This application claims the priority benefit of Taiwan application serial no. 93136433, filed Nov. 26, 2004.
1. Field of the Invention
The present invention generally relates to a planar light source. More particularly, the present invention relates to a planar light source composed of a plurality of cold cathode flat fluorescent lamps (CCFFLs).
2. Description of Related Art
Along with the advancement of the industry, mobile phones, digital cameras, digital video cameras, notebooks, desktop computers and other digitized tools, etc, are all being developed to be more convenient, more functional and to have appealing appearances. The display screens of the mobile phone, the digital camera, the digital video camera, the notebook and the desktop computer are an indispensable communicating interface between the user and the machine, which allows the user to operate these products more conveniently. Recently, most screens of the mobile phone, the digital camera, the digital video camera, the notebook and the desktop computer are liquid crystal displays (LCDs), a mainstream of display devices. However, since the LCDs do not have a light-emitting function themselves, a backlight module is mandated for providing a light source underneath the LCD to achieve the display function.
A conventional common backlight module includes a lamp, a reflective holder and a light-guided plate. The light-guided plate may allow a linear light source emitting from the lamp to be converted to a planar light source. However, since the lamp is disposed at the side of the light-guided plate, the uniformity of the planar light source emitting from the light-guided plate is thus inferior. Consequently, several layers of optical films (such as a diffuser plate, a brightness enhancement plate, etc,) are required to be disposed on a light-emitting surface of the light-guided plate. Thus, the cost of the backlight module is raised because the prices of the light-guided plate and the optical films are expensive. In addition, since the lamp, the reflective holder, and the light-guided plate are individual members, a glue frame is required to securely mount the lamp, the reflective holder, and the light-guided plate. Hence, from the above description, an assembling process of the backlight module is complicated, and the assembling cost can be further raised. Therefore, the cold cathode flat fluorescent lamp (CCFFL) becomes one of mainstreams of the backlight module.
The CCFFL is a plasma light-emitting device, which mainly employs the collision between electrons emitting from a cathode and an inert gas disposed between the cathode and an anode in a gas discharge chamber, thereby ionizing and activating the inert gas to form a plasma. Next, the activated atoms in the plasma will return to a ground state in a way of radiating UV light, which in turn further activates the fluorescent of the CCFFL to generate visible light. Since the CCFFL has a low thermal dissipation, an excellent light-emitting efficiency and a light uniformity, the CCFFL has been applied to the backlight source of the LCDs or other applications. In general, the manufacturing of a larger size CCFFL is difficult. Further, the problems of high manufacturing cost and low yield will be encountered when the CCFFL is applied in the large size display devices or illuminating devices. Based on the reasons described above, the CCFFL is usually applied in the medium and small size display devices.
Accordingly, the present invention is directed to provide a planar light source, suitable for providing a planar light source with a uniform brightness.
The present invention is further directed to provide an LCD, which has a planar light source with a uniform brightness, suitable for providing a better image quality.
A planar light source of the present invention is provided. The planar light source comprises a transflective film, a plurality of cathode fluorescence flat lamps and at least one reflective component. The plurality of cathode fluorescence flat lamps is arranged uderneath the transflective film and each cathode fluorescence flat lamp has a light-emitting area. The reflective component is arranged underneath the transmitting sections of the transflective film and between the light-emitting areas.
In one embodiment of the present invention, the transflective film has, for example, a plurality of transmitting sections and a plurality of half-transmitting sections.
In one embodiment of the present invention, a portion of the light emitting from the CCFFL is reflected by the half-transmitting sections and then the reflective components and is emitted through the transflective film disposed over the reflective component, while the other portion of the light emitting from the cold cathode flat fluorescent lamp (CCFFL) directly passes through the transflective film.
In one embodiment of the present invention, each half-transmitting section has a protrusion structure, for example, a trasflective surface facing the reflective components.
In one embodiment of the present invention, the trasflective surface comprises, for example, a transflective curve surface or a plurality of transflective planes.
In one embodiment of the present invention, the protrusion structure comprises, for example, a cone shape protrusion structure or a strip shape protrusion structure.
In one embodiment of the present invention, the half-transmitting sections further comprise a patterned reflective layer disposed over the transflective film.
In one embodiment of the present invention, the reflective components have, for example, a plurality of reflective surfaces.
In one embodiment of the present invention, the reflective components comprise, for example, at least one pyramid shape structure or at least one cone shape structure.
In one embodiment of the present invention, the reflective components comprise at least one strip element.
The present invention provides an LCD, which comprises a liquid crystal panel and a planar light source. The planar light source comprises a transflective film, a plurality of CCFFLs and at least one reflective component. The CCFFLs are disposed underneath the transflective film and each CCFFL has a light-emitting area. In addition, the reflective component is disposed underneath the transflective film and between the light-emitting areas.
In one embodiment of the present invention, the transflective film has, for example, a plurality of transmitting sections and a plurality of half-transmitting sections.
In one embodiment of the present invention, a portion of the light emitting from the CCFFL is reflected by the half-transmitting sections and then the reflective components, passing through the transflective film disposed over the reflective components while the other portion of light emitting from the CCFFL directly passes through the transflective film.
In one embodiment of the present invention, each half-transmitting section has a protrusion structure, which has, for example, a trasflective surface facing the reflective components.
In one embodiment of the present invention, the trasflective surface comprises, for example, a transflective curve surface or a plurality of transflective planes.
In one embodiment of the present invention, the protrusion structure comprises, for example, a cone shape protrusion structure or a strip shape protrusion structure.
In one embodiment of the present invention, the half-transmitting sections further comprise a patterned reflective layer disposed over the transflective film.
In one embodiment of the present invention, the reflective components have, for example, a plurality of reflective surfaces.
In one embodiment of the present invention, the reflective components comprise, for example, at least one pyramid shape structure or at least one cone shape structure.
In one embodiment of the present invention, the reflective components comprise at least one strip element.
In one embodiment of the present invention, the LCD further comprises at least one optical thin film disposed between the liquid crystal panel and the transflective film.
According to the present invention, a portion of the light emitting from the CCFFL is reflected by the transflective film and the reflective component and is emitted through the transflective film disposed over the reflective component. Conseuqently, the brightness of the light-emitting surface over a non-emitting area is compensated. In conclusion, the present invention employs the design of the transflective film and the reflective components to compensate the brightness over the non-emitting area so that a planar source with a large size and uniform brightness can be obtained by the way of assembling a plurality of CCFFLs.
The objectives, other features and advantages of the invention will become more apparent and easily understood from the following detailed description of the invention when taken in conjunction with the accompanying drawings.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
From the above description, the planar light source 100 of this embodiment provides the planar light source with a larger size. Further, since the manufacturing thereof is conducted by assembling the CCFFLs with a small size, better yield is resulted. It is noted that since the planar source 100 employs a matrix arrangement to assemble the CCFFLs into the outer frame 110, there are low brightness areas spontaneously occurring between the CCFFLs, which further results in non-uniformity in brightness. Although this problem can be solved by increasing a vertical distance between the CCFFLs and the optical film plates 140, such a configuration will result in reducing the brightness of the light-emitting surface and increasing the total thickness of the planar light source 100. Accordingly, this embodiment provides a solution for a uniform light source of the planar light source 100.
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In other words, the portion of light emitted from the CCFFLs is reflected by the transflective film 310 and the reflective component 330. The light is directed from the light-emitting areas 320a to non-emitting areas 320b and eventually passes through the transflective film 310 disposed over the non-emitting areas 320b.
In this embodiment, the reflective component may efficiently employ the light emitting from the fringes of the CCFLs to compensate the light brightness over the reflective components 430.
The LCD of this embodiment may employs the planar light sources 300, 400 of the second and the third embodiments, in addition to the planar light source 200 of the first embodiment.
In conclusion, the tranflective film of the present invention allows a portion of the light emitting from the light-emitting areas to pass through to provide illumination above the light-emitting area. Concurrently, the tranflective film reflects the other portion of the light and then converges the light to the reflective component disposed over the non-emitting areas to compensate the brightness over the non-emitting areas of the planar light source by using the reflective component to reflect the converged light.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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93136433 | Nov 2004 | TW | national |