Crystal plasticity forming limit diagram analysis of rolled aluminum sheets

被引:0
|
作者
P. D. Wu
K. W. Neale
E. Van Der Giessen
M. Jain
S. R. MacEwen
A. Makinde
机构
[1] Alcan International Ltd.,the Kingston Research and Development Centre
[2] University of Sherbrooke,the Faculty of Applied Science
[3] Delft University of Technology,the Laboratory for Engineering Mechanics
[4] Alcan International Ltd.,the Kingston Research and Development Centre
[5] Alcan International Ltd.,the Kingston Research and Development Centre
[6] GE Corporation R & D,undefined
关键词
Material Transaction; Sheet Metal; Form Limit Diagram; Initial Imperfection; Initial Texture;
D O I
暂无
中图分类号
学科分类号
摘要
Numerical simulations of forming limit diagrams (FLDs) are performed based on a rate-sensitive polycrystal plasticity model together with the Marciniak-Kuczynski (M-K) approach. Sheet necking is initiated from an initial imperfection in terms of a narrow band. The deformations inside and outside the band are assumed to be homogeneous, and conditions of compatibility and equilibrium are enforced across the band interfaces. Thus, the polycrystal model needs only to be applied to two polycrystalline aggregates, one inside and one outside the band. Each grain is modeled as an fcc crystal with 12 distinct slip systems. The response of an aggregate comprised of many grains is based on an elastic-viscoplastic Taylor-type polycrystal model. With this formulation, the effects of initial imperfection intensity and orientation, initial distribution of grain orientations, crystal elasticity, strain-rate sensitivity, single slip hardening, and latent hardening on the FLD can be assessed. The predicted FLDs are compared with experimental data for the following rolled aluminum alloy sheets: AA5754-0-A, AA5754-0-B, AA6111-T4-A, AA6111-T4-C, and AA6111-T4-D.
引用
收藏
页码:527 / 535
页数:8
相关论文
共 50 条
  • [1] Crystal plasticity forming limit diagram analysis of rolled aluminum sheets
    Wu, PD
    Neale, KW
    Van der Giessen, E
    Jain, M
    Makinde, A
    MacEwen, SR
    METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1998, 29 (02): : 527 - 535
  • [2] Crystal plasticity forming limit diagram analysis of rolled aluminum sheets
    Wu, P.D.
    Neale, K.W.
    Van Der Giessen, E.
    Jain, M.
    Makinde, A.
    MacEwen, S.R.
    Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science, 1998, 29 A (02): : 527 - 535
  • [3] Forming Limit Diagram Analysis Based On Crystal Plasticity for Magnesium Alloy Sheets
    Tang, Weiqin
    Li, Dayong
    Peng, Yinghong
    Zhang, Shaorui
    11TH INTERNATIONAL CONFERENCE ON NUMERICAL METHODS IN INDUSTRIAL FORMING PROCESSES (NUMIFORM 2013), 2013, 1532 : 1051 - 1057
  • [4] Forming limit diagram of aluminum alloy sheets
    YOSHIDA K.
    Keikinzoku/Journal of Japan Institute of Light Metals, 2020, 70 (10): : 490 - 496
  • [5] Influence of pre-forming on the forming limit diagram of aluminum and steel sheets
    Tolazzi, Massimo
    Merklein, Marion
    SHEET METAL 2007, 2007, 344 : 113 - +
  • [6] Analysis of forming limit diagram for aluminum bilayers
    Wu, P. D.
    Embury, J. D.
    Lloyd, D. J.
    ADVANCES IN HETEROGENEOUS MATERIAL MECHANICS 2008, 2008, : 436 - 439
  • [7] Crystal plasticity-based forming limit analysis for two types of 5052 aluminum alloy sheets with different heat treatment conditions
    Sato, Sho
    Tsukamoto, Maya
    Maeda, Yasuhiro
    Maeda, Yasushi
    Hama, Takayuki
    MATERIAL FORMING, ESAFORM 2024, 2024, 41 : 1009 - 1016
  • [8] Analysis on yield loci and forming limit diagrams of textured aluminum sheets
    Hu, JG
    Ikeda, K
    Murakami, T
    JOURNAL OF THE JAPAN INSTITUTE OF METALS, 1998, 62 (02) : 159 - 166
  • [9] Analysis on yield loci and forming limit diagrams of textured aluminum sheets
    Tohoku Univ, Sendai, Japan
    Nippon Kinzoku Gakkaishi, 2 (159-166):
  • [10] Experimental and numerical determination of forming limit diagram for 1010 steel sheet: a crystal plasticity approach
    Hajian, Masoud
    Assempour, Ahmad
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2015, 76 (9-12): : 1757 - 1767