Compressive behaviour of closed-cell aluminium foam at different strain rates

Nejc Novak*, Matej Vesenjak, Isabel Duarte, Shigeru Tanaka, Kazuyuki Hokamoto, Lovre Krstulovíc-Opara, Baoqiao Guo, Pengwan Chen, Zoran Ren

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

38 Citations (Scopus)

Abstract

Closed-cell aluminium foams were fabricated and characterised at different strain rates. Quasi-static and high strain rate experimental compression testing was performed using a universal servo-hydraulic testing machine and powder gun. The experimental results show a large influence of strain rate hardening on mechanical properties, which contributes to significant quasi-linear enhancement of energy absorption capabilities at high strain rates. The results of experimental testing were further used for the determination of critical deformation velocities and validation of the proposed computational model. A simple computational model with homogenised crushable foam material model shows good correlation between the experimental and computational results at analysed strain rates. The computational model offers effcient (simple, fast and accurate) analysis of high strain rate deformation behaviour of a closed-cell aluminium foam at different loading velocities.

Original languageEnglish
Pages (from-to)40108
Number of pages1
JournalMaterials
Volume12
Issue number24
DOIs
Publication statusPublished - 1 Dec 2019

Keywords

  • Cellular materials
  • Closed-cell aluminium foam
  • Computational simulations
  • Crushable foam
  • High strain rate
  • Powder gun
  • Quasi-static

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