Claims
- 1. An optical fiber dispersion measurement system comprising:
a measurement transmitter module connected to the fiber for producing a modulated signal from at least four optical signals; and a measurement receiver module connected to the fiber for receiving the modulated signal and comparing the phase of the four optical signals.
- 2. The system of claim 1 wherein the modulated signal is sinusoidal.
- 3. The system of claim 2 wherein the modulation depth of the modulated signal is about 10% to 50%.
- 4. The system of claim 1 wherein the measurement transmitter comprises:
a first laser, a second laser, a third laser and a fourth laser; each laser connected to a photonic coupler and producing one of the four optical signals; the photonic coupler optically coupled to an intensity modulator; and an intensity modulator optically coupled to the fiber whereby the modulated signal is transmitted on the fiber.
- 5. The system of claim 4 wherein:
the first laser is tuned to a wavelength λ1; the second laser is tuned to a wavelength λ2; the third laser is tuned to a wavelength λ3; the fourth laser is tuned to a wavelength λ4; and λ1, λ2, λ3 and λ4 are each separated by a wavelength difference Δλ.
- 6. The system of claim 5 wherein λ1, λ2, λ3 and λ4 are centered around a single wavelength λ0.
- 7. The system of claim 6 wherein the λ0 is controlled to ±0.1 nm.
- 8. The system of claim 6 wherein Δλ is controlled to ±0.02 nm.
- 9. The system of claim 4 wherein the photonic coupler is a multiplexer.
- 10. The system of claim 4 wherein the photonic coupler is an array waveguide.
- 11. The system of claim 4 wherein the intensity modulator includes an amplifier.
- 12. The system of claim 1 wherein the measurement receiver module comprises:
an optical decoupler connected to the fiber to separate the modulated signal into separate channels; a comparator connected in a logical permutation to each of the separate channels to produce difference information; a processor connected to the comparator to receive the difference information and calculate dispersion and dispersion slope of the optical fiber.
- 13. The system of claim 1 wherein the measurement receiver module comprises:
a photonic decoupler connected to the fiber to separate the modulated signal into a first signal, a second signal, a third signal and a fourth signal; a first opto electronic converter connected to the photonic decoupler to convert the first signal into a first electronic signal; a second opto electronic converter connected to the photonic decoupler to convert the second signal into a second electronic signal; a third opto electronic converter connected to the photonic decoupler to convert the third signal into a third electronic signal; a fourth opto electronic converter connected to the photonic decoupler to convert the fourth signal into a fourth electronic signal; a first phase comparator receiving the first and second electronic signal and producing a first differential signal; a second phase comparator receiving the first and third electronic signal and producing a second differential signal; a third phase comparator receiving the first and fourth electronic signal and producing a third differential signal; a fourth phase comparator receiving the second and third electronic signal and producing a fourth differential signal; a fifth phase comparator receiving the second and fourth electronic signal and producing a fifth differential signal; a sixth phase comparator receiving the third and fourth electronic signal and producing a sixth differential signal; a processor to receive the first, second, third, fourth, fifth and sixth differential signals and programmed to calculate the dispersion and dispersion slope from the differential signals.
- 14. The system of claim 13 wherein the opto electronic converters are photo diodes.
- 15. The system of claim 14 wherein the photo diodes are PIN diodes.
- 16. The system of claim 14 wherein the photo diodes are avalanche diodes.
- 17. The system of claim 13 wherein the photonic decoupler is a demultiplexer.
- 18. The system of claim 13 wherein an amplifier and a narrow band filter are connected to each opto electronic converter and to the processor to amplify and filter each signal.
- 19. The system of claim 13 wherein the processor performs the following steps:
converting each differential signal to a phase difference value according to the following equations:
first differential signal=φ12 second differential signal=φ13 third differential signal=φ14 fourth differential signal=φ15 fifth differential signal=φ16 sixth differential signal=φ17; eliminating ambiguity according to the following equations:
If φ12+φ23>180 then φ13:=360−φ13 If φ23+φ34>180 then φ24:=360−φ24 If (φ12+φ23+φ34>180 and φ12+φ23+φ34<360) then φ14:=360−φ14 If φ12+φ23+φ34>360 then φ14:=360+φ14; adjusting the phase differences according to a set of calibration values; converting the phase differences into group differences according to the following equation: 6τxy=106φxy360 fm;calculating group delay according to the following equations: 7τ1=0τ2=14(2τ12+τ13-τ23+τ14-τ24)τ3=14(2τ13+τ12-τ23+τ14-τ34)τ4=14(2τ14+τ12+τ24+τ13-τ34);fitting a second order polynomial of the formτ(λ)=A2λ2+A1λ+A0to a set of (λj, τj) pairs using a least squared error fit; calculating the dispersion according to the equation:D(λ0)=2a2λ0+a1; andcalculating the dispersion slope from the second derivative of τj with respect to λj.
- 20. The system of claim 19 wherein the step of fitting is computed in single steps.
- 21. The system of claim 19 wherein the step of fitting where the set of (τj, τj) pairs is fit to the polynomial
- 22. A system for calibrating a system for measuring optical fiber dispersion a first and second optical fiber comprising:
a measurement transmitter module for producing a modulated signal from at least four optical signals connected to a first optical coupling element; a measurement receiver module for receiving the modulated signal and comparing the phase of the optical signals connected to a second optical coupling element; where the first optical coupling element is optically connected to the first optical fiber and the second optical coupling element and where the second optical coupling element is optically connected to the second optical fiber, wherein the modulated signal is used to calibrate the measurement receiver module.
- 23. The system of claim 22 wherein the measurement transmitter comprises a first laser, a second laser, a third laser and a fourth laser, each laser connected to a photonic coupler;
the photonic coupler optically coupled to an intensity modulator; and the intensity modulator optically coupled to the first optical fiber whereby the combined signal is transmitted on the first optical fiber.
- 24. The system of claim 22 wherein the measurement receiver module comprises:
an optical decoupler connected to the second optical fiber to separate the modulated signal into separate channels; a comparator connected in a logical permutation to each of the separate channels to produce difference information; a processor connected to the comparator to receive the difference information and calculate dispersion.
- 25. The system of claim 24 wherein the processor calculates dispersion slope.
- 26. A method of deriving the dispersion in an optical fiber span comprising the steps of:
generating four optical signals at wavelengths separated by wavelength difference Δλ;
coupling together the four optical signals into a combined light; modulating the combined light at a sinusoidal frequency fm; propagating the combined light through a fiber span; de-multiplexing the combined light; detecting the four optical signals; comparing the phase of the four optical signals to obtain a difference; and deriving dispersion from the difference.
- 27. The method of claim 26 wherein the phase comparisons are used to calculate the slope of the dispersion in the fiber span.
- 28. A system for measuring optical fiber dispersion on a first and second optical fiber comprising:
a first transmitter for producing a first modulated signal from a first plurality of optical signals; connected to a first optical coupling element; a first receiver for receiving the first modulated signal and comparing the phase of each of the plurality of optical signals connected to a second optical coupling element; a second transmitter for producing a second modulated signal from a second plurality of optical signals connected to a third optical coupling element; a second receiver for receiving the second modulated signal and comparing the phase of each of the second plurality of optical signals, connected to a fourth optical coupling element; the first and second optical coupling elements connected to the first optical fiber; the third and fourth optical coupling elements connected to the second optical fiber; the first optical coupling element transmitting the first optical signal to the third optical coupling element; the second optical coupling element transmitting the second optical signal to the fourth optical coupling element; whereby the dispersion on the first optical fiber is calculated by the first receiver and the dispersion on the second optical fiber is calculated by the second receiver.
- 29. The system of claim 28 wherein the first optical signal is used to calibrate the second receiver.
- 30. The system of claim 28 wherein the second optical signal is used to calibrate the first receiver.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority to U.S. Provisional Patent Application Serial No. 60/377,083, entitled “METHOD FOR DISPERSION MEASUREMENT OF AN OPTICAL FIBER AT A FIXED WAVELENGTH”, by Michael H. Eiselt, filed Apr. 30, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60377083 |
Apr 2002 |
US |