An intrinsic optical-fiber position sensor with schemes for temperature compensation and resolution enhancement

1997 ◽  
Vol 15 (2) ◽  
pp. 261-266 ◽  
Author(s):  
Shiping Chen ◽  
B.T. Meggitt ◽  
A.W. Palmer ◽  
K.T.V. Grattan ◽  
R.A. Pinnock
2009 ◽  
Vol 31 (7) ◽  
pp. 1101-1104 ◽  
Author(s):  
P. Aiestaran ◽  
V. Dominguez ◽  
J. Arrue ◽  
J. Zubia

1996 ◽  
Author(s):  
Robert D. LaClair ◽  
William B. Spillman, Jr. ◽  
W. W. Kuhns ◽  
Mark S. Miller

Materials ◽  
2019 ◽  
Vol 12 (4) ◽  
pp. 552 ◽  
Author(s):  
Wenhua Wang ◽  
Xinlei Zhou ◽  
Weina Wu ◽  
Jihua Chen ◽  
Shenlong He ◽  
...  

In this paper, an optical fiber pressure sensor cascading a diaphragm-assisted Fabry-Perot interferometer (FPI) and a fiber Bragg grating (FBG) is proposed and demonstrated. The sensor comprises an optical fiber, a fused-silica ferrule, and a fused-silica diaphragm. We use a femtosecond laser firstly to fabricate a pit on the end face of the ferrule and then investigate the laser heat conduction welding and deep penetration welding technology for manufacturing the seepage pressure sensor of the all-fused-silica material. We develop a sensor based on a monolithic structured FPI without adhesive bonding by means of all-laser-welding. The pressure characteristics of the sensor have good linearity at different temperatures. Also, the monolithic structured sensor possesses excellent resolution, hysteresis, and long-term stability. The environmental temperature obtained by the FBG is employed to compensate for the difference in seepage pressure at different temperatures, and the difference in seepage pressure responses at different temperatures is shown to be very small after temperature compensation.


2018 ◽  
Vol 22 (6) ◽  
pp. 1444-1452
Author(s):  
Shengyuan Li ◽  
Haifeng Lv ◽  
Yachuan Kuang ◽  
Nianchun Deng ◽  
Changsen Sun ◽  
...  

This article proposes a novel white-light interference (WLI) force-monitoring ring for bridge cable force monitoring and temperature compensation. The WLI force-monitoring ring employs a sensing optical fiber wrapped around the outer surface of an elastomer to measure the expansion caused by applied load and temperature. By installing WLI force-monitoring ring between the anchor plate and the spherical plate of the cable, cable force can be captured by the sensing optical fiber and thus measured after temperature compensation. Based on white-light interferometry, two force-monitoring rings with resolution of 0.25 µ are designed. To find a route to temperature compensation, laboratory experiments are carried to study the effects of temperature on WLI force-monitoring ring both in free and forced states. Theoretical analysis and calibration experiments are implemented to verify the effectiveness of the proposed WLI force-testing ring, and the experiment results expose that the temperature-induced strain can be compensated using a WLI force-monitoring ring in free state. As a comparison, similar work is made for four fiber Bragg grating sensors attached to the elastomer evenly near the sensing optical fiber. The comparison results verify that the WLI method achieves better linear relation and repeatability than fiber Bragg grating. The WLI force-monitoring ring provides a high-precision and low-cost method for bridge cable force monitoring.


Author(s):  
Heng Xu ◽  
Hamid Dehghani ◽  
Brian W. Pogue ◽  
Keith D. Paulsen ◽  
Jeff F. Dunn

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