Topology optimization using a continuous-time high-cycle fatigue model

被引:1
|
作者
Shyam Suresh
Stefan B. Lindström
Carl-Johan Thore
Bo Torstenfelt
Anders Klarbring
机构
[1] Linköping University,Division of Solid Mechanics, Department of Management and Engineering, Institute of Technology
关键词
Continuous-time approach; Endurance surface; High-cycle fatigue; Topology optimization; Adjoint sensitivity analysis; Aggregation function;
D O I
暂无
中图分类号
学科分类号
摘要
We propose a topology optimization method that includes high-cycle fatigue as a constraint. The fatigue model is based on a continuous-time approach where the evolution of damage in each point of the design domain is governed by a system of ordinary differential equations, which employs the concept of a moving endurance surface being a function of the stress and back stress. Development of fatigue damage only occurs when the stress state lies outside the endurance surface. The fatigue damage is integrated for a general loading history that may include non-proportional loading. Thus, the model avoids the use of a cycle-counting algorithm. For the global high-cycle fatigue constraint, an aggregation function is implemented, which approximates the maximum damage. We employ gradient-based optimization, and the fatigue sensitivities are determined using adjoint sensitivity analysis. With the continuous-time fatigue model, the damage is load history dependent and thus the adjoint variables are obtained by solving a terminal value problem. The capabilities of the presented approach are tested on several numerical examples with both proportional and non-proportional loads. The optimization problems are to minimize mass subject to a high-cycle fatigue constraint and to maximize the structural stiffness subject to a high-cycle fatigue constraint and a limited mass.
引用
收藏
页码:1011 / 1025
页数:14
相关论文
共 50 条
  • [21] Parametric structural optimization with respect to the multiaxial high-cycle fatigue criterion
    M. Mrzyglod
    A. P. Zielinski
    Structural and Multidisciplinary Optimization, 2007, 33 : 161 - 171
  • [22] Parametric structural optimization with respect to the multiaxial high-cycle fatigue criterion
    Mrzyglod, M.
    Zielinski, A. P.
    STRUCTURAL AND MULTIDISCIPLINARY OPTIMIZATION, 2007, 33 (02) : 161 - 171
  • [23] An intrinsic dissipation model for high-cycle fatigue life prediction
    Guo, Qiang
    Zairi, Fahmi
    Guo, Xinglin
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2018, 140 : 163 - 171
  • [24] A new model for life prediction of multiaxial high-cycle fatigue
    Zhang, Chengcheng
    Yao, Weixing
    Lixue Xuebao/Chinese Journal of Theoretical and Applied Mechanics, 2010, 42 (06): : 1225 - 1230
  • [25] Computational modelling of transversely isotropic high-cycle fatigue using a continuum based model
    Holopainen, Sami
    Kouhia, Reijo
    Konno, juho
    Saksala, Timo
    21ST EUROPEAN CONFERENCE ON FRACTURE, (ECF21), 2016, 2 : 2718 - 2725
  • [26] Hydrogen as an indicator of high-cycle fatigue
    Belyaev, Alexander K.
    Polyanskiy, Vladimir A.
    Yakovlev, Yuri A.
    DYNAMICAL ANALYSIS OF MULTIBODY SYSTEMS WITH DESIGN UNCERTAINTIES, 2015, 13 : 138 - 143
  • [27] High-cycle fatigue of ULTIMET® alloy
    Jiang, L
    Brooks, CR
    Liaw, PK
    Klarstrom, DL
    SUPERALLOYS 2000, 2000, : 583 - 591
  • [28] MICROMECHANICS OF AN EXTRUSION IN HIGH-CYCLE FATIGUE
    LIN, TH
    LIN, SR
    WU, XQ
    PHILOSOPHICAL MAGAZINE A-PHYSICS OF CONDENSED MATTER STRUCTURE DEFECTS AND MECHANICAL PROPERTIES, 1989, 59 (06): : 1263 - 1276
  • [29] DAMAGE TO STRUCTURES BY HIGH-CYCLE FATIGUE
    NEMEC, J
    FATIGUE OF ENGINEERING MATERIALS AND STRUCTURES, 1982, 5 (03): : 205 - 214
  • [30] Aspects of the modeling of high-cycle fatigue
    Paluszynski, Blazej
    Boehlke, Thomas
    ADVANCES IN FRACTURE AND DAMAGE MECHANICS VI, 2007, 348-349 : 121 - +