Liquid crystal color shutters that include reflective...

Liquid crystal cells – elements and systems – Particular structure – Having significant detail of cell structure only

Reexamination Certificate

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Details

C349S097000, C349S117000

Reexamination Certificate

active

06204901

ABSTRACT:

BACKGROUND OF THE INVENTION
1. Field of the Invention
The invention relates to color shutters developed using liquid crystal (LC) active elements, and more particularly to a color shutter using a reflective polarizer.
2. Description of the Related Art
Conventional projection displays have used different systems for providing each color of red, blue and green. In many variations, separate CRTs were used. In other variations, separate transmissive liquid crystal panels were used. In either case, three separate systems were required, which greatly increased the cost of the projection display. Recently there have been efforts using liquid crystal panels and DMDs, as developed by Texas Instruments, to reduce cost by using a single device instead of three separate devices. This fundamental change from spatial to sequential operation resulted in a reduced cost of the overall projection display. However, problems related to developing the sequential color fields were created. White light had to be sequentially provided from a lamp to the imager device as red, green and blue light. Some form of color wheel or color shutter was used for this purpose. Conceptually the color wheel contained three transmissive sections, i.e., red, green, and blue. As the wheel rotated, each color of light was passed for a time by the filters in the wheel.
However, the color wheel is not a preferred solution in many cases, because of the physical size needed to provide a reasonable time for each sequential color. Liquid crystal-based color shutters would be preferred, as they are typically small. Liquid crystal color shutters, however, use absorptive polarizers in their operation. Generally, the LC color shutters use some form of polarization of the different colors of light combined with a rotation by the LCs. The rotated light is then absorbed by various polarizers. The light energy must be absorbed by the polarizers to provide the desired effect. This is acceptable in the original uses in color cameras, but becomes a problem for high power lamps used for projection displays. To get sufficient light to the screen, in either front or rear projector applications, a very large amount of light must be provided from the lamp. The various losses in the system, which may approach 99%, reduce the light levels to the final projected level. As a result, the light level at the color shutter, which is placed relatively early in the light path, is very high. Thus, the absorptive polarizers would be required to absorb large amounts of light, much more than they could reasonably bear. The color shutters would either fail or breakdown in the short term or degrade in the long term due to improper thermal effects. Therefore, LC color shutters are not a reasonable alternative to the color wheel. The designer is left without a good solution for the single imager, sequential projection display system.
SUMMARY OF THE INVENTION
The invention relates to providing a reflective polarizer in LC-based color shutters in place of the absorptive polarizer. By using a reflective polarizer, the light being filtered is not absorbed, but is reflected. Thus, the total energy being absorbed by the system is greatly reduced, so that the color shutter can be used in projection applications. Additionally, if the lamp used in the system is capable of utilizing the reflected light, overall system efficiency is increased.
In one aspect, the invention features an apparatus that includes a color shutter. The color shutter includes a reflecting polarizer adapted to pass light of a polarization and to reflect light of other polarizations.


REFERENCES:
patent: 4268127 (1981-05-01), Oshima et al.
patent: 4425028 (1984-01-01), Gagnon et al.
patent: 4544237 (1985-10-01), Gagnon
patent: 4961642 (1990-10-01), Ogino
patent: 4969732 (1990-11-01), Wright et al.
patent: 5122905 (1992-06-01), Wheatley et al.
patent: 5122906 (1992-06-01), Wheatley
patent: 5132826 (1992-07-01), Johnson et al.
patent: 5193015 (1993-03-01), Shanks
patent: 5223869 (1993-06-01), Yanagi
patent: 5243455 (1993-09-01), Johnson et al.
patent: 5333072 (1994-07-01), Willett
patent: 5337106 (1994-08-01), Jutamulia et al.
patent: 5347378 (1994-09-01), Handschy et al.
patent: 5389982 (1995-02-01), Lee
patent: 5416618 (1995-05-01), Juday
patent: 5453859 (1995-09-01), Sannohe et al.
patent: 5467146 (1995-11-01), Huang et al.
patent: 5467154 (1995-11-01), Gale et al.
patent: 5486949 (1996-01-01), Schrenk et al.
patent: 5517340 (1996-05-01), Doany et al.
patent: 5548422 (1996-08-01), Conner et al.
patent: 5557343 (1996-09-01), Yamagishi
patent: 5573324 (1996-11-01), De Vaan
patent: 5594591 (1997-01-01), Yamamoto et al.
patent: 5612820 (1997-03-01), Schrenk et al.
patent: 5619355 (1997-04-01), Sharp et al.
patent: 5621486 (1997-04-01), Doany et al.
patent: 5627666 (1997-05-01), Sharp et al.
patent: 5658490 (1997-08-01), Sharp et al.
patent: 5686931 (1997-11-01), Fünfschilling et al.
patent: 5692820 (1997-12-01), Gale et al.
patent: 5706063 (1998-01-01), Hong
patent: 5738426 (1998-04-01), Daijogo et al.
patent: 5822021 (1998-10-01), Johnson et al.
patent: 5929946 (1999-07-01), Sharp et al.
patent: 5999240 (1999-12-01), Sharp et al.
patent: 0 463 816 A2 (1992-01-01), None
patent: 0 488 590 A1 (1992-06-01), None
patent: 0648048A1 (1995-04-01), None
patent: 0 783 133 A1 (1997-07-01), None
patent: 2 673 006 (1992-08-01), None
patent: 61-013885 (1986-01-01), None
patent: 2-211418 (1990-08-01), None
patent: 03063690 (1991-03-01), None
patent: 03187696 (1991-08-01), None
patent: 03243932 (1991-10-01), None
patent: WO 94/02879 (1994-02-01), None
patent: WO 94/16355 (1994-07-01), None
patent: WO 95/17692 (1995-06-01), None
patent: WO 96/37806 (1996-11-01), None
patent: WO97/43862 (1997-11-01), None
McGraw-Hill, Inc.,Handbook of Optics,vol. II,Devices, Measurements and Properties,2ndEd. Ch. 3-Polarizers(1995) (2 title pp. & pp. 3.1-3.70).
World Scientific Publishing Co. Pte. Ltd.,Liquid Crystals, Applications and Uses,vol. 1, Ch. 4, Physical Properties of Liquid Crystals, pp. 139-170 and Ch. 10,Twisted Nematic and Supertwisted Nematic Mode LCDs,pp. 231-274 (1990).
Liquid Crystal Display,Ch. 8, §§8.1, 8.2, & 8.3 (pp. 181-251) (no date) (best available copy).
Tom Baur, et al., High Performance Liquid Crystal Device Suitable for Projection Display, SPIE vol. 2650 (1996) (pp. 226-228).
A.V. Parfenov et al., Advanced optical schemes with liquid crystal image converters for display applications, SPIE vol. 2650 (1996) (pp. 173-178).
Cecile Joubert, et al., “Dispersive Holographic Microlens Matrix for LCD-Projection,” SPIE vol. 2650 (Mar. 1996) (pp. 243-252).
IBM Technical Disclosure Bullentin, vol. 40, No. 3, Mar. 1997, p. 43, New York, U.S., “Reflective Polarizers with Projection Displays”.

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