The invention will become more fully understood from the detailed description and accompanying drawings, which are given for illustration only, and thus are not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
Please refer to
In this embodiment, the light emitting element 30 is not particularly restricted and may be implemented as including a light emitting diode (LED), a LED array or a cold cathode fluorescent lamp (CCFL). Herein, the light emitting elements 30 include a plurality of red, blue and green light emitting diodes.
In addition, the light emitting unit 20 of this embodiment further includes a circuit board 50, and each light emitting element 30 is disposed on the circuit board 50 and electrically connected to the circuit board 50. In this example, the light emitting elements 30 are disposed on an edge of the circuit board 50. In addition, the circuit board 50 may further include at least one electronic element 51 electrically connected to the circuit board 50. In this embodiment, the electronic element 51 includes a thermister 511, a photosensor 512 and a control drive circuit 513, for example. The thermister 511 senses an external environment temperature or a temperature of the light emitting element 30. The photosensor 512 senses the external light intensity or the light intensity of the light emitting element 30. The control drive circuit 513 controls and drives the light emitting element 30.
As shown in
In this embodiment, the light mixing portion 43 is connected to the reflecting portion 42 and forms an included angle θ with the light emitting portion 41. In the implementation, the included angle θ may be greater than (not shown) or equal to 90 degrees (see
The reflecting portion 42 of this embodiment has a reflecting surface 421 and is connected to one side of the light emitting portion 41 so that the reflecting surface 421 is disposed adjacent to a light emitting surface 411 of the light emitting portion 41. The reflecting surface 421 of this embodiment may be implemented as an inclined surface or an arced surface, and is an inclined surface in this example. In this embodiment, the reflecting surface 421 reflects the light rays, which are outputted from the light emitting elements 30 and pass through the light mixing portion 43, to the light emitting portion 41, and the light rays may also be continuously mixed as they are reflected by the reflecting surface 421.
In this embodiment, the light emitting portion 41 is a plate, for example, and the light emitting portion 41 may have a micro-structure and a mesh point pattern (not shown). The mesh point pattern is disposed on a bottom surface 412 of the light emitting portion 41, and reflects the light rays outputted from the light emitting elements 30 back to the light emitting surface 411. The micro-structure is disposed on the light emitting surface 411 of the light emitting portion 41 to break the total reflection so that the light rays may be emitted from the light emitting surface 411. The bottom surface 412 of this embodiment is disposed opposite to the light emitting surface 411. In addition, referring to
In addition, the light mixing portion 43, the light emitting portion 41 and the reflecting portion 42 of this embodiment may be manufactured in various manners, which are not particularly restricted. In the implementation, the light mixing portion 43, the light emitting portion 41 and the reflecting portion 42 may be integrally formed or may be formed by way of punching or pressing. The material of the light mixing portion 43, the light emitting portion 41 and the reflecting portion 42 is not particularly restricted. In the implementation, the material thereof may be a transparent light guiding material, such as polycarbonate.
In addition, the structure of the light guiding element 40 of this embodiment may include the combination of one light emitting portion 41, at least one reflecting portion 42 and at least one light mixing portion 43. For example, the structure includes the combination of one light emitting portion 41, one reflecting portion 42 and one light mixing portion 43, as shown in
Referring to
The light mixing portion 43 may mix the light rays outputted from the light emitting elements 30 uniformly, and then the reflecting portion 42 reflects the mixed light rays to the light emitting portion 41 in the light emitting unit 20. The light rays may be mixed in the light mixing portion 43 as well as the light emitting portion 41, which is also made of the transparent light guiding material, and may be finally emitted from the light emitting surface 411 of the light emitting portion 41. In this manner, the cooperation of the light mixing portion 43, the reflecting portion 42 and the light emitting portion 41 can lengthen the light mixing distance effectively so that the mixed light rays become more uniform.
In this embodiment, one light guiding element 40, a plurality of light emitting elements 30 and one circuit board 50 may be provided to form the light emitting unit 20, as shown in
Referring to
In summary, a light emitting portion, a reflecting portion and a light mixing portion of the light guiding element are provided to lengthen the light mixing distance in the light emitting unit and the light guiding element thereof according to the invention. The reflecting portion having one reflecting surface is connected to one side of the light emitting portion, and the light mixing portion is connected to the reflecting portion and forms an included angle with the light emitting portion. Also, the light mixing portion is disposed on each of the light emitting elements, and the light rays outputted from the light emitting elements enter the light mixing portion. Compared with the related art, the light mixing portion mixes the light rays outputted from the light emitting elements, and then the reflecting portion reflects the mixed light rays to the light emitting portion in the light emitting unit and the light guiding element thereof. The light rays may be mixed in the light mixing portion as well as the reflecting portion and the light emitting portion, and finally emitted from the light emitting portion. In this manner, the light mixing distance may be effectively lengthened, and the mixed light rays may become more uniform so that the quality of the light emitting unit may be enhanced.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
Number | Date | Country | Kind |
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095130153 | Aug 2006 | TW | national |