Claims
- 1-75. (Canceled).
- 76. A lighting system that provides a variable selected spectral output and a variable wavelength dependent intensity distribution, the lighting system comprising a light path that comprises:
a) a spectrum former configured to provide a spectrum from a light beam traveling along the light path, and b) a pixelated spatial light modulator located downstream from and optically connected to the spectrum former, the pixelated spatial light modulator configured to pass desired light from the spectrum to select a segment of light, wherein the pixelated spatial light modulator is operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the pixelated spatial light modulator to provide a desired segment of light comprising the desired spectral and intensity distribution, the desired segment of light consisting essentially of a desired selected spectral output and a desired wavelength dependent intensity distribution, c) and wherein the pixelated spatial light modulator is a first pixelated spatial light modulator, and wherein the desired segment of light is directed to a second spatial light modulator operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the second spatial light modulator to select the desired segment.
- 77. The lighting system of claim 76 wherein the first pixelated spatial light modulator and the second pixelated spatial light modulator are connected to a single controller.
- 78. The lighting system of claim 76 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired portion of a wavelength dependent distribution of output energy of at least one of a known lamp, a cathode ray tube image display device, a light emissive image display device and a source of optical radiation.
- 79. The lighting system of claim 76 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy corresponding to a desired natural ambient lighting scenario.
- 80. The lighting system of claim 76 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for disease treatment.
- 81. The lighting system of claim 76 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for photodynamic therapy.
- 82. The lighting system of claim 76 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for disease diagnosis.
- 83. The lighting system of claim 76 wherein the desired segment is selected to substantially mimic a spectral output and a wavelength dependent intensity distribution of output energy that can enhance contrast for detection or discrimination of a desired object in a scene.
- 84. The lighting system of claim 76 wherein the lighting system further comprises a heat removal element operably connected to the light source to remove undesired energy emitted from the light source toward at least one of the reflective pixelated spatial light modulator, the optical element, and the spectrum former.
- 85. A lighting system that provides a variable selected spectral output and wavelength dependent intensity distribution, the lighting system comprising a light path that comprises:
a) a spectrum former configured to provide a spectrum from a light beam traveling along the light path, and b) a pixelated spatial light modulator located downstream from and optically connected to the spectrum former, the pixelated spatial light modulator configured to pass desired light from the spectrum to select a segment of light, wherein the pixelated spatial light modulator is operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the pixelated spatial light modulator to provide a desired segment of light comprising the desired spectral and intensity distribution, the desired segment of light consisting essentially of a desired selected spectral output and a desired wavelength dependent intensity distribution, and c) a detector operably connected to a controller containing computer-implemented programming configured to determine from the detector whether the desired segment contains a desired selected spectral output and a desired wavelength dependent intensity distribution, and adjust the on/off pattern of pixels in the pixelated spatial light modulator to improve the correspondence between the desired segment and the desired selected spectral output and the desired wavelength dependent intensity distribution.
- 86. The lighting system of claim 85 wherein the system further comprises a light source located upstream from the spectrum former.
- 87. The lighting system of claim 85 wherein the pixelated spatial light modulator is a first pixelated spatial light modulator, and wherein the desired segment of light is directed to a second pixelated spatial light modulator operably connected to at least one controller containing computer-implemented programming that controls the on/off pattern of pixels in the second spatial light modulator to select the desired segment.
- 88. The lighting system of claim 85 wherein the system further comprises an optical projection device located downstream from at least one of the first pixelated spatial light modulator and the second pixelated spatial light modulator to project light as a directed light beam.
- 89. The lighting system of claim 85 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired portion of a wavelength dependent distribution of output energy of at least one of a known lamp, a cathode ray tube image display device, a light emissive image display device and a source of optical radiation.
- 90. The lighting system of claim 85 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy corresponding to a desired natural ambient lighting scenario.
- 91. The lighting system of claim 85 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for disease treatment.
- 92. The lighting system of claim 85 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for photodynamic therapy.
- 93. The lighting system of claim 85 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for disease diagnosis.
- 94. The lighting system of claim 85 wherein the desired segment is selected to substantially mimic a spectral output and a wavelength dependent intensity distribution of output energy that can enhance contrast for detection or discrimination of a desired object in a scene.
- 95. The lighting system of claim 85 wherein the lighting system further comprises a heat removal element operably connected to the light source to remove undesired energy emitted from the light source toward at least one of the reflective pixelated spatial light modulator, the optical element, and the spectrum former.
- 96. A stand alone luminaire sized to project light onto a scene and having a variable selected spectral output and wavelength dependent intensity distribution, the luminaire comprising:
a) a high output light source, b) a spectrum former optically connected to and downstream from the light source to provide a spectrum from a light beam emitted from the light source, c) a pixelated spatial light modulator located downstream from and optically connected to the spectrum former, the pixelated spatial light modulator configured to pass desired light from the spectrum to select a segment of light, wherein the pixelated spatial light modulator is operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the pixelated spatial light modulator to provide a desired segment of light comprising the desired spectral and intensity distribution, the desired segment of light consisting essentially of a desired selected spectral output and a desired wavelength dependent intensity distribution, d) a projection system optically connected to and downstream from the pixelated spatial light modulator in the first direction, wherein the projection system projects the desired segment as a directed light beam to illuminate the scene, and e) a detector optically connected to and downstream from the pixelated spatial light modulator, the detector also operably connected to a controller containing computer-implemented programming configured to determine from the detector whether the desired segment contains a desired selected spectral output and a desired wavelength dependent intensity distribution, and adjust the on/off pattern of pixels in the pixelated spatial light modulator to improve the correspondence between the desired segment and the desired selected spectral output and the desired wavelength dependent intensity distribution.
- 97. The luminaire of claim 96 wherein the pixelated spatial light modulator is a first pixelated spatial light modulator, and wherein the desired segment of light is directed to a second spatial light modulator operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the second pixelated spatial light modulator to provide an improved desired selected spectral output and desired wavelength dependent intensity distribution in the desired segment of light.
- 98. The luminaire of claim 96 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired portion of a wavelength dependent distribution of output energy of at least one of a known lamp, a cathode ray tube image display device, a light emissive image display device and a source of optical radiation.
- 99. The luminaire of claim 96 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy corresponding to a desired natural ambient lighting scenario.
- 100. The luminaire of claim 96 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for disease treatment.
- 101. The luminaire of claim 96 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for photodynamic therapy.
- 102. The luminaire of claim 96 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for disease diagnosis.
- 103. The luminaire of claim 96 wherein the desired segment is selected to substantially mimic a spectral output and a wavelength dependent intensity distribution of output energy that can enhance contrast for detection or discrimination of a desired object in a scene.
- 104. The luminaire of claim 96 wherein the luminaire further comprises a heat removal element operably connected to the light source to remove undesired energy emitted from the light source toward at least one of the reflective pixelated spatial light modulator, the optical element, and the spectrum former.
- 105. The luminaire of claim 96 wherein the system further comprises a spectral recombiner optically connected to and located downstream from the pixelated spatial light modulator.
- 106. The luminaire of claim 96 wherein the detector comprises at least one of a CCD, a CID, a CMOS, and photodiode array.
- 107. The luminaire of claim 97 wherein the high output light source, the spectrum former, the optical element that provides an enhanced image, the pixelated spatial light modulator, and the projection system, are all located in a single housing.
- 108. A method of lighting a scene comprising:
a) directing a light beam along a light path and through a spectrum former to provide a spectrum from the light beam traveling; b) passing the spectrum by a pixelated spatial light modulator located downstream from and optically connected to the spectrum former, the pixelated spatial light modulator configured to pass desired light from the spectrum to select a segment of light, wherein the pixelated spatial light modulator is operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the pixelated spatial light modulator to provide a desired segment of light consisting essentially of a desired selected spectral output and a desired wavelength dependent intensity distribution, c) transmitting the desired segment of light to a detector operably connected to a controller containing computer-implemented programming configured to determine from the detector whether the desired segment contains the desired selected spectral output and a desired wavelength dependent intensity distribution, and adjusting the on/off pattern of pixels in the pixelated spatial light modulator to improve the correspondence between the desired segment and the desired selected spectral output and the desired wavelength dependent intensity distribution.
- 109. The method of claim 108 wherein the method further comprises emitting the light beam from a light source located in a same housing as and upstream from the spectrum former, and wherein the spectrum former comprises at least one of a prism and a diffraction grating.
- 110. The method of claim 108 wherein the method further comprises passing the light beam by an optical element between the spectrum former and the pixelated spatial light modulator to provide a substantially enhanced image of the spectrum from the spectrum former to the pixelated spatial light modulator.
- 111. The method of claim 108 wherein the pixelated spatial light modulator is a first pixelated spatial light modulator, and wherein the method further comprises passing the modified light beam by a second reflective spatial light modulator operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the second pixelated spatial light modulator to select the desired segment of light.
- 112. The method of claim 108 wherein the method further comprises passing the modified light beam by an optical projection device located downstream from the pixelated spatial light modulator to project light as a directed light beam.
- 113. The method of claim 108 wherein the desired segment is selected to substantially mimic a spectral output and a wavelength dependent intensity distribution of at least one of a known lamp, a cathode ray tube image display device, a light emissive image display device and a source of optical radiation.
- 114. The method of claim 108 wherein the desired segment is selected to substantially mimic a spectral output and a wavelength dependent intensity distribution of output energy corresponding to a desired natural ambient lighting scenario.
- 115. The method of claim 108 wherein the desired segment is selected to substantially mimic a spectral output and a wavelength dependent intensity distribution of output energy for disease treatment.
- 116. The method of claim 108 wherein the desired segment is selected to substantially mimic a spectral output and a wavelength dependent intensity distribution of output energy for photodynamic therapy.
- 117. The method of claim 108 wherein the desired segment is selected to substantially mimic a spectral output and a wavelength dependent intensity distribution of output energy for disease diagnosis.
- 118. The method of claim 108 wherein the pixelated spatial light modulator is a digital micromirror device.
- 119. A method of lighting a scene comprising:
a) directing a light beam along a light path and through a spectrum former to provide a spectrum from the light beam traveling; and, b) passing the spectrum by a pixelated spatial light modulator located downstream from and optically connected to the spectrum former, the pixelated spatial light modulator configured to pass desired light from the spectrum to select a segment of light, wherein the pixelated spatial light modulator is operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the pixelated spatial light modulator to provide a desired segment of light consisting essentially of a desired selected spectral output and a desired wavelength dependent intensity distribution, c) wherein the pixelated spatial light modulator is a first pixelated spatial light modulator, and wherein light from the first pixelated spatial light modulator is directed to a second spatial light modulator operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the second spatial light modulator to select the desired segment.
- 120. The method of claim 119 wherein the method further comprises emitting the light beam from a light source located in a same housing as and upstream from the spectrum former, and wherein the spectrum former comprises at least one of a prism and a diffraction grating.
- 121. The method of claim 120 wherein the method further comprises an optical projection device located downstream from at least one of the first pixelated spatial light modulator and the second pixelated spatial light modulator to project light as a directed light beam.
- 122. A method of emitting modified light consisting essentially of a desired selected spectral output and a desired wavelength dependent intensity distribution from a stand alone luminaire, the method comprising:
a) emitting light from a high output light source located in a housing of the luminaire; b) passing the light by a spectrum former optically connected to and downstream from the light source to provide a spectrum from a light beam emitted from the light source; c) passing the spectrum by an optical element connected to and downstream from the spectrum former to provide an enhanced image of the spectrum; d) passing the spectrum by a pixelated spatial light modulator located downstream from and optically connected to the spectrum former, the pixelated spatial light modulator configured to pass desired light from the spectrum to select a segment of light, wherein the pixelated spatial light modulator is operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the pixelated spatial light modulator to provide a desired segment of light consisting essentially of a desired selected spectral output and a desired wavelength dependent intensity distribution, e) passing the modified light beam by a projection system optically connected to and downstream from the pixelated spatial light modulator in the first direction, wherein the projection system projects the modified light beam from the luminaire as a directed light beam, and f) transmitting the desired segment of light to a detector operably connected to a controller containing computer-implemented programming configured to determine from the detector whether the desired segment contains the desired selected spectral output and a desired wavelength dependent intensity distribution, and adjusting the on/off pattern of pixels in the pixelated spatial light modulator to improve the correspondence between the desired segment and the desired selected spectral output and the desired wavelength dependent intensity distribution.
- 123. The method of claim 122 wherein the method further comprises adjusting the on/off pattern of pixels in the pixelated spatial light modulator to improve the correspondence between the desired segment and the desired selected spectral output and the desired wavelength dependent intensity distribution.
- 124. The method of claim 122 or 123 wherein the method further comprises removing undesired energy emitted from the light source toward at least one of the pixelated spatial light modulator, the optical element, and the spectrum former, the removing effected via a heat removal element operably connected to the light source.
- 125. The method of claim 122 wherein the pixelated spatial light modulator is a first pixelated spatial light modulator, and wherein the desired segment is directed to a second spatial light modulator operably connected to at least one controller containing computer-implemented programming that controls an on/off pattern of pixels in the second pixelated spatial light modulator to provide an improved desired selected spectral output and desired wavelength dependent intensity distribution.
- 126. The method of claim 122 or 123 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired portion of a wavelength dependent distribution of output energy of at least one of a known lamp, a cathode ray tube image display device, a light emissive image display device and a source of optical radiation.
- 127. The method of claim 122 or 123 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy corresponding to a desired natural ambient lighting scenario.
- 128. The method of claim 122 or 123 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for disease treatment.
- 129. The method of claim 122 or 123 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for photodynamic therapy.
- 130. The method of claim 122 or 123 wherein the desired selected spectral output and desired wavelength dependent intensity distribution substantially mimic a desired wavelength dependent distribution of output energy for disease diagnosis.
- 131. The method of claim 122 or 123 wherein the method further comprises passing the desired segment by a spectral recombiner optically connected to and located downstream from the pixelated spatial light modulator.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims priority from U.S. provisional patent application No. 60/265,991, filed Feb. 2, 2001, and from U.S. provisional patent application No. 60/310,940, filed Aug. 7, 2001.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60265991 |
Feb 2001 |
US |
|
60310940 |
Aug 2001 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
10061966 |
Jan 2002 |
US |
Child |
10854828 |
May 2004 |
US |