Stereoscopic display device

By designing a three-dimensional display mechanism and staggered light strips in the decorative lights, the problem of insufficient three-dimensionality in existing decorative lights is solved, achieving rich three-dimensional image display and a full 360-degree visual experience, thus improving the user experience.

CN224261480UActive Publication Date: 2026-05-19GUANGDONG EASTSUN LIGHTING TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG EASTSUN LIGHTING TECH CO LTD
Filing Date
2025-06-16
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Existing decorative lights mainly use flat panel displays, which lack a sense of three-dimensionality and rich display effects, resulting in a poor user experience.

Method used

Design a stereoscopic display device that uses multiple vertically arranged light strips to form a three-dimensional display mechanism, and adopts a staggered light strip design, combined with flexible wires and connecting structures, to achieve three-dimensional image display.

Benefits of technology

It increases visual pixel density, provides a full 360-degree visual experience, significantly enhances the sense of depth and display effect, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a three-dimensional display device which comprises an upper base, a lower base and a plurality of lamp strips, the plurality of lamp strips are vertically arranged between the upper base and the lower base to form a three-dimensional display mechanism, and the plurality of lamp strips are distributed in a staggered mode. The device can display three-dimensional images, the display effect is rich, the stereoscopic impression is high, the visual pixel density is large, and the user experience is greatly improved.
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Description

Technical Field

[0001] This utility model relates to the field of display device technology, and specifically to a stereoscopic display device. Background Technology

[0002] Decorative lighting technology is becoming increasingly popular, and decorative lights are used in a variety of occasions, such as advertising, television stations, stages and other event venues. Decorative lights can not only provide illumination, but also highlight the central figures or objects and create an atmosphere. In addition, some decorative lights also have display functions, which can display various images and have rich effects.

[0003] Existing decorative lights primarily use flat panel displays, which can show two-dimensional images. However, flat panel displays still have limitations; they lack a strong sense of depth and the effects are not rich enough, significantly reducing the user experience. Utility Model Content

[0004] The purpose of this invention is to overcome the aforementioned problems and provide a stereoscopic display device that can display three-dimensional images with rich display effects, strong stereoscopic effect, and high visual pixel density, thereby greatly improving the user experience.

[0005] The objective of this utility model is achieved through the following technical solution:

[0006] A stereoscopic display device includes an upper base, a lower base, and multiple light strips. The multiple light strips are arranged vertically between the upper base and the lower base to form a three-dimensional display mechanism, and the multiple light strips are staggered.

[0007] The working principle of the above-mentioned stereoscopic display device is as follows:

[0008] The light strips can emit light, enabling the 3D display mechanism to display 3D images with rich display effects and a strong sense of depth. Multiple light strips are distributed in a staggered manner, making the distribution of light strips denser and increasing the visual pixel density. At the same time, it can greatly reduce the obstruction of light strips, presenting a full 360-degree visual experience and greatly improving the user experience.

[0009] In a preferred embodiment of this invention, multiple light strips are divided into multiple groups of light strip units, which are arranged along a first horizontal direction. Each group of light strip units has multiple rows of light strips arranged along the first horizontal direction, and each row of light strips includes several light strips arranged along a second horizontal direction. The first horizontal direction and the second horizontal direction are perpendicular to each other, and adjacent rows of light strips are staggered. The purpose of this structure is to ensure that the light strips are staggered when viewed from either the first or second horizontal direction, thereby further increasing the light strip distribution density and thus improving the visual pixel density.

[0010] Preferably, the light strip includes a wire and a plurality of LED beads disposed on the wire. The upper end of the wire is mounted on the upper base, and the lower end is mounted on the lower base. By emitting light through the LED beads, the 3D display mechanism can display 3D images, showcasing a 360-degree visual experience with a strong sense of depth using each LED bead.

[0011] Preferably, the conductor is a flexible conductor. This allows the flexible conductor to deform, enabling the 3D display mechanism to be bundled during transportation or storage, facilitating storage and reducing space. In use, the upper base can be suspended, and the light strip automatically straightens under gravity.

[0012] Preferably, the wire is connected to both the upper and lower bases via a connecting structure. The connecting structure includes a double-ended stud and a protective sleeve. One end of the double-ended stud is connected to the protective sleeve; the other end of the double-ended stud located at the upper end of the wire is connected to the upper base, and the other end of the double-ended stud located at the lower end of the wire is connected to the lower base. The wire passes through the protective sleeve and connects to the double-ended stud. The double-ended stud facilitates wire installation, and the protective sleeve provides excellent protection, ensuring the structure's airtightness and improving safety.

[0013] Preferably, the end of the double-ended stud that connects to the upper and lower bases is provided with a nut. By providing the nut, the double-ended stud is further locked onto the upper and lower bases, ensuring stable installation and preventing the double-ended stud from loosening.

[0014] Preferably, the upper base has a substrate assembly inside, the substrate assembly including a mounting plate, a substrate located above the mounting plate, and a support column disposed between the substrate and the mounting plate; the mounting plate is fixedly connected to the upper base; a double-ended stud located at the upper end of the wire is connected to the mounting plate, and the upper end of the wire is connected to the substrate. In the above structure, the mounting plate serves as a mounting plate, the substrate can be a circuit board, realizing the electrical connection of the wire, and the upper end of the wire is connected to the substrate after being connected to the double-ended stud.

[0015] Preferably, the substrate assembly is provided in multiple sets, with each set of substrate assemblies corresponding to every two rows of light strips. By setting multiple sets of substrate assemblies, the number of light strips can be changed more flexibly, improving the flexibility of assembly and production, and also facilitating the control of the light strips.

[0016] Preferably, the upper base is equipped with a control unit, which is used to control the light strip and is electrically connected to the light strip. By providing the control unit, control signals can be output to illuminate the LED beads in the light strip, enabling the 3D display mechanism to display 3D images or animations.

[0017] Preferably, the upper base is provided with a pin and a socket. When two stereoscopic display devices are spliced ​​together, the pin of one stereoscopic display device is inserted into the socket of the other stereoscopic display device. The above structure can realize the splicing of two or more stereoscopic display devices, and has the advantages of convenient disassembly, high versatility, and ease of use.

[0018] Compared with the prior art, the present invention has the following advantages:

[0019] The light strips can emit light, enabling the 3D display mechanism to display 3D images with rich display effects and a strong sense of depth. Multiple light strips are distributed in a staggered manner, making the distribution of light strips denser and increasing the visual pixel density. At the same time, it can greatly reduce the obstruction of light strips, presenting a full 360-degree visual experience and greatly improving the user experience. Attached Figure Description

[0020] Figure 1 This is a three-dimensional structural diagram of one specific embodiment of a stereoscopic display device according to the present invention.

[0021] Figure 2 This is a three-dimensional structural diagram of a stereoscopic display device of the present invention from another viewing angle.

[0022] Figure 3 This is a top view of a stereoscopic display device of the present invention, with the upper base, control unit, and substrate assembly hidden.

[0023] Figure 4 This is a three-dimensional structural diagram of the light strip and connecting structure in this utility model.

[0024] Figure 5 This is a three-dimensional structural diagram of the double-headed stud in this utility model.

[0025] Figure 6 This is a partial structural diagram of a stereoscopic display device according to the present invention, after the base and control unit are hidden.

[0026] Figure 7 This is a three-dimensional structural diagram of one set of substrate components and a partial light strip in this utility model.

[0027] Figure 8 This is a front view of one of the substrate assemblies and a partial light strip in this utility model.

[0028] Figure 9 This is a three-dimensional structural diagram of the upper base in this utility model.

[0029] Figure 10 This is a three-dimensional structural diagram of the pin in this utility model.

[0030] Figure 11 This is a three-dimensional structural diagram of the socket in this utility model. Detailed Implementation

[0031] To enable those skilled in the art to fully understand the technical solution of this utility model, the present utility model will be further described below in conjunction with the embodiments and accompanying drawings, but the implementation of this utility model is not limited thereto.

[0032] See Figures 1-3 This embodiment discloses a stereoscopic display device, including an upper base 1, a lower base 2, and multiple light strips 3. The multiple light strips 3 are vertically arranged between the upper base 1 and the lower base 2 to form a three-dimensional display mechanism, and the multiple light strips 3 are staggered.

[0033] See Figures 1-3 Multiple light strips 3 are divided into multiple groups of light strip units 4, which are arranged along a first horizontal direction (Y-axis direction). Each group of light strip units 4 has multiple rows of light strips 3 arranged along the first horizontal direction, and each row of light strips 3 includes several light strips 3 arranged along a second horizontal direction (X-axis direction). The first horizontal direction and the second horizontal direction are perpendicular to each other, and adjacent rows of light strips 3 are staggered. The light strips 3 extend along the vertical direction (Z-axis direction). The purpose of this structure is to ensure that the light strips 3 are staggered when viewed from either the first or second horizontal direction, thereby further increasing the distribution density of the light strips 3 and thus improving the visual pixel density.

[0034] See Figures 1-3 In this embodiment, there are five groups of light strip units 4, each group of light strip units 4 has four rows of light strips 3, and each row of light strips 3 has five light strips 3. The total number of light strips 3 is 100.

[0035] See Figures 1-4 The light strip 3 includes a wire 3-1 and a plurality of LED beads 3-2 disposed on the wire 3-1. The upper end of the wire 3-1 is mounted on the upper base 1, and the lower end is mounted on the lower base 2. By emitting light through the LED beads 3-2, the three-dimensional display mechanism can display three-dimensional images, and each LED bead 3-2 can present a 360-degree visual experience with a strong sense of three-dimensionality.

[0036] See Figures 1-4 Each wire 3-1 has 60 LED beads 3-2. The total number of light strips 3 is 100, so the total number of LED beads 3-2 is 6000, which makes the distribution of LED beads 3-2 more dense and increases the visual pixel (LED beads 3-2) density.

[0037] See Figures 1-4 In this embodiment, the upper base 1 is made of transparent material.

[0038] See Figures 1-4 The conductor 3-1 is a flexible conductor. Its purpose is to allow the flexible conductor to deform, so that the three-dimensional display mechanism can be bundled during transportation or storage, and it is also easy to store and reduce space. When in use, the upper base 1 can be suspended, and the light strip 3 will automatically straighten under the action of gravity.

[0039] See Figures 1-8 The wire 3-1 is connected to both the upper base 1 and the lower base 2 via a connecting structure. This connecting structure includes a double-ended stud 5 and a protective sleeve 6. One end of the double-ended stud 5 is connected to the protective sleeve 6; the other end of the double-ended stud 5 located at the upper end of the wire 3-1 is connected to the upper base 1, and the other end of the double-ended stud 5 located at the lower end of the wire 3-1 is connected to the lower base 2. The wire 3-1 passes through the protective sleeve 6 and connects to the double-ended stud 5. The double-ended stud 5 facilitates the installation of the wire 3-1, and the protective sleeve 6 provides excellent protection, ensuring the structure's airtightness and improving safety.

[0040] See Figures 1-8 The double-ended stud 5 is provided with a nut 7 at one end where it connects to the upper base 1 and the lower base 2. By setting the nut 7, the double-ended stud 5 is further locked onto the upper base 1 and the lower base 2, ensuring stable installation and preventing the double-ended stud 5 from loosening.

[0041] See Figures 1-8 The upper base 1 has a substrate assembly 8 inside. The substrate assembly 8 includes a mounting plate 8-1, a substrate 8-2 located above the mounting plate 8-1, and a support column 8-3 disposed between the substrate 8-2 and the mounting plate 8-1. The mounting plate 8-1 is fixedly connected to the upper base 1. A double-ended stud 5 located at the upper end of the wire 3-1 is connected to the mounting plate 8-1, and the upper end of the wire 3-1 is connected to the substrate 8-2. In the above structure, the mounting plate 8-1 serves as a mounting element, and the substrate 8-2 can be a circuit board to realize the electrical connection of the wire 3-1. The upper end of the wire 3-1 is connected to the double-ended stud 5 and then electrically connected to the substrate 8-2.

[0042] See Figures 1-8 The double-headed stud 5 has a limiting ring 12 in the middle. By cooperating with the limiting ring 12 and the nut 7, the mounting plate 8-1 and the lower base can be locked and fixed between the limiting ring 12 and the nut 7.

[0043] See Figures 1-8The substrate assembly 8 is provided in multiple sets, with each set of substrate assemblies 8 corresponding to every two rows of light strips 3, meaning that two rows of light strips 3 are connected to one set of substrate assemblies 8. By setting multiple sets of substrate assemblies 8, the number of light strips 3 can be changed more flexibly, improving the flexibility of assembly and production, and also facilitating the control of the light strips 3.

[0044] See Figures 1-9 The upper base 1 is equipped with a control unit 9, which is used to control the light strip 3 and is electrically connected to the light strip 3. The control unit 9 can output control signals to illuminate the LED beads 3-2 in the light strip 3, enabling the 3D display mechanism to display 3D images or animations. The control unit 9 is a control circuit board.

[0045] See Figures 9-11 The upper base 1 is equipped with a pin 10 and a socket 11. When two stereoscopic display devices are spliced ​​together, the pin 10 of one stereoscopic display device is inserted into the socket 11 of the other stereoscopic display device. The above structure can realize the splicing of two or more stereoscopic display devices, and has the advantages of convenient disassembly, high versatility and ease of use.

[0046] See Figures 9-11 The pin 10 is provided with an annular groove 10-1, and the insertion hole 11 is provided with a sliding plate 11-1. When the pin 10 is inserted into the insertion hole 11, the sliding plate 11-1 can slide and engage with the annular groove 10-1 to achieve a fastening and ensure the stability of the splicing.

[0047] See Figures 9-11 The pins 10 are located on two adjacent sides of the upper base 1, and the insertion holes 11 are located on two other adjacent sides of the upper base 1. This facilitates splicing in the first and second horizontal directions and improves splicing flexibility. The upper base 1 is also provided with multiple handles 13 for easy handling.

[0048] See Figures 1-3 The working principle of the above-mentioned stereoscopic display device is as follows:

[0049] The light strip 3 can emit light, enabling the 3D display mechanism to display 3D images with rich display effects and strong stereoscopic effect. Multiple light strips 3 are staggered and distributed, making the distribution of light strips 3 denser and increasing the visual pixel density. At the same time, it can greatly reduce the obstruction of light strips 3, presenting a full 360-degree visual experience and greatly improving the user experience.

[0050] The above are preferred embodiments of the present utility model, but the embodiments of the present utility model are not limited to the above content. Any changes, modifications, substitutions, combinations, or simplifications made without departing from the spirit and principle of the present utility model shall be considered equivalent substitutions and shall be included within the protection scope of the present utility model.

Claims

1. A stereoscopic display device, characterized in that, It includes an upper base, a lower base, and multiple light strips. The multiple light strips are vertically arranged between the upper base and the lower base to form a three-dimensional display mechanism. The multiple light strips are staggered. Multiple light strips are divided into multiple groups of light strip units, which are arranged along a first horizontal direction. Each group of light strip units has multiple rows of light strips arranged along the first horizontal direction, and each row of light strips includes several light strips arranged along a second horizontal direction. The first horizontal direction and the second horizontal direction are perpendicular to each other, and the light strips in adjacent rows are staggered.

2. The stereoscopic display device according to claim 1, characterized in that, The light strip includes a wire and a plurality of LED beads disposed on the wire. The upper end of the wire is mounted on the upper base and the lower end is mounted on the lower base.

3. A stereoscopic display device according to claim 2, characterized in that, The conductor is a flexible conductor.

4. A stereoscopic display device according to claim 3, characterized in that, The wire is connected to both the upper and lower bases via a connecting structure. The connecting structure includes a double-ended stud and a protective sleeve. One end of the double-ended stud is connected to the protective sleeve. The other end of the double-ended stud located at the upper end of the wire is connected to the upper base, and the other end of the double-ended stud located at the lower end of the wire is connected to the lower base. The wire passes through the protective sleeve and is connected to the double-ended stud.

5. A stereoscopic display device according to claim 4, characterized in that, The end of the double-ended stud that connects to the upper and lower bases is provided with a nut.

6. A stereoscopic display device according to claim 4, characterized in that, The upper base has a base plate assembly inside. The base plate assembly includes a mounting plate, a base plate located above the mounting plate, and a support column disposed between the base plate and the mounting plate. The mounting plate is fixedly connected to the upper base. A double-ended stud located at the upper end of the wire is connected to the mounting plate, and the upper end of the wire is connected to the base plate.

7. A stereoscopic display device according to claim 6, characterized in that, The substrate assembly is provided in multiple sets, with each set of substrate assemblies corresponding to two rows of light strips.

8. A stereoscopic display device according to claim 1, characterized in that, The upper base is equipped with a control unit, which is used to control the light strip and is electrically connected to the light strip.

9. A stereoscopic display device according to claim 1, characterized in that, The upper base is provided with a pin and a socket. When two stereoscopic display devices are spliced ​​together, the pin of one stereoscopic display device is inserted into the socket of the other stereoscopic display device.