A new approach to finite element modelling of cyclic thermomechanical stress-strain responses

被引:12
|
作者
Seruga, Domen [1 ]
Nagode, Marko [1 ]
机构
[1] Univ Ljubljana, Fac Mech Engn, Ljubljana, Slovenia
关键词
Prandtl operators; Finite element method; Thermomechanical loading; Plasticity; Uniaxial; Fatigue; FATIGUE LIFE PREDICTION; KINEMATIC HARDENING RULES; NICKEL-BASED SUPERALLOY; DYNAMIC RECOVERY; EXHAUST MUFFLERS; STAINLESS-STEEL; CRITICAL STATE; FAILURE; PLASTICITY; ELASTOPLASTICITY;
D O I
10.1016/j.ijmecsci.2019.105139
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Modem finite element based structural analyses of thermomechanically loaded structures require accurate simulations with low computational times. However, increasing the complexity of material models capable of modelling cyclic phenomena of engineering materials usually also increases the computational time. Here we present the implementation of the Prandtl operator approach into a finite element solver as a new material model for the study of the stress-strain response of solids subjected to thermomechanical loading. The main advantage of this model is its high computational speed, due mainly to the implicit consideration of the Masing and memory rules by variable temperatures, either during a single load cycle or during a complex thermomechanical load history. The model enables temperature-dependent elastoplastic stress-strain modelling using the von Mises yield function, associated flow rule and multilinear kinematic hardening. The commonly used elastic predictor-plastic corrector procedure now contains an improvement in the calculation of the equivalent plastic strain increment. This includes modelling of the true stress by the time-efficient temperature-dependent spring-slider model. The second advantage of the approach is a reduced number of material parameters per temperature required by the Ramberg-Osgood-type description of the cyclic curve. These material parameters can be obtained from either uniaxial strain controlled low cycle fatigue tests or uniaxial incremental step tests. The model has been validated on several load cases of both a thermomechanically loaded single finite element under tension-compression and shear loads, and a cantilever beam subjected to bending loads. Comparisons with reference material models show almost identical behaviour of the new and the Besseling model, but with the advantage of having up to 35 percent shorter computation times.
引用
收藏
页数:14
相关论文
共 50 条
  • [11] Evaluation of Steel Grade Effects on Stress-Strain Behavior of Joint Connectors: A Finite Element Approach
    V. Lukin, M.
    Strekalkin, A. A.
    Deev, V. B.
    Roshchina, S. I.
    CIS IRON AND STEEL REVIEW, 2024, 27 : 48 - 54
  • [12] Computation of Stress-Strain States in Elastomers Utilizing the Moment Diagram Approach in Finite Element Analysis
    Lavrik, Volodymir
    Mezhuyev, Vitaliy
    COMMUNICATION AND INTELLIGENT SYSTEMS, VOL 1, ICCIS 2023, 2024, 967 : 315 - 327
  • [13] Modeling of cyclic stress-strain behavior and damage mechanisms under thermomechanical fatigue conditions
    Universitaet-GH-Siegen, Siegen, Germany
    Int J Fatigue, Suppl 1 (S267-S274):
  • [14] Thermomechanical Stress-Strain State of Retention Compartment
    Degtyarev, M. A.
    Avramov, K., V
    Akimov, D.
    Kostikov, A.
    JOURNAL OF AEROSPACE ENGINEERING, 2021, 34 (04)
  • [15] Cyclic biaxial stress-strain curves of masonry: a generalised approach
    AlShebani, MM
    Sinha, SN
    PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-STRUCTURES AND BUILDINGS, 2001, 146 (02) : 141 - 145
  • [16] A simple approach to the description of multiaxial cyclic stress-strain relationship
    Shang, DG
    Wang, DJ
    Yao, WX
    INTERNATIONAL JOURNAL OF FATIGUE, 2000, 22 (03) : 251 - 256
  • [17] Stress-strain state of elastic shell based on mixed finite element
    Klochkov, Yu. V.
    Pshenichkina, V. A.
    Nikolaev, A. P.
    Vakhnina, O. V.
    Klochkov, M. Yu.
    MAGAZINE OF CIVIL ENGINEERING, 2023, 120 (04):
  • [18] Calculation of the Stress-Strain State of Pneumatic Tires by the Finite Element Method
    Sokolov, S. L.
    JOURNAL OF MACHINERY MANUFACTURE AND RELIABILITY, 2007, 36 (01): : 45 - 49
  • [19] The finite element simulation research on stress-strain field of laser cladding
    Zhang, Ping
    Ma, Lin
    Yuan, Jinping
    Yin, Xiaonan
    Cai, Zhihai
    SURFACE ENGINEERING (ICSE 2007), 2008, 373-374 : 322 - +
  • [20] THE STRESS-STRAIN CONDITION ESTIMATION OF PREVENTER BODY BY FINITE ELEMENT ANALYSIS
    Syzrantseva, Ksenia
    16TH INTERNATIONAL MULTIDISCIPLINARY SCIENTIFIC GEOCONFERENCE, SGEM 2016: SCIENCE AND TECHNOLOGIES IN GEOLOGY, EXPLORATION AND MINING, VOL III, 2016, : 1003 - 1010