Lens systems for projection televisions

Television – Video display – Projection device

Reexamination Certificate

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Details

C348S781000, C359S649000, C359S650000, C359S772000, C359S780000

Reexamination Certificate

active

06791629

ABSTRACT:

I. FIELD OF THE INVENTION
This invention relates to projection lens systems for use in projection televisions and, in particular, to low cost, high performance projection lens systems for use in projection televisions that employ three cathode ray tubes (CRTs), e.g., a red CRT, a blue CRT, and a green CRT.
II. BACKGROUND OF THE INVENTION
There exists a need in the art for projection lens systems and, in particular, rear projection lens systems, that have some and preferably all of the following features:
(1) The systems can be produced at low cost so as to be suitable for use in high volume consumer projection television sets.
(2) The systems can accommodate the spectral differences in the light produced by the red, green, and blue CRTs without the cost and complexity associated with full color correction.
(3) The systems have an optical performance suitable for use with the higher bandwidth signals of digital televisions.
(4) The systems exhibit a high level of image contrast.
(5) The systems produce a bright image, e.g., the systems have infinite conjugate f/#'s that are less than or equal to 1.5 and preferably are around 1.0.
(6) The systems have a wide field of view in the direction of the screen so that the distance to the screen can be reduced, e.g., a half field of view in the direction of the screen of at least 35°.
(7) The systems are relatively insensitive to changes in temperature, e.g., changes between room temperature and operating temperature.
III. SUMMARY OF THE INVENTION
To satisfy this need in the art, the invention provides projection lens systems which have some and preferably all of the above seven features.
In accordance with a first aspect, the invention provides a projection lens system for use in a projection television which has a screen and a first CRT which produces light of primarily a first color, a second CRT which produces light of primarily a second color, and a third CRT which produces light of primarily a third color, said projection lens system comprising three projection lenses, one projection lens being associated with each of the CRTs during use of the system for forming an image of the light produced by that CRT on the screen, each projection lens consisting of:
(A) a first lens unit (U
1
) on the long conjugate side of the lens, said first lens unit having a positive power; and
(B) a second lens unit (U
2
) which (i) is associated with a CRT during use of the lens, (ii) has a strong negative power when so associated, and (iii) provides most of the correction of the lens' field curvature;
wherein in addition to any difference based on satisfying the Scheimpflug condition (see, for example, Hasegawa, U.S. Pat. No. 5,045,930; Yamamoto et al., U.S. Pat. No. 5,293,226; and Toide et al., U.S. Pat. No. 5,537,167) or any difference in spectral transmission (see for example, Wessling, U.S. Pat. No. 5,055,922), the second lens unit of the second projection lens differs from the second lens unit of the first projection lens in at least one optical property, said difference being based on said first and second colors.
In certain preferred embodiments, in addition to any differences based on satisfying the Scheimpflug condition or any differences in spectral transmission, the second lens units of the first, second, and third projection lenses all differ from one another in at least one optical property, said differences being based on the first, second, and third colors.
In other preferred embodiments, the second lens units comprise a meniscus element and the differences between second lens units are achieved through differences, other than spectral transmission, in the meniscus elements, e.g., differences in at least one of:
(1) focal length,
(2) index of refraction,
(3) base radius for the screen side surfaces of the elements,
(4) base radius for the CRT side surfaces of the elements,
(5) difference in surface shape and/or best-fit spherical radii of the screen side surfaces for elements that have aspherical screen side surfaces, and/or
(6) difference in surface shape and/or best-fit spherical radii of the CRT side surfaces for elements that have aspherical CRT side surfaces.
In accordance with other embodiments, the second lens units comprise a coupling fluid portion (e.g., a coupling fluid between a meniscus element and the faceplate of the CRT which in addition to optically coupling the lens to the CRT faceplate also functions as a cooling medium), and the differences between second lens units are achieved through differences, other than spectral transmission, in the optical properties of the coupling fluid portion of the second lens units. Such differences in the coupling fluid portion of the second lens units include differences in index of refraction of the coupling fluid produced through, for example, differences in composition and/or differences in coupling fluid temperature resulting from heating and/or cooling of one or more of the coupling fluids and/or its housing. Such differences also include differences in the shape (e.g., axial thickness and/or radii of curvature) of the coupling fluid portion. The differences in the coupling fluid portions of the second lens units can include both differences in index of refraction and differences in shape.
As another alternative for producing differences in second lens units, the optical properties, other than spectral transmission, of the faceplates of the CRTs, which form part of the second lens unit during use of the projection lens, can be made different for at least two of the CRTs, e.g., for the green and red CRTs. Such differences can include differences in thickness, index of refraction, and radii of curvature. Also in the case of CRT faceplates that include one or more aspherical surfaces, surface shape and/or best-fit spherical radii can also be made different between various of the faceplates based on color. In general, this approach of varying the faceplate is less preferred for manufacturing and cost reasons than varying the properties of a meniscus element (most preferred) or varying the properties of the coupling fluid region of the second lens unit.
In accordance with other preferred embodiments, the first lens units of the projection lenses are identical to within manufacturing tolerances. In this way, the manufacturing cost of the system can be reduced since common first lens units are used for the main, most complex part of the projection lenses while at the same time high levels of optical performance can be achieved by varying only a relatively small, simpler part (the second lens unit) of the projection lens for some or all of the different colors.
In accordance with a second aspect, the invention provides a projection lens for use in combination with a CRT and having a long conjugate side, a short conjugate side, and a focal length F
0
when associated with the CRT, said lens consisting in order from its long conjugate side of:
(A) a positive first lens unit (U
1
) which consists in order from the lens' long conjugate side of:
(i) a first lens subunit which consists of a first lens element (L
1
) which has at least one aspherical surface and a weak power;
(ii) a second lens subunit (focal length=F
2
) which is preferably biconvex and which provides most of the positive power of the projection lens and consists of a second lens element (L
2
) or a doublet (DB); and
(iii) a third lens subunit which consists of a third lens element (L
3
; focal length=F
3
) which has at least one aspherical surface and a positive power; and
(B) a second lens unit (U
2
; focal length=F
4
) which (i) is associated with the CRT during use of the lens, (ii) has a strong negative power when so associated, and (iii) provides most of the correction of the lens' field curvature;
wherein:
(a) the first lens element has a best-fit spherical radius R
11
in the direction of the lens' long conjugate side and a best-fit spherical radius R
12
in the direction of the lens' short conjugate side;
(b) the second lens subunit has a radius R
21
in the direc

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