On the Extraction of Elastic–Plastic Constitutive Properties From Three-Dimensional Deformation Measurements

Author:

Gross A. J.1,Ravi-Chandar K.2

Affiliation:

1. Center for Mechanics of Solids, Structures, and Materials, Department of Aerospace Engineering and Engineering Mechanics, University of Texas at Austin, Austin, TX 78712-1221

2. Fellow ASME Center for Mechanics of Solids, Structures, and Materials, Department of Aerospace Engineering and Engineering Mechanics, University of Texas at Austin, Austin, TX 78712-1221 e-mail:

Abstract

In this article, a coupled experimental and numerical method is utilized for characterizing the elastic–plastic constitutive properties of ductile materials. Three-dimensional digital image correlation (DIC) is used to measure the full field deformation on two mutually orthogonal surfaces of a uniaxial tensile test specimen. The material’s constitutive model, whose parameters are unknown a priori, is determined through an optimization process that compares these experimental measurements with finite element simulations in which the constitutive model is implemented. The optimization procedure utilizes the robust dataset of locally observed deformation measurements from DIC in addition to the standard measurements of boundary load and displacement data. When the difference between the experiment and simulations is reduced sufficiently, a set of parameters is found for the material model that is suitable to large strain levels. This method of material characterization is applied to a tensile specimen fabricated from a sheet of 15-5 PH stainless steel. This method proves to be a powerful tool for calibration of material models. The final parameters produce a simulation that tracks the local experimental displacement field to within a couple percent of error. Simultaneously, the percent error in the simulation for the load carried by the specimen throughout the test is less than 1%. Additionally, half of the parameters for Hill’s yield criterion, describing anisotropy of the normal stresses, are found from a single tensile test. This method will find even greater utility in calibrating more complex material models by greatly reducing the experimental effort required to identify the appropriate model parameters.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference24 articles.

1. Necking of a Bar;Int. J. Solids Struct.,1971

2. A Numerical Study of Necking in Circular Cylindrical Bars;J. Mech. Phys. Solids,1972

3. A Computer Simulation of the Tension Test;J. Mech. Phys. Solids,1978

4. The Parameter Identification for Visco-Plastic Models Via Finite-Element-Methods and Gradient-Methods;Model. Simul. Mater. Sci. Eng.,1994

5. A Unified Approach for Parameter Identification of Inelastic Material Models in the Frame of the Finite Element Method;Comput. Methods Appl. Mech. Eng.,1996

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