Three-dimensional finite element modelling of rocking bridge piers under cyclic loading and exploration of options for increased energy dissipation

The development of rocking in bridge structures has been identified as a valid isolation technique for structures under seismic loading. By utilising uplift in the bridge system, ductility and strength demands can be reduced on the structural element, limiting damage, and reducing residual displacem...

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Main Authors: Leitner, E., Hao, Hong
Format: Journal Article
Published: Pergamon 2016
Online Access:http://hdl.handle.net/20.500.11937/4972
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author Leitner, E.
Hao, Hong
author_facet Leitner, E.
Hao, Hong
author_sort Leitner, E.
building Curtin Institutional Repository
collection Online Access
description The development of rocking in bridge structures has been identified as a valid isolation technique for structures under seismic loading. By utilising uplift in the bridge system, ductility and strength demands can be reduced on the structural element, limiting damage, and reducing residual displacements of the structure due to the system's self-centring capability. A disadvantage has been identified, however, in the largely reduced hysteretic energy dissipation capacity of the rocking system. The objective of the present study is the development and validation of two three-dimensional finite element models undergoing cyclic quasi-static loading, using the software package ANSYS - a conventional reinforced concrete monolithic bridge pier and a precast post-tensioned concrete bridge pier wrapped in fibre-reinforced polymer (FRP), which allows uplift. The validation of these models according to existing experimental data focuses on the damage of the bridge pier under sustained loading and the corresponding concrete constitutive models utilised. Once validated, further models may be simulated which better identify the advantages of both the use of FRP and allowing the development of a rocking motion under cyclic loading. Furthermore, a study of different methods of increasing the energy dissipation of the system is presented, focusing on the use of both mild steel and superelastic shape memory alloy (SMA) dissipaters placed either internally or externally in various configurations. The study identifies many potential solutions for increasing the hysteretic energy dissipation of the rocking system whilst maintaining a small residual drift.
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institution Curtin University Malaysia
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publishDate 2016
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spelling curtin-20.500.11937-49722017-09-13T14:46:24Z Three-dimensional finite element modelling of rocking bridge piers under cyclic loading and exploration of options for increased energy dissipation Leitner, E. Hao, Hong The development of rocking in bridge structures has been identified as a valid isolation technique for structures under seismic loading. By utilising uplift in the bridge system, ductility and strength demands can be reduced on the structural element, limiting damage, and reducing residual displacements of the structure due to the system's self-centring capability. A disadvantage has been identified, however, in the largely reduced hysteretic energy dissipation capacity of the rocking system. The objective of the present study is the development and validation of two three-dimensional finite element models undergoing cyclic quasi-static loading, using the software package ANSYS - a conventional reinforced concrete monolithic bridge pier and a precast post-tensioned concrete bridge pier wrapped in fibre-reinforced polymer (FRP), which allows uplift. The validation of these models according to existing experimental data focuses on the damage of the bridge pier under sustained loading and the corresponding concrete constitutive models utilised. Once validated, further models may be simulated which better identify the advantages of both the use of FRP and allowing the development of a rocking motion under cyclic loading. Furthermore, a study of different methods of increasing the energy dissipation of the system is presented, focusing on the use of both mild steel and superelastic shape memory alloy (SMA) dissipaters placed either internally or externally in various configurations. The study identifies many potential solutions for increasing the hysteretic energy dissipation of the rocking system whilst maintaining a small residual drift. 2016 Journal Article http://hdl.handle.net/20.500.11937/4972 10.1016/j.engstruct.2016.03.042 Pergamon restricted
spellingShingle Leitner, E.
Hao, Hong
Three-dimensional finite element modelling of rocking bridge piers under cyclic loading and exploration of options for increased energy dissipation
title Three-dimensional finite element modelling of rocking bridge piers under cyclic loading and exploration of options for increased energy dissipation
title_full Three-dimensional finite element modelling of rocking bridge piers under cyclic loading and exploration of options for increased energy dissipation
title_fullStr Three-dimensional finite element modelling of rocking bridge piers under cyclic loading and exploration of options for increased energy dissipation
title_full_unstemmed Three-dimensional finite element modelling of rocking bridge piers under cyclic loading and exploration of options for increased energy dissipation
title_short Three-dimensional finite element modelling of rocking bridge piers under cyclic loading and exploration of options for increased energy dissipation
title_sort three-dimensional finite element modelling of rocking bridge piers under cyclic loading and exploration of options for increased energy dissipation
url http://hdl.handle.net/20.500.11937/4972