Claims
- 1. A system for aligning a pair of optical fibers, the system comprising:
an alignment tool located below a vision plane of a first one of the pair of optical fibers; and an optical detector to receive an indirect image of a bottom surface of the first one of the pair of optical fibers through the alignment tool.
- 2. The system according to claim 1, wherein an offset between the first one of the pair of optical fibers and the optical detector is determined based on the indirect image of the first one of the pair of optical fibers received by the optical detector.
- 3. The system according to claim 1, wherein the alignment tool is a counercube offset alignment tool.
- 4. The system according to claim 1, wherein optical detector is positioned above a top surface of the alignment tool.
- 5. The system according to claim 1, wherein the alignment tool is formed from one of fused silica, sapphire, diamond, calcium fluoride and an optical glass.
- 6. The system according to claim 1, wherein the optical detector is a camera.
- 7. The system according to claim 6, wherein the camera is a CCD camera.
- 8. The system according to claim 1, wherein the optical detector is a CMOS imager.
- 9. The system according to claim 1, wherein a vertex of the alignment tool is located at a position about midway between an optical axis of the optical detector and an optical axis of the first optical fiber.
- 10. The system according to claim 9, wherein a focal plane of the system is positioned above the vertex of the alignment tool.
- 11. The system according to claim 1, further comprising:
a lens disposed between the alignment tool and i) the optical detector and ii) the first one of the pair of optical fibers.
- 12. The system according to claim 11, wherein the lens is a pair of lenses, a first lens of the pair of lenses disposed between the alignment tool and the optical input means and a second lens of the pair of lenses disposed between the alignment tool and the first optical fiber.
- 13. The system according to claim 11, wherein the lens has a unitary magnification factor.
- 14. The system according to claim 1, wherein the alignment tool has an apex angle of about 90° and a second angle of about 45°.
- 15. The system according to claim 1, wherein the system is used with light having a wavelength in the visible spectrum.
- 16. The system according to claim 1, wherein the system is used with light having a wavelength between about 1-3000 nm.
- 17. The system according to claim 1, wherein the system is used with light having a wavelength between about 630-690 nm.
- 18. The system according to claim 1, wherein the system is used with light having a wavelength between about 1-400 nm.
- 19. The system according to claim 1, wherein the system is used with light having a wavelength between about 700-3000 nm.
- 20. The system according to claim 1, wherein the system is used with light having a wavelength of about 660 nm.
- 21. The system according to claim 1, further comprising:
a lens positioned in both i) a first optical axis between the optical detector and the alignment tool and ii) a second optical axis between the first optical fiber and the alignment tool, wherein the first and second optical axis are substantially parallel to one another.
- 22. The system according to claim 1, wherein the alignment tool has a plurality of internal reflection surfaces.
- 23. A system for aligning a pair of optical fibers, the system comprising:
an alignment tool located below a vision plane of a first one of the pair of optical fibers; and an optical detector to receive i) an indirect image of a bottom surface of the first one of the pair of optical fibers through the alignment tool and ii) a direct image of a top section of a second one of the pair of optical fibers.
- 24. The system according to claim 23, wherein the alignment tool has a plurality of internal reflection surfaces.
- 25. A vision system for use with an optical detector for aligning a pair of optical fibers, the system comprising:
a cornercube offset tool located below a vision plane of a first one of the pair of optical fibers; and a lens positioned in both i) a first optical axis between the vision plane and the cornercube offset tool and ii) a second optical axis between the optical detector and cornercube offset tool, wherein the optical detector receives at least an indirect image of the first one of the pair of optical fibers through the cornercube offset tool.
- 26. The cornercube offset tool according to claim 25, wherein the cornercube offset tool has a plurality of internal reflection surfaces.
- 27. The cornercube offset tool according to claim 25, wherein the plurality of internal reflection surfaces are three internal reflection surfaces.
- 28. A vision system according to claim 25, wherein the optical detector is positioned above the image plane.
- 29. A vision system according to claim 25, wherein the first optical axis and the second optical axis are substantially parallel to one another.
- 30. The device according to claim 25, wherein the lens has a unitary magnification factor.
- 31. The device according to claim 25, wherein the lens is a first lens positioned in the first optical axis and a second lens positioned in the second optical axis.
- 32. The device according to claim 31, wherein the first lens and the second lens each have a unitary magnification factor.
- 33. A vision system for aligning optical fibers, the system comprising:
a cornercube offset tool located below a vision plane of the system; and an optical detector to receive an indirect image of the first one of the pair of optical fibers through the cornercube offset tool, wherein the optical fibers are aligned with one another based on i) the indirect image of a first one of the optical fibers and ii) a direct image of a second one of the optical fibers received by the optical detector.
- 34. A vision system according to claim 33, wherein the cornercube offset tool has three internal reflections.
- 35. A vision system according to claim 33, wherein at least one of the internal reflection surfaces is a total internal reflection surface.
- 36. A vision system according to claim 33, wherein the plurality of internal reflection surfaces are total internal reflection surfaces.
- 37. A system for aligning optical fibers, the system comprising:
image redirecting means disposed below a vision plane of a first one of the optical fibers; and detecting means to receive an indirect image of a bottom surface of the first one of the optical fibers through the image redirecting means, wherein the first optical fiber is aligned with a second optical fiber based on the indirect image received by the detecting means.
- 38. The system according to claim 37, wherein the image redirecting means has a plurality of internal reflection surfaces.
- 39. A method for aligning a pair of optical fibers, the method comprising the steps of:
providing a cornercube offset tool below a vision plane of a first one of the pair of optical fibers; viewing an indirect image of the first one of the pair of optical fibers with an optical detector through the cornercube offset tool; determining an offset between the first one of the pair of optical fibers and the optical detector based on the indirect image; and aligning the first one of the pair of optical fibers with a second one of the pair of optical fibers based on the offset.
- 40. The method according to claim 39, further comprising the steps of:
reflecting internally an image of the first one of the pair of optical fibers, and providing the internally reflected image for viewing by the optical detector.
- 41. A system for aligning a pair of optical fibers, the system comprising:
a cornercube offset tool having a plurality of internal reflection surfaces, the cornercube offset tool located below a vision plane of a first one of the pair of optical fibers; and an optical detector to receive an indirect image of the first one of the pair of optical fibers through the cornercube offset tool, wherein an offset between the first one of the pair of optical fibers and the optical detector is determined based on the indirect image of the first one of the pair of optical fibers.
- 42. The system according to claim 41, wherein the optical detector determines a position of a second one of the pair of optical fibers based on receiving a direct image of the second one of the pair of optical fibers.
- 43. The system according to claim 41, further comprising respective ones of an illumination system to illuminate a respective fiber cladding of each of the pair of optical fibers.
- 44. The system according to claim 41, wherein the optical detector is positioned above an upper surface of the cornercube offset tool.
- 45. A system for aligning a pair of optical fibers, the system comprising:
image redirecting means disposed below a vision plane a first one of the pair of optical fibers, the image redirecting means having a plurality of internal reflection surfaces; and detecting means to receive an indirect image of the first one of the pair of optical fibers through the image redirecting means, wherein an offset between the first one of the pair of optical fibers and the detecting means is determined based on the indirect image of the first one of the pair of optical fibers.
- 46. A method for use with an optical imager to align a pair of optical fibers, the method comprising the steps of:
providing a cornercube offset tool below an end of a first one of the pair of optical fibers, the cornercube offset tool having three internal reflection surfaces; viewing an indirect image of the end of a first one of the pair of optical fibers with the optical imager through the cornercube offset tool; determining an offset distance of the first one of the pair of optical fibers; viewing a direct image of an end of a second one of the pair of optical fibers with the optical imager; and aligning the first one of the pair of optical fibers with the second one of the pair of optical fibers.
- 47. A system for aligning a plurality of optical fibers contained in a fiber optic splitter bundle, the system comprising:
an alignment tool located below a vision plane of the fiber optic bundle; and an optical detector to receive an indirect image of a bottom surface of at least one of the plurality of optical fibers through the alignment tool.
- 48. A method for use with an optical imager to align optical fibers, the method comprising the steps of:
a) selecting a first optical fiber from among a plurality of optical fibers from a fiber optic splitter bundle; b) providing a cornercube offset tool below an end of the first optical fiber; c) viewing an indirect image of the end of the first optical fiber with the optical imager through the cornercube offset tool; d) determining an offset distance of the first optical fiber; e) viewing a direct image of an end of a second optical fiber with the optical imager; and f) aligning the first optical fiber with the second optical fiber.
- 49. The method according to claim 48, further comprising the steps of:
g) selecting a further optical fiber from the fiber optic splitter bundle; h) repeating steps b) through f) for the further optical fiber and a third optical fiber.
- 50. The method according to claim 48, further comprising the step of coupling the first optical fiber with the second optical fiber.
- 51. The method according to claim 48, further comprising the steps of:
g) bringing the end of the first optical fiber into contact with the end of the second optical fiber; h) coupling the end of the first optical fiber into contact with the end of the second optical fiber.
- 52. The method according to claim 48, further comprising the steps of:
g) bringing the end of the first optical fiber into contact with the end of the second optical fiber; h) fusing the end of the first optical fiber into contact with the end of the second optical fiber.
- 53. The method according to claim 52, wherein the fusing step h) is accomplished by irradiating respective ends of the optical fibers.
- 54. A method for use with an optical imager to align optical fibers, the method comprising the steps of:
a) providing a cornercube offset tool below an end of a first optical fiber; b) viewing an indirect image of the end of the first optical fiber with an optical imager through the cornercube offset tool; c) determining an offset distance of the first optical fiber; d) selecting a second optical fiber from among a plurality of optical fibers from a fiber optic splitter bundle; e) viewing a direct image of an end of a second optical fiber with the optical imager; and f) aligning the first optical fiber with the second optical fiber.
- 55. The method according to claim 54, further comprising the steps of:
g) providing a third optical fiber; h) selecting a further optical fiber from the fiber optic splitter bundle; i) repeating steps b) through f) for the third optical fiber and the further optical fiber.
- 56. The method according to claim 54, further comprising the step of coupling the first optical fiber with the second optical fiber.
- 57. The method according to claim 54, further comprising the steps of:
g) bringing the end of the first optical fiber into contact with the end of the second optical fiber; h) coupling the end of the first optical fiber into contact with the end of the second optical fiber.
- 58. The method according to claim 54, further comprising the steps of:
g) bringing the end of the first optical fiber into contact with the end of the second optical fiber; h) fusing the end of the first optical fiber into contact with the end of the second optical fiber.
- 59. The method according to claim 58, wherein the fusing step h) is accomplished by irradiating respective ends of the optical fibers.
- 60. A system for aligning an optical fibers with an electronic device, the system comprising:
an alignment tool located below a vision plane of a first one of the pair of optical fibers; and an optical detector to receive an indirect image of a bottom surface of the first one of the pair of optical fibers through the alignment tool.
- 61. The system according to claim 60, wherein the electronic device is a detector.
- 62. The system according to claim 60, wherein the electronic device is a diode.
- 63. The system according to claim 60, wherein the electronic device is a photodiode.
- 64. The system according to claim 60, wherein the electronic device is an optical sensor.
- 65. The system according to claim 60, wherein the electronic device is an optical emitter.
- 66. The system according to claim 60, wherein the optical detector receives a direct image of the electronic device.
- 67. A method for aligning an optical fiber and a circuit element, the method comprising the steps of:
providing a cornercube offset tool below a vision plane of the pair of optical fiber; viewing an indirect image of the optical fiber with an optical detector through the cornercube offset tool; determining an offset between the of optical fiber and the optical detector based on the indirect image; and aligning the optical fibers with the circuit element based on the offset.
- 68. A method for use with an optical imager to align an optical fiber and a circuit element, the method comprising the steps of:
providing a cornercube offset tool below an end of the optical fiber; viewing an indirect image of the end of the optical fiber with the optical imager through the cornercube offset tool; determining an offset distance of the optical fiber; viewing a direct image of a surface of the circuit element with the optical imager; and aligning the optical fiber with the circuit element.
Parent Case Info
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/912,024 filed on Jul. 24, 2001.
Divisions (1)
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Number |
Date |
Country |
Parent |
10131873 |
Apr 2002 |
US |
Child |
10458535 |
Jun 2003 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09912024 |
Jul 2001 |
US |
Child |
10131873 |
Apr 2002 |
US |