On the performance of circular concrete-filled high strength steel columns under axial loading

This work presents a numerical study to investigate the performance of circular high-strength steel tubes filled with concrete (CFT) under monotonic axial loading. A model is developed to implement the material constitutive relationships and non-linearity. Calibration against previous experimental d...

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Main Author: Mohamed Mahmoud El-Heweity
Format: Article
Language:English
Published: Elsevier 2012-06-01
Series:Alexandria Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1110016812000439
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spelling doaj-19257b48d8be4f2ca9c75b706d63d0ea2021-06-02T04:26:39ZengElsevierAlexandria Engineering Journal1110-01682012-06-0151210911910.1016/j.aej.2012.05.006On the performance of circular concrete-filled high strength steel columns under axial loadingMohamed Mahmoud El-HeweityThis work presents a numerical study to investigate the performance of circular high-strength steel tubes filled with concrete (CFT) under monotonic axial loading. A model is developed to implement the material constitutive relationships and non-linearity. Calibration against previous experimental data shows good agreement. A parametric study is then conducted using the model and compared with codes provisions. Strength and ductility of confined concrete are of primary concern. Variables considered are yield stress of steel tube and column diameter. The assessment of column performance is based on axial load carrying capacities and enhancements of both strength and ductility due to confinement. Two parameters namely strength enhancement factor (Kf) and ductility index (μ) are clearly defined and introduced for assessment. Results indicate that both concrete strength and ductility of CFT columns are enhanced but to different extents. The ductile behaviors are significantly evident. The increase in yield stress of steel tube has a minimal effect on concrete strength but pronounced effect on concrete ductility. However, reduction in ductility is associated with using high-tensile steel of Grade 70. The overall findings indicate that the use of high-strength tube in CFT columns is not promising. This finding may seriously be considered in seismic design.http://www.sciencedirect.com/science/article/pii/S1110016812000439Axial strengthDuctilityConfinementConcrete-filled steel columnsFinite element technique
collection DOAJ
language English
format Article
sources DOAJ
author Mohamed Mahmoud El-Heweity
spellingShingle Mohamed Mahmoud El-Heweity
On the performance of circular concrete-filled high strength steel columns under axial loading
Alexandria Engineering Journal
Axial strength
Ductility
Confinement
Concrete-filled steel columns
Finite element technique
author_facet Mohamed Mahmoud El-Heweity
author_sort Mohamed Mahmoud El-Heweity
title On the performance of circular concrete-filled high strength steel columns under axial loading
title_short On the performance of circular concrete-filled high strength steel columns under axial loading
title_full On the performance of circular concrete-filled high strength steel columns under axial loading
title_fullStr On the performance of circular concrete-filled high strength steel columns under axial loading
title_full_unstemmed On the performance of circular concrete-filled high strength steel columns under axial loading
title_sort on the performance of circular concrete-filled high strength steel columns under axial loading
publisher Elsevier
series Alexandria Engineering Journal
issn 1110-0168
publishDate 2012-06-01
description This work presents a numerical study to investigate the performance of circular high-strength steel tubes filled with concrete (CFT) under monotonic axial loading. A model is developed to implement the material constitutive relationships and non-linearity. Calibration against previous experimental data shows good agreement. A parametric study is then conducted using the model and compared with codes provisions. Strength and ductility of confined concrete are of primary concern. Variables considered are yield stress of steel tube and column diameter. The assessment of column performance is based on axial load carrying capacities and enhancements of both strength and ductility due to confinement. Two parameters namely strength enhancement factor (Kf) and ductility index (μ) are clearly defined and introduced for assessment. Results indicate that both concrete strength and ductility of CFT columns are enhanced but to different extents. The ductile behaviors are significantly evident. The increase in yield stress of steel tube has a minimal effect on concrete strength but pronounced effect on concrete ductility. However, reduction in ductility is associated with using high-tensile steel of Grade 70. The overall findings indicate that the use of high-strength tube in CFT columns is not promising. This finding may seriously be considered in seismic design.
topic Axial strength
Ductility
Confinement
Concrete-filled steel columns
Finite element technique
url http://www.sciencedirect.com/science/article/pii/S1110016812000439
work_keys_str_mv AT mohamedmahmoudelheweity ontheperformanceofcircularconcretefilledhighstrengthsteelcolumnsunderaxialloading
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