Open Access System for Information Sharing

Login Library

 

Article
Cited 31 time in webofscience Cited 31 time in scopus
Metadata Downloads

A dislocation-based hardening model incorporated into an anisotropic hardening approach SCIE SCOPUS

Title
A dislocation-based hardening model incorporated into an anisotropic hardening approach
Authors
Lee, MGLee, JWGracio, JJVincze, GRauch, EFBarlat, F
Date Issued
2013-11
Publisher
Elsevier
Abstract
The plastic flow behaviors under monotonic and forward-reverse loading were measured and modeled using a simple dislocation density-based model coupled with the homogeneous yield function anisotropic hardening (HAH) approach. The former model captures the effect of dislocation annihilation due to load reversal and the storage of newly generated dislocations that, overall, results in the stagnation of the strain hardening rate. The latter model reproduces the mechanical response of the Bauschinger effect and permanent softening phenomenon. After implementing the constitutive model into a finite element software, a detailed parametric study was performed to clarify the role of each constitutive parameter. In addition, this model was applied for the prediction of the flow curves of three different steel sheet samples under forward-reverse simple shear deformation. It was shown that this approach reasonably well reproduces the complex mechanical behavior of the steel samples. Finally, this physically based constitutive model was used to predict the springback of a realistic part after forming in order to prove its accuracy, robustness and efficiency as compared with another well accepted phenomenological isotropic-kinematic hardening model. (C) 2013 Elsevier B. V. All rights reserved.
Keywords
Dislocation density; Anisotropy; Bauschinger effect; Strain hardening stagnation; Constitutive modeling; DUAL-PHASE STEELS; PLASTIC BEHAVIOR; STRAIN REVERSAL; DEFORMATION; ALUMINUM; METALS; SHEETS; GRAIN
URI
https://oasis.postech.ac.kr/handle/2014.oak/27405
DOI
10.1016/J.COMMATSCI.2013.05.056
ISSN
0927-0256
Article Type
Article
Citation
COMPUTATIONAL MATERIALS SCIENCE, vol. 79, page. 570 - 583, 2013-11
Files in This Item:
There are no files associated with this item.

qr_code

  • mendeley

Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

Related Researcher

Researcher

BARLAT FREDERIC GERARDBARLAT, FREDERIC GERARD
Ferrous & Energy Materials Technology
Read more

Views & Downloads

Browse