Constitutive modeling of cyclic deformation of metals under strain controlled axial extension and cyclic torsion

被引:10
|
作者
Mroz, Z. [1 ]
Maciejewski, J. [2 ]
机构
[1] Polish Acad Sci, Inst Fundamental Technol Res, Pawinskiego 5b, PL-02106 Warsaw, Poland
[2] Warsaw Univ Technol, Inst Construct Machinery Engn, Fac Automot & Construct Machinery Engn, 84 Narbutta, PL-02524 Warsaw, Poland
关键词
KINEMATIC HARDENING RULES; SS304; STAINLESS-STEEL; PLASTICITY MODEL; MULTISURFACE; EVOLUTION; BEHAVIOR; STRESS;
D O I
10.1007/s00707-017-1982-5
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The present work provides a formulation of a constitutive model for metals with the aim to simulate cyclic deformation under axial extension or compression assisted by cyclic torsional (or shearing) straining of specified amplitude and frequency. Such a mode of deformation was recently implemented in technological processes such as extrusion, forging and rolling, cf. Bochniak and Korbel (Eng Trans 47:351-367, 1999, J Mater Process Technol 134:120-134, 2003, Philos Mag 93:1883-1913, 2013, Mater Sci Technol 16:664-674, 2000). The constitutive model accounting for combined hardening (isotropic-kinematic) with both hardening and recovery effects is presented and calibrated for several materials: pure copper, aluminum alloy (2024), and austenitic steel. The experimental data are used to specify model parameters of materials tested, and next the cyclic response for different shear strain amplitudes is predicted and confronted with empirical data. The constitutive model is developed in order to simulate technological processes assisted by cyclic deformation.
引用
收藏
页码:475 / 496
页数:22
相关论文
共 50 条
  • [31] THE EFFECTIVENESS OF STRENGTHENING OF SHAFTS BY SURFACE PLASTIC STRAIN UNDER THE COMBINED ACTION OF CYCLIC FLEXURE AND CYCLIC TORSION
    BELKIN, MY
    SOVIET ENGINEERING RESEARCH, 1985, 5 (07): : 8 - 9
  • [32] STRAIN-HARDENING IN MONOTONIC AND CYCLIC DEFORMATION OF POLYCRYSTALLINE FCC METALS
    KETTUNEN, P
    TIAINEN, T
    SCANDINAVIAN JOURNAL OF METALLURGY, 1981, 10 (06) : 253 - 256
  • [33] Metals microstructure improving under hard cyclic viscoplastic deformation
    Kommel, L.
    NANOMATERIALS BY SEVERE PLASTIC DEFORMATION IV, PTS 1 AND 2, 2008, 584-586 : 361 - 366
  • [34] Experiment and constitutive modeling on cyclic plasticity behavior of LYP100 under large strain range
    He, Qun
    Chen, Yiyi
    Ke, Ke
    Yam, Michael C. H.
    Wang, Wei
    CONSTRUCTION AND BUILDING MATERIALS, 2019, 202 : 507 - 521
  • [35] Cyclic compressive deformation behavior of polymer matrix composites: Experiments and constitutive modeling
    Ban, Ge
    Jia, Jingjing
    Liang, Yingbing
    POLYMER COMPOSITES, 2020, 41 (06) : 2508 - 2517
  • [36] MICROSTRUCTURAL ASPECTS OF CYCLIC DEFORMATION IN BCC AND FCC METALS AND ALLOYS .2. CYCLIC SATURATION AND STRAIN LOCALIZATION
    MAGNIN, T
    DRIVER, J
    LEPINOUX, J
    KUBIN, LP
    REVUE DE PHYSIQUE APPLIQUEE, 1984, 19 (07): : 483 - 502
  • [37] A MICROFRICTION CONSTITUTIVE THEORY FOR CYCLIC PLASTICITY OF METALS
    SMITH, JW
    ZHANG, DS
    INTERNATIONAL JOURNAL OF NON-LINEAR MECHANICS, 1986, 21 (01) : 51 - 60
  • [38] A CONSTITUTIVE MODEL FOR METALS SUBJECTED TO CYCLIC CREEP
    GONG, ZL
    HSU, TR
    JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 1991, 113 (04): : 419 - 424
  • [39] INFLUENCE OF CYCLIC FREQUENCY ON STRAIN LOCALIZATION AND CYCLIC DEFORMATION IN FATIGUE
    MAYER, H
    LAIRD, C
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1994, 187 (01): : 23 - 35
  • [40] AXIAL CYCLIC BEHAVIOR OF UNBONDED FLEXIBLE RISER UNDER CYCLIC AXIAL LOADS
    Liu, Qingsheng
    Qu, Zhongyuan
    Liu, Xiaoya
    He, Jiawei
    Wang, Gang
    PROCEEDINGS OF ASME 2024 43RD INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE AND ARCTIC ENGINEERING, OMAE2024, VOL 5B, 2024,