Electronic atomization device

By designing a separate microphone airway and main airway structure in the electronic atomization device, and introducing a pressure relief airway and an air guide groove plate to optimize the airflow path, the problem of automatic activation of the microphone caused by sudden changes in air pressure is solved, and the safety and stability of the device are improved.

CN223415696UActive Publication Date: 2025-10-10广东弗我智能制造有限公司
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Patent Information

Application Number
CN202422450091.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-10
Publication Date
2025-10-10
Estimated Expiration
2034-10-10

AI Technical Summary

Technical Problem

Existing electronic atomization devices may automatically activate the microphone due to sudden changes in air pressure during air transportation, posing a safety hazard.

Method used

The microphone airway and main airway are separated, and a pressure relief airway is added to balance the air pressure. The airflow path is optimized through the pressure relief airway and air guide plate to reduce the risk of rapid airflow movement and prevent the microphone from self-activating.

Benefits of technology

It effectively reduces the risk of the microphone self-activating due to air pressure changes, improves the safety and stability of the electronic atomization device, and ensures that it will not be accidentally activated during transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of electronic atomization devices, in particular to an electronic atomization device which comprises a shell, a microphone assembly and an air inlet assembly, the microphone assembly and the air inlet assembly are arranged in the shell, a microphone air channel is arranged in the microphone assembly, and a main air channel is arranged in the air inlet assembly. A first air inlet and a second air inlet are formed in the shell at intervals, one end of the microphone air passage is communicated with the main air passage, and the other end is communicated with the first air inlet; the other end of the main air passage is communicated with the second air inlet; the microphone assembly further comprises a pressure relief air channel. The two ends of the pressure relief air channel are communicated with the two ends of the microphone air channel respectively. The pressure relief air passage provides a passage through which the gas escapes and does not pass through the microphone, so that the gas is prevented from being accumulated in the microphone air passage, and the electronic atomization device is prevented from being automatically started when the pressure intensity of the external environment is changed.
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Description

Technical field

[0001] The utility model relates to the technical field of electronic atomization devices, and in particular to an electronic atomization device. [Background Technology]

[0002] In existing electronic atomization device products, the microphone controls the working state of the atomizer by sensing the flow of air. It is usually connected to the air inlet of the atomization channel and is the entrance for air inhalation. It guides the atomized smoke into the user's mouth to adjust the concentration of the smoke and the resistance to inhalation. However, the integrated design of the microphone airway and the smoke air inlet channel makes the airflow channel of the electronic atomization device simple and unobstructed. However, during air transportation, the air pressure changes suddenly in a short period of time. The integrated design will cause the sensitive sensor in the microphone to sense the change in air pressure and operate, causing the atomizer to start accidentally, and then causing the product to burn. At this time, the design of the microphone airway being connected to the air inlet channel of the atomization channel brings certain safety hazards. Therefore, it is necessary to improve the internal structure to prevent the electronic atomization device from automatically activating during air transportation. [Utility Model Content]

[0003] In order to solve the technical problem of automatic activation of existing electronic atomization devices during air transportation, the utility model provides an electronic atomization device.

[0004] The solution to the technical problem solved by the present utility model is to provide an electronic atomization device, comprising a shell and a microphone assembly and an air intake assembly arranged in the shell, the microphone assembly including a microphone airway, and the air intake assembly including a main airway; a first air inlet and a second air inlet are spaced apart on the shell, one end of the microphone airway is connected to the main airway, and the other end is connected to the first air inlet; one end of the main airway is connected to the microphone airway, and the other end is connected to the second air inlet; the microphone assembly also includes a pressure relief airway, and the two ends of the pressure relief airway are respectively connected to the two ends of the microphone airway.

[0005] Preferably, the microphone assembly includes a first microphone seal and a microphone arranged in the first microphone seal, and a pressure relief space is provided on a side of the first microphone seal away from the first air inlet corresponding to the microphone, and the pressure relief space is communicated with the microphone airway.

[0006] Preferably, a receiving groove is provided on a side of the first microphone seal facing the first air inlet, the microphone is arranged in the receiving groove, and the pressure relief airway connects the receiving groove and the pressure relief space.

[0007] Preferably, the air intake assembly includes an air guide groove plate, which is arranged on a side close to the pressure relief space, and a first air guide port is provided on a side of the air guide groove plate away from the first air intake port, the first air guide port is arranged corresponding to the microphone and is connected to the pressure relief space, and the diameter of the first air guide port is larger than the diameter of the pressure relief air duct.

[0008] Preferably, the microphone assembly further includes a second microphone seal, the first microphone seal and the second microphone seal are arranged correspondingly, and a first through hole is opened on the second microphone seal, one end of the first through hole is respectively connected to the microphone airway and the pressure relief airway, and the other end is connected to the first air inlet.

[0009] Preferably, the electronic atomization device further comprises a lower sealing member, and an end of the air intake assembly facing away from the second air inlet is sealed by the lower sealing member.

[0010] Preferably, the air guide trough plate further includes a second air guide port spaced apart from the first air guide port, and the second air guide port is communicated with the main air duct.

[0011] Preferably, an air guide channel is defined between the lower sealing component and the air guide groove plate, and the air guide channel is connected to the first air guide port and the second air guide port.

[0012] Preferably, the electronic atomization device further includes an atomization assembly, the atomization assembly includes an atomization channel, and the atomization channel is communicated with the air guide channel.

[0013] Preferably, the diameter of the second air inlet is larger than the diameter of the first air inlet.

[0014] Compared with the prior art, the electronic atomization device provided by the present invention has the following advantages:

[0015] In the electronic atomization device provided in the embodiment of the present invention, the microphone airway and the main airway are spaced apart, which optimizes the path of the airflow, and the airflow is differentiated and enters the electronic atomization device, which increases the resistance in the microphone airway, making it difficult for the gas to move quickly when the pressure fluctuates. That is, when the product suddenly enters a high-pressure environment, the airflow near the microphone remains stable and slow, reducing the self-starting of the microphone due to pressure changes during air transportation of the product, reducing the direct impact of pressure changes on the microphone, reducing the risk of self-starting, and improving the sealing; when the external air pressure changes, the pressure relief airway provides a channel for the gas to escape without passing through the microphone, avoiding gas accumulation in the microphone airway, allowing the microphone to sense the pressure difference and start automatically, alleviating the pressure difference between the microphone airway and the main airway, reducing the possibility of the device starting automatically, ensuring that the device can effectively respond to pressure changes during transportation, and improving safety and stability.

Brief Description of the Drawings

[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments or descriptions of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.

[0017] Figure 1 This is a three-dimensional model of the electronic atomization device provided in the first embodiment of the present invention. Figure 1 .

[0018] Figure 2 This is a three-dimensional model of the electronic atomization device provided in the first embodiment of the present invention. Figure 2 .

[0019] Figure 3 This is a cross-sectional view of the electronic atomization device provided by the first embodiment of the present invention. Figure 1 .

[0020] Figure 4 This is a cross-sectional view of the electronic atomization device provided by the first embodiment of the present invention. Figure 2 .

[0021] Figure 5 yes Figure 3 A is an enlarged schematic diagram.

[0022] Figure 6 yes Figure 4 A is an enlarged schematic diagram.

[0023] Figure 7 This is a three-dimensional model diagram of the air guide plate of the electronic atomization device provided in the first embodiment of the present utility model.

[0024] Figure 8 1 is a schematic diagram of the assembly of the first microphone seal and the second microphone seal of the electronic atomization device provided in the first embodiment of the present utility model.

[0025] Figure 9 Schematic diagram of an explosion of the microphone assembly and the air intake assembly of the electronic atomization device provided in the first embodiment of the present invention.

[0026] Description of the accompanying drawings:

[0027] 100. Electronic atomization device;

[0028] 1. Housing; 2. Microphone assembly; 3. Air intake assembly; 4. Lower seal; 5. Atomizer assembly;

[0029] 11. First air inlet; 12. Second air inlet; 21. Microphone airway; 22. Pressure relief airway; 23. First microphone seal; 24. Microphone; 25. Second microphone seal; 31. Main airway; 32. Air guide plate; 41. Air guide channel; 51. Atomization channel;

[0030] 231, pressure relief space; 232, accommodating groove; 233, second through hole; 251, first through hole; 252, slot; 321, first air guide port; 322, second air guide port. [Specific implementation method]

[0031] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and implementation examples. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0032] It should be noted that when an element is referred to as being "fixed to" another element, it may be directly attached to the other element or there may be an intermediate element. When an element is referred to as being "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only.

[0033] In this utility model, terms such as "upper," "lower," "left," "right," "front," "back," "top," "bottom," "inner," "outer," "center," "vertical," "horizontal," "transverse," and "longitudinal" indicate positions or locations based on the positions or locations shown in the accompanying drawings. These terms are primarily intended to better describe the utility model and its embodiments and are not intended to limit the devices, elements, or components indicated to having a specific orientation, or to being constructed or operated in a specific orientation.

[0034] Furthermore, some of the above terms may be used to express other meanings besides indicating a position or location. For example, the term "on" may also be used to indicate a dependency or connection in certain circumstances. Those skilled in the art will understand the specific meanings of these terms in this utility model based on the specific circumstances.

[0035] Furthermore, the terms "installed," "disposed," "provided with," "connected," and "connected" should be interpreted broadly. For example, they can refer to fixed connections, removable connections, or integral structures; mechanical connections or electrical connections; direct connections, indirect connections through an intermediary, or internal communication between two devices, elements, or components. Those skilled in the art will understand the specific meanings of these terms in this utility model based on the specific circumstances.

[0036] Please combine Figures 1-4 An electronic atomization device 100 includes a shell 1 and a microphone assembly 2 and an air intake assembly 3 arranged in the shell 1. The microphone assembly 2 includes a microphone airway 21, and the air intake assembly 3 includes a main airway 31; a first air inlet 11 and a second air inlet 12 are spaced apart on the shell 1, one end of the microphone airway 21 is connected to the main airway 31, and the other end is connected to the first air inlet 11; one end of the main airway 31 is connected to the microphone airway 21, and the other end is connected to the second air inlet 12; the microphone assembly 2 also includes a pressure relief airway 22, and the two ends of the pressure relief airway 22 are respectively connected to the two ends of the microphone airway 21.

[0037] It can be understood that the pressure relief air duct 22 balances the air pressure inside and outside the microphone assembly 2. When the user inhales, excess gas is allowed to enter the electronic atomization device 100 through the pressure relief air duct 22, thereby maintaining the stability of the working environment of the microphone 24 and improving the efficiency of airflow utilization. During air transportation, the pressure relief air duct 22 allows gas to escape, avoiding gas accumulation in the microphone 24, alleviating the pressure difference between the microphone air duct 21 and the main air duct 31, and reducing the possibility of self-starting.

[0038] Further, see Figure 5 The microphone assembly 2 includes a first microphone seal 23 and a microphone 24 arranged in the first microphone seal 23. A pressure relief space 231 is provided on the side of the first microphone seal 23 away from the first air inlet 11 corresponding to the microphone 24. The pressure relief space 231 is connected to the microphone airway 21.

[0039] Specifically, the pressure relief space 231 is located on a side of the first microphone seal 23 away from the first air inlet 11 , and is formed by a reasonable geometric shape, such as a groove, an opening, or a cavity.

[0040] As an implementable solution, the pressure relief air duct 22 may include a pressure relief space 231 , or a pressure relief space 231 independent of the pressure relief air duct 22 may be separately provided, which is not specifically limited in the present utility model.

[0041] It can be understood that the pressure relief space 231 allows the air pressure in the microphone airway 21 to be balanced and adjusted under complex environmental changes: for example, when the electronic atomization device 100 is in air transportation and the internal air pressure fluctuates, the pressure relief space 231 can serve as a buffer area to help stabilize the internal air pressure and prevent false start-up. The stable internal air pressure environment helps to reduce the wear and aging of the microphone assembly 2 and its related components, thereby extending the service life.

[0042] Further, see Figure 5 A receiving groove 232 is formed on a side of the first microphone seal 23 facing the first air inlet 11 , and the microphone 24 is disposed in the receiving groove 232 . The pressure relief airway 22 connects the receiving groove 232 with the pressure relief space 231 .

[0043] Specifically, the receiving groove 232 matches the shape of the microphone 24 to ensure that the microphone 24 is firmly fixed in the receiving groove 232. The depth and width of the receiving groove 232 facilitate airflow. The microphone airway 21 includes all ventilation channels of the microphone 24 in the receiving groove 232.

[0044] Furthermore, the pressure relief air duct 22 includes a second through hole 233 provided through the first microphone seal 23. The second through hole 233 is spaced apart from the accommodating groove 232 and the pressure relief space 231 on the first microphone seal 23, and its length is adapted to the height of the first microphone seal 23.

[0045] It can be understood that the microphone 24 is a key component of the electronic atomization device, and its stability and sensitivity directly affect the performance of the product. The microphone 24 is arranged in the receiving groove 232 of the first microphone seal 23 to prevent the microphone 24 from being subjected to external impact.

[0046] It can be understood that the pressure relief air duct 22 connects the microphone 24 to the upper and lower sides close to the first air inlet 11 and away from the first air inlet 11 respectively. By adjusting the airflow on the upper and lower sides, the pressure fluctuations directly borne by the microphone 24 during air transportation are reduced to prevent self-starting.

[0047] Further, see Figure 6 - Figure 7 The air intake assembly 3 includes an air guide groove plate 32, which is arranged on a side close to the pressure relief space 231. A first air guide port 321 is provided on a side of the air guide groove plate 32 away from the first air inlet 11. The first air guide port 321 is arranged corresponding to the microphone 24 and is connected to the pressure relief space 231. The diameter of the first air guide port 321 is larger than the diameter of the pressure relief air duct 22.

[0048] Specifically, the diameter of the first air guide port 321 is greater than the diameter of the second through hole 233 .

[0049] It can be understood that the pressure relief space 231 is directly connected to the microphone air duct 21. The working principle of the electronic atomization device 100 started by the microphone 24 is closely related to the pressure. When the user inhales, the external airflow enters the microphone air duct 21 through the first air inlet 11. The microphone air duct 21 has a certain flow resistance. The airflow will produce a pressure drop when passing through the microphone 24, which makes the air pressure on the upper side of the microphone 24, that is, the side close to the first air guide port 321, relatively low, while the air pressure on the lower side, that is, the side close to the first air inlet 11, is relatively high, thereby generating a certain pressure difference, causing the diaphragm in the microphone 24 to deform and trigger the switch, thereby controlling the operation of the heating device of the electronic cigarette. The diameter of the pressure relief air duct 22 is smaller than the diameter of the first air guide port 321 above the microphone 24, to avoid the pressure relief air duct 22 affecting the formation of the pressure difference between the upper and lower sides of the microphone 24 during inhalation.

[0050] Furthermore, the diameter of the pressure relief space 231 is greater than the diameter of the first air guide port 321 .

[0051] It can be understood that the pressure relief space 231 provides a larger volume to accommodate the airflow entering the microphone assembly 2 due to the internal and external pressure difference during air transportation. When the user inhales, the larger volume of the pressure relief space 231 and the smaller diameter of the first air guide port 321 can also increase the pressure of the airflow passing through the microphone assembly 2 during sucking, providing a continuous pressure difference for the operation of the microphone 24, extending the working time of the microphone 24, and enhancing the user experience.

[0052] Further, see Figure 8 - Figure 9 The microphone assembly 2 also includes a second microphone seal 25. The first microphone seal 23 and the second microphone seal 25 are correspondingly arranged. A first through hole 251 is opened on the second microphone seal 25. One end of the first through hole 251 is respectively connected to the microphone airway 21 and the pressure relief airway 22, and the other end is connected to the first air inlet 11.

[0053] It can be understood that the first through hole 251 serves as a direct connection channel between the microphone air duct 21, the pressure relief air duct 22 and the first air inlet 11, optimizing the flow path of the airflow inside the electronic atomization device 100 and reducing the resistance of the airflow around the microphone assembly 2; when the electronic atomization device 100 is in air transportation, the airflow can be more flexibly adjusted between different air ducts through the first through hole 251, reducing the risk of self-starting due to air pressure fluctuations, optimizing airflow management while reducing noise during inhalation, and providing a more comfortable user experience.

[0054] Specifically, the first through hole 251 is circular or elliptical, and the specific shape is consistent with fluid dynamics to reduce airflow resistance.

[0055] Furthermore, the first through hole 251 is matched with the first air inlet 11 .

[0056] It can be understood that the first through hole 251 is provided on the second microphone seal 25 to protect the sealing performance around the first through hole 251 and prevent air leakage.

[0057] Furthermore, the center position of the first through hole 251 should be aligned with the center line of the microphone air channel 21 to ensure smooth airflow into the microphone air channel 21 through the first through hole 251.

[0058] As an implementable solution, a slot 252 can be provided at the side wall outlet of the first through hole 251 close to the microphone 24, in a direction perpendicular to the center line of the first through hole 251. One side of the slot 252 is connected to the first through hole 251, and the other side is connected to the second through hole 233. At this time, the pressure relief air duct 22 includes this slot 252 and the ventilated channel in the second through hole 233.

[0059] It can be understood that the slot 252 provides a turnable airflow channel for the airflow entering the first through hole 251. The slot 252 connects the pressure relief airway 22 and the pressure relief space 231, so that part of the airflow can pass through the microphone 24 in a direction other than the preset microphone airway 21 connecting the first through hole 251 and the accommodating groove 232, so as to avoid the risk of the electronic atomization device 100 automatically entering the interior of the microphone assembly 2 when not in use due to the internal and external pressure difference during air transportation, thereby causing the microphone 24 to start automatically.

[0060] Furthermore, the connection between the first through hole 251 and the microphone air channel 21 and the pressure relief air channel 22 is firmly connected and fixed by means of threads or snaps to ensure sealing and stability.

[0061] Furthermore, the resistance atomizer also includes a circuit board electrically connected to the microphone 24. The circuit board (not shown in the figure) is arranged between the first microphone seal 23 and the second microphone seal 25, and is provided with through holes corresponding to the microphone airway 21 and the pressure relief airway 22.

[0062] Furthermore, the electronic atomization device 100 further includes a lower sealing member 4 , and one end of the air inlet assembly 3 facing away from the second air inlet 12 is sealed by the lower sealing member 4 .

[0063] It can be understood that the lower seal 4 effectively seals the joint between the air intake assembly 3 and the shell 1 to prevent gas leakage during use. The lower seal 4 seals the main air channel 31, maintains the pressure balance of the main air channel 31, and improves the atomization efficiency and the user's inhalation experience.

[0064] Furthermore, the air guide slot plate 32 further includes a second air guide port 322 spaced apart from the first air guide port 321 , and the second air guide port 322 is in communication with the main air channel 31 .

[0065] Specifically, the first air guiding port 321 and the second air guiding port 322 are spaced apart from each other, and the first air guiding port 321 is disposed in a direction away from the second air guiding port 322 .

[0066] It can be understood that the first air guide port 321 and the second air guide port 322 on the air guide slot plate 32 allow the external air in the microphone air duct 21 and the main air duct 31 to effectively enter the interior of the electronic atomization device 100, which helps to form a uniform and stable airflow inside and prepare for the next step of atomization; avoid the airflow in the microphone air duct 21 and the main air duct 31 from mixing too quickly, reduce the interference between the airflows, and avoid causing vortices or unstable airflows. By reducing the mixing speed, the first air guide port 321 is hollow, which can prevent the atomized liquid from flowing back into the microphone assembly 2 when the air pressure changes. Good airflow distribution can reduce the vibration of the electronic atomization device 100 during use, and make the airflow flow more evenly along the predetermined path in the air guide slot plate 32, thereby improving the efficiency and performance of the airway and improving the inhalation experience.

[0067] Furthermore, an air guide channel 41 is defined between the lower sealing member 4 and the air guide slot plate 32 , and the air guide channel 41 communicates with the first air guide port 321 and the second air guide port 322 .

[0068] Specifically, the area adaptability setting of the air guide channel 41 and the air guide groove plate 32 can be designed as a rectangular, circular or streamlined cross-section to adapt to the airflow characteristics and reduce the airflow resistance. The length and width of the air guide channel 41 are calculated according to the airflow velocity and flow requirements, which can ensure smooth airflow inside the electronic atomization device 100.

[0069] It can be understood that the air guide channel 41 mixes the gases inhaled from the microphone air channel 21 and the main air channel 31 respectively, increases the air flow entering the electronic atomization device 100, and enhances the atomization effect.

[0070] Furthermore, the electronic atomization device 100 further includes an atomization assembly 5 , which includes an atomization channel 51 , and the atomization channel 51 is communicated with the air guide channel 41 .

[0071] Specifically, the atomization assembly 5 inside the electronic atomization device 100 includes components such as an atomization core, an oil cup, and a heating element, and the atomization channel 51 runs through the entire atomization assembly 5 and is connected to the air guide channel 41 to mix the external air with the atomized gas to optimize the inhalation experience.

[0072] It can be understood that a large amount of heated atomized steam gathers in the atomizing channel 51. The atomizing channel 51 is connected to the air guide channel 41, so that the inhaled air and the atomized steam come into contact more fully, thereby improving the atomization efficiency and producing thicker smoke. The airflow gathers in the air guide channel 41 before entering the atomizing channel 51, and the user feels smoother when inhaling, thereby improving the user experience.

[0073] Furthermore, the diameter L of the second air inlet 12 (eg Figure 6 L) is larger than the diameter l of the first air inlet 11 (as shown in Figure 6 As shown in 1).

[0074] It can be understood that the inner diameter of the air inlet of the main air duct 31 is larger than the inner diameter of the air inlet of the microphone air duct 21. The larger second air inlet 12 can reduce the resistance of the airflow, ensure that the airflow enters the main air duct 31 smoothly, and improve the overall airflow efficiency.

[0075] It can be understood that the smaller inner diameter of the microphone airway 21 can make more precise adjustments to the airflow, the flow speed of the airflow in the microphone airway 21 is accelerated, and the sensing sensitivity of the microphone 24 is enhanced. The small inner diameter limits the amount of air flow and reduces the possibility of airflow passing through the microphone 24 in the non-inhalation state, thereby preventing the electronic atomization device 100 from accidentally starting. The larger inner diameter of the main airway 31 helps the electronic atomization device 100 obtain a larger amount of airflow when working, and the atomized steam is more fully mixed with a large amount of air, thereby enhancing the user experience.

[0076] Compared with the prior art, the electronic atomization device provided by the present invention has the following advantages:

[0077] In the electronic atomization device provided in the embodiment of the present invention, the microphone airway and the main airway are spaced apart, which optimizes the path of the airflow, and the airflow is differentiated and enters the electronic atomization device, which increases the resistance in the microphone airway, making it difficult for the gas to move quickly when the pressure fluctuates. That is, when the product suddenly enters a high-pressure environment, the airflow near the microphone remains stable and slow, reducing the self-starting of the microphone due to pressure changes during air transportation of the product, reducing the direct impact of pressure changes on the microphone, reducing the risk of self-starting, and improving the sealing; when the external air pressure changes, the pressure relief airway provides a channel for the gas to escape without passing through the microphone, avoiding gas accumulation in the microphone airway, allowing the microphone to sense the pressure difference and start automatically, alleviating the pressure difference between the microphone airway and the main airway, reducing the possibility of the device starting automatically, ensuring that the device can effectively respond to pressure changes during transportation, and improving safety and stability.

[0078] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements and improvements made within the principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. An electronic atomization device, characterized in that: The electronic atomization device includes a shell and a microphone assembly and an air intake assembly arranged in the shell, the microphone assembly includes a microphone airway, and the air intake assembly includes a main airway; a first air inlet and a second air inlet are spaced apart on the shell, one end of the microphone airway is connected to the main airway, and the other end is connected to the first air inlet; one end of the main airway is connected to the microphone airway, and the other end is connected to the second air inlet; the microphone assembly also includes a pressure relief airway, and the two ends of the pressure relief airway are respectively connected to the two ends of the microphone airway.

2. The electronic atomization device according to claim 1, characterized in that: The microphone assembly includes a first microphone seal and a microphone arranged in the first microphone seal. A pressure relief space is provided on a side of the first microphone seal away from the first air inlet corresponding to the microphone, and the pressure relief space is communicated with the microphone airway.

3. The electronic atomization device according to claim 2, characterized in that: A receiving groove is formed on a side of the first microphone seal member facing the first air inlet, the microphone is arranged in the receiving groove, and the pressure relief airway connects the receiving groove and the pressure relief space.

4. The electronic atomization device according to claim 2, wherein: The air intake assembly includes an air guide groove plate, which is arranged on a side close to the pressure relief space. A first air guide port is provided on a side of the air guide groove plate away from the first air intake port. The first air guide port is arranged corresponding to the microphone and is connected to the pressure relief space. The diameter of the first air guide port is larger than the diameter of the pressure relief air duct.

5. The electronic atomization device according to claim 3, characterized in that: The microphone assembly also includes a second microphone seal, the first microphone seal and the second microphone seal are correspondingly arranged, and a first through hole is opened on the second microphone seal, one end of the first through hole is respectively connected to the microphone airway and the pressure relief airway, and the other end is connected to the first air inlet.

6. The electronic atomization device according to claim 4, characterized in that: The electronic atomization device further includes a lower sealing member, and an end of the air intake assembly facing away from the second air inlet is sealed by the lower sealing member.

7. The electronic atomization device according to claim 6, characterized in that: The air guide slot plate further includes a second air guide port spaced apart from the first air guide port, and the second air guide port is communicated with the main air channel.

8. The electronic atomization device according to claim 7, characterized in that: An air guide channel is defined between the lower sealing component and the air guide slot plate, and the air guide channel is connected to the first air guide port and the second air guide port.

9. The electronic atomization device according to claim 8, characterized in that: The electronic atomization device further includes an atomization assembly, and the atomization assembly includes an atomization channel, and the atomization channel is communicated with the air guide channel.

10. The electronic atomization device according to claim 1, characterized in that: A diameter of the second air inlet is greater than a diameter of the first air inlet.