Technical Papers
Oct 20, 2011

Comprehensive Load Test on Prestressed Concrete Piles in Alluvial Clays and Marl in Savannah, Georgia

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Publication: Journal of Performance of Constructed Facilities
Volume 28, Issue 1

Abstract

This paper introduces a comprehensive full-scale pile load test program on 457-mm (18-in.) square prestressed concrete (PSC) piles in Savannah, Georgia. The program consisted of pile driving analyzer testing during initial pile driving and restrikes, Statnamic tests, static axial compression load tests, and reciprocal lateral load tests. On the basis of the interpretation of the test data, some important findings were obtained: (1) the alluvial clays in Savannah can only provide very limited resistance; (2) the time-dependent pile capacity gain after pile driving (i.e., setup effect) was approximately proportional to the pile embedment length into the Marl formation; (3) the estimated equivalent static pile capacities from the Statnamic tests were comparable to those from the static axial load tests; (4) the Marl formation is a competent bearing stratum for piles; (5) the potential degradation of pile concrete stiffness caused by pile driving should be accounted for in pile capacity analysis; and (6) the piles exhibited stiffer response under the monotonic lateral loading condition than the cyclic lateral loading condition. Finally, predictions on both axial and lateral pile capacities, using the soil parameters derived from the instrumentation data and back-analysis of the pile load tests, were compared with the corresponding pile load test results. The comparisons demonstrate that in combination of the static-bearing capacity formulas and the LPILE program, the developed soil models can make reliable predictions on both the vertical and lateral behaviors of the PSC piles driven through the soft alluvial clays to end bearing in the Marl formation.

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Acknowledgments

Many organizations and people contributed to the success of this project and special thanks are due to El Paso Energy Southern LNG, Federal Energy Regulatory Commission (FERC), CB&I, Applied Foundation Testing, Inc. (AFT), Ch2M Hill, TIC/Kiewit, and the former geotechnical engineers of WPC: Mr. Wu Yang and Mr. Tyler MacLeod. Financial support was provided by the Fundamental Research Funds for the Central Universities (No. 0230219134), the project sponsored by SRF for ROCS, SEM, Program for Changjiang Scholar and Innovative Research Team in University (PCSIRT, IRT1029), and Innovation Program of Shanghai Municipal Education Commission (No.13ZZ027). The three anonymous reviewers, the editor, and Dr. Ye Lu of Shanghai University are sincerely appreciated for comments and suggestions that substantially improved the presentation of this paper.

References

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Published In

Go to Journal of Performance of Constructed Facilities
Journal of Performance of Constructed Facilities
Volume 28Issue 1February 2014
Pages: 178 - 190

History

Received: May 29, 2011
Accepted: Oct 17, 2011
Published online: Oct 20, 2011
Published in print: Feb 1, 2014

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Authors

Affiliations

Yong Tan, Ph.D., A.M.ASCE [email protected]
Associate Professor, Dept. of Geotechnical Engineering, Tongji Univ., Shanghai 200092, China; formerly, Project Engineer, WPC, Inc., 2201 Rowland Ave., Savannah, GA 31404 (corresponding author). E-mail: [email protected]
Guoming Lin, Ph.D., F.ASCE [email protected]
P.E.
Senior Principal, Terracon Consultants, Inc., 2201 Rowland Ave., Savannah, GA 31404. E-mail: [email protected]

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