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
  • [31] High-cycle fatigue plumbed at SwRI
    Aviat Week Space Technol (New York), 24 (88):
  • [32] Fatigue Reduction Factor in High-cycle Fatigue.
    Lukas, Petr
    Kunz, Ludvik
    Kovove Materialy, 1980, 18 (05): : 591 - 601
  • [33] Real-time study of high-cycle fatigue damage using the averaged speckle dynamics
    Vladimirov, A. P.
    Drukarenko, N. A.
    Kamantsev, I. S.
    Trishin, V. N.
    Lukin, N. A.
    13TH INTERNATIONAL CONFERENCE ON VIBRATION MEASUREMENTS BY LASER AND NONCONTACT TECHNIQUES, 2018, 2018, 1149
  • [34] A resilient continuous-time consensus method using a switching topology
    Ramos, Guilherme
    Silvestre, Daniel
    Aguiar, Pedro
    SYSTEMS & CONTROL LETTERS, 2022, 169
  • [35] Statistical properties of the model parameters in the continuum approach to high-cycle fatigue
    Kaleva, Osmo
    Orelma, Heikki
    PROBABILISTIC ENGINEERING MECHANICS, 2021, 63
  • [36] Stochastic damage accumulation model for crack initiation in high-cycle fatigue
    Ihara, C.
    Tanaka, T.
    Fatigue and Fracture of Engineering Materials and Structures, 2000, 23 (05): : 375 - 380
  • [37] Shakedown based model for high-cycle fatigue of shape memory alloys
    Gu, Xiaojun
    Moumni, Ziad
    Zaki, Wael
    Zhang, Weihong
    SMART MATERIALS AND STRUCTURES, 2016, 25 (11)
  • [38] A high-cycle fatigue life model for variable amplitude multiaxial loading
    Jabbado, M.
    Maitournam, M. H.
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2008, 31 (01) : 67 - 75
  • [39] Robust high-cycle fatigue stress threshold optimization under uncertain loadings
    de Faria, Alfredo R.
    Frota, Roberto T. C., Jr.
    LATIN AMERICAN JOURNAL OF SOLIDS AND STRUCTURES, 2012, 9 (05): : 615 - 631
  • [40] Creation of a Life Prediction Model for Combined High-Cycle Fatigue and Creep
    Bouchenot, Thomas
    Patel, Kirtan
    Gordon, Ali P.
    Shinde, Sachin
    JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 2023, 145 (03):