DocumentCode
1756282
Title
Design of Integrated Light Guide Plate With Functional Structure of Enhanced Diffusion Length for Ultra-slim LED Backlight Unit
Author
Hye-Ran Moon ; Min-Ho Shin ; Jae-Yong Lee ; Kyu-Jin Jang ; Young-Ok Chung ; Young-Joo Kim
Author_Institution
Dept. of Mech. Eng., Yonsei Univ., Seoul, South Korea
Volume
11
Issue
1
fYear
2015
fDate
Jan. 2015
Firstpage
44
Lastpage
52
Abstract
An integrated light guide plate (LGP) with a functional structure for a longer diffusion length to decrease the thickness was proposed and designed for the large area direct-type LED backlight unit (BLU). The integrated LGP is composed of a concave cone structure on the top surface and a rugged bottom surface. The light emitted from the LED sources can be reflected on the top surface and diffuse effectively inside the LGP and in the bottom air-gap, which is placed below the LGP to realize sufficient diffusion length even in the ultra-slim structure. After comparing the optical simulation results with the measured data from the fabricated hexagonal unit cell of an LGP, we verified our design concept and realized the integrated LGP. The final LGP for a 55-inch LED display shows a brightness uniformity of 90.5% with a reduced number of 81 LEDs and a thickness of 6 mm, a remarkably reduced value compared with previous direct-type large area LED backlight units.
Keywords
LED displays; light reflection; light sources; BLU; LGP; bottom air-gap; brightness; concave cone structure; enhanced diffusion length functional structure; hexagonal unit cell fabrication; integrated light guide plate design; optical simulation; rugged bottom surface; size 55 inch; top surface reflection; ultraslim LED backlight unit display; Air gaps; Brightness; Fabrication; Injection molding; Light emitting diodes; Optical reflection; Direct-type light guide plate (LGP); LCD TV; LED backlight unit (BLU); light-emitting diodes (LEDs); ray-tracing simulation; secondary lens;
fLanguage
English
Journal_Title
Display Technology, Journal of
Publisher
ieee
ISSN
1551-319X
Type
jour
DOI
10.1109/JDT.2014.2359932
Filename
6913493
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