Technical Papers
Nov 13, 2018

SDMT-Based Numerical Analyses of Deep Excavation in Soft Soil

Publication: Journal of Geotechnical and Geoenvironmental Engineering
Volume 145, Issue 1

Abstract

The paper explores the application of conventional (DMT) and seismic (SDMT) dilatometer tests to an important case of deep excavation design. The work presents finite-element analyses simulating a deep excavation close to Barcelona (Spain). A thick layer of soft interbedded sandy and silty soils made characterization based on laboratory testing very difficult. SDMT offered an alternative for estimating the soil stiffness and its stress-strain dependency. Numerical results and high-quality monitoring data show quite close agreement for most phases of the construction process, supporting the use of seismic dilatometer tests in numerical analyses of deep excavations. The paper also indicates the importance of incorporating stiffness data at low strains. FE analyses involved some uncertainties derived from the presence of jet-grouting soil treatments. On this point, a parametric study illustrates the effects of different modeling approaches.

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Acknowledgments

This research was partly supported by the Spanish Ministry of Economy through Grant No. BIA2014-59467-R.

References

Amoroso, S., B. Lehane, and M. Fahey. 2013. “G-γ decay curves in sand by seismic dilatometer (SDMT).” In Proc., 4th Int. Conf. on Geotechnical and Geophysical Site Characterization, 447–452. London: Taylor & Francis.
Amoroso, S., P. Monaco, B. M. Lehane, and D. Marchetti. 2014. “Examination of the potential of the seismic dilatometer (SDMT) to estimate in situ stiffness decay curves in various soil types.” Soils Rocks 37 (3): 177–194.
Arroyo, M., M. Ciantia, R. Castellanza, A. Gens, and R. Nova. 2012. “Simulation of cement-improved clay structures with a bonded elasto-plastic model: A practical approach.” Comput. Geotech. 45: 140–150. https://doi.org/10.1016/j.compgeo.2012.05.008.
Arroyo, M., A. Di Mariano, A. Gens, E. Alonso, A. García Fontanet, and J. García Germán. 2007. “Management of third-party risk in an urban deep excavation project.” In Proc., 14th European Conf. on Soil Mechanics and Geotechnical Engineering, 527–532. Rotterdam, Netherlands: Millpress.
Arroyo, M., A. Di Mariano, P. Monaco, M. Devincenzi, and N. Pérez. 2008. “SDMT-based deep excavation design.” In Proc., 3rd Int. Conf. on Site Characterization, 967–973. London: Taylor & Francis.
Arroyo, M., and A. Gens. 2009. “Engineering assessment of jet-grouted structures.” In Proc., 17th Int. Conf. on Soil Mechanics and Geotechnical Engineering, 2338–2341. Amsterdam, Netherlands: IOS Press.
Arroyo, M., and T. Mateos. 2006. “Embankment design with DMT and CPTu: Prediction and performance.” In Proc., 2nd Int. Flat Dilatometer Conf., edited by R. A. Failmezger and J. B. Anderson, 62–68. Lancaster, VA: In-Situ Soil Testing.
Arroyo, M., T. Mateos, M. Devincenzi, R. Gómez-Escoubes, and J. M. Martínez. 2004. “CPTu-DMT performance-based correlation for settlement design.” In Proc., 2nd Int. Conf. on Site Characterization, 1605–1610. Rotterdam, Netherlands: Millpress.
Been, K., A. Quiñonez, and R. B. Sancio. 2010. “Interpretation of the CPT in engineering practice.” In Proc., 2nd Int. Symp. on Cone Penetration Testing. Madison, WI: Omnipress.
Benz, T. 2007. “Small-strain stiffness of soils and its numerical consequences.” Ph.D. thesis, Institut fur Geotechnik, Universität Stuttgart.
Bosco, G., and P. Monaco. 2016. “Strain moduli of alluvial soils from CPT, DMT, Vs, and lab tests.” In Proc., 5th Int. Conf. on Geotechnical and Geophysical Site Characterization, 395–400. Sydney: Australian Geomechanics Society.
Brinkgreve, R. B. J., K. J. Bakker, and P. G. Bonnier. 2006. “The relevance of small-strain soil stiffness in numerical simulation of excavation and tunnelling projects.” In Numerical methods in geotechnical engineering, 133–139. London: CRC Press.
Burland, J. B. 1989. “Small is beautiful—The stiffness of soils at small strains.” Can. Geotech. J. 26 (4): 499–516. https://doi.org/10.1139/t89-064.
Calvello, M., and R. J. Finno. 2004. “Selecting parameters to optimize in model calibration by inverse analysis.” Comput. Geotech. 31 (5): 410–424. https://doi.org/10.1016/j.compgeo.2004.03.004.
Cho, W., and R. J. Finno. 2009. “Stress-strain responses of block samples of compressible Chicago glacial clays.” J. Geotech. Geoenviron. Eng. 136 (1): 178–188. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000186.
Cox, C., and P. W. Mayne. 2015. “Soil stiffness constitutive model parameters for geotechnical problems: A dilatometer testing approach.” In Proc., 3rd Int. Conf. on Flat Dilatometer, edited by S. Marchetti, et al., 393–400. Rome: DMT15 Conference Organizing Committee.
Dias, T. G. S., and A. Bezuijen. 2013. “General report of TC204: Underground constructions.” In Proc., 18th Int. Conf. on Soil Mechanics and Geotechnical Engineering, 1673–1680. Paris: Presses des Ponts.
Di Mariano, A., J. M. Gesto, A. Gens, and H. Schwarz. 2007. “Ground deformation and mitigating measures associated with the excavation of a new metro line.” In Proc., 14th European Conf. on Soil Mechanics and Geotechnical Engineering, 1901–1906. Rotterdam, Netherlands: Millpress.
Eramo, N., G. Modoni, and M. Arroyo. 2011. “Design control and monitoring of a jet grouted excavation bottom plug.” In Proc., 7th Int. Symp. on Geotechnical Aspects of Underground Construction in Soft Ground, 611–618. London: CRC Press.
Fahey, M., and J. P. Carter. 1993. “A finite element study of the pressuremeter test in sand using a non-linear elastic plastic model.” Can. Geotech. J. 30 (2): 348–362. https://doi.org/10.1139/t93-029.
Finno, R. J. 2010. “Evaluating excavation support systems to protect adjacent structures.” DFI J.–J. Deep Found. Inst. 4 (2): 3–19. https://doi.org/10.1179/dfi.2010.006.
Gámez, D. 2007. “Sequence stratigraphy as a tool for water resources management in alluvial coastal aquifers: Application to the Llobregat delta (Barcelona, Spain).” Ph.D. thesis, Dept. of Geotechnical Engineering and Geosciences, Universitat Politècnica de Catalunya.
Garitte, B., M. Arroyo, and A. Gens. 2010. “Analysis of ground movements induced by diaphragm wall installation.” In Proc., 7th European Conf. on Numerical Methods in Geotechnical Engineering, 547–552. London: CRC Press.
Gens, A., A. Di Mariano, J. M. Gesto, and H. Schwarz. 2006. “Ground movement control in the construction of a new metro line in Barcelona.” In Proc., Geotechnical Aspects of Underground Construction in Soft Ground, 389–395. London: Taylor & Francis.
Gens, A., A. Di Mariano, and M. T. Yubero. 2011. “EPB tunnelling in deltaic deposits: Observations of ground movements.” In Proc., Geotechnical Aspects of Underground Construction in Soft Ground, 987–993. London: Taylor & Francis.
Gens, A., and L. Lloret. 2003. “Monitoring a preload test on soft ground, field measurements in geomechanics.” In Proc., 6th Int. Symp. FMGM 2003, 53–59. Lisse, Netherlands: Swets & Zeitlinger B.V.
Hashash, Y. M., C. Marulanda, J. Ghaboussi, and S. Jung. 2006. “Novel approach to integration of numerical modeling and field observations for deep excavations.” J. Geotech. Geoenviron. Eng. 132 (8): 1019–1031. https://doi.org/10.1061/(ASCE)1090-0241(2006)132:8(1019).
Hashash, Y. M., and A. J. Whittle. 1996. “Ground movement prediction for deep excavations in soft clay.” J. Geotech. Eng. 122 (6): 474–486. https://doi.org/10.1061/(ASCE)0733-9410(1996)122:6(474).
Ho, C. E., C. H. Lim, and C. G. Tan. 2002. “Characteristics of bored piles installed through jet grout layer.” J. Perform. Constr. Facil. 16 (4): 160–168. https://doi.org/10.1061/(ASCE)0887-3828(2002)16:4(160).
Jardine, R. J. 1992. “Nonlinear stiffness parameters from undrained pressuremeter tests.” Can. Geotech. J. 29 (3): 436–447. https://doi.org/10.1139/t92-048.
Jardine, R. J., J. R. Standing, and N. Kovacecic. 2005. “Lessons learned from full scale observations and the practical application of advanced testing and modeling.” In Deformation characteristics of geomaterials, 201–245. London: Taylor & Francis.
Khoiri, M., and C. Y. Ou. 2013. “Evaluation of deformation parameter for deep excavation in sand through case histories.” Comput. Geotech. 47: 57–67. https://doi.org/10.1016/j.compgeo.2012.06.009.
Ledesma, A., A. Gens, and E. E. Alonso. 1996. “Estimation of parameters in geotechnical backanalysis—I. Maximum likelihood approach.” Comput. Geotech. 18 (1): 1–27. https://doi.org/10.1016/0266-352X(95)00021-2.
Lehane, B. M., and M. Fahey. 2004. “Using SCPT and DMT data for settlement prediction in sand.” In Proc., 2nd Int. Conf. on Site Characterization, 1673–1679. Rotterdam, Netherlands: Millpress.
Marchetti, S. 1980. “In situ tests by flat dilatometer.” J. Geotech. Eng. Div. 106 (3): 299–321.
Marchetti, S. 1997. “The flat dilatometer: Design applications.” In Proc., 3rd Int. Geotechnical Engineering Conf., 421–448. Cairo, Egypt: Cairo Univ.
Marchetti, S., and D. K. Crapps. 1981. Flat dilatometer manual. Gainesville, FL: G. P. E. Inc.
Marchetti, S., P. Monaco, G. Totani, and D. Marchetti. 2008. “In situ tests by seismic dilatometer (SDMT).” In From research to practice in geotechnical engineering: Geotechnical special publication No. 180, 292–311. Reston, VA: ASCE.
Mayne, P. W., J. A. Schneider, and G. K. Martin. 1999. “Small- and large-strain soil properties from seismic flat dilatometer tests.” In Proc., 2nd Int. Symp. on Pre-failure Deformation Characteristics in Geomaterials, 419–427. Rotterdam, Netherlands: A.A. Balkema.
Monaco, P., S. Amoroso, S. Marchetti, D. Marchetti, G. Totani, S. Cola, and P. Simonini. 2014. “Overconsolidation and stiffness of Venice lagoon sands and silts from SDMT and CPTU.” J. Geotech. Geoenviron. Eng. 140 (1): 215–227. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000965.
Monaco, P., and S. Marchetti. 2004. “Evaluation of the coefficient of subgrade reaction for design of multipropped diaphragm walls from DMT moduli.” In Proc., 2nd Int. Conf. on Site Characterization, 993–1002. Rotterdam, Netherlands: Millpress.
Monaco, P., G. Totani, and M. Calabrese. 2007. “DMT-predicted vs observed settlements: A review of the available experience.” Studia Geotechnica et Mechanica 29 (1–2): 103–120.
Obrzug, R., and M. Preisig. 2013. “Large scale 3D numerical simulations of deep excavations in urban areas—Constitutive aspects and optimization.” Mitteilungen der Geotechnik Schweiz 167: 57–68.
Ou, C. Y. 2016. “Finite element analysis of deep excavation problems.” J. GeoEng. 11 (1): 1–12. https://doi.org/10.6310/jog.2016.11(1).1.
Pepe, G., G. Coen, Q. Napoleoni, A. Pagliaroli, F. Stigliano, M. Mancini, G. Lanzo, S. Silvani, M. Scarapazzi, and S. Storoni Ridolfi. 2015. “SDMT testing for the estimation of in situ G-γ decay curves in soft alluvial and organic soils.” In Proc., 3rd Int. Conf. on Flat Dilatometer, edited by S. Marchetti, et al., 423–430. Rome: DMT15 Conference Organizing Committee.
Pineda, J. A., M. Arroyo, N. Sau, A. Gens, and N. Pérez. 2012. “Testing block samples from silty deposits.” In Proc., 4th Int. Conf. on Site Characterization, 1815–1823. London: Taylor & Francis.
Rodrigues, C., S. Amoroso, N. Cruz, and J. Cruz. 2016. “G-γ decay curves in granitic residual soils by seismic dilatometer.” In Proc., 5th Int. Conf. on Geotechnical and Geophysical Site Characterization, 1137–1142. Sydney: Australian Geomechanics Society.
Sau, N., M. Arroyo, and A. Gens. 2012. “Site characterization alternatives for numerical models of a deep excavation.” In Proc., 4th Int. Conf. on Site Characterization, 1169–1177. London: Taylor & Francis.
Schanz, T., P. A. Vermeer, and P. G. Bonnier. 1999. “The hardening soil model: Formulation and verification.” In Proc., Int. Symp. on Beyond 2000 in Computational Geotechnics—10 Years of PLAXIS, 1–16. Rotterdam, Netherlands: A.A. Balkema.
Schnaid, F., P. D. Prietto, and N. C. Consoli. 2001. “Characterization of cemented sand in triaxial compression.” J. Geotech. Geoenviron. Eng. 127 (10): 857–868. https://doi.org/10.1061/(ASCE)1090-0241(2001)127:10(857).
St John, H. D., D. M. Potts, R. J. Jardine, and K. G. Higgins. 1993. “Prediction and performance of ground response due to construction of a deep basement at 60 Victoria Embankment.” In Predictive soil mechanics, 581–608. London: Thomas Telford.
Vermeer, P. A. 2001. On single anchored retaining walls.
Wong, I. H., and T. Y. Poh. 2000. “Effects of jet grouting on adjacent ground and structures.” J. Geotech. Geoenviron. Eng. 126 (3): 247–256. https://doi.org/10.1061/(ASCE)1090-0241(2000)126:3(247).
Yoo, C., S. W. Park, B. Kim, and H. Ban, eds. 2014. Geotechnical aspects of underground construction in soft ground. London: CRC Press.

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Go to Journal of Geotechnical and Geoenvironmental Engineering
Journal of Geotechnical and Geoenvironmental Engineering
Volume 145Issue 1January 2019

History

Received: Sep 11, 2017
Accepted: Jul 16, 2018
Published online: Nov 13, 2018
Published in print: Jan 1, 2019
Discussion open until: Apr 13, 2019

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Authors

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Alessandra Di Mariano
Staff Scientist, International Center for Numerical Methods in Engineering, Edifici C1Campus Nord UPCC/ Gran Capitán S/N, 08034 Barcelona, Spain.
Researcher, Istituto Nazionale di Geofisica e Vulcanologia, VialeCrispi 43, 67100 L’Aquila, Italy (corresponding author). ORCID: https://orcid.org/0000-0001-5835-079X. Email: [email protected]
Marcos Arroyo
Professor, Dept. of Civil and Environmental Engineering, Geosciences Division, Universitat Politècnica de Catalunya (UPC), 08031 Barcelona, Spain.
Paola Monaco
Associate Professor, Dept. of Civil, Architectural, and Environmental Engineering, Univ. of L’Aquila, 67100 L’Aquila, Italy.
Antonio Gens
Professor, Dept. of Civil and Environmental Engineering, Geosciences Division, Universitat Politècnica de Catalunya (UPC), 08031 Barcelona, Spain.

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