3D imaging assembly and aerosol generating device thereof

By introducing 3D imaging components into the aerosol generation device and utilizing a combination of light-emitting and light-transmitting components, three-dimensional stereoscopic image display is achieved, solving the problem of monotonous display effects and enhancing visual appeal and user experience.

CN224068705UActive Publication Date: 2026-03-31SHENZHEN VAPEEZ TECH LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing aerosol generating devices have monotonous display effects, lacking a sense of depth and visual appeal.

Method used

Using 3D imaging components, a combination of light-emitting and light-transmitting elements is used to form a three-dimensional image through transmission and refraction. Combined with specific optical elements and display devices, a 3D floating display effect is achieved.

Benefits of technology

It enhances the visual appeal and display effect of the aerosol generation device, providing a more vivid and three-dimensional image display and improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of aerosol generation devices, and discloses a 3D imaging assembly and an aerosol generation device thereof.The 3D imaging assembly can generate a three-dimensional image in the aerosol generation device, and light emitted by a light-emitting part in the 3D imaging assembly is emitted to a light-transmitting plate at an included angle relative to the light-transmitting plate. Through the transmission and refraction effects of the light-transmitting plate, the visual effect of 3D suspension display is presented, the visual attraction is improved, and the problem that the display effect in the aerosol generating device is monotonous is solved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of aerosol generating device, in particular to an integrated 3D imaging assembly and aerosol generating device thereof. BACKGROUND

[0002] An aerosol generating device is an electronic device that heats a liquid aerosol generating substrate to atomize and generate an aerosol for a user to inhale. The design of the aerosol generating device mainly focuses on the improvement of the taste, atomization effect, and appearance design. The related design of the visual display effect of the aerosol generating device currently uses a TFT screen, a digital tube, or the like to display a UI pattern, such as the display screen of the aerosol generating device disclosed in CN221011980U and the digital tube with integrated display driving for the aerosol generating device disclosed in CN221101669U, which are used to display a UI pattern. However, these display methods can only realize two-dimensional display in a plane, and the display effect is relatively monotonous, the visual effect is relatively poor, and the user experience is limited. CONTENT OF THE UTILITY MODEL

[0003] The present application aims to overcome the deficiencies of the prior art and provide a 3D imaging assembly and aerosol generating device thereof to solve the problem of monotonous display effect in the aerosol generating device.

[0004] To solve the above technical problems, the present application adopts the following technical solutions: a 3D imaging assembly applied to an aerosol generating device to enable the aerosol generating device to generate a 3D image, the 3D imaging assembly comprising:

[0005] a light emitting member configured to emit light along a preset direction and generate an image;

[0006] a light transmitting member comprising at least one light transmitting plate arranged at an angle with the preset direction;

[0007] wherein part of the light emitted by the light emitting member is transmitted through the light transmitting plate to form a first image, and another part of the light emitted by the light emitting member is refracted through the light transmitting plate to form a second image.

[0008] Optionally, the light transmitting member comprises a plurality of light transmitting plates, and the plurality of light transmitting plates are sequentially connected to form a hollow pyramid; and the light emitting member is arranged on at least one of the top and the bottom of the hollow pyramid.

[0009] Optionally, the light transmitting member comprises four light transmitting plates, and the four light transmitting plates are sequentially connected to form a hollow quadrangular pyramid.

[0010] Optionally, the light-transmitting member comprises at least one fan-shaped light-transmitting plate, and the at least one fan-shaped light-transmitting plate surrounds to form a hollow cone; the light-emitting member is arranged on at least one of the top and the bottom of the hollow cone.

[0011] Optionally, the light-emitting member has a holographic image area corresponding to each light-transmitting plate, and the number of the holographic image areas is the same as the number of the light-transmitting plates; part of the light emitted by the holographic image area is transmitted through the corresponding light-transmitting plate to form the first image, and another part of the light emitted by the holographic image area is refracted through the corresponding light-transmitting plate to form the second image.

[0012] Optionally, the light-emitting member is one of a thin-film transistor screen, a liquid crystal on silicon screen, and an organic light-emitting diode screen.

[0013] To solve the above technical problems, another technical solution adopted by the present application is: an aerosol generating device, comprising:

[0014] The 3D imaging assembly described above;

[0015] A housing assembly is provided with a first receiving cavity for receiving the 3D imaging assembly;

[0016] The housing assembly further has a light-transmitting area corresponding to the 3D imaging assembly.

[0017] Optionally, the housing assembly comprises:

[0018] A first housing having the first receiving cavity, and the light-transmitting area is located on the first housing; and

[0019] A second housing detachably connected with the first housing; the second housing is used for accommodating an atomization device of the aerosol generating device.

[0020] Optionally, the aerosol generating device further comprises:

[0021] A control circuit electrically connected with the light-emitting member, used for adjusting the image generated by the light-emitting member; and / or,

[0022] A battery and a conductive needle; the battery is accommodated in the first receiving cavity and electrically connected with the atomization device through the conductive needle.

[0023] Optionally, the light-transmitting member is provided with a positioning portion extending downward and arranged in the first receiving cavity.

[0024] The application provides a 3D imaging assembly and an aerosol generating device thereof, the 3D imaging assembly can generate a three-dimensional image in the aerosol generating device, light emitted by a light emitting part in the 3D imaging assembly is emitted to a light transmission plate at an angle relative to the light transmission plate, and the light is transmitted and refracted by the light transmission plate to present a 3D floating display visual effect, thereby improving visual attraction and solving the problem of monotonous display effect in the aerosol generating device. BRIEF DESCRIPTION OF DRAWINGS

[0025] Figure 1 is a perspective view of the aerosol generating device provided by the application;

[0026] Figure 2 is an assembly view of a control circuit and the 3D imaging assembly in the aerosol generating device provided by the application;

[0027] Figure 3 is an exploded view of the aerosol generating device provided by the application;

[0028] Figure 4 is a sectional view of the aerosol generating device provided by the application;

[0029] Figure 5 is a working principle view of the 3D imaging assembly in the aerosol generating device provided by the application;

[0030] Figure 6 is a perspective view of the light transmission part in the aerosol generating device provided by the application;

[0031] Figure 7 is a perspective view of the light transmission part in the aerosol generating device provided by the application;

[0032] Figure 8 is a first assembly position relationship view of the light emitting part and the light transmission part in the aerosol generating device provided by the application;

[0033] Figure 9 is a second assembly position relationship view of the light emitting part and the light transmission part in the aerosol generating device provided by the application;

[0034] Figure 10 is an assembly view of the 3D imaging assembly in the aerosol generating device provided by the application;

[0035] Figure 11 is a top view of the light emitting part in the aerosol generating device provided by the application;

[0036] Figure 12 is a perspective view of the first shell in the aerosol generating device provided by the application.

[0037] REFERENCE SIGNS:

[0038] 10, aerosol generating device; 1, housing assembly; 11, second housing; 12, first housing; 121, clamping protrusion; 13, decorative sheet; 131, decorative pattern; 2, atomization device; 21, liquid cup; 22, liquid storage member; 23, atomization core; 231, pin; 3, battery; 4, control circuit; 5, suction nozzle; 6, 3D imaging assembly; 61, light emitting member; 611, holographic image area; 62, light transmitting member; 621, light transmitting plate; 63, positioning portion; 631, positioning groove. DETAILED DESCRIPTION

[0039] The present application will be further described below in conjunction with specific embodiments and drawings.

[0040] The present application is based on the problem of monotonous display effect existing in the aerosol generating device, and provides a 3D imaging assembly and aerosol generating device thereof. The 3D imaging assembly can generate a three-dimensional image in the aerosol generating device. The light emitted by the light emitting member in the 3D imaging assembly is at an angle relative to the light transmitting plate and is transmitted and refracted by the light transmitting plate to present a 3D floating display visual effect, thereby improving visual appeal and solving the problem of monotonous display effect existing in the aerosol generating device. For details, see the following embodiments.

[0041] For details, see the following embodiments. Figures 1 to 5 The first embodiment of the present application provides a 3D (Three Dimensions) imaging assembly 6 that can be installed in an aerosol generating device 10 for use, so that a three-dimensional image can be generated in the aerosol generating device 10 to form a 3D floating display visual effect, thereby improving visual appeal and solving the problem of monotonous display effect existing in the aerosol generating device 10. The 3D imaging assembly 6 includes a light emitting member 61 and a light transmitting member 62. The light emitting member 61 emits light along a predetermined direction to generate an image. The light transmitting member 62 includes at least one light transmitting plate 621, which is arranged at an angle relative to the predetermined direction, so that the light emitted by the light emitting member 61 is at an angle relative to the light transmitting plate 621 and is transmitted and refracted by the light transmitting plate 621 to present a 3D floating display visual effect. Specifically, part of the light is transmitted through the light transmitting plate 621 to form a first image (i.e., a transmitted image), and another part of the light is refracted by the light transmitting plate 621 to form a second image (i.e., a refracted image). The superposition of the two images can present a three-dimensional floating visual effect, effectively improving the visual appeal of the aerosol generating device 10 and avoiding monotonous display effect. As shown in FIG. 1, the aerosol generating device 10 includes a housing assembly 1, a battery 3, a control circuit 4, an atomization device 2, a suction nozzle 5, and a 3D imaging assembly 6. The 3D imaging assembly 6 is installed in the housing assembly 1 and is arranged on the side of the aerosol generating device 10. The 3D imaging assembly 6 includes a light emitting member 61 and a light transmitting member 62. The light emitting member 61 emits light along a predetermined direction to generate an image. The light transmitting member 62 includes at least one light transmitting plate 621, which is arranged at an angle relative to the predetermined direction, so that the light emitted by the light emitting member 61 is at an angle relative to the light transmitting plate 621 and is transmitted and refracted by the light transmitting plate 621 to present a 3D floating display visual effect. Specifically, part of the light is transmitted through the light transmitting plate 621 to form a first image (i.e., a transmitted image), and another part of the light is refracted by the light transmitting plate 621 to form a second image (i.e., a refracted image). The superposition of the two images can present a three-dimensional floating visual effect, effectively improving the visual appeal of the aerosol generating device 10 and avoiding monotonous display effect. Figure 5As shown, the light-emitting piece 61 emits C light rays, which are projected onto the light-transmitting piece 62, and the C light rays are divided into A refracted light rays and B straight light rays, wherein the B straight light rays directly pass through the light-transmitting piece 62, and the A refracted light rays are horizontally refracted outward to form a visible pattern image, so that the user can visually observe the 3D image or dynamic picture formed by the 3D imaging assembly 6, and achieve the effect of 3D floating display.

[0042] The angle between the light-emitting piece 61 and the light-transmitting plate 621 can refer to the related technologies of existing holographic projection and light field display, for example, in the range of 30°-60°. The 3D floating display technology is mainly based on optical principles and is realized through specific optical elements and display devices. Among them, integrated imaging 3D display and holographic 3D display are two relatively mainstream technical paths, which are as follows:

[0043] Integrated imaging 3D display: This technology uses a microlens array to image a 3D scene and records the image on a photosensitive imaging device; when displaying, the recorded image is reconstructed into a 3D image through the same microlens array; in order to achieve the effect of suspension, an inverse light film and other suspension devices are usually combined to refract the light at a specific angle and reconstruct the suspended 3D image.

[0044] Holographic 3D display: holography is based on wave optics, and records and reconstructs the wave surface of 3D space light to realize true 3D display; holographic 3D display technology can simulate the process of 3D objects refracting light from the surface to multiple directions, thereby generating a true 3D image without vergence accommodation conflict; in order to achieve the effect of suspension, special optical elements and control systems are also needed for holographic 3D display technology.

[0045] The light-transmitting plate 621 has a specific light transmission rate, for example, the light-transmitting plate 621 is electroplated with a metal semi-transparent film, and the light transmission rate is 35%; of course, the light transmission rate can also be controlled to be 38%, and different light transmission rates are controlled according to actual use requirements.

[0046] Please refer to Figures 1 to 9In an embodiment, the structure of the 3D imaging assembly 6 is optimized. The light-transmitting member 62 is formed by sequentially connecting a plurality of light-transmitting plates 621, which, after being connected, surround to form a hollow pyramid, so that the light-transmitting member 62 can transmit and refract light from multiple angles, thereby enhancing the visual effect of 3D floating display. The light-emitting member 61 is arranged on at least one of the top and bottom of the hollow pyramid, ensuring that light can uniformly irradiate each light-transmitting plate 621. For example, when the light-emitting member 61 is arranged at the top of the hollow pyramid, light is emitted from top to bottom, is transmitted and refracted by each light-transmitting plate 621, and enters the observer's eye from different directions, making the generated 3D image more stereoscopic and vivid, and further improving the visual appeal of the aerosol generating device 10. It should be noted that, regardless of whether the light-emitting member 61 is arranged at the top or bottom of the hollow pyramid, the tip of the hollow pyramid needs to be arranged close to the light-emitting member 61, i.e., the small end of the hollow pyramid is arranged closer to the light-emitting member 61 than the large end, to ensure that the plurality of light-transmitting plates 621 surrounding the hollow pyramid can be arranged at an angle with the light emitted by the light-emitting member 61, so that the light is transmitted and refracted by the light-transmitting plates 621, and finally presents the visual effect of 3D floating display.

[0047] The light-transmitting member 62 is specifically arranged as four light-transmitting plates 621 that are sequentially connected, and the four light-transmitting plates 621 surround to form a hollow four-pyramid after being sequentially connected. The hollow four-pyramid structure is relatively simple and symmetrical, which is conducive to the uniform distribution of light after transmission and refraction, and improves the consistency of refraction and transmission effects. Each light-transmitting plate 621 can effectively process the light emitted by the light-emitting member 61, a part of the light passes through the light-transmitting plate 621 to form a transmission image, and another part of the light is refracted by the light-transmitting plate 621 to form a refraction image. After the two images are superimposed, a more clear and stable three-dimensional floating visual effect is presented in the aerosol generating device 10, further solving the problem of monotonous display effect. The light-transmitting member 62 can also be specifically arranged as five or six light-transmitting plates 621 that are sequentially connected, which can be adjusted according to actual design needs, for example, corresponding to the shape of the shell assembly 1 of the aerosol generating device 10, and can present a three-dimensional floating visual effect to solve the problem of monotonous display effect of the aerosol generating device 10.

[0048] In another embodiment, the light-transmitting piece 62 comprises at least one fan-shaped light-transmitting plate (not shown in the figure) which forms a hollow cone. Unlike the hollow pyramid structure, the light-transmitting piece 62 of the hollow cone structure has a unique effect on light propagation and image presentation. The light-emitting piece 61 is arranged on at least one of the top and bottom of the hollow cone. After the light is emitted from the light-emitting piece 61, it is transmitted and refracted by the fan-shaped light-transmitting plate. Due to the shape of the fan-shaped light-transmitting plate, the light propagates at a specific angle and direction, making the formed 3D image have a stereoscopic and surround effect, which is suitable for some aerosol-generating devices 10 with special requirements for visual effects, further enriches the application scenarios, and effectively improves the display effect.

[0049] Please refer to Figures 5 to 11 In one embodiment, the light-emitting piece 61 has a holographic image area 611 corresponding to each light-transmitting plate 621. The number of holographic image areas 611 is the same as the number of light-transmitting plates 621. Each holographic image area 611 forms a preset 3D image or dynamic picture and is transmitted to the corresponding light-transmitting plate 621, so that part of the light of the preset 3D image or dynamic picture is transmitted through the corresponding light-transmitting plate 621 to form a first image, and another part of the light is refracted through the corresponding light-transmitting plate 621 to form a second image. This design makes the light source corresponding to each light-transmitting plate 621 have pertinence and independence, and can more accurately control the generation and superposition effect of the image. For example, when a plurality of light-transmitting plates 621 form a hollow pyramid or a hollow cone structure, the light emitted by different holographic image areas 611 can be more accurately superimposed in space after being processed by the respective corresponding light-transmitting plates 621, forming a more delicate 3D suspended display visual effect, and improving the visual display quality of the aerosol-generating device 10.

[0050] Further, the light-emitting piece 61 is arranged as one of a thin-film transistor (TFT) screen, a silicon-based liquid crystal screen, and an organic light-emitting diode screen. These screen types have their own advantages. The thin-film transistor screen has the characteristics of high resolution, high brightness, and fast response, can clearly generate images, and provides a high-quality light source basis for 3D imaging; the silicon-based liquid crystal screen performs well in optical performance and can accurately control the emission and modulation of light, which helps to achieve more accurate 3D image generation; the organic light-emitting diode screen has the advantages of self-luminous, high contrast, and wide viewing angle, and can make the generated image more colorful and have stronger layering. Selecting these screen types as the light-emitting piece 61 can flexibly adjust the light-emitting performance of the 3D imaging assembly 6 according to different needs and design goals of the aerosol-generating device 10, further improve the visual display effect, and solve the problem of monotonous display effect of the aerosol-generating device 10.

[0051] Please continue to refer to Figures 1 to 4A second embodiment of this application provides an aerosol generating device 10, including the aforementioned 3D imaging component 6 and a housing component 1 with a first receiving cavity (not shown); the first receiving cavity is used to house the 3D imaging component 6. The housing component 1 also has a light-transmitting area (not shown), and the light-transmitting area corresponds to the 3D imaging component 6, so that the 3D imaging component 6 can be reasonably installed inside the aerosol generating device 10, and the generated 3D image effect can be clearly displayed to the outside through the light-transmitting area of ​​the housing component 1. When the 3D imaging component 6 generates a three-dimensional floating visual effect image inside, light can be transmitted to the outside through the light-transmitting area for the user to view, thereby improving the overall visual appeal of the aerosol generating device 10 and solving the problem of the monotonous display effect of the aerosol generating device 10.

[0052] Please continue to refer to the following: Figures 1 to 4 Furthermore, the housing assembly 1 includes a first housing 12 and a second housing 11. The first housing 12 has a first receiving cavity, and a light-transmitting area is located on the first housing 12. The second housing 11 is detachably connected to the first housing 12 and is used to house the atomizing device 2 of the aerosol generating device 10. This detachable structural design facilitates the assembly and maintenance of the aerosol generating device 10. When the atomizing device 2 needs to be replaced or repaired, the second housing 11 can be directly disassembled for operation. Furthermore, placing the 3D imaging component 6 and the atomizing device 2 in different housing parts helps to rationally arrange the internal space of the device and avoid mutual interference. Simultaneously, the light-transmitting area on the first housing 12 ensures that the display effect of the 3D imaging component 6 is not affected, further improving the practicality and visual effect of the aerosol generating device 10.

[0053] Please continue to refer to the following: Figures 1 to 4 In one embodiment, the aerosol generating device 10 further includes a control circuit 4, which is electrically connected to the light-emitting element 61 and is used to adjust the image generated by the light-emitting element 61. Through the control circuit 4, users can flexibly adjust the image content, brightness, color, and other parameters generated by the 3D imaging component 6 according to their preferences or actual usage scenarios, increasing the device's fun and personalization. The light-emitting element 61 is fitted to the underside of the control circuit 4, minimizing installation space. The control circuit 4 also includes control buttons or a switching action module for switching projection content or adjusting display effects. The control buttons can be directly mounted on the surface of the housing component 1, allowing switching of projection content or adjustment of display effects; alternatively, the switching action module can be a sensor module, enabling switching actions via touch, thus achieving the purpose of switching projection content or adjusting display effects through the control buttons.

[0054] In addition, the aerosol-generating device 10 further comprises a battery 3 and a conductive needle (not shown in the figure), the battery 3 is accommodated in the first accommodating cavity, and the battery 3 is electrically connected to the atomization device 2 through the conductive needle to provide stable power support for the atomization device 2, so as to ensure that the aerosol-generating device 10 can work normally, realize the cooperative operation of the display function and the atomization function, and further improve the user experience. The light-transmitting piece 62 covers the periphery of the battery 3, so that the structure is more compact, and the installation space can be reduced as much as possible, so that the overall volume of the aerosol-generating device 10 can be made smaller

[0055] The aerosol-generating device 10 is further provided with a suction nozzle 5, and the suction nozzle 5 is installed on the second shell 11. The atomization device 2 of the aerosol-generating device 10 comprises a liquid cup 21 installed in the second shell 11, a liquid storage piece 22 arranged in the liquid cup 21, and an atomization core 23 penetrating through the liquid storage piece 22 and heating and atomizing the aerosol-generating substrate in the liquid storage piece 22. The pin 231 of the atomization core 23 is connected with the control circuit 4, the battery 3 provides electric energy, and the control circuit 4 is used for adjusting the working of the atomization core 23, so as to realize the heating and atomization of the aerosol-generating substrate to form an aerosol. The aerosol can be discharged from the suction nozzle 5 with a suction action to flow into the oral cavity to achieve the purpose of smoking.

[0056] Please refer to Figure 2 、 Figure 3 、 Figure 4 、 Figure 6 、 Figure 7 and Figure 12 In another embodiment, the light-transmitting piece 62 is provided with a positioning part 63 extending downward, and the positioning part 63 is positioned and installed in the first accommodating cavity. This positioning design makes the installation of the light-transmitting piece 62 in the first accommodating cavity more stable, avoids the position deviation of the light-transmitting piece 62 due to shaking or vibration during the use of the aerosol-generating device 10, and thus affects the 3D imaging effect. Through accurate positioning and installation, the relative positions of the light-transmitting piece 62, the light-emitting piece 61 and the shell assembly 1 can be kept stable, it is ensured that the light can accurately pass through the transmission and refraction of the light-transmitting piece 62, a stable and clear 3D suspended display visual effect is formed, and the overall performance and display quality of the aerosol-generating device 10 are further improved. The outer surface of the positioning part 63 is attached and installed with the inner wall of the first shell 12, and the positioning groove 631 of the positioning part 63 is clamped and positioned with the clamping convex 121 in the first shell 12, so as to ensure that the light-transmitting piece 62 is stably installed in the first shell 12.

[0057] Please continue to refer to Figure 1 and Figure 2Further, the outer surface of the second shell 11 is provided with a plurality of detachable and replaceable decorative sheets 13, and the decorative sheets 13 are provided with decorative patterns 131. The decorative sheets 13 can improve the decorative effect, and further improve the interestingness of the aerosol generating device 10. In addition, since the decorative sheets 13 can be detached and replaced relative to the second shell 11, the user can replace the decorative sheets 13 that he likes, which can improve the convenience of use. The decorative sheets 13 and the second shell 11 can be assembled by magnetic attraction, or can be assembled by buckling. Of course, the decorative sheets 13 and the second shell 11 can also be assembled by threaded connection.

[0058] The application provides a 3D imaging assembly and an aerosol generating device thereof. The 3D imaging assembly can generate a three-dimensional image in the aerosol generating device. Light emitted by a light-emitting element in the 3D imaging assembly is incident on a light-transmitting plate at an angle, and the light is transmitted and refracted by the light-transmitting plate to present a 3D floating display visual effect, thereby improving visual appeal and solving the problem of monotonous display effect in the aerosol generating device.

[0059] Of course, the above only describes specific embodiments of the application and is not intended to limit the scope of the application. Any equivalent changes or modifications made to the structure, features and principles described in the patent scope of the application should be included in the patent scope of the application.

Claims

1. A 3D imaging assembly for use in an aerosol-generating device to enable the generation of 3D images, the 3D imaging assembly comprising: include: A light-emitting element that emits light in a preset direction and is used to generate an image; A light-transmitting element, the light-transmitting element including at least one light-transmitting plate, the light-transmitting plate being arranged at an angle to the preset direction; In this process, a portion of the light emitted by the light-emitting element passes through the light-transmitting plate to form a first image, while another portion of the light emitted by the light-emitting element is refracted by the light-transmitting plate to form a second image.

2. The 3D imaging assembly of claim 1, wherein, The light-transmitting element includes multiple light-transmitting plates, which are sequentially connected to form a hollow pyramid; the light-emitting element is disposed on at least one of the top and bottom of the hollow pyramid.

3. The 3D imaging assembly of claim 2, wherein, The light-transmitting component includes four light-transmitting plates, which are connected in sequence to form a hollow quadrangular pyramid.

4. The 3D imaging assembly of claim 1, wherein, The light-transmitting element includes at least one fan-shaped light-transmitting plate, and the at least one fan-shaped light-transmitting plate is arranged to form a hollow cone; the light-emitting element is disposed on at least one of the top and bottom of the hollow cone.

5. The 3D imaging assembly of any of claims 2-4, wherein, The light-emitting element has holographic image areas that correspond one-to-one with the light-transmitting plates, and the number of holographic image areas is the same as the number of light-transmitting plates; part of the light emitted from the holographic image area passes through the corresponding light-transmitting plate and is transmitted to form the first image, and another part of the light emitted from the holographic image area passes through the corresponding light-transmitting plate and is refracted to form the second image.

6. The 3D imaging assembly of claim 5, wherein, The light-emitting element is configured as one of the following: a thin-film transistor screen, a silicon-based liquid crystal screen, or an organic light-emitting diode screen.

7. An aerosol-generating device comprising: include: The 3D imaging component according to any one of claims 1-6; A housing assembly having a first receiving cavity for receiving the 3D imaging component; The housing assembly also has a light-transmitting area, which corresponds to the 3D imaging component.

8. The aerosol-generating device of claim 7, wherein, The housing assembly includes: A first housing, the first housing having the first receiving cavity, the light-transmitting area being located on the first housing; and The second housing is detachably connected to the first housing; the second housing is used to house the atomizing device of the aerosol generating device.

9. The aerosol-generating device of claim 8, wherein, The aerosol generating device further includes: A control circuit, electrically connected to the light-emitting element, is used to adjust the image generated by the light-emitting element; and / or, A battery and a conductive needle; the battery is housed in the first receiving cavity and electrically connected to the atomizing device via the conductive needle. 10.The aerosol-generating device of claim 8, wherein, The light-transmitting element is provided with a downwardly extending positioning part, which is positioned and installed in the first receiving cavity.

Citation Information

Patent Citations

  • Electronic cigarette display screen

    CN221011980U

  • Nixie tube integrated with display driver and specially used for electronic cigarette

    CN221101669U