Self-imaging light-transmitting outer wall concrete hanging plate
By introducing a light-transmitting layer, imaging layer and luminous layer into the light-transmitting concrete slab, the problems of simple pattern and light occlusion of the light-transmitting concrete slab are solved, and the effect of daylight transmission and dynamic display at night is achieved, which is suitable for cultural and creative and advertising.
Patent Information
- Application Number
- CN202422032931.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-21
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-08-21
AI Technical Summary
The existing light-transmitting concrete slabs have simple patterns, cannot carry much information, and block light when powered on, making them unable to take into account both environmental protection and beauty.
Design a self-imaging light-transmitting exterior wall concrete hanger, which includes a light-transmitting layer, an imaging layer and a light-emitting layer. The light-transmitting layer transmits light during the day and does not block light. The image layer and the light-emitting layer display images or videos at night, and connect external devices to control the light-emitting effect through a data interface.
It achieves good light transmission when power is not turned on, and can display dynamic images or videos at night. It has both aesthetic and environmental protection characteristics, and has stable imaging, which is suitable for cultural and creative and advertising.
Smart Images

Figure CN223214862U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of house construction, in particular to a self-imaging light-transmitting exterior wall concrete hanging board. Background Art
[0002] The light-transmitting concrete panel component includes concrete and optical fibers, and the two ends of the optical fibers are respectively arranged on the two surfaces of the light-transmitting concrete component, so that light is transmitted from one end of the optical fiber to the other end to achieve light transmission. Therefore, the optical fiber is the most important component of the light-transmitting concrete. The pattern of the existing light-transmitting concrete panel has been fixed when it leaves the factory. Replacing the pattern usually requires replacing the entire light-transmitting concrete panel. In addition, the patterns of the light-transmitting concrete panels in the prior art are all simple textures and cannot carry much information. Therefore, many shopping malls, cultural and creative parks, and squares will use large LED screens as a carrier for transmitting information and use large LED screens to publicize to the citizens. When the large LED screen is not turned on, the appearance is ugly and cannot be coordinated with the wall. For this reason, the applicant proposed CN202411082172.8, a self-imaging exterior wall concrete hanging panel and a preparation method thereof; to solve the above problems;
[0003] Later, experiments found that a self-imaging exterior wall concrete panel is not light-transmissive. If the brightness of the darker side of the panel is to be enhanced, the panel needs to be electrified, which increases power consumption and is not in line with mainstream environmental awareness. Utility Model Content
[0004] The purpose of the utility model is to overcome the deficiencies in the prior art and provide a self-imaging translucent exterior wall concrete hanging board, so as to solve the problem in the prior art that the translucent concrete board has a simple pattern and the imageable concrete board blocks light.
[0005] The purpose of this utility model is achieved through the following technical solutions:
[0006] A self-imaging light-transmitting exterior wall concrete hanging panel is provided with a panel body, wherein a light-transmitting layer is provided in the panel body and connected to the front and rear wall surfaces of the panel body, wherein the light-transmitting layer forms a channel for light to freely pass through the panel body, and the top and bottom ends of the light-transmitting layer are flush with the front and rear wall surfaces of the panel body, so that the panel body has a certain light transmittance. During the day, the panel body can transmit light through the light-transmitting layer and will not completely block the light. An imaging layer and a luminous layer are also provided in the panel body, wherein the luminous layer is located at the lower end of the imaging layer, and the top end of the imaging layer is flush with the front wall surface of the panel body. The light emitted by the luminous layer can be gathered at the top end of the imaging layer, so that the front wall of the panel body forms a visible surface for projecting pictures, and at night the panel body can be used as a screen for playing pictures, Video, the light-transmitting layer and the imaging layer are distributed in a matrix, and the two are staggered with each other to ensure good light transmittance during the day and stable and clear imaging effects at night. The rear wall of the board is provided with a data slot for access to a multimedia interface, and the light-emitting layer is provided with a data interface. The data interface is placed in the data slot. The light-emitting layer is connected to the video input device through the data interface. The light-emitting effect of the light-emitting layer is adjusted according to the image data input by the video input device, so that the picture displayed on the front of the board is changed, and pictures can be changed or videos can be played, which can be used for cultural and creative industries and advertising; the back of the board is also provided with a hanging slot for hanging the board, and multiple boards can be combined into a curtain wall for use.
[0007] In one embodiment, an isolation layer is further provided in the plate body, and the isolation layer is provided with a covering structure, which can cover the light-emitting layer to isolate the light-emitting layer from the outside world. Before the concrete solidifies, the light-emitting layer can be isolated from the concrete. After the concrete solidifies, the isolation layer also has a supporting effect, so that the working environment of the light-emitting layer is stable. The upper end of the isolation layer is provided with a fastening groove for fixing the imaging layer, and the lower end of the isolation layer is provided with a through groove for connecting the light-emitting layer and the data groove. The isolation layer is also provided with a mud passage for concrete to pass through, which makes it convenient for the concrete to wrap the entire plate layer structure and enhance the integrity.
[0008] In one embodiment, in the board body, the hierarchical structure from top to bottom is specifically that the imaging layer is placed on the top layer, the isolation layer is provided with two layers, namely an upper isolation layer and a lower isolation layer, the upper isolation layer is located at the lower end of the imaging layer, is connected to the imaging layer, and fixes the imaging layer, the luminous layer is placed in the covering structure formed by the upper isolation layer and the lower isolation layer, the light-transmitting layer penetrates each of the above-mentioned layer structures, and each of the above-mentioned layer structures is provided with a penetrating structure for the light-transmitting layer to pass through, so that light can penetrate the board body without affecting the functionality of other board layers.
[0009] In one embodiment, the light-transmitting layer is composed of a plurality of light-transmitting fiber columns, and the imaging layer is composed of a plurality of light-conducting fiber columns. The light-transmitting fiber columns and the light-conducting fiber columns are interlaced with each other and arranged in a matrix in the plate body, and are alternately distributed in the horizontal and vertical directions. The fastening grooves are arranged on the top surface of the upper isolation layer. The fastening grooves can keep the light-conducting fiber columns in an upright state to ensure the imaging effect. The upper isolation layer and the lower isolation layer are provided with penetrating structures as column grooves and mud channels, that is, the light-transmitting fiber columns are placed in the column grooves and mud channels, and the penetrating structure of the light-emitting layer is a square groove. The square groove and the mud channel are located on the same straight line, that is, the two are connected.
[0010] In one embodiment, the light-emitting layer is composed of an LED light board, which is provided with a connecting plate, and the data interface is located on the back of the connecting plate, which is also provided with a driving chip. One side of the connecting plate is also connected to multiple LED light strips, and the LED light strips are in a fence shape. The hollowing of the fence is a square groove, that is, the light-transmitting fiber column is placed between two adjacent LED light strips, staggered with the LED light strips, and does not affect the luminous effect of the LED light strips, and LED lamp beads are also provided on the front of the connecting plate.
[0011] In one embodiment, a limit strip 1 is further provided on the back side of the upper isolation layer, and the limit strip 1 protrudes from the bottom surface of the upper isolation layer. The four walls of the bottom surface of the upper isolation layer extend downward to form a space for accommodating the LED light board with the limit strip 1, and the lower isolation layer is provided with an accommodating space matched with the limit strip 1. When the two are aligned, they form a covering structure, and the limit strip 1 is located under the mud passage, that is, the mud passage penetrates the middle part of the limit strip 1, and the LED light strip is placed between the two limit strips 1. The two limit strips 1 clamp the LED light strip to make it immovable.
[0012] In one embodiment, the top surface of the lower isolation layer is further provided with a limit strip 2 that matches the limit strip 1. The limit strip 2 protrudes from the top surface of the lower isolation layer. The four walls of the top surface of the lower isolation layer extend upward to form a space for accommodating the LED light board with the limit strip 2. After the four walls of the lower isolation layer are aligned with the four walls of the upper isolation layer, the covering structure formed by the two can just accommodate the light-emitting layer and fix the light-emitting layer. The mud passage is located in the limit strip 2, that is, the mud passage penetrates the middle part of the limit strip 2.
[0013] In one embodiment, the through groove is arranged on the side of the lower isolation layer close to the data groove, so that the data interface can pass through the lower isolation layer into the data groove. The data interface is in an exposed state during the board forming process and can be directly connected to electronic equipment after the board is formed.
[0014] In one embodiment, the fastening grooves are arranged on the upper and lower sides of the mud passage and the upper end of the connecting plate, and the fastening grooves are arranged directly above the LED lamp beads. The fastening grooves do not penetrate the upper isolation layer and do not destroy the sealing of the isolation layer. The column grooves are arranged on the left and right sides of the mud passage and do not destroy the integrity of the covering structure inside the isolation layer. The column grooves completely penetrate the upper isolation layer and the lower isolation layer, and form a ring structure for fastening the light-transmitting fiber column through the thickness of the upper isolation layer and the lower isolation layer themselves.
[0015] The beneficial effects of the present invention are as follows: when the board is not powered on, it is no different from an ordinary cement wall. If the front and back sides of the board are not blocked, light can penetrate the board through the light-transmitting layer to enhance the brightness of the dark side. When the board is powered on at night, the front side of the board can light up to play pictures / videos. Compared with the existing concrete light-emitting panels, it has not only the original functions but also the advantages of variable patterns and continuous playback. Each optical fiber column serves as a pixel point and can produce high-quality images. Two layers of isolation plates are provided in the board body, which can cover the light-emitting layer to isolate the light-emitting layer from the outside world. At the same time, it also limits the light-transmitting fiber column, fastening groove, and LED lamp beads to be located in the same straight line to ensure the stability of imaging. The light-transmitting fiber columns are arranged in a line in the mud channel and the column groove. Not only does the LED light board work normally and has a stable imaging effect, but the board also has a light-transmitting effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.
[0017] Figure 1 This is one of the schematic diagrams of the structure of the utility model;
[0018] Figure 2 For this utility model Figure 1 A magnified view of point A;
[0019] Figure 3 This is the second schematic diagram of the structure of the utility model;
[0020] Figure 4 This is one of the structural exploded views of each plate layer of the present invention;
[0021] Figure 5 This is one of the schematic diagrams of the bonding structure of each board layer in the board body of the present invention;
[0022] Figure 6 For this utility model Figure 5 Enlarged view of point B;
[0023] Figure 7 This is the second exploded view of the structure of each plate layer in the utility model;
[0024] Figure 8 This is one of the schematic diagrams of the imaging layer and isolation layer structure of the utility model;
[0025] Figure 9 This utility model Figure 8 Enlarged view of point C;
[0026] Figure 10 This is the second schematic diagram of the imaging layer and isolation layer structure of the utility model;
[0027] Figure 11 For this utility model Figure 10 One of the enlarged views of point D;
[0028] Figure 12 This is a schematic diagram of the isolation layer structure of the utility model;
[0029] Figure 13 For this utility model Figure 12 Enlarged view of point E;
[0030] Figure 14 This is a schematic diagram of the internal structure of the isolation layer of the utility model;
[0031] Figure 15 For this utility model Figure 14 Enlarged view of point F;
[0032] Figure 16 This is a schematic diagram of the light-emitting layer structure of the utility model;
[0033] Figure 17 This is a schematic diagram of the structure of the LED light board of this utility model;
[0034] Figure 18 This is a schematic diagram of the lower isolation layer structure of the utility model;
[0035] Figure 19 For this utility model Figure 18 Enlarged view of point G.
[0036] In the figure: board body 1, light-transmitting layer 2, imaging layer 3, light-emitting layer 4, data slot 5, data interface 6, hanging slot 7, isolation layer 8, fastening slot 9, through slot 10, mud passage 11, upper isolation layer 12, lower isolation layer 13, light-transmitting fiber column 14, light-guiding fiber column 15, column slot 16, square slot 17, LED light board 18, connecting plate 19, LED light strip 20, limit strip 1 21, limit strip 2 22. DETAILED DESCRIPTION
[0037] To facilitate understanding of the present invention, a more comprehensive description of the present invention will be provided below with reference to the accompanying drawings. The accompanying drawings illustrate preferred embodiments of the present invention. However, the present invention can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and comprehensive understanding of the disclosure of the present invention.
[0038] It should be noted that when an element is referred to as being "fixed to" another element, it may be directly attached to the other element or there may be an intermediate element. When an element is referred to as being "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only implementation methods.
[0039] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this invention pertains. The terms used herein in the specification of this invention are intended solely for the purpose of describing specific embodiments and are not intended to limit this invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0040] Example
[0041] See also Figure 1-19A self-imaging light-transmitting exterior concrete panel, which the applicant named LEC (Light-Emitting Compact) iance), provided with a board body 1, when the power is on at night, the front side of the board body 1 serves as a visible surface, when the power is off during the day, the light from the brighter side can be introduced into the other side to increase the brightness of the other side, the front side can be used as a propaganda wall, and the back side can be used as a translucent concrete board, the board body 1 is provided with a translucent layer 2 connecting the front and rear walls of the board body, the translucent layer 2 forms a channel for light to freely pass through the board body 1, which is convenient for light to be transmitted from the bright side to the dark side, and the top and bottom ends of the translucent layer 2 are flush with the front and rear walls of the board body 1, and the translucent layer 2 is not blocked by concrete, the board body 1 is further provided with an imaging layer 3 and a luminous layer 4, the luminous layer 4 is located at the lower end of the imaging layer 3, the top end of the imaging layer 3 is flush with the front wall surface of the board body 1, and the luminous layer 3 is also not blocked by concrete, the light emitted by the luminous layer 4 can be concentrated at the top end of the imaging layer 3, so that the front wall of the board body 1 forms a visible surface for projecting pictures, and the board body 1 composed of concrete can image The layer 3 is wrapped so that the light emitted by the luminous layer 4 does not diffuse and is concentrated on the top of the imaging layer 3. The light-transmitting layer 2 and the imaging layer 3 are distributed in a matrix and are staggered with each other. The back wall of the board body 1 is provided with a data slot 5 for accessing a multimedia interface. The luminous layer 4 is provided with a data interface 6. The data interface 6 is placed in the data slot 5. The data interface 6 can be connected to electronic devices such as desktop computers, laptops, mobile phones, and tablets through a video data cable, so that the video signal is input into the luminous layer 4, the luminous effect of the luminous layer 4 is controlled, and the picture displayed on the front of the board body 1 is changed. The picture can be changed or the video can be played to achieve the purpose of image transmission information. The back of the board body 1 is also provided with a hanging slot 7 for hanging the board body 1. When in use, multiple board bodies 1 can be hung on a shelf through the hanging slot 7. A larger visual curtain wall is composed of multiple board bodies 1, and each board body 1 cooperates to form an image.
[0042] Preferably, an isolation layer 8 is further provided in the plate body 1, and the isolation layer 8 has a covering structure, which can cover the light-emitting layer 4 to isolate the light-emitting layer 4 from the outside world. The upper end of the isolation layer 8 is provided with a fastening groove 9 for fixing the imaging layer 3, and the lower end of the isolation layer 8 is provided with a through groove 10 for connecting the light-emitting layer 4 and the data groove 5. The isolation layer 8 is also provided with a mud passage 11 for concrete to pass through.
[0043] By adopting the above technical solution, the plate body 1 is a hollow plate body 1 cast with concrete, and during the concrete pouring process, the concrete will also flow into the gaps between the side walls of each plate layer and the plate forming mold, and the isolation layer 8 protects the luminous layer 4 so that it does not contact the concrete. Before injecting the concrete, the imaging layer 3 should be placed in the fastening groove 9 first, and the mud channel 11 can be used for concrete to flow in, so that the concrete enters under the isolation layer 8 below to form the bottom surface of the plate body 1. After the concrete fills the mud channel 11, it overflows and fills the top surface of the isolation layer 8 to form the top surface of the plate body 1, and by setting the distance between the mold and the four walls of the isolation layer 8, the concrete can fill the side walls of the isolation layer 8 to form the four walls of the plate body. After the concrete solidifies, the concrete in the mud channel 11 and the concrete on the four walls of the isolation layer 8 will completely wrap the isolation layer.
[0044] Preferably, in the plate body 1, the hierarchical structure from top to bottom is that the imaging layer 3 is placed on the top layer, the isolation layer 8 is provided with two layers, namely an upper isolation layer 12 and a lower isolation layer 13, the upper isolation layer 12 is located at the lower end of the imaging layer 3 and is connected to the imaging layer 3, the light-emitting layer 4 is placed in the encapsulation structure formed by the upper isolation layer 12 and the lower isolation layer 13, the light-transmitting layer 2 penetrates the above-mentioned layers, and the above-mentioned layers are provided with a penetrating structure for the light-transmitting layer 2 to pass through.
[0045] By adopting the above technical solution, during the production, the luminous layer 4 is first placed in the lower isolation layer 13, then glue is applied to the top surface of the lower isolation layer 13, and the upper isolation layer 12 is covered on the lower isolation layer 13 to complete the covering of the luminous layer 4. After the glue solidifies, the upper isolation layer 12 and the lower isolation layer 13 are completely bonded, so that the luminous layer 4 is isolated from the concrete.
[0046] Preferably, the light-transmitting layer 2 is composed of a plurality of light-transmitting fiber columns 14, and the imaging layer 3 is composed of a plurality of light-conducting fiber columns 15. The light-transmitting fiber columns 14 and the light-conducting fiber columns 15 are interlaced with each other and are arranged in a matrix in the plate body 1. The fastening groove 9 is arranged on the top surface of the upper isolation layer 12. The upper isolation layer 12 and the lower isolation layer 13 are provided with a penetrating structure of a column groove 16 and a mud channel 11, that is, the light-transmitting fiber column 14 is placed in the column groove 16 and the mud channel 11, and the penetrating structure of the light-emitting layer 4 is a square groove 17.
[0047] By adopting the above technical solution, the luminous layer 4 is placed in the isolation layer 8, and after the isolation layer 8 is bonded, the optical fiber column 15 can be placed in the fastening groove 9 to form the imaging layer 3, and then the transparent fiber column 14 is placed in the penetrating structure. The penetrating structures at the same position of each layer are on the same straight line, that is, the transparent fiber column 14 is placed in the column groove 16 and the mud channel 11 to form the transparent layer 2.
[0048] Preferably, the light-emitting layer 4 is composed of an LED light board 18, the LED light board 18 is provided with a connecting plate 19, the data interface 6 is located on the back of the connecting plate 19, and a plurality of LED light strips 20 are connected to one side of the connecting plate 19. The LED light strips 20 are in a fence shape, and the hollowing of the fence is a square groove 17, that is, the light-transmitting fiber column 14 is placed between two adjacent LED light strips 20.
[0049] By adopting the above technical solution, LED lamp beads (not shown) are provided on the top surface of the connecting plate 19 and the LED light strip 20, and there are three LED light strips 20, and three rows of LED lamp beads are provided on the top surface of the connecting plate 19. The lamp beads on the connecting plate 19 and the LED lamp beads on the LED light strip 20 are located in the same row, so that all the LED lamp beads on the top surface of the LED light board 18 are equidistant, thereby ensuring imaging quality.
[0050] Preferably, a limit strip 21 is further provided on the back side of the upper isolation layer 12, and the limit strip 21 protrudes from the bottom surface of the upper isolation layer 12. The four walls of the bottom surface of the upper isolation layer 12 extend downward to form a space for accommodating the LED light board 18 with the limit strip 21, and the limit strip 21 is located under the mud channel 11.
[0051] By adopting the above technical solution, after installation, the LED light strip 20 will be placed between two adjacent limit strips 21, fastened therebetween and cannot be moved. The width between the two adjacent limit strips 21 is exactly the width of the LED light strip 20, and the height of the limit strip 21 and the four walls of the upper isolation layer 12 is exactly half the height of the LED light board 18.
[0052] Preferably, the top surface of the lower isolation layer 13 is further provided with a second limiting strip 22 that matches the first limiting strip 21. The second limiting strip 22 protrudes from the top surface of the lower isolation layer 13. The four walls of the top surface of the lower isolation layer 13 extend upward to form a space for accommodating the LED light board 18 with the second limiting strip 22, and the mud passage 11 is located in the second limiting strip 22. The first limiting strip 21 and the second limiting strip 22 form a covering structure when they are fitted together.
[0053] By adopting the above technical solution, during installation, the LED light board 18 is first placed in the lower isolation layer 13, so that an LED light strip 20 is clamped between two adjacent limit strips 22, and the width between the two adjacent limit strips 22 is exactly the width of the LED light strip 20, and the height of the limit strip 22 and the four walls of the lower isolation layer 13 is exactly half the height of the LED light board 18, and cooperates with the upper isolation layer 12. When the upper isolation layer 12 and the lower isolation layer 13 are aligned and fitted, the covering structure formed by the limit strip 1 21 and the limit strip 2 22, the four walls of the upper isolation layer 12 and the four walls of the lower isolation layer 13 just accommodates the LED light board 18, so that the LED light board 18 is completely fixed by the two and isolated from the outside world, and the mud passage 11 is located between the two LED light strips 20, and the mud passage 11 and the LED light strip 20 are isolated by the side walls of the limit strip 1 21 and the limit strip 2 22.
[0054] Preferably, the through groove 10 is disposed on a side of the lower isolation layer 13 close to the data groove, so that the data interface 6 can pass through the lower isolation layer 13 and enter the data groove 5 .
[0055] By adopting the above technical solution, during installation, the connecting plate 19 should be located on the through slot 10 so that the data interface 6 provided on the back thereof is located in the through slot 10, and during the board forming process, a mold for forming the data slot 5 should be placed at the lower end of the through slot 10. The mold is as follows: Figure 4 In the figure, the multiple interconnected rectangular grooves in the lower left corner are the mold.
[0056] Preferably, the fastening grooves 9 are arranged on the upper and lower sides of the mud passage 11 and the upper end of the connecting plate 19, and the fastening grooves 9 do not penetrate the upper isolation layer 12. The column grooves 16 are arranged on the left and right sides of the mud passage 11, and the column grooves 16 completely penetrate the upper isolation layer 12 and the lower isolation layer 13.
[0057] By adopting the above technical solution, the fastening grooves 9 are set on the upper and lower sides of the mud passage 11, just at the upper end of the LED light bar 20, and aligned with each LED lamp bead. The fastening grooves 9 on the connecting plate 19 are also aligned with the LED lamp bead thereon. After the light guide fiber column 15 is placed, all the light guide fiber columns 15, fastening grooves 9 and LED lamp beads are located on the same straight line. The mud passage 11 and the column groove 16 are located between the square grooves 17 formed by the gap between the two LED light bars 20, and are isolated from the LED light bar 20 by the side walls of the limit bar 1 21 and the limit bar 2 22. During production, by placing the light-transmitting fiber column 14 in the mud passage 11 and the column groove 16, the light-transmitting layer 2 can be made to penetrate each layer.
[0058] Working principle: The rectangular array on the front of the board 1 has a plurality of light-transmitting fiber columns 14 and light-guiding fiber columns 15. Each light-guiding fiber column 15 is provided with an LED lamp bead at the bottom, and each LED lamp bead can work independently, so that a single light-guiding fiber column 15 acts as a pixel point, and the imaging layer 3 composed of a plurality of light-guiding fiber columns 15 has a display effect. The light-guiding fiber columns 15 are wrapped by solidified concrete, so that adjacent light-guiding fiber columns 15 are isolated from each other and do not interfere with each other, thereby ensuring the imaging quality of the light-guiding fiber column layer 3. A light-transmitting layer 2 is provided in the board 1. When the light-emitting layer 4 is not started during the day, light can be transmitted from the brighter side to the darker side, thereby increasing the brightness of the darker side. After power is turned on, the board 1 can be used as a TV curtain wall, and the external device is connected through the data interface 6, so that each LED lamp bead in the light-emitting layer 4 emits corresponding light, so that the top surface of the imaging layer 3 forms a picture / video.
[0059] The above-described embodiments merely represent several implementations of the present invention. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art would be able to make various modifications and improvements without departing from the spirit of the present invention, and these modifications and improvements fall within the scope of protection of the present invention. Therefore, the scope of protection of the present invention shall be determined by the appended claims.
Claims
1. A self-imaging light-transmitting exterior wall concrete hanging board, comprising a board body (1), characterized in that: The plate body (1) is provided with a light-transmitting layer (2) communicating with the front and rear walls of the plate body (1). The light-transmitting layer (2) forms a channel for light to freely pass through the plate body (1), and the top and bottom ends of the light-transmitting layer (2) are flush with the front and rear walls of the plate body (1). The plate body (1) is also provided with an imaging layer (3) and a luminous layer (4). The luminous layer (4) is located at the lower end of the imaging layer (3), the top end of the imaging layer (3) is flush with the front wall of the plate body (1), and the light emitted by the luminous layer (4) is Light can converge on the top of the imaging layer (3), so that the front wall of the board body (1) forms a visible surface for projecting pictures. The light-transmitting layer (2) and the imaging layer (3) are distributed in a matrix and are arranged in an interlaced manner. The rear wall of the board body (1) is provided with a data slot (5) for accessing a multimedia interface. The light-emitting layer (4) is provided with a data interface (6), and the data interface (6) is placed in the data slot (5). The back of the board body (1) is also provided with a hanging slot (7) for hanging the board body (1).
2. The self-imageable light-transmitting exterior wall concrete panel according to claim 1, characterized in that: The plate body (1) is further provided with an isolation layer (8), the isolation layer (8) being provided with a covering structure capable of covering the luminous layer (4) so as to isolate the luminous layer (4) from the outside world. The upper end of the isolation layer (8) is provided with a fastening groove (9) for fixing the imaging layer (3), the lower end of the isolation layer (8) is provided with a through groove (10) for connecting the luminous layer (4) and the data groove (5), and the isolation layer (8) is further provided with a mud passage (11) for concrete to pass through.
3. The self-imageable light-transmitting exterior wall concrete panel according to claim 2, characterized in that: In the plate body (1), the hierarchical structure from top to bottom is specifically that the imaging layer (3) is placed at the top layer, the isolation layer (8) is provided with two layers, namely an upper isolation layer (12) and a lower isolation layer (13), the upper isolation layer (12) is located at the lower end of the imaging layer (3) and is connected to the imaging layer (3), the luminous layer (4) is placed in a covering structure formed by the upper isolation layer (12) and the lower isolation layer (13), the light-transmitting layer (2) penetrates each of the above-mentioned layer structures, and each of the above-mentioned layer structures is provided with a penetration structure for the light-transmitting layer (2) to pass through.
4. The self-imageable light-transmitting exterior wall concrete panel according to claim 3, characterized in that: The light-transmitting layer (2) is composed of a plurality of light-transmitting fiber columns (14), and the imaging layer (3) is composed of a plurality of light-conducting fiber columns (15). The light-transmitting fiber columns (14) and the light-conducting fiber columns (15) are interlaced with each other and are arranged in a matrix in the plate body (1). The fastening groove (9) is arranged on the top surface of the upper isolation layer (12). The upper isolation layer (12) and the lower isolation layer (13) are provided with a penetrating structure comprising a column groove (16) and a mud passage (11), that is, the light-transmitting fiber column (14) is placed in the column groove (16) and the mud passage (11). The penetrating structure of the luminous layer (4) is a square groove (17).
5. The self-imaging light-transmitting exterior wall concrete panel according to claim 4, characterized in that: The light-emitting layer (4) is composed of an LED light board (18), and the LED light board (18) is provided with a connecting plate (19). The data interface (6) is located on the back of the connecting plate (19). A plurality of LED light strips (20) are connected to one side of the connecting plate (19). The LED light strips (20) are arranged in a fence shape. The hollowing of the fence is a square groove (17), that is, the light-transmitting fiber column (14) is placed between two adjacent LED light strips (20).
6. The self-imageable light-transmitting exterior wall concrete hanging board according to claim 5, characterized in that: The back of the upper isolation layer (12) is also provided with a limiting strip (21), and the limiting strip (21) protrudes from the bottom surface of the upper isolation layer (12). The four walls of the bottom surface of the upper isolation layer (12) extend downward to form a space for accommodating the LED light board (18) together with the limiting strip (21), and the limiting strip (21) is located under the mud passage (11).
7. The self-imageable light-transmitting exterior wall concrete panel according to claim 6, characterized in that: The top surface of the lower isolation layer (13) is also provided with a second limiting strip (22) matching the first limiting strip (21), and the second limiting strip (22) protrudes from the top surface of the lower isolation layer (13). The four walls of the top surface of the lower isolation layer (13) extend upward to form a space for accommodating the LED light board (18) with the second limiting strip (22), and the mud passage (11) is located in the second limiting strip (22). When the first limiting strip (21) and the second limiting strip (22) are attached, they form a covering structure.
8. The self-imageable light-transmitting exterior wall concrete panel according to claim 7, characterized in that: The through groove (10) is arranged on a side of the lower isolation layer (13) close to the data groove, so that the data interface (6) can pass through the lower isolation layer (13) and enter the data groove (5).
9. The self-imageable light-transmitting exterior wall concrete panel according to claim 8, characterized in that: The fastening groove (9) is arranged on the upper and lower sides of the mud passage (11) and the upper end of the connecting plate (19), and the fastening groove (9) does not penetrate the upper isolation layer (12). The column groove (16) is arranged on the left and right sides of the mud passage (11), and the column groove (16) completely penetrates the upper isolation layer (12) and the lower isolation layer (13).
Citation Information
Patent Citations
Self-imaging outer wall concrete hanging plate and preparation method thereof
CN118762613A