Nonlinear Soil–Pile–Structure Interaction Behaviour of Marine Jetty Structures

Author:

Koronides Marios1ORCID,Michailides Constantine2ORCID,Onoufriou Toula1

Affiliation:

1. Department of Civil Engineering and Geomatics, Cyprus University of Technology, 3036 Limassol, Cyprus

2. Department of Civil Engineering, International Hellenic University, 621 24 Serres, Greece

Abstract

Nonlinear soil–pile–structure interaction (SPSI) phenomena are known to play a vital role in the response of bottom-fixed marine structures. For such structures, these phenomena are commonly considered by the imposition of p-y, τ-z, and q-z springs, representing the lateral and axial shaft and axial base soil resistances, respectively. The importance of each resistance mechanism depends on the type of foundation system, with only very limited studies investigating their roles in the response of piled marine structures, such as jetties. Within this context, this study presents numerical three-dimensional pushover analysis results for two marine jetties, a smaller model with four piles and a larger model supported by twenty-four piles. SPSI effects are considered through p-y, τ-z, and q-z springs, the behaviours of which are determined by following commonly employed procedures. The structures’ responses are investigated under the influence of various assumptions regarding the behaviours of springs, as well as steel plasticity. The current investigation underscores the substantial influence of the axial soil–pile interaction on the response of the jetty, particularly in terms of its failure mode. Moreover, it demonstrates the importance of incorporating p-y springs, even though the choice between their linear or nonlinear constitutive behaviour is found to be less critical. Finally, the study concludes that the behaviours of the springs significantly affect the system’s ductility and the degree of steel yielding in the piles, while also highlighting the unconservative influence of neglecting SPSI phenomena.

Funder

Cyprus Ministry of Energy Commerce and Industry

Cyprus University of Technology Open Access Author Fund

Publisher

MDPI AG

Reference70 articles.

1. Wave-in-Deck Loading on Fixed Steel Jacket Decks;Gudmestad;Mar. Struct.,2007

2. A Comparative Assessment of the Impact of Tilting on Structural Safety and Behavior of Fixed Offshore Platforms;Karimi;Appl. Ocean Res.,2023

3. Coupled Hydrodynamic and Geotechnical Analysis of Jacket Offshore Wind Turbine;Abhinav;Soil Dyn. Earthq. Eng.,2015

4. Damgaard, M., Andersen, J.K.F., Ibsen, L.B., and Andersen, L.V. (2012, January 17–21). Natural Frequency and Damping Estimation of an Offshore Wind Turbine Structure. Proceedings of the International Offshore and Polar Engineering Conference, Rhodes, Greece.

5. Evaluation of Pile Diameter Effect on Initial Modulus of Subgrade Reaction;Ashford;J. Geotech. Geoenviron. Eng.,2003

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Nonlinear Soil–Pile–Structure Interaction Behaviour of Marine Jetty Structures;Journal of Marine Science and Engineering;2024-07-09

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