A Finite-Element Work-Hardening Plasticity Model of the Uniaxial Compression and Subsequent Failure of Porous Cylinders Including Effects of Void Nucleation and Growth—Part I: Plastic Flow and Damage

Author:

Lee J. H.1,Zhang Y.1

Affiliation:

1. Department of Mechanical Engineering, University of Alaska, Fairbanks, AK 99775

Abstract

Gurson’s mixed hardening plasticity model (which takes into account the progressive damage due to void nucleation and growth of an initially dense material), with strain and stress-controlled nucleations, was used in a large deformation finite element program to study the plastic flow and damage in the uniaxial compression of cylinders under sticking friction. Effects of strain hardening, nucleation models, yield surface curvature, and geometry on the distributions and evolutions of stresses, strains, mean stress, void fractions, and coalescence are studied in detail. Using Gurson’s isotropic hardening model, positive mean and axial stresses developed at the bulge of the cylinder with growth of voids at latter stages of deformation. Due low stress triaxiality (Σm/σe<0.6) at the bulge, the process is nucleation rather than growth dominated for the majority of the cases studied. At failure, the maximum void fraction at the bulge among all cases studied is 0.085 and is far less than the critical void fraction (≈0.15) for coalescence.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

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1. Mechanical Response of Porous Materials: The Gurson Model;Plasticity of Pressure-Sensitive Materials;2013-10-26

2. A Mixed Optimization Approach for Parameter Identification Applied to the Gurson Damage Model;Advanced Computational Materials Modeling;2010-11-08

3. A complete GTN model for prediction of ductile failure of pipe;Journal of Materials Science;2008-03

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