Tdm- and wdm-based fbg sensor array system

US2016011018A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2016011018-A1
Application numberUS-201314381662-A
CountryUS
Kind codeA1
Filing dateMar 4, 2013
Priority dateMar 2, 2012
Publication dateJan 14, 2016
Grant date

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Abstract

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In a TDM- and WDM-based FBG sensor array system, a source emits a light covering a selected wavelength range. The light is amplified and then used to generate a series of pulses that are fed into an array of sensor gratings. The propagation of a pulse through the sensor array results in a time-domain-multiplexed output, comprising a series of output pulses in which each output pulse comprises a reflection of the input pulse at a respective grating in the sensor array. Raman amplification is used to amplify both the pulse input into and the time-domain multiplexed output from the sensor array, which is then coupled into an output processing stage for receiving the sensor output and for reconstructing the wavelength output of each grating in the sensor array. The wavelength change for each grating is then used to calculate a physical parameter(s) to be measured, such as temperature and/or strain.

First claim

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What is claimed is: 1 . A fiber optic sensor system, comprising: an input generator comprising a light source for emitting light covering a selected wavelength range, a rare-earth-doped fiber amplifier for amplifying the emitted light, and a modulator for modulating the emitted light to produce a series of light pulses; a sensor stage coupled to the input generator for receiving the series of light pulses as an input, and for transmitting the light pulses through an array of sensor gratings positioned along an optical pathway, wherein the propagation of a pulse through the sensor array results in a time-domain-multiplexed output, comprising a series of output pulses in which each output pulse comprises a reflection of the input pulse at a respective grating in the sensor array, wherein the sensor stage comprises a Raman amplification means for amplifying both the input into the sensor array and the time-domain multiplexed output coming out of the sensor array; an output processing stage for detecting the output out of the sensor array and for reconstructing the wavelength output of each grating in the sensor array; and a control module for operating the system stages. 2 . The fiber optic system of claim 1 , wherein the rare-earth-doped fiber amplifier comprises an erbium-doped fiber amplifier. 3 . The fiber optic system of claim 1 , wherein the sensor array comprises hundreds of individual Bragg gratings. 4 . The fiber optic system of claim 1 , wherein the input generator stage, the sensor stage, and the output processing stage are coupled to each other by means of an optical circulator, whereby light emitted by the input generator stage is coupled into the sensor stage, and the output of the sensor stage is coupled into the output processing stage. 5 . The fiber optic system of claim 1 , wherein the sensor stage further comprises a time reference grating connected upstream of the sensor array that is configured to provide a time reference signal for use by the control module as a baseline time in reconstructing the output of each grating in the sensor array. 6 . The fiber optic system of claim 1 , wherein at least a portion of the optical fiber pathway in the sensor stage is fabricated from a Raman-active optical fiber, such that some Raman amplification takes place therein. 7 . The fiber optic system of claim 1 , wherein the sensor array comprises gratings belonging to two or more groups, each group characterized by a respective Bragg wavelength, such that the sensor array output is multiplexed in both the time and wavelength domains. 8 . The fiber optic system of claim 7 , wherein the groups of gratings are arranged in a non-overlapping configuration. 9 . The fiber optic system of claim 7 , wherein individual gratings from different groups are arranged in an overlapping configuration, such that the distance between at least some gratings with the same wavelength can exceed a required distance between adjacent sensing points. 10 . The fiber optic system of claim 1 , wherein the light source comprises an amplified spontaneous emission from an erbium-doped fiber. 11 . The fiber optic system of claim 10 , wherein the output processing stage comprises wavelength-spreading means for spreading apart the wavelength components of the output from the sensor stage, and a detector for digitizing the output after wavelength spreading. 12 . The fiber optic system of claim 11 , wherein the wavelength-spreading means comprises a blazed grating and prism assembly. 13 . The fiber optic system of claim 11 , wherein the output processing stage further includes a calibrated scanning stage for accurately deriving wavelength data for the sensor output. 14 . The fiber optic system of claim 1 , wherein the light source comprises a tunable laser. 15 . A fiber optic system of claim 14 , wherein the output processing stage is configured to derive wavelength data from the sensor output in relationship to the instantaneous wavelength of the tunable laser output. 16 . The fiber optic system of claim 15 , wherein the output processing stage is configured to use the laser setting for the instantaneous wavelength of the tunable laser output. 17 . The fiber optic system of claim 1 , wherein the light source comprises a swept laser. 18 . The fiber optic system of claim 17 , wherein the input generation stage comprises a wavelength measurement module for measuring the instantaneous wavelength of the swept laser output for use by the output processing stage in deriving wavelength data from the sensor array output. 19 . The fiber optic system of claim 17 , wherein the sensor stage comprises a wavelength reference device connected between the time reference grating and the sensor array for calibrating the sensor array output. 20 . The fiber optic system of claim 19 , wherein the wavelength reference device comprises a plurality of temperature-stabilized gratings with different wavelengths, covering the wavelength range of the sensor gratings.

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Classifications

  • using inelastic backscattering to detect the measured quantity, e.g. using Brillouin or Raman backscattering · CPC title

  • using changes in transmittance, scattering or luminescence in optical fibres · CPC title

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What does patent US2016011018A1 cover?
In a TDM- and WDM-based FBG sensor array system, a source emits a light covering a selected wavelength range. The light is amplified and then used to generate a series of pulses that are fed into an array of sensor gratings. The propagation of a pulse through the sensor array results in a time-domain-multiplexed output, comprising a series of output pulses in which each output pulse comprises a…
Who is the assignee on this patent?
Ofs Fitel Llc
What technology area does this patent fall under?
Primary CPC classification G01D5/35364. Mapped technology areas include Physics.
When was this patent published?
Publication date Thu Jan 14 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).