This application is based upon and claims the benefit of priority from Japanese Patent Application Publication No. P2006-350220, filed Dec. 26, 2006, the entire contents of which are incorporated herein by reference.
1. Field
One embodiment of the invention relates to a backlight control unit.
2. Description of the Related Art
In recent years, a study of an art, in which luminance of a liquid crystal backlight is changed in accordance with an image displayed on a screen of a liquid crystal TV and so on, and thereby, an improvement of contrast and a reduction of power consumption are realized, has been advanced. Besides, a development of a direct lighting type backlight using light emitting elements in dot form such as an LED, different from a light guide plate type backlight using a tubular phosphor such as a conventional cold-cathode tube, has been advanced. When the light emitting elements in dot form are used, a lighting control in a divided area becomes possible, and therefore, a contrast improvement can be realized by changing the luminance between a dark portion and bright portion of the image.
A general architecture that implements the various features of the invention will now be described with reference to the drawings. The drawings and the associated descriptions are provided to illustrate embodiments of the invention and not to limit the scope of the invention.
Various embodiments according to the invention will be described hereinafter with reference to the accompanying drawings. In general, according to one embodiment of the invention, a backlight control unit according to the present invention is the one, in which plural light emitting elements are disposed at one surface side, a light emitting device irradiating light of the light emitting elements from a rear surface side of a liquid crystal is held, and an output of each light emitting element of the light emitting device is adjusted so that a contrast is optimized in accordance with a video display level of the liquid crystal, wherein densities of the light emitting elements are different between circumferential edges and a center portion at a light emitting element region where the light emitting elements of the light emitting device are disposed.
Or, in general, according to one embodiment of the invention, a backlight control unit according to the present invention is the one, in which plural light emitting elements are disposed at one surface side, a light emitting device irradiating light of the light emitting element from a rear surface side of a liquid crystal is held, and an output of each light emitting element of the light emitting device is adjusted so that a contrast is optimized in accordance with a video display level of the liquid crystal, wherein radiation directions of the light emitting elements at circumferential edges are inclined toward a center portion side of a light emitting element region at the light emitting element region where the light emitting elements of the light emitting device are disposed.
Or, in general, according to one embodiment of the invention, a backlight control unit according to the present invention in which plural light emitting elements are disposed at one surface side, a light emitting device irradiating light of the light emitting element from a rear surface side of a liquid crystal is held, and an output of each light emitting element of the light emitting device is adjusted so that a contrast is optimized in accordance with a video display level of the liquid crystal, includes: a gain adjusting filter disposed at a front surface of the light emitting device, and increasing a gain output of only the light emitting elements positioning at a center portion of a light emitting element region where the light emitting elements of the light emitting device are disposed, wherein an output of the light emitting elements positioning at the center portion of the light emitting element region is smaller than an output of the light emitting elements positioning at circumferential edges of the light emitting element region.
As shown in
The backlight unit 101 includes a light emitting portion (light emitting device) 104 and a diffusion prism sheet 105 equalizing the light of the light emitting portion 104, and the light 102 transmitting the diffusion prism sheet 105 is irradiated to the liquid crystal panel 103.
The liquid crystal panel 103 includes a pair of polarizing plates 106, 109, a liquid crystal 107 and a color filter 108 interposed between the pair of polarizing plates 106, 109. The light 102 incident to this liquid crystal panel 103 is polarized by the polarizing plate 106, and thereafter, incident to the liquid crystal 107. Further, the light 102 sequentially transmits the color filter 108, the polarizing plate 109, and outputs the light on the liquid crystal panel. Namely, the polarized light is controlled at a portion corresponding to each pixel of the liquid crystal 107, a transmission amount of light is adjusted at the polarizing plate 109, and further, the light is colored by the color filter 108 to output a video.
Plural light emitting elements (for example, LED) 110 are disposed at one surface side of the light emitting portion 104, as shown in
An output of each light emitting element 110 of the light emitting portion 104 is adjusted by an output control portion 111 which is connected to the light emitting portion 104. More concretely, this output control portion 111 adjusts the output of each light emitting element 110 of the light emitting portion 104 so that the contrast is optimized in accordance with a display level of video at the liquid crystal 107. Accordingly, at the light emitting portion 104, the light emitting elements 110 disposed at a region corresponding to black band-shaped portions are lighted out (or the luminance decreases significantly) by the output control portion 111 when the black band-shaped portions are displayed at circumferential edges (right and left end portions and upper and lower end portions) of the liquid crystal as shown in
Here, the following are known that the brightness (luminance) of the light emitting element 110 decreases in accordance with light emitting time (drive time), and the more a light emission amount of the light emitting element 110 is, the larger a decreasing amount becomes as shown in
Namely, when the black band-shaped portion is displayed for a long time, or displayed for the number of times repeatedly as stated above, relative luminance of the light emitting elements 110 of the other portion relative to the light emitting elements 110 corresponding to the band-shaped portion decreases little by little. Concretely speaking, when the black band-shaped portions are displayed at the right and left end portions of the liquid crystal 107 as shown in (a) part of
As a result, a variation of deterioration becomes gradually large between the light emitting elements 110 of the light emitting portion 104, and a lack of uniformity in brightness, a lack of uniformity in luminance of the liquid crystal, or the like appear on a screen.
Consequently, a gain adjusting filter 113 as shown in
Accordingly, in the light emitting portion 104, the light emission amount (light-emission luminance) of each light emitting element 110 is adjusted by the output control portion 111 as shown in
As a result, deterioration over time of the light emitting elements 110 at the center portions 112b, 112e of the light emitting element region 112 which are adjusted to make the light emission amount small is effectively suppressed.
Consequently, in a backlight control unit 120 constituted by the above-described light emitting portion 104, gain adjusting filter 113, and output control portion 111, the deterioration over time of the light emitting elements 110 at the center portions 112b, 112e is significantly suppressed as stated above, even when the drive time of the light emitting elements 110 at the center portions 112b, 112e of the light emitting element region 112 becomes long compared to the drive time of the light emitting elements 110 at the circumferential edges 112a, 112c, 112d, and 112f (namely, even when the light emitting elements at the center portion of which drive time is long and the light emitting elements at the circumferential edges of which drive time is short are mixed) resulting from the cases in which the above-stated black band-shaped portions are displayed on the screen for a long time, repeatedly displayed for the number of times, or the like. Accordingly, the variation of deterioration between the light emitting elements 110 is effectively suppressed in the backlight control unit 120.
Next, a backlight control unit 120A in an aspect different from the above-stated embodiment is described with reference to
In the light emitting portion 104A in the present embodiment, the light emitting elements 110 at the circumferential edges 112a, 112c, 112d, and 112f of the light emitting element region 112 are inclined toward the center portions 112b, 112e side. Accordingly, radiation directions of the light emitting elements 110 at the circumferential edges 112a, 112c, 112d, and 112f are inclined toward the center portions 112b, 112e sides. Consequently, the light emission amount (light emission luminance) of each light emitting element 110 is adjusted by the output control portion 111 as shown in
Namely, the light emission amount of the light emitting elements 110 at the circumferential edges 112a, 112c, 112d, and 112f of the light emitting element region 112 is made large, and the light emission amount of the light emitting elements 110 at the center portions 112b, 112e of the light emitting element region 112 is made small, and thereby, the even light is radiated from the light emitting element region 112 as a whole.
As a result, the deterioration over time of the light emitting elements 110 at the center portions 112b, 112e of the light emitting element region 112, of which light emission amount is adjusted to be small, is effectively suppressed as same as the first embodiment. Accordingly, the variation of deterioration between the light emitting elements 110 can be suppressed effectively also in the backlight control unit 120A according to a second embodiment.
Subsequently, a backlight control unit 120B in an aspect different from the above-stated embodiments is described. In the present embodiment, a light emitting portion 104B is used instead of the above-stated light emitting portions 104, 104A, and the filters 114, 115 are not used.
In the light emitting portion 104B, a density of the light emitting elements 110 at the light emitting element region 112 is changed as shown in
Namely, the light emission amount of the light emitting elements 110 at the circumferential edges 112a, 112c, 112d, and 112f of the light emitting element region 112 is made large, and the light emission amount of the light emitting elements 110 at the center portions 112b, 112e of the light emitting element region 112 is made small, and thereby, the equal light is radiated from the light emitting element region 112 as a whole. Consequently, the light emission amount of each light emitting element 110 is adjusted by the output control portion 111 as shown in
As a result, the deterioration over time of the light emitting elements 110 at the center portions 112b, 112e, of the light emitting element region 112 of which light emission amount is adjusted to be small, is effectively suppressed as same as the first embodiment. Accordingly, the variation of deterioration between the light emitting elements 110 can be suppressed effectively also by the backlight control unit 120B according to a third embodiment.
The present invention is not limited to the above-described embodiments, and various modifications are possible. For example, the light emitting element may be the one in which the light emission amount thereof is controlled by a current value or a voltage value without being limited to the one controlled by the pulse width. Besides, the light emitting element is not limited to the LED element, but it may be a laser diode element, an EL element, and so on.
While certain embodiments of the inventions have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel methods and systems described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the methods and systems described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the inventions.
Number | Date | Country | Kind |
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2006-350220 | Dec 2006 | JP | national |