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Analysis of Nonisothermal Deep Drawing of Aluminum Alloy Sheet With Induced Anisotropy and Rate Sensitivity at Elevated Temperatures.

Authors :
Ghavam, Kamyar
Bagheriasl, Reza
Worswick, Michael J.
Source :
Journal of Manufacturing Science & Engineering. Feb2014, Vol. 136 Issue 1, p1-16. 16p.
Publication Year :
2014

Abstract

In this paper, a finite element model is developed for 3000 series clad aluminum alloy brazing sheet to account for temperature and strain rate dependency, as well as plastic anisotropy. The current work considers a novel implementation of the Barlat YLD2000 yield surface in conjunction with the Bergstrom hardening model to accurately model aluminum alloy sheet during warm forming. The Barlat YLD2000 yield criterion is used to capture the anisotropy while the Bergstrom hardening rule predicts the temperature and strain rate dependency. The results are compared with those obtained from experi-ments. The measured stress-strain curves of the AA3003 aluminum alloy sheet at elevated temperatures and different strain rates are used to fit the Bergstrom parameters and measured R-values and directional yield stresses are used to fit the yield function param-eters. Isothermal uniaxial tensile tests and nonisothermal deep drawing experiments are performed and the predicted response using the new constitutive model is compared with measured data. In simulations of tensile tests, the material behavior is predicted accu-rately by the numerical models. Also, the nonisothermal deep drawing simulations are able to predict the load-displacement response and strain distributions accurately. [ABSTRACT FROM AUTHOR]

Details

Language :
French
ISSN :
10871357
Volume :
136
Issue :
1
Database :
Academic Search Index
Journal :
Journal of Manufacturing Science & Engineering
Publication Type :
Academic Journal
Accession number :
94490069
Full Text :
https://doi.org/10.1115/1.4025407