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A new analytical theory for earing generated from anisotropic plasticity SCIE SCOPUS

Title
A new analytical theory for earing generated from anisotropic plasticity
Authors
Yoon, JWDick, REBarlat, F
Date Issued
2011-08
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Abstract
Commercial canmaking processes include drawing, redrawing and several ironing operations. It is experimentally observed that during the drawing and redrawing processes earing develops, but during the ironing processes earing is reduced. It is essential to understand the eating mechanism during drawing and ironing for an advanced material modeling. A new analytical approach that relates the earing profile to r-value and yield stress directionalities is presented in this work. The analytical formula is based on the exact integration of the logarithmic strain. The derivation is for a cylindrical cup under the plane stress condition based on rigid perfect plasticity while force equilibrium is not considered. The earing profile is obtained solely from anisotropic plastic properties in simple tension. The earing mechanism is explained from the present theory with explicit formulae. It has been proved that earing is the combination of the contributions from r-value and yield stress directionalities. From a directionality (y-axis) vs. angle from the rolling (x-axis) plot, the caring profile is generated to be a scaled mirror image of the r-value directionality with respect to 900 (x = 90) and also a scaled mirror image of the yield stress directionality with respect to the reference yield stress (y = 1). Three different materials (Al-5% Mg alloy, AA 2090-T3 and AA 3104 RPDT control coil) are considered for verification purposes. This approach provides a fundamental basis for understanding the earing mechanism. In practice, the present theory is also very useful for the prediction of the earing profile of a drawn and iron cup and its related convolute cut-edge design for an earless cup. (C) 2011 Elsevier Ltd. All rights reserved.
Keywords
Eating; r-Value; Yield stress; Analytical approach; Cup height profile; STRAIN-RATE POTENTIALS; ALUMINUM-ALLOY SHEETS; STRESS YIELD FUNCTION; CRYSTAL PLASTICITY; METALS; MODEL; PART; POLYCRYSTALS; DEFORMATION; SIMULATION
URI
https://oasis.postech.ac.kr/handle/2014.oak/17278
DOI
10.1016/J.IJPLAS.2011.01.002
ISSN
0749-6419
Article Type
Article
Citation
INTERNATIONAL JOURNAL OF PLASTICITY, vol. 27, no. 8, page. 1165 - 1184, 2011-08
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BARLAT FREDERIC GERARDBARLAT, FREDERIC GERARD
Ferrous & Energy Materials Technology
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