Technical Papers
Jul 31, 2015

Serviceability Performance Evaluation of Helical Piles under Uplift Loading

Publication: Journal of Performance of Constructed Facilities
Volume 30, Issue 4

Abstract

The use of helical pile foundations has widely expanded in recent years. However, the prediction of the load-displacement performance of helical piles under uplift loading for service-level displacements is still a challenge for designers. In this work, a probabilistic power law model is used to characterize the random nonlinear uplift load-displacement relationship of deep helical piles. Model parameters are found from a database of 30 uplift loading tests conducted on helical piles in Brazil. Using structural reliability concepts, a practical example of a transmission tower foundation is provided to illustrate the use of the developed probabilistic model for serviceability limit state (SLS) evaluation of helical piles. The investigation takes into account the uncertainties of three parameters: one parameter of the load-displacement curve, the empirical correlation between pile capacity and installation torque, and the wind loading on foundations of transmission lines. For the example evaluated, the reliability indexes increase with allowable displacements. Additionally, the shape of the load-displacement curve is shown to be relevant when small allowance displacements are specified. In addition, when the allowable displacements approach the failure criteria for the ultimate capacity of the foundation, the developed service limit state model converges naturally to the ultimate limit state model. The structural load is found to be the random variable with the largest contribution to failure probabilities, especially for larger allowable displacements.

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References

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Go to Journal of Performance of Constructed Facilities
Journal of Performance of Constructed Facilities
Volume 30Issue 4August 2016

History

Received: Dec 3, 2014
Accepted: May 14, 2015
Published online: Jul 31, 2015
Discussion open until: Dec 31, 2015
Published in print: Aug 1, 2016

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Authors

Affiliations

Zorany Z. Mosquera
Former M.Phil Student, Dept. of Geotechnical Engineering, Univ. of São Paulo at São Carlos, Avenida Trabalhador São Carlense, 400, 13566-590, São Carlos, Brazil.
Cristina de H. C. Tsuha, Ph.D., A.M.ASCE [email protected]
Lecturer, Dept. of Geotechnical Engineering, Univ. of São Paulo at São Carlos, Avenida Trabalhador São Carlense, 400, 13566-590, São Carlos, Brazil (corresponding author). E-mail: [email protected]
André T. Beck, Ph.D., A.M.ASCE
Associate Professor, Dept. of Structural Engineering, Univ. of São Paulo at São Carlos, Avenida Trabalhador São Carlense, 400, 13566-590, São Carlos, Brazil.

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