Prediction of Necking in Tubular Hydroforming Using an Extended Stress-Based Forming Limit Curve

Author:

Manoj Simha C. Hari1,Gholipour Javad2,Bardelcik Alexander1,Worswick Michael J.1

Affiliation:

1. Department of Mechanical Engineering, University of Waterloo, Waterloo, ON, Canada, N2L 3G1

2. Institute for Aerospace Research, National Research Council, Aerospace Manufacturing Technology Center, 5145 Decelles Avenue, Campus of the University of Montreal, Montreal, PQ, Canada H3T 2B2

Abstract

This paper presents an extended stress-based forming limit curve (XSFLC) that can be used to predict the onset of necking in sheet metal loaded under non-proportional load paths, as well as under three-dimensional stress states. The conventional strain-based ϵFLC is transformed into the stress-based FLC advanced by Stoughton (1999, Int. J. Mech. Sci., 42, pp. 1–27). This, in turn, is converted into the XSFLC, which is characterized by the two invariants, mean stress and equivalent stress. Assuming that the stress states at the onset of necking under plane stress loading are equivalent to those under three-dimensional loading, the XSFLC is used in conjunction with finite element computations to predict the onset of necking during tubular hydroforming. Hydroforming of straight and pre-bent tubes of EN-AW 5018 aluminum alloy and DP 600 steel are considered. Experiments carried out with these geometries and alloys are described and modeled using finite element computations. These computations, in conjunction with the XSFLC, allow quantitative predictions of necking pressures; and these predictions are found to agree to within 10% of the experimentally obtained necking pressures. The computations also provide a prediction of final failure location with remarkable accuracy. In some cases, the predictions using the XSFLC show some discrepancies when compared with the experimental results, and this paper addresses potential causes for these discrepancies. Potential improvements to the framework of the XSFLC are also discussed.

Publisher

ASME International

Subject

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

Reference38 articles.

1. Plastic Instability and Fracture in Sheets Stretched Over Rigid Punches;Keeler;ASM Trans. Q.

2. Goodwin, G. M. , 1968, “Application of Strain Analysis to Sheet Metal Forming in the Press Shop,” SAE Paper, No. 680093.

3. The Influence of Strain Path Changes on the Formability of Sheet Steel;Ghosh

4. Effect of Changing Strain Paths on Forming Limit Diagrams of Al 2008-T4;Graf;Metall. Trans. A

5. A General Forming Limit Criterion for Sheet Metal Forming;Stoughton;Int. J. Mech. Sci.

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