Display device

By integrating the ambient light component into the bezel of the display device and using light-blocking components to control light propagation, the problem of ambient light being blocked is solved, achieving uniform light illumination and enhancing the user's immersive experience.

CN223842540UActive Publication Date: 2026-01-27SHENZHEN TAILIWEI INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202423317446.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-30
Publication Date
2026-01-27
Estimated Expiration
2034-12-30

AI Technical Summary

Technical Problem

In existing technologies, ambient light is easily blocked by the television, resulting in significant light energy loss and affecting the user's visual experience.

Method used

The ambient light component is integrated into the bezel component of the display device. The bezel component emits light selectively, and the light propagation direction is controlled by the light shielding component to ensure that the light shines evenly into the surrounding environment.

Benefits of technology

It improves the lighting effect of ambient light, enhances the user's visual experience and immersion, reduces light energy waste, simplifies installation complexity, and improves aesthetics.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model provides display equipment. The display equipment comprises a display component, the frame assembly is at least arranged on the peripheral side of the display assembly in a surrounding mode, and the frame assembly and the display assembly jointly form a containing cavity used for containing the atmosphere light assembly; the atmosphere light assembly is located in the containing cavity; the atmosphere light assembly is configured to selectively emit light to the position, away from the display assembly, of the frame assembly. By means of the arrangement, the atmosphere light assembly can emit light towards the position away from the display assembly, light can be effectively prevented from being blocked by the display device, and therefore the lighting effect of atmosphere light is enhanced, the atmosphere light can be evenly irradiated into the surrounding environment, and the visual experience of a user is improved. Through integration with the display equipment, the atmosphere light assembly can directly obtain display information of the display equipment, so that accurate light effect synchronization is realized, and the immersion of a user is enhanced. On the basis, the atmosphere light assembly arranged on the frame assembly can achieve a three-dimensional display effect, and the watching experience of a user can be improved.
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Description

Technical Field

[0001] This application relates to the field of displays, and more particularly to a display device. Background Technology

[0002] A television is a device that can play video images. When a television is playing music, it can only play audio and video and cannot create a good lighting atmosphere based on the music playing on the television.

[0003] In related technologies, ambient lights are attached to the back of the TV casing with adhesive, or placed on the left and right sides of the TV.

[0004] However, some of the light emitted by the ambient light is blocked by the television itself, resulting in significant loss of light energy. Utility Model Content

[0005] This application provides a display device to solve the technical problem in the related art where part of the light emitted by ambient light is blocked by the television itself, resulting in a serious loss of light energy in the ambient light.

[0006] This application provides a display device, including: a display component having a display surface and a back surface opposite to the display surface, the display surface being used to display information;

[0007] A bezel assembly is disposed at least around the periphery of the display assembly, and the bezel assembly and the display assembly together form a receiving cavity for accommodating the ambient light assembly;

[0008] The ambient light component is located within the accommodating cavity;

[0009] The ambient light component is configured to selectively emit light toward the bezel component at a position away from the display component.

[0010] With the above settings, since the ambient light component is housed within the bezel component and can emit light to a position away from the display component, the problem of light being blocked by the display device can be effectively avoided, thereby enhancing the light effect of the ambient light and enabling it to illuminate the surrounding environment evenly, thus improving the user's visual experience.

[0011] By integrating ambient lighting components into the bezel of the display device, a unified design is achieved, reducing the need for additional equipment, eliminating the need for extra installation space, improving aesthetics, and reducing the complexity of installation and use.

[0012] By integrating with display devices, ambient light components can directly acquire display information, achieving precise lighting synchronization and enhancing user immersion. Furthermore, ambient light components positioned on the bezel can provide a more three-dimensional display effect, further improving the user's viewing experience.

[0013] In addition, by setting up selectively emitting ambient light components, the ambient light components can provide matching ambient light according to user needs, which can avoid wasting light energy of the ambient light components, thereby improving the luminous efficiency of the ambient light components, and thus improving the luminous efficiency of the display device, which is conducive to improving the user's viewing experience.

[0014] In the aforementioned display device, optionally, the bezel assembly is a light-transmitting structure; the display device also includes a light-shielding component.

[0015] The light-shielding member is located on at least one of the frame assembly and the ambient light assembly, and the light-shielding member is used to block part of the light emitted by the ambient light assembly.

[0016] With the above setup, the light emitted by the ambient light component can be propagated to the outside of the display component through the bezel component. The bezel component enhances the diffusion effect of the ambient light, allowing it to evenly illuminate the surrounding environment and improving the overall visual effect and atmosphere. By blocking part of the light, the light shield prevents excessive light diffusion or entry into unwanted areas. This not only helps to concentrate the light effect and enhance the atmosphere of specific areas, but also avoids light interference with the user's viewing experience, improving overall visual comfort.

[0017] In the aforementioned display device, optionally, the display surface and the back surface are spaced apart, the display component further includes a side surface located between the display surface and the back surface, and the ambient light component is located between the frame component and the side surface;

[0018] The light-shielding element is located between the ambient light assembly and the side surface, and is located on the side of the ambient light assembly facing the back surface along the display surface.

[0019] With the above configuration, the ambient light assembly can effectively utilize the side space while maintaining integration with the bezel assembly. The light shield prevents the light emitted by the ambient light assembly from shining towards the back of the display device, thus preventing the light beam from illuminating the back of the display device. This effectively avoids the problem of light being blocked by the display device, thereby enhancing the light effect of the ambient light and allowing it to evenly illuminate the surrounding environment, improving the user's visual experience.

[0020] In the aforementioned display device, optionally, when the light-shielding member is located on the frame assembly,

[0021] The light-shielding element covers the side surface of the frame assembly near the ambient light component;

[0022] or,

[0023] The light-shielding element covers the side surface of the frame assembly away from the ambient light component.

[0024] By covering the side of the bezel assembly closest to the ambient light assembly, the light shield effectively controls the initial direction of light propagation. This design prevents light from escaping directly from the ambient light assembly, thereby reducing unnecessary light diffusion and glare. This not only improves the utilization rate of light efficiency but also ensures that light illuminates the desired area in a more ideal manner, enhancing the user's viewing experience.

[0025] or,

[0026] By covering the side of the bezel assembly away from the ambient light assembly, the light shield effectively controls the final direction of light propagation. This arrangement prevents light from excessively diffusing from the outside of the bezel assembly into unwanted areas, thereby reducing glare and light pollution. This not only improves the utilization rate of light efficiency but also ensures that light illuminates the desired area in a more ideal manner, enhancing the user's viewing experience.

[0027] In the aforementioned display device, optionally, when the light-shielding member is located on the ambient light assembly,

[0028] The light-shielding element covers the surface of the ambient light assembly on one side of the display surface facing the back side.

[0029] By covering the ambient light assembly along the side of the display facing the back, the light shield effectively limits the diffusion of light in unwanted directions. This arrangement helps to focus the direction of light propagation, directing it primarily towards the user, thereby reducing light waste and unnecessary light pollution. This not only improves the utilization rate of light efficiency but also ensures that light illuminates the desired area in a more ideal manner, enhancing the user's viewing experience.

[0030] In the aforementioned display device, optionally, the ambient light assembly includes a top light-emitting element and two side light-emitting elements connected to opposite ends of the top light-emitting element;

[0031] The top light-emitting element and the two side light-emitting elements are all electrically connected to the display component.

[0032] By electrically connecting the light-emitting element to the display component, the ambient light component can directly obtain power and signals from the display component. This connection method ensures that the light-emitting element changes synchronously with the displayed content, achieving dynamic lighting effects. This synchronization method enhances visual effects, strengthens user immersion and interactive experience, simplifies wiring, and improves the overall reliability and maintainability of the display device.

[0033] In the aforementioned display device, optionally, the top light-emitting element and the two side light-emitting elements are integrated into one piece.

[0034] The integrated design ensures a smoother and more natural transition of light between the top and sides, avoiding uneven lighting and contributing to a consistent lighting effect, thus enhancing the user's visual experience. Furthermore, the integrated design reduces electrical and mechanical contact between light-emitting components, lowering the risk of malfunction and improving the reliability and durability of the display device.

[0035] In the aforementioned display device, optionally, an adhesive is provided at the end of the side light-emitting element away from the top light-emitting element, and the ambient light component is connected to the frame component through the adhesive.

[0036] By using adhesive, additional mechanical fasteners (such as screws or clamps) can be avoided, simplifying the ambient lighting assembly. Furthermore, the adhesive's elasticity helps absorb vibration and shock to some extent, protecting the ambient lighting assembly. The use of adhesive also eliminates the need for drilling holes or other potentially damaging installation methods in the bezel assembly, maintaining its integrity.

[0037] In the aforementioned display device, optionally, the ambient light assembly includes two electrical connectors, which are respectively connected to opposite sides of the top light-emitting element to connect with the side light-emitting element.

[0038] With the above configuration, two electrical connectors are respectively connected to opposite sides of the top light-emitting element to connect with the side light-emitting element. This connection method ensures electrical connection between the top and side light-emitting elements, helps to synchronize the light effects of the top and side light-emitting elements, and enhances the overall light effect performance.

[0039] In the aforementioned display device, optionally, the electrical connector is located at the corner of the bezel assembly.

[0040] The corner is where the top and side light-emitting components meet. Placing electrical connectors at this location simplifies wiring, reduces cable length and complexity, lowers material costs, and improves the reliability of electrical connections. Corners typically experience concentrated stress; placing electrical connectors at corners helps reinforce the frame assembly structure, enhancing overall mechanical strength and stability.

[0041] In the aforementioned display device, optionally, the bezel assembly includes a top frame and two side frames connected to opposite ends of the top frame.

[0042] The top light-emitting element is located between the top frame and the display component;

[0043] The two side frames correspond to the two side light-emitting elements, and the side light-emitting elements are located between the display component and the corresponding side frames.

[0044] With the above configuration, the top light-emitting component can effectively emit light forward and upward, achieving a uniform light distribution and enhancing the utilization rate of light efficiency and the user's visual experience. The side light-emitting component can effectively emit light forward and to the side, achieving a uniform light distribution to enhance the utilization rate of light efficiency and the user's visual experience.

[0045] In the aforementioned display device, optionally, the top frame and the two side frames are a single piece.

[0046] Through the above-described design, the integrated structure enhances the mechanical strength and stability of the frame assembly, preventing loosening or misalignment and thus increasing its durability. The integrated frame assembly simplifies installation, reducing time and complexity, and also lowers production and assembly costs.

[0047] Optionally, in the aforementioned display device, the ambient light component may include a flexible light-emitting element.

[0048] Flexible light-emitting components can be bent and adjusted, making them simpler and faster to install compared to rigid components during the ambient lighting assembly process. This reduces the precision requirements for installation and thus lowers the installation difficulty. Furthermore, the flexibility of flexible light-emitting components allows the ambient lighting assembly to better resist mechanical stress and vibration, absorbing impacts and preventing damage when subjected to external forces, thereby improving the durability and lifespan of the ambient lighting assembly.

[0049] In the aforementioned display device, optionally, the display component includes a control unit and a plurality of light-emitting units located on the display surface, wherein the control unit is electrically connected to the plurality of light-emitting units;

[0050] The control unit is electrically connected to the ambient light assembly, and the control unit is configured to control the ambient light assembly to cooperate with the light-emitting unit located near the ambient light assembly.

[0051] Through electrical connection with the ambient lighting components, the controller can synchronously control the displayed content and ambient lighting effects. This synchronization enhances the user's visual experience, allowing the ambient lighting to dynamically respond to changes in the displayed content and providing a more immersive viewing experience.

[0052] The control method described above ensures that the ambient light effect of the ambient light component matches the displayed content in the edge area of ​​the display device. This reduces the visual difference between the display component and its surroundings, enhancing the overall visual effect. For example, when the edge of the display component displays a certain color, the ambient light component can emit a similar color, thereby extending the visual content beyond the display component and improving immersion. Attached Figure Description

[0053] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0054] Figure 1 This is a schematic diagram of a first structure of a display device provided in an embodiment of this application;

[0055] Figure 2 This is an exploded view of the display device provided in an embodiment of this application;

[0056] Figure 3 for Figure 1 A schematic diagram of the cross-sectional structure at point AA';

[0057] Figure 4 for Figure 3 A schematic diagram of the first enlarged structure at point a;

[0058] Figure 5 for Figure 3 A schematic diagram of the second enlarged structure at point a;

[0059] Figure 6 for Figure 3 A schematic diagram of the third enlarged structure at point a;

[0060] Figure 7 This is an exploded view of the ambient light component of the display device provided in an embodiment of this application.

[0061] Explanation of reference numerals in the attached figures:

[0062] 10. Display device; 11. Receiving cavity;

[0063] 100. Display component; 110. Display surface; 120. Rear side; 130. Side;

[0064] 200. Border component; 210. Top frame; 220. Side frame; 230. Back frame;

[0065] 300. Ambient lighting component; 310. Top light source; 320. Side light source; 330. Electrical connector; 340. Circuit board;

[0066] 400. Light-shielding components.

[0067] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation

[0068] In related technologies, there are many types of ambient lighting, such as strip ambient lights and vertical ambient lights. Strip ambient lights are generally glued to the edge of the TV casing, and users manually turn them on and control their brightness and color via remote control. Vertical ambient lights are generally installed upright on the left and right sides of the TV, and their brightness and color are also controlled via remote control.

[0069] However, the ambient light set on the back side only illuminates the wall behind the TV, and the light is blocked by the TV, resulting in a poor lighting effect for the user while watching TV.

[0070] While the ambient lights positioned on the left and right sides of the television provide light that is not blocked by the television, there is no interaction between the ambient lights and the television. Although some ambient lights can achieve sound and light synchronization by receiving sound signals, the emitted light is not related to the image displayed on the television. Therefore, the ambient lights may affect the user's viewing experience while watching television.

[0071] In view of this, embodiments of this application provide a display device, including a display component, a bezel component, and an ambient light component. The display component has a display surface and a back surface opposite to the display surface, and the display surface is used to display information. The bezel component is at least disposed around the periphery of the display component, and the bezel component and the display component together form a receiving cavity for accommodating the ambient light component. The ambient light component is located within the receiving cavity. The ambient light component is configured to selectively emit light toward the bezel component away from the display component.

[0072] With the above settings, since the ambient light component is housed within the bezel component and can emit light to a position away from the display component, the problem of light being blocked by the display device can be effectively avoided, thereby enhancing the light effect of the ambient light and enabling it to illuminate the surrounding environment evenly, thus improving the user's visual experience.

[0073] By integrating ambient lighting components into the bezel of the display device, a unified design is achieved, reducing the need for additional equipment, eliminating the need for extra installation space, improving aesthetics, and reducing the complexity of installation and use.

[0074] By integrating with display devices, ambient light components can directly acquire display information, achieving precise lighting synchronization and enhancing user immersion. Furthermore, ambient light components positioned on the bezel can provide a more three-dimensional display effect, further improving the user's viewing experience.

[0075] In addition, by setting up selectively emitting ambient light components, the ambient light components can provide matching ambient light according to user needs, which can avoid wasting light energy of the ambient light components, thereby improving the luminous efficiency of the ambient light components, and thus improving the luminous efficiency of the display device, which is conducive to improving the user's viewing experience.

[0076] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions in the embodiments of this application will be described in more detail below with reference to the accompanying drawings. In the drawings, the same or similar reference numerals denote the same or similar devices or devices having the same or similar functions throughout. The described embodiments are some device embodiments of this application, not all device embodiments. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this application, and should not be construed as limiting this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.

[0077] Reference Figure 1 , Figure 2 This application provides a display device 10. The display device 10 includes a display component 100, a bezel component 200, and an ambient light component 300.

[0078] Specifically, the display component 100 has a display surface 110 and a rear surface 120 opposite to the display surface 110, the display surface 110 being used to display information. It is understood that the displayed information includes, but is not limited to, images, text, etc.

[0079] The bezel component 200 is disposed at least around the periphery of the display component 100, and the bezel component 200 is used to protect the edges of the display component 100. It is understood that the shape of the bezel component 200 is related to the shape of the display component 100.

[0080] For example, if the image displayed by the display component 100 is rectangular, the border component 200 can be arranged in a rectangle to protect the display component 100 around its periphery; in another example, if the image displayed by the display component 100 is circular, the border component 200 can be arranged in a circle to protect the display component 100 around its periphery. This application does not limit the specific shapes of the display component 100 and the border component 200, nor is it limited to the examples described above.

[0081] The following explanation uses the display component 100 as a rectangle as an example. In this case, the border component 200 can be set to a rectangle.

[0082] It should be noted that the bezel component 200 being disposed at least around the periphery of the display component 100 can mean that part of the bezel component 200 is disposed around the periphery of the display component 100, and another part can also cover the display surface 110 or the back surface 120 of the display component 100 to enhance the protection of the display component 100.

[0083] The bezel assembly 200 and the display assembly 100 together form a receiving cavity 11 for accommodating the ambient light assembly 300, which is located within the receiving cavity 11.

[0084] By forming an accommodating cavity 11 between the bezel and the display component 100, there is no need for an external ambient light component 300, and the user does not need to install the ambient light component 300 himself; in addition, by installing the ambient light component 300 between the bezel component 200 and the display component 100, the overall aesthetics of the display device 10 can be guaranteed.

[0085] The ambient light component 300 is configured to selectively emit light towards the bezel component 200 away from the display component 100. Selective illumination can mean emitting light only partially or completely, depending on the actual situation or user needs.

[0086] It should be noted that the positions of the border component 200 away from the display component 100 include, but are not limited to, the front, rear, top, bottom, left, and right sides of the display component 100. That is, the light emission direction of the ambient light component 300 can be towards the above-mentioned positions.

[0087] Based on this, selective emission can refer to emission occurring at only a portion of the aforementioned multiple locations. Specific application scenarios are illustrated below.

[0088] For example, when the display device 10 is installed on a desktop or the ground and the bottom surface of the display device 10 is covered by the desktop or the ground, the ambient light emitting light downwards towards the display component 100 will be completely blocked by the desktop or the ground, so not emitting light can improve the luminous efficiency of the ambient light component 300.

[0089] For example, when the display device 10 is embedded in the wall and the back 120 of the display device 10 is covered by the wall, the light emitted by the ambient light component 300 towards the rear of the display component 100 will be completely blocked by the wall. Therefore, not emitting light can improve the luminous efficiency of the ambient light component 300.

[0090] For example, when the display device 10 is embedded in a wall and both the side 130 and the back 120 of the display device 10 are covered by the wall, the light emitted by the ambient light component 300 to the rear, top, bottom, left and right of the display component 100 will be completely blocked by the wall. Therefore, not emitting light can improve the luminous efficiency of the ambient light component 300.

[0091] With the above settings, the ambient light component 300 can provide matching ambient light according to user needs, which can avoid the waste of light energy of the ambient light component 300, thereby improving the luminous efficiency of the ambient light component 300, and thus improving the luminous efficiency of the display device 10, which is conducive to improving the user's viewing experience.

[0092] It should be noted that selective light emission can refer to controlling the light emission of a portion of the ambient light components 300, or it can refer to setting only a portion of the ambient light components 300, or it can refer to setting a light-transmitting structure for selective light transmission, or it can refer to setting a light-blocking structure for selective light blocking. The embodiments of this application do not limit the specific implementation of selective light emission, nor are they limited to the examples described above.

[0093] As an optional implementation, the frame component 200 is a light-transmitting structure, that is, the frame component 200 is made of a light-transmitting material, so that light can be transmitted through the frame component 200.

[0094] With the above settings, the light emitted by the ambient light component 300 can be propagated to the outside of the display component 100 through the frame component 200. The frame component 200 can enhance the diffusion effect of the ambient light, so that the light can be evenly irradiated into the surrounding environment, thereby improving the overall visual effect and atmosphere.

[0095] It should be noted that the frame component 200 is made of transparent materials, including but not limited to glass, polycarbonate, acrylic, polyethylene, etc., so that light can be transmitted through the frame component 200.

[0096] The display device 10 also includes a light-shielding member 400. The light-shielding member 400 can effectively control the direction of light propagation.

[0097] It should be noted that the light-shielding component 400 is an opaque structure, including but not limited to black polyethylene film, PVC (Polyvinyl Chloride) light-shielding board, light-shielding paper, etc., so that light cannot pass through the light-shielding component 400 to shine on it.

[0098] The light-shielding member 400 is located on at least one of the frame assembly 200 and the ambient light assembly 300, and the light-shielding member 400 is used to block part of the light emitted by the ambient light assembly 300.

[0099] It is understood that the light-shielding component 400 can be installed on the frame assembly 200 or the ambient light assembly 300, or both. The light-shielding component 400 can effectively block unnecessary light according to user needs, thereby improving the utilization rate of light efficiency.

[0100] By blocking some of the light, the light-blocking component 400 can prevent excessive light diffusion or entry into unwanted areas. This not only helps to concentrate the light effect and enhance the atmosphere of specific areas, but also avoids light interference with the user's viewing experience, improving overall visual comfort.

[0101] Reference Figure 3 , Figure 4 As an optional implementation, the display surface 110 and the back surface 120 are spaced apart. The display assembly 100 also includes a side surface 130 located between the display surface 110 and the back surface 120, and the ambient light assembly 300 is located between the bezel assembly 200 and the side surface 130. That is, along the extending direction of the display surface 110, the ambient light assembly 300 is located between the display assembly 100 and the bezel assembly 200. The ambient light assembly 300 can effectively utilize the space of the side surface 130 while maintaining integration with the bezel assembly 200. The above layout choice helps to achieve uniform light distribution, thereby improving the utilization rate of light efficiency.

[0102] In some embodiments, the bezel assembly 200 is located between the ambient light assembly 300 and the side 130. That is, the light emitted by the ambient light assembly 300 will not be emitted toward the display assembly 100. In this way, the light emitted by the ambient light assembly 300 can be prevented from affecting the display information of the display assembly 100.

[0103] It should be noted that when the ambient light component 300 is a light strip, the ambient light component 300 includes a circuit board 340 and multiple LEDs located on the circuit board 340. In this case, the light-shielding member 400 located between the ambient light component 300 and the side 130 can refer to the circuit board 340. The circuit board 340 is an opaque plate to prevent the light emitted by the LEDs from passing through the circuit board 340 and affecting the display of the display component 100.

[0104] In some embodiments, the bezel assembly 200 is located on the side of the ambient light assembly 300 along the display surface 110 toward the rear surface 120.

[0105] It is understood that the side of the display surface 110 facing the back surface 120 refers to the aforementioned rear side. By providing a light-shielding member 400 at the aforementioned location, the light-shielding member 400 can prevent the light emitted by the ambient light assembly 300 from shining onto the back side of the display device 10, thereby preventing the light beam from shining on the back side of the display device 10. In this way, the problem of light being blocked by the display device 10 can be effectively avoided, thereby enhancing the light effect of the ambient light and enabling it to illuminate the surrounding environment evenly, thus improving the user's visual experience.

[0106] With the above settings, it can be ensured that the light from the ambient light component 300 can propagate towards the user's location and the periphery of the display component 100, thus preventing the ambient light component 300 from shining towards the rear of the display component 100 and avoiding waste of light energy from the ambient light component 300.

[0107] The following is a detailed description based on the different positions of the light-shielding component 400.

[0108] When the light-shielding member 400 is located on the bezel assembly 200, the light-shielding member 400 can be effectively combined with the bezel assembly 200, which can reduce the complexity of installation and facilitate the assembly of the display device 10.

[0109] Reference Figure 3 , Figure 5 In some embodiments, the light-shielding member 400 covers the side surface of the frame assembly 200 near the ambient light assembly 300, that is, the light-shielding member 400 is located in the receiving cavity 11 and is closer to the frame assembly 200 than the ambient light assembly 300.

[0110] By covering the side of the bezel assembly 200 near the ambient light assembly 300, the light shield 400 effectively controls the initial propagation direction of light. This arrangement prevents light from escaping directly from the ambient light assembly 300, thereby reducing unnecessary light diffusion and glare. This not only improves the utilization rate of light efficiency but also ensures that light illuminates the desired area in a more ideal manner, enhancing the user's viewing experience.

[0111] In addition, by placing the light-shielding member 400 within the receiving cavity 11 formed by the frame assembly 200, the light-shielding member 400 can be protected.

[0112] Reference Figure 3 , Figure 6 In some other embodiments, the light-shielding member 400 covers the side surface of the frame assembly 200 away from the ambient light assembly 300, that is, the light-shielding member 400 is located outside the frame assembly 200 and close to the frame assembly 200 relative to the ambient light assembly 300.

[0113] By covering the side of the bezel assembly 200 away from the ambient light assembly 300, the light shield 400 can effectively control the final propagation direction of light. This arrangement prevents light from excessively diffusing from the outside of the bezel assembly 200 into unwanted areas, thereby reducing glare and light pollution. This not only improves the utilization rate of light efficiency but also ensures that light illuminates the desired area in a more ideal manner, enhancing the user's viewing experience.

[0114] It should be noted that when the light-shielding component 400 is located on the outside of the frame assembly 200, the light-shielding component 400 can be replaced according to user needs. For example, users can use light-shielding components 400 with different light-shielding effects, or replace them with light-shielding components 400 with different costs. Furthermore, the light-shielding component 400 can be quickly replaced when damaged, without disassembling the frame assembly 200, making it convenient for users.

[0115] Reference Figure 3 , Figure 4 As an optional implementation, when the light-shielding member 400 is located on the ambient light assembly 300, the light-shielding member 400 covers the surface of the ambient light assembly 300 along the side of the display surface 110 facing the rear surface 120. In this case, the light-shielding member 400 is located within the receiving cavity 11. Mounting the light-shielding member 400 on the ambient light assembly 300 allows it to directly influence the light emitted by the ambient light assembly 300. The light-shielding member 400 can directly block the ambient light assembly 300, providing more precise light control capabilities, thereby effectively managing the direction and intensity of light propagation.

[0116] By covering the ambient light assembly 300 along the side of the display surface 110 facing the rear surface 120, the light shield 400 effectively limits the diffusion of light in unwanted directions. This arrangement helps to concentrate the direction of light propagation, directing it primarily towards the user, thereby reducing light waste and unnecessary light pollution. This not only improves the utilization rate of light efficiency but also ensures that light illuminates the desired area in a more ideal manner, enhancing the user's viewing experience.

[0117] Reference Figure 2 When the shape of the display component 100 is rectangular, as an optional implementation, the ambient light component 300 includes a top light-emitting element 310 and two side light-emitting elements 320 connected to opposite ends of the top light-emitting element 310.

[0118] This arrangement allows the ambient light assembly 300 to provide comprehensive light coverage. The top light-emitting element 310 emits light upwards or forwards, while the side light-emitting elements 320 emit light to the sides or forwards. This multi-directional light emission creates a uniform and immersive lighting effect, enhancing the user's immersive experience. Furthermore, this arrangement effectively reduces shadow areas, allowing light to be evenly distributed across the entire viewing area.

[0119] It is understandable that some televisions have a control panel at the bottom; in other televisions, the control panel is located on the back, but the television may be placed on a table or the ground. Therefore, the ambient light assembly 300 of this application embodiment does not require a bottom light-emitting element.

[0120] The top light-emitting element 310 and the two side light-emitting elements 320 are all electrically connected to the display assembly 100.

[0121] By electrically connecting the light-emitting element to the display component 100, the ambient light component 300 can directly obtain power and signals from the display component 100. This connection method ensures that the light-emitting element can change synchronously with the displayed content, achieving dynamic lighting effects.

[0122] The above synchronization method can improve visual effects, enhance user immersion and interactive experience, simplify wiring, and improve the overall reliability and maintainability of display device 10.

[0123] As an optional implementation, the top light-emitting element 310 and the two side light-emitting elements 320 are integrated into one piece.

[0124] The integrated light-emitting component structure can improve the mechanical strength and stability of the ambient light assembly 300, and reduce the loosening or misalignment problems caused by the interconnection of multiple structures.

[0125] In addition, by setting up an integrated ambient light component 300, the installation process of the ambient light component 300 is relatively simple, which can reduce installation time and complexity, and also reduce production and assembly costs.

[0126] Understandably, an integrated design ensures a smoother and more natural transition of light between the top and sides, avoiding uneven lighting and contributing to a consistent lighting effect, thus enhancing the user's visual experience. Furthermore, an integrated design reduces electrical and mechanical contact between light-emitting components, lowering the risk of malfunction and improving the reliability and durability of the display device 10.

[0127] As an optional implementation, the side light-emitting element 320 is provided with adhesive at the end away from the top light-emitting element 310, and the ambient light assembly 300 is connected to the frame assembly 200 by the adhesive.

[0128] By using adhesive, additional mechanical fasteners (such as screws or clamps) can be avoided, thus simplifying the ambient light assembly 300. Furthermore, the adhesive has a degree of elasticity, which can absorb vibration and impact to some extent, protecting the ambient light assembly 300.

[0129] Understandably, the use of adhesive can avoid drilling holes or other installation methods that may damage the structure in the frame assembly 200, thus maintaining the integrity of the frame assembly 200.

[0130] Reference Figure 2 , Figure 7As an optional implementation, the ambient light assembly 300 includes two electrical connectors 330 for electrical connection. The two electrical connectors 330 are respectively connected to opposite sides of the top light-emitting element 310 to connect with the side light-emitting element 320.

[0131] The above connection method can ensure the electrical connection between the top light-emitting element 310 and the side light-emitting element 320, which helps to achieve the synchronization of the light effect of the top light-emitting element 310 and the side light-emitting element 320, and enhances the overall light effect performance.

[0132] As an alternative implementation, the electrical connector 330 is disposed at the corner of the frame assembly 200.

[0133] Understandably, the corner is the intersection of the top light-emitting element 310 and the side light-emitting element 320. Placing the electrical connector 330 here can simplify circuit wiring, reduce cable length and complexity, lower material costs, and improve the reliability of electrical connections.

[0134] It should be noted that corners typically have concentrated stress. By installing electrical connectors 330 at the corners, the structure of the frame assembly 200 can be reinforced to improve the overall mechanical strength and stability.

[0135] Reference Figure 2 As an optional implementation, the bezel assembly 200 includes a top frame 210 and two side frames 220 connected to opposite ends of the top frame 210. By setting the top frame 210 and the side frames 220, the top frame 210 and the side frames 220 can be used together to support and protect the display assembly 100. On the one hand, this can enhance the structural integrity and stability of the display device 10, and on the other hand, it can be used to assist in the installation of the ambient light assembly 300.

[0136] The top light-emitting element 310 is located between the top frame 210 and the display component 100; the two side frames 220 correspond to the two side light-emitting elements 320 respectively, and the side light-emitting elements 320 are located between the display component 100 and the corresponding side frame 220.

[0137] With the above configuration, the top light-emitting component 310 can effectively emit light forward and upward, achieving a uniform light distribution and enhancing the utilization rate of light efficiency and the user's visual experience. The side light-emitting component 320 can effectively emit light forward and to the side, achieving a uniform light distribution to enhance the utilization rate of light efficiency and the user's visual experience.

[0138] Reference Figure 2 As an optional implementation, the border assembly 200 also includes a back frame 230, which is connected to the top frame 210 and the two side frames 220 to form a complete border assembly 200.

[0139] As an optional implementation, the top frame 210 and the two side frames 220 are a single piece.

[0140] Understandably, an integrated design can improve the mechanical strength and stability of the frame assembly 200, prevent loosening or misalignment, and thus enhance the durability of the frame assembly 200.

[0141] It should be noted that the frame component 200 is a single piece, which makes the installation process relatively simple, reduces installation time and complexity, and also lowers production and assembly costs.

[0142] As an optional implementation, the ambient light assembly 300 includes a flexible light-emitting element. That is, the light-emitting element has a certain degree of flexibility and can be bent or adjusted in shape.

[0143] By setting the light-emitting element of the ambient light assembly 300 as a flexible light-emitting element, the ambient light assembly 300 can adapt to different installation environments and shape requirements.

[0144] It should be noted that, because flexible light-emitting components can be bent and adjusted, their installation is simpler and faster than that of rigid light-emitting components during the installation of the ambient light assembly 300. This reduces the precision requirements for installation and thus lowers the installation difficulty. Furthermore, the flexibility of the flexible light-emitting components allows the ambient light assembly 300 to better resist mechanical stress and vibration, absorbing impacts and preventing damage when subjected to external forces, thereby improving its durability and lifespan.

[0145] As an optional implementation, the display assembly 100 includes a control element and a plurality of light-emitting units located on the display surface 110.

[0146] It is understood that the type of light-emitting unit can be diverse. For example, the light-emitting unit can be LED (Light Emitting Diode), OLED (Organic Light Emitting Diode), etc.

[0147] The control unit is electrically connected to multiple light-emitting units. By controlling each light-emitting unit, the control unit can adjust the brightness and color of each light-emitting unit, thereby achieving complex image display and dynamic effects to provide high-quality visual performance.

[0148] The control unit is electrically connected to the ambient light assembly 300 and is configured to control the ambient light assembly 300 to cooperate with the light-emitting unit located near the ambient light assembly 300.

[0149] Through electrical connection with the ambient light component 300, the controller can synchronously control the displayed content and ambient light effects. This synchronization enhances the user's visual experience, enabling the ambient light to dynamically respond to changes in the displayed content and providing a more immersive viewing experience.

[0150] In the aforementioned control method, the controller can ensure that the lighting effect of the ambient light component 300 matches the displayed content in the edge area of ​​the display device 10. This reduces the visual difference between the display component 100 and its surrounding environment, enhancing the overall visual effect. For example, when the edge of the display component 100 displays a certain color, the ambient light component 300 can emit a similar color, thereby extending the visual content beyond the display component 100 and enhancing immersion.

[0151] In the description of the embodiments of this application, it should be understood that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, an indirect connection through an intermediate medium, the connection of devices within two components, or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0152] The terms "upper," "lower," "front," "rear," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application. In the description of this application, "multiple" means two or more, unless otherwise precisely specified.

[0153] The terms "first," "second," "third," "fourth," etc., used in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such terms can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover a non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0154] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to the technical features of the device components or the entire device. These modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A display device, characterized in that, include: A display component (100) has a display surface (110) and a back surface (120) opposite to the display surface (110), the display surface (110) being used to display information; A bezel assembly (200) is disposed at least around the periphery of the display assembly (100), and the bezel assembly (200) and the display assembly (100) together form a receiving cavity (11) for accommodating the ambient light assembly (300); An ambient light assembly (300) is located within the accommodating cavity (11); The ambient light component (300) is configured to selectively emit light toward the bezel component (200) away from the display component (100).

2. The display device according to claim 1, characterized in that, The frame assembly (200) is a light-transmitting structure; the display device (10) also includes a light-shielding component (400). The light-shielding member (400) is located on at least one of the frame assembly (200) and the ambient light assembly (300), and the light-shielding member (400) is used to block part of the light emitted by the ambient light assembly (300).

3. The display device according to claim 2, characterized in that, The display surface (110) and the back surface (120) are spaced apart. The display component (100) also includes a side surface (130) located between the display surface (110) and the back surface (120). The ambient light component (300) is located between the frame component (200) and the side surface (130). The light-shielding member (400) is located between the ambient light assembly (300) and the side (130), and is located on the side of the ambient light assembly (300) facing the back (120) along the display surface (110).

4. The display device according to claim 3, characterized in that, When the light-shielding member (400) is located on the frame assembly (200), The light-shielding member (400) covers the side surface of the frame assembly (200) near the ambient light assembly (300); or, The light-shielding member (400) covers the side surface of the frame assembly (200) away from the ambient light assembly (300).

5. The display device according to claim 3, characterized in that, When the light-shielding member (400) is located on the ambient light assembly (300), The light-shielding member (400) covers the side surface of the ambient light assembly (300) facing the back surface (120) along the display surface (110).

6. The display device according to any one of claims 1-5, characterized in that, The ambient light assembly (300) includes a top light-emitting element (310) and two side light-emitting elements (320) connected to opposite ends of the top light-emitting element (310); The top light-emitting element (310) and the two side light-emitting elements (320) are electrically connected to the display assembly (100).

7. The display device according to claim 6, characterized in that, The top light-emitting element (310) and the two side light-emitting elements (320) are a single piece.

8. The display device according to claim 7, characterized in that, An adhesive is provided at the end of the side light-emitting element (320) away from the top light-emitting element (310), and the ambient light assembly (300) is connected to the frame assembly (200) through the adhesive.

9. The display device according to claim 6, characterized in that, The ambient light assembly (300) includes two electrical connectors (330), which are respectively connected to opposite sides of the top light-emitting element (310) to connect with the side light-emitting element (320).

10. The display device according to claim 9, characterized in that, The electrical connector (330) is located at the corner of the frame assembly (200).

11. The display device according to claim 6, characterized in that, The border assembly (200) includes a top frame (210) and two side frames (220) connected to opposite ends of the top frame (210). The top light-emitting element (310) is located between the top frame (210) and the display component (100); The two side frames (220) correspond to the two side light-emitting elements (320) respectively, and the side light-emitting elements (320) are located between the display component (100) and the corresponding side frames (220).

12. The display device according to claim 11, characterized in that, The top frame (210) and the two side frames (220) are a single piece.

13. The display device according to claim 12, characterized in that, The ambient light component (300) includes a flexible light-emitting element.

14. The display device according to any one of claims 1-5, characterized in that, The display assembly (100) includes a control unit and a plurality of light-emitting units located on the display surface (110), wherein the control unit is electrically connected to the plurality of light-emitting units; The control unit is electrically connected to the ambient light assembly (300) and is configured to control the ambient light assembly (300) to cooperate with the light-emitting unit located near the ambient light assembly (300).