Please wait a minute...
Chin. Phys. B, 2022, Vol. 31(8): 084204    DOI: 10.1088/1674-1056/ac5889
ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS Prev   Next  

Optical fiber FBG linear sensing systems for the on-line monitoring of airborne high temperature air duct leakage

Qinyu Wang(王沁宇)1, Xinglin Tong(童杏林)2,†, Cui Zhang(张翠)2, Chengwei Deng(邓承伟)2, Siyu Xu(许思宇)2, and Jingchuang Wei(魏敬闯)2
1 School of Information Engineering, Wuhan University of Technology, Wuhan 430070, China;
2 National Engineering Laboratory for Fiber Optic Sensing Technology, Wuhan University of Technology, Wuhan 430070, China
Abstract  Electrical sensing systems, such as those involving eutectic salt, are mostly used in connection to leakage from existing airborne high-temperature air-conducting pipelines. Such complex structured systems are susceptible to external interferences and, thus, cannot meet the increasingly strict monitoring needs of a complex air-conducting pipeline system of an aircraft. In view of this point, this paper studies an alternative sensor system based on a dense array fiber grating. To obtain a compact and light-weight airborne signal processing system, a field programmable gate array is used as the main control core that controls the output of the light source. The functions of pulse modulation, analog-to-digital conversion, data buffering and transmission are integrated into a single system, while the linear sensing monitoring is obtained by detecting the time-division and wavelength-division wavelength drift signals of the fiber Bragg grating array. Our experiments show that the spatial resolution of the linear sensing system approaches 5 cm, the temperature measurement accuracy reaches 2 ℃, the temperature measurement range is between 0-250 ℃, and the response time is within 4 s. Compared with the existing electrical monitoring systems, various monitoring indicators have been greatly improved and have broad application prospects.
Keywords:  gating array      quasi-distributed measurement      temperature monitoring      prague grating      miniaturization  
Received:  08 October 2021      Revised:  16 February 2022      Accepted manuscript online:  25 February 2022
PACS:  42.81.-i (Fiber optics)  
  42.81.Cn (Fiber testing and measurement of fiber parameters)  
  42.55.Wd (Fiber lasers)  
  07.60.Vg (Fiber-optic instruments)  
Corresponding Authors:  Xinglin Tong     E-mail:  tongxinglin@whut.edu.cn

Cite this article: 

Qinyu Wang(王沁宇), Xinglin Tong(童杏林), Cui Zhang(张翠), Chengwei Deng(邓承伟), Siyu Xu(许思宇), and Jingchuang Wei(魏敬闯) Optical fiber FBG linear sensing systems for the on-line monitoring of airborne high temperature air duct leakage 2022 Chin. Phys. B 31 084204

[1] Wang W J, Xue J F and Zhang M J 2020 Aer Scie Technol. 95 101 (in Chinese)
[2] Bai Z Y, Zhang W G, Gao S C, Zhang H, Wang L and Liu F 2015 Opt. Fiber Technol. 21 110
[3] Yan L H, Ming L D, Guang K S and Fan Y M 2019 Opt. Fiber Technol. 48 179
[4] Laine E M, Piilo J and Breuer H P 2010 Phys. Rev. A 81 062115
[5] Datta A, Augustin M J, Gaddikeri K M, Viswamurthy S R, Gupta N and Sundaram R 2021 Opt. Fiber Technol. 66 102651
[6] Ying K, Gui Y Z and Sun Y G 2019 Acta Phys. Sin. 68 060602 (in Chinese)
[7] Iele A, Leone M, Consales M, et al. 2018 Sensors and Actuators A:Physical. 281 31
[8] Han K 2014 Aer Scie Technol. 9 13 (in Chinese)
[9] Kim T Y, Hanawa M, Kim S J, Hann S, Kim Y H, Han W T and Park C S 2006 Opt. Express 14 4250
[10] Breuer H P, Laine E M and Piilo J 2009 Phys. Rev. Lett. 103 210401
[11] An H, Cui X, Wen P, Lin X, Liu H, Pun E Y B and Chung P S 1997 Chin. Phys. Lett. 14 187
[12] Qin J L 2019 Chin. Phys. B 28 126701
[13] Alcock K M, Grammel M, González-VilaÁ, et al. 2021 Sensors and Actuators A:Physical. 332 113061
[14] Prieto-Cortés P, Álvarez-Tamayo R I, García-Méndez M and Durán-Sánchez M 2019 Sensors 19 4189
[15] Zhang J, Shen X, Qian M, et al. 2021 Opt. Fiber Technol. 61 102406
[16] Min L, Biao F and Ji W Y 2019 Chin. Phys. B 28 114201
[17] Ando M, Kobayashi T, Ijima S and Haruta M 2003 Sensors Actuators B Chem. 96 589
[18] Wu Q, Wang Y, Huang W, Wang C, Zheng Z, Zhang M and Zhang H 2020 Photon. Res. 8 1140
[19] Xie Z, Yan H, Li Y and Zhao X 2020 Opt. Fiber Technol. 57 102220
[20] Luo X, Li Y, Zhang J and Gao H 2021 Opt. Fiber Technol. 66 102649
[21] Shao M, Sun H, Zhang R, Li L, Liu Y and Qiao X 2022 Opt. Fiber Technol. 68 102782
[1] A compact and closed-loop spin-exchange relaxation-free atomic magnetometer for wearable magnetoencephalography
Qing-Qian Guo(郭清乾), Tao Hu(胡涛), Xiao-Yu Feng(冯晓宇), Ming-Kang Zhang(张明康), Chun-Qiao Chen(陈春巧), Xin Zhang(张欣), Ze-Kun Yao(姚泽坤), Jia-Yu Xu(徐佳玉),Qing Wang(王青), Fang-Yue Fu(付方跃), Yin Zhang(张寅), Yan Chang(常严), and Xiao-Dong Yang(杨晓冬). Chin. Phys. B, 2023, 32(4): 040702.
[2] Design of a low-frequency miniaturized piezoelectric antenna based on acoustically actuated principle
Yong Zhang(张勇), Zhong-Ming Yan(严仲明), Tian-Hao Han(韩天浩), Shuang-Shuang Zhu(朱双双), Yu Wang(王豫), and Hong-Cheng Zhou(周洪澄). Chin. Phys. B, 2022, 31(7): 077702.
No Suggested Reading articles found!