Technical Papers
Jan 7, 2021

Analytical Quantification of Ultimate Resistance for Sand Flowing Horizontally around Monopile: New p-y Curve Formulation

Publication: International Journal of Geomechanics
Volume 21, Issue 3

Abstract

Driven by the need to enhance the performances of the Winkler model when dealing with large-diameter monopiles, the primary objective of this paper is to propose a new p-y formulation that has the ability to realistically model the stiff behavior of monopiles. At first, works revolving about the determination of the ultimate resistance of piles in sands were examined. It was found that the American Petroleum Institute's ultimate resistance for a shallow depth was found suitable to model the soil reaction near the monopile head. However, all proposed methods for the ultimate resistance at large depths were empirical and significantly overestimate the sand stiffness with depth. Taking advantage of the monopile problem geometry that is axisymmetric subjected to nonaxisymmetric loading, an expression giving the soil reaction against a rigid moving disc was established using the semianalytical finite element approach. By extending the obtained formula to failure using some fundamental notions of basic soil mechanics, the ultimate resistance for depths greater than one diameter was rigorously quantified. A totally new p-y formulation encompassing a new p-y shape and a new initial stiffness was proposed and encoded in an existing Winkler computer program. The results of the new formulation were validated by the study of three case histories from the literature.

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References

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Go to International Journal of Geomechanics
International Journal of Geomechanics
Volume 21Issue 3March 2021

History

Received: May 31, 2020
Accepted: Sep 29, 2020
Published online: Jan 7, 2021
Published in print: Mar 1, 2021
Discussion open until: Jun 7, 2021

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Professor, Dept. of Civil Engineering, Faculty of Technology, Univ. of Blida 1, Route de Soumaa, Blida 09000, Algeria. ORCID: https://orcid.org/0000-0003-2991-6533. Email: [email protected]

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