The present invention relates to backlight structures, and more particularly, to sequential backlight structures.
With the development of light-emitting diodes (LEDs) technology, the luminance of the LEDs has greatly improved. Accordingly, application of LEDs in backlight modules increases. Currently, LED backlight modules are widely used in various related fields such as mobile phones, cars, displays, TVs, etc.
Since LED backlight modules are characterized by various advantageous such as high definition, high brightness, non mercury and high-color reproduction. Thus, the LED backlight modules are different from traditional Cathode Ray Tube (CRT) modules in terms of appearance, optical properties, luminance intensity and design. The designs of LED backlight modules can be distinguished according to their packaging types, and can be generally classified into two types: direct type and edge type. Direct-type LED backlight modules comprise a plurality of LEDs arranged into a module, which is then directly disposed underneath a LCD related component (e.g. a LCD panel or an optical film). Although the direct-type LED backlight modules have a higher light transmission, but they require a longer diffusion distance and more complicated optical design to overcome unevenness in light intensity and color occurred when light from the LEDs of the backlight module is irradiated to a LCD panel. Thus, under the considerations of thinner and lighter flat-panel TVs, edge-type LED backlight modules are currently the main focus of development.
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In the light of forgoing drawbacks, a main objective of the present invention is to provide a backlight structure to improve problems such as uneven light source and poor light mixing.
Another objective of the present invention is to provide a backlight structure with integrally formed light-mixing structure and reflection structure to reduce errors in assembly of the relevant components.
Still another objective of the present invention is to provide a backlight structure that can be formed as a large-scale backlight structure by sequentially connecting backlight devices.
Yet another objective of the present invention is to provide a backlight structure that overcomes the problem of uneven distribution of intensity when used in large scale.
In accordance with the above and other objectives, the present invention provides a backlight structure, comprising a plurality of backlight devices that are sequentially connected to form a large-scale backlight area. Each of the backlight devices comprises an emitting portion and a light-guiding portion. The light-guiding portion has an oblique shape, a light-guiding face connected with the emitting portion, a first face, a second face opposite to the first face and a light output face opposite to the light-guiding face. The emitting portion can be used to provide a LED light source and mix the light source. The light-guiding portion can be used to then uniformly guide the light mixed by the emitting portion. The second face and the emitting portion can be connected to form a stepped fault structure, which abuts the first face of another backlight device, that is, the sections joining the emitting portions and the light-guiding portions can be sequentially connected through the fault structures to form a large-scale backlight structure.
Furthermore, the present invention provides a backlight structure. The differences between this backlight structure and the above backlight structure are mainly that the backlight device comprises an emitting portion, a reflection portion and a light-guiding portion. An LED light source can be provided by the emitting portion, mixed by an extending portion of the reflection portion, and reflected by the reflection portion to the light-guiding portion to be uniformly guided out. The above reflection portion and the light-guiding portion can be integrally formed as one structure and have the same transmittance. The light emitted by the emitting portion is reflected and guided into the light-guiding portion by the reflection portion, in which the reflection portion can be plated with a reflective layer to increase reflectivity. The reflection portion connects with the second face of the light-guiding portion to form a fault structure, which abuts to the first face of another backlight device, that is, the sections joining the reflection portions and the light-guiding portions can be sequentially connected through the fault structures to form a large-scale backlight structure.
In addition, the present invention provides a backlight structure assembly, in which the first faces of above two backlight structures are connected back to back to form a large-scale backlight area. The first face of any one of the two backlight structures is not connected to the fault structure formed by connecting the second face and the reflection face of the other backlight structure. In other words, the first face at the shorter side of the oblique face of one light-guiding portion is connected to the first face at the shorter side of the oblique face of the other light-guiding portion, so the backlight devices are sequentially connected to form a large-scale backlight area without size constraint.
Since the backlight structure is an edge-type backlight structure, when a large-scale backlight structure is formed by sequential connection of the backlight devices, light can be mixed by the emitting portion to increase its light-mixing effect. Furthermore, the section joining the second face of the light-guiding portion of a backlight device and the first face of the light-guiding portion of another backlight device can be removed to form a passage, such that light generated by one backlight device can propagate to another through this passage and vice versa, so as to achieve a better uniformity.
Moreover, since the backlight structure comprises at least one fault structure, one backlight device may closely connects to the light-guiding portion of another backlight device via the fault structure, thus, by virtue of the fault structures, the light-guiding portions can be sequentially connected together to form a large-scale backlight structure, so its size no longer limited. In other words, the backlight structure of the present invention can form various kinds of large-scale backlight sources by sequential connections, overcoming the problem of size constraint. Also, the backlight structure is an edge-type backlight structure, thus eliminating the problem of uneven distribution of the intensity when used in large scale; therefore, it can be applied to large-size TVs or relevant LED fields.
The present invention can be more fully understood by reading the following detailed description of the preferred embodiments, with reference made to the accompanying drawings, wherein:
The present invention is described by the following specific embodiments. Those with ordinary skills in the arts can readily understand the other advantages and functions of the present invention after reading the disclosure of this specification. The present invention can also be implemented with different embodiments. Various details described in this specification can be modified based on different viewpoints and applications without departing from the scope of the present invention.
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The light-guiding portion 13 and the emitting portion 11 are connected in such a way as to form a step-like fault structure, which abuts and connects the light-guiding portion 13 of another backlight device 10, that is, the fault structure abuts and connects to the first face 132 of another light-guiding portion 13. Thereby, using this fault structure, connected portions of the emitting portion 11 and the light-guiding portion 13 can be sequentially connected to form a large-scale backlight structure. Thus, when the large-scale backlight structure is formed by sequential connection, LED light source is mixed by the emitting portion 11 to increase its light-mixing effect and uniformly guided by the light-guiding portion 13 towards the light output face 134 in a light exit direction 135.
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The backlight device in this embodiment is similar to that in the first embodiment. However, the main difference is that the backlight device 20 is at least consisted of an emitting portion 21, a reflection portion 22 and a light-guiding portion 23. The reflection portion 22 and the emitting portion 21 are connected to form a step-like fault structure, which abuts the light-guiding portion 23 of the other backlight device 20, so as to form a large-scale backlight structure.
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In summary, the backlight structure forms a large-scale backlight area by sequentially connecting a plurality of backlight devices. The backlight device is at least composed of an emitting portion and a light-guiding portion. A LED light source is generated and mixed by the emitting portion and guided into the light-guiding portion. A roughened light-guiding face of the light-guiding portion forming a scattering structure can uniformly guide the light mixed by the emitting portion 11 towards a light output face (e.g. a LCD panel) of the light-guiding portion, thus solving the problem of unevenness light source. In addition, since the backlight structure is an edge-type backlight structure, the light-mixing uniformity of the light may be increased after being mixed by the emitting portion.
Moreover, since the emitting portion and the light-guiding portion are connected in such a way as to form a fault structure (e.g. a step-like fault structure), one backlight device may closely connects to the light-guiding portion of another backlight device via the fault structure, that is, by virtue of the fault structure, the light-guiding portions can be sequentially connected together for use, so the size of the backlight structure is not limited. Furthermore, the section joining the second face of the light-guiding portion of a backlight device and the first face of the light-guiding portion of another backlight device can be removed to form a passage, such that light generated by one backlight device can propagate to another through this passage and vice versa, so as to achieve a better uniformity.
Additionally, the backlight structure of the present invention can form various kinds of large-scale backlight sources by sequential connections, overcoming the problem of size constraint. Also, the backlight structure is an edge-type backlight structure, thus eliminating the problem of uneven distribution of the intensity when used in large scale; therefore, it can be applied to large-size TVs or relevant LED fields.
The above embodiments are only used to illustrate the principles of the present invention, and they should not be construed as to limit the present invention in any way. The above embodiments can be modified by those with ordinary skills in the arts without departing from the scope of the present invention as defined in the following Appended claims.
Number | Date | Country | Kind |
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095134928 | Sep 2006 | TW | national |
094136658 | Oct 2005 | TW | national |