Novel holographic transparent screen capable of being disassembled quickly

During the installation process of the holographic transparent screen, the connecting components and the rotating rod drive the limiting block and the plug-in block are used to cooperate, and the fast connection and disassembly of the holographic transparent screen is achieved, which solves the problems of cumbersome installation and low efficiency in the prior art, and improves the work efficiency of construction personnel and the installation quality of the device.

CN120212385AInactive Publication Date: 2025-06-27JIANGSU HONGGUANG DISPLAY TECH CO LTD
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Patent Information

Application Number
CN202510686947.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-27
Publication Date
2025-06-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The installation process of existing holographic transparent screens is cumbersome, the construction staff is inefficient, and the installation time is long.

Method used

The connecting component pushes the rotating rod to drive the limiting block to rotate downward, and the limiting block cooperates with the plug block to quickly connect and quickly disassemble the holographic transparent screen to improve the work efficiency of construction workers.

Benefits of technology

The rapid connection and disassembly of the holographic transparent screen is realized, which improves the work efficiency of construction personnel and improves the installation progress and quality of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of holographic transparent screens, in particular to a novel quickly-detached holographic transparent screen which comprises two holographic transparent screen bodies, connecting assemblies are fixedly mounted on one sides of the two holographic transparent screen bodies and comprise two power source boxes, and two inserting blocks are fixedly mounted in the two power source boxes. The device comprises four sets of inserting blocks, limiting blocks are slidably installed in the four sets of inserting blocks, rotating rods are fixedly installed on the four sets of limiting blocks, adjusting rods are rotatably installed on the four sets of rotating rods, and telescopic rods are fixedly connected to the four sets of adjusting rods. And the other half of the limiting block is matched with the other half of the other group of limiting blocks and is inserted into the mutual insertion blocks, so that the insertion blocks are fixed, each group of holographic transparent screens are quickly connected and fixed and quickly disassembled, the working efficiency of constructors is improved, and the overall installation progress and quality of the device are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of holographic transparent screens, and specifically to a novel holographic transparent screen with quick disassembly. Background Art

[0002] A holographic transparent screen is an innovative display technology that combines the three-dimensional effect of holographic projection and the clarity of a transparent screen, providing users with a more immersive viewing experience. A holographic transparent screen is a technology that combines a laser or LED light source with holographic materials to generate three-dimensional images through the principles of light interference and diffraction. It can display clear and three-dimensional image content while maintaining the transparency of the screen, thus achieving a perfect fusion of virtual and real. A novel holographic transparent screen with quick disassembly is a display technology with broad application prospects and innovation. It can not only bring a more immersive viewing experience to users, but also improve the reliability and durability of the device, reduce maintenance costs and time. With the continuous development and improvement of technology, it is believed that this holographic transparent screen will be applied and promoted in more fields; Currently, during the use of holographic transparent screens, most holographic transparent screens are directly attached to transparent glass display cabinets or glass doors and windows with double-sided tape, and then construction workers manually adjust to align the holographic transparent screens. The installation process is relatively cumbersome and the construction time is long, resulting in low work efficiency of the construction workers. Summary of the Invention

[0003] The purpose of the present invention is to provide a novel holographic transparent screen with quick disassembly. By pushing the rotating rod through the connecting component to drive the limiting block to rotate downward, the other half of the limiting block cooperates with the other half of another group of limiting blocks and inserts into the corresponding plug blocks of each other, so as to fix the fixed plug blocks, quickly connect and fix each group of holographic transparent screens, and quickly disassemble them, improving the work efficiency of construction workers and enhancing the overall installation progress and quality of the device.

[0004] To achieve the above object, the present invention provides the following technical solution: a novel and quickly detachable holographic transparent screen, comprising two groups of holographic transparent screens. On one side of each of the two groups of holographic transparent screens, a connection component is fixedly installed. The connection component includes two power boxes. Inside each of the two power boxes, two plug-in blocks are fixedly installed. Inside each of the four plug-in blocks, a limiting block is slidably installed. On each of the four limiting blocks, a rotating rod is fixedly installed. On each of the four rotating rods, an adjusting rod is rotatably installed. On each of the four adjusting rods, a telescopic rod is fixedly connected. On one side of each of the four telescopic rods, it is fixedly connected to the power box. On one of the power boxes, a moving frame is movably installed. Inside each of the two moving frames, two first springs are fixedly installed. On one side of each of the first springs, a moving plate is fixedly connected. One side of the moving plate is magnetically attached to one side of the other power box. On the moving plate, a pushing block is fixedly installed. On one of the power boxes, a moving frame is slidably installed. On both sides of one of the power boxes, a second spring is fixedly connected. Inside both of the second springs, a detection rod is installed. On one side of each of the two detection rods, an extrusion block is fixedly connected.

[0005] Preferably, inside each of the four plug-in blocks, a first groove is provided. The limiting block and the rotating rod are both slidably connected to the first groove. One side of the rotating rod extends through the first groove for installation.

[0006] Preferably, on each of the two power boxes, a second groove is provided. One side of the rotating rod extends through the second groove for installation. Inside each of the four telescopic rods, a third spring is provided.

[0007] Preferably, each of the two moving frames is provided with a second chute. On each of the two moving plates, a first chute is provided.

[0008] Preferably, one side of the detection rod extends through the power box for installation. One side of the detection rod extends through the second chute and is movably installed with the first chute.

[0009] Preferably, on the other side of the moving frame, a fourth groove is provided. The detection rod is movably installed on the fourth groove.

[0010] Preferably, one side of the second spring is fixedly connected to the extrusion block. On the power box, a third groove is provided. The extrusion block is slidably connected to the third groove.

[0011] Preferably, on one side of the moving plate, a magnetic block is provided. On one side of one of the power boxes, a magnetic block is provided.

[0012] Compared with the prior art, the beneficial effects of the present invention are: 1. In the present invention, the pushing block pushes the moving frame to move, thereby driving the rotating rod to drive the limiting block to rotate downward. The limiting block does not maintain a horizontal state with the plugging block but a vertical state. The other half of the limiting block cooperates with the other half of another set of limiting blocks and inserts into the corresponding plugging blocks of each other, so as to fix the plugging blocks, quickly connect and fix and quickly disassemble each group of holographic transparent screens, improving the work efficiency of construction workers and enhancing the overall installation progress and quality of the device. 2. In the present invention, when pushing the moving frame, the moving frame no longer presses on the rotating rod, and the third spring rebounds inside the telescopic rod, thereby driving the telescopic rod and the rotating rod to adjust the operating angle through the adjusting rod for resetting. The rotating rod drives the limiting block to reset and coincide with the plugging block, facilitating the quick disassembly of the holographic transparent screen by construction workers and improving the work efficiency of construction workers. 3. In the present invention, the moving plate is magnetically connected to another set of power boxes. When pushing one set of power boxes, the moving plate magnetically connected to the moving plate transmits to the moving frame through the first spring. When the moving frame can no longer move, the moving plate squeezes the first spring, and the first spring undergoes elastic deformation, which is used to guide the splicing of the holographic transparent screen through the power boxes and prevent construction workers from splicing out of position. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 is the overall structural schematic diagram of the present invention; Figure 2 is the structural schematic diagram of the connection component of the present invention; Figure 3 is the sectional structural schematic diagram of the connection component of the present invention; Figure 4 is the sectional structural schematic diagram of the plugging block of the present invention; Figure 5 is the sectional structural schematic diagram of the moving frame of the present invention; Figure 6 is the connection structural schematic diagram of the extrusion block and the detection rod of the present invention; Figure 7 is the magnetic block connection structural schematic diagram of the present invention.

[0014] In the figure: 1, holographic transparent screen; 2, connection component; 201, power box; 202, plugging block; 203, limiting block; 204, rotating rod; 205, adjusting rod; 206, telescopic rod; 207, moving frame; 208, first spring; 209, moving plate; 210, first chute; 211, detection rod; 212, second spring; 213, extrusion block; 214, pushing block; 215, moving frame; 216, magnetic block; 217, second chute. DETAILED DESCRIPTION OF THE INVENTION

[0015] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Therefore, the following detailed description of the embodiments of the present invention provided in the drawings is not intended to limit the scope of the claimed invention, but merely represents selected embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.

[0016] The present invention provides a novel holographic transparent screen with quick disassembly, which includes two groups of holographic transparent screens 1. The holographic transparent screen 1 is a technology that combines a laser or LED light source with a holographic material to generate three-dimensional images through the principles of light interference and diffraction. It can display clear and three-dimensional image content while maintaining the transparency of the screen, thereby achieving a perfect fusion of virtual and reality. On one side of each of the two groups of holographic transparent screens 1, a connection component 2 is fixedly installed. The connection component 2 is used for quickly connecting and fixing and quickly disassembling each holographic transparent screen 1. Refer to Figures 1 to 7As shown in the figure, the connection component 2 includes two groups of power boxes 201. The two groups of power boxes 201 are used to provide the power source for the holographic transparent screen 1 and power the holographic transparent screen 1. Two sets of plug-in blocks 202 are fixedly installed inside each of the two groups of power boxes 201. The plug-in blocks 202 are used for quick plugging and fixing between the power boxes 201, so as to fixedly connect the holographic transparent screen 1. Limit blocks 203 are slidably installed inside each of the four plug-in blocks 202. The limit blocks 203 are used for quickly plugging and fixing the plug-in blocks 202, so that the power boxes 201 are quickly plugged and fixed, and thus the holographic transparent screen 1 is fixedly connected. Rotating rods 204 are fixedly installed on each of the four limit blocks 203. The rotating rods 204 are used to drive the limit blocks 203 to rotate and adjust. In the initial position, the limit blocks 203 are in a horizontal state with the plug-in blocks 202. When the rotating rods 204 drive the limit blocks 203 to rotate downward, the limit blocks 203 are not in a horizontal state with the plug-in blocks 202 but in a vertical state. The other half of one limit block 203 cooperates with the other half of another limit block 203 and is inserted into the corresponding plug-in block 202 of each other, so as to fix the plug-in block 202. Adjusting rods 205 are rotatably installed on each of the four rotating rods 204. The adjusting rods 205 are used to adjust the operating angles of other devices. Telescopic rods 206 are fixedly connected to each of the four adjusting rods 205. In the initial state, the limit blocks 203 are in a horizontal state with the plug-in blocks 202, and the telescopic rods 206 are in an unloaded state. When the rotating rods 204 drive the limit blocks 203 to rotate downward, the telescopic rods 206 contract to transmit power. One side of each of the four telescopic rods 206 is fixedly connected to the power box 201, which is used for fixedly connecting and supporting the telescopic rods 206 to expand and contract. A moving frame 207 is movably installed on one of the power boxes 201 for transmitting power and providing a moving place for other devices. Two sets of first springs 208 are fixedly installed inside each of the two moving frames 207. The two sets of first springs 208 are used to generate elastic deformation to drive other devices to move. One side of each first spring 208 is fixedly connected to a moving plate 209. The first springs 208 drive the moving plates 209 to move. The elastic coefficient of the first springs is relatively large, and they will only generate elastic deformation under the pressure of the moving plates 209. One side of the moving plate 209 is magnetically attracted to one side of the other power box 201. At the beginning, the construction workers magnetically connect the moving plate 209 to the other power box 201, and then push one of the power boxes 201. The moving plate 209 magnetically connected to the other power box 201 transmits power to the moving frame 207 through the first spring 208. Since the elastic coefficient of the first spring 208 is relatively large, it will not generate elastic deformation. When the moving frame 207 cannot move any further, the moving plate 209 squeezes the first spring 208, and the first spring 208 generates elastic deformation, which is used to guide the splicing of the holographic transparent screen through the power boxes and prevent the construction workers from splicing out of position. A push block 214 is fixedly installed on the moving plate 209. When the moving plate 209 moves, it drives the push block 214 to move. A moving bracket 215 is slidably installed on one of the power boxes 201, and the push block 214 pushes the moving bracket 215 to move.Thereby driving the rotating rod 204 to drive the limiting block 203 to rotate downward, the limiting block 203 does not remain in a horizontal state with the plug-in block 202, but remains in a vertical state. The other half of the limiting block 203 cooperates with the other half of another set of limiting blocks 203 and inserts into the plug-in blocks 202 of each other, so as to fix the plug-in block 202, quickly connect and fix and quickly disassemble each group of holographic transparent screens 1. On both sides of one set of power boxes 201, there are second springs 212 fixedly connected. The second springs 212 are used to undergo elastic deformation to drive other devices to move. Inside each of the second springs 212 on both sides, there is a detection rod 211 installed. The detection rod 211 is used to visually remind the construction personnel that the holographic transparent screen 1 is successfully connected. On one side of each of the detection rods 211 on both sides, there is an extrusion block 213 fixedly connected. The extrusion block 213 is used to drive the detection rod 211 to move. When the construction personnel magnetically connect the moving plate 209 with another set of power boxes 201, and then push one set of power boxes 201, the moving plate 209 magnetically connected to the moving plate 209 is transmitted to the moving frame 207 through the first spring 208. The elastic coefficient of the first spring 208 is relatively large and will not undergo elastic deformation. When the moving frame 207 cannot move any further, the moving plate 209 squeezes the first spring 208, and the first spring 208 undergoes elastic deformation, which is used to guide the splicing of the holographic transparent screens through the power boxes, preventing the construction personnel from splicing misalignment. At the same time, the movement of the moving plate 201 drives the push block 214 to move, and the push block 214 pushes the moving frame 215 to move, thereby driving the rotating rod 204 to drive the limiting block 203 to rotate downward. The limiting block 203 does not remain in a horizontal state with the plug-in block 202, but remains in a vertical state. The other half of the limiting block 203 cooperates with the other half of another set of limiting blocks 203 and inserts into the plug-in blocks 202 of each other, so as to fix the plug-in block 202, quickly connect and fix and quickly disassemble each group of holographic transparent screens 1. At the same time, the plug-in block 202 squeezes the extrusion block 213 to drive the detection rod 211 to pop out, visually reminding the construction personnel that the holographic transparent screen 1 is successfully connected.,

[0017] In an alternative embodiment, first grooves are provided inside each of the four groups of plug-in blocks 202. Both the limiting block 203 and the rotating rod 204 are slidably connected to the first grooves. One side of the rotating rod 204 extends through the first groove for installation. The moving frame 215 pushes the rotating rod 204 to move on the first groove. The rotating rod 204 drives the limiting block 203 to rotate downward in the first groove. The limiting block 203 does not remain in a horizontal state with the plug-in block 202, but remains in a vertical state. The other half of the limiting block 203 cooperates with the other half of another set of limiting blocks 203 and inserts into the first grooves inside the plug-in blocks 202 of each other, so as to fix the plug-in block 202, quickly connect and fix and quickly disassemble each group of holographic transparent screens 1.

[0018] In an alternative embodiment, second grooves are provided on both sets of power supply boxes 201. One side of the rotating rod 204 extends through and is installed in the second groove. The moving frame 215 pushes the rotating rod 204 to move on the second groove and finally hides on the second groove to prevent the rotating rod 204 from affecting the viewing of the holographic transparent screen. Third springs are provided inside all four sets of telescopic rods 206. When the construction worker disassembles the holographic transparent screen, the moving frame 215 is pushed. The moving frame 215 no longer presses on the rotating rod 204. The third spring rebounds inside the telescopic rod 206, driving the telescopic rod 206 to extend, thereby driving the rotating rod 204 of the telescopic rod 206 to adjust the operating angle for reset through the adjusting rod 205. The rotating rod 204 drives the limiting block 203 to be reset and coincide with the plug-in block 202, facilitating the construction worker to quickly disassemble the holographic transparent screen 1 and improving work efficiency.

[0019] In an alternative embodiment, second sliding grooves 217 are provided on both sets of moving frames 207, and first sliding grooves 210 are provided on both sets of moving plates 209. The first sliding groove 217 and the first sliding groove 210 are used to provide a moving place for the detection rod 211 and prevent the detection rod 211 from affecting the movement of the moving frame 207 and the moving plate 209.

[0020] In an alternative embodiment, one side of the detection rod 211 extends through and is installed in the power supply box 201. One side of the detection rod 211 extends through the second sliding groove 217 and the first sliding groove 210 for moving installation. The plug-in block 202 presses the extrusion block 213 to drive the detection rod 211 to pop out through the first sliding groove 217 and the first sliding groove 210, intuitively reminding the construction worker that the holographic transparent screen 1 is successfully connected.

[0021] In an alternative embodiment, a fourth groove is provided on the other side of the moving frame 207. The detection rod 211 is movably installed on the fourth groove. The plug-in block 202 presses the extrusion block 213 to drive the detection rod 211 to pass through the first sliding groove 217 and the first sliding groove 210 and pop out from the fourth groove, intuitively reminding the construction worker that the holographic transparent screen 1 is successfully connected.

[0022] In an alternative embodiment, one side of the second spring 212 is fixedly connected to the extrusion block 213. The second spring 212 is used for rebounding to drive the detection rod 211 and the extrusion block 213 to rebound, facilitating the next operation. A third groove is provided on the power supply box 201. The extrusion block 213 is slidably connected to the third groove. The plug-in block 202 presses the extrusion block 213, and the extrusion block 213 moves into the third groove.

[0023] In an alternative embodiment, a magnetic block 216 is provided on one side of the moving plate 209, and a magnetic block 216 is provided on one side of one of the power supply boxes 201. The construction worker adsorbs the moving plate 209 and the other power supply box 201 to each other through the two magnetic blocks 216, so that the moving plate 209 is connected to the other power supply box 201.

[0024] Working principle: When the construction worker magnetically connects the moving plate 209 with another group of power boxes 201, and then pushes one group of power boxes 201, the moving plate 209 magnetically connected to the moving plate 209 is transmitted to the moving frame 207 through the first spring 208. The elastic coefficient of the first spring 208 is large and will not undergo elastic deformation. When the moving frame 207 cannot move any further, the moving plate 209 squeezes the first spring 208, and the first spring 208 undergoes elastic deformation, which is used to guide the splicing of the holographic transparent screen through the power box, preventing the construction worker from misaligning during splicing. At the same time, the movement of the moving plate 201 drives the push block 214 to move, and the push block 214 pushes the moving frame 215 to move, thereby driving the rotating rod 204 to drive the limiting block 203 to rotate downward. The limiting block 203 does not maintain a horizontal state with the plug-in block 202 but maintains a vertical state. The other half of the limiting block 203 cooperates with the other half of another group of limiting blocks 203 and inserts into the plug-in blocks 202 of each other, so as to fix the plug-in block 202, quickly connect and fix and quickly disassemble each group of holographic transparent screens 1. At the same time, the plug-in block 202 squeezes the extrusion block 213 to drive the detection rod 211 to pop out, intuitively reminding the construction worker that the holographic transparent screen 1 is successfully connected. When the construction worker disassembles the holographic transparent screen, push the moving frame 215. The moving frame 215 no longer presses on the rotating rod 204. The third spring rebounds inside the telescopic rod 206, driving the telescopic rod 206 to extend, thereby driving the rotating rod 204 to adjust the operating angle through the adjusting rod 205 for resetting. The rotating rod 204 drives the limiting block 203 to reset and coincide with the plug-in block 202, facilitating the construction worker to quickly disassemble the holographic transparent screen 1 and improving the work efficiency of the construction worker.

[0025] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A novel holographic transparent screen with rapid disassembly, comprising two sets of holographic transparent screens (1), characterized in that, On one side of each of the two groups of holographic transparent screens (1), a connection component (2) is fixedly installed; The connection component (2) includes two power boxes (201). Inside each of the two power boxes (201), two plug-in blocks (202) are fixedly installed. Inside each of the four plug-in blocks (202), a limiting block (203) is slidably installed. On each of the four limiting blocks (203), a rotating rod (204) is fixedly installed. On each of the four rotating rods (204), an adjusting rod (205) is rotatably installed. On each of the four adjusting rods (205), a telescopic rod (206) is fixedly connected. On one side of each of the four telescopic rods (206), it is fixedly connected to the power box (201). On one of the power boxes (201), a moving frame (207) is movably installed. Inside each of the two moving frames (207), two first springs (208) are fixedly installed. On one side of each of the first springs (208), a moving plate (209) is fixedly connected. One side of the moving plate (209) is magnetically attracted to one side of the other power box (201). On the moving plate (209), a pushing block (214) is fixedly installed. On one of the power boxes (201), a moving bracket (215) is slidably installed. On both sides of one of the power boxes (201), a second spring (212) is fixedly connected. Inside each of the two second springs (212), a detection rod (211) is installed. On one side of each of the two detection rods (211), an extrusion block (213) is fixedly connected.

2. A novel and quickly detachable holographic transparent screen according to claim 1, characterized in that, Inside each of the four plug-in blocks (202), a first groove is provided. The limiting block (203) and the rotating rod (204) are both slidably connected to the first groove. One side of the rotating rod (204) extends through the first groove for installation.

3. A novel holographic transparent screen with fast disassembly according to claim 1, characterized in that, On each of the two power boxes (201), a second groove is provided. One side of the rotating rod (204) extends through the second groove for installation. Inside each of the four telescopic rods (206), a third spring is provided.

4. A novel holographic transparent screen with rapid disassembly according to claim 1, characterized in that, Each of the two moving frames (207) is provided with a second chute (217). On each of the two moving plates (209), a first chute (210) is provided.

5. A novel holographic transparent screen with rapid disassembly according to claim 1, characterized in that, One side of the detection rod (211) extends through the power box (201) for installation. One side of the detection rod (211) extends through the second chute (217) and is movably installed with the first chute (210).

6. A novel holographic transparent screen with fast disassembly according to claim 5, characterized in that, On the other side of the moving frame (207), a fourth groove is provided. The detection rod (211) is movably installed on the fourth groove.

7. A novel holographic transparent screen with fast disassembly according to claim 1, characterized in that, One side of the second spring (212) is fixedly connected to the extrusion block (213). On the power box (201), a third groove is provided. The extrusion block (213) is slidably connected to the third groove.

8. A novel holographic transparent screen with fast disassembly according to claim 1, characterized in that, On one side of the moving plate (209), a magnetic block (216) is provided. On one side of one of the power boxes (201), a magnetic block (216) is provided.