Nonlinearity Correction in OFDR System Using a Zero-Crossing Detection-Based Clock and Self-Reference

被引:28
作者
Zhao, Shiyuan [1 ,2 ]
Cui, Jiwen [1 ,2 ]
Tan, Jiubin [1 ,2 ]
机构
[1] Harbin Inst Technol, Ctr Ultra Precis Optoelect Instrument, Harbin 150080, Heilongjiang, Peoples R China
[2] Harbin Inst Technol, Minist Ind & Informat Technol, Key Lab Ultra Precis Intelligent Instrumentat, Harbin 150080, Heilongjiang, Peoples R China
基金
中国国家自然科学基金;
关键词
optical fibers; Rayleigh scattering; optical frequency-domain reflectometry; strain measurement; FREQUENCY-DOMAIN REFLECTOMETRY; DISTRIBUTED STRAIN-MEASUREMENT; INTERFEROMETRY;
D O I
10.3390/s19173660
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Tuning nonlinearity of the laser is the main source of deterioration of the spatial resolution in optical frequency-domain reflectometry (OFDR) system. In this paper, we develop methods for tuning nonlinearity correction in an OFDR system from the aspect of data acquisition and post-processing. An external clock based on a zero-crossing detection is researched and implemented using a customized circuit. Equal-spacing frequency sampling is, therefore, achieved in real-time. The zero-crossing detection for the beating frequency of 20 MHz is achieved. The maximum sensing distance can reach the same length of the auxiliary interferometer. Moreover, a nonlinearity correction method based on the self-reference method is proposed. The auxiliary interferometer is no longer necessary in this scheme. The tuning information of the laser is extracted by a strong reflectivity point at the end of the measured fiber. The tuning information is then used to resample the raw signal, and the nonlinearity correction can be achieved. The spatial resolution test and the distributed strain measurement test were both performed based on this nonlinearity correction method. The results validated the feasibility of the proposed method. This method reduces the hardware and data burden for the system and has potential value for system integration and miniaturization.
引用
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页数:10
相关论文
共 12 条
[1]  
Badar M., 2019, P FIB OPT SENS APPL, V11000
[2]   Investigation of the interpolation method to improve the distributed strain measurement accuracy in optical frequency domain reflectometry systems [J].
Cui, Jiwen ;
Zhao, Shiyuan ;
Yang, Di ;
Ding, Zhenyang .
APPLIED OPTICS, 2018, 57 (06) :1424-1431
[3]   Precision improvement in frequency-scanning interferometry based on suppressing nonlinear optical frequency sweeping [J].
Deng, Zhongwen ;
Liu, Zhigang ;
Li, Bing ;
Liu, Zhe .
OPTICAL REVIEW, 2015, 22 (05) :724-730
[4]   Distributed Optical Fiber Sensors Based on Optical Frequency Domain Reflectometry: A review [J].
Ding, Zhenyang ;
Wang, Chenhuan ;
Liu, Kun ;
Jiang, Junfeng ;
Yang, Di ;
Pan, Guanyi ;
Pu, Zelin ;
Liu, Tiegen .
SENSORS, 2018, 18 (04)
[5]   Improving OFDR spatial resolution by reducing external clock sampling error [J].
Feng, Bowen ;
Liu, Kun ;
Liu, Tiegen ;
Jiang, Junfeng ;
Du, Yang .
OPTICS COMMUNICATIONS, 2016, 363 :74-79
[6]   High-spatial-resolution distributed strain measurement in optical fiber with Rayleigh scatter [J].
Froggatt, M ;
Moore, J .
APPLIED OPTICS, 1998, 37 (10) :1735-1740
[7]   Optical frequency domain reflectometry at maximum update rate using I/Q detection [J].
Gabai, Haniel ;
Botsev, Yakov ;
Hahami, Meir ;
Eyal, Avishay .
OPTICS LETTERS, 2015, 40 (08) :1725-1728
[8]   Swept-wavelength interferometric interrogation of fiber Rayleigh scatter for distributed sensing applications [J].
Gifford, Dawn K. ;
Kreger, Stephen T. ;
Sang, Alex K. ;
Froggatt, Mark E. ;
Duncan, Roger G. ;
Wolfe, Matthew S. ;
Soller, Brian J. .
FIBER OPTIC SENSORS AND APPLICATIONS V, 2007, 6770
[9]   Measurement Range Enhancement of Rayleigh-Based Optical Frequency Domain Reflectometry With Bidirectional Determination [J].
Kim, Youngwoong ;
Kim, Myoung Jin ;
Rho, Byung Sup ;
Kim, Young Ho .
IEEE PHOTONICS JOURNAL, 2017, 9 (06)
[10]   Correction of sampling errors due to laser tuning rate fluctuations in swept-wavelength interferometry [J].
Moore, Eric D. ;
McLeod, Robert R. .
OPTICS EXPRESS, 2008, 16 (17) :13139-13149