The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this application, illustrate embodiment(s) of the invention and together with the description serve to explain the principle of the invention. In the drawings:
Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts.
Hereinafter, a printing plate according to one embodiment of the present invention and a method of manufacturing an LCD device using the same will be explained with reference to the accompanying drawings.
Referring to
The total cohesive energy between the pattern material 200 and the printing plate 400 is measured by multiplying a cohesive energy (WRC) per unit area between the pattern material 200 and the printing plate 400 by a contact area (S2) between the pattern material 200 and the printing plate 400. The total cohesive energy between the pattern material 200 and the blanket 350 is measured by multiplying a cohesive energy (WRB) per unit area between the pattern material 200 and the blanket 350 by a contact area (S3) between the pattern material 200 and the blanket 350. This can be expressed as the following equation 1.
S
2
W
RC
>S
3
W
RB equation 1
In the above equation 1, if the total cohesive energy (S2WRC) between the pattern material 200 and the printing plate 400 is larger than the total cohesive energy (S3WRB) between the pattern material 200 and the blanket 350, the pattern material 200 is transcribed onto the printing plate 400 precisely.
As the difference between the total cohesive energy (S2WRC) generated between the pattern material 200 and the printing plate 400 and the total cohesive energy (S3WRB) between the pattern material 200 and the blanket 350 increases, the pattern material 200 is more precisely transcribed onto the printing plate 400.
As shown in
Even though the cohesive energy (WRC) per unit area between the pattern material 200 and the printing plate 400 is small, the pattern material 200 is precisely transcribed onto the printing plate 400 owing to the large contact area (S2) between the pattern material 200 and the printing plate 400. Accordingly, the scope in selecting a material for the pattern material 200 becomes wider.
At this time, the hemispherical embossing pattern 600 is smaller in volume height than the pattern material transcribed onto the embossing pattern 600. If the volume height of hemispherical embossing pattern 600 is larger than the volume height of pattern material transcribed onto the embossing pattern 600, the embossing pattern 600 may be brought into contact with the blanket 350 through the pattern material 200. As a result, the blanket 350 may be contaminated or spots may occur.
As shown in
In the above equation 2, the left side corresponds to the volume of hemispherical embossing pattern 600 having the diameter “a”. The right side corresponds to the volume of pattern material transcribed on the embossing pattern 600. In this case, “h” corresponds to a thickness of pattern material 200 coated on the printing roll 300, and “a2” corresponds to the area of minimum square among squares inclusive of the circle having the diameter “a”.
By the equation 2, if the diameter “a” of the hemispherical embossing pattern 600 is smaller than 12 h/π, the hemispherical embossing pattern 600 has no effect on the blanket 350.
Except the embossing pattern 600, the printing plate 400 of the second embodiment is identical to that of the first embodiment.
Referring to
In the above equation 3, the left side corresponds to the volume of embossing pattern 600 of regular tetrahedron, of which each side is “b”. The right side corresponds to the volume of pattern material transcribed onto the embossing pattern 600. In this case, “h” corresponds to a thickness of pattern material 200 coated on the printing roll 300, and
corresponds to the area of minimum square among squares inclusive of the regular triangle having each side “b”.
By the equation 3, if one side “b” of embossing pattern 600 of regular tetrahedron is smaller than 3√{square root over (6h)}, the embossing pattern 600 of regular tetrahedron has no effect on the blanket 350.
Except the embossing pattern 600, the printing plate 400 of the third embodiment is identical to that of the first embodiment.
Referring to
In the above equation 4, the left side corresponds to the volume of embossing pattern 600 of quadrangular pyramid having the height “e” and the bottom inclusive of one side “c” and the other side “d”. The right side corresponds to the volume of pattern material 200 transcribed onto the embossing pattern 600. In this case, “h” corresponds to a thickness of pattern material 200 coated on the printing roll 300, and “cd” corresponds to the area of bottom of quadrangular pyramid.
By the equation 4, if the height “e” of embossing pattern 600 of quadrangular pyramid is smaller than 3 h, the embossing pattern 600 of quadrangular pyramid has no effect on the blanket 350.
Except the embossing pattern 600, the printing plate 400 of the fourth embodiment is identical to that of the first embodiment.
As shown in
In the above equation 5, the left side corresponds to the volume of cone-shaped embossing pattern 600 having the height “e” and the circular bottom of which diameter is “a”. The right side corresponds to the volume of pattern material transcribed onto the embossing pattern 600. In this case, “h” corresponds to a thickness of pattern material 200 coated on the printing roll 300, and “a2” corresponds to the area of minimum square among squares inclusive of the circle having the diameter “a”.
By the equation 5, if the height “e” of cone-shaped embossing pattern 600 is smaller than 12 h/π, the cone-shaped embossing pattern 600 has no effect on the blanket 350.
The shape of embossing pattern 600 is not limited to the above-mentioned preferred embodiments. Within the scope analogized to those skilled in the art, the embossing pattern may vary in shape.
First, as shown in
The preferable method of forming the pattern using the above-mentioned printing plate will be explained with reference to
First, as shown in
As the printing roll 300 coated with the pattern material 200 is rolled on the printing plate 400, some of pattern material 200b is transcribed onto the printing plate 400, as shown in
After that, as shown in
The predetermined pattern may be formed on the substrate 500 by the method of
Then, as shown in
Although not shown, preparing the second substrate 550 is comprised of forming gate and data lines crossing each other to define the pixel region, forming a thin film transistor adjacent to a crossing of the gate and data lines, and forming a pixel electrode electrically connected with the thin film transistor.
As shown in
For the present invention, the contact area between the printing plate and the pattern material is increased owing to the embossing patterns formed in the protrusions of printing plate. As the total cohesive energy between the printing plate and the pattern material increases, it is possible to improve the transcription properties of pattern material, thereby realizing the precise pattern.
Also, the contact area increases between the printing plate and the pattern material. Thus, even though the pattern material having poor transcription properties is used, the transcription properties of pattern material are not deteriorated seriously. As a result, the scope in selecting a material for the pattern material becomes wider.
Furthermore, since the volume of embossing pattern formed in the protrusion of printing plate is smaller than the volume of pattern material transcribed on the embossing pattern, the embossing pattern has no effect on the blanket coated on the printing roll.
It will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the spirit or scope of the inventions. Thus, it is intended that the present invention covers the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.
Number | Date | Country | Kind |
---|---|---|---|
P2006-036622 | Apr 2006 | KR | national |