This application claims the benefits of the Taiwan Patent Application Serial Number 102143698, filed on Nov. 29, 2013, the subject matter of which is incorporated herein by reference.
1. Field of the Invention
The present invention relates to a backlight module and a display device comprising the same, more particularly, to a backlight module for a transparent display device, and a transparent display device comprising the same.
2. Description of Related Art
With the increasing demand for various information media, a variety of lightweight flat panel displays are widely used, and since the liquid crystal display device has the advantages of low operating voltage, zero scattered radiation, light weight and small size, it has become the major display product in the recent years.
On the other hand, the demand for a transparent display device is gradually rising. This type of display device allows users to simultaneously see the display images of the display device and to see the objects behind the display device. Therefore, this type of display devices can be applied to the vehicle windshields, the household glass, or advertising boards, etc., to provide a more convenient way of accessing information.
Liquid crystal display device usually comprises a liquid crystal panel and a backlight module, wherein the backlight module provides a light source for the liquid crystal panel in order to achieve the function of displaying images. Currently, the backlight module used normally has a reflective substrate disposed at the bottom of the backlight module to reflect the light back to the light guide plate in order to increase the efficiency of the light source. However, in the case of a transparent liquid crystal display devices, the backlight source or the reflective substrate of a traditional backlight module hinders the transparency and reduce the perspective feature.
Therefore, a backlight module for the transparent display device characterized by excellent transparency is needed, thus the nature ambient light behind the display device is capable to penetrate through the backlight module and the liquid crystal panel, the display image from the display panel and the objects behind the display device can clearly presented to the users.
The object of the present invention is to provide a backlight module, comprising: a half-wave plate having a disposing surface; a light guide plate having a plurality of light guide units, and the light guide units are arranged adjacently on the disposing surface; and a light source irradiating a light into the light guide plate in a direction vertical to a normal line of the disposing surface; wherein, each of the light guide units respectively comprises: an optical element having a light entrancing surface for an incident light; a first transparent plate disposed on the optical element, and having a first surface, wherein an angle between the first surface and the light entrancing surface is less than 90 degrees; a splitter disposed on the first surface, and reflecting portions of the incident light to the half-wave plate; and a second transparent plate disposed on the splitter, and having a light penetrating surface parallel to the light entrancing surface. According to an embodiment of the present invention, the light guide plate comprises the light guide units HiHn, which are sequentially stacked or arranged, and the intensity of reflecting light reflected from these light guide units H1˜Hn is S1˜n respectively; wherein S1=S2=S3=. . . =Sn=P0/n; and wherein P0 is the intensity of the light.
According to an embodiment of the present invention, when the optical element in the light guide unit is a half-wave plate, the half-wave plates in the light guide units H1˜Hn rotate θ1˜θn respectively in the same direction.
According to an embodiment of the present invention, when the light guide plate comprises the light guide units H1˜Hn, which are sequentially stacked or arranged, and the intensity of reflected light reflected from these light guide units H1˜Hn is S1˜Sn respectively; a penetrating light penetrated from the light guide units H1˜Hn deflect 2θ1˜2θn degree respectively; and the intensity of the penetrating light is P1˜P1, respectively, wherein S1˜Sn, 2θ1˜2θn, and P1˜Pn satisfy the following equation (I):
S
m
=P
m-1×sin2(2θm)=P0/n (I)
wherein Pm=Pm-1×cos2(2θm); and
m is an integer of 1˜n.
Another object of the present invention is to provide a transparent display device, comprising: a display panel; a backlight module disposed on one surface of the display panel, wherein the backlight module comprises: a half-wave plate having a disposing surface; a light guide plate having a plurality of light guide units, the light guide units are arranged adjacently on the disposing surface; and a light source irradiating a light into the light guide plate in a direction vertical to a normal line of the disposing surface; wherein, each of the light guide units respectively comprises: an optical element having a light entrancing surface for an incident light; a first transparent plate disposed on the optical element, and having a first surface, wherein an angle between the first surface and the light entrancing surface is less than 90 degrees; a splitter disposed on the first surface, and reflecting portions of the incident light to the half-wave plate; and a second transparent plate disposed on the splitter, and having a light penetrating surface parallel to the light entrancing surface.
According to the specific embodiments of the following description, other advantages, and novel features of the invention will be apparent to those skilled in the art.
The present invention can also be accomplished by numerous other embodiments. It is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.
The stacked structures shown in
Next, as shown is
Then, the accomplished light guide plate 10 is disposed on disposing surface 212 of half-wave plate 21 to obtain a backlight module 20. Referring now to
In order to achieve a uniform light guiding property, the intensity S1˜Sn of reflected light R1˜Rn reflected by splitters 121˜12n of light guide units H1˜Hn should by identical. Therefore, the intensity S1˜Sn should satisfy the following equation:
S
1
=S
2
=S
3
= . . . =S
n
=P
0
/n.
Since Sm=Pm-1×sin2(2θm), wherein m is an an integer of 1˜, Pm-1×sin2(2θm)=P0/n can be inferred. In this embodiment, each optical element 101˜10n, that is, the rotation angle of each half-wave plate of the light guide plate should satisfy the above equation, thus incident light L0 is uniformly dispersed to half-wave plate 21.
Half-wave plate 21 rotates an angle of φ, and the intensities of the ambient light that penetrate through the backlight module and the back light that penetrate through the backlight module can be adjusted by controlling the rotation angle of half-wave plate 21. For example, the intensity of the original ambient light is Ia0, and the intensity of the ambient light observed by the user is Ia, wherein Ia=Ia0×cos2(2φ); and the intensity of the original backlight is Ib0, and the intensity of the backlight observed by the user is Ib, wherein Ib=Ib0×sin2(2φ). The ambient light Ia penetrating from the back of the transparent display panel is preferred to be 50%-90% of the entire light that users observed, so that the objects behind the transparent display panel can be clearly seen.
In other embodiments, when incident light L0 is a non-polarized light, a polarizer may be disposed in front of optical element 101 of light guide unit H1, as a result, the light incidents into the light guide unit H1 is a polarized light. Or, the entire light guide plate 10 can be shifted as shown in
Referring now to
The embodiments of the present invention are provided for illustrative purposes. It should be noted, however, that the scope and spirit of the invention as disclosed in the accompanying claims, and the scope of the present invention is not limited by the illustrated embodiment.
Number | Date | Country | Kind |
---|---|---|---|
102143698 | Nov 2013 | TW | national |