English

Stress-constrained topology optimization of lattice-like structures using component-wise reduced order models

Numerical Analysis 2022-09-07 v1 Numerical Analysis

Abstract

Lattice-like structures can provide a combination of high stiffness with light weight that is useful in many applications, but a resolved finite element mesh of such structures results in a computationally expensive discretization. This computational expense may be particularly burdensome in many-query applications, such as optimization. We develop a stress-constrained topology optimization method for lattice-like structures that uses component-wise reduced order models as a cheap surrogate, providing accurate computation of stress fields while greatly reducing run time relative to a full order model. We demonstrate the ability of our method to produce large reductions in mass while respecting a constraint on the maximum stress in a pair of test problems. The ROM methodology provides a speedup of about 150x in forward solves compared to full order static condensation and provides a relative error of less than 5% in the relaxed stress.

Keywords

Cite

@article{arxiv.2205.09629,
  title  = {Stress-constrained topology optimization of lattice-like structures using component-wise reduced order models},
  author = {Sean McBane and Youngsoo Choi and Karen Willcox},
  journal= {arXiv preprint arXiv:2205.09629},
  year   = {2022}
}

Comments

25 pages, 9 figure; submitted to Computer Methods in Applied Mechanics and Engineering

R2 v1 2026-06-24T11:22:26.931Z