Temperature-insensitive optical fiber strain sensor fabricated by two parallel connection Fabry-Perot interferometers with air-bubbles

被引:9
作者
Zhang, Han [1 ]
Jiang, Chao [1 ]
Hu, Jin [1 ]
Song, Jiao [1 ]
Zhu, Xiping [1 ]
Wang, Pei [1 ]
Li, Hong [1 ]
机构
[1] Hubei Normal Univ, Coll Phys & Elect Sci, Huangshi 435002, Hubei, Peoples R China
关键词
MACH-ZEHNDER INTERFEROMETER; HIGH-SENSITIVITY; CORE; COMPENSATION; MINIATURE; RESONANCE;
D O I
10.1063/5.0129959
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
A strain sensor formed by a parallel connection of two Fabry-Perot interferometers (FPI) is proposed. The femtosecond laser is used to process a micro groove on the end face of a single-mode fiber (SMF), and then, it is welded with another SMF to form a small air bubble at the fusion point, fabricating an FPI. When the axial strain acts on the air bubble, the transverse length of the air bubble will change, causing the air cavity of the FPI to be easily deformed, and FPI can obtain high strain sensitivity. Three FPIs were manufactured with the air bubble sizes of 63, 78, and 93 mu m, respectively, and the strain sensitivities of the three FPIs are 2.9, 2.0, and 1.5 pm/mu epsilon, respectively. The experimental results show that the smaller the air bubble, the higher the strain sensitivity of FPI. Since the free spectral ranges of the three FPIs are relatively similar, we, respectively, paralleled them to form two Vernier effect strain sensors, and their sensitivities are -14.9 and -14.5 pm/mu epsilon, respectively. Their sensitivities are increased by 5.1 times and 7.3 times, respectively. In addition, because three FPIs are composed of air cavities, they have very low temperature sensitivities. When they are connected in parallel, their resonance peak wavelength moves in the same direction with an increase in temperature, forming a reduced Vernier effect, and the temperature sensitivity amplification is very small. Therefore, the temperature cross-sensitivity of the sensor is extremely low and can be ignored.
引用
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页数:11
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共 35 条
[1]   Vernier Effect-Based Strain Sensor With Cascaded Fabry-Perot Interferometers [J].
Abbas, Lashari Ghulam .
IEEE SENSORS JOURNAL, 2020, 20 (16) :9196-9201
[2]   Slightly Tapered Optical Fiber With Inner Air-Cavity as a Miniature and Versatile Sensing Device [J].
Chen, H. F. ;
Wang, D. N. ;
Hong, W. .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2015, 33 (01) :62-68
[3]   A comparative study and experimental observations of optical fiber sagnac interferometric based strain sensor by using different fibers [J].
Chowdhury, Sayantika ;
Verma, Sneha ;
Gangopadhyay, Tarun Kumar .
OPTICAL FIBER TECHNOLOGY, 2019, 48 :283-288
[4]   Ultra-Sensitive Strain Sensor Based on Femtosecond Laser Inscribed In-Fiber Reflection Mirrors and Vernier Effect [J].
Deng, Jun ;
Wang, D. N. .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2019, 37 (19) :4935-4939
[5]   A high sensitivity optical fiber strain sensor based on hollow core tapering [J].
Dong, Leigang ;
Gang, Tingting ;
Bian, Ce ;
Tong, Rongxin ;
Wang, Jie ;
Hu, Manli .
OPTICAL FIBER TECHNOLOGY, 2020, 56
[6]   Optical Vernier Effect: Recent Advances and Developments [J].
Gomes, Andre D. ;
Bartelt, Hartmut ;
Frazao, Orlando .
LASER & PHOTONICS REVIEWS, 2021, 15 (07)
[7]   Hollow microsphere combined with optical harmonic Vernier effect for strain and temperature discrimination [J].
Gomes, Andre D. ;
Ferreira, Marta S. ;
Bierlich, Joerg ;
Kobelke, Jens ;
Rothhardt, Manfred ;
Bartelt, Hartmut ;
Frazao, Orlando .
OPTICS AND LASER TECHNOLOGY, 2020, 127
[8]   Tilted long-period fiber grating strain sensor based on dual-peak resonance near PMTP [J].
Guan, Tianqi ;
Gu, Zhengtian ;
Ling, Qiang ;
Feng, Wenbin .
OPTICS AND LASER TECHNOLOGY, 2019, 114 :20-27
[9]   Temperature-insensitive optical fiber strain sensor with ultra-low detection limit based on capillary-taper temperature compensation structure [J].
Lang, Changpeng ;
Liu, Yi ;
Cao, Kunjian ;
Qu, Shiliang .
OPTICS EXPRESS, 2018, 26 (01) :477-487
[10]   Investigation of sensitivity enhancing and temperature compensation for fiber Bragg grating (FBG)-based strain sensor [J].
Li, Ruiya ;
Tan, Yuegang ;
Chen, Yiyang ;
Hong, Liu ;
Zhou, Zude .
OPTICAL FIBER TECHNOLOGY, 2019, 48 :199-206