When a jack-up spudcan foundation is installed on seabeds consisting of a sand layer overlying soft clay, the potential for ‘punch-through' failure exists. This happens as a result of an abrupt reduction in bearing resistance when the foundation punches a block of sand into the underlying soft clay in an uncontrolled manner. This paper details an extensive series of 30 tests of flat circular and spudcan foundations continuously penetrated through samples of sand overlying clay, and performed under relevant stress conditions using a drum centrifuge. The large testing area of the drum centrifuge was used advantageously to produce test results that could be compared directly with tests covering a sand thickness over foundation diameter of 0·21 to 1·12. Results from retrospective finite-element analysis of the experiments are also described, with back-calculated values of the stress-level-dependent friction and dilation angles in the sand during peak penetration resistance shown to fit correlations in the literature. The back-analysis showed that larger values of peak resistance gave lower friction and dilation angles, which is consistent with gradual suppression of dilatancy under high confining stress. When compared with published results from visualisation experiments, the finite-element analysis showed a similar failure mechanism during peak resistance, with a frustum of sand forced into the underlying clay at an angle reflecting the dilation in the sand.
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December 2013
Research Article|
December 01 2013
Bearing capacity on sand overlying clay soils: experimental and finite-element investigation of potential punch-through failure Available to Purchase
K.K. LEE;
K.K. LEE
*
* Advanced Geomechanics, Nedlands, Western Australia (former PhD student of the University of Western Australia).
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M.J. CASSIDY;
M.J. CASSIDY
†
† Centre for Offshore Foundation Systems, the University of Western Australia, Crawley, Western Australia.
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M.F. RANDOLPH
M.F. RANDOLPH
†
† Centre for Offshore Foundation Systems, the University of Western Australia, Crawley, Western Australia.
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* Advanced Geomechanics, Nedlands, Western Australia (former PhD student of the University of Western Australia).
† Centre for Offshore Foundation Systems, the University of Western Australia, Crawley, Western Australia.
Publisher: Emerald Publishing
Received:
November 19 2012
Accepted:
May 29 2013
Online ISSN: 1751-7656
Print ISSN: 0016-8505
© 2013 Thomas Telford Ltd
2013
Geotechnique (2013) 63 (15): 1271–1284.
Article history
Received:
November 19 2012
Accepted:
May 29 2013
Citation
LEE K, CASSIDY M, RANDOLPH M (2013), "Bearing capacity on sand overlying clay soils: experimental and finite-element investigation of potential punch-through failure". Geotechnique, Vol. 63 No. 15 pp. 1271–1284, doi: https://doi.org/10.1680/geot.12.P.175
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