Ultimate Limit State Response of Reinforced Concrete Columns for Use in Performance-Based Analysis and Design

The design of reinforced concrete structures for extreme events requires accurate predictions of the ultimate rotational capacity of critical sections, which is dictated by the failure mechanisms of shear, hoop fracture, low-cycle fatigue and longitudinal bar buckling. The purpose of this research i...

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Main Author: Urmson, Christopher R.
Other Authors: Mander, John B.
Format: Others
Language:en_US
Published: 2010
Subjects:
Online Access:http://hdl.handle.net/1969.1/ETD-TAMU-2010-08-8564
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spelling ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-ETD-TAMU-2010-08-85642013-01-08T10:41:40ZUltimate Limit State Response of Reinforced Concrete Columns for Use in Performance-Based Analysis and DesignUrmson, Christopher R.Reinforced ConcreteSeismic DesignBuckling of Longitudinal SteelThe design of reinforced concrete structures for extreme events requires accurate predictions of the ultimate rotational capacity of critical sections, which is dictated by the failure mechanisms of shear, hoop fracture, low-cycle fatigue and longitudinal bar buckling. The purpose of this research is to develop a model for the full compressive behavior of longitudinal steel including the effects of bar buckling. A computational algorithm is developed whereby experimental data can be rigorously modeled. An analytical model is developed from rational mechanics for modeling the complete compressive stress-strain behavior of steel including local buckling effects. The global buckling phenomenon is then investigated in which trends are established using a rigorous computational analysis, and a limit analysis is used to derive simplified design and analysis equations. The derived buckling models are incorporated into wellestablished sectional analysis routines to predict full member behavior, and the application of these routines is demonstrated via an incremental dynamic analysis of a ten-storey reinforced concrete building. The buckling models and the sectional analysis routine compare favorably with experimental data. Design recommendations and topics for further research are presented.Mander, John B.Abu Al-Rub, Rashid K.2010-10-12T22:31:58Z2010-10-14T16:08:24Z2010-10-12T22:31:58Z2010-10-14T16:08:24Z2010-082010-10-12August 2010BookThesisElectronic Thesistextapplication/pdfhttp://hdl.handle.net/1969.1/ETD-TAMU-2010-08-8564en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic Reinforced Concrete
Seismic Design
Buckling of Longitudinal Steel
spellingShingle Reinforced Concrete
Seismic Design
Buckling of Longitudinal Steel
Urmson, Christopher R.
Ultimate Limit State Response of Reinforced Concrete Columns for Use in Performance-Based Analysis and Design
description The design of reinforced concrete structures for extreme events requires accurate predictions of the ultimate rotational capacity of critical sections, which is dictated by the failure mechanisms of shear, hoop fracture, low-cycle fatigue and longitudinal bar buckling. The purpose of this research is to develop a model for the full compressive behavior of longitudinal steel including the effects of bar buckling. A computational algorithm is developed whereby experimental data can be rigorously modeled. An analytical model is developed from rational mechanics for modeling the complete compressive stress-strain behavior of steel including local buckling effects. The global buckling phenomenon is then investigated in which trends are established using a rigorous computational analysis, and a limit analysis is used to derive simplified design and analysis equations. The derived buckling models are incorporated into wellestablished sectional analysis routines to predict full member behavior, and the application of these routines is demonstrated via an incremental dynamic analysis of a ten-storey reinforced concrete building. The buckling models and the sectional analysis routine compare favorably with experimental data. Design recommendations and topics for further research are presented.
author2 Mander, John B.
author_facet Mander, John B.
Urmson, Christopher R.
author Urmson, Christopher R.
author_sort Urmson, Christopher R.
title Ultimate Limit State Response of Reinforced Concrete Columns for Use in Performance-Based Analysis and Design
title_short Ultimate Limit State Response of Reinforced Concrete Columns for Use in Performance-Based Analysis and Design
title_full Ultimate Limit State Response of Reinforced Concrete Columns for Use in Performance-Based Analysis and Design
title_fullStr Ultimate Limit State Response of Reinforced Concrete Columns for Use in Performance-Based Analysis and Design
title_full_unstemmed Ultimate Limit State Response of Reinforced Concrete Columns for Use in Performance-Based Analysis and Design
title_sort ultimate limit state response of reinforced concrete columns for use in performance-based analysis and design
publishDate 2010
url http://hdl.handle.net/1969.1/ETD-TAMU-2010-08-8564
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