Claims
- 1. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a diffuse reflective polarizer film; and a non-polarization maintaining background provided to the diffuse reflective polarizer film; whereby the diffuse reflective polarizer film and the non-polarization maintaining background cooperate to resolve and make perceptible to a viewer the visual information.
- 2. The reflective polarizer as recited in claim 1, wherein the non-polarization maintaining background is coated upon the back surface of the diffuse reflective polarizer film.
- 3. The reflective polarizer as recited in claim 1, wherein the non-polarization maintaining background comprises a paint.
- 4. The reflective polarizer as recited in claim 1, wherein the non-polarization maintaining background comprises a fabric.
- 5. The reflective polarizer as recited in claim 1, wherein the non-polarization maintaining material has a black color.
- 6. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a dual brightness enhancement film; and a polarization maintaining background provided to the dual brightness enhancement film; whereby the dual brightness enhancement film and the polarization maintaining background cooperate to resolve and make perceptible to a viewer the visual information.
- 7. The reflective polarizer as recited in claim 6, wherein the polarization maintaining background is coated upon the back surface of the dual brightness enhancement film.
- 8. The reflective polarizer as recited in claim 6, wherein the polarization maintaining background comprises a paint.
- 9. The reflective polarizer as recited in claim 6, wherein the polarization maintaining background comprises a fabric.
- 10. The reflective polarizer as recited in claim 6, wherein the polarization maintaining material has a silver color.
- 11. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a dual brightness enhancement layer having a front surface with a silver color; and a polarization maintaining background provided to the back surface of the dual brightness enhancement layer; whereby the dual brightness enhancement layer and the polarization maintaining background cooperate to resolve and make perceptible to a viewer the visual information.
- 12. The reflective polarizer as recited in claim 11, wherein the polarization maintaining background is coated upon the back surface of the dual brightness enhancement layer.
- 13. The reflective polarizer as recited in claim 11, wherein the polarization maintaining background comprises a paint.
- 14. The reflective polarizer as recited in claim 11, wherein the polarization maintaining background comprises a fabric.
- 15. The reflective polarizer as recited in claim 11, wherein the polarization maintaining material has a silver color.
- 16. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a dual brightness enhancement layer having a matte front surface; and a non-polarization maintaining background provided to the dual brightness enhancement layer; whereby the dual brightness enhancement layer and the non-polarization background material cooperate to resolve and make perceptible to a viewer the visual information.
- 17. The reflective polarizer as recited in claim 16, wherein the non-polarization maintaining background is coated upon the back surface of the dual brightness enhancement layer.
- 18. The reflective polarizer as recited in claim 16, wherein the non-polarization maintaining background comprises a paint.
- 19. The reflective polarizer as recited in claim 16, wherein the non-polarization maintaining background comprises a fabric.
- 20. The reflective polarizer as recited in claim 16, wherein the non-polarization maintaining material has a black color.
- 21. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a layer of clear material; and a layer of reflective display film bonded to the layer of clear material; whereby the layer of clear material and the layer of reflective display film cooperate to make perceptible to a viewer the visual information.
- 22. The reflective polarizer as recited in claim 21, wherein the layer of clear material is birefringent.
- 23. The reflective polarizer as recited in claim 21, wherein the layer of clear material comprises a fabric.
- 24. The reflective polarizer as recited in claim 21, wherein the non-polarization maintaining background comprises a fabric.
- 25. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a tile piece having embedded polarized pieces provided to make perceptible to a viewer the visual information; wherein the polarized pieces are adapted to be resistant to water and solvents.
- 26. The reflective polarizers as recited in claim 25, wherein the polarized pieces are embedded in clear resin.
- 27. The reflective polarizers as recited in claim 25, wherein the polarized pieces are laminated between pieces of glass.
- 28. The reflective polarizers as recited in claim 25, wherein the polarized pieces are sandwiched between two pieces of PETG material.
- 29. The reflective polarizer as recited in claim 25, wherein the tile comprises a terrazzo type tile.
- 30. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a tile piece having polarized pieces provided to make perceptible to a viewer the visual information; wherein the polarized pieces are sandwiched between two pieces of acrylic.
- 31. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a tile piece having polarized pieces provided to make perceptible to a viewer the visual information; wherein the polarized pieces are sandwiched between two pieces of PETG.
- 32. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a tile piece having polarized pieces provided to make perceptible to a viewer the visual information; wherein the polarized pieces are laminated to thin pieces of Plexiglas.
- 33. The reflective polarizer as recited in claim 32, wherein the polarized pieces are formed from a single larger sheet.
- 34. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a first layer of polarizer material; and a second layer of letters formed from a polarizer material applied to the first layer; wherein the first layer and the second layer cooperate to make perceptible to a viewer the visual information while allowing text formed by the letters to be visible.
- 35. The reflective polarizer as recited in claim 34, wherein the first layer of polarizer material and the second layer of letters generate identical colors.
- 36. A reflective polarizer for use in connection with a polarized light projector adapted to project light including visual information, comprising:
a first layer of polarizer material; and a second layer of polarizer material having letters cut therefrom, the second layer of polarizer material applied to the first layer; wherein the first layer and the second layer cooperate to make perceptible to a viewer the visual information while allowing text formed by the letters to be visible.
- 37. The reflective polarizer as recited in claim 36, wherein the first layer of polarizer material and the second layer of letters generate identical colors.
- 38. The reflective polarizer as recited in claim 36, wherein the first layer generates substantially the same color when the second layer generates different colors.
- 39. A polarized light viewing system, comprising:
a first transmissive polarizer composed of concentric rings of polarization material; a plurality of partially overlapping birefringent materials disposed over the transmissive polarizer; and a second transmissive polarizer disposed over the plurality of partially overlapping birefringent materials; wherein each of the plurality of overlapping birefringent materials is individually free to rotate to change colors of the polarized light as it is viewed.
- 40. A latent effects projector, comprising:
a light projector adapted to project light including visual information; and an aluminum on glass polarizer disposed in front of the light projector for polarizing the projected light.
- 41. The latent effects projector as recited in claim 40, wherein a substantial entirety of the aluminum on glass polarizer is disposed within the projected light.
- 42. The latent effects projector as recited in claim 41, wherein the aluminum on glass polarizer is approximately the same size as the projected light passing there through.
- 43. The latent effects projector as recited in claim 42, comprising a plurality of retarders disposed in front of the polarizer for polarization encoding birefringent color to the projected light.
- 44. A polarized birefringent rotary tool, comprising:
a circle formed of pieces of a polarizer wherein all of the pieces have an identical polarization angle.
- 45. The polarized birefringent rotary tool as recited in claim 44, wherein each piece has an angular resolution of approximately 15 degrees.
- 46. A method of calibrating a polarized light projector system including a latent color projector adapted to project light including visual information, the method comprising:
arranging a pair of polarizers such that transmission of the projected light through the pair of polarizers is substantially inhibited; placing a first retarder between the pair of polarizers; rotating the first retarder to a position that provides substantially the brightest throughput through the pair of polarizers; placing a second retarder between the pair of polarizers and behind the first retarder; rotating the second retarder to a position that provides substantially the least throughput through the pair of polarizers; fixing the angular relationship between the first and second retarders forming a retarder laminate; inserting the retarder laminate between the polarizer closest to the latent color projector and a birefringent rotary tool; rotating the retarder laminate until a color spectrum appears on the rotary tool; and locking the retarder laminate in this orientation relative to the polarizer closest to the latent color projector.
- 47. The method as recited in claim 46, wherein the first retarder comprises a 530 nanometer retarder.
- 48. The method as recited in claim 46, wherein the first retarder comprises a 560 nanometer retarder.
- 49. The method as recited in claim 46, wherein the second retarder comprises a 140 nanometer retarder.
- 50. The method as recited in claim 46, wherein a lexan material is substituted for at least one of the first and second retarders.
- 51. The method as recited in claim 46, wherein the brightest throughput provides an interference color that is blue or reddish blue in color.
- 52. A method of calibrating a polarized light projector system including a latent color projector adapted to project light including visual information, the method comprising:
arranging a pair of polarizers such that transmission of the projected light through the pair of polarizers is substantially inhibited; placing a first retarder between the pair of polarizers; rotating the first retarder to a position that provides substantially the brightest throughput through the pair of polarizers; placing a second retarder between the pair of polarizers and behind the first retarder; rotating the second retarder to a position that provides substantially the brightest throughput through the pair of polarizers and the first retarder; placing a third retarder between the pair of polarizers and behind the second retarder; rotating the third retarder to a position that provides substantially the least throughput through the pair of polarizers and the first and second retarders; fixing the angular relationship between the first, second, and third retarders forming a retarder laminate; inserting the retarder laminate between the polarizer closest to the latent color projector and a birefringent rotary tool rotating the retarder laminate until a color spectrum appears on the rotary tool; and locking the retarder laminate in this orientation relative to the polarizer closest to the latent color projector.
- 52. The method as recited in claim 51, wherein at least one of the first and second retarders comprises a 530 nanometer retarder.
- 53. The method as recited in claim 51, wherein at least one of the first and second retarders comprises a 560 nanometer retarder.
- 54. The method as recited in claim 51, wherein the third retarder comprises a 140 nanometer retarder.
- 55. The method as recited in claim 51, wherein a lexan material is substituted for at least one of the first, second and third retarders.
- 56. The method as recited in claim 51, wherein the brightest throughput provides an interference color that is blue or reddish blue in color.
- 57. A method of calibrating a polarized light projector system including a latent color projector adapted to project light including visual information, the method comprising:
arranging a pair of polarizers such that transmission of the projected light through the pair of polarizers is substantially inhibited; placing a first retarder between the pair of polarizers; rotating the first retarder to a position that provides substantially the brightest throughput through the pair of polarizers; placing a second retarder between the pair of polarizers and behind the first retarder; rotating the second retarder to a position that provides substantially the brightest throughput through the pair of polarizers and the first retarder; placing a third retarder between the pair of polarizers and behind the second retarder; rotating the third retarder to a position that provides substantially the brightest throughput through the pair of polarizers and the first and second retarders; fixing the angular relationship between the first, second, and third retarders forming a retarder laminate; inserting the retarder laminate between the polarizer closest to the latent color projector and a birefringent rotary tool; rotating the retarder laminate until a color spectrum appears on the rotary tool; and locking the retarder laminate in this orientation relative to the polarizer located nearest the latent color projector.
- 58. The method as recited in claim 57, wherein at least one of the first and second retarders comprises a 530 nanometer retarder.
- 59. The method as recited in claim 57, wherein at least one of the first and second retarders comprises a 560 nanometer retarder.
- 60. The method as recited in claim 57, wherein the third retarder comprises a 140 nanometer retarder.
- 61. The method as recited in claim 57, wherein at lexan material is substituted for at least one of the first, second and third retarders.
- 62. The method as recited in claim 57, wherein the brightest throughput provides an interference color that is blue or reddish blue in color.
- 63. A method of calibrating a polarized light projector system including a latent color projector adapted to project light including visual information, the method comprising:
arranging a pair of polarizers such that transmission of the projected light through the pair of polarizers is substantially inhibited; placing a first retarder between the pair of polarizers; rotating the first retarder to a position that provides substantially the brightest throughput through the pair of polarizers; placing a second retarder between the pair of polarizers and behind the first retarder; rotating the second retarder to a position that provides substantially the brightest throughput through the pair of polarizers; fixing the angular relationship between the first and second retarders forming a retarder laminate; inserting the retarder laminate between the polarizer closest to the latent color projector and a birefringent rotary tool; rotating the retarder laminate until a color spectrum appears on the rotary tool; and locking the retarder laminate in this orientation relative to the polarizer closest to the latent color projector.
- 64. The method as recited in claim 63, wherein the first retarder comprises a 530 nanometer retarder.
- 65. The method as recited in claim 63, wherein the first retarder comprises a 560 nanometer retarder.
- 66. The method as recited in claim 63, wherein the second retarder comprises a 140 nanometer retarder.
- 67. The method as recited in claim 63, wherein a lexan material is substituted for at least one of the first and second retarders.
- 68. The method as recited in claim 63, wherein the brightest throughput provides an interference color that is blue or reddish blue in color.
RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Patent Application Serial No. 60/416,846 filed Oct. 8, 2002, the disclosure of which is hereby incorporated by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60416846 |
Oct 2002 |
US |