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Temperature Compensation of Fiber Bragg Grating Sensors in Smart Strandoa mark
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Publication Year
2022-05-01
Publisher
MDPI
Citation
Sensors, Vol.22
Keyword
FBGfiber Bragg gratingfiber optic sensorprestressed concreteprestressing forceprestressing tendonstrandtemperature compensationtemperature correctionthermal sensitivity
Mesh Keyword
Cable forcesFiber Bragg Grating SensorsFibre-optic sensorHost materialsPrestressing forcesPrestressing tendonStrandTemperature compensationTemperature correctionThermal sensitivityFiber Optic TechnologyMechanical PhenomenaOptical FibersTemperature
All Science Classification Codes (ASJC)
Analytical ChemistryInformation SystemsAtomic and Molecular Physics, and OpticsBiochemistryInstrumentationElectrical and Electronic Engineering
Abstract
Compared to other types of sensors, fiber optic sensors have improved accuracy and durability. Recently, the Smart Strand was developed to maximize the advantages of fiber optic sensors for measuring the cable forces in prestressed concrete structures or cable-supported bridges. The Smart Strand has fiber Bragg gratings (FBGs) embedded in a core wire of the seven-wire strand. Similar to other sensors, the strain measured at an FBG is affected by temperature; therefore, the temperature effect that is not related to the mechanical strain should be compensated for or corrected in the long-term measurement subjected to temperature variation. However, a temperature compensation procedure for the FBG has yet to be established, and relevant studies have used different formulas for the compensation. Moreover, when the FBG sensors are packaged with a certain material—such as fiber reinforced polymer—for protection, it is important to consider the interaction between the FBG, packaging material, and host material during thermal behavior. Therefore, this study proposed a reasonable procedure for temperature compensation for the FBG sensors embedded in packaging material and host material. In particular, the thermal sensitivity of the Smart Strand was intensively investigated. The proposed theoretical formulas were validated through comparison with data obtained from various specimens in a temperature-controlled chamber. Finally, the procedure was applied to correct the data measured using the Smart Strands in a 20-m-long full-scale specimen for about a year, thus resulting in a realistic trend of the long-term prestressing force.
ISSN
1424-8220
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/32658
DOI
https://doi.org/10.3390/s22093282
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Type
Article
Funding
Acknowledgments: This research was supported by a grant from a Strategic Research Project (Smart Monitoring System for Concrete Structures Using FRP Nerve Sensors) funded by the Korea Institute of Civil Engineering and Building Technology.
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Jeon, Se Jin Image
Jeon, Se Jin전세진
Department of Civil Systems Engineering
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