3D-Printed Architected Materials Inspired by Cubic Bravais Lattices.

3D printing bioinspired materials lattice structure lightweight structure trabecular structure

Journal

ACS biomaterials science & engineering
ISSN: 2373-9878
Titre abrégé: ACS Biomater Sci Eng
Pays: United States
ID NLM: 101654670

Informations de publication

Date de publication:
10 07 2023
Historique:
medline: 11 7 2023
pubmed: 27 7 2021
entrez: 26 7 2021
Statut: ppublish

Résumé

Learning from Nature and leveraging 3D printing, mechanical testing, and numerical modeling, this study aims to provide a deeper understanding of the structure-property relationship of crystal-lattice-inspired materials, starting from the study of single unit cells inspired by the cubic Bravais crystal lattices. In particular, here we study the simple cubic (SC), body-centered cubic (BCC), and face-centered cubic (FCC) lattices. Mechanical testing of 3D-printed structures is used to investigate the influence of different printing parameters. Numerical models, validated based on experimental testing carried out on single unit cells and embedding manufacturing-induced defects, are used to derive the scaling laws for each studied topology, thus providing guidelines for materials selection and design, and the basis for future homogenization and optimization studies. We observe no clear effect of the layer thickness on the mechanical properties of both bulk material and lattice structures. Instead, the printing direction effect, negligible in solid samples, becomes relevant in lattice structures, yielding different stiffnesses of struts and nodes. This phenomenon is accounted for in the proposed simulation framework. The numerical models of large arrays, used to define the scaling laws, suggest that the chosen topologies have a mainly stretching-dominated behavior─a hallmark of structurally efficient structures─where the modulus scales linearly with the relative density. By looking ahead, mimicking the characteristic microscale structure of crystalline materials will allow replicating the typical behavior of crystals at a larger scale, combining the hardening traits of metallurgy with the characteristic behavior of polymers and the advantage of lightweight architected structures, leading to novel materials with multiple functions.

Identifiants

pubmed: 34309355
doi: 10.1021/acsbiomaterials.0c01708
pmc: PMC10336745
doi:

Substances chimiques

Polymers 0

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

3935-3944

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Auteurs

Flavia Libonati (F)

Department of Mechanical, Energy, Management and Transportation Engineering (DIME) Polytechnic School,University of Genoa, Via all'Opera Pia 15/A, Genova 16145, Italy.
Department of Mechanical Engineering, Politecnico di Milano via La Masa 1, Milano 20156, Italy.

Serena Graziosi (S)

Department of Mechanical Engineering, Politecnico di Milano via La Masa 1, Milano 20156, Italy.

Federico Ballo (F)

Department of Mechanical Engineering, Politecnico di Milano via La Masa 1, Milano 20156, Italy.

Marco Mognato (M)

Department of Mechanical Engineering, Politecnico di Milano via La Masa 1, Milano 20156, Italy.

Giacomo Sala (G)

Department of Mechanical Engineering, Politecnico di Milano via La Masa 1, Milano 20156, Italy.

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Classifications MeSH