Analytic study on pure bending of metal sheets

Jeerachai Supasuthakul, Peter D. Hodgson, Chunhui Yang

Research output: Chapter in Book / Conference PaperConference Paperpeer-review

4 Citations (Scopus)

Abstract

In this work, analytical models of pure bending are developed to simulate a particular type of bend test and to determine possible errors arising from approximations used in analyzing experimental data. Analytical models proposed for steels include a theoretical solution of pure bending and a series of finite element models, based on the von Mises yield function, are subjected to different stress and strain conditions. The results show that for steel sheets the difference between measured and calculated results of the moment-curvature behaviour is small and the numerical results from the finite element models indicate that experimental results obtained from the test are acceptable in the range of the pure bending operation. Further for magnesium alloys, which exhibit unsymmetrical yielding, the algorithm of the yield function with a linear isotropic hardening model is implemented by programming a user subroutine in Abaqus for bending simulations of magnesium. The simulations using the proposed user subroutine extract better results than those using the von Mises yield function.
Original languageEnglish
Title of host publication8th International Conference and Workshop on Numerical Simulation of 3D Sheet Metal Forming Processes (NUMISHEET 2011), Seoul, Republic of Korea, 21-26 August 2011
PublisherAmerican Institute of Physics
Pages541-548
Number of pages8
ISBN (Print)9780735409491
DOIs
Publication statusPublished - 2011
EventInternational Conference and Workshop on Numerical Simulation of 3D Sheet Metal Forming Processes -
Duration: 21 Aug 2011 → …

Publication series

Name
ISSN (Print)0094-243X

Conference

ConferenceInternational Conference and Workshop on Numerical Simulation of 3D Sheet Metal Forming Processes
Period21/08/11 → …

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