Jg. Hu et al., Finite element analysis of damage evolution and the prediction of the limiting draw ratio in textured aluminum sheets, J MATER PR, 103(3), 2000, pp. 374-382
Void nucleation and growth models have been incorporated into an elasto-pla
stic finite element code together with an anisotropic fourth-order strain r
ate potential so that damage evolution during the deep drawing of textured
aluminum sheets can be analyzed. The fourth-order strain rate potential is
based on the Taylor model of crystal plasticity and therefore takes the pre
sence of texture into account. The damage evolution is modeled in terms of
void nucleation and growth during deformation. Strain-induced and stress-co
ntrolled nucleation models were employed in conjunction with the Cocks and
Ashby growth model to calculate the increase in void volume fraction. The i
nfluence of plastic anisotropy on damage is discussed together with the rol
es of void nucleation and growth on damage evolution for cold rolled and co
ld rolled annealed aluminum sheets. It is shown that the growth of voids as
opposed to their nucleation plays a very important role in damage formatio
n during the development of localized necks. More attention should therefor
e be paid to void nucleation and growth in the analysis of localized neckin
g and fracture during sheet metal forming. (C) 2000 Published by Elsevier S
cience S.A.