Atomizer and electronic atomization device
By incorporating a connecting pipe and a seal between the condensation chamber and the mounting chamber in the atomizer, the problem of aerosol matrix corrosion of the microphone head is solved, thus protecting the microphone head, ensuring stable operation of the atomizer, and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN GEEKVAPE TECH CO LTD
- Filing Date
- 2025-06-03
- Publication Date
- 2026-06-12
Smart Images

Figure CN224344289U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of atomizing devices, and particularly relates to an atomizer and an electronic atomizing device. Background Technology
[0002] Atomizers typically contain a microphone (silicon microphone), which is essentially a capacitive sensor. Its core structure consists of a diaphragm (movable electrode) and a backplate (fixed electrode), forming a parallel-plate capacitor. During normal operation, the airflow generated by the user's inhalation causes the diaphragm to deform, changing the distance between the two plates and thus altering the capacitance. The control board in the atomizer detects this change and triggers the coil to activate. To reduce aerosol corrosion of the microphone, it is generally housed in a mounting cavity outside the airflow channel, connected to the airflow channel via a vent.
[0003] However, to facilitate standardized injection molding, the airflow channel is typically machined with the vent facing in the same direction as the atomizer's air inlet and the atomizing channel formed by the atomizing core. After prolonged use, leaked or condensed aerosol matrix within the atomizing channel may enter the microphone's mounting cavity along the vent, causing corrosion and damage to the microphone. This results in the capacitance value remaining above the trigger threshold, preventing the control board from distinguishing between normal inhalation and abnormal conditions, ultimately leading to the atomizer automatically restarting. Utility Model Content
[0004] The purpose of this invention is to provide an atomizer and an electronic atomization device, which aims to solve the technical problem that existing microphones are easily damaged by corrosion from aerosol matrix.
[0005] This utility model is implemented as follows: Firstly, it provides an atomizer, including an atomizing body and a control component;
[0006] The atomizing body comprises an air inlet channel, an atomizing channel, a condensing chamber, and a mounting chamber. The condensing chamber is located between the atomizing channel and the air inlet channel and is connected to both. The mounting chamber is located on the side of the condensing chamber away from the atomizing channel and is separated from the condensing chamber by a partition. The partition has a first vent hole, the axis of which is the same as the axis of the atomizing channel. A connecting pipe protrudes from the side of the partition facing the condensing chamber, and the inner hole formed by the connecting pipe is connected to the first vent hole.
[0007] The control component includes a microphone, which is disposed within the mounting cavity.
[0008] As one embodiment of the first aspect, the connecting tube extends along a path inclined or curved relative to the axial direction of the atomizing air passage.
[0009] In one embodiment of the first aspect, the condensation chamber is provided with absorbent cotton, which avoids the opening of the inner hole in the axial direction of the atomizing air passage.
[0010] In one embodiment of the first aspect, the inner hole and the atomizing air passage are offset in the axial direction of the atomizing air passage.
[0011] In one embodiment of the first aspect, the control assembly further includes a control board disposed within the mounting cavity, the microphone mounted on the control board and electrically connected to the control board, a sealing element disposed within the mounting cavity, the sealing element connecting the control board and the cavity wall of the mounting cavity, the sealing element and the control board together forming a receiving cavity, the microphone being located within the receiving cavity, and the sealing element having a second vent hole communicating with the receiving cavity and the first vent hole.
[0012] In one embodiment of the first aspect, the seal has a sealing portion located between the microphone and the partition, the sealing portion being spaced apart from the partition, and a second vent hole being formed on the sealing portion, the second vent hole being offset from the first vent hole in the axial direction of the first vent hole.
[0013] In one embodiment of the first aspect, a blocking groove is provided on the side of the sealing portion facing the partition, and the blocking groove extends circumferentially along the second vent hole.
[0014] In one embodiment of the first aspect, the barrier groove is arranged around the second vent.
[0015] In one embodiment of the first aspect, the atomizing body includes a shell and an atomizing core. The shell forms a liquid storage chamber and an air outlet channel. The atomizing core is disposed inside the shell and forms the atomizing air outlet channel. The liquid storage chamber is arranged around the atomizing core. The end of the atomizing air outlet channel away from the condensation chamber is connected to the air outlet channel. The air inlet channel, the atomizing air outlet channel, and the air outlet channel all extend in the same direction.
[0016] In one embodiment of the first aspect, the air intake passage and the atomizing passage at least partially overlap in the axial direction of the atomizing passage.
[0017] Secondly, an electronic atomizing device is provided, including the atomizer described in the above embodiments.
[0018] As one embodiment of the second aspect, the electronic atomizing device further includes a sealing plug that can be detachably inserted into the atomizing air passage.
[0019] The technical advantages of this invention compared to existing technologies are as follows: By incorporating a connecting pipe protruding from the partition in the condensation chamber, the atomizer prevents condensate remaining on the partition from entering the mounting chamber through the first vent and contaminating the microphone, thus reducing the risk of the microphone being corroded by the aerosol matrix and preventing the atomizer from self-starting. Furthermore, the inner hole of the connecting pipe extends the path of aerosol entering the mounting chamber from the airflow channel. This allows some of the aerosol in the inner hole to condense and adhere to the hole wall, reducing the concentration of aerosol entering the mounting chamber and lowering the risk of microphone corrosion. Simultaneously, it limits the airflow velocity of aerosol entering the mounting chamber, preventing high-speed airflow carrying condensate droplets from directly impacting the microphone through the first vent. Attached Figure Description
[0020] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments of this utility model or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0021] Figure 1 This is a three-dimensional structural diagram of the atomizer provided in this embodiment of the utility model;
[0022] Figure 2 yes Figure 1 A cross-sectional view of the atomizer in the image;
[0023] Figure 3 yes Figure 1 The atomizer is shown in a three-dimensional structural diagram from another perspective, with the vapor control switch in the second clearance position.
[0024] Figure 4 This is a perspective view of the electronic atomizing device provided in an embodiment of this utility model;
[0025] Figure 5 yes Figure 4 A cross-sectional view of the electronic atomizing device in the image.
[0026] Explanation of reference numerals in the attached figures:
[0027] 100. Atomizer; 10. Atomizing body; 101. Air inlet; 102. Atomizing airway; 103. Condensation chamber; 104. Air outlet; 105. Liquid reservoir; 106. Mounting chamber; 1061. Receiving chamber; 107. Battery chamber; 108. Groove; 11. Housing; 1101. Nozzle; 111. Outer shell; 1110. Air inlet; 1111. Electrical connection point; 112. First bracket; 113. Second bracket; 1130. Perforation ; 11a, partition; 11a1, first vent; 11b, connecting pipe; 11b1, inner hole; 114, sealing element; 1141, sealing part; 1142, barrier groove; 1140, second vent; 12, atomizing core; 20, control assembly; 21, microphone; 22, control board; 23, battery; 30, absorbent cotton; 40, magnetic attachment; 50, air regulating switch; 51, air regulating plate; 52, lever; 501, air regulating hole; 200, sealing plug. Detailed Implementation
[0028] The embodiments of this utility model 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 utility model, and should not be construed as limiting this utility model.
[0029] In the description of this utility model, it should be understood that the terms "length", "width", "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 utility model 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 utility model.
[0030] 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 as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0031] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "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. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0032] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments.
[0033] Please see Figure 1 This utility model provides an atomizer 100 and an electronic atomizing device. The electronic atomizing device includes the atomizer 100 and may also include an external charger. The atomizer 100 can be electrically connected to the external charger, which can be used to supply power to the atomizer 100 or replenish its power. The atomizer 100 can be magnetically connected to the external charger for easy disassembly.
[0034] The atomizer 100 includes an atomizing body 10 and a control component 20. The control component 20 is installed inside the atomizing body 10 and is used to control the atomizing body 10 to atomize the aerosol matrix.
[0035] In this regard, please combine Figure 2 The atomizing body 10 has an air intake duct 101, an atomizing duct 102 and a condensing chamber 103. The condensing chamber 103 is located between the atomizing duct 102 and the air intake duct 101, and is connected to the atomizing duct 102 and the air intake duct 101.
[0036] Specifically, the atomizing body 10 includes a shell 11 and an atomizing core 12. The shell 11 forms a liquid storage chamber 105 and an air outlet 104. The atomizing core 12 is disposed within the shell 11 and forms an atomizing air outlet 102. The liquid storage chamber 105 surrounds the atomizing core 12 and is used to store the aerosol matrix. The atomizing core 12 can absorb the aerosol matrix in the liquid storage chamber 105 and atomize the aerosol matrix into aerosols, which are then discharged into the atomizing air outlet 102. The end of the atomizing air outlet 102 away from the condensation chamber 103 is connected to the air outlet 104. The shell 11 has a nozzle portion 1101, which forms the air outlet 104. Thus, the air inlet 101, the condensation chamber 103, the atomizing air outlet 102, and the air outlet 104 together form the airflow channel of the atomizer 100. In other embodiments, the atomizing body 10 may not have a liquid storage chamber 105. The atomizer 100 supplies the aerosol matrix through an external liquid storage chamber. The housing 11 may not have a nozzle part 1101, but can be detachably connected to an external nozzle. There are no restrictions here.
[0037] In other embodiments, the atomizing body 10 may also include a liquid storage cotton disposed in the liquid storage chamber 105, which is not limited here.
[0038] The cross-sectional dimensions of the condensing chamber 103 are larger than those of the atomizing air passage 102 and the air intake passage 101. In this case, the condensing chamber 103 forms an expanded space within the airflow channel. When the condensate formed by the aerosol condensation in the atomizing air passage 102 enters the condensing chamber 103, its flow velocity decreases, and it can be drawn to the bottom of the condensing chamber 103 under gravity, preventing the condensate from entering the user's mouth with the airflow and also preventing the condensate from leaking out through the air intake passage. The aforementioned cross-section refers to the cross-section in the normal direction along the axial direction of the atomizing air passage 102.
[0039] The atomizing body 10 also forms an installation cavity 106, which is located on the side of the condensing cavity 103 away from the atomizing air passage 102, so as to avoid occupying the space of the liquid storage cavity 105. The installation cavity 106 and the condensing cavity 103 are separated by a partition 11a, and the partition 11a is provided with a first vent hole 11a1.
[0040] Specifically, please combine Figure 2The housing 11 includes an outer shell 111, a first support 112, and a second support 113. The outer shell 111 forms a receiving cavity. The first support 112 and the second support 113 are both disposed in the receiving cavity. The first support 112 divides the receiving cavity into a first cavity and a second cavity. The atomizing core 12 is disposed in the first cavity and divides the first cavity into an atomizing air passage 102 and a liquid storage cavity 105. The second support 113 is disposed in the second cavity and forms an air inlet passage 101 and a condensation cavity 103. The second support 113 has a through hole 1130 that extends to the condensation cavity 103. The through hole 1130 is connected to the atomizing air passage 102. The axial direction of the through hole 1130 is the same as the axial direction of the atomizing air passage 102, that is, the opening direction of the through hole 1130 is the flow direction of the atomizing air passage 102.
[0041] The partition 11a is part of the second support 113. The first vent 11a1 and the air outlet of the air inlet duct 101 are both located on the same side of the second support 113. The axial direction of the first vent 11a1 is the same as the axial direction of the atomizing air duct 102. Thus, when processing the second support 113, the perforation 1130, the first vent 11a1, and the air inlet duct 101 are all opened in the same direction, saving processing time and cost. A connecting pipe 11b protrudes from the side of the partition 11a facing the condensation chamber 103. The inner hole 11b1 of the connecting pipe 11b is connected to the first vent 11a1, that is, the connecting pipe 11b is arranged around the inner hole 11b1. The connecting pipe 11b extends from one side of the partition 11a toward the side of the perforation 1130. In this embodiment, the cross-sectional size of the inner hole 11b1 can be the same as that of the first vent hole 11a1 to facilitate processing. In this case, the connecting pipe 11b and the partition 11a can be integrally formed, that is, the partition 11a and the connecting pipe 11b are both part of the second bracket 113. The inner hole 11b1 and the first vent hole 11a1 together form a long vent hole for allowing airflow in the airflow channel to enter the mounting cavity 106. In other embodiments, the cross-sectional size of the inner hole 11b1 and the cross-sectional size of the first vent hole 11a1 can also be different, which is not limited here.
[0042] The control assembly 20 includes a microphone 21 and a control board 22. The control board 22 can be a PCB (Printed Circuit Board). The microphone 21 is mounted on the control board 22 and electrically connected to it. Both the microphone 21 and the control board 22 are located within the mounting cavity 106. The microphone 21, also known as a silicon microphone, is used to detect changes in airflow within the airflow channel. After the microphone 21 detects a change in airflow, the control board 22 can control the atomizer coil 12 to start. In other embodiments, the control assembly 20 may not have a control board 22; instead, the control board 22 may be mounted on an external charger. The atomizer coil 12 can only start under the control of the control board 22 after the atomizer 100 is connected to the external charger. This is not a limitation.
[0043] When the user inhales by holding the mouthpiece 1101 in their mouth, external air enters the airflow channel through the air inlet of the air inlet 101. The microphone 21 detects the change in airflow through the vent and controls the atomizing core 12 to start. The atomizing core 12 atomizes the aerosol matrix in the liquid storage chamber 105 into aerosol and discharges it into the atomizing airway 102. The airflow in the airflow channel flows sequentially through the air inlet 101, the condensation chamber 103, the atomizing airway 102, and the air outlet 104, and then carries the aerosol into the user's mouth.
[0044] The atomizer 100, by providing a connecting pipe 11b protruding from the partition 11a in the condensation chamber 103, prevents condensate remaining on the partition 11a in the condensation chamber 103 from entering the mounting chamber 106 through the first vent 11a1 and contaminating the microphone 21. This reduces the risk of the microphone 21 being corroded and damaged by the aerosol matrix, thus preventing the atomizer 100 from self-starting. In addition, the inner hole 11b1 of the connecting pipe 11b extends the path of aerosol in the airflow channel into the mounting chamber 106. In this way, the aerosol in the inner hole 11b1 can be partially condensed and adhered to the hole wall of the inner hole 11b1, reducing the concentration of aerosol entering the mounting chamber 106 and reducing the risk of corrosion to the microphone 21. At the same time, it can also limit the airflow velocity of aerosol entering the mounting chamber 106, preventing high-speed airflow carrying condensate droplets from directly impacting the microphone 21 through the first vent 11a1.
[0045] Optionally, the connecting pipe 11b can be configured to extend along an inclined path or a curved path. The inclined path includes, but is not limited to, straight paths and curved paths, and the curved path includes, but is not limited to, broken line paths and wavy paths. In this way, the path of aerosol in the airflow channel into the mounting cavity 106 can be further extended to further reduce the concentration of aerosol entering the mounting cavity 106. At the same time, it can prevent the airflow entering the mounting cavity 106 from the vent hole from directly blowing onto the surface of the microphone 21, thereby reducing the interference of airflow fluctuations on the sensing accuracy of the microphone 21.
[0046] Please see Figure 2 In some embodiments, the first support 112, the second support 113, and the outer shell 111 can jointly enclose a battery cavity 107. The control assembly 20 also includes a battery 23 installed in the battery cavity 107. The battery cavity 107 can communicate with the mounting cavity 106 to facilitate electrical connection between the battery 23 and the control board 22. When the atomizer 100 is connected to an external charger, the external charger can charge the battery 23. The battery 23 and the airflow channel are arranged side by side in the axial direction of the atomizing airflow channel 102 and are located on the side of the liquid storage cavity 105 away from the mouthpiece portion 1101 to make full use of the space of the accommodating cavity.
[0047] In other embodiments, the atomizer 100 may not have a battery 23 installed inside. In this case, the atomizer 100 needs to be connected to the external charger to work. This is not a limitation.
[0048] Please see Figure 2 In some embodiments, a liquid-absorbing cotton 30 is provided inside the condensation chamber 103. The liquid-absorbing cotton 30 can be used to absorb the condensate in the condensation chamber 103 to limit the flow of the condensate in the condensation chamber 103 and prevent the condensate from splashing or flowing into the inner hole 11b1 of the connecting pipe 11b due to the shaking of the atomizer 100. The liquid-absorbing cotton 30 avoids the opening of the inner hole 11b1 in the axial direction of the atomizing air passage 102 to prevent the liquid-absorbing cotton 30 at the opening of the inner hole 11b1 from being saturated and obstructing the airflow through the inner hole 11b1 into the mounting cavity 106.
[0049] Please see Figure 2 In some embodiments, the air intake duct 101, the atomizing air duct 102, and the air outlet duct 104 all extend in the same direction. This allows the atomizer 100 to be manufactured in a long, narrow shape, reducing the cross-sectional size of the atomizer 100, making it easier for users to hold, improving user experience, and reducing production costs. Simultaneously, after entering the air intake duct 101, the airflow can flow in the same direction, reducing airflow resistance within the airflow channel, thereby reducing pressure loss along the path, making inhalation smoother for the user and improving user comfort.
[0050] Please see Figure 2 In some embodiments, the air intake duct 101 and the atomizing air duct 102 at least partially overlap in the axial direction of the atomizing air duct 102. This ensures that at least a portion of the air intake duct 101 and at least a portion of the atomizing air duct 102 lie on the same straight path. This arrangement reduces the number of airflow turns, effectively reduces pressure loss along the path, and results in smoother airflow. Users require less suction power when inhaling, simulating the smoothness of real smoking and improving overall user comfort. The straight-line airflow layout allows for more uniform and stable airflow through the atomizing core 12. When a stable airflow passes through the atomizing core 12, the aerosol matrix is uniformly heated and vaporized, resulting in more consistent aerosol particle size, improving atomization efficiency, and providing users with a richer, more concentrated, and more stable vapor experience. In addition, the condensate in the atomizing airway 102 can flow along the inner wall of the atomizing airway 102 to the air intake channel for discharge, which significantly reduces the risk of malfunctions such as "oil splattering" and airway blockage caused by condensate accumulation, and ensures the stable operation of the e-cigarette.
[0051] Please see Figure 2In some embodiments, the inner hole 11b1 and the atomizing air channel 102 are offset in the axial direction of the atomizing air channel 102. This allows condensate on the inner wall of the atomizing air channel 102 to avoid the inner hole 11b1 when dripping into the condensation chamber 103, preventing condensate from directly dripping into the inner hole 11b1 and entering the mounting cavity 106 to contaminate the microphone 21. Simultaneously, the aerosol temperature within the atomizing air channel 102 is high. If the inner hole 11b1 and the atomizing air channel 102 are directly aligned in the axial direction of the atomizing air channel 102, the high-temperature airflow may directly impact the microphone 21, leading to a decrease in the detection accuracy of the microphone 21. The offset arrangement allows the high-temperature airflow within the atomizing air channel 102 to first pass through the condensation chamber 103 for cooling, and then indirectly enter the mounting cavity 106 through the inner hole 11b1 of the connecting pipe 11b, improving the stability of the microphone 21's operating temperature.
[0052] Please see Figure 2 In some embodiments, a sealing member 114 is provided inside the mounting cavity 106. The sealing member 114 is connected between the control plate 22 and the cavity wall of the mounting cavity 106. The sealing member 114 is used to fill the gap between the cavity wall of the mounting cavity 106 and the control plate 22. The sealing member 114 and the control plate 22 together form a receiving cavity 1061. The microphone 21 is located inside the receiving cavity 1061. The sealing member 114 has a second vent 1140 that connects the receiving cavity 1061 and the first vent 11a1. Specifically, the sealing member 114 can be arranged around the microphone 21 and sealed to the peripheral side of the microphone 21 and the cavity wall of the mounting cavity 106, so that the diaphragm of the microphone 21 is only used to detect the airflow entering through the first vent 11a1, and to prevent dust or aerosol in the receiving cavity from affecting the detection of the microphone 21 through the gap between the cavity wall of the mounting cavity 106 and the control plate 22.
[0053] Optionally, the seal 114 can be an elastic element, such as silicone, so that a seal can be achieved by interference fit with the control panel 22 and the cavity wall of the mounting cavity 106. At the same time, it can also buffer the impact of the shaking of the atomizing body 10 on the microphone 21.
[0054] Optionally, the seal 114 has a sealing portion 1141 located between the microphone 21 and the partition 11a, with the sealing portion 1141 spaced apart from the partition 11a. A second vent 1140 is formed on the sealing portion 1141, and the second vent 1140 is axially offset from the first vent 11a1. In this way, the airflow entering the mounting cavity 106 from the first vent 11a1 needs to take a detour before passing through the second vent 1140 into the receiving cavity 1061. Residual aerosol droplets entering the mounting cavity 106 from the first vent 11a1 will impact the sealing portion 1141 due to inertia and be absorbed or intercepted by the sealing portion 1141, thereby reducing the amount of aerosol droplets or condensate entering the receiving cavity 1061. This offset arrangement also increases the resistance of airflow into the microphone 21, preventing small external airflow fluctuations from directly affecting the microphone 21 and reducing the probability of the atomizer 100 automatically starting. The second vent 1140 is positioned opposite the diaphragm of the microphone 21 in the axial direction, so that the airflow entering the receiving cavity 1061 can directly impact the diaphragm to improve the sensitivity of the microphone 21.
[0055] Optionally, a barrier groove 1142 is provided on the side of the sealing part 1141 facing the partition 11a. The barrier groove 1142 is spaced apart from the second vent hole 1140 and extends circumferentially along the second vent hole 1140. This barrier groove 1142 can serve as a liquid storage tank, absorbing the trace amounts of condensate absorbed on the sealing part 1141 and preventing the condensate from flowing to the microphone 21 through the second vent hole 1140. At the same time, the barrier groove 1142 can also generate turbulence in the airflow entering the mounting cavity 106, and the aerosol particles therein are more likely to adhere to the groove wall due to Brownian motion, further filtering out small droplets and reducing the aerosol concentration reaching the diaphragm of the microphone 21. In addition, when the sealing element 114 is an elastic element, the barrier groove 1142 can also provide a certain elastic deformation space for the sealing element 114, preventing the sealing element 114 from hardening due to long-term pressure and extending the service life of the sealing element 114.
[0056] Furthermore, the barrier groove 1142 is arranged around the second vent hole 1140 to provide circumferential protection for the second vent hole 1140, increasing the protection range against condensate entering the second vent hole 1140, thereby further reducing the concentration of aerosols entering the receiving cavity 1061. Simultaneously, when the seal 114 is an elastic element, the annular barrier groove 1142 can further increase the elastic deformation of the seal 114, thereby further extending the service life of the seal 114.
[0057] In other embodiments, the barrier groove 1142 may also be intermittently arranged around the second vent 1140, or an arc-shaped barrier groove 1142 may be provided only on the side of the second vent 1140 near the first vent 11a1, without limitation.
[0058] Please see Figure 1 and Figure 2 In some embodiments, the atomizer 100 further includes a magnetic suction member 40 disposed outside the atomizing body 10. Specifically, the magnetic suction member 40 is disposed on the housing 11 and can be magnetically connected to an external charger to achieve quick positioning and connection with the external charger, improving the user experience. Two magnetic suction members 40 may be provided. Correspondingly, a groove 108 is provided at each of the two axial ends of the housing 11, and the two magnetic suction members 40 are respectively installed in one of the grooves 108. In this way, the two magnetic suction members 40 can be disposed at both ends of the axial direction of the housing 11 to improve the stability of the connection with the external charger. Correspondingly, the housing 111 is provided with an electrical connection position 1111. When the atomizer 100 and the external charger are magnetically engaged, the external charger can make electrical contact with the electrical connection position 1111 to achieve electrical connection between the external charger and the battery 23 inside the atomizer 100.
[0059] Please see Figure 2 and Figure 3 In some embodiments, the housing 111 has an air inlet 1110, which is axially opposite to the air inlet channel. The atomizer 100 also includes a gas adjustment switch 50 movably connected to the housing 11. The gas adjustment switch 50 can move between a blocked position that obstructs the air inlet 1110 and a position that at least partially avoids the air inlet 1110. The user can adjust the position of the gas adjustment switch 50 to control the air intake and shut off of the atomizer 100.
[0060] Optionally, the gas regulating switch 50 includes a gas regulating plate 51 and a lever 52 disposed on the gas regulating plate 51. The gas regulating plate 51 is slidably connected between the housing 111 and the second bracket 113. The lever 52 can extend through the air inlet 1110 for easy operation by the user. The gas regulating plate 51 has at least one gas regulating hole 501. When the gas regulating switch 50 is in the blocked position, the gas regulating hole 501 is misaligned with the air inlet 1110. When the gas regulating switch 50 is in the avoidance position, at least one gas regulating hole 501 is connected to the air inlet 1110. In the illustrated embodiment, three gas regulating holes 501 are provided, and two avoidance positions are provided, which can be named the first avoidance position and the second avoidance position, respectively. When the airflow regulating switch 50 is in the first clearance position, two airflow regulating holes 501 are connected to the air inlet 1110, and the other airflow regulating hole 501 is offset from the air inlet 1110. When the airflow regulating switch 50 is in the second clearance position, all three airflow regulating holes 501 are connected to the air inlet 1110. In this way, the airflow regulating switch 50 can adjust the airflow rate by moving between the first clearance position and the second clearance position.
[0061] In other embodiments, the air regulating port 501 may also be provided in other quantities, such as one, two, four or more, and correspondingly, there may be multiple avoidance positions. The specific number can be set according to the requirements of the air regulating flow, and there is no limitation here.
[0062] Please see Figure 4 and Figure 5 In some embodiments, the electronic atomizing device further includes a sealing plug 200, which is independent of the atomizer 100. When the atomizer 100 is not in use, the sealing plug 200 can be inserted into the air outlet 104 from the air outlet of the mouthpiece 1101 of the atomizer 100 to prevent external dust from entering the airflow channel and contaminating the airflow channel, and at the same time to prevent the aerosol matrix in the atomizer 100 from overflowing or evaporating from the mouthpiece 1101 due to gravity or air pressure changes.
[0063] Optionally, when the sealing plug 200 is inserted into the atomizing air passage 102, it can extend into the atomizing air passage 102 to contact the oil-conducting material (such as oil-coated cotton) in the atomizing core 12, thereby reducing the contact area between the oil-conducting material and the air, delaying problems such as drying and cracking of the oil-conducting material due to long-term exposure to air, avoiding dry burning, and improving the durability of the atomizing core 12.
[0064] The above are merely preferred embodiments of the present utility model, and only specifically describe the technical principles of the present utility model. These descriptions are only for explaining the principles of the present utility model and should not be construed as limiting the scope of protection of the present utility model in any way. Based on this explanation, any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model, as well as other specific embodiments of the present utility model that can be conceived by those skilled in the art without creative effort, should be included within the scope of protection of the present utility model.
Claims
1. An atomizer, characterized in that, include: The atomizing body comprises an air inlet channel, an atomizing channel, a condensation chamber, and a mounting chamber. The condensation chamber is located between the atomizing channel and the air inlet channel and is connected to both. The mounting chamber is located on the side of the condensation chamber away from the atomizing channel and is separated from the condensation chamber by a partition. The partition has a first vent hole, the axis of which is the same as the axis of the atomizing channel. A connecting pipe protrudes from the side of the partition facing the condensation chamber, and the inner hole formed by the connecting pipe is connected to the first vent hole. A control component, including a microphone, wherein the microphone is disposed within the mounting cavity.
2. The atomizer as described in claim 1, characterized in that, The connecting tube extends along a path that is inclined or curved relative to the axial direction of the atomizing air passage.
3. The atomizer as described in claim 1, characterized in that, The condensation chamber is equipped with absorbent cotton, which avoids the opening of the inner hole in the axial direction of the atomizing air passage.
4. The atomizer as described in claim 1, characterized in that, The inner hole and the atomizing air passage are offset in the axial direction of the atomizing air passage.
5. The atomizer as described in claim 1, characterized in that, The control assembly further includes a control board disposed within the mounting cavity. The microphone is mounted on the control board and electrically connected to it. A sealing element is disposed within the mounting cavity, connecting the control board and the cavity wall of the mounting cavity. The sealing element and the control board together form a receiving cavity, with the microphone located within the receiving cavity. The sealing element has a second vent hole connecting the receiving cavity and the first vent hole.
6. The atomizer as described in claim 5, characterized in that, The sealing element has a sealing portion located between the microphone and the partition, the sealing portion being spaced apart from the partition, and a second vent hole being opened on the sealing portion, the second vent hole being offset from the first vent hole in the axial direction of the first vent hole.
7. The atomizer as described in claim 6, characterized in that, A barrier groove is provided on the side of the sealing part facing the partition, and the barrier groove extends circumferentially along the second vent hole.
8. The atomizer as described in claim 7, characterized in that, The barrier groove is arranged around the second vent.
9. The atomizer as described in claim 1, characterized in that, The atomizing body includes a shell and an atomizing core. The shell forms a liquid storage chamber and an air outlet channel. The atomizing core is disposed inside the shell and forms the atomizing air outlet channel. The liquid storage chamber is arranged around the atomizing core. The end of the atomizing air outlet channel away from the condensation chamber is connected to the air outlet channel. The air inlet channel, the atomizing air outlet channel, and the air outlet channel all extend in the same direction.
10. The atomizer as described in claim 9, characterized in that, The air intake duct and the atomizing duct overlap at least partially in the axial direction of the atomizing duct.
11. An electronic atomizing device, characterized in that, Includes the atomizer as described in any one of claims 1 to 10.
12. The electronic atomizing device as described in claim 11, characterized in that, The electronic atomizing device also includes a sealing plug, which can be detachably inserted into the atomizing air passage.