A memory-enhanced p-y model for piles in sand accounting for cyclic ratcheting and gapping effects

Journal Article (2022)
Author(s)

Evangelos Kementzetzidis (IHE Delft Institute for Water Education)

Federico Pisano (TU Delft - Geo-engineering)

A Metrikine (TU Delft - Engineering Structures, TU Delft - Offshore Engineering)

Geo-engineering
Copyright
© 2022 Evangelos Kementzetzidis, F. Pisano, A. Metrikine
DOI related publication
https://doi.org/10.1016/j.compgeo.2022.104810
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 Evangelos Kementzetzidis, F. Pisano, A. Metrikine
Geo-engineering
Volume number
148
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Abstract

The analysis of cyclically loaded piles is acquiring ever greater relevance in the field of geotechnical engineering, most recently in relation to the design of offshore monopiles. In this area, predicting the gradual accumulation of pile deflection under prolonged cycling is key to performing relevant serviceability assessments, for which simplified pile–soil interaction models that can be calibrated against common geotechnical data are strongly needed. This study proposes a new cyclic p−y model for piles in sand that takes a step further towards meeting the mentioned requirements. The model is formulated in the framework of memory-enhanced bounding surface plasticity, and extends to cyclic loading conditions the previous monotonic, CPT-based p−y formulation by Suryasentana and Lehane (2016); additionally, detailed modelling of pile–soil gapping is introduced to cope with the presence of unsaturated sand layers or, more generally, of cohesive soil behaviour. After detailed description of all model capabilities, field data from an onshore cyclic pile loading test are simulated using the proposed p−y model, with the most relevant parameters calibrated against available CPT data. Satisfactory agreement is shown between experimental and numerical results, which supports the practical applicability of the model and the need for further studies on a fully CPT-based calibration.