Efficient spliced LED screen protection structure

By designing a snap-on frame and heat dissipation components on the LED screen, the problem of excessive temperature of the LED screen is solved, effective heat dissipation and protection are achieved, and maintenance costs are reduced.

CN223379463UActive Publication Date: 2025-09-23GUANGDONG JINTENGDA INTELLIGENT SYST ENG CO LTD
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Patent Information

Application Number
CN202422130521.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-01
Publication Date
2025-09-23
Estimated Expiration
2034-09-01

AI Technical Summary

Technical Problem

Existing LED screens lack a cooling structure during use, resulting in excessively high temperatures that may damage internal components and cause additional maintenance costs.

Method used

An efficient spliced ​​LED screen protection structure is designed, including a rear-end clip frame and a heat dissipation component. Heat dissipation is achieved by using heat dissipation fins, a blower motor and a hollow plate. Combined with buffer protection and a fixing structure, multiple fixing methods are achieved.

Benefits of technology

Effectively reduce the temperature of LED screens, prevent component damage, reduce maintenance costs, and improve usage stability and flexibility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of LED screen protection structures, in particular to an efficient splicing LED screen protection structure. According to the technical scheme, a heat dissipation assembly is arranged at the rear end of a rear-end buckle frame; the heat dissipation assembly comprises heat dissipation fins; the heat dissipation fins are composed of a single metal heat absorption plate and seven metal heat dissipation plates. Hollow plates are arranged on the two sides of the cooling fins. The number of the hollow plates is six, and three hollow plates are arranged on one side. A blowing motor is arranged on the hollow plate; six blowing motors are arranged, and three blowing motors are arranged on one side; one hollow plate and one blowing motor are arranged into one group, six groups are arranged in total, and the six groups on the two sides are in the same direction. According to the LED screen protection structure, the LED screen protection structure comprises the LED screen body, the front end buckle frame is arranged at the front end of the LED screen body, the rear end buckle frame is arranged at the rear end of the LED screen body, one side of the front end buckle frame is concave, and the other side of the rear end buckle frame is convex, so that splicing and connecting work on the two sides is facilitated.
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Description

Technical Field

[0001] The utility model relates to the field of LED screen protection structures, in particular to a high-efficiency spliced ​​LED screen protection structure. Background Art

[0002] LED display is a flat panel display composed of small LED module panels.

[0003] When using existing LED screens, most of them are directly fixed on the frame. The frame lacks a cooling structure, and the temperature of the LED screen will gradually rise during use. Excessive temperature may cause damage to internal components, which will require repair and cause additional cost waste.

[0004] Therefore, in view of the fact that the above-mentioned existing LED screen lacks a cooling structure when working, which may cause the LED screen temperature to be too high and thus damage the components, an efficient splicing LED screen protection structure can be designed to solve the above problem. Utility Model Content

[0005] In order to overcome the disadvantage that most existing LED screens are directly fixed on the frame for use, and the frame lacks a cooling structure, the temperature of the LED screen will gradually rise during use. Excessive temperature may cause damage to internal components, which requires repair and causes additional cost waste.

[0006] The technical solution of the utility model is: a high-efficiency spliced ​​LED screen protection structure, including a rear-end snap-on frame and a heat dissipation component; the heat dissipation component is provided at the rear end of the rear-end snap-on frame; the heat dissipation component is a place for heat dissipation. The heat dissipation component includes heat dissipation fins; the heat dissipation fins are arranged to consist of a single metal heat-absorbing plate and seven metal heat dissipation plates; hollow plates are provided on both sides of the heat dissipation fins; six hollow plates are provided, with three provided on one side; a blower motor is provided on the hollow plate; six blower motors are also provided, with three provided on one side; one hollow plate and one blower motor are provided as a group, with a total of six groups provided, and the six groups on both sides have the same direction.

[0007] Preferably, the main body is snap-connected by setting front and rear end snap-on structures; a rear end heat dissipation structure is set to perform the main heat dissipation work; a double fixing method is set to perform the fixed connection work; and a buffer protection structure is set at the front end to perform the buffer protection work.

[0008] Preferably, one side of the rear clip frame is concave and the other side is convex. A wedge-shaped slot is provided at the upper end of the rear clip frame, and a wedge-shaped connecting block is provided at the lower end. The heat sink fins primarily absorb and dissipate heat, while the hollow plate secures the blower motor, which blows air to accelerate heat dissipation. The front and rear clip frames jointly secure the LED screen.

[0009] Preferably, a front end portion of the rear end snap-on frame is provided with a front end snap-on frame; one side of the front end snap-on frame is configured as a concave shape and the other side is configured as a convex shape, a wedge-shaped slot is provided at the upper end of the front end snap-on frame, and a wedge-shaped connecting block is provided at the lower end of the front end snap-on frame; an LED screen is provided between the rear end snap-on frame and the front end snap-on frame. Both the front end snap-on frame and the rear end snap-on frame are configured as having one side concave and one side convex, facilitating splicing of the two sides. Wedge-shaped slots and wedge-shaped connecting blocks are provided at the upper and lower ends of the front end snap-on frame and the rear end snap-on frame, enabling top-to-bottom splicing and connection, providing ease of use.

[0010] Preferably, a guide rod is provided around the front end of the front snap frame; a spring is provided on the outside of the guide rod; and a transparent arc-shaped protective plate is provided on the guide rod. The transparent arc-shaped protective plate is used for light transmission and protection, while the guide rod and the spring provide buffering protection.

[0011] Preferably, four guide rods and four springs are provided, with one guide rod and one spring being provided as one group, and a total of four groups being provided. The four groups of buffer structures enhance buffering while protecting the surroundings and reducing offset.

[0012] Preferably, an external frame is provided outside the guide rod to protect the LED screen and the transparent arc-shaped protection plate.

[0013] Preferably, a fixing frame is provided at the rear end of the hollow panel; a hardware plate is provided at the upper end of the fixing frame; bolts are provided at the lower end of the fixing frame; and a supporting triangle is provided between the bolts. The fixing frame connected to the hardware plate can be suspended, or the supporting triangle can be fastened with bolts for vertical fixation. Either fixing method can be selected, and when vertical fixation is not used, the panel can be rotated and hung down.

[0014] Beneficial effects of the utility model:

[0015] 1. By setting up an LED screen protection structure, including an LED screen body, a front-end snap-on frame is set at the front end of the LED screen body, and a rear-end snap-on frame is set at the rear end of the LED screen body, and the front-end snap-on frame and the rear-end snap-on frame are set to be concave on one side and convex on the other side, so as to facilitate the splicing and connection work on both sides. At the same time, wedge-shaped slots and wedge-shaped connecting blocks are set at the upper and lower ends of the front-end snap-on frame and the rear-end snap-on frame to facilitate the upper and lower snap-on connection work. An external frame is set at the front end of the front-end snap-on frame, and a spring and a guide rod are set inside the frame for connection. A transparent arc-shaped protective plate is set on the guide rod to protect the LED screen body. Heat dissipation fins are set on the rear-end snap-on frame for the main heat dissipation work. At the same time, blower motors are set on both sides of the heat dissipation fins to accelerate the heat dissipation work. A fixed frame is set at the rear end of the blower motor. Two fixing methods can be used. The upper end is fixed with a hardware plate, and the lower end can be supported by a supporting triangle plate that can be locked with bolts. This overcomes the disadvantage that most existing LED screens are directly fixed on the frame for use, and the frame lacks a cooling structure. Therefore, when in use, the temperature of the LED screen will gradually rise. Excessive temperature may cause damage to internal components, requiring repairs and causing additional cost waste.

[0016] 2. The main support work is performed by setting up a fixed support structure. The front clip frame and the rear clip frame are clipped together to fix the LED screen. The front clip frame and the rear clip frame are set to have one side concave and the other side convex, which is convenient for splicing on both sides. At the same time, wedge-shaped slots and wedge-shaped connecting blocks are set at the upper and lower ends of the front clip frame and the rear clip frame, which can be spliced ​​and connected up and down for easy use. The transparent arc-shaped protection plate is used for light transmission and protection, and the guide rod and spring provide buffering protection. Four sets of buffer structures strengthen the buffering while protecting the surroundings and reducing offset. The external frame protects the LED screen and the transparent arc-shaped protection plate. The fixed frame connection hardware plate can be hung and fixed, and the bolt-locked support triangle plate can be fixed vertically. Either of the two fixing methods can be selected. When vertical fixation is not used, it can be rotated and hung down. The heat dissipation work is then performed by the heat dissipation component. The heat dissipation fins are mainly used for heat absorption and heat dissipation. The hollow plate fixes the blower motor, which blows air to accelerate heat dissipation, completing the splicing and protection of the LED screen. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 Shown is a schematic diagram of the three-dimensional structure of the high-efficiency spliced ​​LED screen protection structure of the utility model;

[0018] Figure 2 Shown is a schematic diagram of the external frame of the high-efficiency spliced ​​LED screen protection structure of the utility model;

[0019] Figure 3 Shown is a schematic diagram of the transparent arc-shaped protection plate of the efficient splicing LED screen protection structure of the utility model;

[0020] Figure 4 Shown is a schematic diagram of the LED screen body of the efficient splicing LED screen protection structure of the utility model;

[0021] Explanation of the accompanying symbols: 1. LED screen; 2. Front clip frame; 3. Guide rod; 4. Spring; 5. Transparent arc-shaped protective plate; 6. External frame; 7. Rear clip frame; 9. Fixed frame; 10. Hardware plate; 11. Bolt; 12. Support triangle plate; 801. Heat dissipation fin; 802. Hollow plate; 803. Blower motor. DETAILED DESCRIPTION

[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0023] See also Figure 1-Figure 4 The present invention provides an embodiment: a highly efficient spliced ​​LED screen protective structure, comprising a rear-end snap-on frame 7 and a heat dissipation assembly; one side of the rear-end snap-on frame 7 is concave, the other side is convex, a wedge-shaped slot is provided at the upper end of the rear-end snap-on frame 7, and a wedge-shaped connecting block is provided at the lower end of the rear-end snap-on frame 7. A front-end snap-on frame 2 is provided at the front end of the rear-end snap-on frame 7; one side of the front-end snap-on frame 2 is concave, the other side is convex, a wedge-shaped slot is provided at the upper end of the front-end snap-on frame 2, and a wedge-shaped connecting block is provided at the lower end of the front-end snap-on frame 2; an LED screen body 1 is provided between the rear-end snap-on frame 7 and the front-end snap-on frame 2. Guide rods 3 are provided around the front end of the front-end snap-on frame 2; springs 4 are provided on the exterior of the guide rods 3; and a transparent arc-shaped protective plate 5 is provided on the guide rods 3. Four guide rods 3 are provided, and four springs 4 are also provided, with one guide rod 3 and one spring 4 being provided in a set, for a total of four sets. An external frame 6 is provided on the exterior of the guide rods 3. The rear end of the hollow plate 802 is provided with a fixed frame 9; the upper end of the fixed frame 9 is provided with a hardware plate 10; the lower end of the fixed frame 9 is provided with a bolt 11; and a supporting triangle plate 12 is provided between the bolts 11. The front end snap-in frame 2 and the rear end snap-in frame 7 snap together to fix the LED screen 1. The front end snap-in frame 2 and the rear end snap-in frame 7 are both set to be concave on one side and convex on the other side, which is convenient for splicing on both sides. At the same time, wedge-shaped slots and wedge-shaped connecting blocks are set at the upper and lower ends of the front end snap-in frame 2 and the rear end snap-in frame 7, which can be used for upper and lower splicing and connection, making it easy to use. The transparent arc-shaped protective plate 5 is used for light transmission and protection, and the guide rod 3 and the spring 4 realize buffering protection. The four groups of buffer structures strengthen the buffering while protecting the surroundings and reducing offset. The external frame 6 protects the area between the LED screen 1 and the transparent arc-shaped protective plate 5. The fixing frame 9 is connected to the hardware plate 10 for hanging fixation, and the bolts 11 are locked to support the triangle plate 12 for vertical fixation. Either of the two fixing methods is optional. When vertical fixation is not used, it can be rotated and hung down.

[0024] See also Figure 1 The present invention provides an embodiment: a heat dissipation assembly is provided at the rear end of the rear-end snap-on frame 7; the heat dissipation assembly includes heat dissipation fins 801; the heat dissipation fins 801 are configured to be composed of a single metal heat-absorbing plate and seven metal heat dissipation plates; hollow plates 802 are provided on both sides of the heat dissipation fins 801; six hollow plates 802 are provided, with three provided on a single side; a blower motor 803 is provided on the hollow plates 802; six blower motors 803 are also provided, with three provided on a single side; one hollow plate 802 and one blower motor 803 are provided as a group, for a total of six groups, and the six groups on both sides have the same direction. The heat dissipation fins 801 are mainly responsible for absorbing and dissipating heat, while the hollow plates 802 fix the blower motor 803, which blows air to accelerate heat dissipation.

[0025] During operation, the front snap-on frame 2 and the rear snap-on frame 7 jointly snap-on and secure the LED screen 1. Both the front snap-on frame 2 and the rear snap-on frame 7 are configured with one side concave and the other convex, facilitating splicing of the two sides. Wedge-shaped slots and wedge-shaped connecting blocks are provided at the upper and lower ends of the front snap-on frame 2 and the rear snap-on frame 7, enabling upper and lower splicing and connection, making them convenient to use. The transparent curved protective plate 5 provides light transmission and protection, while the guide rod 3 and spring 4 provide buffering protection. Four groups of buffer structures enhance buffering while protecting the surrounding areas and reducing offset. The external frame 6 protects the space between the LED screen 1 and the transparent curved protective plate 5. The fixing frame 9 connects to the hardware plate 10 for hanging fixation, while the bolts 11 lock the support triangle plate 12 for vertical fixation. Either fixing method can be selected, and when vertical fixation is not used, the frame can be rotated and lowered. The heat dissipation fins 801 primarily absorb and dissipate heat, while the hollow plate 802 secures the blower motor 803, which blows air, accelerating heat dissipation and completing all tasks.

[0026] Through the above steps, the LED screen protection structure is set, including an LED screen body 1, a front-end snap-on frame 2 is set at the front end of the LED screen body 1, and a rear-end snap-on frame 7 is set at the rear end of the LED screen body 1, and the front-end snap-on frame 2 and the rear-end snap-on frame 7 are set to be concave on one side and convex on one side, so as to facilitate the splicing and connection work on both sides, and at the same time, wedge-shaped slots and wedge-shaped connecting blocks are set at the upper and lower ends of the front-end snap-on frame 2 and the rear-end snap-on frame 7, so as to facilitate the upper and lower snap-on connection work. An external frame 6 is set at the front end of the front-end snap-on frame 2, a spring 4 is set inside the frame to connect with the guide rod 3, and a transparent arc-shaped protective plate 5 is set on the guide rod 3 to protect the LED screen body 1. A heat dissipation fin 801 is set on the rear-end snap-on frame 7 to perform the main heat dissipation work, and a blower motor 803 is set on both sides of the heat dissipation fin 801 to accelerate the heat dissipation work, and a fixed frame 9 is set at the rear end of the blower motor 803. Two fixing methods can be used, the upper end is fixed with a hardware plate 10, and the lower end can be supported by a support triangle 12 that is locked by a bolt 11. This overcomes the disadvantage that most existing LED screens are directly fixed on the frame for use, and the frame lacks a cooling structure. Therefore, when in use, the temperature of the LED screen will gradually rise. Excessive temperature may cause damage to internal components, which requires repair and causes additional cost waste.

[0027] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.

Claims

1. A high-efficiency splicing LED screen protection structure, comprising a rear end snap-on frame (7); characterized in that: The invention also includes a heat dissipation component; a heat dissipation component is provided at the rear end of the rear end snap frame (7); the heat dissipation component includes heat dissipation fins (801); the heat dissipation fins (801) are arranged to be composed of a single metal heat absorption plate and seven metal heat dissipation plates; hollow plates (802) are provided on both sides of the heat dissipation fins (801); six hollow plates (802) are provided, and three are provided on one side; a blower motor (803) is provided on the hollow plate (802); six blower motors (803) are also provided, and three are provided on one side; one hollow plate (802) and one blower motor (803) are set as a group, and a total of six groups are provided, and the six groups on both sides have the same direction.

2. The high-efficiency splicing LED screen protection structure according to claim 1, characterized in that: One side of the rear end snap frame (7) is configured to be concave, and the other side is configured to be convex, and a wedge-shaped snap groove is provided at the upper end of the rear end snap frame (7), and a wedge-shaped connecting block is provided at the lower end of the rear end snap frame (7).

3. The high-efficiency splicing LED screen protection structure according to claim 1, characterized in that: A front end portion of the rear end snap-in frame (7) is provided with a front end snap-in frame (2); one side of the front end snap-in frame (2) is provided in a concave shape, and the other side is provided in a convex shape, and a wedge-shaped snap-in groove is provided at the upper end of the front end snap-in frame (2), and a wedge-shaped connecting block is provided at the lower end of the front end snap-in frame (2); an LED screen body (1) is provided between the rear end snap-in frame (7) and the front end snap-in frame (2).

4. The high-efficiency splicing LED screen protection structure according to claim 3, characterized in that: A guide rod (3) is provided around the front end portion of the front snap-on frame (2); a spring (4) is provided outside the guide rod (3); and a transparent arc-shaped protective plate (5) is provided on the guide rod (3).

5. The high-efficiency splicing LED screen protection structure according to claim 4 is characterized in that: Four guide rods (3) are provided, and four springs (4) are also provided. One guide rod (3) and one spring (4) are provided as a group, and a total of four groups are provided.

6. The high-efficiency splicing LED screen protection structure according to claim 4, characterized in that: An external frame (6) is provided outside the guide rod (3).

7. The high-efficiency splicing LED screen protection structure according to claim 1, characterized in that: A fixed frame (9) is provided at the rear end of the hollow plate (802); a hardware plate (10) is provided at the upper end of the fixed frame (9); bolts (11) are provided at the lower end of the fixed frame (9); and supporting triangular plates (12) are provided between the bolts (11).