In this paper, a recently proposed material model (Sun model) that is based on the lower bound approach of plasticity is extended by introducing a family of dilatant plasticity theories. The yield surfaces change by a combination of isotropic expansion and kinematic translation. The sensitivity of the local necking predictions in biaxially stretched sheets to the curvature of the yield surface in porous materials is addressed. The results of the present analysis obtained by using four material models, the isotropic hardening version of Sun, the kinematic hardening version suggested in this paper, the Gurson model, and the Mear and Hutchinson model, indicate that the local necking predictions are highly sensitive to the curvature of the yield surface, and the predictions given by the kinematic hardening model are more reasonable for local necking analysis than those by the isotropic hardening model.
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April 1992
Research Papers
Effect of Yield Surface Curvature on Local Necking in Biaxially Stretched Sheets in Porous Materials
Xiangqiao Yan
Xiangqiao Yan
Department of Engineering Mechanics, Harbin Institute of Technology, Harbin, 150006, People’s Republic of China
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Xiangqiao Yan
Department of Engineering Mechanics, Harbin Institute of Technology, Harbin, 150006, People’s Republic of China
J. Eng. Mater. Technol. Apr 1992, 114(2): 196-200 (5 pages)
Published Online: April 1, 1992
Article history
Received:
November 1, 1990
Revised:
September 24, 1991
Online:
April 29, 2008
Citation
Yan, X. (April 1, 1992). "Effect of Yield Surface Curvature on Local Necking in Biaxially Stretched Sheets in Porous Materials." ASME. J. Eng. Mater. Technol. April 1992; 114(2): 196–200. https://doi.org/10.1115/1.2904161
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