Claims
- 1. A collecting and condensing apparatus comprising:
a source of electromagnetic radiation, said source having a first width; a first light pipe, said first light pipe having a first input end and a reflective end, said input end having a second width; a second light pipe disposed parallel to said first light pipe, said second light pipe further having an second input end juxtaposed to said first input end of said first light pipe and an output end, said second input end having a third width; a first reflector having a first optical axis and a first focal point on said first optical axis; a second reflector having a second optical axis and a second focal point on said second optical axis disposed substantially symmetrically to said first reflector such that said first optical axis is substantially collinear with said second optical axis; said source being located substantially proximate to said first focal point of said first reflector to produce rays of radiation that reflect from said first reflector to said second reflector and substantially converge at said second focal point; an additional reflector constructed and arranged to reflect at least part of a portion of the electromagnetic radiation that does not impinge directly on said first reflector toward said first reflector through the first focal point of said first reflector to increase a flux intensity of the converging rays; and wherein said first and second input ends of said light pipes are located substantially proximate to said second focal point of said second reflector to collect said electromagnetic radiation.
- 2. The collecting and condensing apparatus of claim 1, wherein said first width is substantially equal to the sum of said second and said third widths.
- 3. The collecting and condensing apparatus of claim 1, wherein said first width is smaller than the sum of said second and said third widths.
- 4. The collecting and condensing apparatus of claim 1, wherein said first width is larger than the sum of said second and said third widths.
- 5. The collecting and condensing apparatus of claim 1, wherein said second width is substantially equal to said third width.
- 6. The collecting and condensing apparatus of claim 1, wherein said second width is substantially twice said third width.
- 7. The collecting and condensing apparatus of claim 1, wherein said first and said second light pipes comprise substantially tapered light pipes.
- 8. The collecting and condensing apparatus of claim 1, wherein said first and second reflectors have a coating that reflects only a pre-specified portion of the electromagnetic radiation spectrum.
- 9. The collecting and condensing apparatus of claim 8, wherein said coating only reflects visible light radiation, a pre-specified band of radiation, or a specific color of radiation.
- 10. The collecting and condensing apparatus of claim 1, wherein said first and second reflectors comprise at least a portion of a substantially ellipsoidal surface of revolution.
- 11. The collecting and condensing apparatus of claim 1, wherein said first and second reflectors comprise at least a portion of a substantially toroidal surface of revolution.
- 12. The collecting and condensing apparatus of claim 1, wherein said first and second reflectors comprise at least a portion of a substantially spheroidal surface of revolution.
- 13. The collecting and condensing apparatus of claim 1, wherein said first and second reflectors comprise at least a portion of a substantially paraboloidal surface of revolution.
- 14. The collecting and condensing apparatus of claim 1, wherein:
said first reflector comprises at least a portion of a substantially ellipsoidal surface of revolution; and said second reflector comprises at least a portion of a substantially hyperboloidal surface of revolution.
- 15. The collecting and condensing apparatus of claim 1, wherein:
said first reflector comprises at least a portion of a substantially hyperboloidal surface of revolution; and said second reflector comprises at least a portion of a substantially ellipsoidal surface of revolution.
- 16. The collecting and condensing apparatus of claim 1, wherein said additional reflector comprises a spherical retro-reflector disposed on a side of said source opposite said first reflector to reflect electromagnetic radiation emitted from said source in a direction away from said first reflector toward said first reflector through the first focal point of said first reflector.
- 17. The collecting and condensing apparatus of claim 1, wherein said source comprises a light-emitting arc lamp.
- 18. The collecting and condensing apparatus of claim 17, wherein said arc lamp comprises a lamp selected from the group comprising a xenon lamp, a metal halide lamp, an HID lamp, a mercury lamp, or a high-pressure mercury lamp.
- 19. The collecting and condensing apparatus of claim 1, wherein said source comprises a filament lamp.
- 20. The collecting and condensing apparatus of claim 1, further comprising a waveguide disposed substantially proximate to said output end of said second light pipe, said waveguide selected from the group consisting of a single core optic fiber, a fiber bundle, a fused fiber bundle, a polygonal rod, a hollow reflective light pipe, or a homogenizer.
- 21. The collecting and condensing apparatus of claim 20, wherein a cross-section of said waveguide is selected from the group consisting of circular waveguides, polygonal waveguides, tapered waveguides and combinations thereof.
- 22. The collecting and condensing apparatus of claim 1, wherein said first and second light pipes are comprised of a material selected from the group consisting of quartz, glass, plastic, or acrylic.
- 23. The collecting and condensing apparatus of claim 1, further comprising a fiber optic, the fiber optic being illuminated by the radiation transmitted at said output end of said second light pipe, the fiber optic releasing the collected and condensed radiation to provide for illumination at a desired location.
- 24. The collecting and condensing apparatus of claim 1, further comprising:
a condenser lens disposed substantially proximate to said output end of said second light pipe; an image projection system disposed substantially proximate to an output side of said condenser lens; an image being illuminated by the radiation collected and condensed at said optical coupling element, the projection system releasing the collected and condensed radiation to display the image.
- 25. A system for collecting and condensing electromagnetic radiation comprising:
a source of electromagnetic radiation, said source having a first width; a first light pipe, said first light pipe having a first input end and a reflective end, said first input end having a second width; a second light pipe disposed parallel to said first light pipe, said second light pipe further having a second input end juxtaposed to said first input end of said first light pipe and an output end, said second input end having a third width; a first reflector having a first optical axis and a first focal point on said first optical axis; a second reflector having a second optical axis and a second focal point on said second optical axis disposed substantially symmetrically to said first reflector such that said first optical axis is substantially collinear with said second optical axis; said source being located substantially proximate to said first focal point of said first reflector to produce rays of radiation that reflect from said first reflector to said second reflector and substantially converge at said second focal point; an additional reflector constructed and arranged to reflect at least part of the portion of the electromagnetic radiation that does not impinge directly on said first reflector toward said first reflector through the first focal point of said first reflector to increase the flux intensity of the converging rays; and wherein said first and second input ends of said light pipes are located substantially proximate to said second focal point of said second reflector to collect said electromagnetic radiation.
- 26. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first width is substantially equal to the sum of said second and said third widths.
- 27. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first width is smaller than the sum of said second and said third widths.
- 28. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first width is larger than the sum of said second and said third widths.
- 29. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said second width is substantially equal to said third width.
- 30. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said second width is substantially twice said third width.
- 31. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first and said second light pipes comprise tapered light pipes.
- 32. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first and second reflectors have a coating that reflects only a pre-specified portion of the electromagnetic radiation spectrum.
- 33. The system for collecting and condensing electromagnetic radiation of claim 32, wherein said coating only reflects visible light radiation, a pre-specified band of radiation, or a specific color of radiation.
- 34. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first and second reflectors comprise at least a portion of a substantially ellipsoidal surface of revolution.
- 35. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first and second reflectors comprise at least a portion of a substantially toroidal surface of revolution.
- 36. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first and second reflectors comprise at least a portion of a substantially spheroidal surface of revolution.
- 37. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first and second reflectors comprise at least a portion of a substantially paraboloidal surface of revolution.
- 38. The system for collecting and condensing electromagnetic radiation of claim 25, wherein:
said first reflector comprises at least a portion of a substantially ellipsoidal surface of revolution; and said second reflector comprises at least a portion of a substantially hyperboloidal surface of revolution.
- 39. The system for collecting and condensing electromagnetic radiation of claim 25, wherein:
said first reflector comprises at least a portion of a substantially hyperboloidal surface of revolution; and said second reflector comprises at least a portion of a substantially ellipsoidal surface of revolution.
- 40. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said additional reflector comprises a spherical retro-reflector disposed on a side of said source opposite said first reflector to reflect electromagnetic radiation emitted from said source in a direction away from said first reflector toward said first reflector through the first focal point of said first reflector.
- 41. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said source comprises a light-emitting arc lamp.
- 42. The system for collecting and condensing electromagnetic radiation of claim 41, wherein said arc lamp comprises a lamp selected from the group comprising a xenon lamp, a metal halide lamp, an HID lamp, a mercury lamp, or a high-pressure mercury lamp.
- 43. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said source comprises a filament lamp.
- 44. The system for collecting and condensing electromagnetic radiation of claim 25, further comprising a waveguide disposed substantially proximate to said output end of said second light pipe, said waveguide selected from the group consisting of a single core optic fiber, a fiber bundle, a fused fiber bundle, a polygonal rod, a hollow reflective light pipe, or a homogenizer.
- 45. The system for collecting and condensing electromagnetic radiation of claim 44, wherein a cross-section of said waveguide is selected from the group consisting of circular waveguides, polygonal waveguides, tapered waveguides and combinations thereof.
- 46. The system for collecting and condensing electromagnetic radiation of claim 25, wherein said first and second light pipes are comprised of a material selected from the group consisting of quartz, glass, plastic, or acrylic.
- 47. The system for collecting and condensing electromagnetic radiation of claim 25, further comprising a fiber optic, the fiber optic being illuminated by the radiation transmitted at said output end of said second light pipe, the fiber optic releasing the collected and condensed radiation to provide for illumination at a desired location.
- 48. The system for collecting and condensing electromagnetic radiation of claim 25, further comprising:
a condenser lens disposed substantially proximate to said output end of said second light pipe; an image projection system disposed substantially proximate to an output side of said condenser lens; an image being illuminated by the radiation collected and condensed at said optical coupling element, the projection system releasing the collected and condensed radiation to display the image.
- 49. An optical device for folding electromagnetic radiation emitted by a source back on itself to increase the brightness of the source, said device comprising:
said source of electromagnetic radiation, said source having a first width; a first light pipe, said first light pipe having a first input end and a reflective end, said first input end having a second width; a second light pipe disposed parallel to said first light pipe, said second light pipe further having a second input end juxtaposed to said first input end of said first light pipe, and an output end, said second input end having a third width; a first reflector having a first optical axis and a first focal point on said first optical axis; a second reflector having a second optical axis and a second focal point on said second optical axis disposed substantially symmetrically to said first reflector such that said first optical axis is substantially collinear with said second optical axis; said source being located substantially proximate to said first focal point of said first reflector to produce rays of radiation that reflect from said first reflector to said second reflector and substantially converge at said second focal point; an additional reflector constructed and arranged to reflect at least part of the portion of the electromagnetic radiation that does not impinge directly on said first reflector toward said first reflector through the first focal point of said first reflector to increase the flux intensity of the converging rays; and wherein said input ends of said first and second light pipes are located substantially proximate to said second focal point of said second reflector to collect said electromagnetic radiation.
- 50. The optical device of claim 49, wherein said first width is substantially equal to the sum of said second and said third widths.
- 51. The optical device of claim 49, wherein said first width is smaller than the sum of said second and said third widths.
- 52. The optical device of claim 49, wherein said first width is larger than the sum of said second and said third widths.
- 53. The optical device of claim 49, wherein said second width is substantially equal to said third width.
- 54. The optical device of claim 49, wherein said second width is substantially twice said third width.
- 55. The optical device of claim 49, wherein said first and said second light pipes comprise substantially tapered light pipes.
- 56. The optical device of claim 49, wherein said first and second reflectors have a coating that reflects only a pre-specified portion of the electromagnetic radiation spectrum.
- 57. The optical device of claim 56, wherein said coating only reflects visible light radiation, a pre-specified band of radiation, or a specific color of radiation.
- 58. The optical device of claim 49, wherein said first and second reflectors comprise at least a portion of a substantially ellipsoidal surface of revolution.
- 59. The optical device of claim 49, wherein said first and second reflectors comprise at least a portion of a substantially toroidal surface of revolution.
- 60. The optical device of claim 49, wherein said first and second reflectors comprise at least a portion of a substantially spheroidal surface of revolution.
- 61. The optical device of claim 49, wherein said first and second reflectors comprise at least a portion of a substantially paraboloidal surface of revolution.
- 62. The optical device of claim 49, wherein:
said first reflector comprises at least a portion of a substantially ellipsoidal surface of revolution; and said second reflector comprises at least a portion of a substantially hyperboloidal surface of revolution.
- 63. The optical device of claim 49, wherein:
said first reflector comprises at least a portion of a substantially hyperboloidal surface of revolution; and said second reflector comprises at least a portion of a substantially ellipsoidal surface of revolution.
- 64. The optical device of claim 49, wherein a portion of the electromagnetic radiation emitted by said source of electromagnetic radiation impinges directly on said first reflector and a portion of the electromagnetic radiation does not impinge directly on said first reflector and wherein said system further comprises an additional reflector constructed and arranged to reflect at least part of the portion of the electromagnetic radiation that does not impinge directly on said first reflector toward said first reflector through the first focal point of said first reflector to increase the flux intensity of the converging rays.
- 65. The optical device of claim 49, wherein said additional reflector comprises a spherical retro-reflector disposed on a side of said source opposite said first reflector to reflect electromagnetic radiation emitted from said source in a direction away from said first reflector toward said first reflector through the first focal point of said first reflector.
- 66. The optical device of claim 49, wherein said source comprises a light-emitting arc lamp.
- 67. The optical device of claim 66, wherein said arc lamp comprises a lamp selected from the group comprising a xenon lamp, a metal halide lamp, an HID lamp, a mercury lamp, or a high pressure mercury lamp.
- 68. The optical device of claim 49, wherein said source comprises a filament lamp.
- 69. The optical device of claim 49, further comprising a waveguide disposed substantially proximate to said output end of said second light pipe, said waveguide selected from the group consisting of a single core optic fiber, a fiber bundle, a fused fiber bundle, a polygonal rod, a hollow reflective light pipe, or a homogenizer.
- 70. The optical device of claim 69, wherein a cross-section of said waveguide is selected from the group consisting of circular waveguides, polygonal waveguides, tapered waveguides and combinations thereof.
- 71. The optical device of claim 49, wherein said first and second light pipes are comprised of a material selected from the group consisting of quartz, glass, plastic, or acrylic.
- 72. The optical device of claim 49, further comprising a fiber optic, the fiber optic being illuminated by the radiation transmitted at said output end of said second light pipe, the fiber optic releasing the collected and condensed radiation to provide for illumination at a desired location.
- 73. The optical device of claim 49, further comprising:
a condenser lens disposed substantially proximate to said output end of said second light pipe; an image projection system disposed substantially proximate to an output side of said condenser lens; an image being illuminated by the radiation collected and condensed at said optical coupling element, the projection system releasing the collected and condensed radiation to display the image.
- 74. A method of folding electromagnetic radiation emitted by a source back on itself to increase the brightness of the source, the method comprising the steps of:
positioning said source of electromagnetic radiation at a focal point of a first reflector, said source having a first width; producing rays of radiation by said source; reflecting said rays of radiation by said first reflector toward a second reflector; converging said rays of radiation at a focal point of said second reflector; positioning a first light pipe having a first input end and a reflective end, said first input end further having a second width, and a second light pipe having an second input end and an output end, said second input end further having a third width, such that said first and second input ends are substantially proximate to the focal point of the second reflector, and wherein said first width is substantially equal to a sum of said second and third widths; and passing the rays of radiation reflected by said second reflector through said first and second input ends of said first and second light pipes; outputting rays of radiation passing through said second light pipe; and reflecting rays of radiation passing through said first light pipe back toward said second and first reflectors, to said source.
- 75. The method of folding electromagnetic radiation emitted by a source back on itself of claim 74, wherein said first and second reflectors comprise at least a portion of a substantially paraboloidal surface of revolution.
- 76. The method of folding electromagnetic radiation emitted by a source back on itself of claim 74, wherein said first and second reflectors comprise at least a portion of a substantially ellipsoidal surface of revolution.
- 77. The method of folding electromagnetic radiation emitted by a source back on itself claim 74, wherein:
said first reflector comprises at least a portion of a substantially ellipsoidal surface of revolution; and said second reflector comprises at least a portion of a substantially hyperboloidal surface of revolution.
- 78. The method of folding electromagnetic radiation emitted by a source back on itself claim 74, wherein:
said first reflector comprises at least a portion of a substantially hyperboloidal surface of revolution; and said second reflector comprises at least a portion of a substantially ellipsoidal surface of revolution.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to Provisional Application Serial No. 60/243,280, filed Oct. 26, 2000, the disclosure of which is incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60243280 |
Oct 2000 |
US |