The present invention relates to a liquid crystal display device, and more specifically relates to a liquid crystal display device having a holding structure of an optical sheet which is adaptive to both of a lateral laying type and an upright laying type.
These days, a screen size of a liquid crystal display device such as a thin type television is becoming larger, and products having a screen size of, for example, a 60-inch type, a 70-inch type and an 80-inch type are sold. In such a liquid crystal display device, one which uses an LED (Light Emitting Diode) as a backlight light source instead of a conventional fluorescent tube is most commonly used. Moreover, the liquid crystal display device is used not only for a television but in various applications such as a monitor of a PC (personal computer) and a digital signage (electronic sign), and the LED is also required to have higher luminance (higher output power) accordingly.
In the above liquid crystal display device, measures for heat dissipation of the LED need to be implemented because an amount of heat generation also increases as the LED has higher luminance. For example, a structure is known that an LED substrate in which an LED serving as a heat source is arranged is attached to an aluminum heat dissipation member called heat sink (also referred to as heat spreader) to dissipate heat of the LED. Such a conventional heat dissipation structure using the heat spreader will be described based on
On a back face side of the liquid crystal panel 103, the optical sheet 104, the light guide plate 105 and the reflection sheet 106 are provided in this order. The optical sheet 104 has functions of making light emitted from the light guide plate 105 uniform, improving luminance in a front side direction, etc. The light guide plate 105 is composed of a transparent resin such as acrylic, and emits light incident from a backlight light source to the liquid crystal panel 103. The reflection sheet 106 has functions of reflecting light which is not incident on the light guide plate 105 among the light emitted from the backlight light source to make it incident on the light guide plate 105, etc.
The LED substrate 109 is a substrate in which an LED serving as the backlight light source is arranged and is fixed to the heat spreader 108 with double-stick tape or the like. The heat spreader 108 is made of, for example, aluminum alloy whose cross section has a T-shape, and fixes the LED substrate 109 having the LED arranged therein at a position opposing to incidence surfaces formed in upper and lower ends of the light guide plate 105. Further, the backlight chassis 107 is provided on a back face side of the heat spreader 108. The backlight chassis 107 is made of, for example, iron, and has a function of dissipating heat from the heat spreader 108 to the back face side.
Moreover, the backlight chassis 107 is convex in a direction of the liquid crystal panel 103, and the liquid crystal panel 103, the optical sheet 104, the light guide plate 105 and the reflection sheet 106 are sandwiched between the backlight chassis 107 and the front-face frame 102, and each of these members is fixed in a close contact state. Specifically, as shown in
In the meantime, the liquid crystal display device as described above is generally a lateral laying type in which a liquid crystal panel is arranged so that long sides of a rectangular-shaped display screen face in a horizontal direction, however, with recent diversification of uses, in a digital signage and the like, an upright laying type in which a liquid crystal panel is arranged so that short sides of a rectangular-shaped display screen face in a horizontal direction also becomes available in the market. Such a lateral laying type and an upright laying type have different holding structures of an optical sheet, so that the optical sheet needs to be prepared in accordance with respective specifications.
On the other hand, for example, Patent Literature 1 describes a liquid crystal display device using an optical sheet of a suspension support type which is adaptive to both of the lateral laying type and the upright laying type. According to this, a plurality of holes are formed on an upper part at a long side of the optical sheet as well as a plurality of holes are also formed on a left side part at a short side. In the case of the lateral laying, the plurality of holes on the upper part at the long side are engaged with a plurality of pins provided in a backlight chassis, while in the case of the upright laying, the plurality of holes on the left side part at the short side are engaged with the plurality of pins provided in the backlight chassis, so as to be adaptive both of the lateral laying type and the upright laying type.
Patent Document 1: Japanese Laid-Open Patent Publication No. 2009-139572
As explained in
Then, a lens sheet, a luminance improved film and the like which constitute the optical sheet 104 have thin sheet shapes and are susceptible to the heat. That is, since the optical sheet 104 is in close contact with the light guide plate 105, the heat is transferred from the light guide plate 105 and there is a possibility that the sheet is thermally deformed. Such thermal deformation of the optical sheet 104 causes reduction in display quality of the liquid crystal display device, which is not desirable.
In order to prevent the thermal deformation of the optical sheet described above, it is effective to insert a resin-made chassis between a peripheral part of the optical sheet and a peripheral part of the light guide plate to thereby form an air layer between the optical sheet and the light guide plate. In this case, however, since the optical sheet and the light guide plate are separated, the optical sheet is not able to be fixed in close contact between the liquid crystal panel and the light guide plate like a conventional manner. Thus, it is considered that the optical sheet is fixed by being engaged with the resin-made chassis, but in the conventional lateral laying type, since positioning of the optical sheet is carried out at a side part, that is, at the short side, when this is made in the upright laying type as it is, there is a problem that positional displacement is likely to occur, in particular, at the long side of the optical sheet.
Note that, a technology described in Patent Literature 1 is for a structure in which the optical sheet common in the lateral laying and the upright laying is supported in a suspended manner by the backlight chassis in the liquid crystal display device by a direct-type backlight, which is not provided with a light guide plate, and does not target the liquid crystal display device by an edge light, which is provided with the light guide plate as described above.
The present invention has been made in view of circumstances as described above, and aims to provide a liquid crystal display device capable of suppressing positional displacement of an optical sheet in the case of upright laying while preventing heat from flowing into the optical sheet or the like.
To solve the above problems, a first technical means of the present invention is a liquid crystal display device, comprising: a rectangular-shaped optical sheet that is arranged on a back face side of a liquid crystal panel, a light guide plate that is provided on a back face side of the optical sheet and emits light from a light source to the liquid crystal panel, and a back-face chassis that is provided on a back face side of the light guide plate, wherein a resin-made chassis that is inserted between a peripheral part of the optical sheet and a peripheral part of the light guide plate and forms an air layer between the optical sheet and the light guide plate is included, a plurality of ribs for engaging with a plurality of holes formed in the peripheral part of the optical sheet are formed in the resin-made chassis, the plurality of holes include a first hole that is formed in a center of one long side of the optical sheet, a second hole that is formed in a center of the other long side of the optical sheet and third holes that are formed along both short sides of the optical sheet, the first hole is restricted to be immovable in directions that are parallel and perpendicular to the long sides of the optical sheet when being engaged with the rib, the second hole is restricted to be immovable in the direction that is parallel to the long sides of the optical sheet when being engaged with the rib, and the third holes are movable in directions that are parallel and perpendicular to the short sides of the optical sheet when being engaged with the ribs.
A second technical means is the liquid crystal display device of the first technical means, wherein the plurality of ribs are projected to have rectangular-shaped cross sections and the plurality of holes are formed in rectangular shapes that allow engagement with the plurality of ribs.
A third technical means is the liquid crystal display device of the first or the second technical means, wherein the first hole, the second hole and the third holes are formed in tabs that extend from the optical sheet.
A fourth technical means is the liquid crystal display device of any one of the first to the third technical means, wherein a fourth hole is formed in the one long side of the optical sheet other than the first hole, and the fourth hole is restricted to be immovable in the direction that is perpendicular to the long sides of the optical sheet when being engaged with the rib.
A fifth technical means is the liquid crystal display device of the third technical means, wherein the tab includes a bent portion that is bent to a side of the light guide plate, a fifth hole is formed in the bent portion, a different rib is formed in a direction that is orthogonal to the rib in the resin-made chassis, and the fifth hole is allowed to be engaged with the different rib.
According to the present invention, since provided is a structure that an air layer is formed by inserting a resin-made chassis between an optical sheet and a light guide plate, and further a plurality of holes that are formed along a peripheral part of the optical sheet are engaged with a plurality of ribs of the resin-made chassis, it is possible to suppress positional displacement of the optical sheet even in the case of upright laying while preventing heat from flowing into the optical sheet or the like.
Description will hereinafter be given for preferred embodiments according to a liquid crystal display device of the present invention with reference to the accompanying drawings.
In
In the resin-made back-face cabinet 5, the stand 4 that supports the liquid crystal display device 1 is attached and the power cord pulling out portion 6 for pulling out a power cord from an inside of the liquid crystal display device 1 is formed. Moreover, the operation button portion 7 for operating the liquid crystal display device 1 is provided on a left-side face of the liquid crystal display device 1.
A vertical length of the heat spreaders 8a and 8b is about 150 mm, for example, when a screen size is 70 inches and material of the heat spreaders 8a and 8b is aluminum. This length is able to be determined appropriately by calculating an area needed for heat dissipation with respect to a heat generation amount of an LED according to the screen size. Further, since the heat spreaders 8a and 8b are arranged on the back face of the backlight chassis 9, it is possible to increase the heat dissipation area compared to a conventional one (
On a back face side of the liquid crystal panel 3, an optical sheet 10, a light guide plate 12, and a reflection sheet are provided in this order. The optical sheet 10 is configured by, for example, two micro lens sheets and one luminance improved sheet, and has functions of making light emitted from the light guide plate 12 uniform, improving luminance in a front side direction, etc. The light guide plate 12 is formed by a transparent resin such as acrylic, and emits light from a light source to the liquid crystal panel 3. The reflection sheet 13 has functions of reflecting light which is not incident on the light guide plate 12 among the light emitted from the light source to make it incident on the light guide plate 12, etc.
The backlight chassis 9 is provided on a back face side of the light guide plate 12 and the reflection sheet 13 and holds the light guide plate 12 and the reflection sheet 13. The heat spreaders 8a and 8b are provided outside the backlight chassis 9, holds LED substrates 14a and 14b having an LED light source arranged therein at a position opposing to incidence surfaces which are formed on upper and lower ends of the light guide plate 12, and dissipates heat generated from the LED substrates 14a and 14b. Note that, the heat spreaders 8a and 8b are fixed to the LED substrates 14a and 14b with double-stick tape or the like.
Moreover, the liquid crystal display device 1 is provided with resin-made chassis 11a to 11f that are formed by plastic or the like. In this example, the resin-made chassis is divided into six, but may be divided into, for example, four, and the number of the division is not particularly limited. These resin-made chassis 11a to 11f are inserted between a peripheral part of the optical sheet 10 and a peripheral part of the light guide plate 12.
Further,
Furthermore,
As shown in
A main object of the present invention is to enable suppression of positional displacement of the optical sheet in the case of upright laying while preventing heat from flowing into the optical sheet or the like. For this configuration, the liquid crystal display device 1 is provided with the optical sheet 10 and the resin-made chassis 11a to 11f. The resin-made chassis 11a to 11f are inserted between the peripheral part of the optical sheet 10 and the peripheral part of the light guide plate 12 and form an air layer 15 (
In addition, the plurality of holes h1 to h16 formed in the peripheral part of the optical sheet 10 include a first hole h4 formed in a center of one long side (here, center of an upper long side) of the optical sheet 10, a second hole h12 formed in a center of the other long side (here, center of a lower long side) of the optical sheet 10, and holes h8, h9, h10, h14, h15 and h16 as one example of third holes formed along both short sides of the optical sheet 10.
Description will be given below for a case where the optical sheet 10 is arranged so as to have the long sides thereof face in a horizontal direction (in the case of lateral laying) with reference to
The first hole h4 is restricted to be immovable in directions that are parallel and perpendicular to the long sides of the optical sheet 10 when being engaged with the rib L4 of the resin-made chassis 11a, b as shown in
Further, the second hole h12 is restricted to be immovable in the direction that is parallel to the long sides of the optical sheet 10 when being engaged with the rib L12 of the resin-made chassis 11d, e as shown in
Further, the third hole h9 is movable in directions that are parallel and perpendicular to the short sides of the optical sheet 10 when being engaged with the rib L9 of the resin-made chassis 11f as shown in
In the above, when the third holes formed in both of the short sides of the optical sheet 10 are engaged with the ribs of the resin-made chassis 11c and 11f, an effect of enabling prevention of dropping of the optical sheet 10 when the liquid crystal display device 1 is laid upright may be attained. Further, by providing gaps between the third holes and the ribs, an effect of enabling absorption of a size change due to thermal deformation may be also attained even when the optical sheet 10 is thermally deformed.
In addition, a fourth hole may be formed other than the first hole h4 in the one long side of the optical sheet 10 (here, upper long side of the optical sheet 10). Specifically, the holes h1 to h3 and h5 to h7 correspond to the fourth holes. For example, the fourth hole h2 is restricted to be immovable in the direction that is perpendicular to the long sides of the optical sheet 10 when being engaged with the rib L2 of the resin-made chassis 11a, b as shown in
Here, though heat generated at the LED substrate 14a in which the LED serving as a heat source is arranged is dissipated by the heat spreader 8a which is a heat dissipation member, by arranging the heat spreader 8a outside the backlight chassis 9, it is possible to make it difficult for the heat to be transferred to the light guide plate 12, the optical sheet 10 and the like. Note that, it is desired that the heat spreader 8a is partially in contact with the backlight chassis 9. This makes it possible to reduce the heat transferred from the heat spreader 8a to the backlight chassis 9.
Further, as described above, by inserting the resin-made chassis 11a, b between the optical sheet 10 and the light guide plate 12, the air layer 15 is formed between the optical sheet 10 and the light guide plate 12. Then, since this air layer 15 functions as a heat insulating layer which blocks heat generation at the LED substrate 14a, it becomes possible to make it difficult for the heat to be transferred to the optical sheet 10.
In
Further, in the same manner as the upper side of the liquid crystal display device 1, in the lower side of the liquid crystal display device 1 as well, by inserting the resin-made chassis 11d, e between the optical sheet 10 and the light guide plate 12, the air layer 15 is formed between the optical sheet 10 and the light guide plate 12. Then, since this air layer 15 functions as a heat insulating layer which blocks heat generation at the LED substrate 14b, it becomes possible to make it difficult for the heat to be transferred to the optical sheet 10.
On the other hand, as shown in
Note that, though description has been given with the tab a4 as a representative example in this example, the fifth holes may be formed in all of the tabs a1 to a16 of the optical sheet 10, and the fifth holes may be formed partially, for example, such as alternately or a plurality of pieces apart among the tabs a1 to a16. In both cases, different ribs corresponding to the fifth holes on the tab side are provided in the resin-made chassis 11a to 11f in directions orthogonal to the ribs L1 to L16. This allows the fifth holes of the optical sheet 10 to be engaged with the different ribs of the resin-made chassis 11a to 11f and the optical sheet 10 is restricted to be immovable in the depth direction.
As described above, the liquid crystal display device according to the present invention is a liquid crystal display device comprising a rectangular-shaped optical sheet that is arranged on a back face side of a liquid crystal panel, a light guide plate that is provided on a back face side of the optical sheet and emits light from a light source to the liquid crystal panel, and a back-face chassis that is provided on a back face side of the light guide plate, in which a resin-made chassis that is inserted between a peripheral part of the optical sheet and a peripheral part of the light guide plate and forms an air layer between the optical sheet and the light guide plate is included, a plurality of ribs for engagement with a plurality of holes formed in the peripheral part of the optical sheet are formed in the resin-made chassis, the plurality of holes include a first hole that is formed in a center of one long side of the optical sheet, a second hole that is formed in a center of the other long side of the optical sheet and third holes that are formed along both short sides of the optical sheet, the first hole is restricted to be immovable in directions that are parallel and perpendicular to the long sides of the optical sheet when being engaged with the rib, the second hole is restricted to be immovable in the direction that is parallel to the long sides of the optical sheet when being engaged with the rib, and the third holes are movable in directions that are parallel and perpendicular to the short sides of the optical sheet when being engaged with the ribs. This makes it possible to limit the positional displacement of the optical sheet to fall within an allowable range without causing unnecessary stress to be generated on the optical sheet when the liquid crystal display device is laid upright, while preventing heat from flowing into the optical sheet.
Moreover, it is desired that the plurality of ribs are projected to have rectangular-shaped cross sections and the plurality of holes are formed in rectangular shapes that allow engagement with the plurality of ribs. This makes it possible, with a simple structure, to limit the positional displacement of the optical sheet to fall within an allowable range without causing unnecessary stress to be generated on the optical sheet when the liquid crystal display device is laid upright.
Moreover, it is desired that the first hole, the second hole and the third holes are formed in tabs that extend from the optical sheet. This makes it possible, with a simple structure, to limit the positional displacement of the optical sheet to fall within an allowable range without causing unnecessary stress to be generated on the optical sheet when the liquid crystal display device is laid upright.
Moreover, it is desired that a fourth hole is formed in the one long side of the optical sheet other than the first hole, and the fourth hole is restricted to be immovable in the direction that is perpendicular to the long sides of the optical sheet when being engaged with the rib. This makes it possible to limit the positional displacement of the optical sheet to fall within an allowable range more effectively without causing unnecessary stress to be generated on the optical sheet when the liquid crystal display device is laid upright.
Moreover, it is desired that the tab includes a bent portion that is bent to aside of the light guide plate, a fifth hole is formed in the bent portion, another rib is formed in a direction that is orthogonal to the rib in the resin-made chassis, and the fifth hole is allowed to be engaged with the different rib. Thereby, the optical sheet is restricted to be immovable in a depth direction of the liquid crystal display device, thus making it possible to prevent the optical sheet from being damaged by being in friction with the liquid crystal panel.
1 . . . liquid crystal display device, 2a to 2d . . . front-face frame, 2e1 to 2e4 . . . frame fastening metal fitting, 3 . . . liquid crystal panel, 4 . . . stand, 5 . . . back-face cabinet, 6 . . . power cord pulling out portion, 7 . . . operation button portion, 8a, 8b . . . heat spreader, 9 . . . back-face chassis (backlight chassis), 9a . . . center seal and auxiliary metal fitting framework, 10 . . . optical sheet, 11a to 11f . . . resin-made chassis, 12 . . . light guide plate, 13 . . . reflection sheet, 14a, 14b . . . LED substrate, and 15 . . . air layer.
Number | Date | Country | Kind |
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2012-237469 | Oct 2012 | JP | national |
2013-063518 | Mar 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2013/078913 | 10/25/2013 | WO | 00 |