Designing cellular structures for additive manufacturing using Voronoi-Monte Carlo approach

Tao Liu, Sofiane Guessasma, Jihong Zhu, Weihong Zhang

Research output: Contribution to journalArticlepeer-review

22 Scopus citations

Abstract

This study aims at reporting a strategy of designing cellular materials based on Voronoi- Monte Carlo approach for additive manufacturing. The approach is implemented to produce a fully connected cellular structure in the design space without producing material discontinuity. The main characteristics of the cellular structure, such as the density and the cell size, are controlled by means of two generation parameters, namely the number of seed points and the relaxation time. The generated cellular structures representing various designs of generated cellular wrenches are converted into surface tessellations and manufactured using stereolithography. Bending experiments are performed up to the rupture point and main attributes representing the performance of the SL-based cellular wrenches are studied with respect to the generation parameters. The results show only slight difference between CAD (Computer-Aided Design) models of the design and the real printed parts. The number of seed points is found to control the main feature of the wrench performance whereas the relaxation time is found to have a secondary effect.

Original languageEnglish
Article number1158
JournalPolymers
Volume11
Issue number7
DOIs
StatePublished - 2019

Keywords

  • Cellular structure
  • Mechanical performance
  • Monte Carlo
  • Stereolithography
  • Voronoi

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