A novel fiber optic temperature monitoring sensor using hard-polymer-clad fiber and an optical time-domain reflectometer

被引:5
作者
Kim, Hyeong-Cheol [1 ]
Lee, Jung-Ryul [1 ]
机构
[1] Chonbuk Natl Univ, LANL CBNU Engn Inst Korea, Dept Aerosp Engn, 664-14 Duckjin Dong, Jeonju 561756, Chonbuk, South Korea
关键词
Hard-polymer-clad fiber; optical time-domain reflectometer; temperature monitoring sensor; laser clad stripping method; SYSTEM;
D O I
10.1177/1045389X13507350
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Hard-polymer-clad fiber is a specific type of optical fiber, in which a hard polymer cladding made of fluoroacrylate acts as a protective coating for an inner silica core. An optical time-domain reflectometer is an optical loss measurement system that provides optical loss and event distance measurement in real time. This study proposes a novel fiber optic temperature monitoring sensor system using an economical optical time-domain reflectometer and hard-polymer-clad fiber. Sensor nodes were economically and quickly made by locally stripping hard-polymer-clad fiber clad through photothermal and photochemical processes using a continuous/pulse hybrid-mode laser. The core length exposed was easily controlled by adjusting the laser beam diameter, and the exposed core created a backscattering signal in the optical time-domain reflectometer attenuation trace. The backscattering peak was sensitive to the temperature variation. Since the elaborated hard-polymer-clad fiber temperature sensor was insensitive to strain applied to the sensor node and to temperature variation in the normal hard-polymer-clad fiber line, neither strain compensation nor isolation technique is required. These characteristics are important advantages for using as structure-integrated temperature sensors. The performance characteristics of the sensor nodes included an operating range of up to 120 degrees C, a resolution of 1.52 degrees C, a tensile strain resistance of 13%, and a temperature sensitivity of -0.01 dB/degrees C.
引用
收藏
页码:654 / 661
页数:8
相关论文
共 14 条
[1]  
Aguilar-Soto J. G., 2011, Journal of Physics: Conference Series, V274, DOI 10.1088/1742-6596/274/1/012011
[2]  
Alexis M, 2007, SPECIALTY OPTICAL FI, P572
[3]  
Alexis M, 2007, 4 NDT PAN AM C OCT 2, V1, P1
[4]   Fiber optic sensors for predictive health monitoring [J].
Borinski, JW ;
Boyd, CD ;
Dietz, JA ;
Duke, JC ;
Horne, MR .
IEEE SYSTEMS READINESS TECHNOLOGY CONFERENCE: 2001 IEEE AUTOTESTCON PROCEEDINGS, 2001, :250-262
[5]   OTDR fiber-optical chemical sensor system for detection and location of hydrocarbon leakage [J].
Buerck, J ;
Roth, S ;
Kraemer, K ;
Mathieu, H .
JOURNAL OF HAZARDOUS MATERIALS, 2003, 102 (01) :13-28
[6]  
Enbang L, 2006, APPL PHYS LETT, V89, P1
[7]   A strain-isolated fibre Bragg grating sensor for temperature compensation of fibre Bragg grating strain sensors [J].
Haran, FM ;
Rew, JK ;
Foote, PD .
MEASUREMENT SCIENCE AND TECHNOLOGY, 1998, 9 (08) :1163-1166
[8]   FIBEROPTIC BRAGG-GRATING DIFFERENTIAL-TEMPERATURE SENSOR [J].
KERSEY, AD ;
BERKOFF, TA .
IEEE PHOTONICS TECHNOLOGY LETTERS, 1992, 4 (10) :1183-1185
[9]   Hard polymer cladding fiber (HPCF) links for high-speed short reach 1 x 4 passive optical network (PON) based on all-HPCF compatible fused taper power splitter [J].
Kim, DU ;
Bae, SC ;
Kim, J ;
Kim, TY ;
Park, CS ;
Oh, K .
IEEE PHOTONICS TECHNOLOGY LETTERS, 2005, 17 (11) :2355-2357
[10]   Investigation of cladding and coating stripping methods for specialty optical fibers [J].
Lee, Jung-Ryul ;
Dhital, Dipesh ;
Yoon, Dong-Jin .
OPTICS AND LASERS IN ENGINEERING, 2011, 49 (03) :324-330