Experimental and Numerical Investigation on the Strain Response of Distributed Optical Fiber Sensors Bonded to Concrete: Influence of the Adhesive Stiffness on Crack Monitoring Performance

The present study investigated the strain response of a distributed optical fiber sensor (DOFS) sealed in a groove at the surface of a concrete structure using a polymer adhesive and aimed to identify optimal conditions for crack monitoring. A finite element model (FEM) was first proposed to describ...

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Main Authors: Ismail Alj, Marc Quiertant, Aghiad Khadour, Quentin Grando, Benjamin Terrade, Jean-Claude Renaud, Karim Benzarti
Format: Article
Language:English
Published: MDPI AG 2020-09-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/20/18/5144
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spelling doaj-76830ebf871c4271a68c37f516d59e8b2020-11-25T03:31:47ZengMDPI AGSensors1424-82202020-09-01205144514410.3390/s20185144Experimental and Numerical Investigation on the Strain Response of Distributed Optical Fiber Sensors Bonded to Concrete: Influence of the Adhesive Stiffness on Crack Monitoring PerformanceIsmail Alj0Marc Quiertant1Aghiad Khadour2Quentin Grando3Benjamin Terrade4Jean-Claude Renaud5Karim Benzarti 6MAST, EMGCU, Gustave Eiffel University, IFSTTAR, F-77447 Marne-la-Vallée, FranceMAST, EMGCU, Gustave Eiffel University, IFSTTAR, F-77447 Marne-la-Vallée, FranceCOSYS, LISIS, Gustave Eiffel University, IFSTTAR, F-77447 Marne-la-Vallée, FrancePSN-RES, SEREX, Institut de Radioprotection et de Sûreté Nucléaire (IRSN), 13115 Saint-Paul-Lez-Durance CEDEX, FranceMAST, EMGCU, Gustave Eiffel University, IFSTTAR, F-77447 Marne-la-Vallée, FranceMAST, EMGCU, Gustave Eiffel University, IFSTTAR, F-77447 Marne-la-Vallée, FranceLaboratoire Navier, Gustave Eiffel University, F-77447 Marne-la-Vallée, FranceThe present study investigated the strain response of a distributed optical fiber sensor (DOFS) sealed in a groove at the surface of a concrete structure using a polymer adhesive and aimed to identify optimal conditions for crack monitoring. A finite element model (FEM) was first proposed to describe the strain transfer process between the host structure and the DOFS core, highlighting the influence of the adhesive stiffness. In a second part, mechanical tests were conducted on concrete specimens instrumented with DOFS bonded/sealed using several adhesives exhibiting a broad stiffness range. Distributed strain profiles were then collected with an interrogation unit based on Rayleigh backscattering. These experiments showed that strain measurements provided by DOFS were consistent with those from conventional sensors and confirmed that bonding DOFS to the concrete structure using soft adhesives allowed to mitigate the amplitude of local strain peaks induced by crack openings, which may prevent the sensor from early breakage. Finally, the FEM was generalized to describe the strain response of bonded DOFS in the presence of crack and an analytical expression relating DOFS peak strain to the crack opening was proposed, which is valid in the domain of elastic behavior of materials and interfaces.https://www.mdpi.com/1424-8220/20/18/5144distributed optical fiber sensor (DOFS)strain measurementpolymer adhesiveYoung’s modulusfinite element modellingcrack opening
collection DOAJ
language English
format Article
sources DOAJ
author Ismail Alj
Marc Quiertant
Aghiad Khadour
Quentin Grando
Benjamin Terrade
Jean-Claude Renaud
Karim Benzarti
spellingShingle Ismail Alj
Marc Quiertant
Aghiad Khadour
Quentin Grando
Benjamin Terrade
Jean-Claude Renaud
Karim Benzarti
Experimental and Numerical Investigation on the Strain Response of Distributed Optical Fiber Sensors Bonded to Concrete: Influence of the Adhesive Stiffness on Crack Monitoring Performance
Sensors
distributed optical fiber sensor (DOFS)
strain measurement
polymer adhesive
Young’s modulus
finite element modelling
crack opening
author_facet Ismail Alj
Marc Quiertant
Aghiad Khadour
Quentin Grando
Benjamin Terrade
Jean-Claude Renaud
Karim Benzarti
author_sort Ismail Alj
title Experimental and Numerical Investigation on the Strain Response of Distributed Optical Fiber Sensors Bonded to Concrete: Influence of the Adhesive Stiffness on Crack Monitoring Performance
title_short Experimental and Numerical Investigation on the Strain Response of Distributed Optical Fiber Sensors Bonded to Concrete: Influence of the Adhesive Stiffness on Crack Monitoring Performance
title_full Experimental and Numerical Investigation on the Strain Response of Distributed Optical Fiber Sensors Bonded to Concrete: Influence of the Adhesive Stiffness on Crack Monitoring Performance
title_fullStr Experimental and Numerical Investigation on the Strain Response of Distributed Optical Fiber Sensors Bonded to Concrete: Influence of the Adhesive Stiffness on Crack Monitoring Performance
title_full_unstemmed Experimental and Numerical Investigation on the Strain Response of Distributed Optical Fiber Sensors Bonded to Concrete: Influence of the Adhesive Stiffness on Crack Monitoring Performance
title_sort experimental and numerical investigation on the strain response of distributed optical fiber sensors bonded to concrete: influence of the adhesive stiffness on crack monitoring performance
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2020-09-01
description The present study investigated the strain response of a distributed optical fiber sensor (DOFS) sealed in a groove at the surface of a concrete structure using a polymer adhesive and aimed to identify optimal conditions for crack monitoring. A finite element model (FEM) was first proposed to describe the strain transfer process between the host structure and the DOFS core, highlighting the influence of the adhesive stiffness. In a second part, mechanical tests were conducted on concrete specimens instrumented with DOFS bonded/sealed using several adhesives exhibiting a broad stiffness range. Distributed strain profiles were then collected with an interrogation unit based on Rayleigh backscattering. These experiments showed that strain measurements provided by DOFS were consistent with those from conventional sensors and confirmed that bonding DOFS to the concrete structure using soft adhesives allowed to mitigate the amplitude of local strain peaks induced by crack openings, which may prevent the sensor from early breakage. Finally, the FEM was generalized to describe the strain response of bonded DOFS in the presence of crack and an analytical expression relating DOFS peak strain to the crack opening was proposed, which is valid in the domain of elastic behavior of materials and interfaces.
topic distributed optical fiber sensor (DOFS)
strain measurement
polymer adhesive
Young’s modulus
finite element modelling
crack opening
url https://www.mdpi.com/1424-8220/20/18/5144
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