光通信技术, 2022, 46 (3): 1, 网络出版: 2022-07-21  

级联双光纤光栅的传感技术应用综述

Review on the application of cascaded double fiber grating sensing technology
作者单位
中国计量大学 光学与电子科技学院, 杭州 310018
摘要
为了全面了解级联双光纤光栅(CFG)传感器的研究现状, 从测量温度、应变和折射率的传感应用出发, 详细介绍和对比了级联双光纤布喇格光栅(FBG)、级联双长周期光纤光栅(LPG)以及级联LPG+FBG这3种CFG传感器, 总结出了现阶段CFG传感器的技术优势和存在的难点, 最后对CFG传感器的技术发展进行了展望。
Abstract
In order to fully understand the research status of cascaded double fiber Bragg grating(CFG) sensor, from the measurement of temperature, strain and refractive index sensor application, the cascaded double Fiber Bragg grating(FBG), cascaded double long period fiber grating(LPG) and cascaded LPG+FBG three CFG sensors are introduced and compared in detail. Summarized the technical advantages and difficulties of CFG sensor at the present stage, finally, the development of CFG sensor technology is prospected.
参考文献

[1] FANG Y, HE W, ZHANG W, et al. All-fiber temperature and refractive index sensor based on a cascaded tilted Bragg grating and a Bragg grating[J]. Journal of Optical Technology c/c of Opticheskii Zhurnal, 2021, 88(2): 100-105.

[2] 冯显桂. 级联光纤光栅的特性及应用研究[D]. 成都: 西南交通大学, 2009.

[3] AHMED F, ASHRAF A, FATHY M, et al. An enhanced WDM optical communication system using a cascaded fiber Bragg grating[J]. Opt. Quant Electron, 2020, 52: 1-21.

[4] XIAOLING T, YOUFU G, XUEJIN L. High-birefringence photonic crystal fiber Michelson interferometer with cascaded fiber Bragg grating for pressure and temperature discrimination[J]. Optical Engineering, 2016, 55(9): 1-3.

[5] GU H, LI X, WANG X. High precision differential measurement of dyeconcentration based on two cascaded FBGs[J]. Applied Optics, 2019, 59(2): 413-417.

[6] JACOBSSON B, TIIHONEN M, LAURELL F, et al. Narrow band bulk Bragg grating optical parametric oscillator[J]. Optics Letters, 2005, 30(17): 2281-2283.

[7] 李想. 基于两级联光纤光栅的染料浓度高精度差分测量[D]. 天津: 天津工业大学, 2019.

[8] SAYED A F, KHALAF A, ALY M, et al. Spectral width reduction using apodized ca-scaded fiber Bragg grating for post-dispersion compensation in WDM optical network-s[J]. Photonic Network Communications, 2021(6): 1-11.

[9] WU M, CHEN S, YING L, et al. Wavelength switchable graphene Q-

[10] BAI X, HU M, GANG T, et al. Simultaneous acoustic and magnetic measurement usi-ng cascaded fibre Bragg grating[J]. Optical Fiber Technology, 2018, 45: 376-382.

[11] 刘子溪. 基于飞秒激光微孔的光纤光栅折射率及温度传感器件的研究[D]. 广州: 暨南大学, 2019.

[12] 宁提纲, 傅永军, 谭中伟, 等. 光纤光栅级联时延特性的研究[J]. 中国激光, 2004(1): 77-80.

[13] SAIMON S M, ABDULLAH A S, AHMAD S, et al. Simultaneous measurement of high refractive index and temperature based on SSRS-FBG[J]. IEEE Photonics Technology Letters, 2021(9): 715-718.

[14] PEREIRA D A, FRAZAO O, JOSE L, et al. Fiber Bragg grating sensing system for simultaneous measurement of salinity and temperature[J]. Optical Engineering, 2004, 43(2): 299-304.

[15] 赵洪霞, 程培红, 鲍吉龙, 等. 一种两段式FBG应变和温度同步测量的实现[J]. 光电子·激光, 2014, 25(6): 1071-1074.

[16] KUMAR J, MAHAKUD R, KUMAR S, et al. Analysis and experiment on simultaneo-us measurement of strain and temperature by etched and unetched FBG pair[J]. Results in Optics, 2021(8): 1-8.

[17] SONG B, JIN C, WANG B, et al. Hydrophobin HGFI assisted immunobiologic sensor based on cascaded tapers integrated ultra-long-period fiber grating[J]. Biomedical Optics Express, 2021, 12(5): 2790-2799.

[18] CAUCHETEUR C, WUILPART M, ALBERT J, et al. Quasi-distributed refractometer using tilted Bragg gratings and time domain reflecotmetry[J]. Optics Express, 2008, 16(22): 17882-17890.

[19] 王金豆, 葛海波, 李彩虹, 等. 不同参量的倾斜布喇格光栅级联传输谱特性研究[J]. 光通信技术, 2019, 43(9): 39-42.

[20] YITAO F, WEI H, WEN Z, et al. All-fiber temperature and refractive index sensor based on a cascaded tilted Bragg grating and a Bragg grating.[J]. Opt. Technol, 2021, 88: 100-105.

[21] 李元鹏. 竹节状长周期光纤光栅的制备与传感特性研究[D]. 广州: 暨南大学, 2020.

[22] WANG J, XU Q, RUIRONG W. Temperature-compensated single-ended twist sensor based on cascaded fiber grating[J]. Optical Engineering, 2020, 59(9): 1-11.

[23] 姜凤贤. 级联光纤光栅传感机理与实验研究[D]. 秦皇岛: 燕山大学, 2015.

[24] GUO J C, XUE Y, CHEN C, et al. Compact long-period fiber gratings based on periodic microchannels[J]. IEEE Photonics Technology Letters, 2013, 25(2): 111-114.

[25] 胡兴柳, 梁大开, 李丹, 等. 级联长周期光纤光栅的温度特性研究[J]. 光电子激光, 2012(9): 1659-1664.

[26] WU W, GU Z, LING Q, et al. Design of a narrow-bandwidth refractive index sensor based on a cascaded few-mode long-period fiber grating[J]. Applied Optics, 2019, 58(32): 8726-8732.

[27] KIM D K, LEE S L, CHOI S, et al. Bend-insensitive simultaneous measurement of strain and temperature based on cascaded long-period fiber gratings inscribed on a polarization maintaining photonic crystal fiber[J].Journal-Korean Physical Society, 2020, 76(9): 810-818.

[28] HAN J, KIM J, LEE S L, et al. Strain-insensitive simultaneous measurement of bending and temperature based on cascaded long-period fiber gratings inscribed on double-clad fiber[J]. IEEE Sensors Journal, 2020(99): 1-1.

[29] 胡兴柳, 梁大开, 王彦, 等. 应用于液体检测的级联长周期光纤光栅的温度减敏封装结构[J]. 光电子·激光, 2013, 24(10): 1895-1899.

[30] 陈美娟, 李传起, 罗德俊, 等. 高灵敏度级联长周期光纤光栅温度与应变传感的理论研究[J]. 量子电子学报, 2015, 32(2): 228-234.

[31] FUKUSHIMA K, HUNG B, NAKAYA K, et al. EDF ring laser using cascaded-chirped long period fiber grating for temperature measurement[J]. Optics Express, 2020, 28(9): 13081-13090.

[32] SONG H, GAO H L, ZHAO X W, et al. Characteristics of novel tail ring-shaped cascaded long period fiber grating sensor-ScienceDirect[J]. Optical Fiber Technology, 2020, 55: 1-6.

[33] 付兴虎, 黄书铭, 王宇凡, 等. 基于粗锥结构级联LPG的双包层光纤多参量传感器[J]. 光子学报, 2021, 50(1): 83-93.

[34] 苏怡. 级联长周期光纤光栅设计及气(液)环境监测[D]. 哈尔滨: 哈尔滨工业大学, 2019.

[35] 焦冬莉, 郭文静, 薄晓宁, 等.基于双周期光纤光栅的温度/折射率双参量传感器[J]. 光学技术, 2019, 45(4): 458-462.

[36] 缪松岑. 分布式级联长周期光纤光栅解调复用的系统设计实现[D]. 南京: 南京邮电大学, 2020.

[37] SONG H, GAO H L, ZHAO X W, et al. Characteristics of novel tail ring-shaped cas-caded long period fiber grating sensor-sciencedirect[J]. Optical Fiber Technology, 2020, 55: 1-6.

[38] 李彩虹, 葛海波, 侯元萌, 等. 一种级联长周期光纤光栅动态解调光纤布喇格光栅的新方法[J]. 光通信技术, 2019, 43(8): 52-54.

[39] 高敏, 葛海波, 李盼盼, 等. 不同长周期光栅的级联传输谱特性[J]. 光通信技术, 2018, 42(11): 56-59.

[40] XIAN L, LI L, WANG D. Torsion and strain simultaneous measurement using a cascaded helical long period grating[J]. Journal of the Optical Society of America B, 2020, 37(5): 1307-1311.

[41] 罗霄. 基于级联长周期光纤光栅的分布式FBG解调系统研究[D]. 南京: 南京邮电大学, 2016.

[42] KAILI R, MINHUI C, JUN D, et al. Ultra-broadband conversion of OAM mode near the dispersion turning point in helical fiber gratings[J]. OSA Continuum 2020(3): 77-87.

[43] WU W, GU Z, LING Q, et al. Design of a narrow-bandwidth refractive index sensor based on a cascaded few-mode long-period fiber grating[J]. Applied Optics, 2019, 58(32): 8726-8732.

[44] FUKUSHIMA K, HUNG B, NAKAYA K, et al. EDF ring laser using cascaded-chirped long period fiber grating for temperature measurement[J]. Optics Express, 2020, 28(9): 13081-13090.

[45] 蒋磊. 基于级联光纤布拉格光栅的盾构机刀头磨损检测研究[D]. 天津: 天津大学, 2019.

[46] 曹莹, 顾铮先. 级联长周期光纤光栅和Bragg光纤光栅的光学特性[J]. 中国激光, 2012, 39(4): 97-104.

[47] WEN Z, HAO J, LOU X, et al. All-fiber dual-parameter sensor based on cascaded long period fiber grating pair fabricated by femtosecond laser and CO2 laser[J]. Fiber & Integrated Optics, 2018, 37(9): 1-13.

[48] TIAN J, LIU S, YU W, et al. Microfiber Bragg grating for temperature and strain sensing applications[J]. Photonic Sensors, 2017, 7(1): 44-47.

[49] ZHANG A P, TAO X M, BAIOU G, et al. Cladding-mode-assisted recouplings in concatenated long-period and fiber Bragg gratings[J]. Optics Letters, 2002, 27(14): 1214-1216.

[50] LIU Y, LI Y, FAN Z, et al. Analysis on strain sensing characteristic of long period fibre grating based on deep-grooved process[J]. Optica Acta International Journal of Optics, 2017, 64(7): 672-680.

[51] MING H, FAWEN G, YONGFENG L. Optical fiber refractometer based on cladding mode Bragg grating[J]. Optics Letters, 2010, 35(3): 399-401.

[52] 王燕涛, 姜凤贤, 齐跃峰, 等. 基于级联光栅温度补偿的溶液浓度测量研究[J]. 光电工程, 2015, 42(5): 63-67.

[53] 张雯, 刘小龙, 何巍, 等. 基于双光栅级联结构的温度及浓度传感特性测试[J]. 红外与激光工程, 2017, 46(9): 225-231.

[54] 张雯, 刘小龙, 何巍, 等. LPG和FBG级联结构双参数光纤传感器研究[J]. 仪器仪表学报, 2017, 38(8): 2047-2054.

[55] WEN Z, LOU X P, DONG M L, et al. Optical fiber sensor by cascading long period fibergrating with FBG for double parameters measurement[J]. Optoelectronics Letters, 2017, 34(1): 140-145.

[56] 李盼盼, 葛海波, 高敏, 等. 基于LPG-FBG级联结构的温湿度传感研究[J]. 光通信技术, 2019, 43(4): 54-57.

[57] BO P, ZHENGTIAN G, YUAN Z, et al. Simultaneous measurement of temperature andsurrounding refractive index by superimposed coated long period fiber grating and fiber Bragg grating sensor based on mode barrier region[J]. Optik, 2020, 220: 16-24.

[58] SUO R, LOUSTEAU J, LI H, et al. Fiber Bragg gratings inscribed using 800 nm femtosecond laser and a phase mask in single and multi-core mid-IR glass fibers[J]. Optics Express, 2009, 17(9): 7540-7548.

[59] 郑钟铭. 基于飞秒激光直写法制备的长周期光纤光栅的传感特性研究[D]. 长春: 吉林大学, 2018.

冯森林, 刘月明, 涂帆. 级联双光纤光栅的传感技术应用综述[J]. 光通信技术, 2022, 46(3): 1. FENG Senlin, LIU Yueming, TU Fan. Review on the application of cascaded double fiber grating sensing technology[J]. Optical Communication Technology, 2022, 46(3): 1.

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