Electronic atomization apparatus
By designing a sliding component and an air adjustment lever in the electronic atomizing device, the air intake and battery output power can be adjusted synchronously, solving the problem of mismatch between air intake and atomization volume, and improving user experience and ease of adjustment.
Patent Information
- Application Number
- PCT/CN2024/131392
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-05-28
- Filing Date
- 2024-11-11
- Publication Date
- 2025-12-04
AI Technical Summary
The size of the air intake opening and the battery output power in existing electronic atomizing devices cannot be flexibly adjusted, resulting in a mismatch between the amount of atomization and the amount of air intake, which cannot meet the personalized needs of users.
An electronic atomizing device was designed, which achieves synchronous adjustment of the air intake and battery output power through an adjustment component, including a sliding component and an air adjustment lever. The sliding component is slidably mounted on the housing to adjust the air intake area and battery output power. Combined with the air intake channel and circuit board, it can achieve multi-level or stepless adjustment.
Users can easily adjust the intake volume and output power to meet personalized needs, improve the user experience, simplify the adjustment structure, and reduce costs.
Smart Images

Figure CN2024131392_04122025_PF_FP_ABST
Abstract
Description
Electronic atomizing device
[0001] Cross-reference to related applications
[0002] This application claims priority to Chinese Patent Application No. 202421187638.6, filed on May 28, 2024, entitled "Electronic Atomizing Device", the entire contents of which are incorporated herein by reference. Technical Field
[0003] This application relates to the field of electronic atomization technology, specifically to an electronic atomization device. Background Technology
[0004] The atomizing device has an air inlet, and the size of the air inlet affects the air intake. Users can often only adjust the air intake, which leads to a mismatch between the atomization volume and the air intake volume, making it difficult to meet the user's personalized needs.
[0005] Summary of the Invention
[0006] One or more embodiments of this application provide an electronic atomizing device, including a housing, wherein the housing includes a first air inlet; a battery; and an adjustment assembly, wherein the adjustment assembly is reciprocally slidably disposed on the housing, the adjustment assembly including a sliding component configured to simultaneously adjust the air inlet area of the first air inlet and the output power of the battery.
[0007] In one or more embodiments, the regulating component further includes a first air regulating portion configured to adjust the air intake area of the first air intake hole, and the sliding component configured to adjust the output power of the battery.
[0008] In one or more embodiments, the electronic atomizing device further includes: an air intake channel, wherein the airflow outlet of the air intake channel is connected to the airflow inlet of the electronic atomizing device, and a second air inlet is provided at the airflow inlet end of the air intake channel, wherein the airflow inlet of the air intake channel is connected to the second air inlet; the adjusting component further includes a second air regulating part, wherein the second air regulating part adjusts the air intake area of the second air inlet.
[0009] In one or more embodiments, the second air regulating portion includes an air regulating hole disposed along the sliding direction of the sliding assembly.
[0010] In one or more embodiments, the electronic atomizing device further includes a battery holder and a sealing element, the sealing element being housed within the battery holder and maintaining a seal with the inner sidewall of the battery holder, the second air inlet being disposed on the sealing element, the battery holder having a sliding portion, the sliding assembly having a mating portion, the mating portion being slidably connected to the sliding portion.
[0011] In one or more embodiments, the battery bracket is closed on all sides, with an opening at one end of the battery bracket facing the sliding assembly and at the other end facing away from the sliding assembly, thereby forming the air intake channel inside the battery bracket.
[0012] In one or more embodiments, the end of the battery holder facing the sliding assembly is an airflow inlet end, and the side of the seal facing the sliding assembly is flush with the end face of the airflow inlet end.
[0013] In one or more embodiments, the side of the seal facing the sliding assembly is recessed within the end face of the battery holder facing the airflow inlet end of the air intake channel; the sliding portion includes a first groove provided on at least one side wall of the battery holder; the mating portion includes a first protrusion protruding from at least one outer side wall of the sliding assembly.
[0014] In one or more embodiments, the battery holder has the first groove on each of its two opposite sidewalls, and the sliding assembly has the first protrusion on each of its two opposite outer sidewalls, with the two protrusions respectively slidingly engaged in the two first grooves.
[0015] In one or more embodiments, the battery holder is provided with a limiting part, and the sliding component is provided with a positioning part on the surface opposite to the limiting part. When the sliding component slides to a predetermined state, the positioning part engages with the limiting part.
[0016] In one or more embodiments, the limiting portion includes a concave-convex structure provided on the inner sidewall of the battery holder, and the positioning portion includes a second protrusion provided on the outer sidewall of the sliding assembly.
[0017] In one or more embodiments, the concave-convex structure includes a wavy structure, the side of the second protrusion facing the wavy structure is arc-shaped, the wavy structure includes a plurality of recessed areas, each of the plurality of recessed areas corresponding to a gear position.
[0018] In one or more embodiments, the electronic atomizing device further includes a circuit board with a gear switch, the gear switch being electrically connected to the circuit board, the circuit board being electrically connected to the battery, and the sliding component being connected to the sliding block of the gear switch.
[0019] In one or more embodiments, the sliding assembly includes a slider and a connector, wherein the side of the connector near the second air inlet is connected to the slider, and the side of the connector away from the second air inlet is connected to the sliding block of the gear switch; the mating part is provided on the slider.
[0020] And / or, the battery holder is provided with a limiting groove, and the sliding member is slidably disposed in the limiting groove.
[0021] In one or more embodiments, the limiting portion includes a recessed portion disposed on the side of the seal facing the slider, and the positioning portion includes a protruding surface disposed on the side of the sliding assembly facing the seal.
[0022] In one or more embodiments, the first gas regulating part includes a gas regulating lever, which is fixedly connected to or integrally formed with the sliding component.
[0023] In one or more embodiments, the air regulating lever is slidably disposed outside the housing, the first air inlet is disposed on the air regulating lever, and the housing is provided with a third air inlet, the third air inlet being configured to allow external air to enter the interior of the housing through the partially overlapping area of the first air inlet and the third air inlet when it at least partially overlaps with the first air inlet.
[0024] In one or more embodiments, the gas regulating lever has a first locking portion protruding from one side facing the sliding member, and the sliding member has a locking hole, with the first locking portion being inserted and fixed in the locking hole.
[0025] In one or more embodiments, guide holes are provided on both sides of the third air inlet of the housing, and the first snap-fit part extends into the interior of the housing through the guide holes to connect with the sliding member.
[0026] In one or more embodiments, the adjusting paddle has a second engaging portion protruding from one side facing the slider. The second engaging portion extends into the interior of the housing through the guide hole, and the hook portion at the end of the second engaging portion engages with the inner sidewall of the housing. Attached Figure Description
[0027] To more clearly illustrate the technical solutions in the specific embodiments or related technologies of this application, the drawings used in the description of the specific embodiments or related technologies will be briefly introduced below. Obviously, the drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0028] Figure 1 is a schematic diagram of an electronic atomizing device according to one or more embodiments of this application;
[0029] Figure 2 is a cross-sectional view of an electronic atomizing device according to one or more embodiments of this application;
[0030] Figure 3 is a cross-sectional view of an electronic atomizing device according to one or more embodiments of this application;
[0031] Figure 4 is a schematic diagram of an electronic atomizing device according to one or more embodiments of this application after the gas adjustment lever has been removed;
[0032] Figure 5 is a schematic diagram of the internal structure of an electronic atomizing device according to one or more embodiments of this application;
[0033] Figure 6 is an exploded view of the internal structure of an electronic atomizing device according to one or more embodiments of this application;
[0034] Figure 7 is a schematic diagram of the internal structure of an electronic atomizing device according to one or more embodiments of this application;
[0035] Figure 8 is a schematic diagram of the battery holder and sliding component cooperating in an electronic atomizing device according to one or more embodiments of this application;
[0036] Figure 9 is an exploded view of the internal structure of an electronic atomizing device according to one or more embodiments of this application;
[0037] Figure 10 is an exploded view of the internal structure of an electronic atomizing device according to one or more embodiments of this application;
[0038] Figure 11 is a schematic diagram of a battery holder in an electronic atomizing device according to one or more embodiments of this application;
[0039] Figure 12 is a schematic diagram of a sliding component in an electronic atomizing device according to one or more embodiments of this application;
[0040] Figure 13 is a schematic diagram of an air regulating lever in an electronic atomizing device according to one or more embodiments of this application;
[0041] Figure 14 is a schematic diagram of the battery holder and atomizing core of an electronic atomizing device according to one or more embodiments of this application.
[0042] Explanation of reference numerals in the attached figures
[0043] 1. Housing; 11. Third air inlet; 12. Guide hole; 2. Battery; 30. Adjustment assembly; 031. First air adjustment part; 032. Second air adjustment part; 31. Air adjustment lever; 311. First air inlet; 312. First locking part; 313. Second locking part; 3131. Hook part; 32. Sliding assembly; 321. Sliding element; 3211. Mating part; 3221. First protrusion; 3212. Positioning part; 32121, Second protrusion; 3213, Air regulating hole; 3214, Snap-fit hole; 322, Connector; 4, Battery bracket; 41, Air intake channel; 42, Sliding part; 421, First sliding groove; 43, Limiting part; 431, Concave-convex structure; 4311, Recessed area; 44, Limiting groove; 5, Sealing element; 51, Second air intake hole; 52, Recessed part; 6, Circuit board; 7, Gear switch; 71, Sliding block; 8, Atomizer core. Detailed Implementation
[0044] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0045] The size of the air inlet of the electronic atomizing device in the related technology and the output power of the battery 2 are inconvenient to adjust, which makes it inconvenient for users to adjust the amount of atomization according to their own taste.
[0046] This application provides an electronic atomizing device that allows for convenient adjustment of the air intake and output power.
[0047] The embodiments of this application are described below with reference to Figures 1 to 14.
[0048] According to an embodiment of this application, an electronic atomizing device is provided, as shown in Figures 1 to 3. The electronic atomizing device includes a housing 1, a battery 2, a first air inlet 311, and an adjustment component 30.
[0049] The adjustment component 30 is slidably disposed on the housing 1 (i.e., the adjustment component 30 is disposed on the housing and can slide back and forth on the housing). The adjustment component 30 includes a sliding component 32. During the reciprocating sliding of the sliding component 32, the sliding component 30 simultaneously adjusts the air intake area of the first air intake 311 and adjusts the output power of the battery 2.
[0050] In this electronic atomizing device, when the user needs to adjust the atomization volume, the user can change the air intake area of the first air intake 311 by sliding the sliding component 32 relative to the housing 1, and at the same time change the output power of the battery 2. The manufacturer can preset a suitable mapping relationship between the air intake area and the output power, so that the user can quickly adjust the electronic atomizing device.
[0051] In one or more embodiments, the regulating component 30 further includes a first air regulating section 031. The sliding component 32 and the first air regulating section 031 are linked. The first air regulating section 031 is used to adjust the air intake area of the first air intake port 311, and the sliding component is used to adjust the output power of the battery. The electronic atomizing device includes a printed circuit board assembly (PCBA) for controlling the voltage output of the battery 2, and a multi-level power switch disposed on the PCBA. For example, the multi-level power switch includes levels 1, 2, and 3. Level 1 corresponds to 0V battery (i.e., no voltage output is provided), and the air intake of the first air intake port 311 is 0; level 2 corresponds to 2.5V battery, and the air intake of the first air intake port 311 is medium; level 3 corresponds to 3.5V battery, and the air intake of the first air intake port 311 is low.
[0052] In one or more embodiments, the multi-level power switch has only 1 and 2 levels, corresponding to 0V and 3.5V battery output power, meaning the battery output power is either on or off. In this embodiment, the first air regulating section 031 can adjust the first air inlet 311 to 4 or more levels. This means that the number of air intake levels and the number of battery output power levels do not necessarily have a one-to-one correspondence.
[0053] In one or more embodiments, the first air regulating section 031 adjusts the first air inlet 311 in a stepless manner, and the sliding component 32 adjusts the battery output power in a stepless manner.
[0054] In one or more embodiments, the electronic atomizing device further includes an air intake channel 41, the airflow outlet of which is connected to the airflow inlet of the electronic atomizing device, and a second air inlet 51 at the airflow inlet end of the air intake channel 41, which is connected to the second air inlet 51. The adjustment assembly 30 further includes a second air adjustment section 032, which adjusts the air intake area of the second air inlet 51. Air from outside the housing 1 enters the interior of the housing 1 through the first air inlet 311, then enters the air intake channel 41 through the second air inlet 51, and finally enters the airflow inlet of the atomizing core 8 of the electronic atomizing device through the airflow outlet of the air intake channel 41. The second air adjustment section 032 adjusts the air intake area of the second air inlet 51, thereby adjusting the airflow directly into the air intake channel 41. During the sliding process of the sliding component 32, the air intake area of the first air intake 311 and the second air intake 51 are adjusted simultaneously. The first air intake 311 adjusts the air flow rate of the air entering the interior of the housing 1 from the outside of the housing 1, and the second air intake 51 adjusts the air flow rate of the air entering the air intake channel 41 from the inside of the housing 1.
[0055] As shown in Figures 1, 3, and 6, in one or more embodiments, the first gas regulating part 031 includes a gas regulating paddle 31, which is fixedly connected to or integrally formed with the sliding assembly 32. When the gas regulating paddle 31 is slid, it drives the sliding assembly 32 to slide synchronously.
[0056] As shown in Figures 1 and 3, the air intake swivel 31 is slidably disposed on the outside of the housing 1. A first air inlet 311 is disposed on the air intake swivel 31, and a third air inlet 11 is provided on the housing 1. When the air intake swivel 31 slides, it adjusts the area of the overlapping region between the first air inlet 311 and the third air inlet 11. External air enters the interior of the housing 1 through the overlapping region of the first air inlet 311 and the third air inlet 11, thereby adjusting the air intake area of the first air inlet 311 and the airflow rate into the housing 1. In other words, when the third air inlet 11 at least partially overlaps with the first air inlet 311, external air can enter the interior of the housing 1 through the overlapping region of the first air inlet 311 and the third air inlet 11.
[0057] As shown in Figures 6 and 7, in one or more embodiments, the second air regulating part 032 includes an air regulating hole 3213 disposed along the sliding direction of the sliding assembly 32. Pushing the air regulating lever 31 outside the housing 1 causes the sliding assembly 32 to slide synchronously. The sliding assembly 32 changes the area of the overlapping region between the air regulating hole 3213 and the second air inlet 51, thereby adjusting the air intake area of the second air inlet 51 and conveniently and quickly regulating the airflow entering the air intake channel 41 through the second air inlet 51.
[0058] As shown in Figures 5 to 10, the electronic atomizing device also includes a battery holder 4 and a sealing member 5. The sealing member 5 is housed within the battery holder 4 and is sealed to the inner wall of the battery holder 4. A second air inlet 51 is provided on the sealing member 5. The battery holder 4 is provided with a sliding part 42, and the sliding assembly 32 is provided with a mating part 3211. The mating part 3211 is slidably connected to the sliding part 42 to slidably connect the sliding assembly 32 to the battery holder 4. The battery holder 4 provides sliding support for the sliding assembly 32.
[0059] As shown in Figures 10 and 11, the battery bracket 4 is closed on all sides, with an opening at one end facing the sliding component 32 and at the other end facing away from the sliding component 32. The air intake channel 41 is formed inside the battery bracket 4, and the opening at the end of the battery bracket 4 facing the sliding component 32 serves as the airflow inlet of the air intake channel 41.
[0060] When the sliding component 32 slides relative to the battery holder 4, its relative position with the seal 5 changes, thereby altering the overlap area between the air regulating port 3213 and the second air inlet 51. Gas inside the housing 1 enters the air intake channel 41 inside the battery holder 4 through the second air inlet 51, and then enters the airflow inlet of the atomizing core 8 through the air intake channel 41. The seal 5 maintains a seal with the inner wall of the battery holder 4, effectively preventing air leakage.
[0061] In one or more embodiments, as shown in Figures 7 and 9, the side of the sealing member 5 facing the sliding assembly 32 is recessed within the end face of the battery holder 4 facing the airflow inlet end of the air intake channel 41; the sliding part 42 includes a first groove 421 provided on the side wall of the battery holder 4; the mating part 3211 includes a first protrusion 3221 protruding from the outer side wall of the sliding assembly 32. The side of the sealing member 5 facing the sliding assembly 32 is recessed within the end face of the battery holder 4 facing the airflow inlet end of the air intake channel 41, so as to form a space for accommodating the sliding assembly 32 between the inner side walls of the battery holder 4 outside the sealing member 5. The sliding assembly 32 is accommodated between the inner side walls of the batteries 2 outside the sealing member 5, which helps to maintain the stability of the mating structure of the two and ensures that the sliding assembly 32 slides smoothly; at the same time, it can make the overall structure compact and neat. The first protrusion 3221 on the outer side wall of the sliding assembly 32 is slidably inserted into the first groove 421 on the battery holder 4, so that the sliding assembly 32 is stably slidably connected to the battery holder 4.
[0062] In one or more embodiments, as shown in Figures 9 and 11, the battery holder 4 is provided with a first groove 421 on each of the two opposite side walls, and the sliding component 32 is provided with a first protrusion 3221 on each of the two opposite outer side walls. The two first protrusions 3221 are respectively slidably engaged in the two first grooves 421, and the sliding structure is stable and reliable.
[0063] In one or more embodiments, the first groove 421 is formed on the inner sidewall of the battery holder 4, and the first groove 421 does not penetrate the wall thickness of the battery holder 4.
[0064] In one or more embodiments, the first groove 421 may also be configured to penetrate the wall thickness of the battery holder 4 to form a sliding hole structure, and the mating part 3211 is provided on the sliding hole structure.
[0065] In one or more embodiments, the opening of the battery holder 4 is strip-shaped, and the first groove 421 is provided on two long sidewalls of the battery holder 4. The first groove 421 is strip-shaped and extends along the extension direction of the long sidewalls of the battery holder 4.
[0066] In one or more embodiments, the material of the seal 5 includes silicone. The seal 5 is interference-fitted into the opening of the battery holder 4 so that the outer peripheral wall of the seal 5 is sealed to the inner side wall of the battery holder 4 to prevent air leakage.
[0067] In one or more embodiments, the side of the seal 5 facing the sliding assembly 32 may also be flush with the end face of the battery bracket 4 facing the airflow inlet end of the air intake channel 41. In this case, a groove is provided on the outer wall of the battery bracket 4, and the first protrusion 3221 on the sliding assembly 32 is located on the outer side of the battery bracket 4. The first protrusion 3221 is bent toward the inside of the groove and can be slidably inserted into the groove.
[0068] As shown in Figure 7, in one or more embodiments, the battery holder 4 is provided with a limiting part 43, and the sliding component 32 is provided with a positioning part 3212 on the surface opposite to the limiting part 43. When the sliding component 32 slides to a predetermined state, the positioning part 3212 engages with the limiting part 43. The output power of the battery 2 is linearly related to the air intake of the electronic atomizing device, which can be positive or negative. For example, the larger the air intake, the greater the output power of the battery 2, or the larger the air intake, the smaller the output power of the battery 2. The electronic atomizing device has multiple speed settings, each corresponding to a different air intake and a different output power of the battery 2. The sliding component 32 sliding to a predetermined state refers to the state where the sliding component 32 slides to a certain speed setting. When the sliding component 32 slides to the predetermined state, the positioning part 3212 engages with the limiting part 43 to position the sliding component 32, preventing it from moving during use. This keeps the first air intake 311 and the second air intake 51 within the required air intake area, ensuring the stability of the air intake and atomization volume.
[0069] In one or more embodiments, the limiting part 43 includes a concave-convex structure 431 provided on the inner sidewall of the battery holder 4, and the positioning part 3212 includes a second protrusion 32121 provided on the outer sidewall of the sliding component 32. When the sliding component 32 slides, the second protrusion 32121 slides along the concave-convex structure 431. After the second protrusion 32121 slides into the recessed area of the concave-convex structure 431, the second protrusion 32121 is engaged in the recessed area 4311 when there is no external force pushing it, thereby positioning the sliding component 32 on the battery holder 4.
[0070] In one or more embodiments, the concave-convex structure 431 includes a wave-like structure, and the side of the second protrusion 32121 facing the wave-like structure is arc-shaped, which facilitates the smooth sliding of the second protrusion 32121 along the wave-like structure under the push of external force.
[0071] In one or more embodiments, the wavy structure includes a plurality of recessed areas 4311, each recessed area 4311 corresponding to a gear position, and the plurality of recessed areas 4311 sequentially corresponding to a plurality of gear positions from high to low or from low to high. For example, when the second protrusion 32121 slides into the first recessed area 4311, the overlapping area of the first air intake 311 and the third air intake 11 is the smallest, and the sliding component 32 completely covers the second air intake 51. At this time, it corresponds to the first gear, with the minimum air intake and the minimum output power of the battery 2. When the second protrusion 32121 slides into the second recessed area 4311, the overlapping area of the first air intake 311 and the third air intake 11 is moderate, and the air regulating hole 3213 partially overlaps with the second air intake 51. At this time, the air intake and the output power of the battery 2 are relatively small, corresponding to the second gear. When the second protrusion 32121 slides into the last recessed area 4311, the overlapping area of the first air intake 311 and the third air intake 11 is the largest, the overlapping area of the air regulating hole 3213 and the second air intake 51 is the largest, and the air intake and the maximum output power of the battery 2 are the largest, corresponding to the highest gear.
[0072] In one or more embodiments, as shown in FIG7, the inner sidewalls of the two long sidewalls of the battery holder 4 are provided with a wave-like structure, and the two opposite outer sidewalls of the sliding component 32 are also provided with a second protrusion 32121. After the sliding component 32 slides to a predetermined state, the two second protrusions 32121 are respectively engaged in the recessed areas 4311 of the two wave-like structures, which can reliably position the sliding component 32.
[0073] In other embodiments, the limiting part 43 includes a recessed part 52 provided on the side of the sealing member 5 facing the sliding assembly 32, and the positioning part 3212 includes a protruding surface provided on the side of the sliding assembly 32 facing the sealing member 5. After the sliding assembly 32 slides to a predetermined state, the protruding surface cooperates with the recessed part 52 to position the sliding assembly 32.
[0074] In one or more embodiments, as shown in Figures 6 and 7, the electronic atomizing device further includes a circuit board 6. A gear switch 7 is mounted on the circuit board 6 and electrically connected to the circuit board 6. The circuit board 6 is also electrically connected to the battery 2. A sliding component 32 is connected to the sliding block 71 of the gear switch 7. The battery 2 is electrically connected to the heating element of the electronic atomizing device. When the sliding component 32 slides, it causes the sliding block 71 of the gear switch 7 to slide synchronously, thereby changing the output power of the battery 2 through the circuit board 6, which in turn changes the power supply to the heating element of the electronic atomizing device, thus changing the amount of atomization. This application, by setting a single sliding component 32, can simultaneously adjust the air intake and the output power of the battery 2. This single sliding component 32 achieves the adjustment of two functions, simplifying the overall structure of the adjustment mechanism, reducing costs, and improving the assembly efficiency of the overall structure.
[0075] In one or more embodiments, as shown in Figures 6 and 7, the sliding assembly 32 includes a slider 321 and a connector 322. The side of the connector 322 near the second air inlet 51 is connected to the slider 321, and the side of the connector 322 away from the second air inlet 51 is connected to the sliding block 71 of the gear switch 7. The mating part 3211 and the positioning part 3212 are both provided on the outer side wall of the slider 321. The slider 321 is housed between the inner side wall of the battery 2 outside the sealing member 5. The air regulating hole 3213 is provided on the slider 321. When the air regulating lever 31 slides, it drives the slider 321 to slide, and the slider 321 drives the connector 322 to slide synchronously, so as to synchronously adjust the air intake area of the first air inlet 311 and the second air inlet 51 and the output power of the battery 2.
[0076] As shown in Figures 7 and 11, in one or more embodiments, the battery holder 4 is provided with a limiting groove 44, and the sliding member 321 is slidably disposed within the limiting groove 44. When the sliding component 32 slides, the connecting member 322 slides along the limiting groove 44. When the sliding component 32 slides to the lowest position, the connecting member 322 abuts against one side wall of the limiting groove 44 to limit the connecting member 322. When the sliding component 32 slides to the highest position, the connecting member 322 abuts against the other side wall of the limiting groove 44 to limit the connecting member 322.
[0077] As shown in Figures 7 and 11, the limiting groove 44 is provided on the end face of the battery bracket 4 facing the gas regulating lever 31.
[0078] In one or more embodiments, the circuit board 6 and the gear switch 7 are disposed on one side of the battery bracket 4, and the connector 322 is provided with a connection hole, which is sleeved on the sliding block 71.
[0079] In one or more embodiments, the gear switch 7 includes a slide switch; the connector 322 and the slide 321 are integrally formed.
[0080] In one or more embodiments, as shown in Figures 7 and 9, both the air regulating hole 3213 and the second air inlet 51 are strip-shaped, and both extend along the sliding direction of the slider 321. Since both the air regulating hole 3213 and the second air inlet 51 are strip-shaped and extend in the same direction, the overlapping length of the air regulating hole 3213 and the second air inlet 51 in the length direction can be changed by sliding the slider 321. This conveniently and effectively changes the air intake area of the second air inlet 51, and also facilitates gradually increasing or decreasing the air intake area of the second air inlet 51 to gradually increase or decrease the air intake volume, thus achieving a shifting operation of the air intake volume.
[0081] In one or more embodiments, the first air inlet 311 includes a plurality of round holes disposed on the air regulating lever 31, and the third air inlet 11 includes a strip hole disposed at the bottom of the housing 1. When one round hole coincides with the strip hole, the air intake of the first air inlet 311 is the smallest, and when all air inlets coincide with the strip hole, the air intake of the first air inlet 311 is the largest.
[0082] As shown in Figures 2, 6, 7, and 9, in one or more embodiments, the gas regulating lever 31 and the sliding member 321 are engaged. The gas regulating lever 31 has a first engaging portion 312 protruding from its side facing the sliding member 321. The sliding member 321 has an engaging hole 3214. The first engaging portion 312 is inserted and fixed into the engaging hole 3214 to fix the gas regulating lever 31 to the sliding member 321, so that when the gas regulating lever 31 is pushed, the sliding member 321 slides synchronously via the gas regulating lever 31.
[0083] As shown in Figures 2 and 4, in one or more embodiments, guide holes 12 are provided on both sides of the third air inlet 11 of the housing 1. The first snap-fit part 312 extends into the interior of the housing 1 through the guide holes 12 and connects with the sliding member 321. The guide holes 12 are strip-shaped to allow the air regulating lever 31 to slide.
[0084] As shown in Figures 2, 3 and 13, the side of the gas regulating paddle 31 facing the sliding member 321 is also provided with a second engaging part 313. The end of the second engaging part 313 is hook-shaped. The second engaging part 313 extends into the housing 1 through the guide hole 12, and the hook part 3131 at the end of the second engaging part 313 engages with the inner side wall of the housing 1. When the gas regulating paddle 31 is pushed, the second engaging part 313 slides synchronously along the guide hole 12 to play a guiding role and ensure that the gas regulating paddle 31 slides smoothly along the preset track.
[0085] In one or more embodiments, as shown in FIG14, the electronic atomizing device includes an atomizing core 8, and the airflow outlet of the air inlet channel 41 is connected to the airflow inlet of the atomizing core 8.
[0086] In one or more embodiments, as shown in FIG3, a circular arc-shaped recessed area is provided on one side of the battery holder 4. The battery 2 includes a cylindrical battery 2, which is partially housed in the circular arc-shaped recessed area. The battery holder 4 serves to both support and house the battery 2, making the overall structure more compact, reducing the overall size of the device, and making it easier for users to carry.
[0087] Battery 2, sliding component 32, battery bracket 4, sealing component 5, circuit board 6, gear switch 7 and atomizer core 8 are all located inside the housing 1, and the air adjustment lever 31 is slidably connected to the outside of the housing 1.
[0088] As shown in Figure 3, when the electronic atomizing device is in use, under the suction effect, air from outside the housing 1 enters the interior of the housing 1 through the first air inlet 311 and the third air inlet 11. The air inside the housing 1 then enters the air intake channel 41 inside the battery holder 4 through the air adjustment port 3213 and the second air inlet 51, and finally enters the air intake of the atomizing core 8 through the air outlet of the air intake channel 41. When it is necessary to adjust the atomization volume, the user slides the air adjustment lever 31 from outside the housing 1 to drive the sliding component 32 to slide, thereby changing the air intake area of the overlapping area of the first air inlet 311 and the third air inlet 11, changing the air intake area of the overlapping area of the air adjustment port 3213 and the second air inlet 51, and adjusting the output power of the battery 2, thereby changing the air intake volume and atomization volume of the atomizing device.
[0089] Although embodiments of this application have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of this application, and all such modifications and variations fall within the scope defined by the appended claims. Industrial applicability
[0090] The electronic atomizing device of this application allows users to change the air intake area of the first air intake hole and the output power of the battery by sliding the sliding component on the sliding shell, thereby conveniently and quickly adjusting the atomization amount of the electronic atomizing device and improving the user experience.
Claims
1. An electronic atomizing device, comprising: A housing, wherein, The housing includes a first air inlet; Battery; and An adjustment assembly, wherein the adjustment assembly is slidably disposed on the housing, the adjustment assembly comprising: A sliding component configured to simultaneously adjust the air intake area of the first air intake and adjust the output power of the battery.
2. The electronic atomizing device of claim 1, wherein, The regulating component further includes a first air regulating part, which is configured to adjust the air intake area of the first air intake hole, and the sliding component is configured to adjust the output power of the battery.
3. The electronic atomizing device of claim 1 or 2, further comprising: An air intake channel, wherein the airflow outlet of the air intake channel is connected to the airflow inlet of the electronic atomizing device, and the airflow inlet end of the air intake channel is provided with a second air inlet, and the airflow inlet of the air intake channel is connected to the second air inlet; The adjustment component further includes a second air adjustment part, which adjusts the air intake area of the second air intake hole.
4. The electronic atomizing device of claim 3, wherein, The second air regulating part includes an air regulating hole disposed along the sliding direction of the sliding component.
5. The electronic atomizing device of claim 3 or 4, further comprising: Battery brackets and seals, The sealing element is housed within the battery bracket and is sealed to the inner wall of the battery bracket. The second air inlet is located on the sealing element. The battery bracket has a sliding portion, and the sliding assembly has a mating portion, which is slidably connected to the sliding portion.
6. The electronic atomizing device of claim 5, wherein, The battery bracket is closed on all sides, with an opening at one end facing the sliding assembly and at the other end facing away from the sliding assembly, thereby forming the air intake channel inside the battery bracket.
7. The electronic atomizing device of claim 6, wherein, The end of the battery holder facing the sliding assembly is the airflow inlet end, and the side of the seal facing the sliding assembly is flush with the end face of the airflow inlet end.
8. The electronic atomizing device of any one of claims 5-7, wherein, The sealing member is recessed inward on the side facing the sliding assembly at the end face of the battery bracket facing the airflow inlet end of the air intake channel; the sliding part includes a first sliding groove provided on at least one side wall of the battery bracket; the mating part includes a first protrusion protruding from at least one outer side wall of the sliding assembly.
9. The electronic atomizing device of claim 8, wherein, The battery holder has the first groove on each of its two opposite sidewalls, and the sliding assembly has the first protrusion on each of its two opposite outer sidewalls. The two protrusions are respectively slidably engaged in the two first grooves.
10. The electronic atomizing device of any one of claims 5-9, wherein, The battery holder is provided with a limiting part, and the sliding component is provided with a positioning part on the surface opposite to the limiting part. When the sliding component slides to a predetermined state, the positioning part and the limiting part engage.
11. The electronic atomizing device according to claim 10, wherein, The limiting part includes a concave-convex structure on the inner sidewall of the battery holder, and the positioning part includes a second protrusion on the outer sidewall of the sliding assembly.
12. The electronic atomizing device according to claim 11, wherein, The concave-convex structure includes a wavy structure, and the side of the second protrusion facing the wavy structure is arc-shaped. The wavy structure includes multiple recessed areas, and each of the multiple recessed areas corresponds to a gear position.
13. The electronic atomizing device according to any one of claims 5-12, further comprising a circuit board, in, The circuit board is equipped with a gear switch, which is electrically connected to the circuit board. The circuit board is electrically connected to the battery, and the sliding component is connected to the sliding block of the gear switch.
14. The electronic atomizing device according to claim 13, wherein, The sliding assembly includes a slider and a connector. The side of the connector near the second air inlet is connected to the slider, and the side of the connector away from the second air inlet is connected to the sliding block of the gear switch. The mating part is provided on the slider. And / or, the battery holder is provided with a limiting groove, and the sliding member is slidably disposed in the limiting groove.
15. The electronic atomizing device according to claim 14, wherein, The limiting portion includes a recessed portion provided on the side of the seal facing the sliding member, and the positioning portion includes a protruding surface provided on the side of the sliding assembly facing the seal.
16. The electronic atomizing device according to any one of claims 1-15, wherein, The first gas regulating part includes a gas regulating lever, which is fixedly connected to or integrally formed with the sliding component.
17. The electronic atomizing device according to claim 16, wherein, The air regulating lever is slidably disposed on the outside of the housing. The first air inlet is disposed on the air regulating lever. The housing is provided with a third air inlet. The third air inlet is configured to allow external air to enter the interior of the housing through the partially overlapping area of the first air inlet and the third air inlet when it at least partially overlaps with the first air inlet.
18. The electronic atomizing device according to claim 17, wherein, The gas regulating lever has a first locking part protruding from the side facing the sliding member, and the sliding member has a locking hole, and the first locking part is inserted and fixed in the locking hole.
19. The electronic atomizing device according to claim 18, wherein, The housing has guide holes on both sides of the third air inlet, and the first snap-fit part extends into the housing through the guide holes to connect with the sliding member.
20. The electronic atomizing device according to claim 19, wherein, The adjusting lever has a second locking part protruding from the side facing the slider. The second locking part extends into the interior of the housing through the guide hole, and the hook at the end of the second locking part engages with the inner side wall of the housing.
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