Claims
- 1. A polarization controller to control the state of polarization through an optical fiber, comprising a plurality of piezoelectric squeezers and an electronic drive, each squeezer responsive to drive signals from the electronic drive to induce radial compression forces onto the fiber, wherein the electronic drive senses the applied forces in feedback to adjust the drive signals so as to set the state of polarization.
- 2. A controller of claim 1, wherein the fiber has an axis and wherein the plurality of squeezers comprise two or more squeezers arranged serially along an axial portion of the fiber, each squeezer applying the radial compression forces onto the fiber at a circumferential offset angle around the fiber axis relative to any adjacent squeezer.
- 3. A controller of claim 1, wherein the electronic drive senses one or both of frequency and amplitude of squeezer resonance as a measure of the applied forces to adjust the drive signals.
- 4. A controller of claim 3, wherein the resonance comprises mechanical resonant characteristics of the squeezer.
- 5. A controller of claim 3, wherein the resonance comprises (a) electrical resonant characteristics of the electronic drive and (b) one or more of electrical and mechanical resonant characteristics of the squeezer.
- 6. A controller of claim 1, further comprising one or more pressure sensors attached to one or both of (a) one or more squeezers and (b) the fiber, the sensors providing a signal to the electronic drive as a measure of the applied forces such that the drive adjusts the drive signals to set the state of polarization.
- 7. A controller of claim 1, further comprising a first conductive coating applied to the fiber and a second conductive coating applied to the fiber, the first and second coatings forming a capacitor with the fiber, wherein the electronic drive senses capacitance change as a measure of the applied forces to adjust the drive signals.
- 8. A method of controlling a state of polarization through a fiber receiving compression forces from a plurality of piezoelectric squeezers, comprising the steps of applying voltage signals to the squeezers, applying one or more oscillating voltage signals to the squeezers to induce resonance in each of the squeezers, sensing feedback signals representative of the resonance, and coupling the oscillating signals with the feedback signals in a feedback control loop to lock an average state of polarization.
- 9. A method of claim 8, wherein the step of applying one or more oscillating voltage signals to induce resonance comprises applying the voltage signals to induce a mechanical resonance.
- 10. A method of claim 8, wherein the step of applying one or more oscillating voltage signals to induce resonance comprises applying the voltage signals to induce an electrical resonance.
- 11. A method of claim 8, wherein the step of generating one or more oscillating signals comprises utilizing one or more voltage controlled oscillators.
- 12. A method of claim 8, wherein the step of coupling the oscillating signals with the feedback signals comprises utilizing a phase-locked loop.
- 13. A method of claim 8, wherein the step of coupling the oscillating signals with the feedback signals comprises utilizing a frequency lock circuit.
- 14. A method of claim 8, wherein the step of coupling the oscillating signals with the feedback signals comprises utilizing a self-resonant circuit.
- 15. A method of claim 8, wherein the step of sensing feedback signals comprises sensing drive current of each squeezer.
- 16. A method of claim 8, wherein the step of sensing feedback signals comprises determining a voltage across the squeezer.
- 17. A method of claim 8, wherein the step of coupling the oscillating signals with the feedback signals comprises comparing phases of the signals through a phase-locked loop, and further comprising generating an error signal, indicative of phase error, to drive the feedback control loop to stable resonance.
- 18. A method of claim 17, further comprising adding a DC voltage to the error signal to provide a VCO center frequency.
- 19. A method of claim 8, further comprising providing DC voltage control to switch the feedback control loop on and off.
- 20. A method of claim 8, wherein the step of sensing feedback signals comprises detecting capacitance changes associated with the fiber.
- 21. A method of claim 8, wherein the step of sensing feedback signals comprises sensing forces of one or both of the fiber and at least one squeezer.
- 22. A method of claim 21, wherein the step of sensing forces comprises utilizing one or more pressure sensors coupled with at least one of the fiber and squeezer.
- 23. A method of claim 22, wherein the pressure sensors are selected from the group consisting of pressure detectors, force sensing resistors, strain gauges, and LVDT devices.
- 24. A method of controlling a state of polarization through a fiber receiving compression forces from one or more piezoelectric squeezers, comprising the steps of applying signals to the squeezers, sensing feedback voltage signals representative of actual voltages across the squeezers, and coupling the feedback voltage signals through a loop filter to adjust the signals in a feedback control of the state of polarization.
- 25. In a polarization sensitive optical system receiving electromagnetic energy from an optical fiber, the improvement comprising a polarization controller having a plurality of piezoelectric squeezers, and an electronic drive, each squeezer responsive to drive signals from the electronic drive to induce radial compression forces onto the fiber, the drive sensing the forces in feedback to control the drive signals to set a state of polarization through the fiber.
- 26. In a polarization sensitive optical system of claim 25, the improvement wherein the electronic drive senses one or more of the following in determining the forces: (a) a voltage across the squeezer, (b) a capacitance change with the fiber, (c) a force applied to the squeezer, and (d) a force applied to the fiber.
- 27. In an optical system of claim 25, the improvement wherein the electronic drive senses a mechanical squeezer resonance in determining the forces.
- 28. In an optical system of claim 27, the further improvement wherein the electronic drive senses an oscillation characterized by one of frequency, voltage amplitude or current amplitude in sensing the mechanical squeezer resonance.
- 29. In an optical system of claim 25, the improvement wherein the electronic drive senses an electrical resonance associated with one of the squeezer or electronic drive in determining the forces.
- 30. In an optical system of claim 29, the further improvement wherein the electronic drive senses an oscillation characterized by one of frequency, voltage amplitude or current amplitude in sensing the electrical resonance.
RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application Serial No. 60/301,174, filed Jun. 26, 2001, entitled, “Feedback Polarization Controller” and is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60301174 |
Jun 2001 |
US |