Nova Patents
WO2004106983A2

Illumination in optical systems

Abstract

Various embodiments involving structures and methods for illumination can be employed, for example, in projectors, head-mounted displays, helmet-mounted displays, back projection TVs, flat panel displays as well as other optical systems. Certain embodiments may include prism elements for illuminating, for example, a spatial light modulator. Light may be coupled to the prism in some cases using fiber optics or lightpipes. The optical system may also include a diffuser having scatter features arranged to scatter light appropriately to produce a desired luminance profile. Other embodiments are possible as well.

WO2004106983A2, drawing sheet 1
Sheet 1 of 26

Term

No projected expiry on record.

  1. Priority
  2. Filed
  3. Published
  4. Today

176 claims: 31 independent, 145 dependent

  1. 1
    WHAT IS CLAIMED IS:1. A head mounted display for displaying images comprising: a spatial light modulator;head mounted display imaging optics for imaging said spatial light modulator;first and second polarization beamsplitting surfaces facing different directions;and headgear configured to mount to a person's head to facilitate viewing of said images, wherein (i) said first and second reflective polarization beamsplitting surfaces are oriented to reflect similarly polarized light along a common direction toward said spatial light modulator to provide illumination for said spatial light modulator and (ii) said first and second reflective beamsplitting surfaces are each disposed in optical paths between said head mounted display imaging optics and said spatial light modulator.
  2. 2
    The head mounted display of Claim 1, further comprising asymmetric optical elements for providing asymmetric beam patterns for illuminating asymmetric regions on said spatial light modulator.
  3. 3
    The head mounted display of Claim 1, further comprising diffusers for diffusing said light that is incident on said spatial light modulator.
  4. 4
    The head mounted display of Claim 1, further comprising collimating lenses for substantially collimating said light that is incident on said spatial light modulator.
  5. 5
    The head mounted display of Claim 1, wherein said first and second polarization beamsplitting surfaces comprise substantially planar surfaces.
  6. 6
    The head mounted display of Claim 1, wherein said first and second polarization beamsplitting surfaces are respectively oriented at angles θ \ and θ relative to a direction normal to said spatial light modulator.
  7. 7
    The head mounted display of Claim 6, wherein θi ranges between about 20° to 70° and θ 2 ranges between about -20° to -70°.
  8. 8
    The head mounted display of Claim 6, wherein θi ranges between about 30° to 60° and θ 2 ranges between about -30° to -60°.
  9. 9
    The head mounted display of Claim 6, wherein θi is about 45° and θ 2 is about -45°.
  10. 10
    The head mounted display of Claim 6, wherein said angles θ 1 and θ 2 are substantially equal in magnitude.
  11. 11
    The head mounted display of Claim 1, wherein said first and second polarization beamsplitting surfaces include a plurality of metal strips that form a wire grid polarizer.
  12. 12
    The head mounted display of Claim 1, further comprising a plurality of light emitting diodes for providing light.
  13. 13
    The head mounted display of Claim 1, further comprising a post-polarizer disposed to receive light reflected from said spatial light modulator through at least one of said first and second polarization beamsplitting surfaces.
  14. 14
    The head mounted display of Claim 1, wherein said head gear comprises a helmet.
  15. 15
    An illumination engine for a rear projection monitor, said illumination engine comprising:a spatial light modulator;at least one illumination source outputting light;a polarization beamsplitting prism including first and second reflecting polarization beamsplitting surfaces;a support stmcture supporting said spatial light modulator and said polarization beamsplitting prism;a first polarizer disposed along an optical path to said first beamsplitting surface such that light propagated through said first polarizer is polarized and continues onto said polarization beamsplitting surface and is reflected therefrom;a second polarizer disposed along an optical path to said second beamsplitting surface such that light propagated tlirough said second polarizer is polarized and continues onto said polarization beamsplitting surface and is reflected therefrom;and monitor projection optics disposed with respect to said spatial light modulator to project images of patterns formed by said spatial light modulator onto a rear projection monitor screen, wherein said first and second polarization beamsplitting surfaces are oriented to reflect said light polarized by said first and second polarizers toward said spatial light modulator, said first and second beamsplitting surfaces facing different directions.
  16. 16
    The illumination engine of Claim 15, wherein first and second polarization beamsplitting surfaces are inclined from said spatial light modulator toward said first and second polarizers, respectively, said first and second polarizers being located on opposite sides of said polarization beamsplitting element.
  17. 17
    The illumination engine of Claim 15, wherein said first and second beamsplitting surfaces comprise substantially planar surfaces.
  18. 18
    The illumination engine of Claim 15, wherein first and second beamsplitting surfaces comprise wire grid polarizers.
  19. 19
    The illumination engine of Claim 15, wherein first and second beamsplitting surfaces comprise thin film polarizing layers.
  20. 20
    The illumination engine of Claim 15, wherein first and second beamsplitting surfaces have a thickness less than about 100 micrometers.
  21. 21
    The illumination engine of Claim 15, further comprising diffusers disposed in said optical paths to said polarization beamsplitting prism.
  22. 22
    The illumination engine of Claim 15, further comprising optical elements having asymmetry disposed in said optical paths to said polarization beamsplitting prism to provide asymmetric beams to illuminate asymmetric areas on said spatial light modulator.
  23. 23
    The illumination engine of Claim 15, further comprising a post-polarizer disposed with respect to said polarization beamsplitting prism to receive light reflected back through at least one of said first and second polarization beamsplitting surfaces.
  24. 24
    The illumination engine of Claim 15, wherein the monitor is a television.
  25. 25
    A projector for forming an image on a screen, said projector comprising:a spatial light modulator having a signal input, said spatial light modulator forming image patterns based on signals received by said signal input;projector optics for projecting said images formed by said spatial light modulator onto said screen;a first polarized light source;a first polarization beamsplitting surface disposed to receive light from said first polarized light source and reflect said light;a second polarized light source;and a second polarization beamsplitting surface disposed to receive light from said first polarized light source and reflect said light, wherein said first and second polarization beamsplitting surfaces are oriented to reflect said light along a common direction toward said spatial light modulator to provide illumination for said spatial light modulator.
  26. 26
    The projector of Claim 25, further comprising a polarization beamsplitting prism element, said first and second polarization beamsplitting surfaces being part of said polarization beamsplitting prism element.
  27. 27
    The projector of Claim 25, wherein first and second beamsplitting surfaces comprise wire grid polarizers.
  28. 28
    The projector of Claim 25, further comprising a post-polarizer disposed with respect to at least one of said first and second polarization beamsplitting surfaces to receive light propagated through said at least one of said first and second polarization beamsplitting surfaces.
  29. 29
    A color projection system for projecting color images comprising:a spatial light modulator;a color light source configured to ouφut colored light;and a polarization beamsplitting prism element including first and second reflective polarization beamsplitting surfaces that reflects light having a different polarization state than light transmitted by said reflective polarization beamsplitting surfaces, said polarization beamsplitting prism element further comprising first and second substantially optically transmissive faces;wherein said first and second polarization beamsplitting surfaces are oriented to reflect polarized light through said first substantially optically transmissive face to said spatial light modulator and said second substantially optically transmissive face is disposed to receive said light returned from said spatial light modulator propagated through said first optically transmissive face.
  30. 30
    The color projection system of Claim 29, further comprising asymmetric optics disposed to receive said colored light, said asymmefric optics providing an asymmetric beam to illuminate an asymmetric area on said spatial light modulator.
  31. 31
    The color projection system of Claim 29, further comprising diffusers for diffusing said light that is incident on said spatial light modulator.
  32. 32
    The color projection system of Claim 29, wherein said colored light sources comprise a plurality of light emitting diodes.
  33. 33
    The color projection system of Claim 29, further comprising a post-polarizer disposed with respect to said polarization beamsplitting prism element to receive light returned from said spatial light modulator through said at second substantially optical transmissive face.
  34. 34
    A method of forming an image in the eye of a viewer using a head mounted display comprising:selectively altering a plurality of pixels in a spatial light modulator thereby fonning a pattern with said spatial light modulator;polarizing a first beam of light and propagating said first polarized light beam to a first reflective polarization beamsplitting surface;polarizing a second beam of light and propagating said second polarized light beam to a second polarization beamsplitting surface;reflecting said first and second polarized light beams by said respective first and second polarization beamsplitting surfaces toward said spatial light modulator to provide illumination;and fonning an image of said pattern formed' by said spatial light modulator in said viewer's eye.
  35. 35
    The method of Claim 34, wherein said first and second polarized light beams are substantially equal in luminance at said spatial light modulator.
  36. 36
    The method of Claim 34, further comprising reflecting at least part of said first and second polarized light beam from said spatial light modulator back tlirough said first and second beamsplitting surfaces.
  37. 37
    The method of Claim 34, wherein said plurality of pixels in said spatial light modulator are selectively altered to form an alphanumerical character.
  38. 38
    The method of Claim 34, further comprising:altering the beam width of said first and second beams different amounts in orthogonal directions to provide an asymmetric beam cross-sections;and illuminating respective asymmetric regions of said spatial light modulator with said first and second beams having said asymmetric beam cross-sections.
  39. 39
    A method of forming an image on a screen of a rear projection TV comprising:manipulating said spatial light modulator to form a spatial pattern for creating a video image;propagating a first polarized light beam to a first polarization beamsplitting surface that reflects light having the polarization of said first polarized light beam and transmits orthogonal polarization states;propagating a second polarized light beam to a second polarization beamsplitting surface that reflects light having the polarization of said second polarized light beam and transmits orthogonal polarization states;reflecting said first and second polarized light beams with said respective first and second polarization beamsplitting surfaces to said spatial light modulator to provide illumination;and propagating light from said spatial light modulator tlirough said first and second polarization beamsplitting surfaces to imaging optics for forming an image of said pattern on said screen of said rear projection TV.
  40. 40
    The method of Claim 39, wherein said first and second polarized light beams are directed to adjacent locations on said spatial light modulator separated by no more than about 5 microns.
  41. 41
    The method of Claim 39, further comprising:altering the beam width of the first beam different amounts in orthogonal directions to provide a first asymmetric beam cross-sections;altering the beam width of the second beam different amounts in orthogonal directions to provide a second asymmetric beam cross-sections;and directing said first and second asymmetrically-shaped polarized light beams onto respective first and second adjacent asymmetric regions on said spatial light modulator.
  42. 42
    The method of Claim 39, wherein first and second adjacent asymmetric regions comprise first and second substantially rectangular areas juxtaposed to provide a composite fooφrint comprising a larger rectangular area on said spatial light modulator.
  43. 43
    A method of forming an image on a screen, said method comprising:selectively altering a plurality of pixels in a spatial light modulator thereby forming a pattem with said spatial light modulator;providing first and second polarized beams of light for illuminating said spatial light modulator;propagating said first polarized light beam to a first polarization beamsplitting surface that reflects light having the polarization of said first polarized light beam and transmits orthogonal polarization states;propagating said second polarized light beam to a second polarization beamsplitting surface that reflects light having said polarization of said second polarized light beam and transmits orthogonal polarization states;reflecting said first and second polarized light beams by said respective first and second polarization beamsplitting surfaces toward said spatial light modulator to provide illumination;and forming an image of pattern formed by said spatial light modulator on a screen.
  44. 44
    The method of Claim 43, wherein said plurality of pixels in said spatial light modulator are selectively altered to fonn alphanumerical characters.
  45. 45
    The method of Claim 43, propagating light reflected from said spatial light modulator through said first and second polarization beamplitting surfaces.
  46. 46
    The method of Claim 43, polarization filtering said light after propagated through at least one of said first and second polarization splitting surfaces to imaging optics.
  47. 47
    An image formation device for a display, said image formation device comprising:one or more sources of light;a polarization beamsplitting prism including first and second beamsplitting surfaces, said first and second beamsplitting surfaces discriminating between orthogonal polarization states, said first and second beamsplitting surfaces selectively reflecting light depending on the polarization state of said light;a first polarizer disposed along an optical path to said first beamsplitting surface such that light propagated tlirough said first polarizer is polarized and continues onto said fiber polarization beamsplitting surface and is reflected therefrom;a second polarizer disposed along an optical path to said second beamsplitting surface such that light propagated through said second polarizer is polarized and continues onto said fiber polarization beamsplitting surface and is reflected therefrom, and a spatial light modulator device;wherein said first and second polarization beamsplitting surfaces are oriented to reflect said light polarized by said first and second polarizers toward said reflective spatial light modulator, said reflective spatial light modulator reflecting at least a portion of the light back though the first and second polarization beamsplitting surfaces and tlirough said polarization beamsplitting element.
  48. 48
    The image formation device of Claim 47, wherein said spatial light modulator device is reflective.
  49. 49
    The image fomiation device of Claim 47, further comprising imaging optics for imaging patterns formed by said spatial light modulator.
  50. 50
    An optical system for forming color images, said optical system comprising:at least one color light source ouφutting colored light;a polarization beamsplitting prism element including first and second beamsplitting surfaces;a color selective filtering element comprising an input port, at least one color filter, and a plurality of color output ports, said at least one color filter distributing different colored light to said color output ports;and a plurality of spatial light modulators respectively disposed to receive different colored light from said plurality of color output ports, wherein said first and second polarization beamsplitting surfaces are oriented to reflect said colored light though said input port of said color selective filtering element.
  51. 51
    An optical system of Claim 48, wherein said color selective filtering element comprises a prism stmcture.
  52. 52
    An optical system of Claim 51, wherein said color selective filtering element comprises an X-cube.
  53. 53
    An optical system of Claim 51, wherein said color selective filtering element comprises a Philips prism.
  54. 54
    A method of fabricating a polarization beamsplitting element comprising:disposing a first wire grid polarizer between first and second prisms;removing a portion of said first and second prisms and a portion of said wire grid polarizer to form a surface angled with respect to said first wire grid polarizer;disposing a second wire grid polarizer between a third prism and said surface angled with respect to said first wire grid polarizer;and removing a portion of said third prism, one of said first and second prisms, and said second wire grid polarizer.
  55. 55
    The method of Claim 54, wherein said removing comprises cutting.
  56. 56
    The method of Claim 54, wherein said removing comprises polishing.
  57. 57
    The method of Claim 54, further comprising including a MgF coating with said wire grid polarizer between first and second prisms.
  58. 58
    The method of Claim 54, further comprising including a MgF coating with said wire grid polarizer between first and second prisms and said third prism.
  59. 59
    A prism comprising:a substantially optically transmissive body having first and second input ports for receiving light and an ouφut port for egress of light;a first reflecting polarization beamsplitting surface comprising a wire grid polarizer angled with respect to said first input to direct polarized light received by said first input port tlirough said ouφut port;and a second reflecting polarization beamsplitting surface comprising a wire grid polarizer angled with respect to said first input to direct polarized light received by said second input port through said ouφut port.
  60. 60
    The prism of Claim 59, wherein at least one of said wire grid polarizer is less than about 100 microns thick.
  61. 61
    The prism of Claim 59, wherein said first and second reflecting polarization beamsplitting surfaces converge toward each other to form an apex.
  62. 62
    The prism of Claim 61, wherein said apex is less than about 200 microns wide such that said output port has a dark region resulting from reduced output at the apex of no more than 200 wide.
  63. 63
    A prism comprising:a substantially optically transmissive body having first and second input faces for receiving light and an ouφut face for egress of light;a first reflecting polarization beamsplitting surface angled with respect to said first input face to direct polarized light received by said first input face through said output face;and a second reflecting polarization beamsplitting surface angled with respect to said first input face to direct polarized light received by said second input face through said ouφut face, wherein said first and second reflecting polarization beamsplitting surfaces are each less than about 100 microns thick thereby increasing uniformity in illumination across said output face.
  64. 64
    The prism of Claim 63, wherein at least one of said first and second reflecting polarization beamsplitting surfaces comprise a wire grid polarizer.
  65. 65
    The prism of Claim 63, wherein at least one of said first and second reflecting polarization beamsplitting surfaces comprises a thin film polarizer.
  66. 66
    A prism comprising:a substantially optically transmissive body having first and second inputs for receiving light and an output face for egress of light;a first reflecting polarization beamsplitting surface angled with respect to said first input to direct polarized light received by said first input through said ouφut face;and a second reflecting polarization beamsplitting surface angled with respect to said first input to direct polarized light received by said second input through said output face, said first and second reflecting polarization beamsplitting surfaces converging toward a central region of said output face, wherein said first and second reflecting polarization beamsplitting surfaces have dimensions and are in proximity with respect to each other to provide substantially uniform illumination across said output face with no larger than a 5 micrometer dark strip at the cenfral region of said output face.
  67. 67
    A prism comprising:a substantially optically transmissive body having an outer surface for receiving light into said prism and an exit surface for egress for light;and a reflecting polarization beamsplitting surface having a shape in the form of a surface formed by rotating of a line about a central axis tlirough said substantially optically transmissive prism body, wherein said reflecting polarization beamsplitting surface is disposed with respect to exit surface to direct polarized light received into said body through said outer surface toward and tlirough said exit surface.
  68. 68
    The prism of Claim 67, wherein said reflecting polarization beamsplitting surface is conical.
  69. 69
    The prism of Claim 67, wherein said reflecting polarization beamsplitting comprises a portion of a cone.
  70. 70
    The prism of Claim 67, wherein said line comprises a curved line such that said reflecting polarization beamsplitting curves in a plane parallel to and tlirough said cenfral axis.
  71. 71
    A head mounted display for forming images in a user's eye, said apparatus comprising:a spatial light modulator comprising an array of pixels that can be selectively modulated to create a pattern;a light source outputting light that is split into first and second portions having substantially identical wavelength characteristics;first and second separate optical paths for said first and second portions of light, respectively;first and second reflective surfaces in said first and second optical paths, said first and second reflective surfaces facing different directions and being oriented to reflect said first and second portions of light to first and second sections of said spatial light modulator;imaging optics disposed with respect to said spatial light modulator to receive light from said first and second sections of said spatial light modulator for imaging said pattem formed by said spatial light modulator;and a head gear for support at least said spatial light modulator and imaging optics.
  72. 72
    The head mounted display of Claim 71, wherein said head mounted display light source comprises an array of light emitting diodes.
  73. 73
    The head mounted display of Claim 71, wherein said head mounted display light source comprises red, blue, and green light emitting diodes.
  74. 74
    The head mounted display of Claim 71, further comprising conveyances for guiding light along said first and second optical paths.
  75. 75
    The head mounted display of Claim 74, wherein said conveyances comprise optical fibers.
  76. 76
    The head mounted display of Claim 74, wherein said conveyances comprise light pipes.
  77. 77
    The head mounted display of Claim 71, further comprising an optical fiber bundle that is split to form said first and second optical paths.
  78. 78
    The head mounted display of Claim 71, wherein said first and second reflective surfaces comprise polarization beamsplitting surfaces disposed in a prism element.
  79. 79
    The head mounted display of Claim 78, further comprising polarizers in said first and second optical paths.
  80. 80
    The head mounted display of Claim 71, wherein said first and second sections of said spatial light modulator are adjacent.
  81. 81
    The head mounted display of Claim 71, further comprising optical elements having asymmetry disposed in said first and second optical paths, respectively, said optical elements providing an asymmetric beams to illuminate respective asymmetric areas on said spatial light modulator.
  82. 82
    The head mounted display of Claim 81, wherein said optical elements having asymmetry are selected from the group consisting of cylindrical lenses, mixing rods, and fiy's-eye lenses.
  83. 83
    The head mounted display of Claim 71, further comprising diffusers disposed in said first and second optical paths.
  84. 84
    The head mounted display of Claim 71, wherein said imaging optics includes an optical combiner.
  85. 85
    A method of forming an image in the eye of a viewer using a head mounted display, said method comprising:selectively altering a plurality of pixels in said spatial light modulator thereby fonning a pattern with said spatial light modulator;splitting light emitted from a light source into first and second portions, each portion having substantially similar wavelength characteristics;reflecting said first and second portions of light off of first and second reflective surfaces to respective first and second sections of said spatial light modulator;and propagating a portion of said light from said first and second sections of said spatial light modulator tlirough said first and second reflective surfaces to imaging optics to fonn an image of said pattern in said viewer's eye.
  86. 86
    The method of Claim 85, wherein said light source comprises a plurality of light emitters and said light from said plurality of light emitters is collected in a mixing area and split into said first and second portions.
  87. 87
    The method of Claim 85, further comprising substantially balancing said said first and second portions of said light from said light source.
  88. 88
    The method of Claim 87, wherein said light from said light source is split such that said first and second portions are substantially equal in intensity.
  89. 89
    The method of Claim 85, wherein said first and second sections of said spatial light modulator are asymmefric and said first and second portions of light are shaped into first and second asymmetric beams.
  90. 90
    The method of Claim 85, wherein substantially all of said light in first portion is directed to said first section of said spatial light modulator and substantially all of said light from said second portion is directed to in said second section of said spatial light modulator.
  91. 91
    The method of Claim 85, wherein said first and second portions of light have substantially the same color.
  92. 92
    A method of manufacturing a head mounted display, said method comprising:disposing a optical conveyance with respect to a light source to receive light therefrom, said optical conveyance having first and second sections;disposing distal ends of said first and second sections of said optical conveyance to direct light ouφut from said distal ends to respective first and second reflective surfaces;orienting said first and second reflective surfaces to aim light ouφut from said first and second sections of said optical conveyance toward respective first and second regions of a spatial light modulator, said first and second sections of said optical conveyance providing substantially balanced optical power to said first and second regions of said spatial light modulator;and disposing imaging optics with respect to said spatial light modulator to receive light from said first and second regions of said spatial light modulator and to project said light for forming of images of said first and second regions.
  93. 93
    The method of manufacture of Claim 92, wherein said imaging optics has an effective focal point and said spatial light modulator is substantially located at said focal point of said imaging optics to form images of said first and second sections at infinity.
  94. 94
    Illumination engine for a rear projection TV, said illumination engine comprising:a spatial light modulator configured to form spatial patterns;projection optics disposed with respect to said spatial light modulator to project images of said patterns a rear projection TV screen;an illumination engine mounting structure, said spatial light modulator and said projection optics affixed to said illumination engine mounting stmcture;an optical conveyance disposed to receiving light from an illumination source;and a prism having first and second inputs and an ouφut disposed with respect to respective first and second regions on said spatial light modulator, said prism providing separate optical paths from said respective first and second input surfaces to said first and second regions of said spatial light modulator, wherein said optical conveyance is split such that a first portion of said light from said optical conveyance is directed to said first input of said prism element and a second portion of said light from said optical conveyance is directed to said second input of said prism.
  95. 95
    The illumination engine of Claim 94, wherein said prism is disposed between said projection optics and said spatial light modulator.
  96. 96
    The illumination engine of Claim 94, wherein said optical conveyance is split to provide substantially equal magnitude illumination of said first and second regions on said spatial light modulator.
  97. 97
    The illumination engine of Claim 94, wherein said optical conveyance is selected from the group consisting of optical fibers and light piping.
  98. 98
    The illumination engine of Claim 94, wherein said spatial light modulator is configured to receive video signals selected from the group consisting of analog video signals and digital video signals.
  99. 99
    The illumination engine of Claim 94, further comprising asymmetric beamshaping optics for providing asymmetric beams for illuminating said first and second regions of said spatial light modulator.
  100. 100
    A projector for forming an image on a screen comprising:a spatial light modulator assembly comprising a plurality of pixels that selectively altered so as to fonn an optical pattern;a light source outputting light that is split into first and second portions;first and second respective optical paths for said first and second portions of light, respectively, said first and second portions propagating along said first and second optical paths to respective first and second regions of said spatial light modulator;and projection optics disposed with respect to said spatial light modulator to project an image of said pattern formed by said spatial light modulator onto said screen.
  101. 101
    The projector of Claim 100, wherein said spatial light modulator assembly comprises an array of optical modulators that selectively modulates the polarization of light and a polarization sensitive element for filtering based on polarization.
  102. 102
    The projector of Claim 100, wherein said spatial light modulator assembly comprises a liquid crystal spatial light modulator.
  103. 103
    A optical system for forming color images comprising:a spatial light modulator having an electrical input for receiving control signals, said spatial light modulator having first and second regions;imaging optics disposed with respect to said spatial light modulator to project images of patterns formed by said spatial light modulator;first, second, and third light sources outputting light having first, second, and third colors respectively;first, second, and third pairs of light pipes associated with said first, second, and third light sources respectively, said first pair receiving said first color light from said first light source, said second pair receiving second color light from said second light source, and said third pair receiving third color light from said third light source;and wherein each of said pairs of light pipes has a first and a second distal end that outputs said first, second, and third colors, respectively, said first distal end in each pair being optically coupled to said a first portion of said spatial light modulator and said second portion being coupled to said second region of said spatial light modulator.
  104. 104
    The color projection system of Claim 103, wherein said first, second, and third light sources comprise a red light source, a blue light source, and a green light source respectively.
  105. 105
    The color projection system of Claim 103, wherein said first, second, and third light sources comprise LEDs.
  106. 106
    The color projection system of Claim 103, wherein said light pipes comprise optical fibers.
  107. 107
    A method of forming an image on a screen, said method comprising:selectively alter a plurality of pixels in said spatial light modulator;splitting light emitted from a light source into first and second portions, each portion having substantially similar wavelength characteristics and polarization properties;propagating said first and second portions along respective first and second optical paths, said first and second optical paths aimed along counter-opposing toward a common region;reflecting said first and second portions of light off of first and second reflective surfaces facing different directions, said first and second portions of light being reflected to respective first and second sections of said spatial light modulator;and propagating a portion of said light from said first and second sections to imaging optics to form an image of said pattern on said screen.
  108. 108
    The method of Claim 107, wherein said pattern fonned by said pixels in said spatial light modulator comprises one or more characters.
  109. 109
    A heads-up display for displaying images, said heads-up display comprising:a spatial light modulator comprising a plurality of pixels selectively adjustable for creating a spatial pattern;a light source for illuminating an area on said spatial light modulator;a diffuser disposed in an optical path between said light source and said spatial light modulator such that a portion of said diffuser receives light from said light source, said light source disposed in an arrangement that provides increasing illuminance along a fransverse direction of said diffuser, said diffuser comprising a plurality of light spreading features configured to disperse light from said light source into increasingly larger projected solid angles for locations along said transverse direction of said diffuser;and imaging optics disposed to receive said light incident on said spatial light modulator for forming an image of said spatial pattern created by said spatial light modulator.
  110. 110
    The heads-up display of Claim 109, wherein said light source comprises one or more optical fibers or light pipes.
  111. 111
    The heads-up display of Claim 110, wherein said light sources further comprises one or more light emitting diodes.
  112. 112
    The heads-up display of Claim 109, wherein said light source is decentered with respect to said portion of said diffuser that receives said light to provide said increasing illuminance along said transverse direction across said diffuser.
  113. 113
    The heads-up display of Claim 110, wherein said portion of said diffuser that receives said light has a center and said source of light is laterally displaced from the center of said portion of said diffuser by between about 11 and 25 millimeters.
  114. 114
    The heads-up display of Claim 109, wherein said source of light is tilted with respect to said diffuser such that said source of light emits a beam directed at a non-normal angle with respect to said diffuser.
  115. 115
    The heads-up display of Claim 113, wherein said source of light is tilted with respect to said diffuser such that said source of light emits a beam directed at an angle of between about 5° and 45° with respect to a normal through said diffuser.
  116. 116
    The heads-up display of Claim 109, further comprising a beam-shaping lens in an optical path between said source of light and said diffuser.
  117. 117
    The heads-up display of Claim 116, wherein said portion of said diffuser that receives said light has a center and said beam-shaping lens is laterally displaced from the center of said portion of said diffuser by between about 11 and 25 millimeters.
  118. 118
    The heads-up display of Claim 116, wherein said beam-shaping lens has an optical axis at an angle of between about 5° and 45° with respect to an optical axis through said diffuser.
  119. 119
    The heads-up display of Claim 109, further comprising a collimating lens.
  120. 120
    The heads-up display of Claim 119, wherein said collimating lens comprises a diffractive optical element.
  121. 121
    The heads-up display of Claim 109, wherein said illuminance increases from about 1 to 6 times in value along a transverse direction across said area of said spatial light modulator that is illuminated.
  122. 122
    The heads-up display of Claim 121, wherein the distance in said transverse direction across said area is between about 15 millimeters to 45 millimeters.
  123. 123
    The heads-up display of Claim 109, wherein the luminance along the transverse direction across said area of said spatial light modulator that is illuminated varies no more than a factor of about 1.5.
  124. 124
    An illumination engine for projecting images onto a screen comprising:a spatial light modulator for forming spatial patterns;projection optics for projecting spatial patterns formed by said spatial light modulator onto a screen;a diffuser having a lateral spatial extent in a fransverse direction and an optical axis therethrough, said diffuser comprising a plurality of scatter features;and an off-axis light source for illuminating a spatial region on said diffuser and a corresponding section of said spatial light modulator, wherein said off-axis light source is disposed with respect to said diffuser to produce varying illuminance along said fransverse direction, said optical scattering features in said diffuser dispersing light into an increasingly large range of angles for locations along said transverse direction such that said luminance across said spatial light modulator is substantially constant.
  125. 125
    The illumination engine of Claim 124, wherein said illuminated spatial region on said diffuser has a center and said source of light is laterally displaced from the center of said illuminated spatial region of said diffuser by between about 11 and 25 millimeters.
  126. 126
    The illumination engine of Claim 124, wherein said source of light is tilted with respect to said diffuser such that said source of light emits a beam directed at an angle of between about 5° and 45° with respect to said optical axis through said diffuser.
  127. 127
    The illumination engine of Claim 124, further comprising beam-shaping optics disposed to receive light from said off-axis light source.
  128. 128
    The illumination engine of Claim 127, wherein said illuminated spatial region on said diffuser has a center and said beam-shaping optics is laterally displaced from the center of said illuminated portion of said diffuser by between about 11 and 25 millimeters.
  129. 129
    The illumination engine of Claim 127, wherein said beam-shaping optics has an optical axis at an angle of between about 5° and 45° with respect to said optical axis through said diffuser.
  130. 130
    The illumination engine of Claim 124, wherein said scatter features are selected from the group comprising surface features, index of refraction variations, and imbedded reflective features.
  131. 131
    The illumination engine of Claim 124, wherein said diffuser comprises a holographic optical element.
  132. 132
    The illumination engine of Claim 124, further comprising a collimating lens for substantially collimated light incident on said diffuser.
  133. 133
    The illumination engine of Claim 124, further comprising a polarization beamsplitter directing said illumination from said off-axis light source to said spatial light modulator.
  134. 134
    The illumination engine of Claim 133, further comprising a polarizer disposed between said off-axis light source and said polarization beamsplitter.
  135. 135
    The illumination engine of Claim 124, wherein said spatial light modulator comprises a liquid crystal spatial light modulator.
  136. 136
    The illumination engine of Claim 124, wherein said projector optics comprise off-axis imaging optics.
  137. 137
    The illmnination engine of Claim 124, wherein the relative luminance along the transverse direction across said section of said spatial light modulator that is illuminated varies by a factor no more than about 1.5.
  138. 138
    An optical image forming system comprising:a modulator array comprising a plurality of modulators that can be modulated to produce spatial patterns;projection optics disposed in an optical path from said modulator array;a light source outputting light for illuminating said spatial light modulator;a light disfribution system for distributing said light across said spatial light modulator, said light distribution system having an ouφut having a lateral spatial extent and a numerical aperture that varies across said lateral spatial extent, wherem said light source together with said light distribution system provides increasing illuminance across said lateral spatial extent of said output.
  139. 139
    The optical image forming system of Claim 138, wherein said light source together with said light distribution system provides substantially constant luminance across said lateral spatial extent of said ouφut of said light distribution system.
  140. 140
    The optical image forming system of Claim 138, wherein said light distribution system comprises a diffuser having a lateral spatial extent and a plurality of features arranged to distribute light into increasing large angles across said lateral spatial extent.
  141. 141
    The optical image forming system of Claim 140, wherein said optical ouφut of said light source is tilted and decentered with respect to said diffuser to provide increasing illuminance across the lateral spatial extent of the diffuser.
  142. 142
    The optical image forming system of Claim 138, wherein said light distribution system comprise a holograpliic optical element having a diffractive pattern for distributing light into increasingly large angles across said lateral spatial extent.
  143. 143
    The optical image fonning system of Claim 138, wherein said light distribution system includes an apodization filter having a lateral spatial extent and an increasing transmittance across said lateral spatial extent.
  144. 144
    The optical image forming system of Claim 138, wherein said light distribution system includes a lens array comprising a plurality of lenslets, said lens array having a lateral spatial extent and said lenslets having increasing numerical apertures across said lateral spatial extent.
  145. 145
    The optical image fonning system of Claim 138, wherein said light distribution system includes comprises an array of reflective elements arranged to provide increasing numerical aperture across said lateral spatial extent.
  146. 146
    The optical image forming system of Claim 138, wherein said light disfribution system comprises a cavity defined by a plurality of reflecting sidewalls and a plurality of optical elements disposed across one of said sidewalls for ouφutting light from said cavity.
  147. 147
    The optical image forming system of Claim 146, wherein said plurality of optical elements disposed across one of said sidewalls are selective from the group comprising reflective optical elements, refractive optical elements, and diffractive optical elements.
  148. 148
    An apparatus for providing a non-uniform illuminance, said apparatus comprising a plurality of non-imaging optical elements arranged over area having a lateral spatial extent, said non-imaging optical elements having input and output apertures and input and output numerical apertures, said input apertures and said output numerical apertures increasing across said lateral spatial extent so as to provide substantially constant luminance across said lateral spatial extent.
  149. 149
    The apparatus of Claim 148 wherein said non-imaging optical elements comprise reflecting elements having reflecting surfaces.
  150. 150
    The apparatus of Claim 148 wherein said non-imaging optical elements comprise compound parabolic concentrators.
  151. 151
    The apparatus of Claim 148, further comprising a light box having an optical input for coupling light therein, said plurality of non-imaging disposed with respect to said light box to receive light from one side of said light box.
  152. 152
    An optical diffuser for receiving a light beam that produces an illuminance distribution that increases in a fransverse direction across said diffuser, said optical diffuser comprising:a body extending laterally in said fransverse direction, said body having an outer surface and a volume;and light dispersing features arranged across said lateral spatial extent of said diffuser to diffuse light incident thereon, said light incident on a given location on said diffuser being distributed by said light dispersing features into a range of angles that is determined by said light dispersing features, said range of angles coreesponding to a projected solid angle, wherein said light dispersing features are arranged across said diffuser such that said projected solid angle increases for respective locations along a fransverse direction across a substantial portion of said diffuser.
  153. 153
    The optical diffuser of Claim 152, wherein said optical diffuser comprises a substantially planar optical element.
  154. 154
    The optical diffuser of Claim 152, wherein said optical diffuser comprises a diffractive optical element.
  155. 155
    The optical diffuser of Claim 154, wherein said optical diffuser comprises a holographic difftxser.
  156. 156
    The optical diffuser of Claim 152, wherein said light dispersing features comprise surface features on said outer surface.
  157. 157
    The optical diffuser of Claim 152, wherein said light dispersing features comprising volume features in said volume.
  158. 158
    The optical diffuser of Claim 157, wherein said light dispersing features comprise refractive index variations in said volume of said diffuser.
  159. 159
    The optical diffuser of Claim 152, wherein said light dispersing features comprise reflective features disposed in said volume.
  160. 160
    The optical diffuser of Claim 152, wherein said projected solid angle increases by at least 1.5 across said substantial portion of said diffuser.
  161. 161
    The optical diffuser of Claim 152, wherein said projected solid angle increases by two to six times across said substantial portion of said diffuser.
  162. 162
    The optical diffuser of Claim 161, wherein said substantial portion of said diffuser over which said projected solid area increases is about 1.5 to 4.5 centimeters.
  163. 163
    The optical diffuser of Claim 152, wherein said projected solid area increases from about 0 to π radians across said substantial portion of said diffuser.
  164. 164
    The optical diffuser of Claim 152, wherein said projected solid area increases from about 0 to 2.35 radians across said substantial portion of said diffuser about 1.9 centimeters.
  165. 165
    A method of displaying an image with a heads-up display, said method comprising:producing in increasing illuminance across a diffuser;scattering light incident on different locations across said diffuser into increasing into large projected solid angles so as to produce a substantially constant luminance;directing said scattered light having substantially constant luminance to said spatial light modulator;fonning a pattern with said spatial light modulator;propagating light from said spatial light modulator to imaging optics;and fonning an image of said pattern formed by said spatial light modulator with said imaging optics.
  166. 166
    The method of Claim 165, wherein light from said spatial light modulator is propagated to an optical combiner for said heads-up display.
  167. 167
    The method of Claim 165, wherein said pattern formed by said spatial light modulator comprises an alphanumeric character.
  168. 168
    A method of projecting an image on a rear projection TV, said method comprising:producing increasing illuminance at an input of an light distribution optics having a lateral spatial extent and an output with increasing numerical aperture across said lateral spatial extent;ouφutting light from said light distribution optics having increasing numerical aperture across said lateral spatial extent into increasingly large projected solid angles across said lateral spatial extent so as to reduce variation in luminance;directing said light with reduced variation in luminance to said spatial light modulator;forming a pattern with said spatial light modulator based on video or computer signals;propagating light from said spatial light modulator to imaging optics;and forming an image of said pattern formed by said spatial light modulator with said imaging optics onto said screen of said rear projection TV.
  169. 169
    The method of Claim 168, wherein said video or computer signals are selected from the group consisting of analog signals and digital signals.
  170. 170
    A method of forming an image for a display, said method comprising:modulating an array of optical modulators to produce a spatial pattern;il uninating an area on said array of optical modulators with a beam of light having increasing illuminance and substantially constant luminance across a cross- section of the beam to provide increasing illuminance and substantially constant luminance across said area on said array of modulator illuminated by said beam;and propagating said light from said array of optical modulators into optics for fonning said image.
  171. 171
    The method of Claim 170, wherein said array of optical modulators are selectively altered to produce characters.
  172. 172
    A color projection system for projecting color images, said color projection system comprising:a spatial light modulator comprising a plurality of pixels for forming patterns;projection optics disposed with respect to said spatial light modulator for fonning an image of said pattern formed by said spatial light modulator, said projection optics having an F-number that varies across a lateral dimension;an illumination optics having a numerical aperture that varies across said lateral direction, said variation in said numerical aperture of said illumination optics substantially matching said F-number of said projection optics for illuminating said spatial light modulator;and a source of light coupling light to said illumination optics, wherem said source of light and said illumination optics together provide a variation in illuminance at said spatial light modulator such that said luminance is substantially constant at said spatial light modulator.
  173. 173
    The color projection system of Claim 172, wherein illumination optics comprises a diffuser.
  174. 174
    The color projection system of Claim 172, wherein said illumination includes a light box with a plurality of non-imaging optics optically connected thereto.
  175. 175
    The color projection system of Claim 172, wherein said illumination optics comprises a lens array.
  176. 176
    A method of projecting an image onto a screen, said method comprising:forming a pattern with an array of modulators;illuminating an area of said array of modulators with illumination having substantially constant luminance across said area;imaging said area with imaging optics having a pupil and an F-number that varies across a dimension of said array of modulators, wherein said illumination at said array of modulators has (i) increasing divergence across said area so as to substantially fill said pupil with said variation in F-number without substantially overfilling and (ii) increasing illuminance across said area to provide substantially constant luminance.
Independent claims176