1. Field of the Invention
The present invention generally relates to display devices and, particularly, to a light emitting diode display device with excellent display effect.
2. Description of Related Art
Light emitting diodes (LEDs) have excellent characteristics, for example, small volume, good optical properties, low energy consumption, and long lifespan, which make them very suitable for being used as a light source. With the improvement of light emitting efficiency, LEDs are widely employed as light sources in display devices.
Some LED display devices include a plurality of pixel units that are arranged in rows and lines forming array. Each pixel unit includes a red LED emitting red light, a green LED emitting green light, and a blue LED emitting blue light. However, lights emitted from the red, green, and blue LEDs do not mix well with each other resulting in a lower efficiency of the LED display devices.
Therefore, a new LED display device is desired in order to overcome the above-described shortcoming.
An exemplary embodiment of the present invention provides a LED display device including a circuit board and a plurality of pixel units. Each of the pixel units includes a light emitting diode assembly positioned on and electrically connected to the circuit board, and a light-mixed component positioned on a side of the light emitting diode assembly configured for mixing lights emitted from the light emitting diode assembly to generate a mixed light beam.
Other advantages and novel features will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
Many aspects of the LED display device can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the embodiments. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
The LED assembly 132 of each of the pixel units 130 includes at least one red LED capable of emitting red light, at least one green LED capable of emitting green light, and at least one blue LED capable of emitting blue light. Each LED includes a LED chip and a packaging member that encloses the LED chip.
The light-mixed component 134 is configured for mixing lights emitted from the LED assembly 132 to generate a mixed light beam. In the first embodiment, the light-mixed component 134 may be circular, square, or hexagon shaped. The light-mixed component 134 has a reflective inner surface (not labeled), a light input face 1341, and a light output face 1343 opposite and parallel to the light input face 1341. The light input face 1341 is positioned adjacent to the LED assembly 132.
The light-modified component 136 may be a focusing lens and is configured for modifying optical paths of mixed light beams by focusing the mixed light beam emitted from the light-mixed component 134. The focusing lens 136 is attached to the light output face 1343, for example, by index matching glue (not shown).
Lights from the LED assembly 132 are emitted into the light-mixed component 134 via the light input face 1341. Different colored emitted lights are internally reflected in the light-mixed component 134 and mixed into the mixed light beam. The mixed light beam is focused by the light-modified component 136 to reduce the cross-sectional area and the interference between two adjacent pixel units 130, thereby increasing the resolution of the LED display device 100.
Referring to
Referring to
Lights emitted from the LED assembly 132 are internally reflected in the elliptical light-mixed component 334 and mixed into a mixed light beam. The mixed light beam is focused on the second focus point 3343 and the third focus point and changed into parallel light beams by the paraboloidal light-modified component 336 to reduce the cross-sectional area and to avoid lights emitted beyond the visual angle of a user. The interference between two adjacent pixel units 130 is reduced and the resolution of the LED display device 300 is increased.
Referring to
Each micro-lens includes a light input face 4341 and a light output face 4343. Each micro-lens may be a concave-convex bicylindrical lens, a biconvex bicylindrical lens, or a planar-convex cylindrical lens. The light-mixed component 434 is positioned between the light-modified component 436 and the LED assembly 132, with each light input face 4341 facing the LED assembly 132.
Lights from the LED assembly 132 are emitted into the light-mixed component 434 via the input face 4341 and focused and mixed by each micro-lens to generate a mixed light beam. The mixed light beam is focused by the light-modified component 436 to reduce the cross-sectional area. The interference between two adjacent pixel units 130 is reduced and the resolution of the LED display device 400 is increased.
Referring to
The light-mixed component 534 includes a light input face 5341 and a light output face 5343. The light-mixed component 534 is positioned between the light-modified component 536 and the LED assembly 132, with the light input face 5341 facing the LED assembly 132.
The light-modified component 536 is positioned on the light output face 5343. Each microstructure is right-triangular shaped and has a height H, less than 300 micrometers. A distance P between the tips of a pair of adjacent microstructures is less than 400 micrometers.
Lights from the LED assembly 132 are emitted to the light-mixed component 534 via the input face 5341, collected, and mixed to generate a mixed light beam. The mixed light beam is refracted towards the central portion of the LED display device 500 by the microstructure array, which avoids lights emitting beyond the visual angle of a user.
Referring to
The microstructure array 636 is identical to the microstructure array 536 of
Light from the LED assembly 132 is emitted to the light-diffusing board 634 via the light input face 6341, diffused, and mixed by the light diffusion board 634 to generate a mixed light beam. The mixed light beam is refracted towards the central portion of the LED display device 600 by the microstructure array 636 to avoid lights emitting beyond the visual angle of a user.
It is believed that the present embodiments and their advantages will be understood from the foregoing description, and it will be apparent that various changes may be made thereto without departing from the spirit and scope of the invention or sacrificing all of its material advantages, the examples here before described merely being preferred or exemplary embodiments of the invention.
Number | Date | Country | Kind |
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200810300390.9 | Feb 2008 | CN | national |