Innovative experimental and finite element assessments of the performance of CFRP-retrofitted RC beams under fatigue loading

Numerous experimental studies have proven the efficiency of externally bonded fiber-reinforced polymer (FRP) systems on structural concrete elements, such as reinforced concrete (RC) beams. The current paper presents an analytical formulation of mechanical constants based on the results of experimen...

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Main Authors: Hojatkashani Ata, Kabir Mohammad Zaman
Format: Article
Language:English
Published: De Gruyter 2018-07-01
Series:Science and Engineering of Composite Materials
Subjects:
Online Access:https://doi.org/10.1515/secm-2016-0101
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spelling doaj-c247272c56e941389f64860dc154f22c2021-09-05T14:00:32ZengDe GruyterScience and Engineering of Composite Materials0792-12332191-03592018-07-0125466167810.1515/secm-2016-0101Innovative experimental and finite element assessments of the performance of CFRP-retrofitted RC beams under fatigue loadingHojatkashani Ata0Kabir Mohammad Zaman1Department of Civil Engineering, Islamic Azad University, South Tehran Branch, Tehran, IranDepartment of Civil and Environmental Engineering, Amirkabir University of Technology, Tehran, IranNumerous experimental studies have proven the efficiency of externally bonded fiber-reinforced polymer (FRP) systems on structural concrete elements, such as reinforced concrete (RC) beams. The current paper presents an analytical formulation of mechanical constants based on the results of experimental data, which were acquired from fatigue testing of intact and CFRP-retrofitted RC beams. A total of six scaled RC beams were prepared for the test, three of which were strengthened with carbon fiber-reinforced polymers (CFRPs). A specific finite element model coupled with experimental results from the proposed RC beams made it possible to compare the theoretical and experimental fatigue behavior of RC beams with and without composite reinforcement. The developed numerical model was then extended to evaluate a higher number of fatigue load cycles, as recommended by bridge codes. This was carried out to monitor the performance of CFRP-retrofitted RC beams in terms of flexural stiffness deterioration and damage propagation. The relationships presented in this paper were calibrated to the tested specimens. Moreover, they were useful for the design of RC and CFRP-retrofitted RC beams and for predicting fatigue performance, including the damage behavior of constituent materials.https://doi.org/10.1515/secm-2016-0101cfrp-retrofitted rc beamsexperimental and finite element investigationsexternally bonded fiber reinforced polymer systemshigh cycle fatiguepropagation of tension cracks
collection DOAJ
language English
format Article
sources DOAJ
author Hojatkashani Ata
Kabir Mohammad Zaman
spellingShingle Hojatkashani Ata
Kabir Mohammad Zaman
Innovative experimental and finite element assessments of the performance of CFRP-retrofitted RC beams under fatigue loading
Science and Engineering of Composite Materials
cfrp-retrofitted rc beams
experimental and finite element investigations
externally bonded fiber reinforced polymer systems
high cycle fatigue
propagation of tension cracks
author_facet Hojatkashani Ata
Kabir Mohammad Zaman
author_sort Hojatkashani Ata
title Innovative experimental and finite element assessments of the performance of CFRP-retrofitted RC beams under fatigue loading
title_short Innovative experimental and finite element assessments of the performance of CFRP-retrofitted RC beams under fatigue loading
title_full Innovative experimental and finite element assessments of the performance of CFRP-retrofitted RC beams under fatigue loading
title_fullStr Innovative experimental and finite element assessments of the performance of CFRP-retrofitted RC beams under fatigue loading
title_full_unstemmed Innovative experimental and finite element assessments of the performance of CFRP-retrofitted RC beams under fatigue loading
title_sort innovative experimental and finite element assessments of the performance of cfrp-retrofitted rc beams under fatigue loading
publisher De Gruyter
series Science and Engineering of Composite Materials
issn 0792-1233
2191-0359
publishDate 2018-07-01
description Numerous experimental studies have proven the efficiency of externally bonded fiber-reinforced polymer (FRP) systems on structural concrete elements, such as reinforced concrete (RC) beams. The current paper presents an analytical formulation of mechanical constants based on the results of experimental data, which were acquired from fatigue testing of intact and CFRP-retrofitted RC beams. A total of six scaled RC beams were prepared for the test, three of which were strengthened with carbon fiber-reinforced polymers (CFRPs). A specific finite element model coupled with experimental results from the proposed RC beams made it possible to compare the theoretical and experimental fatigue behavior of RC beams with and without composite reinforcement. The developed numerical model was then extended to evaluate a higher number of fatigue load cycles, as recommended by bridge codes. This was carried out to monitor the performance of CFRP-retrofitted RC beams in terms of flexural stiffness deterioration and damage propagation. The relationships presented in this paper were calibrated to the tested specimens. Moreover, they were useful for the design of RC and CFRP-retrofitted RC beams and for predicting fatigue performance, including the damage behavior of constituent materials.
topic cfrp-retrofitted rc beams
experimental and finite element investigations
externally bonded fiber reinforced polymer systems
high cycle fatigue
propagation of tension cracks
url https://doi.org/10.1515/secm-2016-0101
work_keys_str_mv AT hojatkashaniata innovativeexperimentalandfiniteelementassessmentsoftheperformanceofcfrpretrofittedrcbeamsunderfatigueloading
AT kabirmohammadzaman innovativeexperimentalandfiniteelementassessmentsoftheperformanceofcfrpretrofittedrcbeamsunderfatigueloading
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