Atomization assembly and atomization device

By designing the heating element and air path to be aligned in the same direction and the air intake channel to be bent in the atomizing component, the problem of poor aerosol flow caused by ceramic atomizing components is solved, achieving smooth aerosol flow and consistent taste, and improving the user experience.

CN119214381BActive Publication Date: 2026-02-24IMIRACLE (HK) LIMITED
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Patent Information

Application Number
CN202310788617.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-06-30
Publication Date
2026-02-24
Estimated Expiration
2043-06-30

AI Technical Summary

Technical Problem

In existing atomizing devices, the ceramic guide ceramic of the ceramic atomizing component obstructs the flow of aerosols, resulting in a decrease in aerosol flavor and a poor user experience.

Method used

Design an atomizing component in which the extension direction of the heating element is the same as the direction of the air path in the atomizing space, the atomizing element is installed at the end near the mouthpiece, the air inlet channel and the aerosol flow channel form a bend, the liquid suction element stably supplies the atomizing matrix, and the liquid guide is made of porous ceramic material to reduce flow resistance.

Benefits of technology

It reduces the flow resistance of aerosols, improves the flowability and consistency of aerosol taste, and enhances the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an atomization assembly and an atomization device, and belongs to the technical field of electronic atomizers. The atomization assembly comprises a liquid storage cup, a liquid suction piece and an atomization piece. The liquid storage cup has an open end. The liquid storage cup is provided with an atomization space. The atomization space is located at the open end of the liquid storage cup. The side, away from the open end, of the liquid storage cup is provided with a liquid storage space. The atomization piece is arranged in the atomization space. The atomization piece comprises a liquid guide body and a heating body. One end of the liquid suction piece is connected with the liquid guide body. The other end of the liquid suction piece is accommodated in the liquid storage space to transmit an atomization base material to the liquid guide body. An air inlet channel is formed in the side wall of the atomization space. The air inlet channel is communicated with the atomization space to form an air path. The extension direction of the heating body is the same as the extension direction of the air path in the atomization space. The atomization assembly provided by the application has the advantages that the extension direction of the heating body is the same as the extension direction of the air path in the atomization space, the flow resistance of aerosol is reduced, the aerosol can flow to the suction nozzle smoothly, and the taste attenuation of the aerosol is reduced.
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Description

Technical Field

[0001] This invention relates to the field of electronic atomizer technology, and in particular to an atomizing component and atomizing device. Background Technology

[0002] In existing atomizing devices, the oil-guiding ceramic of the ceramic atomizing component is placed horizontally inside the airway tube, and the heating wire is set at the bottom of the oil-guiding ceramic. The heating wire heats the atomizing matrix to generate aerosol. The aerosol generated at the bottom of the oil-guiding ceramic needs to bypass the side wall of the oil-guiding ceramic to enter the mouthpiece. The obstruction of the oil-guiding ceramic increases the flow resistance of the aerosol, resulting in poor aerosol flow, reduced flavor, and poor user experience. Summary of the Invention

[0003] This application provides an atomizing component that can solve the technical problem of aerosol taste decay in ceramic atomizing components.

[0004] To address the aforementioned technical problems, this application provides an atomizing component, including a liquid storage cup, a liquid suction element, and an atomizing element. The liquid storage cup has an open end and an atomizing space located at the open end. A storage space for storing an atomizing matrix is ​​provided on the side of the liquid storage cup away from the open end. The atomizing element is disposed within the atomizing space and includes a liquid guide and a heating element. One end of the liquid suction element is connected to the liquid guide, and the other end is housed within the storage space to transfer the atomizing matrix to the liquid guide. The heating element atomizes the atomizing matrix in the liquid guide into an aerosol. An air inlet channel is provided on the side wall of the atomizing space, communicating with the atomizing space to form an air path. The extending direction of the heating element is the same as the extending direction of the air path within the atomizing space.

[0005] This application also provides an atomizing device, including the atomizing components described above.

[0006] The atomizing component provided in this application extends in the same direction as the air passage within the atomizing space, which prevents the atomizing component from obstructing the flow of aerosol, reduces the flow resistance of aerosol, allows the aerosol to flow smoothly to the mouthpiece, reduces the attenuation of the aerosol's flavor, and improves the user experience. Attached Figure Description

[0007] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0008] Figure 1 This is a schematic diagram of the structure of an embodiment of the atomizing component provided in this application;

[0009] Figure 2 This is an exploded structural diagram of an embodiment of the atomizing component provided in this application;

[0010] Figure 3 This is a cross-sectional view of an embodiment of the atomizing component provided in this application from a longitudinal perspective;

[0011] Figure 4 This is a cross-sectional structural schematic diagram of an embodiment of the atomizing component provided in this application from another longitudinal perspective;

[0012] Figure 5 This is a schematic diagram of the structure of an embodiment of the atomizing element provided in this application;

[0013] Figure 6 This is a schematic diagram of the structure of an embodiment of the external support provided in this application;

[0014] Figure 7 This is a schematic diagram of the structure of an embodiment of the internal support provided in this application;

[0015] Figure 8 This is a schematic diagram of the structure of an embodiment of the liquid suction device provided in this application;

[0016] Figure 9 This is a cross-sectional view of another embodiment of the atomizing component provided in this application from a longitudinal perspective;

[0017] Figure 10 This is a cross-sectional structural diagram of an embodiment of the atomizing component provided in this application from a transverse perspective;

[0018] Figure 11 This is a schematic diagram of the structure of an embodiment of the sealing seat provided in this application;

[0019] Figure 12 This is a schematic diagram of an embodiment of the atomizing device provided in this application. Detailed Implementation

[0020] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be particularly noted that the following embodiments are for illustrative purposes only and do not limit the scope of the invention. Similarly, the following embodiments are only some, not all, embodiments of the present invention, and all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0021] In the description of this invention, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified. The terms "first," "second," and "third" 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. All directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationships and movements between components in a specific posture (as shown in the figures). If the specific posture changes, the directional indication also changes accordingly. The terms "comprising" and "having," and any variations thereof, in the embodiments of this application 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 components inherent to these processes, methods, products, or devices.

[0022] 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 the invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0023] This application provides an atomizing component. Please refer to [link / reference]. Figures 1-4 The atomizing assembly 100 may include a reservoir cup 10, a mouthpiece 20, a suction element 30, and an atomizing element 40. The reservoir cup 10 stores the atomizing matrix, which atomizes to generate an aerosol upon heating. The aerosol travels through the mouthpiece 20 to the end where the user inhales. The mouthpiece 20 is connected to the reservoir cup 10. The reservoir cup 10 has an open end and an atomizing space 11 connected to the mouthpiece 20. The atomizing space 11 is located at the open end of the reservoir cup 10, and a reservoir space 14 for storing the atomizing matrix is ​​located on the side of the reservoir cup 10 away from the open end. The atomizing element 40 is disposed within the atomizing space 11 and includes a liquid guide 41 and a heating element 42. One end of the suction element 30 is connected to the liquid guide 41, and the other end of the suction element 30 is housed within the reservoir space 14 to transfer the atomizing matrix to the liquid guide 41. The heating element 42 is used to atomize the atomizing matrix in the liquid guide 41 into an aerosol. An air inlet channel 16 is provided on the side wall of the atomization space 11, and the air inlet channel 16 communicates with the atomization space 11 to form an air passage. The extending direction of the heating element 42 is the same as the extending direction of the air passage in the atomization space 11.

[0024] The atomizing component 100 provided in this application, since the extending direction of the heating element 42 is the same as the extending direction of the air passage in the atomizing space 11, can prevent the atomizing element 40 from obstructing the flow of aerosol. This allows the aerosol generated by the heating element 42 heating the atomizing matrix to flow unobstructed along the longitudinal direction of the atomizing space 11 to the mouthpiece 20, reducing the flow resistance of the aerosol. The aerosol can flow smoothly to the mouthpiece 20, reducing the attenuation of the aerosol's taste and improving the user experience.

[0025] The conductive liquid 41 is a porous medium, which can be a porous ceramic material. Ceramic materials offer controllable precision, high mass production potential, and good oleophilicity and oil-locking properties. Compared to fibrous materials, the conductive liquid 41 made of ceramic material has a certain rigidity, is less prone to deformation, facilitates automated assembly, improves assembly efficiency, and reduces production costs. Please refer to [link / reference]. Figures 3-5 The liquid guide 41 has a first surface 411 facing the atomization space 11, and the first surface 411 is arranged along the longitudinal direction of the atomization space 11. The first surface 411 being along the longitudinal direction of the atomization space 11 means that the first surface 411 is parallel to the axis of the atomization space 11, or the angle between the first surface 411 and the axis of the atomization space 11 is relatively small, thus making the first surface 411 approximately parallel to the flow direction of the aerosol. This prevents the liquid guide 41 from obstructing the flow of the aerosol, allowing the aerosol to flow smoothly to the nozzle 20. The heating element 42 is disposed on the first surface 411 of the liquid guide 41.

[0026] The liquid guide 41 can be configured in various ways. For example, the liquid guide 41 can be a block-shaped cuboid, making its dimensions different in different directions. The installation direction of the atomizing element 40 can be identified by its external dimensions, ensuring the accuracy of the installation direction. In one embodiment, such as... Figure 5 As shown, the liquid guide 41 is annular, allowing external gas to flow from the hollow space within the annular liquid guide 41 to the nozzle 20. The first surface 411 is located on the inner wall of the liquid guide. The annular shape of the liquid guide 41 increases the mounting contact surface of the atomizing component 40. Generally, the atomizing space 11 is cylindrical, therefore the annular atomizing portion 414 can match the atomizing space 11, facilitating the installation and fixation of the atomizing component 40.

[0027] The heating element 42 can be manufactured and then assembled onto the fluid-conducting element 41. In one embodiment, such as... Figure 5 As shown, the conductive liquid 41 has a slot 413, and the heating element 42 is engaged in the slot 413. The heating element 42 can also be a resistance heating wire formed on the ceramic conductive liquid 41 using processes such as electroplating and printing, so that the heating element 42 is attached to the first surface 411 of the conductive liquid 41. The material of the heating element 42 can be one of stainless steel, nickel-chromium-aluminum alloy, nickel-chromium alloy, iron-chromium-aluminum alloy, or titanium alloy. The heating element 42 is connected to heating element pins 43, and the atomizing element 40 is connected to the power supply through the heating element pins 43.

[0028] Users have increasingly higher demands for the taste of aerosols, with specific evaluation indicators including sweetness, coolness, aroma fullness, and absence of a burnt taste. In existing technologies, adjusting the atomizing device to meet taste requirements can only improve one indicator, but may decrease another. For example, increasing the heating power of the atomizing element can improve the sweetness of the aerosol, but high-power heating can cause a burnt taste; another example is adjusting the composition of the atomizing matrix to improve sweetness, but a high-sweetness atomizing matrix is ​​prone to carbon buildup in the generated aerosol, affecting the taste. In this application, by installing the atomizing element 40 at the end of the atomization space 11 near the mouthpiece 20, the distance the aerosol needs to reach the user's inhalation end is reduced, thus comprehensively improving all aerosol indicators. In some embodiments, such as... Figure 3 As shown, the distance d between the atomizing element 40 and the end of the mouthpiece 20 furthest from the reservoir cup 10 is less than 20mm. Here, distance d refers to the length between the upper edge of the atomizing element 40 and the upper edge of the mouthpiece 20. In conventional designs, the distance between the atomizing element 40 and the mouthpiece 20 is usually greater than 40mm, causing the taste to decrease when the aerosol reaches the user's inhalation end, resulting in a poor user experience. Specifically, the distance d between the atomizing element 40 and the mouthpiece 20 can be 20mm, 18mm, 16mm, 15mm, etc., and is not specifically limited here.

[0029] In an embodiment, such as Figure 3 , Figure 4 , Figure 6 As shown, the atomizing assembly 100 is provided with an outer support 111. The outer support 111 is a hollow cylindrical shape, and the outer support 111 surrounds and forms an atomizing space 11. The outer support 111 is installed inside the liquid storage cup 10, and the outer support 111 and the liquid storage cup 10 surround a liquid storage space 14 for storing the atomizing matrix. Specifically, the side of the outer support 111 away from the top of the nozzle 20, or the side of the outer support 111 near the bottom of the liquid storage cup 10, surrounds the liquid storage cup 10 to form a receiving cavity 14 for storing the atomizing matrix. One end of the atomizing element 40 and the liquid suction element 30 is installed inside the outer support 111. The outer support 111 can be made of silicone. Silicone has good compressibility. When the outer support 111 is assembled into the liquid storage cup 10, the outer support 111 undergoes compression deformation to seal the liquid storage cup 10, which can prevent leakage of the atomizing matrix. The outer support 111 can also be made of plastic. Plastic has high strength and is not easily deformed, which can prevent the atomizing component 40 and the liquid suction component 30 from shifting. When the outer support 111 is made of plastic, a silicone ring can be set at the contact point between the outer support 111 and the liquid storage cup 10 to improve the airtightness of the liquid storage cup 10.

[0030] The liquid suction element 30 is a porous medium, which can be a porous fiber material or a porous ceramic. The liquid suction element 30 may include an integrally connected mounting section 31 and a vertical section 32, such as... Figure 4, Figure 8 As shown. The mounting section 31 is installed inside the outer bracket 111 and is in fluid communication with the atomizing element 40. The vertical section 32 passes through the outer bracket 111 and extends longitudinally along the liquid storage cup 10 to the bottom of the liquid storage cup 10. The atomizing matrix is ​​adsorbed onto the atomizing element 40 via the vertical section 32 and the mounting section 31. In the prior art, the atomizing element is located at the lower part of the liquid storage cup. The atomizing matrix flows to the atomizing element under hydraulic pressure, and the magnitude of the hydraulic pressure in the liquid storage cup determines the supply rate of the atomizing matrix in the atomizing element. During the use of the atomizing device, some of the atomizing matrix is ​​atomized to generate aerosol, and the atomizing matrix gradually decreases. The hydraulic pressure in the liquid storage cup decreases accordingly, and the rate at which the atomizing matrix flows to the atomizing element decreases. This change in the supply rate of the atomizing matrix will lead to inconsistent taste in the aerosol generated by the atomizing element, affecting the user experience. In this application, the atomizing element 40 is installed on the upper part of the liquid storage cup 10. The atomizing matrix stored in the liquid storage cup 10 is adsorbed to the atomizing element 40 by the liquid suction element 30. This makes the supply rate of the atomizing matrix in the atomizing element 40 depend only on the adsorption force of the liquid suction element 30. The adsorption force of the liquid suction element 30 is a property of the material itself and is not related to the hydraulic pressure of the atomizing matrix in the liquid storage cup 10. The reduction of the atomizing matrix in the liquid storage cup 10 will not affect the supply rate of the atomizing matrix. The supply rate of the atomizing matrix is ​​stable, thereby ensuring the consistency of the taste of the aerosol generated by atomization.

[0031] In one embodiment, the liquid suction element 30 is made of porous ceramic material, and the liquid suction element 30 and the liquid guide 41 are integrally formed. Compared with the liquid suction element 30 and the liquid guide 41 being independently processed and then assembled, this avoids gaps at the connection between the liquid guide 41 and the liquid suction element 30, which would increase fluid resistance and make the supply of atomizing matrix smoother.

[0032] The absorbent element 30 can also be made of porous fiber material, such as fiber cotton, non-woven fabric, linen, or synthetic fiber fabric. Porous fibers are generally quite soft, and the absorbent element 30 is prone to deformation when assembled into the outer support 111. In one embodiment, such as... Figure 3 , Figure 4 , Figure 7 As shown, the atomizing assembly 100 has an outer support 111 and an inner support 112, with the inner support 112 installed inside the outer support 111. The outer support 111 and the inner support 112 enclose an atomizing space 11, and the outer support 111 and the liquid storage cup 10 enclose a liquid storage space 14. Specifically, the side of the outer support 111 away from the top of the nozzle 20, or the side of the outer support 111 near the bottom of the liquid storage cup 10, together with the liquid storage cup 10, forms a receiving cavity 14 for storing the atomized matrix. One end of the suction member 30 is attached between the outer support 111 and the inner support 112. By setting the inner support 112, the suction member 30 is confined between the outer support 111 and the inner support 112, which prevents the suction member 30 from deforming, thereby ensuring the stability of the atomized matrix delivery.

[0033] When the liquid-absorbing component 30 is made of a flexible material, it is prone to deformation during assembly. To improve the bending stiffness of the liquid-absorbing component 30, in one embodiment, such as... Figure 4 As shown, the liquid suction element 30 is wrapped around the outer periphery of the heating element pin 43. Since the heating element pin 43 has higher bending stiffness than the flexible liquid suction element 30, wrapping the liquid suction element 30 around the outer periphery of the heating element pin 43 allows the heating element pin 43 to serve as a skeleton for the liquid suction element 30, thereby improving the bending stiffness of the liquid suction element 30 and preventing deformation of the liquid suction element 30 during assembly.

[0034] In one embodiment, such as Figure 4 , Figure 8 As shown, the mounting section 31 is a hollow cylinder and is attached to the inner wall of the outer bracket 111. The vertical section 32 can be columnar and is connected to the middle of the mounting section 31 at the end away from the suction nozzle 20. The vertical section 32 extends along the central axis of the liquid storage cup 10 to the bottom of the liquid storage cup 10. By positioning the vertical section 32 at the axis of the liquid storage cup 10, the two heating element leads 43 are enclosed within the vertical section 32, which can further improve the bending stiffness of the suction component 30 and prevent deformation of the suction component 30 during assembly.

[0035] In another embodiment, such as Figure 9 , Figure 10 As shown, the mounting section 31 and the vertical section 32 are columnar. The mounting section 32 is connected to the opposite ends of the atomizing element 40 and is attached to the inner wall of the outer support 111. The vertical section 32 is distributed on opposite sides of the axis of the liquid storage cup 10. Correspondingly, two heating element leads 43 are respectively wrapped inside the mounting section 31 and the vertical section 32. Since the heating element leads 43 are usually led out from both ends of the heating element 42, setting the vertical section 32 on opposite sides of the central axis of the liquid storage cup 10, so that the heating element leads 43 are led out from the side wall of the atomization space 11, can reduce the resistance of the heating element leads 43 to the gas flow in the atomization space 11.

[0036] The intake passage 16 may include a first through hole 161, a second through hole 162, and a third through hole 163 that are interconnected, such as Figures 6-8As shown. In this application, the atomizing component 40 is installed at one end of the atomizing space 11 near the nozzle 20. An air intake channel 16 is provided on the side wall of the atomizing space 11, so that the air intake channel 16 and the aerosol flow channel form a bend, and the air intake channel 16 is not directly connected to the aerosol flow channel, which can avoid the condensate formed by the condensation of aerosol flowing back along the air intake channel, thereby reducing the risk of condensate causing failure of some devices (such as the microphone). The first through hole 161, the second through hole 162 and the third through hole 163 are respectively opened on the side wall of the outer bracket 111, the liquid suction component 30 and the inner bracket 112. When the inner bracket 112 is assembled into the outer bracket 111, there may be a gap at the contact point between the inner bracket 112 and the outer bracket 111, which will affect the airtightness of the air intake channel 16. In one embodiment, as Figure 2 , Figure 3 As shown, an intake pipe 164 is inserted into the intake channel 16, and the intake pipe 164 connects the first through hole 161 and the third through hole 163. The intake pipe 164 is sealed at the contact point between the inner bracket 112 and the outer bracket 111, thereby improving the airtightness of the intake channel 16.

[0037] In one embodiment, such as Figure 3 As shown, the extension direction of the air intake channel 16 is perpendicular to the plane where the heating element 42 is located, so that the external gas entering from the air intake channel 16 can flow along the side of the atomizing element 40 to the mouthpiece 20, reducing the resistance of the atomizing element 40 to the airflow, making the airflow smoother, and improving the taste of the aerosol.

[0038] Please see Figure 2 , Figure 3 The liquid storage cup 10 may include a side wall 12 and a bottom plate 13. The bottom plate 13 is connected to the end of the side wall 12 away from the nozzle 20. An air inlet 121 is provided on the side wall 12, through which external air enters the atomization space 11. The side wall 12, bottom plate 13, and external support 111 form a liquid storage space 14, in which the atomizing matrix is ​​stored. Since the atomizing element 40 is installed at the end of the liquid storage cup 10 near the nozzle 20, the suction element 30 adsorbs the atomizing matrix in the liquid storage space 14 to the atomizing element 40. Therefore, it is not necessary to provide an opening at the bottom of the liquid storage space 14 to deliver the matrix to the atomizing element, which solves the problem that the atomizing matrix easily leaks from the bottom opening of the liquid storage space 14 under gravity.

[0039] Please see Figure 4In one embodiment, an electrode blind hole 131 is provided on the side of the liquid reservoir base plate 13 away from the nozzle 20. A heating element lead 43 passes through the liquid reservoir base plate 13, bends towards the electrode blind hole 131, and is attached to the inner wall of the electrode blind hole 131. An electrode 50 is inserted into the electrode blind hole 131, and the electrode 50 is electrically connected to the heating element lead 43. By providing the electrode blind hole 131, the installation and alignment of the electrode 50 can be facilitated, adapting to automated assembly and thus improving assembly efficiency.

[0040] In one embodiment, such as Figure 3 , Figure 11 As shown, the atomizing assembly 100 is provided with a sealing seat 60, which is installed between the mouthpiece 20 and the atomizing space 11, and connects the mouthpiece 20 and the atomizing space 11 respectively. The sealing seat 60 is partially embedded in the atomizing space 11, and the sealing seat 60 confines the atomizing element 40 within the atomizing space 11, preventing the atomizing element 40 from shifting. The sealing seat 60 can be made of silicone. When the sealing seat 60 is partially embedded in the atomizing space 11, the sealing seat 60 undergoes compression deformation to seal the atomizing space 11, which can improve the airtightness of the atomizing space 11.

[0041] As the aerosol flows towards the mouthpiece 20, its temperature decreases as it moves away from the heating element 42, and some of it liquefies to form condensate. If this condensate mixes with the aerosol and flows into the mouthpiece 20, it will affect the taste of the aerosol. In one embodiment, such as... Figure 3 As shown, the nozzle 20 contains an oil-absorbing cotton 70, which abuts against the side of the sealing seat 60 near the nozzle 20. The oil-absorbing cotton 70 can absorb condensate to ensure the taste of the aerosol.

[0042] This application provides an atomizing device. Please refer to [link / reference]. Figure 12 The atomizing device 300 may include the atomizing component 100, the control component 310, and the power supply component 320 as described above. The control component 310 can control the connection or disconnection of the atomizing component 100 and the power supply component 320 according to the suction action, so as to control the atomizing component 100 to heat the substrate to generate an aerosol or stop heating. Specifically, when inhaling through the mouthpiece 20, the control component 310 senses the negative pressure in the atomizing device 300, and the control component 310 controls the atomizing component 100 to connect with the power supply component 320, and the atomizing element 40 heats the substrate to generate an aerosol; when inhaling stops, the control component 310 controls the atomizing component 100 to disconnect from the power supply component 320, and the atomizing element 40 stops heating the substrate.

[0043] The atomizing component provided in this application has at least the following beneficial effects:

[0044] 1. The extension direction of the heating element 42 is the same as the extension direction of the air passage in the atomization space 11, which can prevent the atomizing element 40 from obstructing the flow of aerosol, reduce the flow resistance of aerosol, and allow the aerosol to flow smoothly to the mouthpiece 20, reducing the attenuation of the aerosol's taste and improving the user experience.

[0045] 2. The distance d between the atomizing element 40 and the end of the nozzle 20 furthest from the liquid storage cup 10 is less than 20mm, which reduces the distance the aerosol needs to reach the user's inhalation end and can comprehensively improve various indicators of the aerosol.

[0046] 3. The atomizing element 40 is installed on the upper part of the liquid storage cup 10. The atomizing matrix stored in the liquid storage cup 10 is adsorbed to the atomizing element 40 by the liquid suction element 30. The supply rate of the atomizing matrix in the atomizing element 40 depends only on the adsorption force of the liquid suction element 30. The supply rate of the atomizing matrix is ​​stable, which can ensure the consistency of the taste of the aerosol generated by atomization.

[0047] 4. When the liquid suction element 30 is made of porous ceramic material, the liquid suction element 30 and the liquid guide 41 are integrally formed, which can avoid the gap between the liquid guide 41 and the liquid suction element 30 at the connection point, thus increasing the fluid resistance and making the supply of atomizing matrix smoother.

[0048] 5. When the liquid suction component 30 is made of porous fiber material, the liquid suction component 30 is wrapped around the outer periphery of the heating element pin 43. The heating element pin 43 can serve as the skeleton of the liquid suction component 30, which improves the bending stiffness of the liquid suction component 30 and can prevent the liquid suction component 30 from deforming during assembly.

[0049] 6. The atomizing component 40 is installed at one end of the atomizing space 11 near the nozzle 20. An air intake channel 16 is provided on the side wall of the atomizing space 11, so that the air intake channel 16 and the aerosol flow channel form a bend. The air intake channel 16 is not directly connected to the aerosol flow channel, which can prevent the condensate formed by the condensation of aerosol from flowing back along the air intake channel, reducing the risk of some components failing due to condensate.

[0050] The above description is only a part of the embodiments of the present invention and does not limit the scope of protection of the present invention. Any equivalent device or equivalent process transformation made based on the content of the present invention specification and drawings, or direct or indirect application in other related technical fields, are similarly included within the patent protection scope of the present invention.

Claims

1. An atomizing component, characterized in that, include: The liquid storage cup, the liquid suction device, and the atomizing device are provided. The liquid storage cup has an open end and an atomizing space located at the open end of the liquid storage cup. A liquid storage space for storing the atomizing matrix is ​​provided on the side of the liquid storage cup away from the open end. The atomizing element is disposed within the atomizing space. The atomizing element includes a liquid guide and a heating element. One end of the liquid absorber is connected to the liquid guide, and the other end of the liquid absorber is housed within the liquid storage space to transfer the atomizing matrix to the liquid guide. The heating element is used to atomize the atomizing matrix in the liquid guide into an aerosol. An air intake channel is provided on the side wall of the atomizing space. The air intake channel is connected to the atomizing space to form an air passage. The extending direction of the heating element is the same as the extending direction of the air passage in the atomizing space. The heating element is connected to heating element pins, and the liquid suction element is wrapped around the outer periphery of the heating element pins.

2. The atomizing component according to claim 1, characterized in that, The liquid guide has a first surface facing the atomization space, the first surface being arranged longitudinally along the atomization space, and the heating element being disposed on the first surface of the liquid guide.

3. The atomizing component according to claim 2, characterized in that, The liquid guide is provided with a slot, and the heating element is engaged in the slot; or the heating element is attached to the first surface of the liquid guide.

4. The atomizing component according to claim 2, characterized in that, The fluid-conducting material is annular, with the first surface located on the inner wall of the fluid-conducting material.

5. The atomizing component according to claim 1, characterized in that, The air intake channel extends perpendicularly to the plane where the heating element is located.

6. The atomizing component according to claim 1, characterized in that, The atomizing component is provided with an outer support, which is a hollow cylindrical shape. The outer support surrounds and forms the atomizing space. The outer support is installed inside the liquid storage cup. The outer support and the liquid storage cup surround the liquid storage space. One end of the atomizing element and the liquid suction element are installed inside the outer support.

7. The atomizing component according to claim 6, characterized in that, The liquid suction component includes an integrally connected mounting section and a vertical section. The mounting section is installed inside the outer bracket and is in fluid communication with the atomizing component. The vertical section passes through the outer bracket and extends longitudinally along the liquid storage cup to the bottom of the liquid storage cup.

8. The atomizing component according to claim 7, characterized in that, The mounting section is a hollow cylindrical shape and is attached to the inner wall of the outer support.

9. The atomizing component according to claim 1, characterized in that, The atomizing component has an outer support and an inner support. The inner support is installed inside the outer support. The outer support and the inner support enclose the atomizing space. The outer support and the liquid storage cup enclose the liquid storage space. One end of the liquid suction member is attached between the outer support and the inner support.

10. An atomizing device, characterized in that, Includes the atomizing component as described in any one of claims 1-9.

Citation Information

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