Enhanced Cyclically Stable Plasticity Model for Multiaxial Behaviour of Magnesium Alloy AZ31 under Low-Cycle Fatigue Conditions

被引:0
|
作者
Litrop, Aljaz [1 ]
Klemenc, Jernej [1 ]
Nagode, Marko [1 ]
Seruga, Domen [1 ]
机构
[1] Univ Ljubljana, Fac Mech Engn, Askerceva Cesta 6, Ljubljana SI-1000, Slovenia
关键词
magnesium alloy; cyclic plasticity modelling; multiaxial loading; AZ31 sheet metal; MG ALLOY; MICROSTRUCTURE EVOLUTION; MECHANICAL-BEHAVIOR; HARDENING BEHAVIOR; CONSTITUTIVE MODEL; EXTRUDED AZ31; STRAIN-RATE; DEFORMATION; STRESS; SHEETS;
D O I
10.3390/ma17184659
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Magnesium alloys, particularly AZ31, are promising materials for the modern automotive industry, offering significant weight savings and environmental benefits. This research focuses on the challenges associated with accurate modelling of multiaxial cyclic plasticity at small strains of AZ31 under low-cycle fatigue conditions. Current modelling approaches, including crystal plasticity and phenomenological plasticity, have been extensively explored. However, the existing models reach their limits when it comes to capturing the complexity of cyclic plasticity in magnesium alloys, especially under multiaxial loading conditions. To address this gap, a cyclically stable elastoplastic model is proposed that integrates elements from existing models with an enhanced algorithm for updating stresses and hardening parameters, using the hyperbolic tangent function to describe hardening and ensure a stabilised response with closed hysteresis loops for both uniaxial and multiaxial loading. The model is based on a von Mises yield surface and includes a kinematic hardening rule that promises a stable simulation of the response of AZ31 sheets under cyclic loading. Using experimental data from previous studies on AZ31 sheets, the proposed model is optimised and validated. The model shows promising capabilities in simulating the response of AZ31 sheet metal under different loading conditions. It has significant potential to improve the accuracy of fatigue simulations, especially in the context of automotive applications.
引用
收藏
页数:22
相关论文
共 50 条
  • [21] Fatigue behaviour of bare and pre-corroded magnesium alloy AZ31
    Chamos, A. N.
    Pantelakis, Sp. G.
    Spiliadis, V.
    MATERIALS & DESIGN, 2010, 31 (09) : 4130 - 4137
  • [22] LOW-CYCLE FATIGUE CHARACTERISTICS OF ALUMINIUM ALLOY 2017A, MAGNESIUM ALLOY AZ31 AND TITANIUM ALLOY TI-6AL-4V
    Ciesla, Marek
    Junak, Grzegorz
    METAL 2015: 24TH INTERNATIONAL CONFERENCE ON METALLURGY AND MATERIALS, 2015, : 631 - 635
  • [23] Low cycle fatigue properties and cyclic deformation behavior of as-extruded AZ31 magnesium alloy
    S.KWON
    K.SONG
    K.S.SHIN
    S.I.KWUN
    TransactionsofNonferrousMetalsSocietyofChina, 2010, 20(S2) (S2) : 533 - 539
  • [24] Low cycle fatigue properties and cyclic deformation behavior of as-extruded AZ31 magnesium alloy
    Kwon, S.
    Song, K.
    Shin, K. S.
    Kwun, S. I.
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2010, 20 : S533 - S539
  • [25] Comprehensive Modelling of the Hysteresis Loops and Strain-Energy Density for Low-Cycle Fatigue-Life Predictions of the AZ31 Magnesium Alloy
    Klemenc, Jernej
    Seruga, Domen
    Nagode, Ales
    Nagode, Marko
    MATERIALS, 2019, 12 (22)
  • [26] Influence of Crystallographic Texture on the High Cycle Fatigue of Extruded AZ31 Magnesium Alloy
    Nascimento, Ligia
    Yi, Sangbong
    Bohlen, Jan
    Letzig, Dietmar
    Kainer, Karl Ulrich
    LIGHT METALS TECHNOLOGY V, 2011, 690 : 319 - 322
  • [27] Fracture model of an AZ31 magnesium alloy under dynamic loading
    Zelepugin, S. A.
    Skripnyak, V. V.
    Skripnyak, V. A.
    Kirushkin, A. E.
    RUSSIAN PHYSICS JOURNAL, 2025,
  • [28] Mechanism of the Plastic Deformation of the AZ31 Alloy upon Low-Cycle Reverse Bending
    Bryukhanov, A. A.
    Rodman, M.
    Tarasov, A. F.
    Stoyanov, P. P.
    Shaper, M.
    Bormann, D.
    PHYSICS OF METALS AND METALLOGRAPHY, 2011, 111 (06): : 623 - 629
  • [29] Mechanical properties of AZ31 alloy sheets deformed by low-cycle reverse bending
    A. A. Bryukhanov
    M. Rodman
    N. A. Volchok
    P. P. Stoyanov
    M. Schaper
    H. Klose
    The Physics of Metals and Metallography, 2014, 115 : 98 - 105
  • [30] Mechanism of the plastic deformation of the AZ31 alloy upon low-cycle reverse bending
    A. A. Bryukhanov
    M. Rodman
    A. F. Tarasov
    P. P. Stoyanov
    M. Shaper
    D. Bormann
    The Physics of Metals and Metallography, 2011, 111 : 623 - 629