Development of Fiber-Optic Sensors System, Based on Fiber Bragg Gratings

被引:0
作者
Kalizhanova, Aliya [1 ]
Kunelbayev, Murat [1 ]
Wojcik, Waldemar [2 ]
Kozbakova, Ainur [1 ]
Aitkulov, Zhalau [3 ]
Malikova, Feruza [1 ]
机构
[1] Al Farabi Kazakh Natl Univ, Inst Informat & Computat Technol, Al Farabi Ave 71, Alma Ata 50040, Kazakhstan
[2] Lublin Univ Technol, Ul Nadbystrzycka 40, PL-20618 Lublin, Poland
[3] Acad Logist & Transport, Inst Informat & Computat Technol, Shevchenko St 97, Alma Ata, Kazakhstan
关键词
fiber Bragg grating; sensors; deformation; temperature; modeling; MATLAB (Simulink); CURE; COMPOSITES; TECHNOLOGY;
D O I
10.12911/22998993/152363
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
An article herein considers the development of a fiber-optic sensor system, based on fiber Bragg gratings. Presently, fiber-optic sensors has become world-widely known amongst sensor technologies, used for monitoring engineering and construction structures. The work is linked with developing the system from fiber-optic sensors on the basis of fiber optic gratings, its characteristics, deformation behavior and temperature, acting at fiber Bragg grating by means of computer modeling. The research is focused at the analysis of characteristics and deformation and temperature behavior of fiber-optic Bragg sensor. Fiber-optic Bragg sensor with tilted grating is used for measuring deformation of the object, the strength of which is changed, dependent on the applied force, as well, for measuring and detecting any temperature deviations, influencing at fiber Bragg grating, which might bring to fire and accidents. In the research, simulation modeling there was made in the MATLAB (Simulink) software.
引用
收藏
页码:98 / 106
页数:9
相关论文
共 24 条
[1]   Real time monitoring of cure and gelification of a thermoset matrix [J].
Antonucci, V. ;
Giordano, M. ;
Cusano, A. ;
Nasser, J. ;
Nicolais, L. .
COMPOSITES SCIENCE AND TECHNOLOGY, 2006, 66 (16) :3273-3280
[2]   Thermal isolation of FBG optical fibre sensors for composite cure monitoring [J].
Boateng, E. K. G. ;
Schubel, P. ;
Umer, R. .
SENSORS AND ACTUATORS A-PHYSICAL, 2019, 287 :158-167
[3]   Load and health monitoring in glass fibre reinforced composites with an electrically conductive nanocomposite epoxy matrix [J].
Boeger, Lars ;
Wichmann, Malte H. G. ;
Meyer, Leif Ole ;
Schulte, Karl .
COMPOSITES SCIENCE AND TECHNOLOGY, 2008, 68 (7-8) :1886-1894
[4]  
Chiang CC, 2011, ADVANCES IN COMPOSITE MATERIALS - ANALYSIS OF NATURAL AND MAN-MADE MATERIALS, P345
[5]   Fiber Bragg gratings for low-temperature measurement [J].
de Lima Filho, Elton Soares ;
Baiad, Mohamad Diaa ;
Gagne, Mathieu ;
Kashyap, Raman .
OPTICS EXPRESS, 2014, 22 (22) :27681-27694
[6]   Fabrication of high quality, ultra-long fiber Bragg gratings: up to 2 million periods in phase [J].
Gagne, Mathieu ;
Loranger, Sebastien ;
Lapointe, Jerome ;
Kashyap, Raman .
OPTICS EXPRESS, 2014, 22 (01) :387-398
[7]   On the estimation of error in measuring the residual stress by strain gauge rosette [J].
Giri, A. ;
Pandey, C. ;
Mahapatra, M. M. ;
Sharma, K. ;
Singh, P. K. .
MEASUREMENT, 2015, 65 :41-49
[8]   Fiber optic sensor technology: an overview [J].
Grattan, KTV ;
Sun, T .
SENSORS AND ACTUATORS A-PHYSICAL, 2000, 82 (1-3) :40-61
[9]   Thermal Strain Analysis of Optic Fiber Sensors [J].
Her, Shiuh-Chuan ;
Huang, Chih-Ying .
SENSORS, 2013, 13 (02) :1846-1855
[10]   Fiber Bragg grating technology fundamentals and overview [J].
Hill, KO ;
Meltz, G .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 1997, 15 (08) :1263-1276