Display assembly and atomization device

CN224722733UActive Publication Date: 2026-09-08ZHUHAI QISI INTELLIGENT MFG CO LTD
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Patent Information

Application Number
CN202521714810.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-12
Publication Date
2026-09-08
Estimated Expiration
2035-08-12

AI Technical Summary

Technical Problem

[0003]本申请实施例的目的在于提供一种显示组件及雾化装置,旨在解决相关技术中的显示组件易出现亮度不均的技术问题

Benefits of technology

[0018] The beneficial effects of the display component provided in this application are as follows: In this application, the light emitter emits light towards the light-incident side adjacent to the display surface. After the light enters from the light-incident side of the first display element, it is uniformly diffused or dispersed across the entire display surface due to reflection or refraction within the first display element. By optimizing the incident direction and transmission path of the light, this application effectively avoids the problem of uneven brightness on the display surface caused by the light emitter directly illuminating the surface of the first display element opposite to the display surface, making it easier for the display surface to achieve uniform light reception and improving the uniformity of the display surface brightness.

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Abstract

This application relates to the field of aerosol generation devices, and provides a display component and atomizing device. The display component includes: a first display element having an adjacent display surface and a light-incident side surface; and a second display element having a light-emitting element for emitting light towards the light-incident side surface. In this application, the light-emitting element emits light towards the light-incident side surface adjacent to the display surface. After entering from the light-incident side surface of the first display element, the light is reflected or refracted internally by the first display element, and then uniformly diffused or dispersed across the entire display surface. By optimizing the incident direction and transmission path of the light, this application effectively avoids the problem of uneven brightness on the display surface caused by the light-emitting element directly irradiating the surface opposite to the display surface of the first display element, making it easier for the display surface to achieve uniform light reception and improving the uniformity of the display surface brightness.
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Description

Technical Field

[0001] This application belongs to the technical field of aerosol generation devices, and more specifically, relates to a display component and an atomizing device. Background Technology

[0002] In related technologies, atomizing devices include an atomizing body and a display component. The display component is mounted on the atomizing body and is used to display information such as atomization status, remaining battery power, and operating mode. However, the display components in these related technologies are prone to uneven brightness when implementing the display function. Utility Model Content

[0003] The purpose of this application is to provide a display component and atomizing device, which aims to solve the technical problem of uneven brightness in display components in related technologies.

[0004] To achieve the above objectives, according to one aspect of this application, a display component is provided, comprising: a first display element having an adjacent display surface and a light-incident side surface; and a second display element having a light-emitting element for emitting light toward the light-incident side surface.

[0005] Optionally, the first display element includes a transparent display body, which has a display pattern structure and has an adjacent display surface and a first light-incident side surface, which is used to receive light emitted by a light-emitting body.

[0006] Optionally, the display pattern structure is a glossy ink layer; and / or, the display pattern structure is disposed on the display surface.

[0007] Optionally, the transparent display body also has a back side disposed opposite to the display surface; the first display element further includes a light-diffusing structure disposed on the back side, the light-diffusing structure having a second light-incident side for receiving light emitted by the light-emitting body, the light-diffusing structure for receiving light emitted by the light-emitting body and emitting uniform light toward the transparent display body.

[0008] Optionally, the light-diffusing structure is a fluorescent sheet or a transparent part with fluorescent powder.

[0009] Optionally, the transparent display body covers the light-diffusing structure.

[0010] Optionally, the second display element further includes a display body for displaying visual information, with a light-emitting element disposed on the display body and electrically connected to the display body.

[0011] Optionally, the display body has a display front, which is covered by a light-emitting element.

[0012] Optionally, the display body also has a display side, which is disposed adjacent to the display front and close to the first display element. The display side is provided with a mounting groove, and the light-emitting element is disposed in the mounting groove.

[0013] Optionally, the mounting groove includes a limiting groove and a mounting groove. The limiting groove is located on the side of the display, and a portion of the structure of the first display element is embedded in the limiting groove. The mounting groove is located at the bottom of the limiting groove, and the light-emitting element is located in the mounting groove.

[0014] Optionally, the display assembly also includes a light filter, which is disposed on the front of the display and covers the front of the display to filter light other than the display light.

[0015] Optionally, the filter element is a semi-transparent element; and / or, the filter element is a decorative element; and / or, the filter element is flush with the display surface.

[0016] According to another aspect of this application, an atomizing device is provided, including an atomizing body and the aforementioned display component, wherein the display component is disposed on the atomizing body and electrically connected to the atomizing body.

[0017] Optionally, the display component is disposed on the atomizing side of the atomizing body; and / or, the atomizing body is provided with a receiving groove, and the display component is embedded in the receiving groove; and / or, the atomizing device further includes an atomizing shell, the atomizing shell including a mounting shell and a transparent shell, the mounting shell being detachably mounted on the atomizing body; the transparent shell being detachably connected to the mounting shell and communicating with each other, the transparent shell and the mounting shell jointly enclosing the atomizing body; the transparent shell covering the display component.

[0018] The beneficial effects of the display component provided in this application are as follows: In this application, the light emitter emits light towards the light-incident side adjacent to the display surface. After the light enters from the light-incident side of the first display element, it is uniformly diffused or dispersed across the entire display surface due to reflection or refraction within the first display element. By optimizing the incident direction and transmission path of the light, this application effectively avoids the problem of uneven brightness on the display surface caused by the light emitter directly illuminating the surface of the first display element opposite to the display surface, making it easier for the display surface to achieve uniform light reception and improving the uniformity of the display surface brightness.

[0019] Meanwhile, since the light emitted by the light-emitting element enters the first display element directionally from the light-incident side, the light transmission path within the first display element is more optimized, reducing unnecessary light loss. Therefore, the display assembly does not need to compensate for insufficient local brightness by increasing the luminous power of the light-emitting element or increasing the number of light-emitting elements; only lower-power light-emitting elements or a smaller number of light-emitting elements are needed to achieve the preset brightness on the display surface. The display assembly of this application not only improves light utilization but also effectively reduces the overall energy consumption of the display assembly. Attached Figure Description

[0020] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0021] Figure 1 This is a schematic diagram of the atomizing device provided in the embodiments of this application; Figure 2 This is a schematic diagram of the structure of the atomizing device provided in the embodiments of this application after the atomizing shell is hidden; Figure 3 This is a side view of the atomizing device provided in the embodiments of this application after the atomizing shell is hidden; Figure 4 for Figure 3 Schematic diagram of the cross section of AA; Figure 5 An exploded view of the display component provided in an embodiment of this application; Figure 6 for Figure 4 Enlarged view of point B in the middle; Figure 7 for Figure 4 Enlarged view of point C in the middle; Figure 8 for Figure 5 Enlarged view of point D in the middle; The details of the reference numerals used in the above figures are as follows: 100. First display element; 110. Transparent display body; 120. Light-diffusing structure; 130. Display surface; 140. Light-incident side surface; 141. First sub-light-incident side surface; 142. Second sub-light-incident side surface; 150. Back surface; 200. Second display component; 210. Light-emitting element; 220. Display body; 221. Display front; 222. Display side; 223. Mounting groove; 2231. Limiting groove; 2232. Mounting slot; 300. Filter components; 400. Atomizer body; 410. Support bracket; 420. Control panel; 430. Atomizer side; 440. Receiving groove; 500, Atomizing shell; 510, Mounting shell; 520, Transparent shell. Detailed Implementation

[0022] To make the technical problems, technical solutions, and beneficial effects to be solved by this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and are not intended to limit the scope of this application.

[0023] It should be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly or indirectly on that other element. When an element is referred to as being "connected to" another element, it can be directly or indirectly connected to that other element. Unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.

[0024] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0025] In the description of this application, unless otherwise stated, " / " indicates that the objects before and after are in an "or" relationship. For example, A / B can mean A or B. "And / or" in this application is merely a description of the relationship between the related objects, indicating that there can be three relationships. For example, A and / or B can mean: A exists alone, A and B exist simultaneously, and B exists alone. A and B can be singular or plural.

[0026] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.

[0027] As described in the background section, in related technologies, atomizing devices include an atomizing body and a display component. The display component is disposed on the atomizing body and is used to display information such as atomization status, remaining battery power, and operating mode. However, the display components in related technologies are prone to uneven brightness when implementing the display function.

[0028] Reference Figures 1 to 6To address the aforementioned problems, according to one aspect of this application, an embodiment of this application provides a display component, which includes a first display element 100 and a second display element 200, wherein the first display element 100 has an adjacent display surface 130 and a light-incident side surface 140; and the second display element 200 has a light-emitting element 210 for emitting light toward the light-incident side surface 140.

[0029] In this embodiment, the display component is used in an atomizing device. It is understood that the display component can also be used in home appliances (such as coffee machines and humidifiers) or medical devices (such as atomizers). The display surface 130 and the light-incident side surface 140 are adjacent, meaning that the display surface 130 and the light-incident side surface 140 share a common edge or ridge, and are spatially perpendicular or at a certain angle to each other; while being opposite means that the two surfaces are distributed in opposite directions facing each other, without a shared edge or ridge in between. The display surface 130 of the first display element 100 refers to the front of the first display element 100, which is used to present display information externally and is a display area that the user can directly observe; the light-incident side surface 140 of the first display element 100 refers to the side surface of the first display element 100, which is used to receive the light emitted by the light-emitting body 210 and guide the light into the interior of the first display element 100, providing a light source for the display surface 130 to emit light. The light-emitting element 210 is an LED lamp bead. The full English name of LED is Light-Emitting Diode. It can be understood that the light-emitting element 210 can also be an OLED lamp bead (the full English name of OLED is Organic Light-Emitting Diode), an electroluminescent sheet, or a laser diode.

[0030] In this application, the light emitter 210 emits light towards the light-incident side 140 adjacent to the display surface 130. After entering from the light-incident side 140 of the first display element 100, the light is uniformly diffused or dispersed throughout the entire display surface 130 due to reflection or refraction within the first display element 100. By optimizing the incident direction and transmission path of the light, this application effectively avoids the problem of uneven brightness of the display surface 130 caused by the light emitter 210 directly illuminating the surface of the first display element 100 opposite to the display surface 130, making it easier for the display surface 130 to achieve uniform light reception and improving the uniformity of the brightness of the display surface 130.

[0031] Meanwhile, since the light emitted by the light-emitting element 210 is directed into the first display element 100 from the light-incident side 140, the light transmission path inside the first display element 100 is more optimized, reducing unnecessary light loss. Therefore, the display assembly does not need to increase the luminous power of the light-emitting element 210 or increase the number of light-emitting elements 210 to compensate for insufficient local brightness; only lower-power light-emitting elements 210 or a smaller number of light-emitting elements 210 are needed to make the display surface 130 reach the preset brightness. The display assembly of this application not only improves light utilization but also effectively reduces the overall energy consumption of the display assembly.

[0032] Reference Figures 3 to 6 In one embodiment, the first display element 100 includes a transparent display body 110, which is provided with a display pattern structure. The transparent display body 110 has a display surface 130 and a first light-incident side surface 141 arranged adjacent to each other. The first light-incident side surface 141 is used to receive light emitted by the light emitter 210.

[0033] In this embodiment, the transparent display body 110 is transparent glass. It is understood that the transparent display body 110 can also be a transparent plastic part, a transparent ceramic part, or a transparent composite part. The display pattern structure can be a light-shielding pattern (such as ink, metal plating), a light-guiding pattern (such as dots, prisms, or grooves), a fluorescent / phosphorescent pattern, or a cutout pattern. Furthermore, the display surface 130 is the front side of the transparent display body 110, and the first light-incident side surface 141 is the side surface of the transparent display body 110 located near the light-emitting element 210.

[0034] On the one hand, the transparent display body 110 itself has good light transmittance. When used in conjunction with the display pattern structure, after light enters from the first light-incident side 141, it can accurately illuminate the display pattern structure through the efficient conduction of the transparent display body 110, so that the display pattern structure forms a clear display pattern, effectively improving the clarity and recognizability of the display pattern.

[0035] On the other hand, the transparent display body 110 absorbs and scatters less light, which can effectively reduce the energy loss of light during the transmission process, allowing more light to be concentrated on illuminating the display pattern structure, and further reducing the power requirement of the light-emitting body 210.

[0036] On the other hand, the transparent display body 110 also serves to support and install the display pattern structure, eliminating the need for additional dedicated support components, reducing the number of parts in the display assembly, and simplifying the structure of the display assembly.

[0037] Furthermore, since the display pattern structure is set on the transparent display body 110, the display component of this application can change the display pattern simply by replacing the transparent display body 110, without needing to change the overall structure of the display component, effectively reducing the cost of changing the display pattern. Additionally, when the light emitter 210 stops emitting light into the transparent display body 110, the transparent display body 110 can exhibit the effect of a transparent screen, maintaining the simplicity of the display component while minimizing the presence of the transparent display body 110 in the non-display state, thus reducing visual interference.

[0038] In one embodiment, the displayed pattern structure is a photochromic ink layer. Photochromic ink (also known as color-changing ink) is a special functional ink whose color or optical properties can be reversibly or irreversibly changed with changes in external conditions (such as light intensity, wavelength, temperature, viewing angle, pressure, etc.). In this embodiment, the photochromic ink layer is a photosensitive ink layer. It can be understood that the photochromic ink layer can also be a thermochromic ink layer or an angle-changing ink layer.

[0039] The color-changing ink layer can change its color or brightness according to changes in light intensity, angle, or temperature, giving the display pattern structure dynamic display capabilities. This not only effectively enhances the richness of information transmission, but also strengthens the visual hierarchy and appearance appeal of the display components.

[0040] Meanwhile, the light-changing ink layer can present unique color-changing or light and shadow effects under light. When combined with the light-transmitting characteristics of the transparent display body 110, it can make the display pattern form a sharp visual contrast under different lighting conditions, effectively enhancing the visual layering and recognizability of the display pattern.

[0041] In addition, the gloss-changing ink layer itself has the characteristic of responding to changes in external conditions, and can achieve dynamic display without the need for additional sensors or circuit control modules, which reduces the number of electronic components in the display assembly and reduces structural complexity and energy consumption.

[0042] Reference Figures 3 to 6 In one embodiment, a display pattern structure is disposed on the display surface 130. In this embodiment, the display pattern structure is disposed on the display surface 130 by screen printing. It is understood that the display pattern structure can also be disposed on the display surface 130 by printing, coating, pasting, etching or engraving processes; the display pattern structure can also be a multi-layer structure and disposed along the thickness direction of the first display element 100.

[0043] As the area directly observed by the user, the display surface 130 has the display pattern structure directly set on it, so that the light transmitted through the transparent display body 110 can directly act on the display pattern structure, greatly reducing the ineffective loss of light in non-display areas and effectively improving the intuitiveness and accuracy of information recognition.

[0044] Meanwhile, as the display surface 130 is an exposed surface, it is easier to process and modify the display pattern structure. This structural design not only improves the flexibility of the display component design, but also eliminates the need to replace the entire transparent display body 110 when changing the display pattern structure, further reducing the replacement cost of the display pattern structure.

[0045] Reference Figures 3 to 6 In one embodiment, the transparent display body 110 further has a back surface 150 disposed opposite to the display surface 130; the first display element 100 further includes a light-diffusing structure 120 disposed on the back surface 150, the light-diffusing structure 120 having a second light-incident side surface 142 for receiving light emitted by the light emitter 210, the light-diffusing structure 120 for receiving light emitted by the light emitter 210 and emitting uniform light toward the transparent display body 110.

[0046] In this embodiment, the light-diffusing structure 120 can be a light-diffusing sheet, a light guide plate, a diffusion film, or a microlens array. The light-diffusing structure 120 is adhered to the back surface 150 with UV-curing adhesive. It is understood that the light-diffusing structure 120 can also be installed on the back surface 150 by mechanical snap-fit, magnetic fixation, or other installation methods, or it can be integrally formed with the transparent display body 110. In addition, the light-incident side surface 140 includes a first sub-light-incident side surface 141 and a second sub-light-incident side surface 142. It is understood that the light-incident side surface 140 may also include a third sub-light-incident side surface 140, a fourth sub-light-incident side surface 140, and other sub-light-incident side surfaces 140.

[0047] After the light emitted by the light source 210 enters the uniform light structure 120 through the second light-incident side 142, the uniform light structure 120 first diffuses and mixes the light before projecting uniform light onto the transparent display body 110. This process works synergistically with the light transmission from the first light-incident side 141 into the transparent display body 110. On the one hand, through the double uniform light effect, it effectively compensates for the local brightness differences that may occur when the light only enters from the first light-incident side 141, further improving the brightness uniformity of the display surface 130. On the other hand, the two sets of light form a complementary dual light-emitting effect within the transparent display body 110. Even if the light from the first light-incident side 141 is weakened due to obstruction or light attenuation, the uniform light provided by the uniform light structure 120 can still ensure the clear presentation of the display pattern structure, reducing the risk of display failure and improving the reliability of the display components.

[0048] In addition, to ensure the consistency of the light incident effect, the first sub-light incident side 141 and the second sub-light incident side 142 are parallel.

[0049] Reference Figures 4 to 6 In one embodiment, the light-diffusing structure 120 is a fluorescent sheet or a transparent piece with phosphor.

[0050] In this embodiment, the transparent part with fluorescent powder is a transparent plastic part doped with fluorescent powder. It can be understood that the transparent part with fluorescent powder can also be a glass part, a transparent ceramic part, or a transparent film with a fluorescent powder coating.

[0051] The light-uniforming structure 120 with fluorescent material not only possesses natural diffusion characteristics, enabling it to homogenize incident light without requiring additional complex microstructures, thus simplifying structural design, but also converts some of the ineffective light emitted by the light-emitting element 210 into effective display light, reducing light waste.

[0052] Reference Figures 3 to 6 In one embodiment, the transparent display body 110 covers the light-diffusing structure 120. In this embodiment, the transparent display body 110 completely covers the light-diffusing structure 120, and the surface area of ​​the transparent display body 110 is equal to the surface area of ​​the light-diffusing structure 120; it can be understood that the surface area of ​​the transparent display body 110 may also be larger than the surface area of ​​the light-diffusing structure 120.

[0053] After the transparent display body 110 covers the light-uniforming structure 120, it not only forms a relatively enclosed light transmission space, reducing the risk of uniform light emitted by the light-uniforming structure 120 scattering or leaking into the external environment, but also ensures that more light is concentrated and transmitted to the display surface 130, further improving light utilization and reducing ineffective energy consumption. At the same time, it also provides physical protection for the light-uniforming structure 120, extending its service life.

[0054] Reference Figures 4 to 8 In one embodiment, the second display 200 further includes a display body 220 for displaying visual information, and a light-emitting element 210 is disposed on the display body 220 and electrically connected to the display body 220.

[0055] In this embodiment, the second display device 200 is a digital screen. It is understood that the second display device 200 may also be an LED screen or an OLED screen.

[0056] The second display element 200 directly presents visual information (such as numbers, text, icons, etc.) through the display body 220, enhancing the richness of information display. At the same time, it provides a light source for the first display element 100 through the light-emitting element 210, enabling the second display element 200 to have both active display and auxiliary light-emitting functions, realizing multi-functional integration, reducing the number of electronic components in the display assembly, simplifying the structural design of the display assembly, and improving the integration degree of the display assembly.

[0057] Reference Figures 4 to 8 In one embodiment, the display body 220 has a display front 221 that covers the light emitter 210.

[0058] In this embodiment, the front display 221 refers to the front of the second display element 200. The front display 221 is used to present visual information to the outside world and is a display area that can be directly observed by the user. The front display 221 completely covers the light-emitting element 210 to block the light-emitting element 210; specifically, the light-emitting element 210 can achieve the effect of being covered by the front display 221 by being disposed on a surface on the display body 220 opposite to the front display 221.

[0059] The front display panel 221, serving as the exposed surface of the second display element 200, forms a physical barrier after covering the light-emitting element 210, reducing the risk of the light-emitting element 210 being directly exposed to the external environment and extending its service life. Simultaneously, the front display panel 221 covering the light-emitting element 210 conceals its physical form, making the outer surface of the second display element 200 smoother and simpler, thus improving the aesthetics of the display assembly.

[0060] Reference Figures 6 to 8 In one embodiment, the display body 220 also has a display side 222, which is disposed adjacent to the display front 221 and close to the first display element 100. The display side 222 is provided with a mounting groove 223, and the light-emitting element 210 is disposed in the mounting groove 223.

[0061] In this embodiment, in order to ensure that the light emitted by the light source 210 can enter the interior of the first display 100 through the light-incident side 140 to the maximum extent, the light-incident side 140 covers the light source 210; specifically, the light-incident side 140 covers most of the structure of the light source 210; it can be understood that the light-incident side 140 may also completely cover the light source 210.

[0062] The display side 222 is adjacent to the display front 221 and close to the first display element 100. At the same time, the light-emitting element 210 is placed in the mounting groove 223 of the display side 222. This structural design allows the light emitted by the light-emitting element 210 to be conducted more directly toward the light-incident side 140 of the first display element 100, shortening the light propagation distance, reducing scattering or attenuation caused by excessively long paths, allowing more light to act efficiently on the first display element 100, and further reducing energy consumption.

[0063] Meanwhile, the light-emitting body 210 is located in the mounting groove 223 on the side of the display 222, and its light mainly illuminates the first display element 100 in a directional manner. This helps to reduce direct interference to the front of the display body 220, ensuring that the visual information displayed by the display body 220 and the display pattern displayed by the first display element 100 do not interfere with each other, thereby improving their respective clarity.

[0064] Furthermore, the mounting groove 223 on the display side 222 provides a space for the light-emitting element 210, eliminating the need for additional mounting positions on the front or back 150 of the display body 220, thus improving the compactness of the display assembly. Additionally, the mounting groove 223 also provides protection for the light-emitting element 210, extending its lifespan.

[0065] In addition, to ensure the brightness and display effect of the first display element 100, the number of light-emitting elements 210 is multiple. In one specific embodiment, the number of light-emitting elements 210 is four, and the four light-emitting elements 210 are arranged at intervals along the width direction of the first display element 100 and are all arranged corresponding to the first display element 100; it can be understood that the number of light-emitting elements 210 may also be two, three or more.

[0066] Reference Figure 6 and Figure 8 In one embodiment, the mounting groove 223 includes a limiting groove 2231 and a mounting groove 2232. The limiting groove 2231 is disposed on the display side 222, and a portion of the structure of the first display component 100 is embedded in the limiting groove 2231. The mounting groove 2232 is disposed at the bottom of the limiting groove 2231, and the light-emitting body 210 is disposed in the mounting groove 2232.

[0067] In this embodiment, the partial structure of the first display element 100 refers to the partial structure after the transparent display body 110 and the light-diffusing structure 120 are combined; it can be understood that the partial structure of the first display element 100 may also refer only to the partial structure of the transparent display body 110 or the partial structure of the light-diffusing structure 120.

[0068] The limiting groove 2231 can form a physical constraint on the first display element 100, ensuring that the first display element 100 and the second display element 200 maintain a preset relative position, and ensuring that the light emitted by the light source 210 can enter the interior of the first display element 100 through the light incident side 140 to the maximum extent.

[0069] Meanwhile, the mounting groove 2232 is set at the bottom of the limiting groove 2231, and the light-emitting body 210 is fixed in the mounting groove 2232, while part of the structure of the first display component 100 is embedded in the limiting groove 2231, which helps to shorten the propagation path of light.

[0070] In addition, in order to facilitate the smooth insertion of some structures of the first display component 100 into the limiting groove 2231, the cross-sectional shape of the structure of the first display component 100 inserted into the limiting groove 2231 is wedge-shaped or isosceles trapezoidal, and the cross-sectional shape of the limiting groove is adapted to the cross-sectional shape of the structure of the first display component 100 inserted into the limiting groove 2231.

[0071] Reference Figures 3 to 7In one embodiment, the display assembly further includes a light filter 300 disposed on the front surface 221 of the display and covering the front surface 221 of the display for filtering light other than display light.

[0072] In this embodiment, the filter element 300 can be a filter sheet or a filter film. The filter element 300 is bonded to the display front surface 221 and the first display element 100 using shadowless adhesive, and is embedded in the mounting groove 223. The filter element 300 completely covers the display front surface 221, and the surface area of ​​the filter element 300 is equal to the surface area of ​​the display front surface 221; it can be understood that the surface area of ​​the filter element 300 can also be larger than the surface area of ​​the display front surface 221.

[0073] The filter 300 not only filters out stray light from the environment and redundant light from when the display unit 220 is not in operation, allowing only display light to pass through, but also reduces problems such as washed-out display images and decreased contrast caused by light interference, thus improving the clarity and recognizability of visual information. At the same time, it can also selectively filter light that is more irritating to the human eye, reducing the glare effect of display light, thereby reducing eye fatigue and improving user comfort.

[0074] In addition, the filter 300 covers the front of the display 221 and can also act as a physical barrier to protect the display body 220 and extend the service life of the display body 220.

[0075] Reference Figures 3 to 7 In one embodiment, the filter element 300 is a semi-transparent element. In this embodiment, the filter element 300 is a semi-transparent sheet; a semi-transparent element refers to a component that allows some light to pass through, but cannot clearly show the details of objects behind it. Its light transmittance is usually between transparent (light transmittance > 85%, objects can be clearly seen) and opaque (light transmittance < 5%, completely blocking light) (generally 30%-70%).

[0076] Transparent components can filter out some stray light without completely blocking it, allowing the display light to be emitted in a soft manner. This characteristic allows visual information to remain clear while presenting a warm visual texture.

[0077] At the same time, the semi-transparent hazy effect can weaken the details of the display body 220 (such as internal circuits and the structure of the light-emitting body 210), highlighting only the visual information to be displayed (such as icon outlines and brightness changes), forming a visual hierarchy with a blurred background and clear information.

[0078] Reference Figures 3 to 7In one embodiment, the filter element 300 is a decorative element. In this embodiment, the decorative element is a semi-transparent sheet with decorative patterns or textures; it is understood that the decorative element may also be a filter, filter film, or light-blocking sheet (i.e., a non-transparent sheet) with decorative patterns or textures.

[0079] The filter element 300, while achieving light filtering, not only improves the aesthetics of the display component, but also enhances the product recognition of the display component.

[0080] Reference Figures 3 to 7 In one embodiment, the filter 300 is flush with the display surface 130. This structural design improves the flatness and aesthetics of the display assembly.

[0081] Reference Figures 1 to 8 According to another aspect of this application, embodiments of this application also provide an atomizing device, including an atomizing body 400 and the aforementioned display component, wherein the display component is disposed in the atomizing body 400 and is electrically connected to the atomizing body 400.

[0082] In this embodiment, the atomizing body 400 is used to convert the aerosol matrix into an aerosol. The display component is fixedly mounted on the bracket 410 of the atomizing body 400 by adhesive bonding. It is understood that the display component can also be fixedly mounted on the bracket 410 of the atomizing body 400 by a plug-in structure, a snap-fit ​​structure, or screws. The display component and the bracket 410 of the atomizing body 400 can also be integrally formed. Furthermore, the second display element 200 in the display component is electrically connected to the control board 420 in the atomizing body 400 via a ribbon cable, thereby electrically connecting the display component to the atomizing body 400.

[0083] The set display components can display the core parameters of the atomizing device in real time. Users can intuitively grasp the atomization progress without relying on experience to judge the device status, realizing the visual management of the atomizing device and improving the ease of use.

[0084] Reference Figures 1 to 4 In one embodiment, the display component is disposed on the atomizing side 430 of the atomizing body 400. It is understood that the display component may also be disposed on the front or bottom surface of the atomizing body 400.

[0085] The display component is positioned on the atomizing side 430 of the atomizing body 400, which not only improves the coordination between operation and observation and optimizes the user experience, but also avoids occupying space in the core area of ​​the atomizing body 400, thus optimizing the structural layout. Furthermore, it reduces the degree of interference to the display component during the atomizing process, improving the ease of use of the display component.

[0086] Reference Figure 7In one embodiment, the atomizing body 400 is provided with a receiving groove 440, and the display component is embedded in the receiving groove 440.

[0087] In this embodiment, a receiving groove 440 is provided on the atomizing side 430, and the display component is completely embedded in the receiving groove 440. The receiving groove 440 not only helps to reduce the overall size of the atomizing device, but also protects the display component, thereby extending the service life of the display component.

[0088] Reference Figure 1 and Figure 2 In one embodiment, the atomizing device further includes an atomizing housing 500, which includes a mounting housing 510 and a transparent housing 520. The mounting housing 510 is detachably mounted on the atomizing body 400. The transparent housing 520 is detachably connected to the mounting housing 510 and communicates with it. The mounting housing 510 and the transparent housing 520 together enclose the atomizing body 400. The transparent housing 520 covers the display component.

[0089] In this embodiment, the mounting shell 510 is a light-shielding shell. It is understood that the mounting shell 510 can also be a transparent shell 520 or a semi-transparent shell 520, depending on actual needs, and no specific limitation is made here. The mounting shell 510 is detachably mounted on the atomizing body 400 via a plug-in structure. It is understood that the mounting shell 510 can also be detachably mounted on the atomizing body 400 via a snap-fit ​​structure, a magnetic structure, or screws. The transparent shell 520 is detachably connected to the mounting shell 510 via a plug-in structure. It is understood that the transparent shell 520 can also be detachably connected to the mounting shell 510 via a snap-fit ​​structure, a magnetic structure, or screws. The surface of the transparent shell 520 near the mounting shell 510 and the surface of the mounting shell 510 near the transparent shell 520 are kept in close contact, so that the space enclosed by the interconnected transparent shell 520 and the mounting shell 510 is a sealed space, thereby effectively protecting the atomizing body 400.

[0090] The transparent shell 520 covers the display component, providing physical protection while ensuring that the transparency does not obstruct the user's view of the displayed information, thus fulfilling the dual requirements of protection and visibility. Simultaneously, the mounting shell 510 and the transparent shell 520 together enclose the atomizing body 400, providing overall protection and enhancing the atomizing device's resistance to damage during daily use or transport.

[0091] In addition, the mounting shell 510 and the atomizing body 400, as well as the transparent shell 520 and the mounting shell 510, are detachably connected, allowing each component to be disassembled and installed independently. If the display component malfunctions, the transparent shell 520 can be removed separately to repair or replace the display component without disassembling the entire atomizing device. If the atomizing shell 500 needs to be replaced due to wear or aging, the mounting shell 510 or the transparent shell 520 can also be replaced separately, reducing maintenance costs.

[0092] In summary, implementing the display component and atomizing device provided in this embodiment has at least the following beneficial technical effects: In this application, the light emitter 210 emits light towards the light-incident side 140 adjacent to the display surface 130. After the light enters from the light-incident side 140 of the first display element 100, it is uniformly diffused or dispersed throughout the entire display surface 130 due to internal reflection or refraction of the first display element 100. By optimizing the incident direction and transmission path of the light, this application effectively avoids the problem of uneven brightness of the display surface 130 caused by the light emitter 210 directly irradiating the surface of the first display element 100 opposite to the display surface 130, making it easier for the display surface 130 to achieve uniform light reception and improving the uniformity of the brightness of the display surface 130.

[0093] Meanwhile, since the light emitted by the light-emitting element 210 is directed into the first display element 100 from the light-incident side 140, the light transmission path inside the first display element 100 is more optimized, reducing unnecessary light loss. Therefore, the display assembly does not need to increase the luminous power of the light-emitting element 210 or increase the number of light-emitting elements 210 to compensate for insufficient local brightness; only lower-power light-emitting elements 210 or a smaller number of light-emitting elements 210 are needed to make the display surface 130 reach the preset brightness. The display assembly of this application not only improves light utilization but also effectively reduces the overall energy consumption of the display assembly.

[0094] The above are merely preferred embodiments of this application and are not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A display component, characterized in that, include: The first display element has a display surface and a light-incident side surface arranged adjacent to each other; The second display device has a light-emitting element, which emits light toward the light-incident side; The first display element includes a transparent display body, which is provided with a display pattern structure. The transparent display body has a display surface and a first light-incident side surface arranged adjacent to each other. The first light-incident side surface is used to receive light emitted by the light-emitting body.

2. The display component according to claim 1, characterized in that, The display pattern structure is a light-changing ink layer; and / or, The display pattern structure is disposed on the display surface.

3. The display component according to claim 1, characterized in that, The transparent display body also has a back side disposed opposite to the display surface; The first display device further includes a light-diffusing structure disposed on the back side. The light-diffusing structure has a second light-incident side for receiving light emitted by the light-emitting body. The light-diffusing structure is used to receive light emitted by the light-emitting body and emit uniform light toward the transparent display body.

4. The display component according to claim 3, characterized in that, The light-diffusing structure is a fluorescent sheet or a transparent component containing fluorescent powder.

5. The display component according to claim 3, characterized in that, The transparent display body covers the light-uniforming structure.

6. The display component according to any one of claims 1 to 5, characterized in that, The second display device further includes a display body for displaying visual information, wherein the light-emitting element is disposed on the display body and is electrically connected to the display body.

7. The display component according to claim 6, characterized in that, The display body has a front display panel, which covers the light-emitting element.

8. The display component according to claim 7, characterized in that, The display body also has a display side, which is adjacent to the display front and close to the first display component. The display side has a mounting groove, and the light-emitting element is disposed in the mounting groove.

9. The display component according to claim 8, characterized in that, The mounting groove includes a limiting groove and a mounting groove. The limiting groove is disposed on the side of the display, and a portion of the structure of the first display component is embedded in the limiting groove. The mounting groove is disposed at the bottom of the limiting groove, and the light-emitting element is disposed in the mounting groove.

10. The display component according to claim 7, characterized in that, The display component further includes a light filter, which is disposed on the front side of the display and covers the front side of the display to filter light other than the display light.

11. The display component according to claim 10, characterized in that, The filter element is a semi-transparent element; and / or, The filter element is a decorative element; and / or, The filter element is flush with the display surface.

12. An atomizing device, characterized in that, The device includes an atomizing body and a display component as described in any one of claims 1 to 11, wherein the display component is disposed on the atomizing body and is electrically connected to the atomizing body.

13. The atomizing device according to claim 12, characterized in that, The display component is disposed on the atomizing side of the atomizing body; and / or, The atomizing body is provided with a receiving groove, and the display component is embedded in the receiving groove; and / or The atomizing device further includes an atomizing housing, which includes a mounting shell and a transparent shell, and the mounting shell is detachably mounted on the atomizing body; The transparent shell and the mounting shell are detachably connected and communicate with each other. The transparent shell and the mounting shell together enclose the atomizing body; the transparent shell covers the display component.