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Optical fiber strain and temperature distribution composite test botdr and its working method

A technology of optical fiber strain and temperature distribution, which is applied in the field of optical fiber sensing, can solve the problems of increased test error, difficulty in realization, and difficulty in ensuring the accuracy of optical fiber strain distribution data, so as to achieve the effect of improving test accuracy and expanding the scope of application

Active Publication Date: 2022-02-25
THE 41ST INST OF CHINA ELECTRONICS TECH GRP
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

However, during the use of BOTDR, since the Brillouin backscattering signal is sensitive to fiber strain and temperature, the temperature distribution of the fiber will interfere with the fiber strain distribution data. In practical engineering applications, this interference will As a result, the test error of the optical fiber strain distribution data increases, and it is difficult to ensure the accuracy of the optical fiber strain distribution data after a large change in temperature
[0003] At present, after BOTDR tests the optical fiber strain distribution data, the compensation method for its temperature data is one under the premise that the temperature change is not large, it is considered that the temperature has little influence, and no temperature compensation is performed on it, which is feasible in the laboratory, but in practice Difficult to achieve in engineering applications
In addition, it is a compensation scheme for actual engineering. One is to lay out temperature-sensing optical cables in parallel. It is believed that the temperature-sensing optical cables are only affected by temperature and not affected by strain. The temperature distribution data of BOTDR is used to compensate the strain distribution data. However, this scheme Not only does it need to lay additional temperature-sensing optical cables in parallel, which increases the workload of engineering construction, but also increases the cost. At the same time, when the temperature-sensing optical cables are subjected to large strains, the temperature data obtained by the test will also be affected by their own strain distribution, resulting in The test error increases, and the temperature compensation effect decreases or even disappears; another engineering solution is to lay a redundant unstrained optical cable at intervals during the laying of the strained optical cable for temperature compensation, which will lead to the strained optical cable used in the project The distance is greatly increased, and the construction difficulty and workload are also increasing sharply. The data calculation and analysis are very complicated and difficult to apply in actual engineering.
[0004] At present, after BOTDR tests the optical fiber strain distribution data, the compensation method for its temperature data is one under the premise that the temperature change is not large, it is considered that the temperature has little influence, and no temperature compensation is performed on it, which is feasible in the laboratory, but in practice Difficult to achieve in engineering applications
In addition, it is a compensation scheme for actual engineering. One is to lay out temperature-sensing optical cables in parallel. It is believed that the temperature-sensing optical cables are only affected by temperature and not affected by strain. The temperature distribution data of BOTDR is used to compensate the strain distribution data. However, this scheme Not only does it need to lay additional temperature-sensing optical cables in parallel, which increases the workload of engineering construction, but also increases the cost. At the same time, when the temperature-sensing optical cables are subjected to large strains, the temperature data obtained by the test will also be affected by their own strain distribution, resulting in The test error increases, and the temperature compensation effect decreases or even disappears; another engineering solution is to lay a redundant unstrained optical cable at intervals during the laying of the strained optical cable for temperature compensation, which will lead to the strained optical cable used in the project The distance is greatly increased, and the construction difficulty and workload are also increasing sharply. The data calculation and analysis are very complicated and difficult to apply in actual engineering.

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  • Optical fiber strain and temperature distribution composite test botdr and its working method
  • Optical fiber strain and temperature distribution composite test botdr and its working method
  • Optical fiber strain and temperature distribution composite test botdr and its working method

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Embodiment 2

[0140] On the basis of above-mentioned embodiment 1, the present invention also mentions a kind of working method of optical fiber strain and temperature distribution compound test BOTDR, its flow process is as follows figure 2 As shown, by testing and high-speed acquisition of 1310nm Brillouin scattering signal intensity data, 1310nm Rayleigh scattering signal intensity data and 1550nm Brillouin scattering signal frequency data, and analyzing the above data to obtain the compensated strain distribution data and temperature distribution data, the specific steps are as follows:

[0141] Step 101: The user inputs the pulse width PW, the 1550nm band refractive index IN15 of the tested fiber, the 1310nm band refractive index IN13 of the tested fiber, the range RP, the start frequency FS, the stop frequency FE, the frequency interval FA, the number of accumulations AT, and the distance resolution SR, optical fiber strain coefficient (frequency shift) CSFS, optical fiber temperatur...

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Abstract

The invention discloses a BOTDR related to composite testing of optical fiber strain and temperature distribution and a working method thereof, belonging to the field of optical fiber sensing. The invention proposes a composite test BOTDR involving optical fiber strain and temperature distribution and its working method. Through the multiplexing detection and information extraction of dual-wavelength Brillouin backscattering signals, combined with the strain coefficient and temperature coefficient of the optical fiber itself, based on Self-publishing the strain and temperature test principle of the backscattering signal of Liouin, realizing the extraction of strain distribution data and temperature distribution data of a single optical fiber under test, so as to realize the temperature compensation of the strain distribution data by using the optical fiber under test itself, this method does not need Increase the engineering cost and workload, and without increasing the test time, the temperature compensation can be realized by using the tested optical fiber itself, which improves the accuracy of the optical fiber strain distribution test in practical engineering applications, and further expands the application of Brillouin optical time domain reflectometer scope.

Description

technical field [0001] The invention belongs to the field of optical fiber sensing, and in particular relates to a composite test BOTDR for optical fiber strain and temperature distribution and a working method thereof. Background technique [0002] The Brillouin Optical Time Domain Reflectometer (BOTDR for short) relies on measuring the Brillouin backscattered light distribution information of the optical fiber to calculate the strain distribution of the optical fiber. Brillouin optical time domain reflectometer can be used in geotechnical engineering health monitoring, geological disaster early warning monitoring, cable and pipeline health monitoring and other fields. It is one of the most powerful products used to replace traditional point sensors in the engineering field. However, during the use of BOTDR, since the Brillouin backscattering signal is sensitive to fiber strain and temperature, the temperature distribution of the fiber will interfere with the fiber strain d...

Claims

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Application Information

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Patent Type & Authority Patents(China)
IPC IPC(8): G01B11/16G01K11/322
CPCG01B11/18G01K11/32
Inventor 袁明李立功张洋闫继送徐瑞李鹏乔山葛崇琳方玉朝韩强盛立文毕宗义闫宝东
Owner THE 41ST INST OF CHINA ELECTRONICS TECH GRP