An all-glowing electronic atomization device

By covering the flexible circuit board of the electronic atomizing device with LED light patterns and using a light shield and diffusion film to diffuse the light, the problem of uneven light and glare caused by local light emission is solved, achieving a large-area, uniform and soft overall light emission effect and enhancing the aesthetics.

CN224420130UActive Publication Date: 2026-06-30SHENZHEN LOST VAPE TECHNOLOGY LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN LOST VAPE TECHNOLOGY LTD
Filing Date
2025-06-27
Publication Date
2026-06-30

AI Technical Summary

Technical Problem

The lighting of existing electronic atomizing devices can only emit light locally, resulting in a small luminous area, narrow visible range, uneven and glaring light, and a lack of aesthetic appeal.

Method used

The light-emitting pattern is composed of LEDs on a flexible circuit board. Combined with a light shield, a diffusion film, and a light-transmitting component, the light is evenly diffused through the light-transmitting holes and the diffusion film to form a full-body luminous effect.

Benefits of technology

It achieves a large-area, uniform, and soft lighting effect, enhancing the aesthetics of the lighting fixtures, with vibrant colors and a wide range of visibility for users.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a fully luminous electronic atomizing device, including a main unit, an atomizer electrically connected to the main unit, and a light-transmitting element. The main unit is covered with a circuit board made of flexible material. The circuit board has multiple luminous patterns that emit different colors of light. A light shield is fitted onto the circuit board, and the light shield has multiple light-transmitting holes corresponding to each luminous pattern. A diffusion film corresponding to the light-transmitting holes is fitted onto the light shield. The light-transmitting element is fitted onto the diffusion film. The main unit contains a power supply component that supplies power to the circuit board to make the luminous patterns emit light. The power supply component can also control each luminous pattern to emit light simultaneously or individually. This utility model, by adopting the above technical solution, solves the problems of existing electronic atomizing devices where the light decoration can only emit light locally, resulting in a small luminous area and narrow visible range, as well as glaring light spots, uneven and soft light, and dull light colors, making the main unit's light decoration lack aesthetic appeal.
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Description

Technical Field

[0001] This utility model relates to the field of electronic atomization technology, and in particular to an electronic atomization device that emits light throughout. Background Technology

[0002] Currently, existing electronic atomizing devices typically incorporate LEDs within the main unit to allow users to monitor battery consumption. A corresponding through-hole is then created on the main unit to observe the LED's light color. This method of displaying battery information through localized light emission not only results in a small luminous area and narrow visibility, making it difficult for users to observe, especially during the day, but also produces a parallel light source with glaring spots, leading to uneven and soft lighting. Furthermore, the lack of vibrant colors detracts from the aesthetic appeal of the main unit's lighting design. Utility Model Content

[0003] The purpose of this invention is to provide an electronic atomizing device that emits light throughout, which solves the problems of existing electronic atomizing devices where the light decoration can only emit light locally, resulting in a small light-emitting area and narrow visibility range, as well as glaring light spots, uneven and soft light, and dull light color, making the light decoration of the main unit lack the aesthetic appeal of a patterned effect.

[0004] The technical solution adopted by this utility model to solve the above-mentioned technical problems is as follows: an electronic atomizing device that emits light throughout, including a main unit, an atomizer electrically connected to the main unit, and a light-transmitting element. The main unit is covered with a circuit board made of flexible material. The circuit board has multiple light-emitting patterns that can emit different colors of light. A light shield is fitted on the circuit board. The light shield has multiple light-transmitting holes that correspond to each of the light-emitting patterns. A diffusion film corresponding to the light-transmitting holes is fitted on the light shield. The light-transmitting element is fitted on the diffusion film. The main unit is equipped with a power supply component that supplies power to the circuit board to make the light-emitting patterns emit light. The power supply component can also control each of the light-emitting patterns to emit light simultaneously or individually.

[0005] In one embodiment, the circuit board is made of FPC flexible material, and each of the light-emitting patterns is evenly distributed throughout the entire circuit board.

[0006] In one embodiment, each of the light-emitting patterns is composed of multiple LEDs that can emit different colors of light, and the circuit board is electrically connected to each of the LEDs.

[0007] In one embodiment, the light shield, the diffusion film, and the light-transmitting element are all cylindrical, and the shape of each light-transmitting hole is the same as the shape of each light-emitting pattern. Each light-transmitting hole is formed in various parts of the light shield using a machining process.

[0008] In one embodiment, the light shield is made of one of the following soft, opaque materials: EVA, rubber, nylon, and ABS; the diffusion film is made of PET, PMMA, or PC; and the light-transmitting element is made of tempered glass or acrylic.

[0009] In one embodiment, the host includes a bracket and a cover, the power supply assembly is disposed inside the bracket, the cover is fastened to the bracket, the circuit board is wrapped around the outer peripheral wall of the bracket and the cover, and the bracket is inserted into the light-transmitting element such that the diffusion film corresponds to the light-transmitting element.

[0010] In one embodiment, the power supply assembly includes a control board, a battery cell, and a power board. The battery cell is electrically connected to the control board and the power board. The control board is electrically connected to the circuit board. An adapter cavity is provided at the top of the bracket. The top of the light-transmitting element has an opening corresponding to and communicating with the adapter cavity. The lower end of the atomizer is inserted into the adapter cavity through the opening. A first electrode and a second electrode are provided on the bottom wall of the adapter cavity. The power board is electrically connected to the first electrode and the second electrode.

[0011] In one embodiment, the atomizer has a third electrode at its bottom end that abuts against the first electrode and a fourth electrode that abuts against the second electrode. An oil storage chamber is formed inside the atomizer, and a mist tube is provided inside the oil storage chamber. A mist channel is formed inside the mist tube, and a heating element electrically connected to the third electrode and the fourth electrode is provided inside the mist channel. An oil inlet hole corresponding to the heating element is opened on the outer wall of the mist tube, and a mist outlet with the same shape as the mist channel is opened at the top of the atomizer.

[0012] In one embodiment, the host also includes a button, the control board is provided with a control button, the outer wall of the bracket is provided with a first through hole corresponding to the control button, the outer wall of the light-transmitting element is provided with a second through hole corresponding to and communicating with the first through hole, one end of the button is inserted into the bracket through the first through hole and the second through hole and abuts against the control button, the other end of the button is exposed outside the light-transmitting element, the power board is provided with a charging socket, and the bottom end of the light-transmitting element is provided with a socket corresponding to the charging socket.

[0013] The electronic atomizing device with full-body light emission of this utility model has the following beneficial effects: The electronic atomizing device with full-body light emission of this utility model covers the entire circuit board with a light-emitting pattern composed of LED lights. The light emitted by the light-emitting pattern can be diffused to various parts of the host through the light-transmitting holes onto the diffusion film. This makes the light decoration of the existing electronic atomizing device no longer localized. Not only is the light-emitting area large and the user's visibility range wide, but the diffused light does not have glaring spots, making the light more uniform and soft. Moreover, the light color is gorgeous, making the light decoration of the host more aesthetically pleasing. Attached Figure Description

[0014] The present invention will now be described in detail with reference to the accompanying drawings, so that the above-mentioned advantages of the present invention become clearer. Among them,

[0015] Figure 1 This is an exploded view of the electronic atomizing device of this utility model;

[0016] Figure 2 This is a three-dimensional schematic diagram of the electronic atomizing device of this utility model;

[0017] Figure 3 This is a front cross-sectional view of the electronic atomizing device of this utility model;

[0018] Figure 4 This is a side sectional view of the electronic atomizing device of this utility model;

[0019] Figure 5 This is a schematic diagram of the circuit board structure of the main unit of the electronic atomizing device of this utility model;

[0020] Figure 6 This is a schematic diagram showing the disassembled main unit and light-transmitting component of the electronic atomizing device of this utility model. Detailed Implementation

[0021] The following detailed description of the embodiments of this utility model, in conjunction with the accompanying drawings, will provide a thorough understanding of how this utility model uses technical means to solve technical problems and achieve technical effects, enabling its implementation. It should be noted that, provided there is no conflict, the various embodiments and features within them can be combined with each other, and all resulting technical solutions are within the protection scope of this utility model.

[0022] It should be noted that the specification of this application contains a large number of technical features distributed across various technical solutions. Listing all possible combinations of technical features (i.e., technical solutions) would make the specification excessively lengthy. To avoid this problem, the various technical features disclosed in the above-described utility model content, the various technical features disclosed in the following embodiments and examples, and the various technical features disclosed in the accompanying drawings can be freely combined to form various new technical solutions (all of which are considered to have been described in this specification), unless such a combination of technical features is technically infeasible. For example, one example discloses feature A+B+C, and another example discloses feature A+B+D+E. Features C and D are equivalent technical means that serve the same function, and technically only one needs to be used; they cannot be used simultaneously. Feature E can technically be combined with feature C. Therefore, the solution A+B+C+D should not be considered as described because it is technically infeasible, while the solution A+B+C+E should be considered as described.

[0023] In this utility model, the terms "upper", "lower", "top", "bottom", "inner", "outer", etc., are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing and understanding the technology of this utility model, and are not intended to limit the device or component to have a specific orientation or to be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0024] like Figure 1-6 As shown, this utility model provides an electronic atomizing device that emits light throughout, including a main unit 13, an atomizer 1 electrically connected to the main unit 13, and a light-transmitting element 14. The main unit 13 is covered with a circuit board 6 made of flexible material. The circuit board 6 has multiple light-emitting patterns 1301 that can emit different colors of light. A light shield 7 is fitted on the circuit board 6. The light shield 7 has multiple light-transmitting holes 701 that correspond to each light-emitting pattern 1301. A diffusion film 8 corresponding to the light-transmitting holes 701 is fitted on the light shield 7. The light-transmitting element 14 is fitted on the diffusion film 8. The main unit 13 is provided with a power supply component 1302 that supplies power to the circuit board 6 to make the light-emitting patterns 1301 emit light. The power supply component 1302 can also control each light-emitting pattern 1301 to emit light simultaneously or individually. It should be noted that by covering the entire circuit board 6 with the light-emitting pattern 1301 composed of LED lights 601, the light emitted by the light-emitting pattern 1301 can be diffused to various parts of the host 13 through the light-transmitting hole 701 onto the diffusion film 8. This makes the existing electronic atomizing device and the light decoration no longer localized. Not only is the light-emitting area large and the user's viewing range wide, but the diffused light does not have glaring spots, making the light more uniform and soft. Moreover, the light color is gorgeous, making the light decoration of the host 13 more aesthetically pleasing.

[0025] In some embodiments, the circuit board 6 is made of flexible FPC material, and each light-emitting pattern 1301 is evenly distributed throughout the entire circuit board 6. The circuit board 6 made of FPC is thin and flexible, movable, bendable and twistable, and has good conductivity and heat resistance, making it easy to assemble and adaptable to various complex spatial layouts. The even distribution of each light-emitting pattern 1301 throughout the entire circuit board 6 enables all parts of the host 13 to emit light.

[0026] In some embodiments, each luminous pattern 1301 is composed of a plurality of LEDs 601 that can emit different colors of light, and the circuit board 6 is electrically connected to each LED 601. It should be noted that when the power supply component 1302 supplies power to the circuit board 6, each LED 601 emits light simultaneously to form the luminous pattern 1301, thereby making the exterior of the host 13 more aesthetically pleasing.

[0027] In some embodiments, the light shield 7, the diffuser film 8, and the light-transmitting element 14 are all cylindrical. The shape of each light-transmitting hole 701 is the same as the shape of each light-emitting pattern 1301. Each light-transmitting hole 701 is machined at various locations on the light shield 7. The cylindrical shape of the light shield 7, the diffuser film 8, and the light-transmitting element 14 can completely cover the outer periphery of the circuit board 6, allowing light to cover the entire exterior of the host 13. The shape of each light-transmitting hole 701 is the same as the shape of each light-emitting pattern 1301, enabling the light-emitting pattern 1301 to be uniformly imaged on the diffuser film 8 and preventing the light from being out of center. Each light-transmitting hole 701 can also be integrally formed with the light shield 7 using an in-mold injection molding process.

[0028] In some embodiments, the light shield 7 is made of a soft, opaque material selected from EVA, rubber, nylon, and ABS; the diffuser film 8 is made of PET, PMMA, or PC; and the light-transmitting element 14 is made of tempered glass or acrylic. In this embodiment, the light shield 7 is made of EVA, which is opaque, soft, heat-resistant, and inexpensive. It not only blocks light but also prevents the LED lamp 601 from being damaged by pressure, and the high temperature generated by the LED lamp 601 after it emits light will not cause it to deform. In this embodiment, the diffuser film 8 is made of PET, which has high light transmittance and good diffusion, enabling it to evenly diffuse the spotlight emitted by the LED lamp 601, making the light softer and less glaring. It is also flexible and will not deform or scratch after being subjected to pressure or abrasion, and will not change color after exposure to light. In this embodiment, the light-transmitting element 14 is made of acrylic, which has high light transmittance, is inexpensive, will not deform under pressure, and will not break after a drop.

[0029] In some embodiments, the host 13 includes a bracket 4 and a cover 12. A power supply assembly 1302 is disposed within the bracket 4, and the cover 12 is fastened to the bracket 4. A circuit board 6 is wrapped around the outer peripheral walls of the bracket 4 and the cover 12. The bracket 4 is inserted into the light-transmitting element 14 such that the diffusion film 8 corresponds to the light-transmitting element 14. Specifically, the bracket 4 is used to accommodate the power supply assembly 1302, the cover 12 is used to seal the power supply assembly 1302 within the bracket 4, and the circuit board 6 is wrapped around the outer peripheral walls of the bracket 4 and the cover 12 by adhesive bonding.

[0030] In some embodiments, the power supply assembly 1302 includes a control board 9, a battery cell 10, and a power board 11. The battery cell 10 is electrically connected to the control board 9 and the power board 11. The control board 9 is electrically connected to the circuit board 6. The top of the bracket 4 has an adapter cavity 401. The top of the light-transmitting element 14 has an opening 1401 that corresponds to and communicates with the adapter cavity 401. The lower end of the atomizer 1 is inserted into the adapter cavity 401 through the opening 1401. The bottom wall of the adapter cavity 401 is provided with a first electrode 2 and a second electrode 3. The power board 11 is electrically connected to the first electrode 2 and the second electrode 3. Among them, the battery cell 10 is used to supply power to the control board 9 and the power board 11 to enable the electronic control function. The control board 9 is used to supply power to the circuit board 6 to make each LED 601 light up to form a light-emitting pattern 1301. The adapter cavity 401 is used to adapt to the atomizer 1. The opening 1401 is used for the atomizer 1 to be inserted into the adapter cavity 401. The first electrode 2 and the second electrode 3 are used to electrically connect the atomizer 1. The power board 11 supplies power to the atomizer 1 through the first electrode 2 and the second electrode 3.

[0031] In some embodiments, the atomizer 1 has a third electrode 107 abutting against the first electrode 2 and a fourth electrode 108 abutting against the second electrode 3 at its bottom end. An oil storage chamber 102 is formed inside the atomizer 1. An atomizing tube 103 is provided inside the oil storage chamber 102. An atomizing channel 104 is formed inside the atomizing tube 103. A heating element 105 electrically connected to the third electrode 107 and the fourth electrode 108 is provided inside the atomizing channel 104. An oil inlet hole 106 corresponding to the heating element 105 is opened on the outer wall of the atomizing tube 103. An atomizing outlet 101 with the same shape as the atomizing channel 104 is opened at the top end of the atomizer 1. The oil storage chamber 102 is used to store e-liquid, the mist tube 103 is used to isolate the e-liquid in the oil storage chamber 102, the mist channel 104 is used to circulate air and exhaust smoke, the heating core 105 is used to heat the e-liquid in the oil storage chamber 102 to produce smoke, the oil inlet 106 is used to guide the e-liquid in the oil storage chamber 102 into the heating core 105, the mist outlet 101 is used to exhaust smoke for the user to inhale, and the power board 11 provides power to the heating core 105 to make it heat up by abutting the first electrode 2 and the third electrode 107, and abutting the second electrode 3 and the fourth electrode 108.

[0032] In some embodiments, the host 13 further includes a button 5, a control button 901 is provided on the control board 9, a first through hole 402 corresponding to the control button 901 is opened on the outer wall of the bracket 4, a second through hole 1402 corresponding to and communicating with the first through hole 402 is opened on the outer wall of the light-transmitting element 14, one end of the button 5 is inserted into the bracket 4 through the first through hole 402 and the second through hole 1402 and abuts against the control button 901, and the other end of the button 5 is exposed outside the light-transmitting element 14, a charging socket 1101 is provided on the power board 11, and a socket 1403 corresponding to the charging socket 1101 is opened at the bottom of the light-transmitting element 14. Pressing the control button 901 once outside the light-transmitting element 14 with button 5 can activate the control board 9 to control each light-emitting pattern 1301 to emit light simultaneously. Pressing the control button 901 twice outside the light-transmitting element 14 can activate the control board 9 to control each light-emitting pattern 1301 to switch back and forth to emit light. The charging device can be inserted into the charging socket 1101 through the socket 1403 and charged through the power board 11 to charge the battery cell 10.

[0033] The following detailed description uses preferred embodiments.

[0034] like Figure 1-6As shown, the electronic atomizing device of this utility model includes: an atomizer 1, a main unit 13, and a light-transmitting element 14. The main unit 13 includes: a first electrode 2, a second electrode 3, a bracket 4, a button 5, a circuit board 6, a light shield 7, a diffusion film 8, a control board 9, a battery cell 10, a power board 11, and a cover 12. The control board 9, the battery cell 10, and the power board 11 are installed inside the bracket 4. The battery cell 10 is electrically connected to the control board 9 and the power board 11 to supply power to the control board 9 and the power board 11 to activate their electronic control functions. The cover 14... 2. The control board 9, battery cell 10, and power board 11 are sealed inside the bracket 4 by fastening the control board 9, battery cell 10, and power board 11. The circuit board 6 is wrapped around the outer periphery of the bracket 4 and the cover 12 for power supply. The circuit board 6 has multiple light-emitting patterns 1301 composed of LEDs 601 for illuminating the battery cell 10 and beautifying the exterior of the main unit 13. The circuit board 6 is electrically connected to each LED 601. The control board 9 is electrically connected to the circuit board 6 to power each LED 601 to make it light up. The light shield 7 is fitted onto the cover. The circuit board 6 is used to block the light emitted by the LED lamp 601. The light shield 7 has multiple light-transmitting holes 701 corresponding to the light-emitting patterns 1301 formed by the LED lamps 601 for light transmission. A diffusion film 8 is fitted onto the light shield 7 to evenly diffuse the light, making it softer and less glaring. The top of the bracket 4 has an adapter cavity 401 for accommodating the atomizer 1. The first electrode 2 and the second electrode 3 are mounted on the bottom wall of the adapter cavity 401 for conductive connection to the atomizer 1. The power board 11 is connected to the first electrode 2 and the second electrode 3... Electrode 3 is electrically connected to supply power to atomizer 1. Control board 9 is equipped with control button 901 to activate control board 9 and supply power to circuit board 6. The outer wall of bracket 4 has a first through hole 402 corresponding to control button 901 for inserting button 5. One end of button 5 is inserted into bracket 4 through the first through hole 402 and abuts against control button 901 for activating control board 9 to supply power by pressing. Power board 11 is equipped with charging socket 1101 for charging battery cell 10. All components are combined and cooperate to form main unit 13.

[0035] The main unit 13 is inserted into the light-transmitting element 14, so that the diffusion film 8 corresponds to the light-transmitting element 14. After the light is diffused by the diffusion film 8, it can be observed through the light-transmitting element 14. The top of the light-transmitting element 14 has an opening 1401 that corresponds to and communicates with the adapter cavity 401 for the atomizer 1 to be inserted into the adapter cavity 401. The outer wall of the light-transmitting element 14 has a second through hole 1402 that corresponds to and communicates with the first through hole 402. The other end of the button 5 protrudes from the second through hole 1402 and is exposed outside the light-transmitting element 14. Pressing the control button 901 once outside the light-transmitting component 14 with button 5 will activate the control board 9 to control each luminous pattern 1301 to emit light simultaneously. Pressing the control button 901 twice outside the light-transmitting component 14 will activate the control board 9 to control each luminous pattern 1301 to switch back and forth to emit light. The bottom of the light-transmitting component 14 has a socket 1403 corresponding to the charging socket 1101. The charging device can be inserted into the charging socket 1101 through the socket 1403 and the power board 11 will charge the battery cell 10.

[0036] The lower end of the atomizer 1 is inserted into the adapter cavity 401 through the opening 1401. An oil storage chamber 102 is formed inside the atomizer 1 to store e-liquid. An atomizing tube 103 is provided inside the oil storage chamber 102 to isolate the e-liquid within the oil storage chamber 102. An atomizing channel 104 is formed inside the atomizing tube 103 for airflow and vapor extraction. A heating element 105 is provided inside the atomizing channel 104 to heat the e-liquid in the oil storage chamber 102 to produce vapor. An oil inlet hole 106 corresponding to the heating element 105 is opened on the outer wall of the atomizing tube 103 to allow oil from the oil storage chamber 102 to enter the oil storage chamber 102. E-liquid is introduced into the heating element 105. The top of the atomizer 1 has an outlet 101, which is the same as the mist channel 104, for smoke discharge. The bottom of the atomizer 1 has a third electrode 107 that abuts against the first electrode 2 and a fourth electrode 108 that abuts against the second electrode 3. The heating element 105 is electrically connected to the third electrode 107 and the fourth electrode 108. The power board 11 supplies power to the heating element 105 to make it heat up through the first electrode 2 abutting against the third electrode 107 and the second electrode 3 abutting against the fourth electrode 108.

[0037] Finally, it should be noted that the above are merely preferred embodiments of this utility model and are not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A body-luminescent electronic atomization device, characterized by, The device includes a main unit, an atomizer electrically connected to the main unit, and a light-transmitting element. The main unit is covered with a circuit board made of flexible material. The circuit board has multiple light-emitting patterns that can emit different colors of light. A light shield is fitted on the circuit board. The light shield has multiple light-transmitting holes that correspond to each of the light-emitting patterns. A diffusion film corresponding to the light-transmitting holes is fitted on the light shield. The light-transmitting element is fitted on the diffusion film. The main unit has a power supply component that supplies power to the circuit board to make the light-emitting patterns emit light. The power supply component can also control each of the light-emitting patterns to emit light simultaneously or individually.

2. The electronic atomizing device of claim 1, wherein, The circuit board is made of FPC flexible material, and each of the light-emitting patterns is evenly distributed throughout the entire circuit board.

3. The electronic atomizing device of claim 2, wherein, Each of the light-emitting patterns consists of multiple LEDs that can emit different colors of light, and the circuit board is electrically connected to each of the LEDs.

4. The electronic atomizing device of claim 1, wherein, The light shield, the diffusion film, and the light-transmitting element are all cylindrical. The shape of each light-transmitting hole is the same as the shape of each light-emitting pattern. Each light-transmitting hole is machined into various parts of the light shield.

5. The electronic atomizing device of claim 1, wherein, The light shield is made of one of the following soft, opaque materials: EVA, rubber, nylon, or ABS; the diffusion film is made of PET, PMMA, or PC; and the light-transmitting element is made of tempered glass or acrylic.

6. The electronic atomizing device according to any one of claims 1 to 5, wherein The host includes a bracket and a cover. The power supply component is disposed inside the bracket. The cover is fastened to the bracket. The circuit board is wrapped around the outer peripheral wall of the bracket and the cover. The bracket is inserted into the light-transmitting element so that the diffusion film corresponds to the light-transmitting element.

7. The electronic atomizing device of claim 6, wherein, The power supply assembly includes a control board, a battery cell, and a power board. The battery cell is electrically connected to the control board and the power board. The control board is electrically connected to the circuit board. An adapter cavity is provided at the top of the bracket. The top of the light-transmitting element has an opening corresponding to and communicating with the adapter cavity. The lower end of the atomizer is inserted into the adapter cavity through the opening. A first electrode and a second electrode are provided on the bottom wall of the adapter cavity. The power board is electrically connected to the first electrode and the second electrode.

8. The electronic atomizing device of claim 7, wherein, The atomizer has a third electrode at its bottom end that abuts against the first electrode and a fourth electrode that abuts against the second electrode. An oil storage chamber is formed inside the atomizer. A mist tube is provided inside the oil storage chamber. A mist channel is formed inside the mist tube. A heating element electrically connected to the third electrode and the fourth electrode is provided inside the mist channel. An oil inlet hole corresponding to the heating element is opened on the outer wall of the mist tube. A mist outlet with the same shape as the mist channel is opened at the top of the atomizer.

9. The electronic atomizing device of claim 7, wherein, The host also includes buttons. The control board is provided with control buttons. The outer wall of the bracket has a first through hole corresponding to the control buttons. The outer wall of the light-transmitting element has a second through hole corresponding to and communicating with the first through hole. One end of the button is inserted into the bracket through the first through hole and the second through hole and abuts against the control buttons. The other end of the button is exposed outside the light-transmitting element. The power board is provided with a charging socket. The bottom end of the light-transmitting element has a socket corresponding to the charging socket.