Analysis of an equivalent drawbead model for the finite element simulation of a stamping process

Author:

Chen Fuh-Kuo,Liu Jia-Hong

Publisher

Elsevier BV

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering

Reference14 articles.

1. A finite element analysis of the rigid-plastic deformation of the flange in a deep-drawing process based on a fourth-degree yield function;Gotoh;International Journal of Mechanical Sciences,1980

2. Analysis of a test method of sheet metal formability using the finite element method;Toh;Journal of Engineering in Industry,1986

3. A rigid-plastic finite element formulation for the analysis of general deformation of planar anisotropic sheet metals and applications;Yang;International Journal of Mechanical Sciences,1986

4. S. Aita, E. L. Khaldi, L. Fontaine, T. Tamada and E. Tamura, Numerical simulation of a stretch drawn autobody: Part I—assessment of simulation methodology and modelling of stamping components, SAE Paper No. 920639.

5. S. Aita, E. L. Khaldi, L. Fontaine, T. Tamada and E. Tamura, Numerical simulation of a stretch drawn autobody: Part II—validation versus experiments for various holding and drawbead conditions. SAE Paper No. 920640.

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1. Optimization of deep drawing products by adding effect of texture pattern in draw bead design;Journal of the Brazilian Society of Mechanical Sciences and Engineering;2021-12-29

2. Enabling stamping processes through meticulous FE Modelling - segmented drawbeads and remesh criteria;IOP Conference Series: Materials Science and Engineering;2018-09-21

3. Study on design of progressive dies for manufacture of automobile structural member using DP980 advanced high strength steel;Journal of Mechanical Science and Technology;2016-02

4. A FE technique to improve the accuracy of drawbead models and verification with channel drawing experiments of a high-strength steel;The International Journal of Advanced Manufacturing Technology;2010-12-01

5. Applied Plasticity, Second Edition;Mechanical Engineering Series;2010

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