Claims
- 1. A dual channel optical reflectometer comprising:
a broad bandwidth optical light source an optical source path incorporating a depolarizing element that decorrelates optical signals in fast and slow fiber polarization channels and optically connects both channels to a path coupler; a path coupler that separates light into birefringent sample and reference paths while maintaining energy separation and decorrelation of optical signals in the fast and slow fiber polarization channels; a birefringent optical reference path optically connected to the path coupler and optically coupled to a scanning delay line; a birefringent optical sample path optically connected to the path coupler. The birefringent sample path comprises a polarization channel separator/combiner. The polarization separator-combiner divides/reunites optical signals in fast and slow polarization channels into two distinct optical beams that intersect at a single point in the sample under test. The polarization channel separator is optically connected to a beam combiner that reunites optical signals in fast and slow polarization channels; the birefringent reference and sample paths are configured so that optical path length differences between fiber reference and sample paths in the fast and slow channels are less than one-half wavelength of incident light. a birefringent optical detection path optically connected to the path coupler and a polarization channel separator that is optically coupled to a first and second photoreceivers that produce first and second output signals, respectively, wherein the first and second output signals pass through a bandpass filter and amplifier; an analog-to-digital converter connected to the bandpass filter-amplifer; and a computer connected to the analog-to-digital converter.
- 2. A dual channel optical reflectometer comprising:
a path coupler that separates light into birefringent sample and reference paths while maintaining energy separation and decorrelation of optical signals in the fast and slow fiber polarization channels; a source path comprising a first birefringent optical fiber having a first end and a second end; the first end of the first optical fiber optically coupled to a light source and splitting the light source into a first and second polarization channels with independent phase components; the second end of the first optical fiber connected to a depolarizer; a second birefringent optical fiber having a first end and a second end, and the first end of the second optical fiber connected to the depolarizer; and the second end of the second optical fiber optically connected to the path coupler; a reference path comprising a third birefringent optical fiber having a first end and a second end; the first end of the third optical fiber optically connected to the path coupler; the second end of the third optical fiber optically aligned with a first collimating lens that collimates, wherein the first collimating lens collimates light emitting from the second end of the third optical fiber into a rapid scanning delay line that includes a galvanometer that allows a variable phase modulation frequency; a sample path comprising a fourth birefringent optical fiber having a first and a second end; the first end of the fourth optical fiber optically connected to the path coupler; the second end of the fourth optical fiber optically aligned with a second collimating lens, wherein the second collimating lens collimates light emitting from the second end of the fourth optical fiber through a first Wollaston prism and a focusing lens, wherein the focusing lens is aligned so that the light with two decorrelated polarization channels with independent phase components are focused at a single point on a sample; a detection path comprising a fifth birefringent optical fiber having a first end and a second end; the first end of the fifth optical fiber optically connected to the path coupler; the second end of the fifth optical fiber optically aligned with a third collimating lens, wherein the third collimating lens collimates the light emitting from the fifth optical fiber onto a second Wollaston prism, wherein the second Wollaston prism splits the light from the fifth optical fiber into a first beam and a second beam, each beam corresponding to one phase component; a first photodetector detects the first beam and produces a first output signal; a second photodetector detects the second beam and produces a second output signal; the first and second output signal pass through a bandpass filter and amplifier to produce a first and a second filtered signal; an analog-to-digital converter is connected to the bandpass filter-amplifier; and a processor is connected to the analog-to-digital converter.
- 3. A birefringent optical fiber sample path optically aligned with a collimating lens, a Wollaston prism and a focusing lens, wherein the focusing lens focuses optical beams corresponding to decorrelated polarization channels to a single point in a sample.
- 4. The dual channel reflectometer as recited in claim 1, wherein the light source is a broadband light source.
- 5. The dual channel reflectometer as recited in claim 1, where the light source is an optical semiconductor amplifier.
- 6. The dual channel reflectometer as recited in claim 1, where the light source is an optical semiconductor amplifier centered at 1.3 microns and with a FWHM of about 60 nm.
- 7. The dual channel optical low-coherence reflectometer as recited in claim 2, wherein the depolarizer is a Lyot depolarizer.
- 8. The dual channel reflectometer as recited in claim 1, wherein the path coupler is a 2×2 phase-maintaining coupler.
- 9. The dual channel reflectometer as recited in claim 1, wherein the galvanometer has a scan rate of 180 Hz and the phase modulation frequency is 30 kHz.
- 10. The dual channel optical reflectometer as recited in claim 1, wherein the analog-digital converter is a 12-bit converter.
- 11. The dual channel optical reflectometer as recited in claim 1, wherein the source path further comprises a depolarizer.
- 12. The dual channel optical reflectometer as recited in claim 11, wherein the depolarizer is a Lyot depolarizer.
- 13. The dual channel reflectometer as recited in claim 2, wherein the light source is a broadband light source.
- 14. The dual channel reflectometer as recited in claim 2, where the light source is an optical semiconductor amplifier.
- 15. The dual channel reflectometer as recited in claim 2, where the light source is an optical semiconductor amplifier centered at 1.3 microns and with a FWHM of about 60 nm.
- 16. The dual channel reflectometer as recited in claim 2, wherein the path coupler is a 2×2 polarization-maintaining coupler.
- 17. The dual channel reflectometer as recited in claim 2, wherein the galvanometer has a scan rate of 180 Hz and the phase modulation frequency is 30 kHz.
- 18. The dual channel optical reflectometer as recited in claim 2, wherein the analog-digital converter is a 12-bit converter.
- 19. The dual channel optical reflectometer as recited in claim 2, wherein the analysis of the output comprises calculation of the Doppler frequency shift.
- 20. The dual channel optical reflectometer as recited in claim 2, wherein the sample comprises a highly light-scattering media.
- 21. The dual channel optical reflectometer as recited in claim 2, wherein the sample is in vivo blood flow.
- 22. The birefringent optical fiber sample path as recited in claim 3, wherein the sample comprises a highly light-scattering media.
- 23. The birefringent optical fiber sample path as recited in claim 3, wherein the sample is in vivo blood flow.
- 24. The birefringent optical fiber sample path as recited in claim 2, wherein the second birefringent optical fiber is at least two meters in length.
- 25. A method for measuring a Doppler-angle between light propagation and flow velocity vectors and comprising the steps of:
creating an optical source path; creating an optical reference path that is optically coupled to a first collimating lens, wherein the collimating lens is directed into a rapid scanning delay line; creating an optical sample path that is optically coupled to a second collimating lens, a first Wollaston prism, and a focusing lens, wherein the focusing lens focuses to a single point on a sample; creating a birefringent optical detection path optically coupled to a third collimating lens and a second Wollaston prism, wherein the second Wollaston prism is optically coupled to first and second photoreceivers that produce a first and second output signals, respectively, wherein the first and second output signals pass through a bandpass filter and amplifier to produce a first and second filtered signals; connecting the source path, the reference path, the sample path and the detection path to a path coupler; converting the first and second filtered signals with an analog-digital converter; and connecting a computer to the analog-digital converter for data analysis.
- 26. A birefringent optical fiber sample path optically aligned with a collimating lens, a Wollaston prism that produces two beams, and a focusing lens, wherein the two beams are collinear and longitudinally displaced relative to each other.
- 27. The birefringent optical fiber sample path recited in claim 26, wherein the longitudinal displacement of the two beams relative to one another is time dependent.
- 28. A birefringent optical fiber sample path optically aligned with a collimating lens, a Wollaston prism that produces two beams, and a focusing lens, wherein the two beams are horizontally separated relative to one another, and the horizontal separation is time dependent.
- 29. A birefringent optical fiber reference path comprising a phase modulator.
- 30. The birefringent optical fiber reference path as recited in claim 28, wherein the phase modulator comprises a lithium niobate Y-waveguide electro-optic phase modulator.
Parent Case Info
[0001] This application claims priority from Provisional Patent Application Serial No. 60/251,658, filed Jan. 12, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60261658 |
Jan 2001 |
US |