Radiation-proof display device
Through a multi-layered protective structure and heat dissipation system, the electromagnetic radiation and heat dissipation problems of the display are solved, achieving high efficiency in electromagnetic shielding and thermal management, thereby improving the reliability of the equipment and user safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2026-03-13
AI Technical Summary
Existing displays have shortcomings in electromagnetic radiation protection and heat dissipation design, making it difficult to meet the requirements of highly sensitive environments. Furthermore, their electromagnetic compatibility and heat dissipation efficiency are insufficient, which may affect the reliability of the equipment and the health of users.
It adopts a multi-layered protective structure, including a support layer, fiber layer, protective layer, absorption layer and dispersion layer, combined with a heat dissipation structure, using components such as rings, guide plates, outer ring tubes and vacuum chambers to form a highly efficient electromagnetic shielding and heat dissipation system.
It achieves effective shielding against electromagnetic radiation and rapid heat dissipation, improving the stability and safety of the display, protecting user health, and extending device lifespan.
Smart Images

Figure CN223993790U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic information technology, and in particular to a radiation-proof display device. Background Technology
[0002] As a core terminal for information interaction, display devices play a crucial role in scenarios such as medical imaging, financial transactions, industrial control, and personal consumption. With the widespread adoption of high refresh rate and high resolution display technologies, and the increasing trend towards miniaturization and integration of devices, the density of electronic components and power consumption inside displays have increased significantly. This has led to increasingly prominent issues of electromagnetic radiation interference and heat accumulation. Electromagnetic radiation can not only interfere with the normal operation of surrounding precision equipment, but long-term exposure may also pose a potential threat to user health. Simultaneously, if the heat inside the display cannot dissipate quickly, it can cause screen color distortion, response delays, and even hardware damage, directly affecting device reliability.
[0003] Existing technologies for display electromagnetic protection and heat dissipation design have significant shortcomings: traditional electromagnetic shielding solutions often employ single-layer metal shields or simple grounding, which are insufficient for absorbing low-frequency radiation and struggle to balance light transmittance and shielding effectiveness, resulting in electromagnetic compatibility indicators that fail to meet the requirements of highly sensitive environments. Furthermore, heat dissipation systems generally rely on a combination of aluminum fins and a single fan, leading to long heat dissipation paths and uneven airflow distribution, which can easily create localized hotspots in enclosed spaces or under high load conditions. In addition, some heat dissipation structures lack thermal insulation design, potentially conducting heat back to sensitive components and exacerbating device performance degradation. Therefore, there is an urgent need for an integrated display device that combines multi-level electromagnetic protection with active, high-efficiency heat dissipation to address the challenges of complex electromagnetic environments and thermal management. Utility Model Content
[0004] In order to solve the problems mentioned in the background art, this application provides a radiation-proof display device.
[0005] This application provides an anti-radiation display device, which adopts the following technical solution: it includes a protective structure for improving brightness and a heat dissipation structure for reducing display heat. The heat dissipation structure is installed inside the display body. A locking block is fixedly connected to the outside of the display body. A support plate is provided at the bottom of the locking block. The protective structure is fixedly connected to the bottom of the support plate. The protective structure includes a support layer. A fiber layer is fixedly connected to the top of the support layer. A protective layer is fixedly connected to the bottom of the support layer. An absorption layer is fixedly connected to the bottom of the protective layer. A dispersion layer is fixedly connected to the bottom of the absorption layer. The dispersion layer is installed inside the frame.
[0006] Optionally, the heat dissipation structure includes a first ring, a first guide plate fixedly connected to the bottom of the first ring, an outer ring tube fixedly connected to the bottom of the first guide plate, a second ring fixedly connected to the bottom of the outer ring tube, a support rod installed inside the outer ring tube, a fixing block fixedly connected to the outside of the support rod, the fixing block installed inside the vacuum chamber, a support rod provided on the outside of the vacuum chamber, and a second guide plate provided at the bottom of the vacuum chamber.
[0007] With the above scheme, the first and second rings in the heat dissipation structure can position and support the components, while the first and second guide plates are used to guide airflow and enhance heat dissipation. The outer ring tube connects the first and second rings for heat dissipation, and the support rod inside the outer ring tube provides structural support. The fixing block is located inside the vacuum chamber, which can improve heat dissipation efficiency.
[0008] Optionally, a display body is provided on one side of the support plate, and a disc is provided at the bottom of the display body.
[0009] With the above design, the support plate is used to support and fix the monitor body, ensuring its stable placement. The monitor body displays images and information, and the disc located at the bottom of the monitor body helps to stabilize the monitor, providing stable support for the monitor body together with the support plate.
[0010] Optionally, the bottom of the disk is provided with a protective structure, and a base is fixedly connected to the bottom of the protective structure.
[0011] The above design incorporates a protective structure at the bottom of the disc to protect the monitor from external impacts or damage. This protective structure is then fixedly connected to a base, which provides support and ensures the monitor can be placed stably.
[0012] Optionally, the support layer is polyethylene and the protective layer is an ITO film.
[0013] The above solution utilizes polyethylene as the support layer to provide stable support for the protective structure. The protective layer is made of ITO film, which effectively shields electromagnetic radiation, protecting the display from interference without affecting the display itself.
[0014] Optionally, the fiber layer is copper fiber, the absorbent layer is polypropylene, and the dispersion layer is polyvinyl chloride.
[0015] The above scheme utilizes copper fibers in the fiber layer to enhance the protective structure and supplement electromagnetic shielding. The absorption layer uses polypropylene, which absorbs and converts some of the radiant energy, reducing its penetration. The dispersion layer uses polyvinyl chloride to further disperse the remaining radiant energy, minimizing its impact on the display.
[0016] Optionally, the absorbent layer has a thickness of 0.2mm-0.35mm, the support layer has a thickness of 0.3mm-0.35mm, and the frame has a thickness of 0.2mm-0.15mm.
[0017] The above design allows for effective absorption of radiation energy through a thickness of 0.2mm-0.35mm in the absorption layer, while the support layer, with a thickness of 0.3mm-0.35mm, provides support and stabilizes the protective structure. The frame, with a thickness of 0.2mm-0.15mm, reduces weight, making the entire protective structure lightweight.
[0018] In summary, this application includes the following beneficial technical effects:
[0019] 1. This utility model, by setting up a protective structure, includes components such as a support layer, a fiber layer, a protective layer, an absorption layer, a dispersion layer, and a frame. The support layer provides basic support, the fiber layer enhances the structural strength and may have conductive or shielding properties, the protective layer uses an ITO film to achieve electromagnetic shielding, the absorption layer uses polypropylene material to absorb radiation energy, and the dispersion layer uses polyvinyl chloride to disperse the remaining radiation energy. This allows the protective structure to effectively shield and absorb electromagnetic radiation through multiple layers of materials. By optimizing the protective structure, it can solve the problem of adverse effects of electromagnetic radiation on displays and users, improve safety, and protect user health.
[0020] 2. This utility model, by setting up a heat dissipation structure, includes components such as a first ring, a first guide plate, an outer ring tube, a second ring, a support rod, a vacuum chamber, a fixing block, and the second guide plate. The first and second rings form a heat dissipation channel, the first and second guide plates guide airflow, the outer ring tube and the support rod constitute a support and heat conduction structure, and the vacuum chamber utilizes the principle of vacuum insulation to reduce heat transfer. This allows the heat dissipation structure to quickly dissipate the heat generated by the monitor body through efficient heat conduction and airflow circulation. By optimizing the heat dissipation structure, the problem of overheating caused by prolonged operation of the monitor can be solved, thereby improving the stability of the monitor and extending its service life. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the overall structure in an embodiment of this application;
[0022] Figure 2 This is a schematic diagram of the internal structure of the protective structure in an embodiment of this application;
[0023] Figure 3 This is a schematic diagram of the external structure of the heat dissipation structure in the embodiments of this application;
[0024] Figure 4 This is a schematic diagram of the internal structure of the heat dissipation structure in the embodiments of this application.
[0025] Reference numerals: 1. Disc; 2. Protective structure; 21. Support layer; 22. Protective layer; 23. Fiber layer; 24. Absorption layer; 25. Dispersion layer; 26. Frame; 3. Base; 4. Support plate; 5. Display body; 6. Heat dissipation structure; 61. Ring 1; 62. Guide plate 1; 63. Ring 2; 64. Outer ring tube; 65. Support rod; 66. Vacuum chamber; 67. Fixing block; 68. Guide plate 2; 7. Locking block. Detailed Implementation
[0026] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.
[0027] This application discloses an anti-radiation display device.
[0028] Please see Figures 1 to 4 An anti-radiation display device includes a protective structure 2 for increasing brightness and a heat dissipation structure 6 for reducing display heat. The heat dissipation structure 6 is installed inside the display body 5. A locking block 7 is fixedly connected to the outside of the display body 5. A support plate 4 is provided at the bottom of the locking block 7. The protective structure 2 is fixedly connected to the bottom of the support plate 4. The protective structure 2 includes a support layer 21. A fiber layer 23 is fixedly connected to the top of the support layer 21. A protective layer 22 is fixedly connected to the bottom of the support layer 21. An absorption layer 24 is fixedly connected to the bottom of the protective layer 22. A dispersion layer 25 is fixedly connected to the bottom of the absorption layer 24. The dispersion layer 25 is installed inside a frame 26.
[0029] It should be explained that the protective structure 2 enhances display brightness and protects against radiation, while the heat dissipation structure 6 reduces the heat generated when the monitor is working. The heat dissipation structure 6 is located inside the monitor body 5, while the outside of the monitor body 5 is connected to the support plate 4 via a clip 7. The protective structure 2 is fixed to the bottom of the support plate 4. The protective structure 2 consists of multiple layers of materials, including a support layer 21 that provides basic support, a fiber layer 23 that enhances toughness and conductivity, a protective layer 22 that effectively shields electromagnetic radiation, an absorption layer 24 that absorbs and converts radiation energy, and a dispersion layer 25 that further disperses radiation. These layers are installed within the frame 26 to provide protection and heat dissipation for the monitor.
[0030] Please see Figures 1 to 4 The heat dissipation structure 6 includes a first ring 61, a first guide plate 62 fixedly connected to the bottom of the first ring 61, an outer ring tube 64 fixedly connected to the bottom of the first guide plate 62, a second ring 63 fixedly connected to the bottom of the outer ring tube 64, a support rod 65 installed inside the outer ring tube 64, a fixing block 67 fixedly connected to the outside of the support rod 65, the fixing block 67 installed inside the vacuum chamber 66, the support rod 65 is provided on the outside of the vacuum chamber 66, and a second guide plate 68 is provided at the bottom of the vacuum chamber 66.
[0031] It should be explained that the heat dissipation structure 6 includes a first ring 61 and a second ring 63, which are connected to an outer ring pipe 64 through a first guide plate 62 to form a stable support and airflow channel. The outer ring pipe 64 has a support rod 65 inside, which can enhance the stability of the structure. The fixing block 67 is inside the vacuum chamber 66, which can reduce heat transfer. The vacuum chamber 66 is reinforced by the support rod 65 on the outside. The bottom is provided with a second guide plate 68, which can optimize airflow and enable heat to be dissipated quickly and effectively.
[0032] Please see Figures 1 to 4 The support plate 4 has a display body 5 on one side, and a disc 1 is provided at the bottom of the display body 5.
[0033] It should be explained that the monitor body 5 is mounted on one side of the support plate 4, and the bottom of the monitor body 5 has a disc 1. This disc 1 increases the contact area between the monitor and the support surface, thus improving stability.
[0034] Please see Figures 1 to 4 The bottom of the disc 1 is provided with a protective structure 2, and the bottom of the protective structure 2 is fixedly connected with a base 3.
[0035] It should be explained that the bottom of the disc 1 has a protective structure 2, which can enhance the overall stability of the monitor. The protective structure 2 can effectively resist external impacts and protect the monitor. Its bottom is tightly connected to the base 3, which ensures that the monitor can be placed stably and securely.
[0036] Please see Figures 1 to 4 The support layer 21 is polyethylene, and the protective layer 22 is ITO film.
[0037] It should be explained that the support layer 21 is made of polyethylene material, which provides basic support for the protective structure 2, while the protective layer 22 is made of ITO film, which can effectively prevent electromagnetic radiation from interfering with the internal components of the display and protect the stable operation of the display.
[0038] Please see Figures 1 to 4 The fiber layer 23 is made of copper fiber, the absorbent layer 24 is made of polypropylene, and the dispersion layer 25 is made of polyvinyl chloride.
[0039] It should be explained that the fiber layer 23 is made of copper fiber, which can effectively enhance structural stability and assist in electromagnetic shielding. The absorption layer 24 is made of polypropylene, which can absorb and convert some of the radiation energy and reduce penetration. The dispersion layer 25 is made of polyvinyl chloride, which further disperses the remaining radiation energy and reduces its impact on the display.
[0040] Please see Figures 1 to 4The thickness of the absorption layer 24 is 0.2mm-0.35mm, the thickness of the support layer 21 is 0.3mm-0.35mm, and the thickness of the frame 26 is 0.2mm-0.15mm.
[0041] It should be explained that the thickness of the absorbing layer 24 is between 0.2mm and 0.35mm, which enables it to effectively absorb radiation energy; the thickness of the support layer 21 is between 0.3mm and 0.35mm, which provides a solid support and ensures the stability of the protective structure 2; and the thickness of the frame 26 is between 0.2mm and 0.15mm, which can reduce weight.
[0042] The implementation principle of the anti-radiation display device in this application is as follows:
[0043] First, this anti-radiation display device achieves the dual functions of radiation protection and brightness enhancement through its unique protective structure 2. The protective structure 2 comprises multiple layers of materials, including a polyethylene support layer 21 providing basic support, a copper fiber layer 23 enhancing toughness and conductivity, an ITO thin film protective layer 22 effectively shielding electromagnetic radiation, a polypropylene absorption layer 24 absorbing and converting radiation energy, and a polyvinyl chloride dispersion layer 25 further dispersing radiation. These layers are collectively installed within a frame 26, forming a robust defense that protects the display from electromagnetic radiation interference while simultaneously enhancing display brightness through optimized light transmission.
[0044] Secondly, the heat dissipation structure 6 effectively reduces the heat generated during monitor operation. It consists of components such as a first ring 61, a first airflow guide plate 62, an outer ring tube 64, and a second ring 63, forming a stable support and airflow channel. An internally installed support rod 65 enhances structural stability, while the fixing block 67 within the vacuum chamber 66 utilizes the thermal insulation properties of a vacuum to reduce heat transfer. The second airflow guide plate 68 at the bottom further optimizes airflow, ensuring that heat can be dissipated quickly and effectively, maintaining a stable operating temperature for the monitor.
[0045] Finally, the entire device is stably supported and placed using the support plate 4, the disc 1, and the base 3. The monitor body 5 is mounted on one side of the support plate 4, the bottom disc 1 increases the contact area to improve stability, and the protective structure 2 at the bottom of the disc 1 further enhances the overall stability. The bottom of the protective structure 2 is tightly connected to the base 3, ensuring that the monitor can be placed stably and securely.
[0046] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A radiation protection display device comprising a protection structure (2) for increasing brightness, a heat dissipation structure (6) for reducing display heat, characterized in that: The heat dissipation structure (6) is installed inside the display body (5), the outer side of the display body (5) is fixedly connected with the clamping block (7), the bottom of the clamping block (7) is provided with the supporting plate (4), and the bottom of the supporting plate (4) is fixedly connected with the protection structure (2). The protection structure (2) comprises a supporting layer (21), the top of the supporting layer (21) is fixedly connected with a fiber layer (23), the bottom of the supporting layer (21) is fixedly connected with a protection layer (22), the bottom of the protection layer (22) is fixedly connected with an absorption layer (24), the bottom of the absorption layer (24) is fixedly connected with a dispersion layer (25), and the dispersion layer (25) is installed inside the frame (26).
2. The radiation-shielding display device according to claim 1, wherein: The heat dissipation structure (6) comprises a circular ring one (61), the bottom of the circular ring one (61) is fixedly connected with a flow guide plate one (62), the bottom of the flow guide plate one (62) is fixedly connected with an outer ring pipe (64), the bottom of the outer ring pipe (64) is fixedly connected with a circular ring two (63), the inside of the outer ring pipe (64) is installed with a supporting rod (65), the outer side of the supporting rod (65) is fixedly connected with a fixed block (67), the fixed block (67) is installed inside the vacuum cavity (66), the outer side of the vacuum cavity (66) is provided with the supporting rod (65), and the bottom of the vacuum cavity (66) is provided with a flow guide plate two (68).
3. The radiation-shielding display device of claim 1, wherein: One side of the supporting plate (4) is provided with the display body (5), and the bottom of the display body (5) is provided with the disc (1).
4. The radiation-shielding display device according to claim 3, wherein: The bottom of the disc (1) is provided with the protection structure (2), and the bottom of the protection structure (2) is fixedly connected with the base (3).
5. The radiation-shielding display device of claim 1, wherein: The supporting layer (21) is polyethylene, and the protection layer (22) is an ITO film.
6. The radiation-shielding display device of claim 1, wherein: The fiber layer (23) is copper fiber, the absorption layer (24) is polypropylene, and the dispersion layer (25) is polyvinyl chloride.
7. The radiation-protective display device of claim 1, wherein: The absorption layer (24) is 0.2mm-0.35mm, the thickness of the supporting layer (21) is 0.3mm-0.35mm, and the thickness of the frame (26) is 0.2mm-0.15mm.