Technical Notes
Feb 13, 2014

Water Table Correction Factors for Settlements of Shallow Foundations in Granular Soils

Publication: International Journal of Geomechanics
Volume 15, Issue 1

Abstract

Shallow foundations are designed to limit settlements within tolerable limits. Additional settlements produced by the rise of the water table due to rain or floods can jeopardize the integrity of the foundation. This paper proposes a rational method, based on strain influence factors, to predict the additional settlement produced by the rise of the water table on a footing resting on sands. The proposed method was validated using extensive laboratory test data, where model footings of five different shapes were loaded in sand placed at two relative densities, and the water level was raised from the bottom while the additional settlements were measured. The clean sands used in the tests were such that there were negligible capillary effects. Separate tests were carried out to demonstrate that the capillary effects were insignificant. The proposed method can be used as the basis for further studies that incorporate the effect of grain size distribution or the effects of water table fluctuations on additional settlement.

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Acknowledgments

The authors are grateful for Mr. Warren O’Donnell’s valuable contributions throughout the project, especially in the design and fabrication of the laboratory test setup. The constructive comments from the reviewers helped in improving the quality of this manuscript.

References

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Published In

Go to International Journal of Geomechanics
International Journal of Geomechanics
Volume 15Issue 1February 2015

History

Received: Oct 8, 2013
Accepted: Feb 11, 2014
Published online: Feb 13, 2014
Published in print: Feb 1, 2015

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Authors

Affiliations

Mohammad A. Shahriar [email protected]
Ph.D. Candidate, School of Engineering and Physical Sciences, Faculty of Science and Engineering, James Cook Univ., Townsville, QLD 4811, Australia (corresponding author). E-mail: [email protected]
Nagaratnam Sivakugan, F.ASCE [email protected]
P.E.
Associate Professor and Head, Discipline of Civil and Environmental Engineering, School of Engineering and Physical Sciences, Faculty of Science and Engineering, James Cook Univ., Townsville, QLD 4811, Australia. E-mail: [email protected]
Braja M. Das, F.ASCE [email protected]
P.E.
Dean Emeritus, California State Univ., Sacramento, CA 95819. E-mail: [email protected]
Alex Urquhart [email protected]
Geotechnical Engineer, Coffey Pty Ltd., 47 Doggett St., Newstead, Brisbane, QLD 4006, Australia. E-mail: [email protected]
Michael Tapiolas [email protected]
Graduate Engineer, UDP Consulting Engineers, 84 Denham St., Townsville, QLD 4810, Australia. E-mail: [email protected]

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