Published January 1, 2021 | Version v1
Journal article Open

Multiphase lattice metamaterials with enhanced mechanical performance

  • 1. Istanbul Tech Univ, Fac Aeronaut & Astronaut, Istanbul, Turkey
  • 2. Univ Bristol, Bristol Composites Inst ACCIS, Bristol, Avon, England
  • 3. Univ Oxford, Dept Chem, Oxford, England
  • 4. Univ Bristol, Fac Biomed Sci, Sch Cellular & Mol Med, Bristol, Avon, England
  • 5. Univ Louisville, Dept Mech Engn, Louisville, KY 40292 USA

Description

We describe here the quasi-static crushing behavior of novel classes of multiphase (hybrid) hierarchical lattice metamaterials. The first class is represented by a hybrid architecture combining a hierarchical honeycomb with polyurethane foam filler, while the second is a multiphase structure produced by injecting an alginate hydrogel into the hierarchical voids of the honeycomb metamaterial. Twelve different auxetic (i.e. negative Poisson's ratio) and non-auxetic metamaterial architectures have been 3D printed and subjected to edgewise compression crushing loading. A parametric numerical analysis has been also performed using validated finite element models to identify best metamaterial architecture configurations. Configurations filled with the hydrogel showed a significant stabilization of the deformation mechanism during large deformation edgewise compression. The use of metamaterials designs with internal slots and round in the ribs also filled by polyurethane rigid semi-reticulated foam feature however significant increases in terms of specific stiffness, mean crushing force, strength and energy absorption. The enhancement is particularly evident for the hybrid lattice metamaterials auxetic configurations.

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