The present invention relates to a liquid crystal display device having a backlight.
An exemplary liquid crystal display device that is designed for a smaller thickness is shown in
A display surface of the liquid crystal display device is divided into a display area and a non-display area. In the non-display area, the liquid crystal cell 3 and the light-guiding plate 1 are fixedly adhered to each other by the adhesion member 4 such as a double-sided adhesive tape. An upper part of the liquid crystal cell 3 is covered by the frame 7.
A light source such as an LED is arranged on an end face of the light-guiding plate 1 that is not shown in
Patent Document 1 discloses the liquid crystal display device in which an adhesion strength is enhanced by arranging a double-sided tape in a concave portion formed on the upper face of the light-guiding plate and fixedly adhering the liquid crystal cell to the light-guiding plate, while achieving a smaller thickness in the above-described manner.
[Patent Document 1] JP 2003-156740A
As shown in
In the non-display area, the optical sheet 6 is not arranged between the light-guiding plate 1 and the liquid crystal cell 3, and the light-guiding plate 1 and the liquid crystal cell 3 are in close contact with each other by adhesive fixing. Because of this, stray light tends to leak from the light-guiding plate 1 into the liquid crystal cell 3. Further, in the non-display area, since pixel electrodes, switching transistors, etc., that control the liquid crystal are not arranged in the TFT substrate 13 of the liquid crystal cell 3, stray light leaked into the liquid crystal cell 3 directly leaks into the display area as indicated by an arrow (d) without being controlled by the liquid crystal layer, or is reflected by the frame 7 of the non-display area and retuned to the liquid crystal cell 3 of the display area as indicated by an arrow (e).
If such leaked light that cannot be controlled by the liquid crystal layer (e.g., light indicated by the arrows (d) and (e)) directly enters the CF substrate 12 in the periphery of the display area, the leaked light passes through each of the RGB color filters uniformly. This causes a problem that only the periphery of the display area illuminates locally and the color of the display become whitish, which decreases the display quality.
By reducing an arrangement area of the adhesion member 4 where the light-guiding plate 1 and the liquid crystal cell 3 are in close contact with each other, such light leakage is reduced to some extent. However, the adhesion strength between the light-guiding plate 1 and the liquid crystal cell 3 decreases accordingly.
Further, by adding a light-shielding member at an arrangement portion of the adhesion member 4 that allows the light-guiding plate 1 and the liquid crystal cell 3 to be adhered to each other, the light leakage from the light-guiding plate 1 into the liquid crystal cell 3 is solved. However, the addition of the light-shielding member prevents the liquid crystal display device from being thin.
The present invention has been achieved in view of the above problems, and its object is to suppress light leakage in the periphery of the display area.
A liquid crystal display device according to the present invention includes: a liquid crystal cell; a light source; and a light-guiding plate that guides light from the light source to the liquid crystal cell, wherein a cutout is formed on a sidewall of the light-guiding plate. The cutout has an inclined face inclining downward toward an outer side of the light-guiding plate. A reflecting member is inserted in the cutout. A light-shielding member is inserted in the cutout. In a region above the cutout of the light-guiding plate, an adhesion member is arranged on an upper face of the light-guiding plate so that the light-guiding plate and the liquid crystal cell are adhered to each other.
A liquid crystal display device according to the present invention can realize a thin liquid crystal display device that suppresses light leakage from an end portion of a light-guiding plate and has excellent display quality.
Hereinafter, embodiments of the present invention will be described based on the drawings.
A light source such as an LED is arranged on an end face of the light-guiding plate 1 that is not shown in
In the non-display area, a cutout 2 is formed in the middle of a sidewall of the light-guiding plate 1, with an arrangement portion of the adhesion member 4 on the upper face of the light-guiding plate 1 being left. The cutout 2 may be formed simultaneously at the time of molding the light-guiding plate 1, or may be formed by cutting or laser-processing the molded light-guiding plate 1.
When light enters a border plane where substances of different refractive indexes contact with each other, the following reflections occur in dependence on a difference in the refractive indexes and an incident angle of the light: Fresnel reflection in which a part of the incident light passes through the border plane and the remaining light is reflected; and total reflection in which all of the incident light is reflected without passing through the border plane. The present invention utilizes the above-described phenomena. By forming the hollow cutout 2 in the sidewall of the light-guiding plate 1 so as to cause stray light that is reflected by the sidewall of the light-guiding plate 1 (arrow (c)) to be reflected at an interface between the light-guiding plate 1 and air space of the cutout 2 (arrow (g)), a proportion of stray light passing through the non-display area of the liquid crystal cell 3 (arrow (f)) is reduced, which suppresses the light leakage into the non-display area.
Especially, stray light tends to leak into the liquid crystal cell 3 from the arrangement portion of the adhesion member 4 where the light-guiding plate 1 and the liquid crystal cell 3 are in close contact with each other. By providing the cutout 2 such that the cutout overlaps with the arrangement portion of the adhesion member 4, an effect of suppressing the light leakage can be enhanced.
Further, if a width of the cutout 2 is at least several times larger than the wavelength of the light source, Fresnel reflection or total reflection occurs, which reduces the proportion of stray light passing through the cutout 2.
In the present embodiment, by providing the cutout 2 in the sidewall of the light-guiding plate 1 so as to cause stray light to be subjected to Fresnel reflection or total reflection at the interface between the light-guiding plate 1 and the air space of the cutout 2, the leakage of stray light into the non-display area can be suppressed, whereby the decrease in display quality in the periphery of the display area due to light leakage can be prevented.
Further, by forming the cutout 2 up to a boundary between the non-display area and the display area such that the whole cutout 2 overlaps with the arrangement portion of the adhesion member 4, the light leakage from the arrangement portion of the adhesion member 4 can be suppressed, whereby the adhesion strength can be enhanced by increasing an arrangement area of the adhesion member 4.
Further, since a light-shielding member for shielding light leakage need not be placed at the arrangement portion of the adhesion member 4, it is possible to reduce the thickness of the liquid crystal display device.
As shown in
Further, since the reflected light beams are reflected at shallow angles that are equivalent to their incident angles with respect to the inclined face, they are returned to the display area side inside the light-guiding plate 1. The light beams that reach the lower part of the display area (arrow (g)) enter the optical sheet 6, together with normal light beams that are propagated while being reflected by the upper and lower faces of the light-guiding plate 1. Then, these light beams are condensed in the vertical direction, pass through the liquid crystal cell 3 (arrow (b), arrow (h)), and are subjected to the ON/OFF control for achieving various displays.
According to the present embodiment, stray light occurring at the sidewall of the light-guiding plate 1 can be prevented from leaking into the liquid crystal cell 3 of the non-display area. Further, since stray light on the non-display area side that had never been used for display is reflected by the inclined face of the cutout 2 and returned to the display area side, the amount of light of the display area is increased, which achieves displays with excellent contrast.
Although
As shown in
According to the present embodiment, since stray light is reflected by the reflecting member (arrow (g)), light leakage can be suppressed reliably without increasing the thickness for the reflecting member at the arrangement portion of the adhesion member 4, etc. Thereby, it is possible to provide a thin display device with excellent display quality.
Further, similarly to the present embodiment, also in the hollow cutout 2 of Embodiment 2, a reflecting member may be arranged along the inclined face. Also in this case, since stray light is reflected by the reflecting member arranged on the inclined face, light leakage can be suppressed reliably without increasing the thickness for the reflecting member at the arrangement portion of the adhesion member 4, etc. Further, since the amount of light returned to the display area side is increased, the contrast is enhanced. Thereby, it is possible to provide a thin display device with excellent display quality.
Further, instead of inserting the reflecting member in the hollow cutout 2, a light-shielding member such as carbon black may be inserted therein for shielding light leakage. By inserting the light-shielding member in the hollow cutout 2, light leakage can be suppressed reliably without increasing the thickness for the light-shielding member at the arrangement portion of the adhesion member 4, etc. Thereby, it is possible to provide a thin display device with excellent display quality.
Number | Date | Country | Kind |
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2009-212713 | Sep 2009 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2010/056773 | 4/15/2010 | WO | 00 | 3/21/2012 |