Impact response characterization of shear CFRP strengthened RC beams by Fourier and wavelet methods: tests and analyses

The current experimental study investigates impact response features of reinforced concrete (RC) beams with dominant shear failure mode. Six built nonstrengthened and strengthened RC beams with a shear span-to-depth ratio of 2.5 were subject to repeated low-velocity impacts. Projectile energy is equ...

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Main Author: Shafei Erfan
Format: Article
Language:English
Published: De Gruyter 2017-01-01
Series:Science and Engineering of Composite Materials
Subjects:
Online Access:https://doi.org/10.1515/secm-2014-0111
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spelling doaj-9087e9ee90eb426f8c8e1debe2fe065c2021-09-05T14:00:30ZengDe GruyterScience and Engineering of Composite Materials0792-12332191-03592017-01-01241536510.1515/secm-2014-0111Impact response characterization of shear CFRP strengthened RC beams by Fourier and wavelet methods: tests and analysesShafei Erfan0Department of Civil Engineering, Urmia University of Technology, Band Road, Urmia, West Azerbaijan 57155-419, IranThe current experimental study investigates impact response features of reinforced concrete (RC) beams with dominant shear failure mode. Six built nonstrengthened and strengthened RC beams with a shear span-to-depth ratio of 2.5 were subject to repeated low-velocity impacts. Projectile energy is equal to the amount required for collapse. Retrofit consists of carbon fiber-reinforced polymer (CFRP) sheets attached to the exterior surface in vertical-unidirectional and cross-ply orientation. Laser linear variable differential transformer (LVDT) and micro-electro-mechanical systems (MEMS) accelerometers record the resultant deflection and acceleration to inspect the relationship between retrofit and damage. Fast Fourier transform (FFT) and continuous wavelet transform (CWT) extract the response content specimens to monitor the frequency change for each case. According to extracted results, CFRP skin provides notable stiffness on the upward shift of active frequency range and peak spectrum amplitude maintained for impact repeats. The active domain in FFT spectrum is sensitive to failure type (shear or flexural). CWT analysis ridges show a clear difference between failure type samples. CFRP retrofit controls cracking and deflection, which is shown as increased acceleration in records, especially for the cross-ply wrap. Effective stiffness recovers during initial impacts and then starts degrading because of the rupture of horizontal fibers in cross-ply retrofit, but the stiffness is stable for unidirectional retrofit during all impacts.https://doi.org/10.1515/secm-2014-0111cfrp retrofitdamage quantificationfft and cwt contentimpact loadreinforced concrete beam
collection DOAJ
language English
format Article
sources DOAJ
author Shafei Erfan
spellingShingle Shafei Erfan
Impact response characterization of shear CFRP strengthened RC beams by Fourier and wavelet methods: tests and analyses
Science and Engineering of Composite Materials
cfrp retrofit
damage quantification
fft and cwt content
impact load
reinforced concrete beam
author_facet Shafei Erfan
author_sort Shafei Erfan
title Impact response characterization of shear CFRP strengthened RC beams by Fourier and wavelet methods: tests and analyses
title_short Impact response characterization of shear CFRP strengthened RC beams by Fourier and wavelet methods: tests and analyses
title_full Impact response characterization of shear CFRP strengthened RC beams by Fourier and wavelet methods: tests and analyses
title_fullStr Impact response characterization of shear CFRP strengthened RC beams by Fourier and wavelet methods: tests and analyses
title_full_unstemmed Impact response characterization of shear CFRP strengthened RC beams by Fourier and wavelet methods: tests and analyses
title_sort impact response characterization of shear cfrp strengthened rc beams by fourier and wavelet methods: tests and analyses
publisher De Gruyter
series Science and Engineering of Composite Materials
issn 0792-1233
2191-0359
publishDate 2017-01-01
description The current experimental study investigates impact response features of reinforced concrete (RC) beams with dominant shear failure mode. Six built nonstrengthened and strengthened RC beams with a shear span-to-depth ratio of 2.5 were subject to repeated low-velocity impacts. Projectile energy is equal to the amount required for collapse. Retrofit consists of carbon fiber-reinforced polymer (CFRP) sheets attached to the exterior surface in vertical-unidirectional and cross-ply orientation. Laser linear variable differential transformer (LVDT) and micro-electro-mechanical systems (MEMS) accelerometers record the resultant deflection and acceleration to inspect the relationship between retrofit and damage. Fast Fourier transform (FFT) and continuous wavelet transform (CWT) extract the response content specimens to monitor the frequency change for each case. According to extracted results, CFRP skin provides notable stiffness on the upward shift of active frequency range and peak spectrum amplitude maintained for impact repeats. The active domain in FFT spectrum is sensitive to failure type (shear or flexural). CWT analysis ridges show a clear difference between failure type samples. CFRP retrofit controls cracking and deflection, which is shown as increased acceleration in records, especially for the cross-ply wrap. Effective stiffness recovers during initial impacts and then starts degrading because of the rupture of horizontal fibers in cross-ply retrofit, but the stiffness is stable for unidirectional retrofit during all impacts.
topic cfrp retrofit
damage quantification
fft and cwt content
impact load
reinforced concrete beam
url https://doi.org/10.1515/secm-2014-0111
work_keys_str_mv AT shafeierfan impactresponsecharacterizationofshearcfrpstrengthenedrcbeamsbyfourierandwaveletmethodstestsandanalyses
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