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dc.creatorPiras, Sabinaen
dc.creatorPalermo, Alessandroen
dc.creatorChiaro, Gabrieleen
dc.date2023-09-01
dc.date.accessioned2026-07-14T20:44:47Z
dc.date.available2026-07-14T20:44:47Z
dc.identifierhttps://bulletin.nzsee.org.nz/article/view/1591
dc.identifier10.5459/bnzsee.1591
dc.identifier.urihttps://repo.nzsee.org.nz/xmlui/handle/nzsee/2844
dc.descriptionIn this paper, rotational spring and multi-spring models are implemented in SAP2000® software, and numerical solutions are presented for monotonic and cyclic behaviour of a dissipative controlled rocking (DCR) bridge column supported on a monopile foundation that is embedded in sand. The pile-soil system is modelled with elastic frame elements connected to vertically-spaced bi-linear soil springs. Three soil conditions (i.e. loose, medium-dense and dense sand) are considered to account for soil-structure interaction effects. The results from an experimental programme, carried out by the authors at the University of Canterbury, are used to validate the numerical solutions. The numerical simulation results for the three sand conditions are in good agreement with the experimental ones. From a computational standpoint, the relatively simple mathematical formulation and easy implementation would make the rotational spring model more desirable than the complex multi-spring model. On the other hand, the multi-spring model is more versatile and capable of describing the cyclic response of the DCR pier, such as the post-tensioning force, axial stress in the steel dissipaters and gap-opening interface rocking characteristics.en
dc.formatapplication/pdf
dc.languageen
dc.publisherNew Zealand Society for Earthquake Engineeringen
dc.relationhttps://bulletin.nzsee.org.nz/article/view/1591/1468
dc.rightsCopyright (c) 2023 Sabina Piras, Alessandro Palermo, Gabriele Chiaroen
dc.rightshttps://creativecommons.org/licenses/by/4.0en
dc.sourceBulletin of the New Zealand Society for Earthquake Engineering; Vol. 56 No. 3 (2023); 152-168en
dc.source2324-1543
dc.source1174-9857
dc.titleNumerical modelling approaches for predicting the seismic response of monopole-supported dissipative controlled rocking bridge piersen
dc.typeinfo:eu-repo/semantics/article
dc.typeinfo:eu-repo/semantics/publishedVersion
dc.typeArticleen


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