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Rapid modeling and design optimization of multi-Topology lattice structure based on unit-Cell library

  • Yuan Liu
  • , Shurong Zhuo
  • , Yining Xiao
  • , Guolei Zheng*
  • , Guoying Dong
  • , Yaoyao Fiona Zhao*
  • *Corresponding author for this work
  • Beihang University
  • McGill University

Research output: Contribution to journalArticlepeer-review

Abstract

Lightweight lattice structure generation and topology optimization (TO) are common design methodologies. In order to further improve potential structural stiffness of lattice structures, a method combining the multi-topology lattice structure design based on unit-cell library with topology optimization is proposed to optimize the parts. First, a parametric modeling method to rapidly generate a large number of different types of lattice cells is presented. Then, the unit-cell library and its property space are constructed by calculating the effective mechanical properties via a computational homogenization methodology. Third, the template of compromise Decision Support Problem (cDSP) is applied to generate the optimization formulation. The selective filling function of unit cells and geometric parameter computation algorithm are subsequently given to obtain the optimum lightweight lattice structure with uniformly varying densities across the design space. Lastly, for validation purposes, the effectiveness and robustness of the optimized results are analyzed through finite element analysis (FEA) simulation.

Original languageEnglish
Article number091705
JournalJournal of Mechanical Design
Volume142
Issue number9
DOIs
StatePublished - Sep 2020

Keywords

  • Computer-aided design
  • Computer-aided engineering
  • Design optimization
  • Lattice structure
  • Topology optimization
  • Unit-cell library

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