Numerically Evaluation of FRP-Strengthened Members under Dynamic Impact Loading
Reinforced concrete (RC) members in critical structures, such as bridge piers, high-rise buildings, and offshore facilities, are vulnerable to impact loads throughout their service life. For example, vehicle collisions, accidental loading, or unpredicted attacks could occur. The numerical models pre...
Main Authors: | , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
MDPI AG
2021-12-01
|
Series: | Buildings |
Subjects: | |
Online Access: | https://www.mdpi.com/2075-5309/11/1/14 |
id |
doaj-6ca87fcb8729474db5f1caf8a8342242 |
---|---|
record_format |
Article |
spelling |
doaj-6ca87fcb8729474db5f1caf8a83422422021-01-01T00:04:32ZengMDPI AGBuildings2075-53092021-12-0111141410.3390/buildings11010014Numerically Evaluation of FRP-Strengthened Members under Dynamic Impact LoadingFaham Tahmasebinia0Linda Zhang1Sangwoo Park2Samad Sepasgozar3School of Civil Engineering, The University of Sydney, Sydney, NSW 2006, AustraliaSchool of Civil Engineering, The University of Sydney, Sydney, NSW 2006, AustraliaSchool of Civil Engineering, The University of Sydney, Sydney, NSW 2006, AustraliaFaculty of Built Environment, The University of New South Wales, Sydney, NSW 2052, AustraliaReinforced concrete (RC) members in critical structures, such as bridge piers, high-rise buildings, and offshore facilities, are vulnerable to impact loads throughout their service life. For example, vehicle collisions, accidental loading, or unpredicted attacks could occur. The numerical models presented in this paper are shown to adequately replicate the impact behaviour and damage process of fibre-reinforced polymer (FRP)-strengthened concrete-filled steel tube (CFST) columns and Reinforced Concrete slabs. Validated models are developed using Abaqus/Explicit by reproducing the results obtained from experimental testing on bare CFST and RC slab members. Parameters relating to the FRP and material components are investigated to determine the influence on structural behaviour. The innovative method of using the dissipated energy approach for structural evaluation provides an assessment of the effective use of FRP and material properties to enhance the dynamic response. The outcome of the evaluation, including the geometrical, material, and contact properties modelling, shows that there is an agreement between the numerical and experimental behaviour of the selected concrete members. The experimentation shows that the calibration of the models is a crucial task, which was considered and resulted in matching the force–displacement behaviour and achieving the same maximum impact force and displacement values. Different novel and complicated Finite Element Models were comprehensively developed. The developed numerical models could precisely predict both local and global structural responses in the different reinforced concrete members. The application of the current numerical techniques can be extended to design structural members where there are no reliable practical guidelines on both national and international levels.https://www.mdpi.com/2075-5309/11/1/14numerical modellingreinforced concrete membersfibre-reinforced polymerconcrete-filled steel tubedynamic simulations |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Faham Tahmasebinia Linda Zhang Sangwoo Park Samad Sepasgozar |
spellingShingle |
Faham Tahmasebinia Linda Zhang Sangwoo Park Samad Sepasgozar Numerically Evaluation of FRP-Strengthened Members under Dynamic Impact Loading Buildings numerical modelling reinforced concrete members fibre-reinforced polymer concrete-filled steel tube dynamic simulations |
author_facet |
Faham Tahmasebinia Linda Zhang Sangwoo Park Samad Sepasgozar |
author_sort |
Faham Tahmasebinia |
title |
Numerically Evaluation of FRP-Strengthened Members under Dynamic Impact Loading |
title_short |
Numerically Evaluation of FRP-Strengthened Members under Dynamic Impact Loading |
title_full |
Numerically Evaluation of FRP-Strengthened Members under Dynamic Impact Loading |
title_fullStr |
Numerically Evaluation of FRP-Strengthened Members under Dynamic Impact Loading |
title_full_unstemmed |
Numerically Evaluation of FRP-Strengthened Members under Dynamic Impact Loading |
title_sort |
numerically evaluation of frp-strengthened members under dynamic impact loading |
publisher |
MDPI AG |
series |
Buildings |
issn |
2075-5309 |
publishDate |
2021-12-01 |
description |
Reinforced concrete (RC) members in critical structures, such as bridge piers, high-rise buildings, and offshore facilities, are vulnerable to impact loads throughout their service life. For example, vehicle collisions, accidental loading, or unpredicted attacks could occur. The numerical models presented in this paper are shown to adequately replicate the impact behaviour and damage process of fibre-reinforced polymer (FRP)-strengthened concrete-filled steel tube (CFST) columns and Reinforced Concrete slabs. Validated models are developed using Abaqus/Explicit by reproducing the results obtained from experimental testing on bare CFST and RC slab members. Parameters relating to the FRP and material components are investigated to determine the influence on structural behaviour. The innovative method of using the dissipated energy approach for structural evaluation provides an assessment of the effective use of FRP and material properties to enhance the dynamic response. The outcome of the evaluation, including the geometrical, material, and contact properties modelling, shows that there is an agreement between the numerical and experimental behaviour of the selected concrete members. The experimentation shows that the calibration of the models is a crucial task, which was considered and resulted in matching the force–displacement behaviour and achieving the same maximum impact force and displacement values. Different novel and complicated Finite Element Models were comprehensively developed. The developed numerical models could precisely predict both local and global structural responses in the different reinforced concrete members. The application of the current numerical techniques can be extended to design structural members where there are no reliable practical guidelines on both national and international levels. |
topic |
numerical modelling reinforced concrete members fibre-reinforced polymer concrete-filled steel tube dynamic simulations |
url |
https://www.mdpi.com/2075-5309/11/1/14 |
work_keys_str_mv |
AT fahamtahmasebinia numericallyevaluationoffrpstrengthenedmembersunderdynamicimpactloading AT lindazhang numericallyevaluationoffrpstrengthenedmembersunderdynamicimpactloading AT sangwoopark numericallyevaluationoffrpstrengthenedmembersunderdynamicimpactloading AT samadsepasgozar numericallyevaluationoffrpstrengthenedmembersunderdynamicimpactloading |
_version_ |
1724364549690228736 |