Indication device
The display device uses a movable lattice structure and photointerrupter to adjust signal strength, addressing uneven brightness and chromaticity in LED-based displays, ensuring uniform image quality and enabling 3D viewing.
Patent Information
- Application Number
- JP2024133722
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-11-07
- Filing Date
- 2024-08-09
- Publication Date
- 2025-11-06
- Estimated Expiration
- 2044-08-09
AI Technical Summary
Conventional outdoor displays using LEDs as light sources suffer from uneven brightness and chromaticity due to differences in viewing angles, leading to varying image quality based on the viewer's position.
A display device incorporating a light source, lattice structure, and photointerrupter, where the lattice structure moves relative to the light source, adjusting signal strength based on its position relative to the photointerrupter to ensure uniform brightness and chromaticity across different viewing angles.
The device achieves uniform brightness and corrected chromaticity at various viewing angles, enabling a 3D display effect by dynamically adjusting signal strength, thus improving display quality and consistency.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a display device, and more particularly to a display device that is viewable from multiple angles. [Background technology]
[0002] With the rapid development of technology, technological advances in outdoor displays offer a wide range of options for outdoor advertising, event venues, traffic signs, and more. They also provide a better experience for obtaining information and enjoying entertainment in outdoor environments. The development of outdoor displays is particularly dependent on advances in light-emitting diode (LED) technology. The use of LEDs makes outdoor displays brighter and clearer. In addition, various viewing angle technologies are applied to outdoor displays. Advanced LED and display technology allows outdoor displays to offer wider viewing angles, ensuring a uniform display even when viewers view them from different angles.
[0003] However, because LEDs are surface light sources, the light distribution is generally stronger in the center and weaker on the sides. Due to this uneven light distribution, when a viewer looks at a display screen using LEDs as a light source from a long distance, the image will appear different depending on the viewing angle. The image seen by the viewer in the normal direction of the display screen will be bright, but the image seen by the viewer to the side of the display screen will be dark. To overcome the above issues, the development of innovative display devices that can improve the traditional problem of image differences at different viewing angles on a display screen has become an urgent task in the industry. Summary of the Invention
[0004] The main object of the present invention is to provide an innovative display device that can improve the problem of image differences such as uneven brightness and chromaticity due to differences in viewing angle in conventional display screens that use LEDs as light sources.
[0005] To achieve the above object, the present invention provides a display device comprising a light source, a lattice structure, and a photointerrupter. The lattice structure is disposed above the light source and can move left and right relative to the light source. When the lattice structure does not block the photointerrupter, the light source receives a first signal, and when the lattice structure blocks the photointerrupter, the light source receives a second signal.
[0006] In an embodiment of the present invention, the strength of the second signal is greater than the strength of the first signal.
[0007] In an embodiment of the invention, the brightness of light passing through a central region of the grating structure when the light source receives a first signal is approximately equal to the brightness of light passing through regions on either side of the grating structure when the light source receives a second signal.
[0008] In an embodiment of the present invention, the display device further includes a controller and a driver, wherein when the lattice structure does not block the photointerrupter, the controller controls the driver to output a first signal to the light source after receiving a signal from the photointerrupter, and when the lattice structure blocks the photointerrupter, the controller controls the driver to output a second signal to the light source after receiving a signal from the photointerrupter.
[0009] In an embodiment of the present invention, the display device further includes a circuit board, and the light source includes a plurality of light-emitting units arranged on the circuit board.
[0010] In an embodiment of the present invention, each light emitting unit includes a red light emitting diode, a green light emitting diode and a blue light emitting diode.
[0011] In an embodiment of the present invention, the photointerrupter is disposed on the circuit board, and the lattice structure moves left and right to cover or uncover the photointerrupter.
[0012] In an embodiment of the present invention, the lattice structure includes a plurality of lattice units, each lattice unit having a left lattice and a right lattice, the left lattice and the right lattice being spaced apart, when the lattice structure does not block the photointerrupter, the light of each light-emitting unit passes through the space between the left lattice and the right lattice of the lattice unit above it, and when the lattice structure blocks the photointerrupter, the light of each light-emitting unit passes through both side regions of the left lattice and the right lattice of the lattice unit above it.
[0013] In an embodiment of the present invention, in each grating unit, the grating width of the left grating and the right grating is about 0.5 to 20 times the characteristic size of the light-emitting unit, and the characteristic size is the effective diameter or effective side length of the light-emitting unit.
[0014] In an embodiment of the present invention, the distance between each lattice unit and the circuit board is about 1 to 20 times the lattice width of the left lattice and the right lattice in each lattice unit.
[0015] In an embodiment of the present invention, when the width of the display device is five times or more the distance between the display device and the observer, the first signal and the second signal are different signals corresponding to the left eye and right eye of the observer, thereby providing a three-dimensional display to the observer.
[0016] Those skilled in the art can understand other objects of the present invention, as well as the technical means and embodiments of the present invention, by referring to the drawings and the embodiments described below. [Brief explanation of the drawings]
[0017] [Figure 1] FIG. 2 is a schematic diagram illustrating the structure of the display device when the photointerrupter is not blocked in the embodiment of the present invention. [Figure 2] Cross-sectional view along line A-A' within the dotted rectangular area in Figure 1 [Figure 3] FIG. 2 is a schematic diagram illustrating the structure of the display device when the photointerrupter is blocked in the embodiment of the present invention. [Figure 4] A cross-sectional view along line A-A' within the dotted rectangular area of Figure 3. [Figure 5]1 is a schematic waveform diagram showing a photointerrupter signal A and a first signal and a second signal output to a light source in a display device according to an embodiment of the present invention; [Figure 6A] FIG. 10 is a schematic diagram illustrating a light distribution curve after a light-emitting unit receives a first signal in a display device according to an embodiment of the present invention; [Figure 6B] FIG. 10 is a schematic diagram illustrating a light distribution curve after the light-emitting unit receives a second signal in the display device according to the embodiment of the present invention; [Figure 7] Schematic diagram of a display device that performs three-dimensional display in an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0018] The present invention will be described below through examples. Note that the examples of the present invention are merely examples of embodiments and are not intended to limit the present invention to the environments, applications, or specific aspects described in the examples. Therefore, the explanation of the examples is intended to explain the present invention, but does not limit the present invention. Note that components not directly related to the present invention are omitted and not shown in the embodiments and drawings. The dimensional relationships between the components in the drawings are intended to facilitate understanding and do not limit the actual dimensions.
[0019] FIG. 1 is a schematic diagram illustrating the structure of a display device according to an embodiment of the present invention. As shown in FIG. 1, in this embodiment, the display device 1 includes a light source 10, a lattice structure 20, a photointerrupter 30, and a circuit board 40. The light source 10 includes a plurality of light-emitting units 100. The light-emitting units 100 are arranged on the circuit board 40 at intervals in a matrix pattern. The lattice structure 20 is disposed above the light source 10 and can move left and right relative to the light source 10. The photointerrupter 30 is disposed on the circuit board 40. When the lattice structure 20 moves left and right relative to the light source 10, it covers or uncovers the photointerrupter 30. The photointerrupter 30 adjusts the output of the light source 10 by transmitting different signals corresponding to different shielding states. This can address the problem of uneven brightness caused by different viewing angles in conventional display screens.
[0020] In a preferred embodiment, each light-emitting unit 100 includes, but is not limited to, a red light-emitting diode, a green light-emitting diode, and a blue light-emitting diode. For simplicity's sake, FIG. 1 does not specifically show the different colored light-emitting diodes in each light-emitting unit, and instead shows each light-emitting unit 100 with a dotted circle. The dotted circle indicates that the light-emitting unit 100 is disposed below the lattice structure 20. Reference is now made to FIGS. 1 and 2. FIG. 2 is a cross-sectional view taken along line A-A' within the dotted rectangular area in FIG. 1. FIG. 2 illustrates the three-dimensional spatial relationship between the light source, lattice structure, and circuit board in the display device of the present invention. As shown in FIG. 2, the lattice structure 20 of the present invention specifically includes multiple lattice units 200 and multiple horizontal lattices 202. Each lattice unit 200 includes a left lattice 210 and a right lattice 220. The left lattice 210 and the right lattice 220 are spaced apart. Each lattice unit 200 is fixed by the multiple horizontal lattices 202 so that the lattice structure 20 can move left and right relative to the light source 10. The horizontal grating 202 blocks upward light emitted from each light-emitting unit 100, preventing light pollution to the sky when the display device 1 is installed outdoors. Specifically, each grating unit 200 is disposed above the circuit board 40 at a predetermined distance from the circuit board 40. The light-emitting unit 100 is located between the grating unit 200 and the circuit board 40. As shown in FIG. 2 , the left grating 210 and the right grating 220 of the grating unit 200 are disposed above the light-emitting unit 100 provided on the circuit board 40. When the left grating 210 and the right grating 220 move back and forth left and right relative to the light-emitting unit 100, the light from the light-emitting unit 100 may pass only through the gap between the left grating 210 and the right grating 220, or may pass only through the regions on both sides of the left grating 210 and the right grating 220. In a preferred embodiment, the distance between each grating unit 200 and the circuit board 40 is approximately 1 to 20 times the grating width of the left grating 210 and the right grating 220. The lattice width of the left and right lattices is approximately 0.5 to 20 times the characteristic size of the light-emitting unit, where the characteristic size is the effective diameter or effective side length of the light-emitting unit.
[0021] Furthermore, the number of light-emitting units and grating units shown in the figures is merely an example, and the present invention is not limited thereto. The following description will be made with reference to FIGS. 1, 2, 3, and 4. FIGS. 1 and 2 show the spatial relationship between the light-emitting unit 100 and the left grating 210 and the right grating 220 when the photointerrupter 30 is not blocked by any of the grating units 200 of the grating structure 20. Meanwhile, FIGS. 3 and 4 show the spatial relationship between the light-emitting unit 100 and the left grating 210 and the right grating 220 when the photointerrupter 30 is blocked by one of the grating units 200 of the grating structure 20. Similar to FIG. 2, FIG. 4 is a cross-sectional view taken along line A-A' within the dotted rectangular area of FIG. 3 when the photointerrupter 30 is blocked.
[0022] Specifically, as shown in FIGS. 1 and 2, when the photointerrupter 30 is not blocked by any of the grating units 200 of the grating structure 20, the photointerrupter 30 sends a voltage signal to a controller (not shown) of the display device. When the controller receives the voltage signal indicating that the photointerrupter 30 is not blocked, the controller outputs a signal to a driver (not shown), causing the driver to output a first signal. The first signal is received by each light-emitting unit 100 of the light source 10. In this case, the spatial relationship between the light-emitting unit 100 and the grating structure 20 is as shown in FIGS. 1 and 2. The normal direction of the center of the light-emitting unit 100 is directly toward the gap between the left grating 210 and the right grating 220. As a result, most of the light emitted from the normal direction of the light-emitting unit 100 is emitted to the outside through the gap between the left grating 210 and the right grating 220. Most of the light emitted laterally by the light-emitting unit 100 is blocked by the grating units.
[0023] On the other hand, as shown in FIGS. 3 and 4, when the photointerrupter 30 is blocked by one of the grating units 200 of the grating structure 20, the voltage signal received by the controller from the photointerrupter drops significantly, becoming essentially zero. In this case, the controller determines that the photointerrupter is blocked. The controller outputs a signal different from the first signal to the driver, causing the driver to output a second signal. The second signal is received by each light-emitting unit 100 of the light source 10. In this case, the spatial relationship between the light-emitting unit 100 and the grating structure 20 is as shown in FIGS. 3 and 4. The center of the light-emitting unit 100 is exactly blocked by either the left grating 210 or the right grating 220. Most of the light emitted from the light-emitting unit 100 in the normal direction is blocked. Most of the light emitted by the light-emitting unit 100 to both sides passes through the regions on both sides of the left grating 210 and the right grating 220 and is emitted to the outside.
[0024] One feature of the present invention is the ability to dynamically adjust the first and second signals received by the light source. This invention can address image discrepancies, such as uneven brightness and chromaticity, that arise from differences in the viewing angle of a distant observer in conventional display screens that use LEDs as light sources. This will be explained with reference to FIG. 5. In FIG. 5, the ordinate of signal A represents voltage, and the abscissa represents time. The waveform of signal A shows that different voltage signals are output depending on the blocking state of the photointerrupter. As described above, when the photointerrupter is blocked by the lattice structure, the voltage signal sent from the photointerrupter to the controller is substantially close to zero. Conversely, when the photointerrupter is not blocked by the lattice structure, the photointerrupter sends a predetermined voltage signal to the controller. When the lattice structure moves back and forth, the photointerrupter sends a square wave signal, as shown in signal A, to the controller.
[0025] When the controller receives signal A from the photointerrupter, it can determine whether the photointerrupter is blocked. Specifically, if signal A received by the controller is a non-zero predetermined voltage signal, the controller determines that the photointerrupter is not blocked by the lattice structure, and the driver outputs a first signal to the light source. Figure 5 shows the waveform of the first signal. In Figure 5, the ordinate of the first signal represents current, and the abscissa represents time. The waveform of the first signal is a square wave in phase with signal A. In this case, the spatial relationship between the lattice structure and the light source is as shown in Figures 1 and 2. The light-emitting unit 100 emits light after receiving the first signal. Most of the light is emitted externally through the gap between the left grating 210 and the right grating 220. After measurement, the light distribution curve is as shown in Figure 6A. In this light distribution curve, the center is the strongest, and the intensity is observable when the observer is at a frontal viewing angle.
[0026] On the other hand, if the signal A received by the controller is a voltage signal close to zero, the controller determines that the photointerrupter is blocked by the grating structure. In this case, the controller controls the driver to output a second signal to the light source. Figure 5 shows the waveform of the second signal. In Figure 5, the ordinate of the second signal represents current, and the abscissa represents time. The waveform of the second signal is a square wave with an opposite phase to that of the signal A and the first signal. In particular, in the present invention, to solve the problem of non-uniform brightness and chromaticity due to differences in viewing angles in conventional display screens, the intensity of the second signal is greater than that of the first signal. Preferably, the amplitude of the second signal is approximately twice that of the first signal. In this case, the spatial relationship between the grating structure and the light source is as shown in Figures 3 and 4. Specifically, the central region of the light-emitting unit 100 is blocked by either the left grating 210 or the right grating 220. Light emitted by the light-emitting unit 100 passes through both sides of the left grating 210 or the right grating 220 before being emitted to the outside. Considering the weak light intensity on both sides of the light-emitting diode, the amplitude of the second signal is greater than that of the first signal, preferably twice the amplitude of the first signal. As a result, when a viewer views the display device in the state shown in FIGS. 3 and 4 from a side viewing angle, the light emitted to the outside through both sides after the light-emitting unit 100 receives the second signal is intensified, as shown in FIG. 6B. If most of the light emitted from the light-emitting unit 100 passes through both sides of the left grating 210 and the right grating 220 and is emitted to the outside, the second signal is an amplified signal, and the luminance and chromaticity of the light observed by a viewer positioned at a side viewing angle are improved. As a result, the same results are observed at both side and front viewing angles. In other words, the luminance of light passing through the central region of the grating structure when the light-emitting unit receives the first signal is approximately equal to the luminance of light passing through both sides of the grating structure when the light-emitting unit receives the second signal. This solves the problem of uneven luminance and chromaticity due to differences in the viewer's viewing angle in conventional display screens. In this way, the brightness seen by a distant viewer is improved and chromaticity is corrected.
[0027] As described above, the present invention dynamically adjusts the first and second signals to adjust and correct brightness and chromaticity when viewed from a long distance. In particular, the display device of the present invention can use different first and second signals corresponding to the left and right eyes of the observer. This allows the observer to view a 3D display from a close distance. Specifically, as shown in FIG. 7, when the display device 1 of the present invention is applied to a 3D display, the size of the display device must be large enough to substantially cover one of the observer's eyes. The width (g) of the display device must be substantially five times or more the distance (f) between the display device and the observer. As described above, when the photointerrupter 30 is not blocked by any of the lattice units 200 of the lattice structure 20, the photointerrupter 30 transmits a voltage signal, and the driver outputs a first signal. As a result, screen A displayed by the display device is visible to one of the observer's eyes. On the other hand, when the photointerrupter 30 is blocked by one of the lattice units 200 of the lattice structure, the controller controls the driver to output a second signal. As a result, screen B displayed by the display device is visible to the other of the observer's eyes. By making the first signal and the second signal different signals, the observer can view the 3D display from a close distance.
[0028] As mentioned above, to solve the problem of non-uniform brightness and chromaticity in conventional display screens, the present invention uses a light-shielding method to distinguish between light normal to the light source and light from the side. By continuously moving the grating structure, different output signals are generated, which results in different signals at the front and side of the display device. In this way, a viewer can see uniform brightness and chromaticity at different viewing angles from a distance, improving display quality.
[0029] The above examples are intended to explain embodiments of the present invention and to explain the characteristic configurations of the present invention. The present invention is not limited to the above examples. Modifications or equivalent arrangements that can be easily made by those skilled in the art are also within the scope of the present invention. The scope of protection of the rights of the present invention is based on the claims. [Explanation of symbols]
[0030] 1 Display device 10 light source 20 Lattice structure 30 Photointerrupter 40 Circuit Board 100 light-emitting units 200 lattice units 202 Horizontal grid 210 Left Grid 220 Right Grid g Display device width f Distance between the display device and the observer
Claims
1. An outdoor display device, a light source having a plurality of light emitting units arranged on a circuit board; a lattice structure disposed above the light source and movable left and right relative to the light source; a photointerrupter; When the lattice structure does not obstruct the photointerrupter, the light source receives a first signal, and when the lattice structure obstructs the photointerrupter, the light source receives a second signal; the strength of the second signal is greater than the strength of the first signal; An outdoor display device characterized in that the brightness of light passing through a central region of the lattice structure when the light source receives the first signal is approximately equal to the brightness of light passing through regions on both sides of the lattice structure when the light source receives the second signal.
2. Further comprising a controller and a driver, When the lattice structure does not block the photointerrupter, the controller controls the driver to output the first signal to the light source after receiving a signal from the photointerrupter; 2. The outdoor display device according to claim 1, wherein when the lattice structure blocks the photointerrupter, the controller controls the driver to output the second signal to the light source after receiving the signal from the photointerrupter.
3. 2. The outdoor display device according to claim 1, wherein each of the light emitting units includes a red light emitting diode, a green light emitting diode, and a blue light emitting diode.
4. 2. The outdoor display device according to claim 1, wherein the photointerrupter is disposed on the circuit board, and the lattice structure covers or does not cover the photointerrupter when the lattice structure moves left or right.
5. the lattice structure includes a plurality of lattice units, each of the lattice units having a left lattice and a right lattice, the left lattice and the right lattice being spaced apart; When the lattice structure does not block the photointerrupter, the light of each light-emitting unit passes through the gap between the left lattice and the right lattice of the lattice unit above it; The outdoor display device according to claim 1 , wherein when the lattice structure blocks the photointerrupter, the light of each light-emitting unit passes through both side regions of the left lattice and the right lattice of the lattice unit above it.
6. The outdoor display device according to claim 5, characterized in that in each of the lattice units, the lattice width of the left lattice and the right lattice is about 0.5 to 20 times the characteristic size of the light-emitting unit, and the characteristic size is the effective diameter or effective side length of the light-emitting unit.
7. 6. The outdoor display device according to claim 5, wherein the distance between each of the lattice units and the circuit board is approximately 1 to 20 times the lattice width of the left lattice and the right lattice in each of the lattice units.
8. An outdoor display device as described in claim 1, characterized in that a three-dimensional display is formed by outputting different first and second signals corresponding to predetermined left and right eyes.
Citation Information
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