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Identifying parameters controlling soil delayed behaviour from laboratory and in situ pressuremeter testing. (English) Zbl 1273.74327

Summary: The aim of this paper is to present a methodology for identifying the soil parameters controlling the delayed behaviour from laboratory and in situ pressuremeter tests by using an elasto-viscoplastic model (EVP-MCC) based on Perzyna’s overstress theory and on the elasto-plastic Modified Cam Clay model. The influence of both the model parameters and the soil permeability was studied under the loading condition of pressuremeter tests by coupling the proposed model equations with Biot’s consolidation theory. On the basis of the parametric study, a methodology for identifying model parameters and soil permeability by inverse analysis from three levels of constant strain rate pressuremeter tests was then proposed and applied on tests performed on natural Saint-Herblain clay. The methodology was validated by comparing the optimized values of soil parameters and the values of the same parameters obtained from laboratory test results, and also by using the identified parameters to simulate other tests on the same samples. The analysis of the drainage condition and the strain rate effect during a pressuremeter test demonstrated the coupled influence of consolidation and viscous effects on the test results. The numerical results also showed that the inverse analysis procedure could successfully determine the parameters controlling the time-dependent soil behaviour.

MSC:

74L10 Soil and rock mechanics
74C10 Small-strain, rate-dependent theories of plasticity (including theories of viscoplasticity)
Full Text: DOI

References:

[1] Mechanics of Cohesive-frictional Materials 10825010 10991484 2000 5 8
[2] Menard L. Pressiometre. Brevet Francais d’invention. No.1.117.983, 1955.
[3] Zentar, Identification of soil parameters by inverse analysis, Computers and Geotechnics 28 (2) pp 129– (2001)
[4] Calvello, Selecting parameters to optimize in model calibration by inverse analysis, Computers and Geotechnics 31 (5) pp 411– (2004)
[5] Anderson, Rate effects in pressuremeter tests in clays, Journal of Geotechnical Engineering 113 (11) pp 1344– (1987)
[6] Bahar, Forecast of creep settlements of heavy structures using pressuremeter tests, Computers and Geotechnics 17 (4) pp 507– (1995)
[7] Pye, Influence of constitutive models on self-boring pressuremeter interpretation in clay, Canadian Geotechnical Journal 32 (3) pp 420– (1995) · doi:10.1139/t95-046
[8] Hicher, Identifying soil parameters by means of laboratory and in situ testing, Computers and Geotechnics 19 (2) pp 153– (1996)
[9] Rangeard, Determining soil permeability from pressuremeter tests, International Journal for Numerical and Analytical Methods in Geomechanics 27 (1) pp 1– (2003)
[10] Yin ZY, Hicher PY, Riou Y, Huang HW. An elasto-viscoplastic model for soft clay. Soil and Rock Behavior and Modeling-Proceedings of the Geoshanghai Conference, vol. 150, Shanghai, Geotechnical Special Publication, 2006; 312-319.
[11] Perzyna P. The constitutive equations for work-hardening and rate sensitive plastic materials. Proceedings of Vibration Problems, vol. 3, Warsaw, 1963; 281-290.
[12] Perzyna, Fundamental problems in viscoplasticity, Advances in Applied Mechanics 9 pp 243– (1966)
[13] Oka, Two-dimensional consolidation analysis using an elasto viscoplastic constitutive equation, International Journal for Numerical and Analytical Methods in Geomechanics 10 (1) pp 1– (1986) · Zbl 0574.73105
[14] Hinchberger, Modelling the rate-sensitive characteristics of the Gloucester foundation soil, Canadian Geotechnical Journal 35 (5) pp 769– (1998)
[15] Britto, Critical State Soil Mechanics via Finite Elements (1987) · Zbl 0704.73080
[16] Rangeard D. Identification des caractéristiques hydro-mécaniques d’une argile par analyse inverse des essais pressiométriques. Thèse de l’Ecole Centrale de Nantes et l’Université de Nantes, 2002.
[17] Zentar R. Analyse inverse des essais pressiometrique, application a l’argile de Saint-Herblain. Thèse de l’Ecole Centrale de Nantes et l’Université de Nantes, 1999.
[18] Yin ZY. Modelisation viscoplastique des argiles naturelles et application au calcul de remblais sur sols compressibles. Thèse de l’Ecole Centrale de Nantes et l’Université de Nantes, 2006.
[19] Vaid, Time-dependent behavior of undisturbed clay, Journal of the Geotechnical Engineering 103 (7) pp 693– (1977)
[20] Lee Goh A, Fahey M. Application of a 1-dimensional cavity expansion model to pressuremeter and piezocone tests in clay. Proceeding of the Seventh International Conference on Computer Methods and Advances in Geomechanics, Cairns, 1991; 255-260.
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