Seismic Retrofit of a Multispan Prestressed Concrete Girder Bridge with Friction Pendulum Devices

The paper deals with the proposal and application of a procedure for the seismic retrofit of an existing multispan prestressed concrete girder bridge defined explicitly for the use of friction pendulum devices as an isolation system placed between piers top and deck. First, the outcomes of the seism...

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Main Authors: Alberto Maria Avossa, Danilo Di Giacinto, Pasquale Malangone, Fabio Rizzo
Format: Article
Language:English
Published: Hindawi Limited 2018-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2018/5679480
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spelling doaj-1bdb2a17e2864dd39fe6edac9cdf6a9e2020-11-24T23:44:09ZengHindawi LimitedShock and Vibration1070-96221875-92032018-01-01201810.1155/2018/56794805679480Seismic Retrofit of a Multispan Prestressed Concrete Girder Bridge with Friction Pendulum DevicesAlberto Maria Avossa0Danilo Di Giacinto1Pasquale Malangone2Fabio Rizzo3Department of Engineering, University of Campania “Luigi Vanvitelli”, Aversa, Caserta, ItalyDepartment of Engineering, University of Campania “Luigi Vanvitelli”, Aversa, Caserta, ItalyDepartment of Engineering, University of Campania “Luigi Vanvitelli”, Aversa, Caserta, ItalyDepartment of Architecture, University of Chieti-Pescara “G. d’Annunzio”, Pescara, ItalyThe paper deals with the proposal and application of a procedure for the seismic retrofit of an existing multispan prestressed concrete girder bridge defined explicitly for the use of friction pendulum devices as an isolation system placed between piers top and deck. First, the outcomes of the seismic risk assessment of the existing bridge, performed using an incremental noniterative Nonlinear Static Procedure, based on the Capacity Spectrum Method as well as the Inelastic Demand Response Spectra, are described and discussed. Then, a specific multilevel design process, based on a proper application of the hierarchy of strength considerations and the Direct Displacement-Based Design approach, is adopted to dimension the FPD devices. Furthermore, to assess the impact of the FPD nonlinear behaviour on the bridge seismic response, a device model that reproduces the variation of the normal force and friction coefficient, the bidirectional coupling, and the large deformation effects during nonlinear dynamic analyses was used. Finally, the paper examines the effects of the FPD modelling parameters on the behaviour of the retrofitted bridge and assesses its seismic response with the results pointing out the efficiency of the adopted seismic retrofit solution.http://dx.doi.org/10.1155/2018/5679480
collection DOAJ
language English
format Article
sources DOAJ
author Alberto Maria Avossa
Danilo Di Giacinto
Pasquale Malangone
Fabio Rizzo
spellingShingle Alberto Maria Avossa
Danilo Di Giacinto
Pasquale Malangone
Fabio Rizzo
Seismic Retrofit of a Multispan Prestressed Concrete Girder Bridge with Friction Pendulum Devices
Shock and Vibration
author_facet Alberto Maria Avossa
Danilo Di Giacinto
Pasquale Malangone
Fabio Rizzo
author_sort Alberto Maria Avossa
title Seismic Retrofit of a Multispan Prestressed Concrete Girder Bridge with Friction Pendulum Devices
title_short Seismic Retrofit of a Multispan Prestressed Concrete Girder Bridge with Friction Pendulum Devices
title_full Seismic Retrofit of a Multispan Prestressed Concrete Girder Bridge with Friction Pendulum Devices
title_fullStr Seismic Retrofit of a Multispan Prestressed Concrete Girder Bridge with Friction Pendulum Devices
title_full_unstemmed Seismic Retrofit of a Multispan Prestressed Concrete Girder Bridge with Friction Pendulum Devices
title_sort seismic retrofit of a multispan prestressed concrete girder bridge with friction pendulum devices
publisher Hindawi Limited
series Shock and Vibration
issn 1070-9622
1875-9203
publishDate 2018-01-01
description The paper deals with the proposal and application of a procedure for the seismic retrofit of an existing multispan prestressed concrete girder bridge defined explicitly for the use of friction pendulum devices as an isolation system placed between piers top and deck. First, the outcomes of the seismic risk assessment of the existing bridge, performed using an incremental noniterative Nonlinear Static Procedure, based on the Capacity Spectrum Method as well as the Inelastic Demand Response Spectra, are described and discussed. Then, a specific multilevel design process, based on a proper application of the hierarchy of strength considerations and the Direct Displacement-Based Design approach, is adopted to dimension the FPD devices. Furthermore, to assess the impact of the FPD nonlinear behaviour on the bridge seismic response, a device model that reproduces the variation of the normal force and friction coefficient, the bidirectional coupling, and the large deformation effects during nonlinear dynamic analyses was used. Finally, the paper examines the effects of the FPD modelling parameters on the behaviour of the retrofitted bridge and assesses its seismic response with the results pointing out the efficiency of the adopted seismic retrofit solution.
url http://dx.doi.org/10.1155/2018/5679480
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