Brillouin Optical Correlation-Domain Technologies Based on Synthesis of Optical Coherence Function as Fiber Optic Nerve Systems for Structural Health Monitoring

被引:35
|
作者
Hotate, Kazuo [1 ]
机构
[1] Toyota Technol Inst, Tempaku Ku, 2-12-1 Hisakata, Nagoya, Aichi 4688511, Japan
来源
APPLIED SCIENCES-BASEL | 2019年 / 9卷 / 01期
基金
日本学术振兴会;
关键词
distributed optical fiber sensors; optical correlation-domain technologies; Brillouin scattering; DISTRIBUTED STRAIN-MEASUREMENT; STRESS-LOCATION MEASUREMENT; SPATIAL-RESOLUTION REFLECTOMETRY; MEASUREMENT RANGE ENLARGEMENT; CONTINUOUS-WAVE TECHNIQUE; DYNAMIC GRATING SPECTRUM; FREQUENCY-MODULATION; DOPED FIBER; SENSOR; SCATTERING;
D O I
10.3390/app9010187
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Brillouin optical correlation-domain technologies are reviewed as "fiber optic nerve systems" for the health monitoring of large structures such as buildings, bridges, and aircraft bodies. The Brillouin scattering property is used as a sensing mechanism for strain and/or temperature. Continuous lightwaves are used in the technologies, and their optical coherence properties are synthesized to realize position-selective measurement. This coherence manipulation technology is called the "synthesis of optical coherence function (SOCF)". By utilizing SOCF technologies, stimulated Brillouin scattering is generated position-selectively along the fiber, which is named "Brillouin optical correlation domain analysis (BOCDA)". Spontaneous Brillouin scattering, which takes place at any portion along the fiber, can also be measured position-selectively by the SOCF technology. This is called "Brillouin optical correlation domain reflectometry (BOCDR)". When we use pulsed lightwaves that have the position information, sensing performances, such as the spatial resolution, are inherently restricted due to the Brillouin scattering nature. However, in the correlation-domain technologies, such difficulties can be reduced. Superior performances have been demonstrated as distribution-sensing mechanisms, such as a 1.6-mm high spatial resolution, a fast measurement speed of 5000 points/s, and a 7000-mu epsilon strain dynamic range, individually. The total performance of the technologies is also discussed in this paper. A significant feature of the technologies is their random accessibility to discrete multiple points that are selected arbitrarily along the fiber, which is not realized by the time domain pulsed-lightwave technologies. Discriminative and distributed strain/temperature measurements have also been realized using both the BOCDA technology and Brillouin dynamic grating (BDG) phenomenon, which are associated with the stimulated Brillouin scattering process. In this paper, the principles, functions, and applications of the SOCF, BOCDA, BOCDR, and BDG-BOCDA systems are reviewed, and their historical aspects are also discussed.
引用
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页数:48
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