Claims
- 1. An optical fiber switch for coupling light from an input fiber to an output fiber, comprising:
a collimating lens for collimating light from the input fiber; an objective lens; Risley prism means disposed between said collimating lens and said objective lens and including first and second prisms disposed proximate each other for receiving and directing said collimated light, said first and second prisms being rotatable about a common axis to selectively re-direct said collimated light; and drive means for selectively rotating at least one of said first and second prisms about said common axis and into a predetermined relationship such that said collimated light is directed into said objective lens and focused thereby either onto or off of an output fiber.
- 2. An optical fiber switch as recited in claim 1 wherein at least one of said first and second prisms is an achromatic prism.
- 3. An optical fiber switch as recited in claim 1 wherein said drive means includes first and second electrical motors respectively connected to said first and second prisms for rotating said prisms about said common axis.
- 4. An optical fiber switch as recited in claim 3 wherein said drive means further includes a microprocessor for generating control signals for causing said motors to rotate said prisms into selected rotational positions.
- 5. An optical fiber switch as recited in claim 3 wherein said first and second motors are stepper motors and each rotational step thereof causes the associated prism to rotate a predetermined angle about said common axis.
- 6. An optical fiber switch as recited in claim 3 wherein said first and second motors include first and second rotors respectively, each said rotor having a passageway extending therethrough along the rotational axis thereof, and wherein one end of each said rotor is attached to one of said prisms to cause rotation thereof about said common axis.
- 7. An optical fiber switch as recited in claim 6 wherein said collimating lens is disposed within one of said passageways, and said objective lens is disposed within the other passageway.
- 8. An optical fiber switch as recited in claim 7 wherein an input ferrule positions the output face of said input fiber at the focal point of said collimating lens.
- 9. An optical fiber switch as recited in claim 7 wherein an output ferrule positions the input face of said output fiber at the focal plane of said objective lens.
- 10. An optical fiber switch as recited in claim 1 wherein means are provided for mounting said first and second motors such that the rotational axes thereof are coaxial with said common axis.
- 11. An optical fiber switch as recited in claim 8 wherein said input ferrule positions the output faces of a plurality of input fibers in the focal plane of said collimating lens such that light emitted from any one of said input fibers can be coupled into said output fiber by rotating said prisms into predetermined corresponding angular relationships.
- 12. An optical fiber switch as recited in claim 9 wherein said output fibers are organized in a regular array and said output ferrule holds said input faces in the focal plane of said objective lens.
- 13. An optical fiber switch as recited in claim 1 and further comprising a wavelength selective dispersion element disposed within the path of said collimated light so that a particular wavelength may be selectively focused on said output fiber.
- 14. An optical fiber switch as recited in claim 7 wherein said wavelength selective dispersion element includes another prism.
- 15. An optical fiber switch as recited in claim 7 wherein said wavelength selective dispersion element includes a diffraction grating.
- 16. An optical fiber switch as recited in claim 4 and further comprising a temperature sensor for monitoring the temperature of said switch and reporting same to said microprocessor so that said control signals can be adjusted for temperature variation.
- 17. An optical switch for communicatively coupling an approximately collimated light beam between an input source and an output receiver, comprising:
prism means disposed in the path of said beam and including a pair of thin prisms positioned proximate each other for receiving and directing said light beam, said thin prisms being independently rotatable about a common axis to redirect said light; and drive means for selectively rotating at least one of said thin prisms relative to the other and about said common axis such that said light beam is selectively directed onto or off of said output receiver.
- 18. An optical switch as recited in claim 17 and further comprising a relatively low aberration lens disposed between the input source and said prism means for approximately collimating light emanating from the input source.
- 19. An optical switch as recited in claim 18 and further comprising a focussing lens disposed between said prism means and the output receiver for focussing said beam thereon.
- 20. An optical switch as recited in claim 17 wherein said drive means includes first and second electrical motors respectively connected to said prisms for independently rotating said prisms about said common axis.
- 21. An optical switch as recited in claim 20 wherein said drive means further includes a microprocessor for generating control signals for causing said motors to rotate said prisms into selected predetermined rotational relationships whereby said light beam is selectively directed onto or off of said output receiver.
- 22. An optical switch as recited in claim 20 wherein said motors are stepper motors and each rotational step thereof causes the associated prism to rotate a predetermined angle about said common axis.
- 23. An optical switch as recited in claim 17 wherein at least one of said pair of prisms is an achromatic prism.
- 24. An optical switch as recited in claim 19 said output receiver is one of an array of output receivers, and wherein said focussing lens is adapted to focus said light beam, and wherein said drive means includes first and second electrical motors respectively connected to different ones of said prisms for selectively rotating said prisms about said common axis such that the focussed light beam may be directed by said prism means onto a selected receiver of said array of output receivers.
- 25. An. optical switch as recited in claim 24 wherein said drive means further includes a microprocessor for generating control signals for causing said motors to rotate said prisms into selected rotational positions.
- 26. An optical switch as recited in claim 25 wherein said first and second motors are stepper motors and each rotational step thereof causes the associated prism to rotate a predetermined angle about said common axis.
- 27. An optical switch as recited in claim 26 wherein said first and second motors include first and second rotors respectively, each said rotor having a passageway extending therethrough and along the rotational axis thereof, and wherein one end of each said rotor is attached to one of said thin prisms to cause rotation thereof about said common axis.
- 28. An optical switch as recited in claim 27 wherein said collimating lens is disposed within one of said passageways, and said focussing lens is disposed within the other of said passageways.
- 29. An optical switch as recited in claim 28 wherein an input ferrule positions said input source in the focal plane of said collimating lens.
- 30. An optical switch as recited in claim 28 wherein an output ferrule positions the output receiver in the focal plane of said focussing lens.
- 31. An optical switch as recited in claim 20 wherein means are provided for mounting said first and second motors such that the rotational axes thereof are coaxial with said common axis.
- 32. An optical switch as recited in claim 29 wherein said input ferrule positions a plurality of light sources in the focal plane of said collimating lens such that light emitted from any one of said sources can be coupled to any one of said output receivers by rotating said prisms into predetermined corresponding angular relationships.
- 33. An optical switch as recited in claim 19 wherein the light receiving faces of said output array are organized in a regular array, and said output ferrule holds said faces in the focal plane of said focussing lens.
- 34. An optical switch as recited in claim 19 and further comprising a wavelength selective dispersion element disposed within the path of said light beam so that a particular wavelength thereof may be selectively focused onto the output receiver.
- 35. An optical fiber switch as recited in claim 34 wherein said wavelength selective dispersion element includes another prism.
- 36. An optical switch as recited in claim 34 wherein said wavelength selective dispersion element includes a diffraction grating.
- 37. An optical switch as recited in claim 21 and further comprising a temperature sensor for monitoring the temperature of said switch and reporting same to said microprocessor so that said control signals can be adjusted for temperature variation.
- 38. An optical fiber switch as recited in claim 1 wherein said objective lens is adapted to focus said collimated light onto one of a plurality of output fibers, and said drive means includes first and second electrical motors respectively connected to said first and second prisms for rotating said prisms about said common axis.
- 39. An optical fiber switch as recited in claim 1 wherein said objective lens is adapted to focus said collimated light onto one of a plurality of output fibers.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] Reference is made to and priority claimed from U.S. provisional application serial No. 60/179,473, filed Feb. 1, 2000, entitled “Single Channel M×N Optical Fiber Switch”.
Provisional Applications (1)
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Number |
Date |
Country |
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60179473 |
Feb 2000 |
US |