Relative slipping at the interfaces of the flexible fiber Bragg grating sensor

被引:6
|
作者
Jin Ping [1 ]
Wang Yan [1 ]
Qin Nan [1 ]
Fang Ting [1 ]
Wang Haitao [2 ]
机构
[1] Anhui Univ Technol, Sch Elect & Informat Engn, Maanshan 243000, Peoples R China
[2] Second Construct Co Ltd, China Construct First Grp, Beijing 100161, Peoples R China
关键词
A;
D O I
10.1007/s11801-021-1014-5
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
To discuss the relative slipping at the interface between a flexibly embedded fiber Bragg grating sensor and a substrate, the strain transfer was derived for an ideal case between the materials of an embedded fiber sensor. ANSYS software was used to establish a simulation model and to analyze the effects of the axial tensile force and the semi-embedded length and encapsulation substrate for the axial strain relative errors with and without relative slipping. The results of the numerical simulations show that the relative strain errors are smaller at the ends of the fibers and larger in the middle for the same tensile force, indicating that the strain transfer effect is location dependent and that the choice of a semi-embedded length of the fibers greater than 40 mm helps to reduce the relative errors. Meanwhile, five flexible sensors with different half-embedding lengths were experimentally encapsulated and subjected to axial tension-strain experiments, which showed the best strain transfer at a half-embedding length of 60 mm, and the experimental results were consistent with the numerical simulation results. The experimental results provide some theoretical and experimental basis for parameter optimization of flexible fiber grating sensors.
引用
收藏
页码:604 / 610
页数:7
相关论文
共 50 条
  • [1] Relative slipping at the interfaces of the flexible fiber Bragg grating sensor
    金萍
    王彦
    秦楠
    方挺
    王海涛
    OptoelectronicsLetters, 2021, 17 (10) : 604 - 610
  • [2] Relative slipping at the interfaces of the flexible fiber Bragg grating sensor
    Ping Jin
    Yan Wang
    Nan Qin
    Ting Fang
    Haitao Wang
    Optoelectronics Letters, 2021, 17 : 604 - 610
  • [3] Research progress of fiber Bragg grating flexible sensor: A Review
    Xu Xiaoqiang
    Song Ziqi
    Mao Yan
    Du Yang
    PROCEEDINGS OF THE 33RD CHINESE CONTROL AND DECISION CONFERENCE (CCDC 2021), 2021, : 3150 - 3157
  • [4] Fiber Bragg Grating Sensor and Waveguide Grating Sensor
    Long, Pin
    PHOTONICS NORTH 2011, 2011, 8007
  • [5] Fiber Bragg grating curvature sensor based on flexible composite matrix
    Zhang X.
    Song Y.
    Sun G.
    Meng F.
    Dong M.
    Hongwai yu Jiguang Gongcheng/Infrared and Laser Engineering, 2019, 48 (02):
  • [6] Fiber Bragg grating as a UVA sensor
    Lesiak, P.
    Widomski, A.
    Szelagowski, L.
    Sobotka, P.
    Duzynska, A.
    Wroblewska, A.
    Markowski, K.
    Osuch, T.
    Wolinski, T. R.
    PHOTONICS LETTERS OF POLAND, 2018, 10 (01) : 14 - 16
  • [7] Fiber Bragg grating deflection sensor
    Lu, Ping
    Men, Liqiu
    Chen, Qiying
    PHOTONICS NORTH 2008, 2008, 7099
  • [8] FIBER BRAGG GRATING LASER SENSOR
    OTHONOS, A
    ALAVIE, AT
    MELLE, S
    KARR, SE
    MEASURES, RM
    OPTICAL ENGINEERING, 1993, 32 (11) : 2841 - 2846
  • [9] Development and performance study of fiber Bragg grating flexible cable strain sensor
    Zhou Z.
    He J.
    Zhang Y.
    Yu J.
    Zhang S.
    Optik, 2023, 273
  • [10] Wearable Sensor based on Fiber Bragg Grating with Flexible Polymer for Squat Exercise
    Shin, Dongjoo
    Kim, Taesung
    2021 IEEE INTERNATIONAL WORKSHOP ON METROLOGY FOR INDUSTRY 4.0 & IOT (IEEE METROIND4.0 & IOT), 2021, : 478 - 481