Stress-dependent behavior of saturated clay

Author:

Abdulhadi Naeem O.1,Germaine John T.2,Whittle Andrew J.2

Affiliation:

1. Arab Center for Engineering Studies (ACES), P.O. Box 5504, Amman 11183, Jordan; formerly Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139, USA.

2. Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139, USA.

Abstract

A program of K0-consolidated undrained triaxial compression tests has been performed to investigate the effects of consolidation stress level on the compression and shear behavior of resedimented Boston blue clay (RBBC). Specimens were consolidated to maximum vertical effective stresses in the range 0.15–10 MPa and tested at three overconsolidation ratios (OCR): 1, 2, and 4. The results show that the virgin compression curves are essentially linear in e–log[Formula: see text] space over the consolidation stress range. However, the normally consolidated K0stress ratio increases with the level of consolidation stress. The stress–strain–strength properties measured in undrained shear are significantly affected by the consolidation stress level at each OCR and show indications of non-normalizable behavior. At high pressures, the undrained shear stress–strain behavior becomes more ductile, requiring larger strains to mobilize peak resistance and exhibiting less post-peak strain-softening. The undrained strength ratio (su/[Formula: see text]) is not uniquely controlled by OCR as suggested by the SHANSEP equation, but consistently decreases with increasing consolidation effective stress. There is notable reduction in the stiffness ratio (Eu/[Formula: see text]) with stress level, and significant decrease in the large-strain friction angle.

Publisher

Canadian Science Publishing

Subject

Civil and Structural Engineering,Geotechnical Engineering and Engineering Geology

Reference19 articles.

1. Abdulhadi, N.O. 2009. An experimental investigation into the stress-dependent mechanical behavior of cohesive soil with application to wellbore instability. Ph.D. thesis, MIT, Cambridge, Mass.

2. An experimental investigation into the mechanical behaviour of a structured stiff clay

3. Anderson, G.R. 1991. Physical mechanisms controlling the strength and deformation behavior of frozen sand. ScD thesis, MIT, Cambridge, Mass.

4. On the compressibility and shear strength of natural clays

5. Normalized undrained shear strength of clay shales

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