1. Field of the Invention
The present invention is related to a light-guiding device. More particularly, the present invention is related to a light-guiding device for receiving the light sources of different angular and emitting the spatially uniform light in the corresponding direction.
2. Description of the Prior Art
The currently backlighting module of planner monitor is an element that transferred the point light source to the uniformed planner light source. Then the backlighting light source outputted by the backlighting module need to be filtered and be transmitted to the panel via a color filter. However, all of the color filters of present technology are absorption filter, and the property of absorption filter is easily reducing the energy of the backlighting source.
Therefore, providing a technical means without color filter to reduce energy loss of backlight light source is a technical issue which needs to be solved in the technical field.
To solve the previous technical problems, one objective of the present application is providing a light-guiding device that can receive the light sources of different angular and emit the spatially uniform light in the corresponding direction.
To achieve the aforementioned objective, the present application provides a light-guiding device. The light-guiding device comprises a microstructure layer, a plurality of light-guiding layers and a plurality of intermediary layers. The microstructure layer comprises a plurality of microstructure devices. The light-guiding layers are stacked on the microstructure layer. And the intermediary layers are configured on the corresponding light-guiding layer. Furthermore, a reflective index of the light-guiding layer is greater than a reflective index of the upper intermediary layer, one side plane of the light guiding layers defines a inputting-light plane.
To achieve the aforementioned objective, the present application provides a light-guiding system. The light-guiding system comprises aforementioned light-guiding device, and a plurality of light source guiding devices, each light source guiding device match the corresponding light-guiding layer.
Therefore, the light-guiding device of present application is able to receive the light sources of different angular and emit the spatially uniform light in the corresponding direction so as to replace the color filter and prevail the technical problem of prior art.
For a better understanding of the aforementioned embodiments of the invention as well as additional embodiments thereof, reference should be made to the Description of Embodiments below, in conjunction with the following drawings in which like reference numerals refer to corresponding parts throughout the figures.
The following description is about embodiments of the present invention; however it is not intended to limit the scope of the present invention.
The aforementioned intermediary layer 13 is used to bind two light-guiding layers 12, and the material thereof can adopt optical glue. The aforementioned microstructure device could adopt v-type groove, trapezoidal type groove, inversed trapezoidal type groove, or inverted triangle groove . . . etc. In other embodiment, the light-guiding device 1 further coats a reflective layer on the bottom plane of the microstructure layer 11.
The opening angular θ is between entering light path (ELP) and the horizontal axis (HA), x denotes a distance substantially from the inputting-light plane 14 to a position of one of the microstructure device 111.
When the light-guiding layer 12 received the IL, portion of the IL transmits to the microstructure layer 11, hits the microstructure device 111, and reflects or refracts to the outputting-light plane 15. The total reflection plane formed by light-guiding layer 12 and the intermediary layer 13 reflects other portion IL to microstructure layer 11 so as to avoid the inputting light IL directly pass through the intermediary layer 13 without hit the microstructure layer 11.
OP1 denotes thickness of the intermediary layer between the first light-guiding layer (LGP1) and the second light-guiding layer (LGP2). And the OP2 denotes thickness of the intermediary layer between the second light-guiding layer (LGP2) and the third light-guiding layer (LGP3).
The following two tables (Table 1, Table 2) show the setting parameters of two embodiment of the light-guiding device 1.
In present embodiment, the microstructure device 111 distribution density is varied along the y axis direction (that is, from the inputting-light plane 14 to the terminal end 16), therefore the variation of energy distribution also along the y axis direction.
To explain how to provide the light source such as LS1, LS2 and LS3, present application discloses a light source guiding device 2 as shown in
The above disclosure is related to the detailed technical contents and inventive features thereof. People skilled in this field may proceed with a variety of modifications and replacements based on the disclosures and suggestions of the invention as described without departing from the characteristics thereof. Nevertheless, although such modifications and replacements are not fully disclosed in the above descriptions, they have substantially been covered in the following claims as appended.