Gas and gear adjusting structure for electronic atomization device and electronic atomization device

By combining the air intake slider and the toggle switch, the problem of fixed air intake in electronic atomization products is solved, realizing free and stepless adjustment of air intake and flexible switching of levels, meeting the air intake adjustment needs of different users and improving the user experience.

CN224140174UActive Publication Date: 2026-04-21HG INNOVATION LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HG INNOVATION LTD
Filing Date
2025-04-17
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

When adjusting the vapor volume and setting the speed of existing electronic atomizing products are linked, the air intake volume is fixed, which cannot meet the different vapor volume adjustment needs of each user. In addition, the fixed travel of the toggle switch limits the vapor volume adjustment range.

Method used

The system employs a combination structure of an air-adjusting slider and a toggle switch. Through the interaction between the deformation part and the deformation guide part, the intake volume can be freely and infinitely adjusted and the gear can be switched. The air-adjusting slider adjusts the blocking area of ​​the intake part in different states, thereby driving the toggle switch to switch between different gears.

Benefits of technology

It enables stepless adjustment of air intake volume and flexible switching of gears, meeting the air adjustment needs of different users and improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a gas and gear adjusting structure for an electronic atomization device and the electronic atomization device. The gas and gear adjusting structure comprises a support, a gas adjusting sliding block and a toggle switch. The bracket comprises an air inlet part and a deformation guide part; the air adjusting sliding block is connected to the support in a sliding mode so as to change the shielding area of the air inlet part in the sliding process. The air adjusting sliding block comprises a deformation part, and the deformation part has a natural state not interfering with the deformation guide part and a deformation state after interfering with the deformation guide part. The toggle switch is provided with a first gear and a second gear; in the process that the deformation part is close to or away from the deformation guide part, the deformation part is in a natural state, the toggle switch is in a first gear, and the air adjusting sliding block can adjust the shielding area of the air inlet part through sliding without changing the gear; when the deformation part is in a deformation state, the deformation part is coupled with the toggle switch, and the air adjusting sliding block can drive the toggle switch to be switched between the first gear and the second gear while adjusting the shielding area of the air inlet part through sliding. According to the invention, different gas adjusting requirements of each user can be met.
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Description

Technical Field

[0001] This application relates to the field of electronic atomization technology, and in particular to a gas adjustment and setting structure for an electronic atomization device and an electronic atomization device. Background Technology

[0002] Currently, traditional electronic atomizers on the market typically use toggle switches for adjusting vapor pressure and power levels. These switches work in tandem with vapor pressure adjustment; for example, increasing the power level increases the airflow. However, due to the fixed number of toggle switch positions, only two or three positions are available, meaning that vapor pressure adjustment is limited to two or three different airflow levels, which cannot fully meet the diverse needs of each user. Furthermore, the toggle switch travel is generally fixed, further restricting the vapor pressure adjustment range. Utility Model Content

[0003] This application provides a vapor adjustment and speed adjustment structure for an electronic atomizing device and an electronic atomizing device, which solves the problem that the air intake volume is fixed when the vapor adjustment and speed adjustment are combined, and cannot fully meet the different vapor adjustment needs of each user.

[0004] In one embodiment, a vapor adjustment structure for an electronic atomizing device is provided, comprising: a support, the support including an air inlet and a deformation guide; an adjustment slider slidably connected to the support to change the area of ​​obstruction of the air inlet during sliding; the adjustment slider including a deformation part having a natural state without interference with the deformation guide and a deformation state after interference with the deformation guide; and a toggle switch for adjusting the power of the electronic atomizing device, the toggle switch having a first position and a second position; wherein, during the process of the deformation part moving closer to or further away from the deformation guide, the deformation part is in a natural state, the toggle switch is in the first position, and the adjustment slider can adjust the area of ​​obstruction of the air inlet without changing the position by sliding; when the deformation part is in the deformation state, the deformation part is coupled to the toggle switch, and the adjustment slider can adjust the area of ​​obstruction of the air inlet while simultaneously driving the toggle switch to switch between the first position and the second position by sliding.

[0005] In one embodiment, as the deformable part approaches the deformable guide part and as the toggle switch switches from the first position to the second position, the air regulating slider gradually changes the area of ​​the air intake part it blocks with a first trend; as the toggle switch switches from the second position to the first position and as the deformable part moves away from the deformable guide part, the air regulating slider gradually changes the area of ​​the air intake part it blocks with a second trend, and the first trend is opposite to the second trend.

[0006] In one embodiment, the first trend is decreasing, the second trend is increasing, and the heating power corresponding to the second position of the toggle switch is greater than the heating power corresponding to the first position of the toggle switch.

[0007] In one embodiment, the deformation guide and the deformation portion are located on the same side of the toggle switch.

[0008] In one embodiment, when the deformable part is in its natural state, it does not contact the deformable guide part and the toggle switch. Along the extension direction perpendicular to the deformable guide part, the deformable part is located between the deformable guide part and the toggle switch, and the deformable part is located at one end of the extension direction of the deformable guide part. When the deformable part is in a deformed state, it is squeezed by the deformable guide part and bends in the direction of the toggle switch, and the deformable part is coupled to the toggle switch.

[0009] In one embodiment, the toggle switch has a protrusion, and the end of the deformable part is provided with a groove, the groove being used to engage with the protrusion to achieve a locking action.

[0010] In one embodiment, the deformable part includes an elastic arm and a claw; the elastic arm can deform away from the bracket under the compression of the deformable guide part, the free end of the elastic arm is connected to the claw, and the claw is provided with a groove facing away from the bracket, the groove can engage with the protrusion when the elastic arm is compressed.

[0011] In one embodiment, the claw includes a clearance ramp, which is located at one end of the claw facing the deformation guide; the clearance ramp is inclined from the direction of the deformation guide toward the direction of the toggle switch in the first position.

[0012] In one embodiment, the deformation guide includes a guide ramp disposed at one end of the deformation guide facing the deformation part; when the toggle switch is in a first position, the deformation part is at least partially located on the straight line where the deformation guide is located, and the toggle switch and the deformation part are located at the same end of the deformation guide; the guide ramp is configured such that: during the process of the toggle switch switching from the first position to the second position, the guide ramp compresses the deformation part and gradually increases the deformation of the deformation part until the deformation part is coupled to the toggle switch; during the process of the toggle switch switching from the second position to the first position, the guide ramp compresses the deformation part and gradually decreases the deformation of the deformation part until the deformation part is discoupled from the toggle switch.

[0013] In one embodiment, an electronic atomizing device is provided, including the vapor adjustment and speed control structure for an electronic atomizing device as described in any of the above embodiments.

[0014] By implementing this application, the following beneficial effects can be achieved:

[0015] In this application, as the deformation part of the air-adjusting slider approaches or moves away from the deformation guide part of the bracket, the toggle switch remains in the first position. The air-adjusting slider can adjust the area of ​​obstruction to the air intake without changing the position, allowing for a relatively free air-adjusting stroke and thus achieving stepless adjustment of the air intake volume. When the toggle switch needs to switch between the first and second positions, the deformation part can interfere with the deformation guide part and be in a deformed state. The deformation part is coupled with the toggle switch, and the air-adjusting slider can adjust the area of ​​obstruction to the air intake while simultaneously driving the toggle switch to switch between the first and second positions, achieving coordinated adjustment of air-adjustment and position adjustment, thereby meeting the different air-adjustment needs of each user. Attached Figure Description

[0016] The present application will be further described below with reference to the accompanying drawings and embodiments. In the accompanying drawings:

[0017] Figure 1 A schematic diagram of the structure of one embodiment of the power supply device of this application is shown;

[0018] Figure 2 An exploded view of one embodiment of the power supply device of this application is shown;

[0019] Figure 3 This diagram shows a first structural schematic of an embodiment of the gas adjustment and tuning structure of this application for free and stepless gas adjustment;

[0020] Figure 4 This diagram shows a second structural schematic of an embodiment of the gas adjustment and tuning structure of this application for free and stepless gas adjustment;

[0021] Figure 5 A third structural schematic diagram of an embodiment of the gas adjustment and setting structure of this application for free and stepless gas adjustment is shown;

[0022] Figure 6 This is a schematic diagram of the first structure of an embodiment of the gas adjustment and gear adjustment structure of this application for joint adjustment of gas adjustment and gear adjustment;

[0023] Figure 7 This is a second structural schematic diagram of an embodiment of the gas adjustment and gear adjustment structure of this application for joint adjustment of gas adjustment and gear adjustment;

[0024] Figure 8 This diagram shows a structural schematic of an embodiment of the gas adjustment and speed control structure of this application, including the avoidance ramp and the guide ramp.

[0025] The reference numerals in the attached figures are as follows:

[0026] 1. Bracket; 11. Air inlet; 12. Deformation guide; 121. Guide slope; 13. Main body; 14. Guide rail; 2. Air regulating slider; 21. Deformation part; 211. Groove; 212. Elastic arm; 213. Claw; 2131. Avoidance slope; 22. Block; 221. Air passage groove; 23. Slide groove; 3. Toggle switch; 31. Protrusion; 4. Seal; 5. Housing; 51. Sliding position; 6. Battery; 7. Circuit board. Detailed Implementation

[0027] To provide a clearer understanding of the technical features, objectives, and effects of this application, the specific embodiments of this application will now be described in detail with reference to the accompanying drawings.

[0028] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other.

[0029] In the description of this application, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are used only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on this application. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature. In the description of this application, unless otherwise stated, "a plurality of" means two or more.

[0030] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installed," "connected," "linked," "located in," and "located in" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or a chemical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art will understand the specific meaning of the above terms in this application based on the specific circumstances.

[0031] like Figure 1 and Figure 2 As shown, some embodiments of this application disclose a vapor adjustment structure for an electronic atomizing device, including a bracket 1, a vapor adjustment slider 2, and a toggle switch 3, as detailed below:

[0032] The bracket 1 includes an air intake 11 and a deformation guide 12. For example... Figure 3 As shown, the air adjustment slider 2 is slidably connected to the bracket 1 so as to change the area of ​​obstruction of the air intake 11 during the sliding process.

[0033] The airflow slider 2 includes a deformation part 21, which has a natural state without interference with the deformation guide part 12 and a deformed state after interference with the deformation guide part 12. The toggle switch 3 is used to adjust the power of the electronic atomizing device, i.e., toggle, and has a first gear position and a second gear position.

[0034] Among them, such as Figure 3 , Figure 4 and Figure 5 As shown, during the process of the deformation part 21 approaching or moving away from the deformation guide part 12, the deformation part 21 is in a natural state, the toggle switch 3 is in the first position, and the air adjustment slider 2 can adjust the blocking area of ​​the air intake part 11 by sliding without changing the position, thereby avoiding the situation that the power must be adjusted when adjusting the air volume. It may not be necessary to adjust the power when the air intake volume is small.

[0035] like Figure 6 and Figure 7 As shown, when the deformation part 21 is in a deformed state due to the interference of the deformation guide part 12, the deformation part 21 is engaged with the toggle switch 3. The air adjustment slider 2 can adjust the blocking area of ​​the air intake part 11 by sliding, while driving the toggle switch 3 to switch between the first position and the second position.

[0036] In this embodiment, as the deformation part 21 of the air-adjusting slider 2 approaches or moves away from the deformation guide part 12 of the bracket 1, the toggle switch 3 remains in the first position. The air-adjusting slider 2 can adjust the area of ​​obstruction of the air intake part 11 by sliding without changing the position. The air-adjusting stroke is relatively free, thereby realizing the free and stepless adjustment of the air intake volume. When the toggle switch 3 needs to switch between the first and second positions, the deformation part 21 can interfere with the deformation guide part 12 and be in a deformed state. The deformation part 21 is coupled with the toggle switch 3. The air-adjusting slider 2 can adjust the area of ​​obstruction of the air intake part 11 by sliding while driving the toggle switch 3 to switch between the first and second positions, realizing the joint adjustment of air-adjustment and position adjustment, thereby meeting the different air-adjustment needs of each user.

[0037] For example, the first setting corresponds to normal inhalation, and the second setting corresponds to lung inhalation. In the first setting, the air intake can be adjusted arbitrarily, while in the second setting, the air intake is fixed and cannot be adjusted arbitrarily. Different users may have different inhalation habits, i.e., different inhalation volumes per puff. For users with smaller inhalation volumes per puff, excessive air intake will result in thin vapor, affecting the experience. Therefore, in this application, when the toggle switch 3 is in the first setting, the user can adjust the area of ​​the air intake 11 blocked according to actual needs without changing the setting, i.e., steplessly adjust to a suitable air intake without changing the heating power, thus performing inhalation.

[0038] In some embodiments, as the deformable part 21 approaches the deformable guide part 12 and as the toggle switch 3 switches from the first position to the second position, the air regulating slider 2 gradually changes the area of ​​the air intake part 11 blocked by a first trend.

[0039] During the process of switching the toggle switch 3 from the second position to the first position and during the process of the deformation part 21 moving away from the deformation guide part 12, the air adjustment slider 2 gradually changes the area of ​​the air intake part 11 blocked by the second trend, and the first trend is opposite to the second trend.

[0040] The change in the obstructed area can be due to changes in the cross-sectional shape of the hole or changes in the orientation. As long as there are two different trends in the obstructed area before or during gear shifting, it is acceptable.

[0041] For example, when the first trend is decreasing, the air adjustment slider 2 reduces the area obstructing the air intake section 11, thereby increasing the air intake volume. When the second trend is increasing, the air adjustment slider 2 increases the area obstructing the air intake section 11, thereby decreasing the air intake volume.

[0042] Accordingly, the heating power corresponding to the second position of the toggle switch 3 is greater than the heating power corresponding to the first position of the toggle switch 3. It should be noted that the heating power refers to the power used by the electronic atomizing device to heat the aerosol generation matrix.

[0043] In some embodiments, such as Figure 3 , Figure 4 and Figure 5 As shown, during the upward sliding of the deformation part 21 of the air regulating slider 2 towards the deformation guide part 12 of the bracket 1, the deformation part 21 is not interfered with by the deformation guide part 12. The deformation part 21 is in a natural state, the toggle switch 3 is in the first position, and the upward sliding of the air regulating slider 2 can arbitrarily reduce the area of ​​obstruction to the air intake part 11 without changing the position, thereby freely and infinitely increasing the air intake volume without being affected by the toggle switch 3.

[0044] like Figure 6As shown, when the deformable part 21 continues to slide upward and comes into contact with the deformable guide part 12, the deformable part 21 will slowly be affected by the interference of the deformable guide part 12 and will be in a deformed state. The deformable part 21 will be coupled with the toggle switch 3.

[0045] like Figure 7 As shown, when the toggle switch 3 needs to switch from the first position to the second position, the air adjustment slider 2 can continue to slide upward. The air adjustment slider 2 reduces the area of ​​obstruction to the air intake 11 and drives the toggle switch 3 to switch to the second position, that is, the air intake volume is increased and the gear is adjusted at the same time.

[0046] When the toggle switch 3 needs to switch from the second position to the first position, the air adjustment slider 2 can slide down. The air adjustment slider 2 increases the area of ​​the air intake 11 that is blocked, and at the same time, it will drive the toggle switch 3 to switch to the first position, that is, the air intake volume is reduced and the gear is adjusted at the same time.

[0047] As the deformable part 21 continues to slide downward away from the deformable guide part 12, the force exerted by the deformable guide part 12 on the deformable part 21 will gradually disappear, and the deformable part 21 will gradually return to its natural state, causing the deformable part 21 to decouple from the toggle switch 3. The air adjustment slider 2 can arbitrarily increase the area of ​​obstruction of the air intake part 11, thereby freely and infinitely reducing the air intake volume.

[0048] In some embodiments, such as Figure 3 As shown, the deformation guide 12 and the deformation part 21 are located on the same side of the toggle switch 3.

[0049] In some embodiments, when the deformable part 21 is in its natural state, the deformable part 21 does not contact the deformable guide part 12 and the toggle switch 3. Along the extension direction perpendicular to the deformable guide part 12, the deformable part 21 is located between the deformable guide part 12 and the toggle switch 3, and the deformable part 21 is located at one end of the extension direction of the deformable guide part 12.

[0050] When the deformable part 21 is in a deformed state, it is squeezed by the deformable guide part 12 and bends in the direction of the toggle switch 3, and the deformable part 21 is coupled with the toggle switch 3.

[0051] In some embodiments, the deformable part 21 is a toggle piece made of an elastic material, such as thermoplastic polyurethane, rubber, etc. The thermoplastic polyurethane and rubber here are just examples and are not intended to limit this application. Other materials may also be used.

[0052] In some embodiments, such as Figure 2 As shown, the toggle switch 3 has a protrusion 31, and correspondingly, the protrusion 31 has a first position and a second position. The end of the deformable part 21 is provided with a groove 211, which is used to cooperate with the protrusion 31 to achieve engagement.

[0053] In some embodiments, such as Figure 2 and Figure 8 As shown, the deformation part 21 includes an elastic arm 212 and a claw part 213. The elastic arm 212 can deform away from the support 1 under the pressure of the deformation guide part 12. The free end of the elastic arm 212 is connected to the claw part 213. The claw part 213 is provided with a groove 211 facing away from the support 1. The groove 211 can engage with the protrusion 31 when the elastic arm 212 is compressed.

[0054] In some embodiments, such as Figure 8 As shown, the claw portion 213 includes a clearance ramp 2131, which is located at the end of the claw portion 213 facing the deformation guide portion 12. The clearance ramp 2131 is inclined from the direction of the deformation guide portion 12 toward the direction of the toggle switch 3 in the first position. When the elastic arm 212 is squeezed by the deformation guide portion 12, due to the presence of the clearance ramp 2131, the contact area between the claw portion 213 and the toggle switch 3 (specifically, the protrusion 31) will become smaller, so that the toggle switch 3 will not be accidentally activated due to excessive friction, thereby allowing the toggle switch 3 (specifically, the protrusion 31) to smoothly engage with the groove 211.

[0055] In some embodiments, such as Figure 8 As shown, the deformation guide 12 is a rib section, which includes a guide slope 121. The guide slope 121 is located at the end of the deformation guide 12 facing the deformation part 21. Along the extension direction perpendicular to the deformation guide 12, the guide slope 121 is inclined away from the toggle switch 3. This slope allows the force exerted by the deformation guide 12 on the deformation part 21 to gradually increase or disappear.

[0056] When the toggle switch 3 is in the first position, the deformation part 21 is at least partially located on the straight line where the deformation guide part 12 is located, and the toggle switch 3 and the deformation part 21 are located at the same end of the deformation guide part 12.

[0057] The guide ramp 121 is configured as follows:

[0058] During the process of switching the toggle switch 3 from the first position to the second position, the gas regulating slider 2 drives the deformation part 21 to slide close to the guide slope 121. After the deformation part 21 contacts the guide slope 121, the guide slope 121 squeezes the deformation part 21 and gradually increases the deformation of the deformation part 21 until the deformation part 21 is coupled with the toggle switch 3.

[0059] During the process of switching the toggle switch 3 from the second position to the first position, the gas regulating slider 2 drives the deformation part 21 to slide close to the guide slope 121. After the deformation part 21 contacts the guide slope 121, the guide slope 121 squeezes the deformation part 21 and gradually reduces the deformation of the deformation part 21 until the deformation part 21 is decoupled from the toggle switch 3.

[0060] In some embodiments, such as Figure 2 As shown, the air intake 11 comprises multiple air intake holes arranged along the sliding direction A of the air regulating slider 2. Understandably, the multiple holes can be two, three, or any number. In some other embodiments, the air intake 11 is an air intake groove extending along the sliding direction A of the air regulating slider 2.

[0061] In some embodiments, such as Figure 2 As shown, the air regulating slider 2 also includes a blocking part 22, which is used to change the blocking area of ​​the air intake part 11 during the sliding process, and the deformation part 21 is located on one side of the blocking part 22.

[0062] In some embodiments, such as Figure 2 and Figure 4 As shown, the shielding part 22 has an air passage groove 221, which is used to communicate with the air intake part 11. The overlapping area of ​​the air passage groove 221 and the air intake part 11 is adjusted by sliding the air adjustment slider 2. In some other embodiments, the shielding part 22 is a plate.

[0063] In some embodiments, such as Figure 2 and Figure 7 As shown, the two sides of the air regulating slider 2 are slidably connected to the two sides of the bracket 1 through guide rail structures, wherein the guide rail structure includes guide rail 14 and slide groove 23.

[0064] In some embodiments, such as Figure 2 and Figure 7 As shown, guide rails 14 are provided on both sides of the bracket 1, and sliding grooves 23 are provided on both sides of the air regulating slider 2. Specifically, the bracket 1 also includes a main body 13, with an air intake 11 located on the main body 13, and guide rails 14 provided on both sides of the main body 13. Sliding grooves 23 are provided on both sides of the shielding part 22, and the deformation part 21 is located on one side of the sliding groove 23, and the deformation part 21 extends outward.

[0065] In other embodiments, the bracket 1 has grooves 23 on both sides, and the air regulating slider 2 has guide rails 14 on both sides. Specifically, the bracket 1 also includes a main body 13, with an air inlet 11 located on the main body 13, and grooves 23 on both sides of the main body 13. The shielding part 22 has guide rails 14 on both sides, and the deformation part 21 is located on one side of the guide rail 14 and extends outward.

[0066] In some embodiments, such as Figure 2As shown, the gas adjustment structure for the electronic atomizing device also includes a sealing element 4. The sealing element 4 is disposed between the gas adjustment slider 2 and the bracket 1, that is, between the shielding part 22 and the main body part 13, and the sealing element 4 has an opening corresponding to the air inlet part 11. For example, the sealing element 4 is a silicone body. The silicone body here is only an example and is not intended to limit this application. Other materials may also be used.

[0067] In some embodiments, such as Figure 2 As shown, the air regulating slider 2 also includes an operation part 24, which is used for personnel to operate the air regulating slider. The operation part 24 is provided on the shielding part 22. For example, the operation part 24 is an outwardly extending column. The column here is just an example and is not intended to limit this application. It can also be other types.

[0068] Some embodiments of this application also disclose an electronic atomizing device, including the gas adjustment and speed control structure for electronic atomizing devices described in any of the above embodiments, which will not be repeated here.

[0069] In some embodiments, the electronic atomizing device includes, for example: Figure 1 The power supply device shown has a gas adjustment and speed control structure for the electronic atomizing device located on it.

[0070] The electronic atomization device also includes an atomizer (not shown), which is used to store and heat the atomizing matrix of liquid aerosols such as medicine. The power supply device supplies power to the atomizer. When the atomizer is powered on, it heats up, causing the aerosol generating matrix to atomize, thereby producing aerosols for the user to inhale.

[0071] In some embodiments, such as Figure 1 and Figure 2 As shown, the electronic atomizing device (specifically a power supply device) also includes a housing 5, on which a sliding position 51 is provided, and an operating part 24 is inserted into the sliding position 51, and the operating part 24 can slide within the sliding position 51.

[0072] In some embodiments, the power supply device further includes a battery 6 and a circuit board 7, with a toggle switch 3 disposed on the circuit board 7. For example, the circuit board 7 is a PCBA board. The PCBA board mentioned here is only an example and is not intended to limit this application; it can also be other types.

[0073] By implementing this application, the following beneficial effects can be achieved:

[0074] In this application, as the deformation part 21 of the air-adjusting slider 2 approaches or moves away from the deformation guide part 12 of the bracket 1, the toggle switch 3 remains in the first position. The air-adjusting slider 2 can adjust the area of ​​obstruction to the air intake part 11 by sliding without changing the position. The air-adjusting stroke is relatively free, thereby realizing the free and stepless adjustment of the air intake volume. When the toggle switch 3 needs to switch between the first and second positions, the deformation part 21 can interfere with the deformation guide part 12 and be in a deformed state. The deformation part 21 is coupled with the toggle switch 3. The air-adjusting slider 2 can adjust the area of ​​obstruction to the air intake part 11 by sliding while driving the toggle switch 3 to switch between the first and second positions, realizing the joint adjustment of air-adjustment and position adjustment, thereby meeting the different air-adjustment needs of each user.

[0075] It is understood that the above embodiments only illustrate some implementation methods of this application, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of this application's patent. It should be noted that those skilled in the art can freely combine the above embodiments or technical features without departing from the concept of this application, and can also make several modifications and improvements, all of which fall within the protection scope of this application. That is, the embodiments described "in some embodiments" can be freely combined with any of the preceding and following embodiments. Therefore, all equivalent transformations and modifications made within the scope of the claims of this application should be covered by the claims of this application.

Claims

1. A gas regulation and profile structure for an electronic atomization device, characterized in that, include: The bracket includes an air intake and a deformation guide. An air-adjusting slider is slidably connected to the bracket to change the area of ​​obstruction to the air intake during sliding; the air-adjusting slider includes a deformable part, which has a natural state without interference with the deformable guide part and a deformed state after interference with the deformable guide part; as well as, A toggle switch is used to adjust the power of the electronic atomizing device, and the toggle switch has a first position and a second position. During the process of the deformable part approaching or moving away from the deformable guide part, the deformable part is in a natural state, the toggle switch is in the first position, and the air adjustment slider can be slid to adjust the area of ​​the air intake part blocked without changing the position. When the deformable part is in a deformed state, the deformable part is coupled with the toggle switch. The air regulating slider can adjust the blocking area of ​​the air intake part by sliding, while driving the toggle switch to switch between the first position and the second position.

2. The air adjustment and profile structure for an electronic atomization device according to claim 1, wherein, As the deformable part approaches the deformable guide part and as the toggle switch switches from the first position to the second position, the air regulating slider gradually changes the area of ​​the air intake part it blocks with a first trend. During the process of the toggle switch switching from the second position to the first position and during the process of the deformation part moving away from the deformation guide part, the air adjustment slider gradually changes the area of ​​the air intake part blocked by the second trend, and the first trend is opposite to the second trend.

3. The air adjustment and profile structure for an electronic atomization device according to claim 2, wherein, The first trend is decreasing, the second trend is increasing, and the heating power corresponding to the second position of the toggle switch is greater than the heating power corresponding to the first position of the toggle switch.

4. The air adjustment and profile structure for an electronic atomization device according to claim 1, wherein, The deformation guide and the deformation part are located on the same side of the toggle switch.

5. The air adjustment and profile structure for an electronic atomization device according to claim 1, wherein, In its natural state, the deformable part does not contact the deformable guide and the toggle switch. Along the extension direction perpendicular to the deformable guide, the deformable part is located between the deformable guide and the toggle switch, and the deformable part is located at one end of the extension direction of the deformable guide. When the deformable part is in a deformed state, it is squeezed by the deformation guide and bends in the direction of the toggle switch, and the deformable part is coupled to the toggle switch.

6. The air adjustment and profile structure for an electronic atomization device according to claim 5, wherein, The toggle switch has a protrusion, and the end of the deformable part is provided with a groove, which is used to cooperate with the protrusion to achieve engagement.

7. The air adjustment and profile structure for an electronic atomization device according to claim 6, wherein, The deformable part includes an elastic arm and a claw; The elastic arm can deform away from the bracket under the pressure of the deformation guide. The free end of the elastic arm is connected to the claw. The claw is provided with the groove facing away from the bracket. The groove can engage with the protrusion when the elastic arm is compressed.

8. The air adjustment and profile structure for an electronic atomization device according to claim 7, wherein, The claw includes a clearance ramp, which is located at one end of the claw facing the deformation guide; the clearance ramp is inclined from the direction of the deformation guide toward the direction of the toggle switch in the first position.

9. The air adjustment and profile structure for an electronic atomization device according to claim 5, wherein, The deformation guide includes a guide slope, which is located at one end of the deformation guide facing the deformation part. When the toggle switch is in the first position, the deformable part is at least partially located on the straight line where the deformable guide part is located, and the toggle switch and the deformable part are located at the same end of the deformable guide part; The guide ramp is configured as follows: During the process of the toggle switch switching from the first position to the second position, the guide slope compresses the deformable part and gradually increases the deformation of the deformable part until the deformable part is coupled with the toggle switch; During the process of switching the toggle switch from the second position to the first position, the guide slope squeezes the deformable part and gradually reduces the deformation of the deformable part until the deformable part is decoupled from the toggle switch.

10. An electronic atomizing device, characterized by, Includes the gas adjustment and speed control structure for an electronic atomizing device as described in any one of claims 1-9.