred to the atomizing core 40.
[0056] The liquid storage component 30 is located in the accommodating cavity of the outer shell 20. It can absorb the aerosol matrix and conduct the aerosol matrix to the atomizing core 40. Its function is to appropriately block the flow of the aerosol matrix, prevent too much or too fast aerosol matrix from entering the atomizing core 40 and causing leakage accidents, and also reduce the risk of leakage at the connection points of the outer shell 20.
[0057] See also Figure 2 and Figure 4 At least part of the liquid inlet 401 of the atomizing core 40 is exposed in the liquid passage 201, or further, the part of the liquid inlet 401 can be exposed in the liquid passage 201 and the transition cavity 106. The exposed part of the liquid inlet 401 is not covered by the liquid storage component 30, so the aerosol matrix at the liquid passage 201 can be directly replenished to it. Compared with the path of the aerosol matrix needing to go through the liquid storage component 30 to replenish the liquid inlet 401, its replenishment rate is higher and it can more quickly replenish the insufficient liquid supply demand of the atomizing core 40.
[0058] In this application, the side wall of the atomizing core 40 is provided with a liquid inlet 401, and part of the liquid inlet 401 is covered by the liquid storage component 30. The covered part of the liquid inlet 401 is supplied with liquid by the aerosol matrix absorbed by the liquid storage component 30. The part of the liquid inlet 401 not covered by the liquid storage component 30 is exposed at least in the liquid passage hole 201 so that the liquid is supplied directly by the liquid aerosol matrix temporarily stored at the liquid passage hole 201. Therefore, the liquid inlet 401 has two liquid supply paths. The liquid supply rate from the liquid storage element 30 to the atomizing core 40 is relatively more balanced, providing a more uniform and appropriate amount of aerosol matrix to meet the basic atomization requirements of the atomizing core 40. However, if the atomization demand of the atomizing core 40 becomes too high due to user vaping habits, and the liquid storage element 30 cannot meet this demand, dry burning is likely to occur. This application provides an additional liquid supply path, where the aerosol matrix at the liquid passage 201 can more quickly supply the uncovered atomizing core 40. Partial liquid inlet 401 supplies liquid to the atomizing core 40 for atomization, so as to increase the liquid supply demand to the atomizing core 40 in real time, make up for the atomization demand that cannot be met by the liquid storage component 30, and prevent the atomizing core 40 from dry burning due to insufficient liquid supply. When the atomizer 100 is in use, the part of the liquid inlet 401 that is not covered is located at the top. The aerosol matrix entering the atomizing core 40 from this point is affected by gravity, which can increase the rate of liquid supply to the heating element in the atomizing core 40 from top to bottom, and can avoid the heating element part located at the bottom from dry burning.
[0059] Furthermore, the ratio of the uncovered area to the covered area of the liquid inlet 401 is 0.25 to 0.5 to balance the liquid supply capacity of the two liquid replenishment paths. This allows for an increase in the liquid supply rate to the atomizing core 40 without increasing the risk of leakage, thereby effectively reducing the risk of dry burning of the atomizing core 40.
[0060] Specifically, the ratio of the uncovered area to the covered area of the liquid inlet 401 can be 0.25, 0.3, 0.35, 0.4, 0.45, or 0.5. A ratio less than 0.25 will result in insufficient improvement in the liquid supply rate of the atomizing core 40, while a ratio greater than 0.5 will increase the risk of leakage from the atomizing core 40 and lead to insufficient atomization of an excessively abundant aerosol matrix.
[0061] Please see Figure 3 , Figure 4 and Figure 6 ,in Figure 6 yes Figure 4 A cross-sectional view of the atomizing core in the atomizing assembly shown.
[0062] The atomizing core 40 includes an atomizing sleeve 41, a liquid suction element 42, and a heating element 43. The side wall of the atomizing sleeve 41 is provided with a liquid inlet 401. The liquid suction element 42 is disposed inside the atomizing sleeve 41 and covers the liquid inlet 401. The heating element 43 is stacked on the side of the liquid suction element 42 away from the liquid inlet 401. The heating element 43 covers the first liquid inlet 402 exposed in the liquid passage 201 and the second liquid inlet 403 covered by the liquid storage element 30 along the radial direction of the atomizing sleeve 41.
[0063] The atomizing sleeve 41 has a tubular structure, which can be a single-tube structure or a multi-layer tube structure, with at least one liquid inlet 401 distributed circumferentially, and multiple liquid inlets 401 can be evenly distributed along the axial direction of the atomizing sleeve 41. The liquid suction element 42 can be made of materials such as cotton or non-woven fabric, which can absorb liquid and guide liquid to the heating element 43; or the liquid guiding element 42 can also be porous ceramic or porous glass. The heating element 42 can be a heating mesh or heating film, which can heat the atomized aerosol matrix to generate aerosol within the atomizing channel 401.
[0064] The heating element 43 covers the liquid inlet 401 radially along the atomizing sleeve 41. The liquid inlet 401 is divided into a first liquid inlet 402 exposed in the liquid passage 201 and a second liquid inlet 403 covered by the liquid storage element 30. The heating element 43 covers both the first liquid inlet 402 and the second liquid inlet 403. The liquid inlet rate at the first liquid inlet 402 is greater than the liquid inlet rate at the second liquid inlet 403. The first liquid inlet 402 is located relatively above and has a greater liquid inlet rate, which can supply liquid to the heating element 43 more quickly. Under the influence of gravity, it can supply liquid to the entire downward liquid suction element 42 and the heating element 43 to help strengthen the liquid supply to the bottom part of the heating element 43 and reduce the risk of dry burning of the bottom part of the heating element 43.
[0065] In this embodiment, as Figure 3 and Figure 6 As shown, the heating element 43 includes an upper heating mesh 431 and a lower heating mesh 432 that are distributed and connected along the axial direction of the atomizing sleeve 41. The upper heating mesh 431 covers the first liquid inlet 402 and part of the second liquid inlet 403, and the lower heating mesh 432 covers the remaining second liquid inlet 403.
[0066] The heating element 43 consists of two layers of heating mesh. If both the upper heating mesh 431 and the lower heating mesh 432 are supplied with liquid by the aerosol matrix absorbed by the liquid storage device 30, the liquid supply to the upper heating mesh 431 may be relatively less due to factors such as gravity. This can easily lead to insufficient liquid supply to the upper heating mesh 431, resulting in a greater risk of dry burning of the upper heating mesh 431.
[0067] In this embodiment, the aerosol matrix at the liquid inlet 201 can be supplied to the upper heating grid 431 more quickly and directly through the first liquid inlet 402. The aerosol matrix can flow to the upper heating grid 431 more quickly, and the aerosol matrix stored in the lower liquid storage device 30 can be supplied to the lower heating grid 432. This ensures that both the upper heating grid 431 and the lower heating grid 432 can receive sufficient liquid, and the two different liquid supply paths can also effectively reduce the liquid competition between the upper heating grid 431 and the lower heating grid 432.
[0068] Optionally, such as Figure 5 As shown, the liquid storage component 30 can be cylindrical in shape, with a through hole through which the atomizing core 40 passes. The liquid storage component 30 basically occupies the accommodating cavity of the outer shell 20.
[0069] Please see Figure 7 , Figure 7 yes Figure 2 The diagram shows a structural schematic of another embodiment of the atomizing component in the atomizer. Optionally, the liquid storage component 30 has a groove 301 at one end facing the liquid passage 201. The bottom of the groove 301 is not higher than the bottom of the upper heating mesh 431 along the axial direction of the atomizing sleeve 41. The groove 301 causes the liquid storage component 30 to form a first surrounding portion 31 around the upper heating mesh 431 and a second surrounding portion 32 around the lower heating mesh 432.
[0070] The groove 301 is provided on the outer edge of the liquid storage component 30. By providing the groove 301, the aerosol matrix can directly reach the interior of the liquid storage component 30. The aerosol matrix can directly reach the lower heating mesh 432 through the second surrounding part 32, which relatively shortens the path of the aerosol matrix to the lower heating mesh 431 and improves the liquid supply efficiency to the lower heating mesh 432. The aerosol matrix through the first surrounding part 31 can supply liquid to at least part of the upper heating mesh 431, and the aerosol matrix inside can also supply liquid to the lower heating mesh 432 through the second surrounding part 32.
[0071] By further providing grooves 301 on the liquid storage component 30, liquid supply paths of different lengths can be formed for the heating grids at different locations. This can take into account the liquid supply needs of the heating grid structure at each location, balance and ensure the liquid supply needs of the heating grids at each location, eliminate the liquid supply imbalance phenomenon of excessive or insufficient liquid supply at local locations, and ensure that the heating component 43 can receive timely and sufficient liquid supply at each location while also avoiding the phenomenon of liquid leakage.
[0072] Please refer to the following: Figure 6 and Figure 8 ,in Figure 8 yes Figure 6 The diagram shows the exploded structure of the atomizing sleeve in the atomizing core.
[0073] The atomizing sleeve 41 includes a first sleeve 411 and a second sleeve 412. The second sleeve 412 is fitted inside the first sleeve 411 with an interference fit. The first sleeve 411 is provided with a first liquid inlet 413, and the second sleeve 412 is provided with a second liquid inlet 414. The first liquid inlet 413 and the second liquid inlet 414 are stacked to form a liquid inlet 401. A ventilation groove 415 is formed on the wall of the second sleeve 412. The inner wall surface of the first sleeve 411 and the outer surface surface of the liquid suction element 42 respectively cover the inner and outer sides of the ventilation groove 415, and together with the ventilation groove 415, they form a ventilation channel that connects the atmosphere and the second liquid inlet 414.
[0074] Specifically, the ventilation channel is connected to the atomization channel 401 of the atomizing core 40. When the air pressure in the first cavity 101 is unbalanced, air can be replenished to it through the ventilation channel to avoid insufficient liquid supply to the atomizing core 40 due to the low air pressure in the first cavity 101.
[0075] The ventilation groove 415 is a through groove on the wall of the second sleeve 412, that is, it penetrates the wall of the second sleeve 412. Therefore, the process of forming the ventilation groove 415 on the wall of the second sleeve 412 is simple and efficient, which greatly saves processing time and improves processing efficiency.
[0076] By configuring the atomizing sleeve 41 as a first sleeve 411 and a second sleeve 412 that can be interference-fitted, an air exchange groove 415 can be easily formed in the second sleeve 412. Through the cooperation with the inner wall surface of the first sleeve 411 and the outer surface of the liquid suction element 42, an air exchange channel for air exchange can be formed. Compared with setting the air exchange groove 415 on the atomizing base, the solution adopted in this application to form an air exchange channel has higher processing efficiency and lower cost.
[0077] The ventilation trough 415 is installed on the second sleeve 412 and covered by the liquid suction component 42, which can effectively prevent the ventilation trough 415 from being filled with liquid aerosol matrix, resulting in poor ventilation effect.
[0078] In this embodiment, the second sleeve 412 has a ventilation groove 415 that connects to the second liquid inlet 414 on its pipe wall. That is, one end of the ventilation groove 415 is directly connected to the second liquid inlet 414, and the ventilation channel directly exchanges air through the second liquid inlet 414, which can greatly improve its ventilation efficiency and reduce the difficulty of ventilation.
[0079] Optionally, the ventilation trough 415 is isolated from the second liquid inlet 414, and ventilation is achieved through the suction element 42. That is, the ventilation trough 415 is not directly connected to the second liquid inlet 414, and the ventilation channel needs to exchange air with the first cavity 101 through the suction element 42. The suction element 42 has a porous structure inside, and the gas entering exchanges air with the first cavity 101 along its pores.
[0080] Furthermore, both the first sleeve 411 and the second sleeve 412 are rigid pipes, which can effectively prevent the ventilation effect from being impaired due to the deformation of the ventilation channel and can better maintain the stability of the ventilation channel.
[0081] The atomizing sleeve 41 has a plurality of liquid inlets 401 distributed at intervals along its circumference. Each liquid inlet 401 includes a first liquid inlet 413 and two second liquid inlets 414 corresponding to the first liquid inlet 413. The two second liquid inlets 414 are arranged axially at intervals along the wall of the second sleeve 412 and correspond to the upper heating mesh 431 and the lower heating mesh 432, respectively. The ventilation trough 415 is connected to the second liquid inlet 414 corresponding to the upper heating net 431. The second liquid inlet 414 corresponding to the upper heating net 431 is partially exposed in the liquid passage hole 201. The aerosol matrix at the liquid passage hole 201 can flow rapidly to the upper heating net 431 through the second liquid inlet 414 for atomization. The liquid storage device 30 can supply liquid to the lower heating net 432 through the lower second liquid inlet 414. Therefore, it can prevent the upper heating net 431 from burning dry and prevent the upper heating net 431 and the lower heating net 432 from competing for liquid.
[0082] In this embodiment, the ventilation groove 415 is connected to the second liquid inlet 414 corresponding to the upper heating mesh 431, which can greatly shorten the path from the port of the ventilation groove 415 to the liquid passage hole 201, making the ventilation smoother and reducing the attenuation effect of the liquid storage component 30 on the ventilation effect.
[0083] Furthermore, the dimension of the first inlet 413 along the circumference of the first sleeve 411 is smaller than the dimension of the second inlet 414 along the circumference of the second sleeve 412. The aerosol matrix flows to the suction element 42 sequentially through the first inlet 413 and the second inlet 414. By setting the first inlet 413 with a relatively smaller diameter, the excessively fast conduction rate of the aerosol matrix is effectively limited, so that it has an appropriate liquid conduction rate.
[0084] The second sleeve 412 is provided with multiple sets of second liquid inlets 414 along the circumferential direction. The ventilation groove 415 is provided between two adjacent sets of second liquid inlets 414. The ventilation groove 415 includes a first ventilation section 416 and a second ventilation section 417 that are connected. The first ventilation section 416 is connected to one side of the second liquid inlet 414 in the circumferential direction. The second ventilation section 417 extends along the axial direction of the second sleeve 412 to the bottom of the second liquid inlet 414 corresponding to the lower heating mesh 431 and the end of the second sleeve 412.
[0085] By defining the position and path of the ventilation channel 415 as described above, the ventilation path can be effectively shortened and the ventilation efficiency improved. At the same time, the end of the second ventilation section 417 away from the first ventilation section 416 is located between the bottom of the second liquid inlet 414 and the end of the second sleeve 412, without directly cutting off the end of the second sleeve 412. Therefore, the second sleeve 412 can still maintain relatively good structural strength and avoid deformation, thus effectively maintaining the stability of the ventilation channel.
[0086] Unlike existing technologies, this application discloses an electronic atomizing device, an atomizer, an atomizing component, and an atomizing core. By configuring a first sleeve and a second sleeve that can be interference-fitted, and by conveniently processing a ventilation groove in the second sleeve, a ventilation channel for ventilation can be formed through the cooperation with the inner wall surface of the first sleeve and the outer surface of the liquid suction element. Compared with setting the ventilation groove on the atomizing base, the solution adopted in this application to form the ventilation channel has higher processing efficiency and lower cost. Furthermore, the ventilation groove is set on the second sleeve and covered by the liquid suction element. The liquid suction element increases the adsorption force on the liquid present in the ventilation groove, which can effectively avoid the situation where the ventilation groove is filled with liquid aerosol matrix, resulting in poor ventilation effect.
[0087] The above description is merely an embodiment of this application and does not limit the patent scope of this application. Any equivalent structural or procedural transformations made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this application.
Claims
1. An atomizing core, characterized in that, include: The first set of pipes has at least two first liquid inlets distributed circumferentially; The second sleeve is fitted inside the first sleeve and is interference-fitted with the first sleeve. The second sleeve has at least two second liquid inlets distributed circumferentially. The second sleeve also has a ventilation groove. The first liquid inlet and the second liquid inlet overlap. A liquid suction element is housed within the second sleeve and covers the second liquid inlet and part of the ventilation groove. The air inlet of the ventilation groove is exposed within the second sleeve and is not covered by the liquid suction element. A heating element, which is a heating mesh, is disposed on the side of the liquid-absorbing element away from the second sleeve; Both the first sleeve and the second sleeve are rigid tubes. The inner wall of the first sleeve and the outer side of the liquid suction element cover the inner and outer sides of the air exchange groove, respectively, and together with the air exchange groove, they form an air exchange channel.
2. The atomizer core of claim 1, wherein, The ventilation trough is isolated from the second liquid inlet and ventilation is achieved through the liquid suction element.
3. The atomizer core of claim 1, wherein, The ventilation trough is connected to the second liquid inlet, and the ventilation channel directly exchanges air through the second liquid inlet.
4. The atomizer core of claim 3, wherein, The second sleeve has two spaced-apart second liquid inlets along its axial direction, corresponding to the upper heating mesh and the lower heating mesh respectively, and the ventilation groove is connected to the second liquid inlet corresponding to the upper heating mesh.
5. The atomizer core of claim 4, wherein, The dimension of the first inlet along the circumference of the first sleeve is smaller than the dimension of the second inlet along the circumference of the second sleeve.
6. The atomizer core of claim 4, wherein, The second sleeve is provided with multiple sets of second liquid inlets along the circumferential direction. The ventilation groove is provided between two adjacent sets of second liquid inlets. The ventilation groove includes a first ventilation section and a second ventilation section that are connected. The first ventilation section is connected to one side of the second liquid inlet in the circumferential direction. The second ventilation section extends along the axial direction of the second sleeve to the bottom of the second liquid inlet corresponding to the lower heating mesh and the end of the second sleeve.
7. An atomising assembly characterised in that, The atomizing assembly includes a housing, a liquid reservoir, and an atomizing core as described in any one of claims 1 to 6. The atomizing core is installed in the housing, the liquid reservoir is disposed inside the housing and surrounds the atomizing core, and the top of the housing is provided with a liquid passage hole.
8. An atomiser characterised in that, The atomizer includes a housing assembly and an atomizing assembly as described in claim 7, the atomizing assembly being detachably mounted on the housing assembly.
9. An electronic atomizing device, characterized by, The electronic atomizing device includes a main unit and an atomizer as described in claim 8, wherein the main unit is connected to the atomizer and supplies power to the atomizer.