Numerical investigation of the seismic bearing capacity of offshore skirted foundations installed in sand using finite element limit analysis
Alaoua BOUAICHA, Nour El Islam BOUMEKIK, Abdelhak MABROUKI
Abstract. Within the scope of offshore infrastructure, skirted foundations have emerged as an innovative technical solution, offering significant advantages in optimizing the bearing capacity of structures. These foundations not only enhance resistance to vertical loading but also provide more effective control over settlements, ensuring greater stability and durability of marine structures. This study leverages Finite Element Limit Analysis (FELA) to conduct an in-depth assessment of the bearing capacity of a strip skirted foundation installed in sandy soil, subjected to seismic conditions. By employing a pseudo-static approach, the analysis meticulously examines several critical parameters, such as the embedment depth of the foundation (Ds), the internal friction angle of the sand (φ), and the horizontal seismic coefficient (kh). These variables are rigorously analyzed to understand their impact on the overall behavior of the foundation under dynamic loads. The results, derived from detailed numerical analyses, highlight the effectiveness and resilience of a strip skirted foundation in sandy soil, particularly under seismic loading. The effects of seismic forces have been precisely quantified using the Bearing Capacity Ratio (BCR), which shows a significant improvement when vertical skirts are incorporated into the foundation design. Additionally, the study reveals that variations in the horizontal seismic coefficient (kh) and the embedment depth (Ds) significantly influence the BCR. To provide a broader context, these results have been compared with previous studies available in the scientific literature, thereby validating the findings and contributing to the existing body of knowledge on the subject.
Keywords
Bearing Capacity, Limit Analysis, Pseudo-Static Approach, Sand, Skirted Footing
Published online 2/25/2025, 10 pages
Copyright © 2025 by the author(s)
Published under license by Materials Research Forum LLC., Millersville PA, USA
Citation: Alaoua BOUAICHA, Nour El Islam BOUMEKIK, Abdelhak MABROUKI, Numerical investigation of the seismic bearing capacity of offshore skirted foundations installed in sand using finite element limit analysis, Materials Research Proceedings, Vol. 48, pp 161-170, 2025
DOI: https://doi.org/10.21741/9781644903414-19
The article was published as article 19 of the book Civil and Environmental Engineering for Resilient, Smart and Sustainable Solutions
Content from this work may be used under the terms of the Creative Commons Attribution 3.0 license. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
References
[1] Terzaghi K. Theoretical Soil Mechanics. New York: John Wiley & Sons; 1943.
[2] Frydman S, Burd HJ. Numerical studies of bearing capacity factor Nγ. J Geotech Geoenviron Eng ASCE. 1997;123(1):20–29. https://doi.org/10.1061/(ASCE)1090-0241(1997)123:1(20)
[3] Loukidis D, Chakraborty T, Salgado R. Bearing capacity of strip footings on purely frictional soil under eccentric and inclined loads. Can Geotech J. 2008;45(6):768–787. https://doi.org/10.1139/T08-015
[4] Bouaicha A, Bouttout A, Rafa SA, Rouaz I. The Influence of groundwater on the bearing capacity of strip footings on sands. In: Proc. 11th ICTEA: International Conference on Thermal Engineering: Theory and Applications; 2018; Doha, Qatar.
[5] Bouaicha A, Mabrouki A. Failure Envelopes for Strip Footings on Sand Overlying Non-homogeneous Clay Under Combined Loading. Transp Infrastruct Geotech. 2024;11:44–62. https://doi.org/10.1007/s40515-022-00272-0
[6] Hamlaoui S, Messameh A, Mabrouki A, Bougouffa I, Bouaicha A. Three-dimensional elasto-plastic analysis for the undrained capacity of ring and circular footings embedded in heterogeneous clay. Transp Infrastruct Geotech. 2023;10:856–870. https://doi.org/10.1007/s40515-022-00246-2
[7] Mancer F, Bouaicha A, Chwała M, Mabrouki A. Probabilistic assessment of bearing capacity of skirted foundation under combined loadings with a rigid base. Geol J. 2024;1–14. https://doi.org/10.1002/gj.5008
[8] Zatar N, Baazouzi M, Bouaicha A, et al. Numerical Investigation Study on the Performance of Strip Footing Under Eccentric Loading Condition Embedded in Nonhomogeneous Clay Soils. Indian Geotech J. 2024. https://doi.org/10.1007/s40098-024-01006-4
[9] Paolucci R, Pecker A. Seismic Bearing Capacity of Shallow Strip Foundations on Dry Soils. Soils Found. 1997;37(3):95-105. https://doi.org/10.3208/sandf.37.3_95
[10] Cascone E, Carfì G, Maugeri M, Motta E. Effetto dell’inerzia del terreno sul fattore di capacità portante Nγ. In: Atti dell’Incontro Annuale dei Ricercatori di Geotecnica IARG 2004; 2004; Trento, Italy.
[11] Cascone E, Maugeri M, Motta E. Effetto dell’azione sismica sulla valutazione del fattore Nγ. In: V Convegno Nazionale dei Ricercatori di Ingegneria Geotecnica; 2006; Bari, Italy.
[12] Pane V, Vecchietti A, Cecconi M. A numerical study on the seismic bearing capacity of shallow foundations. Bull Earthq Eng. 2016;14(11):2931-2958. https://doi.org/10.1007/s10518-016-9937-0
[13] Cascone E, Casablanca O. Static and seismic bearing capacity of shallow strip footings. Soil Dyn Earthq Eng. 2016;84:204-223. https://doi.org/10.1016/j.soildyn.2016.02.010
[14] Conti R. Simplified formulas for the seismic bearing capacity of shallow strip foundations. Soil Dyn Earthq Eng. 2018;104:64-74. https://doi.org/10.1016/j.soildyn.2017.09.027
[15] Pal A, Ghosh P, Majumder M. Interaction effect of two closely spaced skirted strip foundations in cohesionless soil using upper-bound limit analysis. Int J Geomech. 2017;17(2):06016022. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000755
[16] Mohapatra D, Kumar J. Bearing capacity of embedded foundations using quasi-kinematic limit analysis. Comput Geotech. 2020;117:103275. https://doi.org/10.1016/j.compgeo.2019.103275
[17] Santhoshkumar G, Ghosh P. Ultimate bearing capacity of skirted foundation on cohesionless soil using slip line theory. Comput Geotech. 2020;123:103573. https://doi.org/10.1016/j.compgeo.2020.103573
[18] OptumG2. Optum Computational Engineering (OptumCE). Copenhagen, Denmark; 2021. Available from: https://optumce.com/