Experimentally Validated Compatibility Strut and Tie Modeling of Reinforced Concrete Bridge Piers

A compatibility-based strut-and-tie model C-STM is proposed for analyzing deep beams and disturbed regions with particular emphasis on reinforced concrete bridge piers. In addition to the normal strut-and-tie force equilibrium requirements the model accounts for non-linear behavior through displacem...

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Main Author: Scott, Reece Melby
Other Authors: Mander, John B.
Format: Others
Language:en_US
Published: 2010
Subjects:
Online Access:http://hdl.handle.net/1969.1/ETD-TAMU-2010-08-8563
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spelling ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-ETD-TAMU-2010-08-85632013-01-08T10:41:40ZExperimentally Validated Compatibility Strut and Tie Modeling of Reinforced Concrete Bridge PiersScott, Reece MelbySheardeep beamsstrut-and-tiedeformation compatibilityD-regiontruss modelA compatibility-based strut-and-tie model C-STM is proposed for analyzing deep beams and disturbed regions with particular emphasis on reinforced concrete bridge piers. In addition to the normal strut-and-tie force equilibrium requirements the model accounts for non-linear behavior through displacement compatibility using inelastic constitutive laws of cracked reinforced concrete. The model is implemented into widely used commercial structural analysis software and validated against results from previously conducted large scale experiments. A near full-scale experiment on a reinforced concrete sub-assemblage that represents cantilevered and straddle pier bents is conducted to investigate the shear-flexure performance of deep (disturbed) regions. Insights into the development of nonlinear behavior and the final collapse failure mechanism are then evaluated and accurately modeled using the C-STM. It is concluded that the proposed C-STM serves as an advanced method of analysis that can predict with suitable accuracy the force-deformation response of both D- and B- regions, deep beams, and beam-columns. This provides engineers with a supplementary analysis tool that can be used to assess the nonlinear behavior of bridge piers with stocky members and/or large disturbed regions.Mander, John B.Bracci, Joseph M.2010-10-12T22:31:58Z2010-10-14T16:08:25Z2010-10-12T22:31:58Z2010-10-14T16:08:25Z2010-082010-10-12August 2010BookThesisElectronic Thesistextapplication/pdfhttp://hdl.handle.net/1969.1/ETD-TAMU-2010-08-8563en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic Shear
deep beams
strut-and-tie
deformation compatibility
D-region
truss model
spellingShingle Shear
deep beams
strut-and-tie
deformation compatibility
D-region
truss model
Scott, Reece Melby
Experimentally Validated Compatibility Strut and Tie Modeling of Reinforced Concrete Bridge Piers
description A compatibility-based strut-and-tie model C-STM is proposed for analyzing deep beams and disturbed regions with particular emphasis on reinforced concrete bridge piers. In addition to the normal strut-and-tie force equilibrium requirements the model accounts for non-linear behavior through displacement compatibility using inelastic constitutive laws of cracked reinforced concrete. The model is implemented into widely used commercial structural analysis software and validated against results from previously conducted large scale experiments. A near full-scale experiment on a reinforced concrete sub-assemblage that represents cantilevered and straddle pier bents is conducted to investigate the shear-flexure performance of deep (disturbed) regions. Insights into the development of nonlinear behavior and the final collapse failure mechanism are then evaluated and accurately modeled using the C-STM. It is concluded that the proposed C-STM serves as an advanced method of analysis that can predict with suitable accuracy the force-deformation response of both D- and B- regions, deep beams, and beam-columns. This provides engineers with a supplementary analysis tool that can be used to assess the nonlinear behavior of bridge piers with stocky members and/or large disturbed regions.
author2 Mander, John B.
author_facet Mander, John B.
Scott, Reece Melby
author Scott, Reece Melby
author_sort Scott, Reece Melby
title Experimentally Validated Compatibility Strut and Tie Modeling of Reinforced Concrete Bridge Piers
title_short Experimentally Validated Compatibility Strut and Tie Modeling of Reinforced Concrete Bridge Piers
title_full Experimentally Validated Compatibility Strut and Tie Modeling of Reinforced Concrete Bridge Piers
title_fullStr Experimentally Validated Compatibility Strut and Tie Modeling of Reinforced Concrete Bridge Piers
title_full_unstemmed Experimentally Validated Compatibility Strut and Tie Modeling of Reinforced Concrete Bridge Piers
title_sort experimentally validated compatibility strut and tie modeling of reinforced concrete bridge piers
publishDate 2010
url http://hdl.handle.net/1969.1/ETD-TAMU-2010-08-8563
work_keys_str_mv AT scottreecemelby experimentallyvalidatedcompatibilitystrutandtiemodelingofreinforcedconcretebridgepiers
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