The present invention relates to an optical sheet.
In general, a liquid crystal display device which is one of flat display devices for displaying an image using liquid crystal is thin and light compared to other display devices and has a low consumption electrical power and low driving voltage. Thus, due to these advantages, it has been widely used throughout the industry.
The liquid crystal display device as described above is formed of a liquid crystal display panel for displaying an image and a backlight unit for providing light to the liquid crystal display panel.
The backlight unit includes: a light source which generates light; a light guide plate which changes the path of light incident from the light source and emits the light in a direction of the liquid crystal display panel; and a plurality of optical sheets and a receiving container to improve a luminance characteristic of the light emitted from the light guide plate. Here, the plurality of optical sheets is composed of a diffusion sheets for diffusing the light, a prism sheet for concentrating the light, and the like.
Currently, the display device has the following trends: first, whether or not its slimness can be implemented, second, whether or not energy efficiency can be improved by a low voltage, and third, whether or not it is friendly environmental.
To meet customers' these requirements, the permeability of a panel has been improved, thereby increasing luminance. In addition to this, the application of an LED to the backlight unit has been rapidly increased.
A sheet structure in an LED backlight unit has applied a sheet having high luminance. In this structure, an indispensable optical sheet is a prism sheet. With respect to a structural characteristic, the prism sheet is a sheet which can most efficiently move light up.
As shown in
However, the conventional prism sheet cannot be independently used due to the high visibility of scratches caused by a low shielding property and the low regularity of mountains. Therefore, the conventional prism sheet should be applied with a diffusion sheet or a composite sheet. To solve this problem, when a prism mold is manufactured, a direction of the mountains may be adjusted through vibrations. Furthermore, to increase the intensity of mountains and protect the mountains, a construction may be arbitrarily inserted. However, even though the prism sheet is manufactured by these various methods, the problems of the prism continue to exist.
That is, a real prism type construction has a high haze characteristic, but it is problematic that since refraction is generated in same directions, the shielding property is deteriorated.
The present invention has been made keeping in mind the above problems, and an aspect of the present invention provides an optical sheet having the shielding property and scratch resistance of a prism type product.
According to an aspect of the present invention, there is provided an optical sheet including: a base film; and a plurality of constructions which are irregularly arranged on one surface of the base film so that an arrangement axis of one construction is out of an arrangement axis of another construction adjacent to one side surface of the base film within a range of 1 to 50% of a length or a width of the another construction.
The construction may have one shape of prism, lenticular, R-prism, pyramid, and lens shapes.
The construction may have a width and a length decided within a range of 5 to 400 μm.
A length of the construction may be more than the width or length of a cross-section of the construction.
The plurality of constructions may have different shapes from each other.
The constructions having one shape of the prism and R-prism shapes may have an apex angle decided within a range of 50 to 130°.
The optical sheet may be formed on another surface of the base film, and may further include the plurality of constructions having sag decided within a range of 0.01 to 0.3.
The sag may be decided according to desired optical properties of the optical sheet.
The optical sheet may further include glass beads which are applied to another surface of the base film in an area of less than 10% to a total area of the base film.
The constructions may be formed of an acrylic-based curing resin.
An area occupied by the constructions arranged on one surface of the base film may be more than 65% to the total area of the base film.
The base film may be formed of any one of polymethyl methacrylate (PMMA), polyethylen terephthalate (PET) and polycarbonate (PC).
The constructions may have different heights from each other.
In accordance with the present invention, a protective film of the prism type sheet can be removed, and the weakness and workability of processes can be improved, thereby being capable of reducing a unit price. Furthermore, the shielding force which is the most weakness of the prism type sheet can be improved.
The accompanying drawings are included to provide a further understanding of the present invention, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the present invention and, together with the description, serve to explain principles of the present invention. In the drawings:
Exemplary embodiments according to the present invention will now be described more fully hereinafter with reference to the accompanying drawings. Meanwhile, when it is determined that specific descriptions regarding publicly known relevant functions or configurations may unnecessarily be beside main points of the present invention, corresponding descriptions are omitted. Furthermore, sizes of each element in the drawings can be exaggerated for the convenience of the descriptions, which does not reflect the actual sizes of the corresponding elements.
The present invention provides an optical sheet having the shielding property and scratch resistance of a prism type product. Specifically, the present invention provides the optical sheet having a plurality of constructions which are randomly arranged is provided.
The optical sheet according to an exemplary embodiment of the present invention will be explained with reference to
Referring to
In the present exemplary embodiment, each of the plurality of constructions 120 has a prism shape. Furthermore, the plurality of constructions 120 are irregularly located on the base film 100 so that an arrangement axis of one construction is out of an arrangement axis of another construction adjacent to one side surface of the base film within a range of 1 to 50% of a predetermined area. Here, the arrangement axis means a central axis of the constructions 120 which are parallel to one side surface of the base film 110 on which the constructions 120 are arranged. Furthermore, the predetermined area is decided by a length or a width of each construction. Therefore, a position of the arrangement axis of one construction on the base film 110 may be decided within the range of 1 to 50% of a length or a width of another construction adjacent to one side surface of the base film 110.
In the other words, the plurality of constructions are arranged or located on the base film 110 so that the arrangement axis of one construction is out of the arrangement axis of another construction adjacent to one side surface of the base film within the range of 1 to 50% of the length or width of the another construction. Accordingly, each construction 120 is not arranged in a line with constructions adjacent thereto. That is, the arrangement axis of each construction 120 is not coincident with that of the construction adjacent thereto.
Thus, the plurality of constructions 120 may be irregularly disposed on the base film 110. The constructions 120 have irregular prism type mountains, thereby improving scratch resistance.
In addition, referring to
Furthermore, referring to
In the optical sheet 100 of the configuration as described above, lights are refracted in different directions from each other, thereby being capable of improving a shielding property. Also, as their regular prism type mountains are provided, the scratch resistance may be improved.
The optical sheet according to the first exemplary embodiment includes prism type constructions, but the present invention is not limited to this.
An optical sheet 200 of
The R-prism type construction may also have a structural characteristic of the optical sheet according to the first exemplary embodiment of the present invention as described above. For example, referring to
In
An optical sheet 400 of
In
The lenticular type construction 420 of
[Mathematical Formula 1]
Sag=Height of Lens/Diameter of Lens
The higher the sag of each lens is, the more light is refracted to a direction facing a bottom surface from a ceiling. The sag of the respective constructions 420 and 520 may decide optical properties of the optical sheets 400 and 500. Thus, the sag may be decided according desired optical properties.
The base films 120, 220, 320, 420 and 520 of the above exemplary embodiments may be produced in a sheet shape, and thermoplastic resins having good transmission, and balanced mechanical properties (in particular, impact resistance), heat resistance and electric properties, for example, without any limitation, materials such as polymethyl methacrylate (PMMA), polyethylen terephthalate (PET) or polycarbonate (PC) may be used.
Furthermore, the area occupied by the constructions arranged on the base film may be more than 65% to a total area of the base film. That is, a prism fill factor of the constructions may be more than 65%.
The constructions may be formed of acrylic-based curing resins.
Alternatively, glass beads may be coated with an opposite surface to a surface of the base film, on which the constructions are arranged, in a range of less than 10% of an area.
Furthermore, alternatively, the constructions having sag in a range of 0.01 to 0.3 may be formed on the opposite surface to the surface of the base film on which the constructions are arranged. Thus, the optical properties of a backlight unit in which the optical sheet is used may be improved.
The optical sheets according to the above exemplary embodiments include the constructions in one shape, respectively, but the present invention is not limited to this. According to other exemplary embodiments, the optical sheets may include the constructions having different shapes from each other. For example, the optical sheets may include the prism type constructions and the lenticular type constructions.
By this method, a protective film of the prism type sheet is removed, and the weakness and workability of processes are improved, thereby being capable of reducing a unit price. Furthermore, the shielding force which is the most weakness of the prism type sheet is improved, thereby being capable of replacing the traditional structure of a prism plus a prism plus an MLF (or diffusion sheet) with the structure of an MLF plus a prism.
Because the constructions are randomly arranged on the base film, a factor of deterioration in luminance occurs. However, as shown in Table 1, the reducing ratio of luminance based on a fill factor of the constructions was confirmed by an optical simulation. As a result, when the reducing ratio is more than 65%, the constructions may have a high shielding factor and the reduction factor of a unit price which are compared with the reduction of luminance.
The fill factor in above Table 1 means a ratio occupied by the lens (a prism and other lenses) based on a total area of 100. The Nit is the unit of luminance at the time of performing the optical simulation. The brightness of light emitted from a unit area is Nit, namely, luminance.
Furthermore, the rate of increase means the rates of increase and reduction of luminance. In the fill factor of 100, if luminance is 100, the rate of increase shows a change value of the luminance caused by a change of the fill factor. For example, if the rate of increase of luminance is 100% when the fill factor is 100, and if the rate of increase of luminance is 94% when the fill factor is 75, this means that the rate of reduction of luminance compared to the fill factor is low.
As previously described, in the detailed description of the invention, having described the detailed exemplary embodiments of the invention, it should be apparent that modifications and variations can be made by persons skilled without deviating from the spirit or scope of the invention. Therefore, it is to be understood that the foregoing is illustrative of the present invention and is not to be construed as limited to the specific embodiments disclosed, and that modifications to the disclosed embodiments, as well as other embodiments, are intended to be included within the scope of the appended claims and their equivalents.
Number | Date | Country | Kind |
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10-2011-0089068 | Sep 2011 | KR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/KR2012/007010 | 8/31/2012 | WO | 00 | 2/28/2014 |