Technical Papers
Mar 10, 2018

Reliability-Based Internal Limit State Analysis and Design of Soil Nails Using Different Load and Resistance Models

Publication: Journal of Geotechnical and Geoenvironmental Engineering
Volume 144, Issue 5

Abstract

A general approach for reliability-based analysis and design for pullout and tensile failure internal limit states of soil nail walls is presented. Reliability index values are computed using a closed-form solution that captures the influence of nominal load and nominal resistance model type and accuracy (method bias), bias dependencies, uncertainty in nominal load and resistance values, and possible cross-correlation (dependency) between nominal nail load and resistance terms. Maximum nail loads under operational conditions for the two limit states are calculated using the current Federal Highway Administration (FHWA) simplified method and an improved version recently published by the authors. Nail pullout capacity is calculated using the effective stress method used in Hong Kong and a modified version that has been empirically adjusted to improve model accuracy for soil nails installed in two different Hong Kong soils. Example designs with three different nail length patterns are used to illustrate the design approach and the assessment of margins of safety using factor of safety and reliability index for the pullout limit state. The results of parametric analyses and design examples demonstrate that for the same target reliability index, the combination of improved load and resistance models gave better solutions based on total length of soil nails.

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Acknowledgments

The authors are grateful for financial support through an ENGAGE research grant awarded to the corresponding author by the Natural Sciences and Engineering Research Council of Canada (NSERC).

References

AASHTO. (2014). “LRFD bridge design specifications.” Washington, DC.
Allen, T. M., Nowak, A. S., and Bathurst, R. J. (2005). “Calibration to determine load and resistance factors for geotechnical and structural design.”, Washington, DC.
Babu, S. G. L., and Singh, V. P. (2011). “Reliability-based load and resistance factors for soil-nail walls.” Can. Geotech. J., 48(6), 915–930.
Basha, B. M., and Babu, S. G. L. (2012). “Target reliability-based optimisation for internal seismic stability of reinforced soil structures.” Géotechnique, 62(1), 55–68.
Bathurst, R. J., Allen, T. M., and Nowak, A. S. (2008). “Calibration concepts for load and resistance factor design (LRFD) of reinforced soil walls.” Can. Geotech. J., 45(10), 1377–1392.
Bathurst, R. J., Huang, B., and Allen, T. M. (2011). “Load and resistance factor design (LRFD) calibration for steel grid reinforced soil walls.” Georisk, 5(3–4), 218–228.
Bathurst, R. J., and Javankhoshdel, S. (2017). “Influence of model type, bias and input parameter variability on reliability analysis for simple limit states in soil-structure interaction problems.” Georisk, 11(1), 42–54.
Bathurst, R. J., Javankhoshdel, S., and Allen, T. M. (2017). “LRFD calibration of simple soil-structure limit states considering method bias and design parameter variability.” J. Geotech. Geoenviron. Eng., 04017053.
Bathurst, R. J., and Miyata, Y. (2015). “Reliability-based analysis of combined installation damage and creep for the tensile rupture limit state of geogrid reinforcement in Japan.” Soils Found., 55(2), 437–446.
Cartier, G., and Gigan, J. P. (1983). “Experiments and observations in soil nailing structures.” Proc., 8th European Conf. on Soil Mechanics and Founding Engineering, A.A. Balkema, Rotterdam, Netherlands, 473–476.
Chalermyanont, T., and Benson, C. H. (2004). “Reliability-based design for internal stability of mechanically stabilized earth walls.” J. Geotech. Geoenviron. Eng., 163–173.
Chalermyanont, T., and Benson, C. H. (2005). “Reliability-based design for external stability of mechanically stabilized earth walls.” Int. J. Geomech., 196–205.
Cheung, R. W. M., and Shum, K. W. (2012). “Review of the approach for estimation of pullout resistance of soil nails.”, Hong Kong Government, Hong Kong.
GEO (Geotechnical Engineering Office). (2008). “Geoguide 7—Guide to soil nail design and construction.”, Hong Kong.
Hong, C. Y., Yin, J. H., Pei, H. F., and Zhou, W. H. (2013). “Experimental study on the pullout resistance of pressure-grouted soil nails in the field.” Can. Geotech. J., 50(7), 693–704.
Kim, D., and Salgado, R. (2012a). “Load and resistance factors for external stability checks of mechanically stabilized earth walls.” J. Geotech. and Geoenviron. Eng., 241–251.
Kim, D., and Salgado, R. (2012b). “Load and resistance factors for internal stability checks of mechanically stabilized earth walls.” J. Geotech. Geoenviron. Eng., 910–921.
Lazarte, C. A. (2011). “Proposed specifications for LRFD soil-nailing design and construction.”, Transportation Research Board, National Research Council, Washington, DC.
Lazarte, C. A., Elias, V., Espinoza, D., and Sabatini, P. J. (2003). “Geotechnical engineering circular No. 7 soil nail walls.”, Federal Highway Administration, Washington, DC.
Lazarte, C. A., Robinson, H., Gómez, J. E., Baxter, A., Cadden, A., and Berg, R. (2015). “Geotechnical engineering circular No. 7 soil nail walls—Reference manual.”, Federal Highway Administration, Washington, DC.
Lin, P., and Bathurst, R. J. (2018). “Influence of cross-correlation between nominal load and resistance on reliability-based design for simple linear soil-structure limit states.” Can. Geotech. J., 55(2), 279–295.
Lin, P., Bathurst, R. J., Javankhoshdel, S., and Liu, J. (2017a). “Statistical analysis of the effective stress method and modifications for prediction of ultimate bond strength of soil nails.” Acta Geotech., 12(1), 171–182.
Lin, P., Bathurst, R. J., and Liu, J. (2017b). “Statistical evaluation of the FHWA simplified method and modifications for predicting soil nail loads.” J. Geotech. Geoenviron. Eng., 04016107.
Lin, P., Liu, J., and Yuan, X. (2017c). “Reliability analysis of soil nail walls against external failures in layered ground.” J. Geotech. Geoenviron. Eng., 04016077.
Low, B. K. (2005). “Reliability-based design applied to retaining walls.” Géotechnique, 55(1), 63–75.
Melchers, R. E. (1999). Structural reliability analysis and prediction, 2nd Ed., Wiley, Chichester, U.K.
Nowak, A. S., and Collins, K. R. (2012). Reliability of structures, 2nd Ed., CRC Press, Boca Raton, FL.
Phear, A., Dew, C., Ozsoy, B., Wharmby, N. J., Judge, J., and Barley, A. D. (2005). “Soil nailing–best practice guidance.”, Construction Industry Research and Information Association, London.
Phoon, K. K. (2008). Reliability-based design in geotechnical engineering: Computations and applications, Taylor & Francis, London.
Schlosser, F., and Guilloux, A. (1981). “Le frottement dans les sols.” Revue Française de Géotechnique, 16(16), 65–77.
Soong, T. T. (2004). Fundamentals of probability and statistics for engineers, Wiley, Chichester, U.K.
Watkins, A. T., and Powell, G. E. (1992). “Soil nailing to existing slopes as landslip preventive works.” Hong Kong Eng., 20(3), 20–27.
Wei, W. B., and Cheng, Y. M. (2010). “Soil nailed slope by strength reduction and limit equilibrium methods.” Comput. Geotech., 37(5), 602–618.

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Go to Journal of Geotechnical and Geoenvironmental Engineering
Journal of Geotechnical and Geoenvironmental Engineering
Volume 144Issue 5May 2018

History

Received: Feb 10, 2017
Accepted: Oct 12, 2017
Published online: Mar 10, 2018
Published in print: May 1, 2018
Discussion open until: Aug 10, 2018

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Authors

Affiliations

Peiyuan Lin [email protected]
Postdoctoral Research Associate, Dept. of Civil Engineering, GeoEngineering Center at Queen’s-RMC, Royal Military College of Canada, Kingston, ON, Canada K7K 7B4. E-mail: [email protected]
Richard J. Bathurst, M.ASCE [email protected]
Professor and Research Director, Dept. of Civil Engineering, GeoEngineering Center at Queen’s-RMC, Royal Military College of Canada, Kingston, ON, Canada K7K 7B4 (corresponding author). E-mail: [email protected]

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