Electronic atomization device
By introducing an airflow buffer chamber into the electronic atomizing device, the problem of accidental microphone activation is solved by diverting the minute airflow changes within the activation airway, thus improving the user experience.
Patent Information
- Application Number
- CN202422596792.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-25
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-10-25
AI Technical Summary
Existing electronic atomizing devices are easily affected by minute airflow changes that may occur accidentally within the activation airway after startup, leading to false microphone activation and impacting the user experience.
An electronic atomizing device was designed. By connecting the second end of the starting airway to the airflow buffer chamber, which is then connected to the airflow channel and the microphone mounting cavity respectively, the airflow buffer chamber diverts minute airflow changes to avoid triggering the microphone and ensure the accurate start-up of the atomizing component.
It effectively reduces the impact of minute airflow changes caused by accidental activation on the microphone, avoids accidental microphone activation, and improves the user experience.
Smart Images

Figure CN223541392U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of atomization technology, and in particular to an electronic atomization device. Background Technology
[0002] Electronic atomizing devices primarily store liquid in a reservoir. During use, the atomizing component converts the stored liquid into an aerosol, which is then expelled through the airflow channel and mouthpiece for the user to inhale. Currently, existing electronic atomizing devices automatically control the activation and deactivation of the atomizing component by sensing changes in airflow in the activation channel during inhalation. However, in practical use, it has been found that when the electronic atomizing device is activated, even minor airflow changes within the activation channel due to the user's movement or holding the device can affect the microphone, leading to false activation and impacting the user experience. Utility Model Content
[0003] This application provides an electronic atomizing device, which aims to improve the technical problem that the microphone of existing electronic atomizing devices is easily affected by the slight airflow changes that are mistakenly generated in the activation airway, resulting in false activation and thus affecting the user experience.
[0004] Therefore, this application provides an electronic atomizing device, comprising:
[0005] The housing assembly has a built-in liquid storage chamber, an airflow channel, a start-up air passage, an airflow buffer chamber, and a microphone mounting chamber. The liquid storage chamber is arranged around the airflow channel. The first end of the start-up air passage is provided with a first airflow inlet. The second end of the start-up air passage is connected to the airflow buffer chamber. The airflow buffer chamber is also connected to the inlet of the airflow channel and the inlet of the microphone mounting chamber, respectively.
[0006] An atomizing component is installed at one end of the airflow channel near the start-up channel and is in communication with the liquid in the storage chamber, so as to heat and atomize the liquid in the storage chamber to form an aerosol when started.
[0007] The microphone is installed in the microphone mounting cavity, with the sensing end of the microphone facing the inlet of the microphone mounting cavity. The microphone is also electrically connected to the atomizing component to control the start and stop of the atomizing component.
[0008] Optionally, in some embodiments of this application, the wall of the airflow buffer chamber is provided with a second airflow inlet, and the second end of the starting air passage is connected to the airflow buffer chamber through the second airflow inlet.
[0009] Optionally, in some embodiments of this application, the cavity wall of the airflow buffer cavity is further provided with a first airflow outlet, the first airflow outlet is used to connect to the inlet of the airflow channel, and the opening direction of the first airflow outlet is parallel to the direction of the second airflow inlet.
[0010] Optionally, in some embodiments of this application, the first air outlet and the second air inlet are offset in the extension direction of the airflow channel, and the side of the second air inlet facing the airflow buffer cavity is provided with a first guide structure inclined toward the first air outlet, and the side of the first air outlet facing the airflow buffer cavity is provided with a second guide structure inclined toward the second air inlet.
[0011] Optionally, in some embodiments of this application, the cavity wall of the airflow buffer cavity is further provided with a second airflow outlet, the second airflow outlet is used to connect to the inlet of the microphone mounting cavity, and the opening direction of the second airflow outlet is perpendicular to the direction of the second airflow inlet.
[0012] Optionally, in some embodiments of this application, the housing assembly further includes an air intake buffer chamber and a transition air passage, wherein the airflow buffer chamber is connected to the inlet of the airflow channel via the transition air passage and the air intake buffer chamber in sequence.
[0013] Optionally, in some embodiments of this application, the cavity wall of the air intake buffer cavity is provided with a first opening communicating with the airflow channel and a second opening communicating with the transition air passage, and the first opening and the second opening are offset in the extension direction of the airflow channel.
[0014] Optionally, in some embodiments of this application, the housing assembly includes an inner shell having the airflow channel, a base, and an outer shell having a mounting cavity and an aerosol outlet. The inner shell is disposed at one end of the mounting cavity, such that the aerosol outlet is connected to the outlet of the airflow channel. The base is disposed at the end of the inner shell away from the outlet of the airflow channel, so as to form the liquid storage cavity inside the inner shell. The other end of the mounting cavity is respectively provided with the start-up air passage, the airflow buffer cavity, and the microphone mounting cavity.
[0015] Optionally, in some embodiments of this application, a control motherboard, an electrode assembly, and a power supply assembly are also included. The atomizing assembly is electrically connected to the control motherboard through the electrode assembly, and the control motherboard is also electrically connected to the power supply assembly and the microphone, respectively.
[0016] Optionally, in some embodiments of this application, a sealing plug is also included to seal the aerosol outlet configuration.
[0017] The electronic atomizing device provided in this application, through the aforementioned structural arrangement, connects the second end of its activation airway to an airflow buffer chamber, which in turn connects to both the inlet of the airflow channel and the inlet of the microphone mounting cavity. Therefore, when the electronic atomizing device is activated, and minor airflow changes occur in the activation airway due to the user's movement while holding the device, these minor airflow changes are partially diverted by the airflow channel after entering the airflow buffer chamber. This prevents the remaining airflow from triggering the microphone within the microphone mounting cavity, even if it reaches the inlet. Thus, the electronic atomizing device effectively reduces the impact of minor airflow changes in the activation airway on the microphone through the airflow buffer chamber, preventing accidental microphone activation and improving the user experience. Therefore, this technical solution effectively addresses the problem in existing electronic atomizing devices where the microphone is easily affected by minor airflow changes in the activation airway, leading to accidental activation and impacting the user experience. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0019] Figure 1 A schematic diagram of the structure of an electronic atomizing device provided in an embodiment of this application;
[0020] Figure 2 for Figure 1 A schematic cross-sectional view of the electronic atomizing device shown.
[0021] Figure 3 This is another schematic diagram of the electronic atomizing device provided in the embodiments of this application.
[0022] Explanation of icon numbers:
[0023] 1. Electronic atomizing device; 11. Start-up airway; 12. Airflow buffer chamber; 13. Microphone mounting chamber; 14. Air intake buffer chamber; 15. Transition airway; 16. Sliding cover; 100. Housing assembly; 110. Inner shell; 111. Airflow channel; 112. Liquid storage cotton; 120. Base; 130. Outer shell; 131. Mounting chamber; 132. Aerosol outlet; 200. Microphone; 300. Atomizing component; 400. Power supply component; 500. Sealing plug.
[0024] The realization of the purpose, functional features and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0025] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0026] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.
[0027] Furthermore, the use of terms such as "first" and "second" in this application is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed in this application.
[0028] In one embodiment, such as Figures 1 to 3 As shown in the figure, this application embodiment also provides an electronic atomizing device 1, which includes a housing assembly 100, a microphone 200, and an atomizing assembly 300. The housing assembly 100 has a built-in liquid storage chamber (not shown), an airflow channel 111, an activation airway 11, an airflow buffer chamber 12, and a microphone mounting cavity 13. The liquid storage chamber surrounds the airflow channel 111. The first end of the activation airway 11 has a first airflow inlet (not shown), and the second end of the activation airway 11 connects to the airflow buffer chamber 12. The airflow buffer chamber 12 is also connected to the inlet of the airflow channel 111 and the inlet of the microphone mounting cavity 13. The microphone 200 is installed in the microphone mounting cavity 13, and the sensing end of the microphone 200 is positioned directly opposite the inlet of the microphone mounting cavity 13. The microphone 200 is also electrically connected to the atomizing assembly 300 to control the activation and deactivation of the atomizing assembly 300. The atomizing component 300 is installed at one end of the airflow channel 111 near the start-up air passage 11 and is connected to the liquid in the liquid storage chamber so that the liquid in the liquid storage chamber is heated and atomized to form an aerosol when started.
[0029] It is understood that the electronic atomizing device 1 in this application embodiment can be used to store liquid through a liquid storage chamber. During use, the atomizing component 300 converts the stored specific liquid (specifically, it can be an atomizing liquid such as e-liquid) into an aerosol, which is then sprayed outward through the airflow channel 111 for the user to inhale. The first end and the second end of the starting airway 11 mentioned above specifically refer to the two opposite ends of the starting airway 11 in its extending direction. The first airflow inlet mentioned above is mainly used to connect the starting airway 11 with the external environment.
[0030] The end of the airflow channel 111 near the starting air passage 11 mentioned above specifically refers to the end of the airflow channel 111 that connects to the starting air passage 11 through the airflow buffer chamber 12, which is also the inlet end of the airflow channel 111. The connection between the atomizing component 300 and the liquid storage chamber mentioned above specifically refers to the liquid outlet of the liquid storage chamber being positioned corresponding to the atomizing component 300, allowing the liquid in the liquid storage chamber to flow directly into the atomizing component 300 through the liquid outlet. This keeps the atomizing component 300 in a moist or semi-moist state. Because the atomizing component 300 is always connected to the liquid in the liquid storage chamber, there will be no delay in liquid flow from some parts of the product at the beginning of use, which could lead to dry burning and other phenomena affecting the atomization effect of the atomizing component 300.
[0031] In this way, the electronic atomizing device 1 provided in this application embodiment, through the above-described structural configuration, has its second end of the starting airway 11 first connected to the airflow buffer chamber 12, and then connected to the inlet of the airflow channel 111 and the inlet of the microphone mounting cavity 13 respectively through the airflow buffer chamber 12. Therefore, when the electronic atomizing device 1 is started, and a slight airflow change is mistakenly generated in the starting airway 11 due to the user holding the electronic atomizing device 1 and moving around, these slight airflow changes will be partially diverted by the airflow channel 111 after entering the airflow buffer chamber 12. As a result, even if the remaining part enters the inlet of the microphone mounting cavity 13, it will not be able to trigger the microphone 200 in the microphone mounting cavity 13. Thus, the electronic atomizing device 1 can effectively reduce the impact of the slight airflow changes mistakenly generated in the starting airway 11 on the microphone 200 through the setting of the airflow buffer chamber 12, thereby avoiding the problem of the microphone 200 being mistakenly started and improving the user experience.
[0032] In some examples, such as Figure 2 As shown, the airflow buffer chamber 12 has a second airflow inlet (not shown in the figure) on its wall. The second end of the starting airway 11 is connected to the airflow buffer chamber 12 through the second airflow inlet. In this way, the setting of the second airflow inlet ensures that the airflow entering the starting airway 11 through the first airflow inlet can flow well into the airflow buffer chamber 12 through the second airflow inlet.
[0033] It is understandable that the starting airway 11 in this example can specifically adopt a single-channel structure or, as shown below, a different structure. Figure 2 The dual-channel structure shown is designed to meet the needs of more application scenarios. Additionally, a sliding cover 16 can be installed at the first airflow inlet at the first end of the activation airway 11 to control the opening and closing of the first airflow inlet while simultaneously controlling the activation and deactivation of the electronic atomizing device 1.
[0034] In some examples, such as Figure 2 As shown, the airflow buffer chamber 12 also has a first airflow outlet (not shown in the figure) on its wall. The first airflow outlet is used to connect to the inlet of the airflow channel 111, and the opening direction of the first airflow outlet is parallel to the direction of the second airflow inlet. Thus, through the above structural arrangement, the airflow direction from the first airflow outlet to the inlet of the airflow channel 111 in the airflow buffer chamber 12 is the same as the airflow direction from the start-up airway 11 into the airflow buffer chamber 12 via the second airflow inlet. This ensures that most of the airflow from the start-up airway 11 into the airflow buffer chamber 12 flows from the first airflow outlet to the inlet of the airflow channel 111. This further reduces the impact of minor airflow changes in the start-up airway 11 on the microphone 200, preventing accidental activation of the microphone 200 and improving the user experience. Furthermore, the first airflow outlet and the second airflow inlet are offset in the extension direction of the airflow channel 111, and a first guide structure (not shown in the figure) inclined towards the first airflow outlet is provided on the side of the second airflow inlet facing the airflow buffer cavity 12, and a second guide structure (not shown in the figure) inclined towards the second airflow inlet is provided on the side of the first airflow outlet facing the airflow buffer cavity 12. Thus, through the above structural arrangement, it can be further ensured that most of the airflow flowing into the airflow buffer cavity 12 from the starting airway 11 via the second airflow inlet flows to the inlet of the airflow channel 111 via the first airflow outlet, thereby further reducing the impact of minor airflow changes erroneously generated in the starting airway 11 on the microphone 200, avoiding the problem of the microphone 200 being falsely activated, and improving the user experience.
[0035] In some examples, such as Figure 2As shown, the airflow buffer chamber 12 also has a second airflow outlet (not shown in the figure) on its wall. The second airflow outlet is used to connect to the inlet of the microphone mounting chamber 13, and the opening direction of the second airflow outlet is perpendicular to the direction of the second airflow inlet. Thus, through the above structural arrangement, the airflow direction from the second airflow outlet to the inlet of the microphone mounting chamber 13 in the airflow buffer chamber 12 is perpendicular to the airflow direction from the start-up airway 11 into the airflow buffer chamber 12 via the second airflow inlet. This further ensures that most of the airflow from the start-up airway 11 into the airflow buffer chamber 12 via the second airflow inlet flows to the inlet of the airflow channel 111 via the first airflow outlet. This further reduces the impact of minor airflow changes in the start-up airway 11 on the microphone 200, preventing the microphone 200 from malfunctioning and improving the user experience.
[0036] In some examples, such as Figure 2 As shown, the housing assembly 100 also includes an air intake buffer chamber 14 and a transition air passage 15. The airflow buffer chamber 12 is connected to the inlet of the airflow channel 111 via the transition air passage 15 and the air intake buffer chamber 14. Thus, during the user's inhalation of this electronic atomizing device 1, the air intake buffer chamber 14 can buffer and rectify the chaotic airflow formed near the transition air passage 15 before it flows into the inlet of the airflow channel 111. This ensures a consistent inhalation experience and improves the user's experience. Furthermore, the wall of the air intake buffer chamber 14 has a first opening (not shown in the figure) connected to the airflow channel 111 and a second opening (not shown in the figure) connected to the transition air passage 15, with the first and second openings offset in the extension direction of the airflow channel 111. Thus, through the above structural design, it can be further ensured that the chaotic airflow formed near the transition airway 15 enters the intake buffer chamber 14 through the second opening, and does not immediately enter the airflow channel 111 through the first opening. Instead, it is rectified by the intake buffer chamber 14 as much as possible before entering the airflow channel 111 through the first opening, so as to further ensure the consistency of the user's sucking sensation and improve the user experience.
[0037] In some examples, such as Figure 1 and Figure 2As shown, the housing assembly 100 includes an inner shell 110 with an airflow channel 111, a base 120, and an outer shell 130 with a mounting cavity 131 and an aerosol outlet 132. The inner shell 110 is installed at one end of the mounting cavity 131, such that the aerosol outlet 132 is connected to the outlet of the airflow channel 111. The base 120 is installed at the end of the inner shell 110 away from the outlet of the airflow channel 111, forming a liquid storage cavity inside the inner shell 110. The other end of the mounting cavity 131 is respectively provided with a start-up air passage 11, an airflow buffer cavity 12, and a microphone mounting cavity 13. Thus, through the above structural arrangement, the liquid storage cavity in the above example can be better combined, and the positions of the start-up air passage 11, the airflow buffer cavity 12, and the microphone mounting cavity 13 can be reasonably arranged within the housing assembly 100.
[0038] It is understood that the aerosol outlet 132 in this example is generally configured in a funnel shape. Specifically, the aerosol outlet 132 may include an arc-shaped groove and an air tube. The arc-shaped groove is recessed at one end of the outer shell 130, and one end of the air tube is connected to and communicates with the bottom of the arc-shaped groove to form the aerosol outlet 132. At this time, the other end of the air tube can be connected to the outlet of the airflow channel 111. In this way, the flow mode of aerosol near the aerosol outlet 132 can be effectively optimized through the above structural configuration, so as to provide users with a gentler and more comfortable inhalation experience. In addition, the liquid storage chamber in this example can directly store liquid, or it can indirectly store liquid by filling the liquid storage chamber with a corresponding liquid storage cotton 112. Compared with the former liquid storage method, the liquid storage method indirectly stored by liquid storage cotton 112 has the following advantages: 1. The liquid storage cotton 112 can more effectively absorb and retain liquid, reducing liquid leakage and waste. 2. The reservoir cotton 112 provides a more uniform liquid supply, ensuring a stable liquid supply to the atomizing component 300 during use and improving the atomization effect. 3. Because the reservoir cotton 112 maintains the liquid concentration and temperature, it provides a more consistent flavor experience and reduces taste fluctuations caused by insufficient liquid. 4. The presence of the reservoir cotton 112 prevents the atomizing component 300 from dry-burning because it buffers liquid changes, ensuring the atomizing component 300 continuously receives sufficient liquid. Furthermore, the aforementioned reservoir cotton 112 is generally specially treated organic cotton, which has excellent liquid absorption and conductivity, effectively absorbing the liquid in the reservoir and ensuring the atomization effect. Alternatively, materials such as bamboo charcoal cotton can be used to enhance the inhalation experience of the electronic atomizing device 1 and reduce off-flavors.
[0039] In some examples, such as Figure 2As shown, the airflow channel 111 has at least one liquid outlet on its peripheral sidewall near the start-up air passage 11. The atomizing component 300 blocks all liquid outlets, allowing it to communicate with the liquid in the storage chamber. This structural arrangement ensures better communication between the atomizing component 300 and the liquid in the storage chamber, while blocking all liquid outlets prevents the liquid in the storage chamber from flowing out unimpeded, thus preventing all liquid from flowing into the airflow channel 111. Furthermore, the airflow channel 111 has two liquid outlets on its peripheral sidewall near the start-up air passage 11, and these two outlets are arranged radially opposite each other along the airflow channel 111. This structural arrangement ensures that the liquid in the storage chamber penetrates more evenly into the entire atomizing component 300, improving the atomization effect of the atomizing component 300. Furthermore, the atomizing component 300 includes a liquid-guiding cotton (not shown in the figure) and a heating element (not shown in the figure). The liquid-guiding cotton covers all liquid outlets, and the heating element is mounted on the liquid-guiding cotton. Thus, with the above structural arrangement, the liquid within the liquid-guiding cotton can be converted into an aerosol and sprayed out by heating the liquid-guiding cotton with the heating element for the user to inhale.
[0040] It is understood that the number of liquid outlets in this example can be increased or decreased arbitrarily according to actual needs, including but not limited to the two mentioned above. The shape of the liquid outlets in this example can be rectangular, circular, or other shapes. The heating element in this example can be a heating plate or a heating wire.
[0041] In some examples, such as Figure 1 and Figure 2 As shown, this electronic atomizing device 1 also includes a control motherboard (not shown), an electrode assembly (not illustrated), and a power supply assembly 400. The atomizing assembly 300 is electrically connected to the control motherboard via the electrode assembly. The control motherboard is also electrically connected to the power supply assembly 400 and the microphone 200. Thus, with the above structural arrangement, when the power supply assembly 400 operates under the control of the control motherboard and the microphone 200, it can supply power to the heating element via the electrode assembly. This allows the heating element, powered by the power supply assembly 400, to heat the liquid-guiding cotton, converting the liquid within the cotton into an aerosol that is then sprayed out for the user to inhale.
[0042] It is understood that the electrode assembly in this example may specifically include at least two copper pillars, which may be installed in the base 120. One end of each copper pillar may be electrically connected to the heating element, and the other end may be electrically connected to the power supply assembly 400. The power supply assembly 400 in this example may specifically include a battery and a charging interface. The entire power supply assembly 400 is installed in the mounting cavity 131 of the housing 130. The battery may be arranged longitudinally side by side with the inner housing 110 to effectively save the lateral length of the mounting cavity 131. The charging interface is exposed on the surface of the housing 130 to facilitate charging operations.
[0043] In some examples, such as Figure 3 As shown, the electronic atomizing device 1 also includes a sealing plug 500, which seals the aerosol outlet 132. Thus, through this structural arrangement, the sealing performance at the aerosol outlet 132 is ensured by the tight seal of the sealing plug 500, preventing leakage during product transportation.
[0044] It is understandable that the sealing plug 500 in this example may be T-shaped to better fit the funnel-shaped aerosol outlet 132, thereby further ensuring the sealing performance at the aerosol outlet 132 and further preventing leakage during product transportation.
[0045] The above description is merely a preferred embodiment of this application and does not limit the patent scope of this application. Any equivalent structural transformations made based on the inventive concept of this application and the contents of the specification and drawings of this application, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this application.
Claims
1. An electronic atomizing device, characterized in that, include: The housing assembly has a built-in liquid storage chamber, an airflow channel, a start-up air passage, an airflow buffer chamber, and a microphone mounting chamber. The liquid storage chamber is arranged around the airflow channel. The first end of the start-up air passage is provided with a first airflow inlet. The second end of the start-up air passage is connected to the airflow buffer chamber. The airflow buffer chamber is also connected to the inlet of the airflow channel and the inlet of the microphone mounting chamber, respectively. An atomizing component is installed at one end of the airflow channel near the starting air passage and is in communication with the liquid in the liquid storage chamber, so as to heat and atomize the liquid in the liquid storage chamber to form an aerosol when the start is activated; The microphone is installed in the microphone mounting cavity, with the sensing end of the microphone facing the inlet of the microphone mounting cavity. The microphone is also electrically connected to the atomizing component to control the start and stop of the atomizing component.
2. The electronic atomizing device as described in claim 1, characterized in that, The airflow buffer chamber has a second airflow inlet in its cavity wall, and the second end of the starting air passage is connected to the airflow buffer chamber through the second airflow inlet.
3. The electronic atomizing device as described in claim 2, characterized in that, The airflow buffer chamber is further provided with a first airflow outlet, which is used to connect to the inlet of the airflow channel, and the opening direction of the first airflow outlet is parallel to the direction of the second airflow inlet.
4. The electronic atomizing device as described in claim 3, characterized in that, The first air outlet and the second air inlet are offset from each other in the extension direction of the airflow channel, and the second air inlet is provided with a first guide structure inclined toward the first air outlet on the side facing the airflow buffer cavity, and the first air outlet is provided with a second guide structure inclined toward the second air inlet on the side facing the airflow buffer cavity.
5. The electronic atomizing device as described in claim 2, characterized in that, The airflow buffer cavity is further provided with a second airflow outlet, which is used to connect to the inlet of the microphone mounting cavity, and the opening direction of the second airflow outlet is perpendicular to the direction of the second airflow inlet.
6. The electronic atomizing device as described in claim 1, characterized in that, The housing assembly also includes an air intake buffer chamber and a transition air passage. The air intake buffer chamber is connected to the inlet of the airflow channel via the transition air passage and the air intake buffer chamber.
7. The electronic atomizing device as described in claim 6, characterized in that, The wall of the intake buffer chamber is provided with a first opening that communicates with the airflow channel and a second opening that communicates with the transition air passage, and the first opening and the second opening are offset in the extension direction of the airflow channel.
8. The electronic atomizing device according to any one of claims 1-7, characterized in that, The housing assembly includes an inner shell having the airflow channel, a base, and an outer shell having a mounting cavity and an aerosol outlet. The inner shell is installed at one end of the mounting cavity, such that the aerosol outlet is connected to the outlet of the airflow channel. The base is installed at the end of the inner shell away from the outlet of the airflow channel, so as to form the liquid storage cavity inside the inner shell. The other end of the mounting cavity is respectively provided with the start-up air passage, the airflow buffer cavity, and the microphone mounting cavity.
9. The electronic atomizing device as described in claim 8, characterized in that, It also includes a control motherboard, an electrode assembly, and a power supply assembly. The atomizing assembly is electrically connected to the control motherboard through the electrode assembly. The control motherboard is also electrically connected to the power supply assembly and the microphone.
10. The electronic atomizing device as described in claim 8, characterized in that, It also includes a sealing plug that seals the aerosol outlet.