Shape-matching soft mechanical metamaterials

Journal Article (2018)
Author(s)

M. J. Mirzaali (TU Delft - Biomaterials & Tissue Biomechanics, Politecnico di Milano)

Shahram Janbaz (TU Delft - Biomaterials & Tissue Biomechanics)

M. Strano (Politecnico di Milano)

L. Vergani (Politecnico di Milano)

AA Zadpoor (TU Delft - Biomaterials & Tissue Biomechanics)

Research Group
Biomaterials & Tissue Biomechanics
Copyright
© 2018 Mohammad J. Mirzaali, S. Janbaz, M. Strano, L. Vergani, A.A. Zadpoor
DOI related publication
https://doi.org/10.1038/s41598-018-19381-3
More Info
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Publication Year
2018
Language
English
Copyright
© 2018 Mohammad J. Mirzaali, S. Janbaz, M. Strano, L. Vergani, A.A. Zadpoor
Research Group
Biomaterials & Tissue Biomechanics
Issue number
1
Volume number
8
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Abstract

Architectured materials with rationally designed geometries could be used to create mechanical metamaterials with unprecedented or rare properties and functionalities. Here, we introduce "shape-matching" metamaterials where the geometry of cellular structures comprising auxetic and conventional unit cells is designed so as to achieve a pre-defined shape upon deformation. We used computational models to forward-map the space of planar shapes to the space of geometrical designs. The validity of the underlying computational models was first demonstrated by comparing their predictions with experimental observations on specimens fabricated with indirect additive manufacturing. The forward-maps were then used to devise the geometry of cellular structures that approximate the arbitrary shapes described by random Fourier's series. Finally, we show that the presented metamaterials could match the contours of three real objects including a scapula model, a pumpkin, and a Delft Blue pottery piece. Shape-matching materials have potential applications in soft robotics and wearable (medical) devices.