IP Library › Granted Patent US 11,022,467
Granted Patent B2
US 11,022,467 · App. 16/474,747 · Granted Jun 1, 2021

Method and apparatus for optical sensing

Inventors: Sergey Shatalin (Elstree, GB); Julian Dajczgewand (Elstree, GB); Mahmoud Farhadiroushan (Elstree, GB); Tom Parker (Elstree, GB)
Assignees: Silixa Ltd.; Chevron U.S.A. Inc.
G01D5/3537G01D5/35306G01D5/35354G01D5/35383G01H9/004
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Quick Facts
Patent No.
US 11,022,467
App. No.
16/474,747
Granted
Jun 1, 2021
Kind
B2
Abstract

An improved optical fiber distributed acoustic sensor system uses an optical fiber having reflector portions distributed along its length in at least a first portion. The reflector portions are positioned along the fiber separated by a distance that is equivalent to twice the distance an optical pulse travels along the fiber in a single sampling period of the data acquisition opto-electronics within the sensor system. No oversampling of the reflections of the optical pulses from the reflector portions is undertaken. The sampling points for data acquisition in the sensor system are aligned with the reflections that arrive at the sensor system from along the sensing fiber. Adaptive delay componentry adaptively aligns the reflected optical signals (or their electrical analogues) with the sampling points. Control over the sampling points can re-synchronise the sampling points with the returning reflections. Reflection equalisation componentry may reduce the dynamic range of the returning reflections.

Claims (38)

1. A distributed sensing system, comprising:

an optical fiber deployable in an environment to be sensed, the optical fiber having reflector portions regularly distributed in at least a first region thereof and having a first fixed and known spacing therebetween;

an optical signal source arranged in use to input optical pulses into the optical fiber; and

sensing apparatus arranged in use to detect light from the optical pulses reflected back along the optical fiber from the reflector portions and to determine any one or more of an acoustic, vibration, strain, temperature or other parameter that perturbs the path length of the optical fiber in dependence on the reflected light, the sensing apparatus comprising opto-electronic componentry that samples the reflected light or light derived therefrom at temporally discrete sampling points at a first sampling rate;

wherein

the first sampling rate is of a value that is at or near to the Nyquist limit for the fixed and known spacing between the reflector portions in the at least first region of the optical fiber such that no oversampling occurs, and

the sensing apparatus further comprises pulse reflection alignment componentry arranged to temporally align reflected light from the optical pulses reflected back along the fiber from the reflector portions with the sampling points, the pulse reflection alignment componentry comprising one or more variable delay components arranged to apply a delay to pulse reflections from the reflector portions as received at the sensing apparatus to temporally align the pulse reflections with the sampling points.

2. A distributed sensing system according to claim 1 , wherein the first sampling rate is at least twice the spacing of the reflector portions, given the speed of light in the fiber.

3. A distributed sensing system according to claim 1 , wherein the one or more variable delay components comprises one or more optical delays arranged to delay the pulse reflections before they are sampled by the opto-electronic componentry.

4. A distributed sensing system according to claim 1 , wherein the one or more variable delay components comprises one or more electrical delays arranged to delay the electrical signals between conversion from reflected light pulses to electrical signals and the sampling of the converted signals.

5. A distributed sensing system according to claim 1 , wherein the opto-electronic componentry further comprises sample point reset circuitry to reset the timing of the sampling points should they misalign with the reflected light from the optical pulses received at the sensing apparatus from the reflector portions along the fiber.

6. A distributed sensing system according to claim 1 , and further comprising signal level adjustment circuitry arranged to equalise the amplitude of the reflected light from the reflector portions received at the sensing apparatus.

7. A distributed sensing system according to claim 6 , wherein the signal level adjustment circuitry equalises the amplitude of the reflected light in order to reduce the required dynamic range of the opto-electronic componentry that samples the reflected light.

8. A distributed sensing system according to claim 6 , wherein the signal level adjustment circuitry comprises one or more of a signal amplifier or attenuator, the signal amplifier or attenuator being one of either;

i) an electrical amplifier or attenuator; or

ii) an optical amplifier or attenuator.

9. A method of monitoring flow along a pipe, comprising:

providing a distributed sensing apparatus according to claim 1 , the optical fiber of the sensing apparatus being deployed substantially linearly along the length of the pipe;

operating the distributed sensing apparatus to obtain acousto-vibrational data pertaining to flow conditions within the pipe;

processing the acousto-vibrational data to identify eddies within the flow within the pipe; and

tracking the identified eddies within the flow along the pipe in dependence on the acousto-vibrational data.

10. A method according to claim 9 , and further comprising, determining the flow speed of fluid flow along the pipe in dependence on the tracking of the identified eddies in the fluid flow as the eddies move along the pipe.

11. A distributed sensing system, comprising:

an optical fiber deployable in an environment to be sensed, the optical fiber having reflector portions regularly distributed in at least a first region thereof and having a first spacing therebetween;

an optical signal source arranged in use to input optical pulses into the optical fiber; and

sensing apparatus arranged in use to detect light from the optical pulses reflected back along the optical fiber from the reflector portions and to determine any one or more of an acoustic, vibration, strain, temperature or other parameter that perturbs the path length of the optical fiber in dependence on the reflected light, the sensing apparatus comprising opto-electronic componentry that samples the reflected light or light derived therefrom at temporally discrete sampling points at a first known sampling rate that gives a first known sampling period;

wherein the first spacing between each of the reflector portions in the at least first region of the optical fiber is of a size that is at least twice the distance travelled by the optical pulses along the fiber in one of the first known sampling periods, such that the first sampling rate is at or near to the Nyquist limit and no oversampling occurs; and

the sensing apparatus further comprises pulse reflection alignment componentry arranged to temporally align reflected light from the optical pulses reflected back along the fiber from the reflector portions with the sampling points, the pulse reflection alignment componentry comprising one or more variable delay components arranged to apply a delay to pulse reflections from the reflector portions as received at the sensing apparatus to temporally align the pulse reflections with the sampling points.

12. A distributed sensing system according to claim 11 , wherein the spacing of the reflector portions along the fiber is equal to twice the distance x light would travel in the fiber at the highest sampling rate of the opto-electronic componentry.

13. A distributed sensing system according to claim 11 , wherein the one or more variable delay components comprises one or more optical delays arranged to delay the pulse reflections before they are sampled by the opto-electronic componentry.

14. A distributed sensing system according to claim 11 , wherein the one or more variable delay components comprises one or more electrical delays arranged to delay the electrical signals between conversion from reflected light pulses to electrical signals and the sampling of the converted signals.

15. A distributed sensing system according to claim 11 , wherein the opto-electronic componentry further comprises sample point reset circuitry to reset the timing of the sampling points should they misalign with the reflected light from the optical pulses received at the sensing apparatus from the reflector portions along the fiber.

16. A method of monitoring flow along a pipe, comprising:

providing a distributed sensing apparatus according to claim 11 , the optical fiber of the sensing apparatus being deployed substantially linearly along the length of the pipe;

operating the distributed sensing apparatus to obtain acousto-vibrational data pertaining to flow conditions within the pipe;

processing the acousto-vibrational data to identify eddies within the flow within the pipe; and

tracking the identified eddies within the flow along the pipe in dependence on the acousto-vibrational data.

17. A method according to claim 16 , and further comprising, determining the flow speed of fluid flow along the pipe in dependence on the tracking of the identified eddies in the fluid flow as the eddies move along the pipe.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 14, 2021
From: SHATALIN, SERGEY; DAJCZGEWAND, JULIAN; FARHADIROUSHAN, MAHMOUD; PARKER, TOM
To: SILIXA LTD.; CHEVRON U.S.A. INC.
Reel/Frame 054916/0042 →
Priority Claims (1)
GB 1700266 · Jan 6, 2017 · national
Continuity (1)
Related Publication 20190323863A1 · Oct 24, 2019