Claims
- 1. A transducer device comprising:
a transducer for converting one of electromagnetic radiation energy and electrical signal energy to the other type of energy; a double-reflector device comprising a first, relatively small reflector; a second relatively larger reflector positioned relative to said first reflector and shaped so as to spread beams received from said first reflector and project the spread beams in a first direction, and to concentrate beams received from a direction opposite said first direction and reflect them to said first mirror; said first mirror being positioned relative to said transducer and said second mirror and shaped so as to reflect beams received from said transducer towards said second mirror, and to concentrate at said transducer beams received from said second mirror.
- 2. A device as in claim 1 in which said spread beams projected in said first direction are collimated, and in which said first direction is away from said transducer.
- 3. A device as in claim 2 in which said double-reflector device is selected from the group consisting of a Cassegrainian system, a Gregorian system and a Ritchey-Chretien system.
- 4. A device as in claim 1 in which said transducer is an electromagnetic radiation-emitting device.
- 5. A device as in claim 1 in which said transducer is an electromagnetic radiation-detecting device.
- 6. A device as in claim 1 in which said transducer is selected from the group consisting of radiation-emitting semiconductor devices including stripe geometry lasers, laser diodes, VCSELs and LEDs, and radiation-detecting semiconductor devices, including PIN photodiodes and avalanche photodiodes.
- 7. A device as in claim 1 including a fiber-optic cable connected between said transducer and said double-reflector device to conduct electromagnetic signals therebetween.
- 8. A device as in claim 7 including at least one terminus on one end of said cable, said terminus consisting of a ferrule for supporting said one end of said cable and having a magnetically permeable member inside said ferrule and coupled to said one end of said cable and operable by externally-applied electromagnetic flux to move said one end of said cable to align it with one of said double-reflector device and said transducer.
- 9. A device as in claim 8 including a second terminus at the other end of said cable, said second terminus having a second ferrule and a second magnetically permeable member coupled to one of said other end of said cable and said double-reflector device and operable by electromagnetic flux to move said other end of said cable and said double-reflector device relative to one another to align said other end of said cable with the other of said double-reflector device and said transducer.
- 10. A device as in claim 8 including means for applying a rotating magnetic flux field about said magnetically permeable member.
- 11. A device as in claim 8 including means for applying a rotating magnetic flux field about said second magnetically permeable member.
- 12. An electro-optical transducer device comprising:
an electro-optical transducer having a light transmission outlet port; a first reflector positioned to receive and reflect light rays emitted from said port; and a second reflector secured to said first reflector and positioned to receive light rays reflected from said first reflector and to project them in a collimated beam of a diameter substantially larger than the beam of light rays emitted from said port.
- 13. A device as in claim 12 in which said first reflector is a convex surface of revolution and said second reflector is a concave surface of revolution, said surfaces having a common axis of rotation, said second reflector having an on-axis aperture with said port of said transducer transmitting light through said aperture and in the direction of said axis towards said first reflector.
- 14. A device as in claim 13 in which said first reflector is dimensioned to receive substantially all of the light emitted from said terminal end of said conductor.
- 15. A device as in claim 12 in which said reflectors form an optical system selected from the group consisting of a Cassegrainian system, a Gregorian system, and a Ritchey-Chretien system.
- 16. A device as in claim 12 in which said reflectors comprise opposed, reflectively-coated surfaces on a block of optically transparent material.
- 17. A device as in claim 12 in which said first and second reflectors comprise a reflector system, and including a fiberoptic cable extending between said port and said first and second reflectors, a cable terminus at one end of said cable, said terminus having a body member and a magnetic member made of magnetically permeable material, said body member having a chamber with dimensions larger than those of said magnetic member, said magnetic member being located in said chamber and being coupled to one of said reflector system and said fiberoptic conductor to align them with one another.
- 18. A device as in claim 16 in which non-reflective surfaces of said block are coated with an anti-reflective coating.
- 19. A device as in claim 17, said chamber having an opening through which a radiation-hardenable resin material can be introduced into said chamber, said chamber being adapted to admit said radiation.
- 20. A device as in claim 17, said chamber containing a quantity of a cured radiation-curable polymer holding said fiber-optic conductor and said reflector in alignment with one another.
- 21. A device as in claim 17 including means for subjecting said magnetic member to a rotating magnetic field to align said cable end with said reflectors.
- 22. A device as in claim 12 in which said transducer is selected form the group consisting of radiation-emitting semiconductor devices, lasers and lamps.
- 23. An electro-optical transducer device comprising:
an electro-optic radiation detector with an inlet port; a first reflector positioned to receive a relatively large beam and deliver a concentrated beam to a second reflector; and a second reflector, smaller than the first-named reflector, positioned to focus on said detector the beam it receives from said first reflector.
- 25. A method for aligning an optical transmission structure with an eletro-optical transducer, said method comprising;
(a) providing an optical transmission structure having a body with a member made of magnetically permeable material movable to align said transmission structure with said transducer; and (b) placing said transmission structure adjacent said transducer; and (c) magnetically moving said member relative to said transducer.
- 26. A method as in claim 25 in which said optical transmission structure is located in a housing and is selected from the group consisting of a fiber-optic conductor and a double-reflected device, and including the step of placing in said housing a quantity of curable viscous material, and curing said material to affix at least a part of the transmission structure in said housing when aligned with said transducer.
- 27. A method as in claim 26 in which the step of moving said member comprises subjecting the member to a rotating magnetic field rotating around said member, in which the center of said field can be adjusted to move said member to a desired location
- 28. A method as in claim 25 including the step of sending light signals through said transmission structure and detecting the magnitude of said signals, and stopping said alignment process when said magnitude is a maximum.
Parent Case Info
[0001] This patent application is a continuation-in-part of U.S. patent application Ser. No. 09/909,100, filed Jul. 19, 2001. Priority also is claimed in this patent application from a provisional patent application entitled PROJECT CASTLE, Ser. No. 60/267,544, filed in the United States Patent and Trademark Office on Feb. 9, 2001.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60267544 |
Feb 2001 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09909100 |
Jul 2001 |
US |
Child |
10011573 |
Oct 2001 |
US |