An electronic atomization device

CN224611956UActive Publication Date: 2026-08-11ALD GRP
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-18
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0004]有鉴于此,本申请提供一种电子雾化装置,至少解决了咪头感应不灵敏,导致雾化部件雾化出现延迟的问题

Benefits of technology

[0025]The electronic atomizing device provided in this application includes a device body with an airflow channel. The airflow channel includes an atomizing channel, a main air passage, an air-blocking hole, and a microphone sensing air passage. One end of the main air passage is connected to the atomizing channel, and the air-blocking hole is located at the other end of the main air passage. The air-blocking hole is used to connect the main air passage to the outside air, and the microphone sensing air passage is connected to the main air passage. Furthermore, the flow area of ​​the air interceptor is ensured to be smaller than that of the main airway. When the user inhales through the mouthpiece of the electronic atomizer, the air outside the atomizer flows sequentially through the air interceptor, the main airway, and the atomization channel before reaching the mouthpiece. Because the flow area of ​​the air interceptor is smaller than that of the main airway, a negative pressure is created in the main airway after the gas flows through the air interceptor. The microphone sensing airway is connected to the main airway, and this negative pressure is transmitted to the microphone's sensing position. This allows the microphone's sensitive trigger circuit to activate the atomizing component of the atomizer, improving the microphone's sensitivity to airflow and preventing delays in the atomization component when using the atomizer.

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Abstract

This application provides an electronic atomizing device, including a device body with an airflow channel. The airflow channel includes an atomizing channel, a main airway, an air-blocking port, and a microphone sensing airway. One end of the main airway is connected to the atomizing channel; the air-blocking port is located at the other end of the main airway to connect the main airway to the outside air; the microphone sensing airway is connected to the main airway; wherein, the flow area of ​​the air-blocking port is smaller than the flow area of ​​the main airway. Thus, when a user inhales through the mouthpiece of the electronic atomizing device, the air outside the device flows sequentially through the air-blocking port, the main airway, and the atomizing channel before flowing to the mouthpiece. Because the flow area of ​​the air-blocking port is smaller than that of the main airway, a negative pressure is formed in the main airway after the gas flows through the air-blocking port. The microphone sensing airway is also connected to the main airway, so the microphone sensing airway transmits the negative pressure to the sensing position of the microphone, causing the sensitive triggering circuit of the microphone to activate the atomizing component of the atomizing device, thereby improving the microphone's sensitivity to airflow.
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Description

Technical Field

[0001] This application relates to the field of atomization technology, specifically to an electronic atomization device. Background Technology

[0002] Electronic atomizing devices typically consist of an atomizing component and a control component. The atomizing component atomizes e-liquid into an aerogel, while the control component controls the atomizing component's on / off state. The core component of the control component is the microphone, which is an airflow sensor. When using an electronic atomizing device, air is inhaled through the mouthpiece. Airflow is generated inside the device, and the microphone senses the negative pressure of this airflow, triggering a circuit to activate the atomizing component. This allows the airflow carrying the aerogel to the mouthpiece for the user to inhale.

[0003] However, in existing electronic atomizing devices, due to defects in the airway design or blockage of the microphone's sensing airway by condensed oil, the negative pressure is too low, resulting in the microphone being insensitive to airflow and causing a delay in atomization by the atomizing components. Utility Model Content

[0004] In view of this, this application provides an electronic atomizing device that at least solves the problem of delayed atomization caused by insensitive microphone sensing.

[0005] To achieve the above objectives, this application provides the following technical solution:

[0006] An electronic atomizing device includes a device body with an airflow channel, the airflow channel comprising:

[0007] Atomization channel;

[0008] The main airway is connected at one end to the atomizing channel;

[0009] An air-cutting vent, located at the other end of the main air duct, is used to connect the main air duct to the outside air; and,

[0010] The microphone sensing airway is connected to the main airway;

[0011] The flow area of ​​the cut-off hole is smaller than the flow area of ​​the main air passage.

[0012] Optionally, the electronic atomizing device further includes a sealing plug that can pass through the air-blocking hole and extend to the main airway to seal the air-blocking hole and the main airway. When the electronic atomizing device is in the upright position, the sealing position of the sealing plug and the main airway is higher than the connection position between the microphone sensing airway and the main airway.

[0013] Optionally, the sealing plug includes:

[0014] The first sealing part can be interference-fitted with the air-stopping hole;

[0015] The second sealing part is located at one end of the first sealing part and can be interference-fitted with the main air passage; and,

[0016] The limiting part is located at the other end of the first sealing part, and when the sealing plug seals the main air passage and the cut-off hole, the limiting part abuts against the housing of the electronic atomizing device;

[0017] The diameter of the limiting part is larger than the diameter of the first sealing part.

[0018] Optionally, the sealing plug has a blind hole, which is located at least between the first sealing portion and the limiting portion. The blind hole allows for the detachable insertion of the force-applying member, and the deformation performance of the force-applying member is less than that of the sealing plug.

[0019] Optionally, the sealing plug includes an integrally formed force-applying part and a sealing part, the sealing part is disposed around the force-applying part, and the deformation performance of the force-applying part is less than that of the sealing part, and the sealing part can be interference-fitted with the air-stopping hole and the main air passage.

[0020] Optionally, the electronic atomizing device includes a seal surrounding the main airway, the seal forming the air-blocking hole, and the microphone sensing airway including an inner sensing airway opened within the seal and an outer sensing airway located outside the seal.

[0021] Optionally, when the electronic atomizing device is in the upright position, the connection end between the outer sensing airway and the inner sensing airway is higher than the connection end between the inner sensing airway and the main airway, and the connection end between the inner sensing airway and the main airway is higher than the air-blocking hole.

[0022] Optionally, in the direction in which the sealing plug is inserted into the electronic atomizing device, the cross-sectional area of ​​the sealing member surrounding the air-blocking hole gradually decreases.

[0023] Optionally, the device body also includes a condensation chamber for storing condensate, and an annular oil-absorbing cotton is provided in the condensation chamber. The main air channel and the atomization channel are connected through the hollow area of ​​the annular oil-absorbing cotton.

[0024] Optionally, in the axial direction of the atomizing channel, the projection of the atomizing channel and the main airway do not at least partially coincide.

[0025] The electronic atomizing device provided in this application includes a device body with an airflow channel. The airflow channel includes an atomizing channel, a main air passage, an air-blocking hole, and a microphone sensing air passage. One end of the main air passage is connected to the atomizing channel, and the air-blocking hole is located at the other end of the main air passage. The air-blocking hole is used to connect the main air passage to the outside air, and the microphone sensing air passage is connected to the main air passage. Furthermore, the flow area of ​​the air interceptor is ensured to be smaller than that of the main airway. When the user inhales through the mouthpiece of the electronic atomizer, the air outside the atomizer flows sequentially through the air interceptor, the main airway, and the atomization channel before reaching the mouthpiece. Because the flow area of ​​the air interceptor is smaller than that of the main airway, a negative pressure is created in the main airway after the gas flows through the air interceptor. The microphone sensing airway is connected to the main airway, and this negative pressure is transmitted to the microphone's sensing position. This allows the microphone's sensitive trigger circuit to activate the atomizing component of the atomizer, improving the microphone's sensitivity to airflow and preventing delays in the atomization component when using the atomizer. Attached Figure Description

[0026] 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 embodiments of this application. For those skilled in the art, other drawings can be obtained based on the provided drawings without creative effort.

[0027] Figure 1 This is a top view of the electronic atomizing device provided in this embodiment;

[0028] Figure 2 With the electronic atomizing device in sealed condition Figure 1 Cross-sectional view of position AA in the middle;

[0029] Figure 3 When the electronic atomizing device is not fitted with a sealing plug Figure 1 Cross-sectional view of position AA in the middle;

[0030] Figure 4 for Figure 3 A magnified view of the position shown in C.

[0031] Figure 5 This is a front view of the electronic atomizing device;

[0032] Figure 6 for Figure 5 Cross-sectional view of the BB position in the middle;

[0033] Figure 7 This is a schematic diagram of the sealing plug in one embodiment;

[0034] Figure 8This is a schematic diagram of the sealing plug in another embodiment.

[0035] exist Figures 1-8 middle:

[0036] 1-Atomizing channel, 2-Main air passage, 3-Air cut-off hole, 4-Mic head sensing air passage, 5-Sealing plug, 6-Sealing element, 7-Condensation chamber, 8-Ring oil-absorbing cotton, 9-Mic head;

[0037] 41-Inner sensing airway, 42-Outer sensing airway, 51-First sealing part, 52-Second sealing part, 53-Limiting part, 54-Blind hole, 55-Sealing part, 56-Force application part. Detailed Implementation

[0038] This application provides an electronic atomizing device that at least solves the problem of delayed atomization caused by an insensitive microphone sensor.

[0039] 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 some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0040] like Figures 1 to 8 As shown, this application embodiment provides an electronic atomizing device. An electronic atomizing device (also known as an electronic cigarette) is an electronic product that uses electrical energy to drive an atomizing component to heat e-liquid and generate vapor. Its core design is to replace traditional cigarettes. The electronic atomizing device includes a device body with an airflow channel, where the device body is the main part of the electronic atomizing device. The airflow channel is the channel for gas flow in the electronic atomizing device. This airflow channel mainly includes an atomizing channel 1, a main air passage 2, an air-blocking hole 3, and a microphone sensing air passage 4. The atomizing channel 1 is the channel through which the atomizing component of the electronic atomizing device atomizes the e-liquid into an aerogel. One end of the main air passage 2 is connected to the atomizing channel 1, and the main air passage 2 is used to guide outside air into the atomizing channel 1. The air-blocking hole 3 is located at the other end of the main air passage 2, used to connect the main air passage 2 and outside air, and to guide outside air into the main air passage 2. That is, when the user inhales through the mouthpiece of the electronic atomizing device, outside air flows sequentially through the air-blocking hole 3, the main air passage 2, and the atomizing channel 1 before flowing to the mouthpiece. The microphone sensing airway 4 is connected to the main airway 2, and the flow area of ​​the cut-off hole 3 is smaller than that of the main airway 2. In this way, after the gas flows through the cut-off hole 3, a negative pressure environment will be formed in the main airway 2. The microphone sensing airway 4 transmits the negative pressure environment to the location of the microphone 9. The microphone 9 trigger circuit is connected to make the atomizing component work, so that the atomizing component is in working condition when the user inhales through the electronic atomizing device.

[0041] Specifically, when the user inhales through the mouthpiece of the electronic atomizing device, the airflow flows from the cut-off hole 3 to the main airway 2. Since the flow area of ​​the cut-off hole 3 is smaller than that of the main airway 2, a negative pressure environment is formed in the main airway 2. The microphone sensing airway 4 is connected to the main airway 2, so the microphone sensing airway 4 will transmit the negative pressure to the location of the microphone 9. The trigger circuit of the microphone 9 will be connected to make the atomizing component work. The atomizing component will then atomize the e-liquid into aerogel in the atomizing channel 1. At the same time, the airflow flows from the main airway 2 to the atomizing channel 1. The airflow will carry the aerogel in the atomizing channel 1 to the mouthpiece for the user to inhale. This completes one cycle of the user using the electronic atomizing device.

[0042] It should be noted that the flow area of ​​the air cut-off hole 3 being smaller than that of the main air passage 2 means that the hole area of ​​the air cut-off hole 3 is smaller than the cross-sectional area of ​​the main air passage 2.

[0043] The electronic atomizing device with the above structure includes an atomizing channel 1, a main airway 2, an air-blocking hole 3, and a microphone sensing airway 4. One end of the main airway 2 is connected to the atomizing channel 1, and the air-blocking hole 3 is located at the other end of the main airway 2. The air-blocking hole 3 is used to connect the main airway 2 with the outside air, and the microphone sensing airway 4 is connected to the main airway 2. Furthermore, the flow area of ​​the air interceptor 3 is ensured to be smaller than that of the main airway 2. When the user inhales through the mouthpiece of the electronic atomizing device, the air outside the electronic atomizing device flows sequentially through the air interceptor 3, the main airway 2, and the atomization channel 1 before flowing to the mouthpiece. Since the flow area of ​​the air interceptor 3 is smaller than that of the main airway 2, a negative pressure is formed in the main airway 2 after the gas flows through the air interceptor 3. The microphone sensing airway 4 is connected to the main airway 2, so the microphone sensing airway 4 will transmit the negative pressure to the sensing position of the microphone 9, so that the sensitive triggering circuit of the microphone 9 can make the atomizing component of the atomizing device work, improve the sensitivity of the microphone 9 to the airflow, and avoid the problem of delay in the atomizing component when using the atomizing device.

[0044] Current disposable electronic atomizing devices generally have the following problems: If e-liquid leaks from the e-liquid tank during transportation after shipment, it can easily seep into the microphone's sensing airflow channel 4, causing the microphone 9 to activate falsely. This leads to malfunction of the electronic atomizing device, resulting in continuous heating of the atomizing component's heating element, posing a fire hazard. Therefore, in some embodiments, please refer to... Figure 2 , Figure 3 and Figure 6The electronic atomizing device also includes a sealing plug 5, which passes through the air-blocking hole 3 and extends to the main airflow channel 2 to seal both the air-blocking hole 3 and the main airflow channel 2. When the electronic atomizing device is in the upright position, the sealing position of the sealing plug 5 with the main airflow channel 2 is higher than the connection point between the microphone sensing airflow channel 4 and the main airflow channel 2. With this configuration, by sealing the air-blocking hole 3 and the main airflow channel 2 with the sealing plug 5, if e-liquid leaks from the e-liquid tank during transportation, the e-liquid will only flow to the location of the sealing plug 5. Furthermore, since the sealing position of the sealing plug 5 with the main airflow channel 2 is higher than the connection point between the microphone sensing airflow channel 4 and the main airflow channel 2, even if the electronic atomizing device leaks, the e-liquid will not flow through the microphone sensing airflow channel 4 to the location of the microphone 9, thereby preventing the microphone 9 from malfunctioning, preventing abnormal operation of the electronic atomizing device, preventing continuous heating of the heating element of the atomizing device, and preventing fire hazards.

[0045] In some embodiments, please refer to Figure 7 The sealing plug 5 includes a first sealing part 51, a second sealing part 52, and a limiting part 53. The first sealing part 51 can be press-fitted with the air shut-off hole 3. The second sealing part 52 is located at one end of the first sealing part 51 and can be press-fitted with the main air passage 2. That is, after the sealing plug 5 is inserted into the air inlet of the electronic atomizing device, the second sealing part 52 will seal the main air passage 2, and the first sealing part 51 will seal the air shut-off hole 3. The limiting part 53 is located at the other end of the first sealing part 51, and when the sealing plug 5 seals the main air passage 2 and the air shut-off hole 3, the limiting part 53 abuts against the housing of the electronic atomizing device. The diameter of the limiting part 53 is larger than the diameter of the first sealing part 51. After the sealing plug 5 is inserted into the electronic atomizing device to seal the air cut-off hole 3 and the main air passage 2, since the diameter of the limiting part 53 is larger than the diameter of the first sealing part 51, the limiting part 53 will abut against the shell, preventing the entire sealing plug 5 from being inserted into the electronic atomizing device. Thus, when using the electronic atomizing device, the sealing plug 5 can be pulled out by applying force to the limiting part 53, thereby improving the convenience of removing the sealing plug 5.

[0046] Since the sealing plug 5 seals both the cut-off port 3 and the main air passage 2, it means that the sealing plug 5 needs to be inserted into the electronic atomizing device a long distance. Furthermore, the sealing plug 5 is made of a material with a certain degree of elastic deformation, which makes it difficult to insert the sealing plug 5 into the electronic atomizing device, resulting in low efficiency in inserting the sealing plug 5 into the electronic atomizing device.

[0047] To address the aforementioned issues, in some embodiments, please refer to... Figure 7The sealing plug 5 has a blind hole 54, which is located at least between the first sealing part 51 and the limiting part 53. The blind hole 54 allows for the detachable insertion of a force-applying member (not shown in the figure), and the deformation performance of the force-applying member is less than that of the sealing plug 5. In this way, during the process of inserting the sealing plug 5 into the electronic atomizing device, the force-applying member is inserted into the blind hole 54 of the sealing plug 5, and then the operator applies force to the force-applying member to insert the sealing plug 5 into the electronic atomizing device, so as to facilitate the sealing of the air-blocking hole 3 and the main air passage 2 by the sealing plug 5, thereby improving the efficiency of inserting the sealing plug 5 into the electronic atomizing device.

[0048] For example, the force-applying component can be made of materials such as metal or rubber with deformation properties less than that of the sealing plug 5.

[0049] To further improve the efficiency of inserting the sealing plug 5 into the electronic atomizing device, the force-applying component abuts against the side wall of the blind hole 54. In this way, during the process of inserting the sealing plug 5 into the electronic atomizing device through the force-applying component, the force received by the force-applying component can be transmitted to the sealing plug 5 more efficiently, thereby further improving the efficiency of inserting the sealing plug 5 into the electronic atomizing device.

[0050] To address the issue of low efficiency when inserting the sealing plug 5 into the electronic atomizing device, in some other embodiments, please refer to... Figure 8 The sealing plug 5 includes an integrally formed force-applying part 56 and a sealing part 55. The sealing part 55 surrounds the force-applying part 56, and the deformation performance of the force-applying part 56 is less than that of the sealing part 55. The sealing part 55 can be interference-fitted with both the air-blocking hole 3 and the main air passage 2. With this configuration, when the operator applies force to the sealing plug 5 during the insertion of the sealing plug 5 into the electronic atomizing device, the force-applying part 56 can transmit the force to the sealing plug 5, thereby facilitating the sealing of the air-blocking hole 3 and the main air passage 2 by the sealing plug 5, and thus improving the efficiency of inserting the sealing plug 5 into the electronic atomizing device.

[0051] It should be noted that since the sealing plug 5 is a silicone-based structure, and since the force-applying part 56 and the sealing part 55 are integrally formed, the sealing plug 5 and the force-applying part 56 are injection molded.

[0052] In some embodiments, please refer to Figure 2 , Figure 3 , Figure 4 and Figure 6The electronic atomizing device includes a sealing element 6 surrounding the main airflow channel 2, which improves the overall airtightness of the device. The sealing element 6 also forms an air-blocking hole 3, further enhancing the sealing performance of the component with the air-blocking hole 3. The microphone sensing airflow channel 4 includes an inner sensing airflow channel 41 within the sealing element 6 and an outer sensing airflow channel 42 outside the sealing element 6. This means that during inhalation through the mouthpiece of the electronic atomizing device, the negative pressure transmitted through the air-blocking hole 3 is simultaneously transmitted to the microphone 9 via both the inner and outer sensing airflow channels 41 and 42. This configuration enhances the sealing performance of the microphone sensing airflow channel 4, ensuring that the negative pressure generated by the air-blocking hole 3 is stably transmitted to the microphone 9, allowing the microphone 9 to sensitively trigger the atomizing components.

[0053] Because the electronic atomizing device produces condensate in the atomization channel 1 after inhalation, the condensate can easily flow through the microphone sensing air passage 4 to the microphone 9. The condensate accumulates on the surface of the microphone 9. Since the condensate has a certain fluidity, when the condensate accumulates on the surface of the microphone 9, under external vibration, such as when a person walks with the electronic cigarette or when the electronic cigarette is placed in a car, the vibration will be transmitted to the condensate on the surface of the microphone 9. The condensate will vibrate slightly and continue to move the sensing film on the surface of the microphone 9, which will cause the microphone 9 to be activated falsely, posing a fire hazard.

[0054] To address the aforementioned issues, in some embodiments, please refer to... Figure 2 , Figure 3 and Figure 6 When the electronic atomizing device is in the upright position, the connection end between the outer sensing airway 42 and the inner sensing airway 41 is higher than the connection end between the inner sensing airway 41 and the main airway 2, and the connection end between the inner sensing airway 41 and the main airway 2 is higher than the shut-off hole 3. Thus, after the electronic atomizing device draws in air, condensate will be generated in the atomization channel 1. This arrangement ensures that the condensate remains only at the location of the shut-off hole 3 and does not flow through the microphone sensing airway 4 to the location of the microphone 9. Therefore, the condensate will not accumulate on the surface of the microphone 9, preventing the microphone 9 from malfunctioning due to condensate, thus improving the safety of the electronic atomizing device in this application. Furthermore, this arrangement also prevents the condensate from flowing into the outer sensing airway 42 and the inner sensing airway 41, meaning that the condensate will not block the microphone sensing airway 4 and will not affect the accuracy of the microphone sensing airway 4 in transmitting negative pressure, thereby ensuring the sensitivity of the microphone 9.

[0055] It should be noted that "electronic atomizer in the upright position" means that the electronic atomizer is in the correct position. Figure 2 and Figure 3 The state shown.

[0056] In some embodiments, please refer to Figure 2 and Figure 3In the direction in which the sealing plug 5 is inserted into the electronic atomizing device, the cross-sectional area of ​​the sealing member 6 surrounding the air-blocking hole 3 gradually decreases. During the process of inserting the sealing plug 5 from the outside of the electronic atomizing device into the inside, the aforementioned gradually decreasing structure of the sealing member 6 surrounding the air-blocking hole 3 serves as a guide during insertion, improving the efficiency of inserting the electronic atomizing device. Combined with the force-applying member and force-applying part 56 in the above embodiment, the efficiency of inserting the sealing plug 5 into the atomizing device can be further improved.

[0057] For example, the sealing plug 5 is inserted into the electronic atomizing device in the following direction: Figure 2 The direction indicated by the middle arrow X.

[0058] In some embodiments, please refer to Figures 2 to 4 The device also includes a condensation chamber 7 for storing condensate. An annular absorbent cotton 8 is installed inside the condensation chamber 7. The main airway 2 and the atomization channel 1 are connected through the hollow area of ​​the annular absorbent cotton 8. Thus, after the electronic atomizer draws in air, condensate is generated in the atomization channel 1. Under the influence of gravity, the condensate flows downwards along the atomization channel 1. Since the main airway 2 and the atomization channel 1 are connected through the hollow area of ​​the annular absorbent cotton 8, the condensate flows into the condensation chamber 7. The annular absorbent cotton 8 in the condensation chamber 7 absorbs the condensate, reducing the amount of condensate flowing into the main airway 2. This reduces or even prevents condensate from flowing through the main airway 2 into the microphone sensing airway 4 or from the cut-off port 3 to the outside of the electronic atomizer.

[0059] In some embodiments, please refer to Figures 2 to 4 In the axial direction of the atomizing channel 1, the projections of the atomizing channel 1 and the main airway 2 do not overlap at least partially. This embodiment includes two implementation methods: the projections of the atomizing channel 1 and the main airway 2 do not overlap partially, and the projections of the atomizing channel 1 and the main airway 2 do not overlap at all. In this way, when the user inhales the electronic atomizing device, after inhalation, condensate will be generated in the atomizing channel 1. The condensate in the atomizing channel 1 will flow downward along the atomizing channel 1 under the action of gravity. Since the atomizing channel 1 and the main airway 2 are misaligned, the condensate flowing down from the atomizing channel 1 will flow through the hollow area of ​​the annular oil-absorbing cotton 8 into the condensation chamber 7. The annular oil-absorbing cotton 8 will absorb the condensate, thus achieving efficient absorption of the condensate, further reducing the amount of condensate flowing into the main airway 2, and further reducing or even preventing the condensate from flowing from the main airway 2 to the microphone sensing airway 4 or from the cut-off hole 3 to the outside of the electronic atomizing device.

[0060] For example, the axial direction of atomizing channel 1 is... Figure 4 The direction indicated by the double-headed arrow Y.

[0061] The block diagrams of devices, apparatuses, devices, and systems involved in this application are merely illustrative examples and are not intended to require or imply that they must be connected, arranged, or configured in the manner shown in the block diagrams. As those skilled in the art will recognize, these devices, apparatuses, devices, and systems can be connected, arranged, and configured in any manner. Words such as “comprising,” “including,” “having,” etc., are open-ended terms meaning “including but not limited to,” and are used interchangeably with them. The terms “or” and “and” as used herein refer to the terms “and / or,” and are used interchangeably with them unless the context clearly indicates otherwise. The term “such as” as used herein refers to the phrase “such as but not limited to,” and is used interchangeably with it.

[0062] It should also be noted that in the apparatus, equipment, and methods of this application, the components or steps can be disassembled and / or recombined. These disassemblies and / or recombinations should be considered as equivalent solutions of this application.

[0063] The above description of the disclosed aspects is provided to enable any person skilled in the art to make or use this application. Various modifications to these aspects will be readily apparent to those skilled in the art, and the general principles defined herein can be applied to other aspects without departing from the scope of this application. Therefore, this application is not intended to be limited to the aspects shown herein, but rather to be accorded the widest scope consistent with the principles and novel features disclosed herein.

[0064] It should be understood that the qualifiers “first,” “second,” “third,” “fourth,” “fifth,” and “sixth” used in the description of the embodiments of this application are only used to more clearly illustrate the technical solutions and are not intended to limit the scope of protection of this application.

[0065] The above description has been given for purposes of illustration and description. Furthermore, this description is not intended to limit the embodiments of this application to the forms disclosed herein. Although numerous exemplary aspects and embodiments have been discussed above, those skilled in the art will recognize certain variations, modifications, alterations, additions, and sub-combinations thereof.

Claims

1. An electronic atomizing device, characterized in that, The device body includes an airflow channel, the airflow channel comprising: Atomization channel; The main air passage is connected at one end to the atomizing channel; An air-cutting vent, located at the other end of the main air duct, is used to connect the main air duct to the outside air; and, The microphone sensing airway is connected to the main airway; The flow area of ​​the cut-off hole is smaller than the flow area of ​​the main air passage.

2. The electronic atomizing device according to claim 1, characterized in that, The electronic atomizing device also includes a sealing plug, which can pass through the air-blocking hole and extend to the main air channel to seal the air-blocking hole and the main air channel. When the electronic atomizing device is in the upright position, the sealing position of the sealing plug and the main air channel is higher than the connection position between the microphone sensing air channel and the main air channel.

3. The electronic atomizing device according to claim 2, characterized in that, The sealing plug includes: The first sealing part can be interference-fitted with the air-stopping hole; The second sealing part is located at one end of the first sealing part and can be interference-fitted with the main air passage; and, The limiting part is located at the other end of the first sealing part, and when the sealing plug seals the main air passage and the cut-off hole, the limiting part abuts against the housing of the electronic atomizing device; The diameter of the limiting part is larger than the diameter of the first sealing part.

4. The electronic atomizing device according to claim 3, characterized in that, The sealing plug has a blind hole, which is located at least in the first sealing part and the limiting part. The blind hole allows for the detachable insertion of the force-applying member, and the deformation performance of the force-applying member is less than that of the sealing plug.

5. The electronic atomizing device according to claim 2, characterized in that, The sealing plug includes an integrally formed force-applying part and a sealing part. The sealing part is disposed around the force-applying part, and the deformation performance of the force-applying part is less than that of the sealing part. The sealing part can be interference-fitted with the air-stopping hole and the main air passage.

6. The electronic atomizing device according to claim 1, characterized in that, The electronic atomizing device includes a sealing element surrounding the main airway, the sealing element forming the air-blocking hole, and the microphone sensing airway including an inner sensing airway opened within the sealing element and an outer sensing airway located outside the sealing element.

7. The electronic atomizing device according to claim 6, characterized in that, When the electronic atomizing device is in the upright position, the connection end between the outer sensing airway and the inner sensing airway is higher than the connection end between the inner sensing airway and the main airway, and the connection end between the inner sensing airway and the main airway is higher than the air-blocking hole.

8. The electronic atomizing device according to claim 6, characterized in that, In the direction in which the sealing plug is inserted into the electronic atomizing device, the cross-sectional area of ​​the sealing member surrounding the air-blocking hole gradually decreases.

9. The electronic atomizing device according to claim 1, characterized in that, The device body also includes a condensation chamber for storing condensate, and an annular oil-absorbing cotton is provided in the condensation chamber. The main air channel and the atomization channel are connected through the hollow area of ​​the annular oil-absorbing cotton.

10. The electronic atomizing device according to claim 9, characterized in that, In the axial direction of the atomizing channel, the projection of the atomizing channel and the main air channel do not at least partially coincide.