Mechanically Efficient Cellular Materials Inspired by Cuttlebone
Механически эффективные ячеистые материалы, вдохновлённые секцией каракатицы
2021-03-06
SCID: 54.1/74d3jzjt
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3D printingasymmetric S-shaped wallscuttlebone-inspired cellular materialslamellar septamechanical efficiency
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Abstract (AI)
Cellular materials with excellent mechanical efficiency are essential for aerospace structures, lightweight vehicles, and energy absorption. However, current synthetic cellular materials, such as lattice materials with a unit cell arranged in an ordered hierarchy, are still far behind many biological cellular materials in terms of both structural complexity and mechanical performance. Here, the complex porous structure and the mechanics of the cuttlebone are studied, which acts as a rigid buoyancy tank for cuttlefish to resist large hydrostatic pressure in the deep-sea environment. The cuttlebone structure, constructed like lamellar septa, separated by asymmetric, distorted S-shaped walls, exhibits superior strength and energy-absorption capability to the octet-truss lattice and conventional polymer and metal foams. Inspired by these findings, mechanically efficient cellular materials are designed and fabricated by 3D printing, which are greatly demanded for many applications including aerospace structures and tissue-engineering-scaffold. This study represents an effective approach for the design and engineering of high-performance cellular materials through bioinspired 3D printing.
Key Findings
1
Bioinspired cellular materials based on cuttlebone architecture were designed and fabricated by 3D printing, demonstrating mechanically efficient alternatives for aerospace and tissue-engineering scaffold applications.
2
Detailed study of cuttlebone mechanics identifies structural features that enable resistance to large hydrostatic pressure in deep-sea environments.
3
The bioinspired 3D-printed designs achieve much higher mechanical efficiency than current synthetic lattice materials that use ordered hierarchical unit cells.
4
The cuttlebone's complex porous structure—lamellar septa separated by asymmetric, distorted S-shaped walls—provides superior strength and energy-absorption compared to octet-truss lattices and conventional polymer and metal foams.
Research Object
Cuttlebone porous cellular structure and the bioinspired 3D-printed cellular materials based on it
Research Subject
Mechanics and mechanical efficiency (strength, energy-absorption, structural complexity) of the cuttlebone structure and the performance of mechanically efficient cellular materials designed and fabricated by 3D printing inspired by that structure
Publication Details
Publication Date
2021-03-06
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