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Tough Nature-Inspired Helicoidal Composites with Printing-Induced Voids

  • Sha Yin*
  • , Haoyu Chen
  • , Ruiheng Yang
  • , Qinghao He
  • , Dianhao Chen
  • , Lin Ye
  • , Yiu Wing Mai
  • , Jun Xu*
  • , Robert O. Ritchie*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Exoskeletons of Odontodactylus japonicas, the “smasher-type” mantis shrimp, feature a raptorial appendage comprising a Bouligand architecture of chitin nanofibrils with newly observed voids or defects between the polysaccharide α-chitin and protein interfaces. Here, we use a continuous-fiber 3D printing technology to simulate such materials in carbon fiber-reinforced (helicoidal) composites, complete with the presence of voids due to imperfect printing. The specific impact energies of the 3D printed helicoidal composites are clearly superior and further enhanced by the presence of the voids. To explain the role of the Bouligand architecture, interlaminar stresses are computed and found to yield anti-delamination characteristics, and a theoretical model is derived to evaluate the optimal helicoidal architecture. Finite element modeling indicates that the voids tend to deform and coalesce on loading and appear to guide the fracture into the formation of an ideally twisted crack in the printed helicoidal composites, thereby contributing to the impact toughness. Micro-scale voids are discovered in the exoskeletons of Odontodactylus japonica. Yin et al. print bioinspired composites to mimic this material, which are found to have superior specific impact energy in the presence of voids. Simulations indicate that the voids expand and coalesce on loading, contributing to impact toughness.

Original languageEnglish
Article number100109
JournalCell Reports Physical Science
Volume1
Issue number7
DOIs
StatePublished - 22 Jul 2020

Keywords

  • 3D printing
  • Bouligand structure
  • Mantis shrimp
  • bioinspired composite laminates
  • impact resistance
  • toughening mechanisms
  • voids

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