Multi-Wavelength Ultra-Weak Fiber Bragg Grating Arrays for Long-Distance Quasi-Distributed Sensing

Wenjing Gao , Jianxia Liu , Huiyong Guo , Xin Jiang , Shaofa Sun , Haihu Yu

Photonic Sensors ›› 2021, Vol. 12 ›› Issue (2) : 185 -195.

PDF
Photonic Sensors ›› 2021, Vol. 12 ›› Issue (2) : 185 -195. DOI: 10.1007/s13320-021-0635-4
Regular

Multi-Wavelength Ultra-Weak Fiber Bragg Grating Arrays for Long-Distance Quasi-Distributed Sensing

Author information +
History +
PDF

Abstract

Fiber Bragg grating (FBG) array, consisting of a number of sensing units in a single optical fiber, can be practically applied in quasi-distributed sensing networks. Serious signal crosstalk occurring between large-serial of identical FBGs, however, has limited the further increase in the number of sensing units, thus restricting applications only for short-distance sensing networks. To reduce the signal crosstalk, we design two novel types of 10-kilometer-long FBG arrays with 10 000 equally spaced gratings, written on-line using a customized grating inscription system, which is affiliated to a drawing tower. Main factors causing signal crosstalk, such as spectral shadowing and multiple reflections, are firstly investigated in theory. Consistent with the theoretical findings, experimental results are proving that ultra-weak (the reflectivity of ∼−40 dB) and multi-wavelength gratings of a number more than 10 000 can be readily identified, with satisfied low crosstalk. The maximum attenuation of grating signal and minimum signal-to-noise ratio (SNR) in a single-wavelength array are 10.69 dB and 5.62 dB, respectively. As a comparison, by increasing the number of central wavelengths to three, the attenuation can be effectively reduced to 5.54 dB and the minimum SNR has been improved to 8.14 dB. The current study significantly enhances the multiplexing capacity of FBG arrays and demonstrates promising potentials for establishing large-capacity quasi-distributed sensing networks.

Keywords

Multi-wavelength gratings array / large scale sensing network / crosstalk / ultra-weak grating

Cite this article

Download citation ▾
Wenjing Gao, Jianxia Liu, Huiyong Guo, Xin Jiang, Shaofa Sun, Haihu Yu. Multi-Wavelength Ultra-Weak Fiber Bragg Grating Arrays for Long-Distance Quasi-Distributed Sensing. Photonic Sensors, 2021, 12(2): 185-195 DOI:10.1007/s13320-021-0635-4

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Ukil A, Braendle H, Krippner P. Distributed temperature sensing: review of technology and applications. IEEE Sensors Journal, 2011, 12(5): 885-892.

[2]

Bense V F, Read T, Bour O, Le Borgne T, Coleman T, Krause S, . Distributed temperature sensing as a downhole tool in hydrogeology. Water Resources Research, 2016, 30, 1017-1035.

[3]

Dreyer U J, Mezzadri F, Dutra G, da Silva T, Bavastri C A, Vagner E, . Quasi-distributed optical fiber transducer for simultaneous temperature and vibration sensing in high-power generators. IEEE Sensors Journal, 2018, 18(4): 1547-1554.

[4]

Guo H, Xiao G, Mrad N, Yao J. Fiber optic sensors for structural health monitoring of air platforms. Sensors, 2011, 11(4): 3687-3705.

[5]

Liu X, Sun Q, Wo J, Zhang M, Liu D. Hybrid TDM/WDM-based fiber-optic sensor network for perimeter intrusion detection. Journal of Lightwave Technology, 2012, 30(8): 1113-1120.

[6]

Lee B. Review of the present status of optical fiber sensors. Optical Fiber Technology, 2003, 9(2): 57-79.

[7]

Saxena M K, Raju S D, Arya R, Ravindranath S V G, Kher S, Oak S M. Optical fiber distributed temperature sensor using short term Fourier transform based simplified signal processing of Raman signals. Measurement, 2014, 47, 345-355.

[8]

Zhang L, Wang Z, Li J, Zeng J, Li Y, Jia X, . Ultra-long dual-sideband BOTDA with balanced detection. Optics and Laser Technology, 2015, 68, 206-210.

[9]

Jiang J, Xiong J, Wang Z, Wang Z, Qiu Z, Liu C, . Quasi-distributed fiber-optic acoustic sensing with MIMO technology. IEEE Internet of Things Journal, 2021, 8, 1.

[10]

Wang Z, Jiang J, Xiong J, Xiong J, Qiu Z, Liu C, . Quasi-distributed acoustic sensing with interleaved identical chirped pulses for multiplying the measurement slew-rate. Optics Express, 2020, 28(26): 38465-38479.

[11]

Laffont G, Cotillard R, Ferdinand P. Multiplexed regenerated fiber Bragg gratings for high-temperature measurement. Measurement Science and Technology, 2013, 24(9): 094010.

[12]

Kinet D, Patrice M, Goossen K W, Qiu L, Heider D, Caucheteur C. Fiber Bragg grating sensors toward structural health monitoring in composite materials: challenges and solutions. Sensors, 2014, 14(4): 7394-7419.

[13]

Wang Y, Gong J, Wang D Y, Dong B, Bi W, Wang A. A quasi-distributed sensing network with time-division-multiplexed fiber Bragg gratings. IEEE Photonics Technology Letters, 2010, 23(2): 70-72.

[14]

Cooper D J F, Coroy T, Smith P W E. Time-division multiplexing of large serial fiber-optic Bragg grating sensor arrays. Applied Optics, 2001, 40(16): 2643-2654.

[15]

Dai Y, Liu Y, Leng J, Deng G, Asundi A. A novel time-division multiplexing fiber Bragg grating sensor interrogator for structural health monitoring. Optics and Lasers in Engineering, 2009, 47(10): 1028-1033.

[16]

Guo H, Qian L, Zhou C, Zheng Z, Yuan Y, Xu R, . Crosstalk and ghost gratings in a large-scale weak fiber Bragg grating array. Journal of Lightwave Technology, 2017, 35(10): 2032-2036.

[17]

Wang W, Gong J, Dong B, Wang D Y, Shillig T J, Wang A. A large serial time-division multiplexed fiber Bragg grating sensor network. Journal of Lightwave Technology, 2012, 30(17): 2751-2756.

[18]

Luo Z, Wen H, Guo H, Yang M. A time- and wavelength-division multiplexing sensor network with ultra-weak fiber Bragg gratings. Optics Express, 2013, 21(19): 22799-22807.

[19]

Askins C G, Putnam M A, Patrick H J, Friebele E J. Fibre strength unaffected by on-line writing of single-pulse Bragg gratings. Electronics Letters, 1997, 33(15): 1333-1334.

[20]

Ma L, Ma C, Wang Y, Wang D Y, Wang A. High-speed distributed sensing based on ultra weak FBGs and chromatic dispersion. IEEE Photonics Technology Letters, 2016, 28(12): 1344-1347.

[21]

Guo H, Tang J, Li X, Zheng Y, Yu H, Yu H. On-line writing identical and weak fiber Bragg grating arrays. Chinese Optics Letters, 2013, 11(3): 030602.

[22]

Guo H, Liu F, Yuan Y, Yu H, Yang M. Ultra-weak FBG and its refractive index distribution in the drawing optical fiber. Optics Express, 2015, 23(4): 4829-4838.

[23]

Zheng Y, Yu H, Guo H, Li X, Jiang D. Analysis of the spectrum distortions of weak fiber Bragg gratings fabricated in-line on a draw tower by the phase mask technique. Journal of Lightwave Technology, 2014, 33(12): 2670-2673.

AI Summary AI Mindmap
PDF

141

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/