IP Library Granted Patent US 8,059,230
Granted Patent B2
US 8,059,230 · App. 12/387,504 · Granted Nov 15, 2011

Illuminator assembly with reflective pyramids and liquid crystal display with same

Assignee: Chimei Innolux Corporation
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Quick Facts
Patent No.
US 8,059,230
App. No.
12/387,504
Granted
Nov 15, 2011
Kind
B2
Abstract

An exemplary illuminator assembly includes light emitting diode (LED) chips and reflective pyramids. The LED chips are arranged in an array and capable of emitting light. The reflective pyramids are arranged in an array complementary to the array of LED chips. Each LED chip is arranged among a plurality of the plurality of reflective pyramids, and each reflective pyramid is arranged among a plurality of the plurality of LED chips. The reflective pyramids include a plurality of reflective surfaces, and the reflective surfaces are inclined to the LED chips and thereby capable of reflecting at least some of the light beams emitted from the LED chips such that the reflected light beams propagate in directions that are closer to a direction normal to the arrays than the directions of said some of the light beams prior to their reflection.

Claims (22)

1. An illuminator assembly comprising:

a plurality of light emitting diode (LED) chips arranged in an array and capable of emitting light; and

a plurality of reflective pyramids arranged in an array complementary to the array of LED chips, wherein each LED chip is arranged among a plurality of the plurality of reflective pyramids and each reflective pyramid is arranged among a plurality of the plurality of LED chips, each reflective pyramid comprises a base with a geometric shape of at least three sides and at least three sloping reflective surfaces that extend from the at least three sides of the base, respectively, the at least three sloping reflective surfaces each extend up from the corresponding side of the base and narrow in width such that the at least three sloping reflective surfaces converge at a top of the reflective pyramid, and each reflective pyramid is ringed by at least three LED chips with each sloping reflective surface of the reflective pyramid opposite to a corresponding LED chip of the at least three LED chips, the reflective surfaces being inclined to the LED chips and thereby capable of reflecting at least some of the light beams emitted from the LED chips such that the reflected light beams propagate in directions that are closer to a direction normal to the arrays than the directions of said some of the light beams prior to their reflection.

2. The illuminator assembly of claim 1 , wherein each reflective pyramid maintains a constant smallest distance from a closest one of the at least three LED chips.

3. The illuminator assembly of claim 1 , wherein the reflective pyramids are selected from the group consisting of triangular pyramids, rectangular pyramids, and hexagonal pyramids.

4. The illuminator assembly of claim 1 , further comprising a reflective film, wherein the reflective pyramids are arranged at the reflective film with the bases of the reflective pyramids abutting the reflective film.

5. The illuminator assembly of claim 4 , further comprising a printed circuit board (PCB) electrically connected to the LED chips, wherein the reflective film comprises a plurality of through holes defined therein, and the LED chips extend from the PCB through the through holes.

6. The illuminator assembly of claim 5 , further comprising a resin layer, wherein the resin layer covers the LED chips and the reflective pyramids.

7. A liquid crystal display comprising:

a liquid crystal panel; and

an illuminator assembly positioned for illuminating the liquid crystal panel, the illuminator assembly comprising:

a plurality of light emitting diode (LED) chips arranged in an array and capable of emitting light; and

a plurality of reflective pyramids arranged in an array complementary to the array of LED chips, wherein each LED chip is arranged among a plurality of the plurality of reflective pyramids and each reflective pyramid is arranged among a plurality of the plurality of LED chips, each reflective pyramid comprises a base with a geometric shape of at least three sides and at least three sloping reflective surfaces that extend from the at least three sides of the base, respectively, the at least three sloping reflective surfaces each extend up from the corresponding side of the base and narrow in width such that the at least three sloping reflective surfaces converge at a top of the reflective pyramid, and each reflective pyramid is ringed by at least three LED chips with each sloping reflective surface of the reflective pyramid opposite to a corresponding LED chip of the at least three LED chips, the reflective surfaces being inclined to the LED chips and thereby capable of reflecting at least some of the light beams emitted from the LED chips such that the reflected light beams propagate in directions that are closer to a direction normal to the arrays than the directions of said some of the light beams prior to their reflection.

8. The liquid crystal display of claim 7 , wherein each reflective pyramid maintains a constant smallest distance from a closest one of the at least three LED chips.

9. The liquid crystal display of claim 7 , wherein the reflective pyramids are selected from the group consisting of triangular pyramids, rectangular pyramids, and hexagonal pyramids.

10. The liquid crystal display of claim 7 , further comprising a reflective film, wherein the reflective pyramids are arranged at the reflective film with the bases of the reflective pyramids abutting the reflective film.

11. The liquid crystal display of claim 10 , further comprising a printed circuit board (PCB) electrically connected to the LED chips, wherein the reflective film comprises a plurality of through holes defined therein, and the LED chips extend from the PCB through the through holes.

12. The liquid crystal display of claim 11 , further comprising a resin layer, wherein the resin layer covers the LED chips and the reflective pyramids.

13. The illuminator assembly of claim 3 , wherein the reflective pyramids are rectangular pyramids, each LED chip is ringed by four reflective pyramids, and a corresponding side of the four sides of each base of the four reflective pyramids is nearest to the LED chip such that the LED chip is ringed by the four reflective pyramids.

14. The illuminator assembly of claim 3 , wherein the reflective pyramids are triangular pyramids, each LED chip is ringed by three reflective pyramids, and a corresponding side of the three sides of each base of the three reflective pyramids is nearest to the LED chip such that the LED chip is ringed by the three reflective pyramids.

15. The liquid crystal display of claim 9 , wherein the reflective pyramids are rectangular pyramids, each LED chip is ringed by four reflective pyramids, and a corresponding side of the four sides of each base of the four reflective pyramids is nearest to the LED chip such that the LED chip is ringed by the four reflective pyramids.

16. The liquid crystal display of claim 9 , wherein the reflective pyramids are triangular pyramids, each LED chip is ringed by three reflective pyramids, and a corresponding side of the three sides of each base of the three reflective pyramids is nearest to the LED chip such that the LED chip is ringed by the three reflective pyramids.

Assignments (3)
CHANGE OF NAME Recorded Apr 7, 2014
From: CHIMEI INNOLUX CORPORATION
To: INNOLUX CORPORATION
Reel/Frame 032621/0718 →
CHANGE OF NAME Recorded Sep 22, 2011
From: INNOLUX DISPLAY CORP.
To: CHIMEI INNOLUX CORPORATION
Reel/Frame 026952/0587 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 4, 2009
From: YEH, CHIH-CHIN
To: INNOLUX DISPLAY CORP.
Reel/Frame 022691/0350 →
Priority Claims (1)
TW 97116305 A · May 2, 2008 · national
Continuity (1)
Related Publication 20090273735A1 · Nov 5, 2009