Claims
- 1. An actuator comprising:
a piezoelectric element having at least one electrode on two opposing surfaces thereof; at least two magnetic elements connected to the piezoelectric element; and a shuttle, wherein movement of at least one of the piezoelectric element, the at least two magnetic elements, and the shuttle is electromagnetically controllable by the piezoelectric element and the at least two magnetic elements.
- 2. A beam steering unit comprising:
a first and a second piezoelectric element; a frame; a base, wherein the frame is rotatably attached to the base; and at least one movable optical element, wherein the at least one movable optical element is rotatably attached to the frame, and further wherein the first piezoelectric element operates to move the frame in a first degree of freedom and the second piezoelectric element operates to move the at least one movable optical element in a second degree of freedom, such that a beam impinging upon the movable optical element is steerable in two degrees of freedom.
- 3. An optical cross connect comprising:
a first and a second unit, wherein each of the first and second units includes at least one beam steering unit and at least one beam generating unit; and at least one input fiber for supplying a transmission signal to the at least one beam generating unit of the first unit and at least one output fiber for receiving the transmission signal from the at least one beam generating unit of the second unit; wherein each of the at least one beam steering units includes at least two piezoelectric elements and at least one movable optical element for steering the transmission signal in two degrees of freedom.
- 4. The optical cross connect of claim 3, wherein the first and second units are separated by an optical path and are placed at an angle with respect to the optical path.
- 5. The optical cross connect of claim 4, wherein the angle is 45 degrees.
- 6. The optical cross connect of claim 3, further comprising:
a servo system for maintaining alignment of the first signal between the at least one input fiber and the at least one output fiber.
- 7. The optical cross connect of claims 3, wherein the at least one movable optical element includes a reflective surface.
- 8. The optical cross connect of claim 3, wherein the at least one movable optical element includes a lens.
- 9. The optical cross connect of claim 3, wherein the at least one movable optical element includes a fiber.
- 10. The optical cross connect of claim 3, wherein the at least one movable optical element includes a prism.
- 11. The optical cross connect of claim 6, wherein the servo system includes plate differential capacitors for determining the position of the at least one movable optical element.
- 12. The optical cross connect of claim 6, wherein the servo system includes a predetermined number of detectors within each of the first and second units, each of the predetermined number of detectors being capable of detecting each of a first and a second servo signal.
- 13. The optical cross connect of claim 12, wherein the first and the second servo signal are injected into input and output fibers of the optical cross connect and travel through the optical cross connect on at least part of the same path as the transmission signal.
- 14. The optical cross connect of claim 3, wherein the at least two piezoelectric elements are point vibrating piezoelectric actuators.
- 15. The optical cross connect of claim 3, wherein the at least two piezoelectric elements are surface vibrating piezoelectric actuators.
- 16. The optical cross connect of claim 3, wherein the at least two piezoelectric elements are ultrasonic piezoelectric actuators.
- 17. The optical cross connect of claim 13, wherein the predetermined number of detectors within each of the first and second units is the same; and
further wherein the predetermined numbers of detectors are comprised of silicon.
- 18. The optical cross connect of claims 17, wherein each of the predetermined number of detectors is capable of transmitting approximately all of the transmission signal and transmits part of each of the first and second servo signals, such that the non-transmitted part of each of the first and second servo signals is detected by the detector.
- 19. The optical cross connect of claim 17, wherein the predetermined number of detectors further comprise a partially reflective surface, wherein the partially reflective surface reflects all of the transmission signal and part of each of the first and second servo signals, such that the unreflected part of each of the first and second servo signals is transmitted through the partially reflective surface and is detected via the silicon.
- 20. An optical cross connect comprising:
a first and a second unit, wherein each of the first and second units includes at least one beam steering unit and at least one beam generating unit; and at least one input fiber for supplying a transmission signal to the at least one beam generating unit of the first unit and at least one output fiber for receiving the transmission signal from the at least one beam generating unit of the second unit; wherein the first and second units are separated by an optical path, and further wherein the at least one beam generating unit of the first unit and the at least one beam generating unit of the second unit each include a focusing mechanism for focusing the beam at twice the length of the optical path.
- 21. A method for steering a data signal through an optical system comprising:
receiving a data signal from an input fiber; generating a data beam from the data signal via a first beam generating unit; determining an output fiber to which the beam is to be directed; adjusting the direction of the beam via a at least one beam steering unit; transforming the data beam back into the data signal via a second beam generating unit; and receiving the data signal into an output fiber; wherein the at least one beam steering unit includes at least two piezoelectric elements and at least one movable optical element for steering the data beam in two degrees of freedom.
- 22. The method according to 21, further comprising:
transmitting a first and a second servo signal through the optical system; and adjusting at least one of the input fiber, the first beam generating unit, the at least one movable optical element, the second beam generating unit, and the output fiber in response to the detection of the first and second servo signal by multiple detectors located within the optical cross connect system.
- 23. The method according to claim 22, wherein the data beam and the first and second servo signal travel through the optical system along at least part of the same path.
- 24. A system for determining optimal beam location between a first optical port and a second optical port comprising:
a first and a second alignment signal, wherein the first alignment signal originates from the first optical port and the second alignment signal originates from the second optical port; and a first and a second detector; wherein each of the first and second alignment signals are detected by each of the first and second detectors in order to determine the alignment of each of the first and second alignment signals with respect to an optical path between the first optical port and the second optical port; and further wherein, when the alignment of the first and second signals within each of the first and second detectors is the same, the optimal beam location is determined.
- 25. The system of claim 24, wherein the first and the second detectors are located within the optical path between the first optical port and the second optical port.
- 26. The system of claim 25, wherein the first and the second detectors are comprised of silicon.
- 27. The system of claim 26, wherein wavelengths of the first and second alignment signals are different that the wavelength of the beam.
- 28. The system of claim 27, wherein the beam is not detected by either of the first and second detectors and is transmitted therethrough uninterrupted.
- 29. The system of claim 27, wherein the first and the second alignment signals are each partially transmitted and partially detected by each of the first and the second detectors.
- 30. The system of claim 24, further comprising a first and a second adjustment means for adjusting the alignment of the beam.
- 31. The system of claim 30, wherein the first adjustment means is comprised of the first detector and a first reflective surface and the second adjustment means is comprised of the second detector and a second reflective surface.
- 32. A method for determining optimal beam location between a first optical port and a second optical port comprising:
transmitting a first alignment signal from the first optical port towards the second optical port; transmitting a second alignment signal from the second optical port towards the first optical port; detecting a first part of the first alignment signal at a first detector and determining a first alignment; transmitting a second part of the first alignment signal towards the second detector; detecting the second part of the first alignment signal at a second detector and determining a second alignment; detecting a first part of the second alignment signal at the second detector and determining a third alignment; transmitting a second part of the second alignment signal towards the first detector; detecting the second part of the second alignment signal at the first detector and determining a fourth alignment; and comparing the first, second, third, and fourth alignments, wherein when the first and fourth alignments are equivalent and the second and third alignments are equivalent, the optimal beam location is determined.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to and incorporates herein by reference in their entireties the following U.S. Provisional Patent Applications: No. 60/245,746 entitled “Piezoelectric and Electromagnetic Multi Degrees of Freedom Actuator,” filed Nov. 3, 2000; No. 60/245,747 entitled “Optical Cross Connect Utilizing Piezoelectric and Electromagnetic Multi Degrees of Freedom Actuator,” filed Nov. 3, 2000; No. 60/266,005 entitled “Optical Cross Connect Utilizing Piezoelectric and Electromagnetic Multi Degrees of Freedom Actuator,” filed Feb. 2, 2001; and No. 60/309,881 entitled “Optical Cross Connect” filed Aug. 8, 2001.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60245746 |
Nov 2000 |
US |
|
60245747 |
Nov 2000 |
US |
|
60266005 |
Feb 2001 |
US |
|
60309881 |
Aug 2001 |
US |