Title of article :
Texture development and plastic anisotropy of B.C.C. strain hardening sheet metals
Author/Authors :
K. -C. Liao، نويسنده , , P. A. Friedman، نويسنده , , J. Pan، نويسنده , , S. C. Tang، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 1998
Abstract :
A Taylor-like polycrystal model is adopted here to investigate the plastic behavior of
body centered cubic (b.c.c.) sheet metals under plane-strain compression and the subsequent inplane
biaxial stretching conditions. The ( 111 ) pencil glide system is chosen for the slip mechanism
for b.c.c, sheet metals. The { 110} (111 ) and { 112} (111 ) slip systems are also considered. Planestrain
compression is used to simulate the cold rolling processes of a low-carbon steel sheet. Based
on the polycrystal model, pole figures for the sheet metal after plane-strain compression are obtained
and compared with the corresponding experimental results. Also, the simulated plane-strain stressstrain
relations are compared with the corresponding experimental results. For the sheet metal
subjected to the subsequent in-plane biaxial stretching and shear, plastic potential surfaces are
determined at a given small amount of plastic work. With the assumption of the equivalence of the
plastic potential and the yield function with normality flow, the yield surfaces based on the simulations
for the sheet metal are compared with those based on several phenomenological planar
anisotropic yield criteria. The effects of the slip system and the magnitude of plastic work on the
shape and size of the yield surfaces are shown. The plastic anisotropy of the sheet metal is investigated
in terms of the uniaxial yield stresses in different planar orientations and the corresponding values
of the anisotropy parameter R, defined as the ratio of the width plastic strain rate to the throughthickness
plastic strain rate under in-plane uniaxial tensile loading. The uniaxial yield stresses and
the values of R at different planar orientations from the polycrystal model can be fitted well by a
yield function recently proposed by Barlat et al. (1997b). © 1998 Elsevier Science Ltd. All rights
reserved.
Journal title :
International Journal of Solids and Structures
Journal title :
International Journal of Solids and Structures