Bi-directional evolutionary topology optimization of geometrically nonlinear continuum structures with stress constraints

Bin Xu, Yongsheng Han, Lei Zhao

Research output: Contribution to journalArticlepeer-review

57 Scopus citations

Abstract

This paper proposes a design method to maximize the stiffness of geometrically nonlinear continuum structures subject to volume fraction and maximum von Mises stress constraints. An extended bi-directional evolutionary structural optimization (BESO) method is adopted in this paper. BESO method based on discrete variables can effectively avoid the well-known singularity problem in density-based methods with low density elements. The maximum von Mises stress is approximated by the p-norm global stress. By introducing one Lagrange multiplier, the objective of the traditional stiffness design is augmented with p-norm stress. The stiffness and p-norm stress are considered simultaneously by the Lagrange multiplier method. A heuristic method for determining the Lagrange multiplier is proposed in order to effectively constrain the structural maximum von Mises stress. The sensitivity information for designing variable updates is derived in detail by adjoint method. As for the highly nonlinear stress behavior, the updated scheme takes advantages from two filters respectively of the sensitivity and topology variables to improve convergence. Moreover, the filtered sensitivity numbers are combined with their historical sensitivity information to further stabilize the optimization process. The effectiveness of the proposed method is demonstrated by several benchmark design problems.

Original languageEnglish
Pages (from-to)771-791
Number of pages21
JournalApplied Mathematical Modelling
Volume80
DOIs
StatePublished - Apr 2020

Keywords

  • Adjoint method
  • BESO method
  • Geometrically nonlinearity
  • Sensitivity analysis
  • Stress constraints
  • Topology optimization

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