Technical Papers
Oct 13, 2017

Spatial Variability of CPT Parameters and Silty Fines in Liquefiable Beach Sands

Publication: Journal of Geotechnical and Geoenvironmental Engineering
Volume 143, Issue 12

Abstract

Increasing awareness of the role of spatial variability in the assessment of liquefaction susceptibility has driven the need to characterize the vertical and horizontal spatial variability of liquefiable soils. Specifically, the variability of the standard penetration tests and cone penetration tests (CPTs) and the fines content are needed to evaluate liquefaction triggering. Although the analysis and determination of the vertical inherent variability of sandy soils has been conducted in several prior studies, very little prior work has been conducted to characterize the typical horizontal component of spatial variability. This study employs a comprehensive data set developed from a test site established to evaluate liquefaction susceptibility and mitigation to characterize the vertical and horizontal spatial variability in CPT cone tip and sleeve resistance and the fines content. Random field model (RFM) parameters, such as the vertical and horizontal scale of fluctuation, coefficient of inherent variability, and trend functions for each measurement are established as well as the variability in these parameters. A site-specific CPT-based fines content correlation is employed within kriging simulations performed using calibrated geostatistical models and demonstrated the effect of the assumed variogram model on the accuracy of fines content measured in separate independent boreholes. This paper shows that calibrated kriging simulations can sufficiently predict the fines content in silty beach sands and that the spatial variability of fines content can be estimated using RFM parameters developed from CPTs.

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Acknowledgments

Funding for the data used in this paper was provided to the senior author by the IDEA Program of the National Cooperative Highway Research Program, National Academy of Science, under Grant NCHRP-180, and the South Carolina chapter of the Pile Driving Contractors Association (PDCA). This support is gratefully acknowledged.

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Go to Journal of Geotechnical and Geoenvironmental Engineering
Journal of Geotechnical and Geoenvironmental Engineering
Volume 143Issue 12December 2017

History

Received: Sep 30, 2016
Accepted: Jun 2, 2017
Published online: Oct 13, 2017
Published in print: Dec 1, 2017
Discussion open until: Mar 13, 2018

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Authors

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Taeho Bong
Postdoctoral Scholar, School of Civil and Construction Engineering, Oregon State Univ., 101 Kearney Hall, Corvallis, OR 97331.
Armin W. Stuedlein, M.ASCE [email protected]
Associate Professor, School of Civil and Construction Engineering, Oregon State Univ., 101 Kearney Hall, Corvallis, OR 97331 (corresponding author). E-mail: [email protected]

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