Signal transmission method, transmitter, and signal transmission system
US-9520951-B2 · Dec 13, 2016 · US
US10979140B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10979140-B2 |
| Application number | US-201916506571-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jul 9, 2019 |
| Priority date | Jul 9, 2019 |
| Publication date | Apr 13, 2021 |
| Grant date | Apr 13, 2021 |
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There is provided apparatuses to detect occurrence and location of damages on optical fiber links in advance by converting an optical span in optical network to an interferometry based sensing media. The interferometry based sensing media may enable detection of mechanical perturbation or mechanical vibration occurred on optical fiber links across optical network. The system employed with the interferometry based sensing media can detect occurrence of mechanical perturbation or mechanical vibration as well as discover the location of such event occurred using standard interferometry based sensing techniques.
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I claim: 1. An apparatus for detecting operational conditions of an optical fiber, the apparatus comprising: a probe transceiver module communicatively connected to a first end of a first optical fiber span and a first end of a second optical fiber span in an optical network, the probe transceiver module comprising: a transmitter to send an optical probe signal, the optical probe signal being transmitted into both the first end of the first optical fiber span and the first end of the second optical fiber span; and a receiver to receive a first returning optical probe signal from the first end of the first optical fiber span and a second returning optical probe signal from the first end of the second optical fiber span; and a loop back module communicatively connected to a second end of the first optical fiber span and a second end of the second optical fiber span, the loop back module configured to transfer optical signals between the first optical fiber span and the second optical fiber span; wherein the probe transceiver module and the loopback module are integrated into an optical supervisory channel (OSC) module and enable conversion of said first optical fiber span and said second optical fiber span into an interferometry-based sensing medium; wherein combining of the first returning optical probe signal and the second returning optical probe signal enables detection of operational conditions of the optical fiber including the first optical fiber span and the second optical fiber span. 2. The apparatus of claim 1 , wherein the receiver comprises: a coupler communicatively connected to the first end of the first optical fiber span and the first end of the second optical fiber span, the coupler configured to combine the first returning optical probe signal and the second optical probe signal; and a photodiode for detecting a signal indicative of the combination of the first returning optical probe signal and the second returning optical probe signal, wherein the signal is indicative of the operational conditions of the optical fiber. 3. The apparatus of claim 2 , further comprising a digital signal processor configured to evaluate the signal for determination of the operational conditions of the optical fiber. 4. The apparatus of claim 3 , wherein the digital signal processor forms a portion of the probe transceiver module. 5. The apparatus of claim 3 , wherein the digital signal processor is remote from the probe transceiver module and is communicatively connected to the probe transceiver module for receiving the signal. 6. The apparatus of claim 1 , wherein the probe transceiver module further includes a circulator configured to control directional flow of the optical probe signal. 7. The apparatus of claim 1 , wherein the operational conditions include one or more of vibrations and a location of the vibrations. 8. The apparatus of claim 1 , wherein the transmitter generates multiple optical probe signals at one or more wavelengths. 9. The apparatus of claim 1 , wherein one or more functions of the probe transceiver module are performed by the OSC module. 10. An apparatus for detecting operational conditions of an optical fiber, the apparatus comprising: a probe transceiver module communicatively connected to a first end of an optical fiber span, the probe transceiver module comprising: a transmitter to send an optical probe signal, the optical probe signal being transmitted into the first end of the optical fiber span; and a receiver to receive a returning optical probe signal from the first end of the optical fiber span; and a loop back module communicatively connected to a second end of the optical fiber span, the loop back module configured to reflect the optical probe signal back to the probe transceiver module along the optical fiber span; wherein the probe transceiver module and the loopback module are integrated into an optical supervisory channel (OSC) module and enable conversion of said first optical fiber span and said second optical fiber span into an interferometry-based sensing medium; and wherein combining of the returning optical probe signal and the optical probe signal enables detection of operational conditions of the optical fiber of the optical fiber span. 11. The apparatus of claim 10 , wherein the receiver comprises: a coupler communicatively connected to the first end of the optical fiber span and the transmitter, the coupler configured to combine the returning optical probe signal and the optical probe signal; and a photodiode for detecting a signal indicative of the combination of the returning optical probe signal and the optical probe signal, wherein the signal is indicative of the operational conditions of the optical fiber. 12. The apparatus of claim 11 , further comprising a digital signal processor configured to evaluate the signal for determination of the operational conditions of the optical fiber. 13. The apparatus of claim 12 , wherein the digital signal processor forms a portion of the probe transceiver module. 14. The apparatus of claim 12 , wherein the digital signal processor is remote from the probe transceiver module and is communicatively connected to the probe transceiver module for receiving the signal. 15. The apparatus of claim 10 , wherein the transmitter generates multiple optical probe signals at one or more wavelengths. 16. The apparatus of claim 10 , wherein one or more functions of the probe transceiver module are performed by the OSC module. 17. An apparatus for detecting operational conditions of optical fibers, the apparatus comprising: at least two probe transceiver modules, each probe transceiver module comprising: a transmitter to send an optical probe signal; a receiver to receive an optical probe signal; at least two pairs of switchable means, each switchable means of a first pair separately communicatively connected to one of the switchable means of another pair at the opposite ends of an optical fiber span; each switchable means of each pair communicatively connected to a corresponding probe transceiver module of the at least two probe transceiver modules and to the other switchable means of that pair; each pair of switchable means having two synchronized alternate states, in the first state, at a first end of a span, each switchable means of the first pair configured to transfer optical signals between the optical fiber span and the corresponding probe transceiver module, the corresponding probe transceiver module configured to: send an optical probe signal, the optical probe signal being transmitted into each optical fiber span; receive a first returning optical probe signal, and a second returning optical probe signal, respectively from each optical fiber span; wherein combining of the first returning optical probe signal and the second returning optical probe signal received at the corresponding probe transceiver module enables detection of operational conditions of the optical fiber spans; at an opposite end of a span, each switchable means of the pair communicatively connected at the opposite ends of the optical fiber spans configured to transfer optical signals therebetween; in the alternate state, at the first end of a span, each switchable means of the first pair configured to transfer optical signals therebetween, at an opposite end of a span, each switchable means of the pair communicatively connected at the opposite ends of the optical fiber spans configured to transfer optical signals between the optical fiber span and the corresponding probe tr
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