The present invention belongs to the field of optical fiber sensing technology, in particular eliminate the impact of backscattered light in an optical fiber sensor.
Optical fiber sensing technology is often used in large-scale, long-distance monitoring, such as security monitoring used in oil pipelines, high-voltage power grids, pipelines, communications cable and other infrastructure, which the fiber used to be the sensor, real-timely acquiring related disturbance signal, determine the location of the disturbance occurred by the analysis characterize. The structure of single core feedback optical path is: using a single fiber as sensing fiber, the fiber itself is not closed, only apply a feedback device at the end of the fiber, such as a mirror constituting interference optical path. In practice, this structure laying is flexible. The characteristics of such monitoring systems is: light carrying the disturbance information transmitted to the end of the fiber, then reflect by feedback device.
The following is a positioning technology of single core feedback positioning system.
As shown in
φ1(t)=φ(t)+φ(t−T)
wherein, T=2neffL/c, L is the distance between disturbance point D and feedback device 2, c is the speed of light in vacuum, neff is the effective refractive index of the optical fiber.
As shown in
Interference optical path include the following parts: N*M (N, M are integers) coupler 3, P*Q (P, Q are integers) coupler 4, optical fiber delayer 5(delay τ), an optical fiber (optical cable) 6, and feedback device 2. 3a1, 3a2, . . . , 3aN, 3b1, 3b2 are ports of coupler 3, 3a1, 3a2, . . . , 3aN are co-rotating ports with a total of N, 3b1, 3b2 are two ports in another group co-rotating ports (with a total of M) of coupler 3. 4a1, 4a2, 4b1 are ports of coupler 4, 4a1, 4a2 are two ports in a group co-rotating ports (with a total of P) of coupler 4, 4b1 are two ports in another group co-rotating ports (with a total of Q) of coupler 4. Optical fiber 6 is induction optical fiber. Feedback device 2 make the light transmitted along the fiber go back to the fiber 6 and return to the coupler 4. Light source input through the port 3a1 of coupler 3, after splitting in coupler 3, output respectively through the port 3b1, 3b2, two optical paths is:
□: 3b1→5→4a1→4b1→6→2→6→4b1→4a2→3b2
II: 3b2→4a2→4b1→6→2→6→4b1→4a1→5→3b1
The two optical paths join at coupler 3 again and generate interference, interference signals output respectively through port 3a1, 3a2, 3aN.
In the interference optical path, the light firstly enter delayer 5 and then enter fiber cable 6, the phase modulation applied to the light is:
φ2(t)=φ(t−τ)+φ(t−τ−T)
Phase difference between two coherent interference lights is:
Δφ=[φ(t)+φ(t−T)][φ(t−τ)+φ(t−τ−T)]
In the spectrum of phase difference, there is a frequency drop point, or “notch point”, and we can determine the location of the disturbance arising according to the notch point. “Notch point” is shown in
wherein, ƒnull (k) is frequency of k-order notch point.
We can see from the above principle, the coherent light must transmit from the endpoint 1 of sensing optical fiber 6 to endpoint 2 and then return to sensing optical fiber 6, in order to carry the position “L” message. However, in practice, due to the structural characteristics of the optical fiber and the fiber itself defects and other reasons, there is a scattered light in optical fibers, such as Rayleigh scattering light and the like.
As shown in
I: 3b1→5→4a1→4b1→6→7→6→4b1→4a2→3b2
II: 3b2→4a2→4b1→6→7→6→4b1→4a1→5→3b1
Because of similar spectral characteristics, the optical path are equal without disturbance, and therefore join at the coupler 3 again will also occur interference. Obviously, the information carried by the two beam of interference light is the length L7 between point 7 and disturbance point D. 8 is another scattering point, the length information carried by the interference formed by backscatter is the length L8 between point 8 and disturbance point D, apparently, L7≠L8≠L, since these interference is mixed at the output, the interference light generated by Brillouin backscattered light or Raman backscattered light can be filter out by optical filter, but for the interference light generated by Rayleigh scattering light, or the interference light generated by contact point of optical path, it is impossible to eliminate by optical filtering method, will affect the purity of useful interference signal, and will directly affect the accuracy of the disturbance L position. Generally, the intensity of interference generated by backscattered light, contact reflected is significantly less than the intensity of interference generated by reflected light (effective interference signal), and will not have a significant impact on the effective interference signal, accuracy of L can meet the actual needs. But after the monitoring circuit reach a certain length, scattered light affects the entire line obviously, then we can observe the obvious interference signal distortion has occurred, the system can not obtain a valid interference signal normally. Acquired signal contains not only effective interference signal and further contains spurious interference signal caused by scattering light.
Similarly, reflection by the contact point of optical path can also cause the same adverse effects on the interference signal.
The impact of scatter (reflect) light in the conventional path is not only the obvious restriction in monitoring system. When a large scatter (reflect) point exists, the system can not be properly tested in the line.
In order to cut the impact of the signal, the invention 201010508357.2 (
Since the described technique connects the phase modulator 9 series with the end of the sensing optical fiber 6, the optical path is phase-modulated and electrical signal is applied to the modulation signal, therefore the means connected to the end of sensing optical fiber is an active device that requires power. It is difficult to provide power to the end of sensing optical fiber, therefore the application of the method is limited.
The purpose of the present invention is to provide a method to provide no power to the end of sensing optical fiber and eliminate the impact of backscattered light in optical fiber sensor.
The present invention use wavelength division multiplexing technology to obtain the interference signal produced by independent scattered light, so as to obtain the pure active signal from the interference output signal affected by interference signal. The present invention is improvement to the system shown in
The basic interference optical path structure of the system of the present invention is shown in
In the above optical structure, when the light with wavelength λ1 is transmitting along the sensing optical fiber 6 to the end of the feedback device 2, a part of the light is affected by scatter (reflection) point and return in advance, the remaining light is passing through the WDM 10 and reaching the feedback device 2, and then returning along the same route; therefore, the signal P1 fromed by wavelength λ1 can be expressed as:
wherein, Peff is a signal formed by reflecting by the feedback device 2, pS (λ1, i) is a signal formed by light with wavelength λ1 caused by the i-th scatter (reflection) point of the sensing optical fiber 6,
is the sum of all scatter points along the sensing optical fiber 6 and before the WDM 10. when the light with wavelength λ2 is transmitting along the sensing optical fiber 6 to the end of the feedback device 2, a part of the light is affected by scatter (reflection) point and return in advance, the remaining light is passing through the WDM 10 and leaking from the port 10c; therefore, the signal P2 fromed by wavelength λ2 can be expressed as:
Wherein pS(λ2, i) is a signal formed by light with wavelength λ2 caused by the i-th scatter (reflection) point of the sensing optical fiber 6.
When λ1 is close to λ2:
Thus, the signals P1, P2 are formed by wavelength λ1, λ2, if use a certain signal processing means, for example, adaptive algorithms, etc., the interference signal component can be removed and get an effective signal Peff.
The light injected into the optical fiber optical path structure of the present invention can be provided by an independent source, or the light source may be a combination of two or more different wavelengths of light through the WDM; WDM can have two splitting ports or a plurality of splitting ports.
Advantage of the present invention is that it can effectively eliminate the impact of backscattered(reflected) light in single core optical fiber sensing light path, the useful information is extracted from the signal of serious disturbances, which significantly improves the measurement of distance, enhance adaptability to the line of interference measurement system. The technology uses a WDM to obtain interference signal formed by scatter light, so the structure of this method is simple and easier to implement. Because the method use the passive components, the advantage of provide no power to sensing optical fiber end connector of a single feedback optical fiber sensing structure is maintained, especially for the location which difficult to provide power, so as to have a wider range of adaptability. The free extending layout of the end of the monitor optical fiber is easier to be achieved.
Distributed optical fiber line monitoring system of the invention can be widely used in long distance monitoring of safety monitoring in the field of telecommunications lines, power transmission lines, gas pipelines, oil pipelines, border; also be used for safety monitoring of large buildings such as dams, tunnels, mines, etc.
1: end of the sensing optical fiber 6, 2: feedback device, 3: for the N*M (N, M are integers) coupler, 4: P*Q (P, Q are integers) coupler, 5: optical fiber delayer, delay τ, 6: sensor optical fiber (optical cable) and feedback device 2 constituted, 3a1, 3a2, . . . , 3aN, 3b1, 3b2: port of coupler 3, 3a1, 3a2, . . . , 3aN: co-rotating ports with a total of N, 3b1, 3b2: two ports in another group co-rotating ports (with a total of M) of coupler 3. 4a1, 4a2, 4b1: ports of coupler 4, 4a1, 4a2: two ports in a group co-rotating ports (with a total of P) of coupler 4, 4b1: two ports in another group co-rotating ports (with a total of Q) of coupler 4. 7, 8: scattering point in optical fiber, 9: phase modulator. 10: WDM connected to the end of the sensing optical fiber, 10a: multiplexed port, 10b, 10c: splitting port, 11: WDM, 11a: multiplexed port, 11b, 11c: splitting port; 12: WDM, 12a: multiplexed port, 12b, 12c: splitting port; 13: WDM, 13a: multiplexed port, 13b, 13c: splitting port.
The measurement system of the embodiment use interference structure shown in
Light source is S03-B type super radiation diode (SLD) produced by 44 research institute of the Institute of Industrial Electronics Group Corporation. Coupler 4 uses average of 2*2 Optical Fiber tapered single mode Coupler. Both of them are produced by Wuhan Research Institute of Posts and Telecommunications. Fiber used by fiber delayer is G652 single-mode fiber. Photoelectric converter used in photoelectric conversion and information processing is GT322C500 of InGaAs photodetector produced by 44 research institute. Feedback device 2 is produced by optical fiber end steamed aluminized production, reflectance greater than 95%. WDM 10 is a FBT single-mode device.
In the single core sensing path, an active joint connection point is 10 km from end of sensing optical cable 6 (feedback device 2), at which point reflection>2 dB, disturbance applied near the port 4b1 to sensor cable 6. If do not use this The method of the invention, the system can not properly positioned. After use the modulation and demodulation method, the system can locate accurately.
Number | Date | Country | Kind |
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201310473672.X | Oct 2013 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2014/088326 | 10/10/2014 | WO | 00 |