Hierarchical Auxetic Mechanical Metamaterials

Ruben Gatt, Luke Mizzi, Joseph I. Azzopardi, Keith M. Azzopardi, Daphne Attard, Aaron Casha, Joseph E. Briffa, Joseph N. Grima

Scientific Reports · 2015 · 288 citations · 33 references

DOIFull text

Open access

TL;DR

Auxetic mechanical metamaterials exhibit a negative Poisson's ratio due to their sub‑unit structure, offering superior performance but limited availability. The authors propose a new class of hierarchical auxetic metamaterials built on a rotating rigid‑unit mechanism. Simulations of multi‑level rotating‑square hierarchies show that design parameters can tune auxeticity, aperture size, and pore dimensions. The resulting hierarchical auxetics retain a negative Poisson's ratio while providing tunable auxeticity, aperture, and pore size, making them more versatile than non‑hierarchical counterparts and promising for industrial and biomedical applications such as stents and skin grafts.

Abstract

Abstract Auxetic mechanical metamaterials are engineered systems that exhibit the unusual macroscopic property of a negative Poisson's ratio due to sub-unit structure rather than chemical composition. Although their unique behaviour makes them superior to conventional materials in many practical applications, they are limited in availability. Here, we propose a new class of hierarchical auxetics based on the rotating rigid units mechanism. These systems retain the enhanced properties from having a negative Poisson's ratio with the added benefits of being a hierarchical system. Using simulations on typical hierarchical multi-level rotating squares, we show that, through design, one can control the extent of auxeticity, degree of aperture and size of the different pores in the system. This makes the system more versatile than similar non-hierarchical ones, making them promising candidates for industrial and biomedical applications, such as stents and skin grafts.

References

33